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US20100280199A1 - Compositions that can produce polymers - Google Patents

Compositions that can produce polymers Download PDF

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Publication number
US20100280199A1
US20100280199A1 US12/814,589 US81458910A US2010280199A1 US 20100280199 A1 US20100280199 A1 US 20100280199A1 US 81458910 A US81458910 A US 81458910A US 2010280199 A1 US2010280199 A1 US 2010280199A1
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Prior art keywords
alumina
solid oxide
group
compound
substituted
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US12/814,589
Inventor
Max P. McDaniel
Elizabeth A. Benham
Shirley J. Martin
Kathy S. Collins
James L. Smith
Gil R. Hawley
Christopher E. Wittner
Michael D. Jensen
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Chevron Phillips Chemical Co LP
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Chevron Phillips Chemical Co LP
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Priority claimed from US11/929,298 external-priority patent/US7763561B2/en
Application filed by Chevron Phillips Chemical Co LP filed Critical Chevron Phillips Chemical Co LP
Priority to US12/814,589 priority Critical patent/US20100280199A1/en
Publication of US20100280199A1 publication Critical patent/US20100280199A1/en
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J31/00Catalysts comprising hydrides, coordination complexes or organic compounds
    • B01J31/02Catalysts comprising hydrides, coordination complexes or organic compounds containing organic compounds or metal hydrides
    • B01J31/12Catalysts comprising hydrides, coordination complexes or organic compounds containing organic compounds or metal hydrides containing organo-metallic compounds or metal hydrides
    • B01J31/14Catalysts comprising hydrides, coordination complexes or organic compounds containing organic compounds or metal hydrides containing organo-metallic compounds or metal hydrides of aluminium or boron
    • B01J31/143Catalysts comprising hydrides, coordination complexes or organic compounds containing organic compounds or metal hydrides containing organo-metallic compounds or metal hydrides of aluminium or boron of aluminium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J27/00Catalysts comprising the elements or compounds of halogens, sulfur, selenium, tellurium, phosphorus or nitrogen; Catalysts comprising carbon compounds
    • B01J27/02Sulfur, selenium or tellurium; Compounds thereof
    • B01J27/053Sulfates
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J27/00Catalysts comprising the elements or compounds of halogens, sulfur, selenium, tellurium, phosphorus or nitrogen; Catalysts comprising carbon compounds
    • B01J27/06Halogens; Compounds thereof
    • B01J27/125Halogens; Compounds thereof with scandium, yttrium, aluminium, gallium, indium or thallium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J31/00Catalysts comprising hydrides, coordination complexes or organic compounds
    • B01J31/16Catalysts comprising hydrides, coordination complexes or organic compounds containing coordination complexes
    • B01J31/22Organic complexes
    • B01J31/2282Unsaturated compounds used as ligands
    • B01J31/2295Cyclic compounds, e.g. cyclopentadienyls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J37/00Processes, in general, for preparing catalysts; Processes, in general, for activation of catalysts
    • B01J37/02Impregnation, coating or precipitation
    • B01J37/0201Impregnation
    • B01J37/0207Pretreatment of the support
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F10/00Homopolymers and copolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J21/00Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
    • B01J21/02Boron or aluminium; Oxides or hydroxides thereof
    • B01J21/04Alumina
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J21/00Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
    • B01J21/06Silicon, titanium, zirconium or hafnium; Oxides or hydroxides thereof
    • B01J21/08Silica
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J21/00Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
    • B01J21/12Silica and alumina
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2531/00Additional information regarding catalytic systems classified in B01J31/00
    • B01J2531/40Complexes comprising metals of Group IV (IVA or IVB) as the central metal
    • B01J2531/46Titanium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2531/00Additional information regarding catalytic systems classified in B01J31/00
    • B01J2531/40Complexes comprising metals of Group IV (IVA or IVB) as the central metal
    • B01J2531/48Zirconium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2531/00Additional information regarding catalytic systems classified in B01J31/00
    • B01J2531/40Complexes comprising metals of Group IV (IVA or IVB) as the central metal
    • B01J2531/49Hafnium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J31/00Catalysts comprising hydrides, coordination complexes or organic compounds
    • B01J31/16Catalysts comprising hydrides, coordination complexes or organic compounds containing coordination complexes
    • B01J31/1608Catalysts comprising hydrides, coordination complexes or organic compounds containing coordination complexes the ligands containing silicon
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J31/00Catalysts comprising hydrides, coordination complexes or organic compounds
    • B01J31/26Catalysts comprising hydrides, coordination complexes or organic compounds containing in addition, inorganic metal compounds not provided for in groups B01J31/02 - B01J31/24
    • B01J31/38Catalysts comprising hydrides, coordination complexes or organic compounds containing in addition, inorganic metal compounds not provided for in groups B01J31/02 - B01J31/24 of titanium, zirconium or hafnium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J35/00Catalysts, in general, characterised by their form or physical properties
    • B01J35/60Catalysts, in general, characterised by their form or physical properties characterised by their surface properties or porosity
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F110/00Homopolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond
    • C08F110/02Ethene
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F2410/00Features related to the catalyst preparation, the catalyst use or to the deactivation of the catalyst
    • C08F2410/07Catalyst support treated by an anion, e.g. Cl-, F-, SO42-
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F4/00Polymerisation catalysts
    • C08F4/42Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors
    • C08F4/44Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors selected from light metals, zinc, cadmium, mercury, copper, silver, gold, boron, gallium, indium, thallium, rare earths or actinides
    • C08F4/60Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors selected from light metals, zinc, cadmium, mercury, copper, silver, gold, boron, gallium, indium, thallium, rare earths or actinides together with refractory metals, iron group metals, platinum group metals, manganese, rhenium technetium or compounds thereof
    • C08F4/62Refractory metals or compounds thereof
    • C08F4/64Titanium, zirconium, hafnium or compounds thereof
    • C08F4/659Component covered by group C08F4/64 containing a transition metal-carbon bond
    • C08F4/65912Component covered by group C08F4/64 containing a transition metal-carbon bond in combination with an organoaluminium compound
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F4/00Polymerisation catalysts
    • C08F4/42Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors
    • C08F4/44Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors selected from light metals, zinc, cadmium, mercury, copper, silver, gold, boron, gallium, indium, thallium, rare earths or actinides
    • C08F4/60Metals; Metal hydrides; Metallo-organic compounds; Use thereof as catalyst precursors selected from light metals, zinc, cadmium, mercury, copper, silver, gold, boron, gallium, indium, thallium, rare earths or actinides together with refractory metals, iron group metals, platinum group metals, manganese, rhenium technetium or compounds thereof
    • C08F4/62Refractory metals or compounds thereof
    • C08F4/64Titanium, zirconium, hafnium or compounds thereof
    • C08F4/659Component covered by group C08F4/64 containing a transition metal-carbon bond
    • C08F4/6592Component covered by group C08F4/64 containing a transition metal-carbon bond containing at least one cyclopentadienyl ring, condensed or not, e.g. an indenyl or a fluorenyl ring
    • C08F4/65922Component covered by group C08F4/64 containing a transition metal-carbon bond containing at least one cyclopentadienyl ring, condensed or not, e.g. an indenyl or a fluorenyl ring containing at least two cyclopentadienyl rings, fused or not
    • C08F4/65925Component covered by group C08F4/64 containing a transition metal-carbon bond containing at least one cyclopentadienyl ring, condensed or not, e.g. an indenyl or a fluorenyl ring containing at least two cyclopentadienyl rings, fused or not two cyclopentadienyl rings being mutually non-bridged

Definitions

  • This invention is related to the field of compositions that can be used to polymerize monomers into at least one polymer.
  • metallocene catalyst technology One of these technologies is called metallocene catalyst technology. Metallocene catalysts have been known since about 1960, however, their low productivity did not allow them to be commercialized. About 1975, it was discovered that contacting one part water with two parts trimethylaluminum to form methyl aluminoxane, and then contacting such methyl aluminoxane with a metallocene compound, formed a metallocene catalyst that had greater activity. However, it was soon realized that large amounts of expensive methyl aluminoxane were needed to form an active metallocene catalyst. This has been a significant impediment to the commercialization of metallocene catalysts.
  • heterogeneous catalyst is important. This is because heterogeneous catalysts are required for most modern commercial polymerization processes. Furthermore, heterogeneous catalysts can lead to the formation of substantially uniform polymer particles that have a high bulk density. These types of substantially uniformed particles are desirable because they improve the efficiency of polymer production and transportation. Efforts have been made to produce heterogeneous metallocene catalysts, however, these catalysts have not been entirely satisfactory.
  • An object of this invention is to provide a process that produces a composition that can be used to polymerize monomers into at least one polymer.
  • Another object of this invention is to provide said composition.
  • Another object of this invention is to provide a process to polymerize monomers into at least one polymer using said composition.
  • Another object of this invention is to provide a manufacture that comprises at least one said polymer.
  • Another object of this invention is to provide a machine that comprises at least one said manufacture.
  • a process to produce a composition of matter comprises (or optionally, consists essentially of, or consists of) contacting an organometal compound, a treated solid oxide compound, and an organoaluminum compound to produce said composition, wherein said composition consists essentially of (or optionally, consists of) a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound.
  • composition of matter consists essentially of a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound.
  • a process to polymerize monomers into at least one polymer using said composition comprises contacting said composition with monomers.
  • a manufacture comprises at least one said polymer.
  • a machine comprises at least two said manufactures.
  • Organometal compounds used in this invention have the following general formula.
  • M 1 is selected from the group consisting of titanium, zirconium, and hafnium. Currently, it is most preferred when M 1 is zirconium.
  • X 1 is independently selected from the group consisting of (hereafter “Group OMC-I”) cyclopentadienyls, indenyls, fluorenyls, substituted cyclopentadienyls, substituted indenyls, such as, for example, tetrahydroindenyls, and substituted fluorenyls, such as, for example, octahydrofluorenyls.
  • Group OMC-I cyclopentadienyls, indenyls, fluorenyls, substituted cyclopentadienyls, substituted indenyls, such as, for example, tetrahydroindenyls, and substituted fluorenyls, such as, for example, octahydrofluorenyls.
  • the substituents on the substituted cyclopentadienyls, substituted indenyls, and substituted fluorenyls can be aliphatic groups, cyclic groups, combinations of aliphatic and cyclic groups, and organometallic groups, as long as these groups do not substantially, and adversely, affect the polymerization activity of the composition. Additionally, hydrogen can be a substituent.
  • Suitable examples of aliphatic groups are hydrocarbyls, such as, for example, paraffins and olefins.
  • Suitable examples of cyclic groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes.
  • alkylsilyl groups where each alkyl contains 1-12 carbon atoms, alkyl halide groups where each alkyl contains 1-12 carbon atoms, or halides can also be used.
  • substituents are methyl, ethyl, propyl, butyl, tert-butyl, isobutyl, amyl, isoamyl, hexyl, cyclohexyl, heptyl, octyl, nonyl, decyl, dodecyl, 2-ethylhexyl, pentenyl, butenyl, phenyl, chloro, bromo, and iodo.
  • (X 3 ) and (X 4 ) are independently selected from the group consisting of (hereafter “Group OMC-II”) halides, aliphatic groups, cyclic groups, combinations of aliphatic and cyclic groups, and organometallic groups, as long as these groups do not substantially, and adversely, affect the polymerization activity of the composition.
  • Group OMC-II halides, aliphatic groups, cyclic groups, combinations of aliphatic and cyclic groups, and organometallic groups, as long as these groups do not substantially, and adversely, affect the polymerization activity of the composition.
  • Suitable examples of aliphatic groups are hydrocarbyls, such as, for example, paraffins and olefins.
  • Suitable examples of cyclic groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes.
  • (X 3 ) and (X 4 ) are selected from the group consisting of halides and hydrocarbyls, where such hydrocarbyls have from 1 to 10 carbon atoms.
  • (X 3 ) and (X 4 ) are selected from the group consisting of fluoro, chloro, and methyl.
  • (X 2 ) can be selected from either Group OMC-I or Group OMC-II.
  • (X 2 ) is selected from Group OMC-I
  • a bridging group such as, for example, aliphatic bridging groups, cyclic bridging groups, combinations of aliphatic and cyclic bridging groups, and organometallic bridging groups, as long as the bridging group does not substantially, and adversely, affect the polymerization activity of the composition.
  • Suitable examples of aliphatic bridging groups are hydrocarbyls, such as, for example, paraffins and olefins.
  • Suitable examples of cyclic bridging groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes. Additionally, it should be noted that silicon and germanium are also good bridging units.
  • compositions are as follows:
  • Organoaluminum compounds have the following general formula.
  • (X 5 ) is a hydrocarbyl having from 1-20 carbon atoms. Currently, it is preferred when (X 5 ) is an alkyl having from 1 to 10 carbon atoms. However, it is most preferred when (X 5 ) is selected from the group consisting of methyl, ethyl, propyl, butyl, and isobutyl.
  • (X 6 ) is a halide, hydride, or alkoxide.
  • (X 6 ) is independently selected from the group consisting of fluoro and chloro.
  • (X 6 ) is chloro.
  • n is a number from 1 to 3 inclusive. However, it is preferred when “n” is 3.
  • triethylaluminum is preferred.
  • the treated solid oxide compounds are compounds that have had their Lewis acidity increased. It is preferred when said treated solid oxide compound comprises oxygen and at least one element selected from the group consisting of groups 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15 of the periodic table, including lanthanides and actinides (See Hawley's Condense Chemical Dictionary, 11th Edition). However, it is preferred when the element is selected from the group consisting of Al, B, Be, Bi, Cd, Co, Cr, Cu, Fe, Ga, La, Mn, Mo, Ni, Sb, Si, Sn, Sr, Th, Ti, V, W, P, Y, Zn and Zr.
  • Treated solid oxide compounds can be produced in a variety of ways, such as, for example, by gelling, co-gelling, or impregnation of one compound onto another, followed by calcination.
  • At least one solid oxide compound such as, for example, alumina, zirconia, titania, and mixtures thereof or with mixture with other solid oxides such as, for example, silica alumina
  • at least one electron-withdrawing anion source compound to form a first mixture, followed by calcining this first mixture to form a treated solid oxide compound.
  • a solid oxide compound and an electron-withdrawing anion source compound can be contacted and calcined simultaneously.
  • the electron-withdrawing anion source compound is any compound that increases the Lewis acidity of the solid oxide under the conditions given herein for producing the treated solid oxide compound.
  • electron-withdrawing anion source compounds increase the Lewis acidity of the solid oxide by contributing to the formation of an electron withdrawing anion, such as, for example, sulfates, halides, and triflate. It should be noted that one or more different electron withdrawing anions can be used.
  • the acidity of the solid oxide compound can be further enhanced by using two, or more, electron-withdrawing anion source compounds in two, or more, separate contacting steps.
  • An example of such a process is contacting at least one solid oxide compound with a first electron-withdrawing anion source compound to form a first mixture, followed by calcining this first mixture, followed by contacting with a second electron-withdrawing anion source compound to form a second mixture, followed by calcining said second mixture to form a treated solid oxide compound.
  • the first and second electron-withdrawing anion source compounds can be the same, but are preferably different.
  • solid oxide compounds include, but are not limited to, Al 2 O 3 , B 2 O 3 , BeO, Bi 2 O 3 , CdO, Co 3 O 4 , Cr 2 O 3 , CuO, Fe 2 O 3 , Ga 2 O 3 , La 2 O 3 , Mn 2 O 3 , MoO 3 , NiO, P 2 O 5 , Sb 2 O 5 , SiO 2 , SnO 2 , SrO, ThO 2 , TiO 2 , V 2 O 5 , WO 3 , Y 2 O 3 , ZnO, ZrO 2 : and mixtures thereof, such as, for example, silica-alumina and silica-zirconia. It should be noted that solid oxide compounds that comprise Al—O bonds are currently preferred.
  • the solid oxide compound is also calcined.
  • This calcining can be conducted in an ambient atmosphere, preferably a dry ambient atmosphere, at a temperature in the range of about 200° C. to about 900° C., and for a time in the range of about 1 minute to about 100 hours.
  • temperatures from about 400° C. to about 800° C. and a time in the range of about 1 hour to about 10 hours, are preferred.
  • Treated solid oxide compounds should have pore volumes greater than about 0.01 cc/g, preferably greater than about 0.1 cc/g, and most preferably, greater than about 1 cc/g.
  • Treated solid oxide compounds should have surface areas greater that about 1 m 2 /g, preferably greater than 100 m 2 /g, and most preferably greater than 200 m 2 /g.
  • compositions of this invention can be produced by contacting an organometal compound, an treated solid oxide compound, and an organoaluminum compound, together. This contacting can occur in a variety of ways, such as, for example, blending. Furthermore, each of these compounds can be fed into the reactor separately, or various combinations of these compounds can be contacted together before being further contacted in the reactor, or all three compounds can be contacted together before being introduced into the reactor. Currently, one method is to first contact the organometal compound and the treated solid oxide compound together, for about 1 minute to about 24 hours, preferably, about 1 minute to about 1 hour, at a temperature from about 10° C. to about 200° C., preferably about 25° C.
  • the mixtures or the composition can be calcined.
  • This calcining can be conducted in an ambient atmosphere, preferably a dry ambient atmosphere, at a temperature in the range of about 300° C. to about 900° C., and for a time in the range of about 1 minute to about 100 hours.
  • temperatures from about 500° C. to about 700° C. and a time in the range of about 1 hour to about 10 hours, are preferred.
  • dry nitrogen it is preferred to use dry nitrogen as the ambient atmosphere.
  • the composition consists essentially of, (or consists of) a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound.
  • a post-contacted treated solid oxide compound is the majority, by weight, of the composition. Since the exact order of contacting is not known, it is believed that this terminology best describes the composition's components.
  • the activity is greater than 100 grams polyethylene per gram of treated solid oxide compound per hour (hereafter “gP/(gS ⁇ hr)”), more preferably greater than 250, even more preferably greater than 500, even more preferably greater than 1000, and most preferably greater than 2000.
  • This activity is measured under slurry polymerization conditions, using isobutane as the diluent, and with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig.
  • the reactor should have substantially no indication of any wall scale, coating or other forms of fouling.
  • compositions are often sensitive to hydrogen and sometimes incorporate comonomers well, and usually produce polymers with a low HLMI/MI ratio.
  • aluminoxane needs to be used in order to form the composition.
  • no water is needed to help form such aluminoxanes. This is beneficial because water can sometimes kill a polymerization process.
  • no borate compounds need to be used in order to form the composition.
  • no organochromium needs to be added, nor any MgCl 2 needs to be added to form the invention.
  • the monomers useful in this invention are unsaturated hydrocarbons having from 2 to 20 carbon atoms.
  • the monomer is selected from the group consisting of ethylene, propylene, 1-butene, 3-methyl-1-butene, 1-pentene, 3-methyl-1-pentene, 4-methyl-1-pentene, 1-hexene, 3-ethyl-1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, and mixtures thereof.
  • ethylene, propylene 1-butene, 3-methyl-1-butene
  • 1-pentene 3-methyl-1-pentene
  • 4-methyl-1-pentene 1-hexene
  • 3-ethyl-1-hexene 1-heptene
  • 1-octene 1-nonene
  • 1-decene 1-decene
  • Processes that can polymerize monomers into polymers are known in the art, such as, for example, slurry polymerization, gas phase polymerization, and solution polymerization. It is preferred to perform a slurry polymerization in a loop reactor. Furthermore, it is even more preferred to use isobutane as the diluent in a slurry polymerization. Examples of such technology can be found in U.S. Pat. Nos. 4,424,341; 4,501,885; 4,613,484; 4,737,280; and 5,597,892; the entire disclosures of which are hereby incorporated by reference.
  • compositions polymerize ethylene alone, or ethylene with a 1-olefin, or propylene very well.
  • the compositions used in this process produce good quality polymer particles without substantially fouling the reactor.
  • the particle size of the solid mixed oxide compound is in the range of about 10 to about 1000 microns, preferably 25 to 500 microns, and most preferably, about 50 to about 200 microns, for best control during polymerization.
  • the polymers After the polymers are produced, they can be formed into various manufactures, such as, for example, household containers and utensils, drums, fuel tanks, pipes, geomembranes, and liners. Various processes can form these manufactures. Usually, additives and modifiers are added to the polymer in order to provide desired effects. It is believed that by using the invention described herein, manufactures can be produced at a lower cost, while maintaining most, if not all, of the unique properties of polymers produced with metallocene catalysts.
  • manufactures can be part of a machine, such as, for example, a car, so that the weight of the car will be less, with the attended benefits thereof.
  • a treated, or untreated, solid oxide compound was charged, under nitrogen, to the reactor, which was dry.
  • organometal compound solution was added to the reactor by syringe.
  • the reactor was clean with no indication of any wall scale, coating or other forms of fouling.
  • the polymer powder was removed and weighed.
  • Activity was specified as grams of polymer produced per gram of treated, or untreated, solid oxide compound charged per hour.
  • the treated solid oxide compound and the organometal compound were first pre-contacted, in the reactor, for about half an hour at 90° C. in one liter of isobutane before the organoaluminum compound and ethylene were added to the reactor.
  • Silica, grade 952, having a pore volume of 1.6 cc/g and a surface area of about 300 square meters per gram was obtained from W. R. Grace. About 10 grams of this material was placed in a 1.75 inch quartz tube, which was fitted at the bottom with a sintered quartz. While the silica was supported on the disk, dry air was blown up through the disk at the linear rate of about 1.6 to 1.8 standard cubic feet per hour. An electric furnace around the quartz tube was then turned on and the temperature was raised at the rate of 400° C. per hour to a temperature of 600° C. At that temperature, the silica was allowed to fluidize for three hours in the dry air. Afterward, the silica was collected and stored under dry nitrogen.
  • alumina samples were also prepared by the procedure described in the silica preparation.
  • a commercial alumina sold by AKZO Company as Ketjen grade B alumina was obtained, having a pore volume of about 1.78 cc/g and a surface area of around 340 square meters per gram.
  • the temperatures used in the preparation of these aluminas were 400° C., 600° C., and 800° C.
  • a silica-alumina was also obtained from W. R. Grace (MS 13-110 containing 13% alumina and 87% silica). This silica-alumina had a pore volume of 1.2 cc/g and a surface area of about 300 square meters per gram. This silica-alumina was prepared as described in the silica preparation. The temperature used in the preparation of this silica-alumina was 600° C.
  • a silica-titania was obtained by co-gellation as described in U.S. Pat. No. 3,887,494 (“Deitz”). Titanyl sulfate was dissolved in concentrated sulfuric acid, to form a first mixture. Afterwards, a sodium silicate solution was slowly added, with vigorous stirring, to this first mixture, to form a second mixture. When the pH of the second mixture reached about 6, this second mixture gelled into a homogenous, substantially-clear first product. This first product was then aged, at 80° C. and a pH 7, for three hours, followed by washing it nine times with water, and two times in 1% ammonium nitrate, to form a second product.
  • This second product which was a gel, was then azeotropically dried in ethyl acetate, to form a third product.
  • This third product contained 8% titanium. It also had a surface area of 450 square meters per gram and a pore volume of 2.0 cc/g.
  • This silica-titania was then prepared as described in the silica preparation. The temperature use in the preparation of this silica-titania was 600° C.
  • An alumino-phosphate was prepared according to U.S. Pat. No. 4,364,855 (McDaniel).
  • Aluminum nitrate (380 grams) and mono-ammonium phosphate (94 grams) was dissolved in deionized water to form a first mixture.
  • About 170 milliliters of ammonium hydroxide was then added to this first mixture to form a second mixture.
  • this second mixture gelled to form a first product.
  • This first product was then washed twice in water, and once in n-propanol, before drying overnight at 80° C. under a vacuum, to form a second product.
  • This second product contained a phosphorus to aluminum molar ratio of 0.8, a pore volume of 2.1 cc/g, and a surface area of 250 square meters per gram.
  • This alumino-phosphate was then prepared as described in the silica preparation. The temperature use in the preparation of this alumina-phosphate was 600° C.
  • organometal compound contacted with an organoaluminum compound provides little, if any, polymerization activity.
  • a polymerization run was made as described earlier.
  • Third, 2 ml of 15 weight percent triethyl aluminum for example 1, or 2 ml of 25 weight percent ethyl aluminum dichloride (EADC) for example 2 were added to the reactor.
  • the first two examples show that contacting an organometal compound with an organoaluminum compound provides little, if any, polymerization activity.
  • the silica example produced almost no polymer.
  • Alumina which is regarded as more acidic than silica, produced more polymer, but still the activity was very low.
  • the alumino-phosphate, silica-alumina, and silica-titania supports exhibited only marginal activity. Activity is expressed in Table-I as gP/(gS ⁇ hr).
  • Ketjen B alumina was first calcined in air at 600° C. as described earlier. Then 11.1 grams of this material was slurried with 30 mls of isopropanol mixed with 1.73 grams of sulfuric acid. This is equivalent to 1.6 mmol of sulfate per gram of calcined alumina. The isopropanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in air at 550° C. as described earlier. A sample of this material was then tested for ethylene polymerization. It yielded 1387 g/g/h of polymer. This experiment is shown in Table II as example 13A.
  • Ketjen B alumina was first calcined in air at 600° C., then 5.9 grams of this material was slurried with 15 mls of isopropanol mixed with 0.453 grams of sulfuric acid. This is equivalent to 1.6 mmol of sulfate per gram of calcined alumina. The isopropanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in air at 550° C. as described earlier. It was found to have a pore volume of 0.93 cc/g and a surface area of 205 square meters per gram. A sample of this material was then tested for ethylene polymerization. It yielded 324 g/g/h of polymer. This experiment is shown in Table II as example 13B.
  • This material was then calcined again at 800° C. for three hours in air as described earlier. It was found to have a pore volume of 1.03 cc/g and a surface area of 236 square meters per gram. It provided activity of 58 g/g/h polymer. This experiment is shown in Table II as example 13C.
  • example 11 The procedure of example 11 was repeated except that 33.14 grams of Ketjen B alumina was impregnated with 11.60 grams of ammonium sulfate and then it was calcined at 550 C.
  • the results of testing are shown in Table II as example 14A.
  • the sulfated alumina and metallocene were precontacted in the reactor for 32 minutes at 90 C before other ingredients were introduced to begin the run.
  • Polymer produced in this run was found to have a MI of 0.21, a HLMI of 3.5, giving a shear ratio of 16.7.
  • After calcining the sulfated alumina was found to have a surface area of 284 square meters per gram and a pore volume of 0.67 cc/g and an average pore radius of 94 angstroms.
  • the above sulfated alumina (14A) was then calcined in air at 650 C for three hours and tested again for polymerization. Again the sulfated alumina and the metallocene wasre precontacted for 30 minutes at 90 C. Details of the run are shown in Table II as example 14B. This material was found to have a surface area of 305 square meters per gram, a pore volume of 0.9 cc/g, and an average pore volume of 110 angstroms.
  • sulfated alumina was made by the same proceedure as example 14A except that 26.9 g of Ketjen B alumina was inpreganated with 5.41 g of ammonium sulfate. Calcination was at 550 C. It was found to have a surface area of 352 square meters per gram, a pore volume of 0.93 cc/g, and an average pore radius of 106 angstroms. Details of the polymertization are given in Table II as example 15.
  • a silica-alumina was obtained from W. R. Grace under the commercial name of MS13-110. It's properties and activity have already been described earlier. It was impregnated with sulfuric acid as described above in example 16 to contain 1.6 mmol sulfate per gram. It was then calcined in air at 600° C. as described earlier. A sample of this material was then charged to the reactor along with the metallocene and isobutane and stirred for 32 minutes at 90° C. before ethylene was added. It yielded 82 g/g/h of polymer. This experiment is shown in Table II as example 17.
  • W. R. Grace grade HPV alumina was calcined at 600° C. in air three hours, giving a material of surface area around 500 square meters per gram and pore volume of about 2.8 cc/g. 3.36 grams of this material was heated under fluidizing nitrogen to 600° C. Then 5.0 mls of perfluorohexane was injected into the nitrogen upstream from the alumina. Over the next 15 minutes the perfluorohexane evaporated at room temperature into the nitrogen and was then carried up through the fluidizing bed of alumina, where it reacted. This exposure would be equivalent to about 55 mmol of fluoride per gram of alumina if all of the fluoride reacted (which was obviously not the case).
  • the alumina turned black, presumably due to carbon deposited on it. This material was then tested for polymerization activity when a sample was charged to the reactor with the metallocene at 90° C. After 30 minutes of stirring, triethyl aluminum and ethylene were added and the sample was found to provide 1266 g/g/h of polymer. Details are shown in Table III as example 23.
  • This material was then recalcined in air at 600° C. for three hours to burn off residual carbon. The black color turned back to white. It was then tested for polymerization activity when a sample of it was added to the reactor along with metallocene and triethyl aluminum, followed immediately by ethylene. It provided an activity of 2179 g/g/h of polymer. Details are shown in Table III as example 24.
  • Ketjen Grade B alumina was calcined in air for three hours at 600° C. as described in example 5. 9.29 grams of this alumina was charged to a dry quartz activator tube and fluidized in carbon monoxide at 600° C. Then 4.5 mls of methyl bromide was injected upstream into the carbon monoxide. During the next 30 minutes the methyl bromide was warmed with an electric heater causing it to evaporate and be carried by the carbon monoxide gas through the fluidizing alumina bed at 600° C. After this treatment the alumina was black, presumably from carbon deposits. A sample was tested for polymerization activity and found to give 223 g/g/h of polymer. In a second similar run it was found to give 181 g/g/h of polymer. These two runs are shown in Table IV as examples 25 and 26.
  • Ketjen Grade B alumina was calcined in air for three hours at 600° C. as described in example 5. 9.82 grams of this alumina was charged to a dry quartz activator tube and fluidized in carbon monoxide at 600° C. Then 1.0 mls of bromine liquid was injected upstream into the carbon monoxide which slowly evaporated and was carried through the fluidizing alumina bed at 600° C. After this treatment the alumina was white. A sample was tested for polymerization activity and found to give 106 g/g/h of polymer. This run is shown in Table IV as example 27.
  • This material gave 939 g/g/h of copolymer having the following properties: melt index of 0.63, high load melt index of 10.6, shear ratio of 16.7, density of 0.9400, weight average MW of 126,000, number average MW of 50,200, and polydispersity of 2.5. This run in shown in Table V as example 28.
  • This chlorided alumina was run again but without the hexene and the details are shown in Table V as example 29. It produced 1019 g/g/h of polymer having the following properties: melt index of 0.15, high load melt index of 2.68, shear ratio of 17.9, density of 0.9493, weight average MW of 202,000, number average MW of 62,400, and polydispersity of 3.2.
  • Ketjen Grade B alumina Three other samples of Ketjen Grade B alumina were also calcined at 600° C. in air as described in the above examples and then treated with various amounts of carbon tetrachloride at various temperatures. Table V shows the results of these experiments as examples 32, 33, and 34. In example 33 the treatment was done in carbon monoxide gas instead of nitrogen.
  • the catalyst of example 33 was retested for polymerization activity but with the following variation. Instead of charging all ingredients to the reactor and immediately starting the run, the oxide and the meta 11 ocene were charged with the isobutane first and allowed to contact each other for 37 minutes at 90° C. before the cocatalyst and ethylene were added to begin the run. This run is shown in Table V as example 35.
  • W. R. Grace Grade HPV alumina was calcined in air for three hours at 600° C., yielding a surface area of approximately 500 square meters per gram and a pore volume of about 2.8 cc/g. 5.94 grams of this alumina was then treated with 5.0 mils of carton tetrachloride in nitrogen at 600° C. Results of polymerization testing are shown in Table V as example 36.
  • Ketjen Grade B alumina which had been calcined at 400° C. in air for three hours was charged to a dry activator tube and heated under nitrogen to 400° C. 2.1 mils of silicon tetrachloride was then injected into the nitrogen upstream from the alumina. As it evaporated it was carried up through the alumina bed, reacting and chloriding the surface.
  • this material When tested for polymerization activity this material provided 579 g/g/h of polymer having a melt index of 0.20, a high load melt index of 3.58, and a shear ratio of 17.9. Details of the polymerization test are shown in Table VI as example 38.
  • Ketjen Grade B alumina which had been calcined at 600° C. in air for three hours was charged to a dry activator tube and heated under nitrogen to 300° C. 2.8 mils of thionyl chloride was then injected into the nitrogen upstream from the alumina. As it evaporated it was carried up through the alumina bed, reacting and chloriding the surface.
  • this material When tested for polymerization activity this material provided 764 g/g/h of polymer having a melt index of 0.13, a high load melt index of 2.48, and a shear ratio of 18.6. Details of the polymerization test are shown in Table VI as example 39.
  • Ketjen Grade B alumina which had been calcined at 400° C. in air for three hours was charged to a dry activator tube and heated under dry air to 300° C. 2.55 mls of sulfuryl chloride was then injected into the air upstream from the alumina. As it evaporated over a period of about 45 minutes at room temperature it was carried up through the alumina bed, reacting and chloriding the surface. When tested for polymerization activity this material provided 459 g/g/h of polymer having a melt index of 0.11, a high load melt index of 2.83, and a shear ratio of 25.6. Details of the polymerization test are shown in Table VI as example 40.
  • aluminum trichloride was deposited onto the surface of dehydrated alumina in order to give it a higher surface area.
  • 1.4 grams of anhydrous aluminum trichloride was dissolved in 100 mls of dichloromethane. This solution was then added to 6 grams of Ketjen Grade B alumina which had been calcined at 600° C. in air for three hours. The dichloromethane was evaporated under nitrogen at 60° C. A sample of this material was then tested for polymerization activity (example 43) but it had little. The material was then heated under nitrogen to 250° C. for one hour and retested for polymerization activity (example 44). This time some activity was detected. Next the material was again heated under nitrogen to 400° C. for one hour and retested for polymerization activity (example 45) and activity was observed.
  • Degussa Aluminoxid C obtained by flame hydrolysis, was calcined at 600° C. in air for three hours. Then 2.74 grams of this calcined alumina was heated to 600° C. in air, into which 4.1 mls of perfluorohexane was injected. As the liquid evaporated, it was carried up by the air through the alumina bed. Afterwards the gas stream was switched from air to nitrogen and 1.0 ml of carbon tetrachloride was injected. After all had evaporated, the solid was cooled to room temperature and stored under dry nitrogen. A small sample was tested for polymerization activity with metallocene and cocatalyst as previously described. This material was found to yield 1383 g/g/h. Details are recorded in Table VIII.
  • a chlorided alumina was prepared identically to that in example 33.
  • a sample of the oxide was added to the reactor under nitrogen, then 2 mls of a solution of 0.5 grams of bis(n-butyl cyclopentadienyl) zirconium dichloride in 100 mls of toluene was added, then 0.6 liter of isobutane liquid, then 1 mmol of the cocatalyst (usually from a hexane solution) followed by another 0.6 liter of isobutane, and finally the ethylene was added after the reactor reached 90° C.
  • Table IX shows the results of these experiments as examples 56 through 62.
  • This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • organometal compound used was 25 micromoles.
  • the type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • organometal compound used was 25 micromoles.
  • the type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • the amount of organometal compound used was 25 micromoles.
  • the type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 450 psig ethylene, in 1.2 liters of isobutane, and in 25 mls of 1-hexene.
  • organometal compound used was 25 micromoles.
  • the type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • the amount of organometal compound used was 25 micromoles.
  • the type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.

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Abstract

This invention provides a compositions that are useful for polymerizing at least one monomer into at least one polymer.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a continuation application of co-pending U.S. patent application Ser. No. 11/929,298 filed Oct. 30, 2007, now U.S. Pat. No. 7,763,561, which is a continuation application of co-pending U.S. patent application Ser. No. 10/994,828 filed Nov. 22, 2004, now U.S. Pat. No. 7,601,665, which is a divisional application of U.S. patent application Ser. No. 09/909,152 filed Jul. 19, 2001, now U.S. Pat. No. 6,831,141, which is a divisional application of U.S. patent application Ser. No. 09/080,619 filed May 18, 1998, now U.S. Pat. No. 6,300,271, all of which are incorporated herein by reference in their entirety.
  • FIELD OF THE INVENTION
  • This invention is related to the field of compositions that can be used to polymerize monomers into at least one polymer.
  • BACKGROUND OF THE INVENTION
  • The production of polymers is a multi-billion dollar business. This business produces billions of pounds of polymers each year. Millions of dollars have been spent on developing technologies that can add value to this business.
  • One of these technologies is called metallocene catalyst technology. Metallocene catalysts have been known since about 1960, however, their low productivity did not allow them to be commercialized. About 1975, it was discovered that contacting one part water with two parts trimethylaluminum to form methyl aluminoxane, and then contacting such methyl aluminoxane with a metallocene compound, formed a metallocene catalyst that had greater activity. However, it was soon realized that large amounts of expensive methyl aluminoxane were needed to form an active metallocene catalyst. This has been a significant impediment to the commercialization of metallocene catalysts.
  • Borate compounds have been use in place of large amounts of methyl aluminoxane. However, this is not satisfactory, since borate compounds are very sensitive to poisons and decomposition, and can also be very expensive.
  • It should also be noted that having a heterogeneous catalyst is important. This is because heterogeneous catalysts are required for most modern commercial polymerization processes. Furthermore, heterogeneous catalysts can lead to the formation of substantially uniform polymer particles that have a high bulk density. These types of substantially uniformed particles are desirable because they improve the efficiency of polymer production and transportation. Efforts have been made to produce heterogeneous metallocene catalysts, however, these catalysts have not been entirely satisfactory.
  • Therefore, the inventors provide this invention to solve these problems.
  • SUMMARY OF THE INVENTION
  • An object of this invention is to provide a process that produces a composition that can be used to polymerize monomers into at least one polymer.
  • Another object of this invention is to provide said composition.
  • Another object of this invention is to provide a process to polymerize monomers into at least one polymer using said composition.
  • Another object of this invention is to provide a manufacture that comprises at least one said polymer.
  • Another object of this invention is to provide a machine that comprises at least one said manufacture.
  • In accordance with one embodiment of this invention, a process to produce a composition of matter is provided. Said process comprises (or optionally, consists essentially of, or consists of) contacting an organometal compound, a treated solid oxide compound, and an organoaluminum compound to produce said composition, wherein said composition consists essentially of (or optionally, consists of) a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound.
  • In accordance with another embodiment of this invention, a composition of matter is provided. Said composition consists essentially of a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound.
  • In accordance with another embodiment of this invention, a process to polymerize monomers into at least one polymer using said composition is provided. Said process comprises contacting said composition with monomers.
  • In accordance with another embodiment of this invention a manufacture is provided. Said manufacture comprises at least one said polymer.
  • In accordance with another embodiment of this invention a machine is provided. Said machine comprises at least two said manufactures.
  • These objects, and other objects, will become more apparent to those with ordinary skill in the art after reading this disclosure.
  • It should be noted that the phrase “consisting essentially of” means that the only other items (such as, for example, process steps, and other compounds) included within the scope of the claims are those items that do not materially affect the basic and novel characteristics of the claimed invention.
  • It should also be noted that the phrase “consisting of” means that the no other items (such as, for example, process steps, and other compounds) are included within the scope of the claims, except items that are impurities ordinarily associated with a composition, or items that are process steps ordinarily associated with a process.
  • DETAILED DESCRIPTION OF THE INVENTION
  • Organometal compounds used in this invention have the following general formula.

  • (X1)(X2)(X3)(X4)M1   FORMULA ONE:
  • In this formula, M1 is selected from the group consisting of titanium, zirconium, and hafnium. Currently, it is most preferred when M1 is zirconium.
  • In this formula (X1) is independently selected from the group consisting of (hereafter “Group OMC-I”) cyclopentadienyls, indenyls, fluorenyls, substituted cyclopentadienyls, substituted indenyls, such as, for example, tetrahydroindenyls, and substituted fluorenyls, such as, for example, octahydrofluorenyls.
  • The substituents on the substituted cyclopentadienyls, substituted indenyls, and substituted fluorenyls, can be aliphatic groups, cyclic groups, combinations of aliphatic and cyclic groups, and organometallic groups, as long as these groups do not substantially, and adversely, affect the polymerization activity of the composition. Additionally, hydrogen can be a substituent.
  • Suitable examples of aliphatic groups are hydrocarbyls, such as, for example, paraffins and olefins. Suitable examples of cyclic groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes. Additionally, alkylsilyl groups where each alkyl contains 1-12 carbon atoms, alkyl halide groups where each alkyl contains 1-12 carbon atoms, or halides, can also be used.
  • Suitable examples of such substituents are methyl, ethyl, propyl, butyl, tert-butyl, isobutyl, amyl, isoamyl, hexyl, cyclohexyl, heptyl, octyl, nonyl, decyl, dodecyl, 2-ethylhexyl, pentenyl, butenyl, phenyl, chloro, bromo, and iodo.
  • In this formula (X3) and (X4) are independently selected from the group consisting of (hereafter “Group OMC-II”) halides, aliphatic groups, cyclic groups, combinations of aliphatic and cyclic groups, and organometallic groups, as long as these groups do not substantially, and adversely, affect the polymerization activity of the composition.
  • Suitable examples of aliphatic groups are hydrocarbyls, such as, for example, paraffins and olefins. Suitable examples of cyclic groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes. Currently, it is preferred when (X3) and (X4) are selected from the group consisting of halides and hydrocarbyls, where such hydrocarbyls have from 1 to 10 carbon atoms. However, it is most preferred when (X3) and (X4) are selected from the group consisting of fluoro, chloro, and methyl.
  • In this formula, (X2) can be selected from either Group OMC-I or Group OMC-II.
  • When (X2) is selected from Group OMC-I, it should be noted that (X1) and (X2) can be joined with a bridging group, such as, for example, aliphatic bridging groups, cyclic bridging groups, combinations of aliphatic and cyclic bridging groups, and organometallic bridging groups, as long as the bridging group does not substantially, and adversely, affect the polymerization activity of the composition.
  • Suitable examples of aliphatic bridging groups are hydrocarbyls, such as, for example, paraffins and olefins. Suitable examples of cyclic bridging groups are cycloparaffins, cycloolefins, cycloacetylenes, and arenes. Additionally, it should be noted that silicon and germanium are also good bridging units.
  • Various processes are known to make these compositions. See, for example, U.S. Pat. Nos. 4,939,217; 5,210,352; 5,436,305; 5,401,817; 5,631,335, 5,571,880; 5,191,132; 5,480,848; 5,399,636; 5,565,592; 5,347,026; 5,594,078; 5,498,581; 5,496,781; 5,563,284; 5,554,795; 5,420,320; 5,451,649; 5,541,272; 5,705,478; 5,631,203; 5,654,454; 5,705,579; and 5,668,230; the entire disclosures of which are hereby incorporated by reference.
  • Specific examples of such compositions are as follows:
  • bis(cyclopentadienyl)hafnium dichloride;
  • bis(cyclopentadienyl)zirconium dichloride;
  • [ethyl(indenyl)2]hafnium dichloride;
  • [ethyl(indenyl)2]zirconium dichloride;
  • [ethyl(tetrahydroindenyl)2]hafnium dichloride;
  • [ethyl(tetrahydroindenyl)2]zirconium dichloride;
  • bis(n-butylcyclopentadienyl)hafnium dichloride;
  • bis(n-butylcyclopentadienyl)zirconium dichloride;
  • ((dimethyl)(diindenyl)silane)zirconium dichloride;
  • ((dimethyl)(diindenyl)silane)hafnium dichloride:
  • ((dimethyl)(ditetrahydroindenyl)silane)zirconium dichloride;
  • ((dimethyl)(di(2-methyl indenyl))silane)zirconium dichloride; and
  • bis(fluorenyl)zirconium dichloride.
  • Organoaluminum compounds have the following general formula.

  • Al(X5)n(X6)3−n   FORMULA TWO:
  • In this formula (X5) is a hydrocarbyl having from 1-20 carbon atoms. Currently, it is preferred when (X5) is an alkyl having from 1 to 10 carbon atoms. However, it is most preferred when (X5) is selected from the group consisting of methyl, ethyl, propyl, butyl, and isobutyl.
  • In this formula (X6) is a halide, hydride, or alkoxide. Currently, it is preferred when (X6) is independently selected from the group consisting of fluoro and chloro. However, it is most preferred when (X6) is chloro.
  • In this formula “n” is a number from 1 to 3 inclusive. However, it is preferred when “n” is 3.
  • Examples of such compounds are as follows:
  • trimethylaluminum;
  • triethylaluminum;
  • tripropylaluminum;
  • diethylaluminum ethoxide;
  • tributylaluminum;
  • triisobutylaluminum hydride;
  • triisobutylaluminum; and
  • diethylaluminum chloride.
  • Currently, triethylaluminum is preferred.
  • The treated solid oxide compounds are compounds that have had their Lewis acidity increased. It is preferred when said treated solid oxide compound comprises oxygen and at least one element selected from the group consisting of groups 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15 of the periodic table, including lanthanides and actinides (See Hawley's Condense Chemical Dictionary, 11th Edition). However, it is preferred when the element is selected from the group consisting of Al, B, Be, Bi, Cd, Co, Cr, Cu, Fe, Ga, La, Mn, Mo, Ni, Sb, Si, Sn, Sr, Th, Ti, V, W, P, Y, Zn and Zr. It is important that these treated solid oxide compounds have electron withdrawing ability, while not wanting to be bound by theory, it is believed that a treated solid oxide compound should have a higher Lewis acidity compared to the untreated solid oxide compound. However, it is hard to accurately measure the Lewis acidity of these treated, and untreated solid oxide compounds so other methods have been used. Currently, comparing the activities of treated, and untreated solid oxide compounds under acid catalyzed reactions is preferred.
  • Treated solid oxide compounds can be produced in a variety of ways, such as, for example, by gelling, co-gelling, or impregnation of one compound onto another, followed by calcination.
  • In general, it is preferred to contact at least one solid oxide compound, such as, for example, alumina, zirconia, titania, and mixtures thereof or with mixture with other solid oxides such as, for example, silica alumina, with at least one electron-withdrawing anion source compound, to form a first mixture, followed by calcining this first mixture to form a treated solid oxide compound. In the alternative, a solid oxide compound and an electron-withdrawing anion source compound can be contacted and calcined simultaneously. The electron-withdrawing anion source compound is any compound that increases the Lewis acidity of the solid oxide under the conditions given herein for producing the treated solid oxide compound. These electron-withdrawing anion source compounds increase the Lewis acidity of the solid oxide by contributing to the formation of an electron withdrawing anion, such as, for example, sulfates, halides, and triflate. It should be noted that one or more different electron withdrawing anions can be used.
  • The acidity of the solid oxide compound can be further enhanced by using two, or more, electron-withdrawing anion source compounds in two, or more, separate contacting steps. An example of such a process is contacting at least one solid oxide compound with a first electron-withdrawing anion source compound to form a first mixture, followed by calcining this first mixture, followed by contacting with a second electron-withdrawing anion source compound to form a second mixture, followed by calcining said second mixture to form a treated solid oxide compound. It should be noted that the first and second electron-withdrawing anion source compounds can be the same, but are preferably different.
  • Suitable examples of solid oxide compounds include, but are not limited to, Al2O3, B2O3, BeO, Bi2O3, CdO, Co3O4, Cr2O3, CuO, Fe2O3, Ga2O3, La2O3, Mn2O3, MoO3, NiO, P2O5, Sb2O5, SiO2, SnO2, SrO, ThO2, TiO2, V2O5, WO3, Y2O3, ZnO, ZrO2: and mixtures thereof, such as, for example, silica-alumina and silica-zirconia. It should be noted that solid oxide compounds that comprise Al—O bonds are currently preferred.
  • It is important that the solid oxide compound is also calcined. This calcining can be conducted in an ambient atmosphere, preferably a dry ambient atmosphere, at a temperature in the range of about 200° C. to about 900° C., and for a time in the range of about 1 minute to about 100 hours. Currently, temperatures from about 400° C. to about 800° C. and a time in the range of about 1 hour to about 10 hours, are preferred.
  • Treated solid oxide compounds, should have pore volumes greater than about 0.01 cc/g, preferably greater than about 0.1 cc/g, and most preferably, greater than about 1 cc/g.
  • Treated solid oxide compounds should have surface areas greater that about 1 m2/g, preferably greater than 100 m2/g, and most preferably greater than 200 m2/g.
  • The compositions of this invention can be produced by contacting an organometal compound, an treated solid oxide compound, and an organoaluminum compound, together. This contacting can occur in a variety of ways, such as, for example, blending. Furthermore, each of these compounds can be fed into the reactor separately, or various combinations of these compounds can be contacted together before being further contacted in the reactor, or all three compounds can be contacted together before being introduced into the reactor. Currently, one method is to first contact the organometal compound and the treated solid oxide compound together, for about 1 minute to about 24 hours, preferably, about 1 minute to about 1 hour, at a temperature from about 10° C. to about 200° C., preferably about 25° C. to about 100° C., to form a first mixture, and then contact this first mixture with an organoaluminum compound to form the composition. During contacting, or after contacting, the mixtures or the composition can be calcined. This calcining can be conducted in an ambient atmosphere, preferably a dry ambient atmosphere, at a temperature in the range of about 300° C. to about 900° C., and for a time in the range of about 1 minute to about 100 hours. Currently, temperatures from about 500° C. to about 700° C. and a time in the range of about 1 hour to about 10 hours, are preferred. Currently, it is preferred to use dry nitrogen as the ambient atmosphere.
  • After contacting, the composition consists essentially of, (or consists of) a post-contacted organometal compound, a post-contacted treated solid oxide compound, and optionally, a post-contacted organoaluminum compound. It should be noted that the post-contacted treated solid oxide compound is the majority, by weight, of the composition. Since the exact order of contacting is not known, it is believed that this terminology best describes the composition's components.
  • The composition of this invention has an activity greater than a composition that uses the same organometal compound, and the same organoaluminum compound, but uses untreated Ketjen grade B alumina (see comparative examples 4, 5, and 6) instead of the treated solid oxide compounds of this invention. This activity is measured under slurry polymerization conditions, using isobutane as the diluent, and with a polymerization temperature of 50-150° C., and an ethylene pressure of 400-800 psig. The reactor should have substantially no indication of any wall scale, coating or other forms of fouling.
  • However, it is preferred if the activity is greater than 100 grams polyethylene per gram of treated solid oxide compound per hour (hereafter “gP/(gS·hr)”), more preferably greater than 250, even more preferably greater than 500, even more preferably greater than 1000, and most preferably greater than 2000. This activity is measured under slurry polymerization conditions, using isobutane as the diluent, and with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig. The reactor should have substantially no indication of any wall scale, coating or other forms of fouling.
  • These compositions are often sensitive to hydrogen and sometimes incorporate comonomers well, and usually produce polymers with a low HLMI/MI ratio.
  • One of the important aspects of this invention is that no aluminoxane needs to be used in order to form the composition. This also means that no water is needed to help form such aluminoxanes. This is beneficial because water can sometimes kill a polymerization process. Additionally, it should be noted that no borate compounds need to be used in order to form the composition. In summary, this means that the composition, which is heterogenous, and which can be used for polymerizing monomers, can be easily and inexpensively produced because of the substantial absence of any aluminoxane compounds or borate compounds. Additionally, no organochromium needs to be added, nor any MgCl2 needs to be added to form the invention.
  • The monomers useful in this invention, are unsaturated hydrocarbons having from 2 to 20 carbon atoms. Currently, it is preferred when the monomer is selected from the group consisting of ethylene, propylene, 1-butene, 3-methyl-1-butene, 1-pentene, 3-methyl-1-pentene, 4-methyl-1-pentene, 1-hexene, 3-ethyl-1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, and mixtures thereof. However, when a homopolymer is desired, it is most preferred to use ethylene, or propylene, as the monomer. Additionally, when a copolymer is desired, it is most preferred to use ethylene and hexene as the monomers.
  • Processes that can polymerize monomers into polymers are known in the art, such as, for example, slurry polymerization, gas phase polymerization, and solution polymerization. It is preferred to perform a slurry polymerization in a loop reactor. Furthermore, it is even more preferred to use isobutane as the diluent in a slurry polymerization. Examples of such technology can be found in U.S. Pat. Nos. 4,424,341; 4,501,885; 4,613,484; 4,737,280; and 5,597,892; the entire disclosures of which are hereby incorporated by reference.
  • It should be noted that under slurry polymerization conditions these compositions polymerize ethylene alone, or ethylene with a 1-olefin, or propylene very well. In particular, the compositions used in this process produce good quality polymer particles without substantially fouling the reactor. When the composition is to be used in a loop reactor under slurry polymerization conditions, it is preferred when the particle size of the solid mixed oxide compound is in the range of about 10 to about 1000 microns, preferably 25 to 500 microns, and most preferably, about 50 to about 200 microns, for best control during polymerization.
  • After the polymers are produced, they can be formed into various manufactures, such as, for example, household containers and utensils, drums, fuel tanks, pipes, geomembranes, and liners. Various processes can form these manufactures. Usually, additives and modifiers are added to the polymer in order to provide desired effects. It is believed that by using the invention described herein, manufactures can be produced at a lower cost, while maintaining most, if not all, of the unique properties of polymers produced with metallocene catalysts.
  • Additionally, these manufactures can be part of a machine, such as, for example, a car, so that the weight of the car will be less, with the attended benefits thereof.
  • Examples
  • These examples provide additional information to a person skilled in the art. These examples are not meant to be construed as limiting the scope of the claims.
  • Description of the Polymerizations Runs
  • All polymerization runs were conducted in a steel reactor that had a volume of 2.2 liters. This reactor was equipped with a marine stirrer. During the polymerizations this stirrer was set to run at 400 rpm. This reactor was also surrounded by a steel jacket that was connected to a steel condenser. The steel jacket contained methanol that was boiling. The boiling point of the methanol was controlled by varying the nitrogen pressure that was applied to the steel condenser and the steel jacket. This control method permitted precise temperature control (±0.5° C.).
  • First, a treated, or untreated, solid oxide compound was charged, under nitrogen, to the reactor, which was dry. Second, organometal compound solution was added to the reactor by syringe. Third, 0.6 liters of isobutane was charged to the reactor. Fourth, organoaluminum compound was added midway during the isobutane addition. Fifth, 0.6 liters of isobutane was charged to the reactor. Sixth, ethylene was added to the reactor to equal 550 psig pressure. Seventh, the reactor was heated to 90° C. This pressure was maintained during the polymerization. During polymerization, stirring continued for the specified time. Activity was determined by recording the flow of ethylene into the reactor to maintain pressure. Seventh, after the specified time, the ethylene flow was stopped and the reactor slowly depressurized. Eighth, the reactor was opened to recover a granular polymer powder.
  • In all inventive runs, the reactor was clean with no indication of any wall scale, coating or other forms of fouling. The polymer powder was removed and weighed. Activity was specified as grams of polymer produced per gram of treated, or untreated, solid oxide compound charged per hour.
  • In some cases the treated solid oxide compound and the organometal compound were first pre-contacted, in the reactor, for about half an hour at 90° C. in one liter of isobutane before the organoaluminum compound and ethylene were added to the reactor.
  • Preparation of Solid Oxides
  • Silica, grade 952, having a pore volume of 1.6 cc/g and a surface area of about 300 square meters per gram was obtained from W. R. Grace. About 10 grams of this material was placed in a 1.75 inch quartz tube, which was fitted at the bottom with a sintered quartz. While the silica was supported on the disk, dry air was blown up through the disk at the linear rate of about 1.6 to 1.8 standard cubic feet per hour. An electric furnace around the quartz tube was then turned on and the temperature was raised at the rate of 400° C. per hour to a temperature of 600° C. At that temperature, the silica was allowed to fluidize for three hours in the dry air. Afterward, the silica was collected and stored under dry nitrogen.
  • Some alumina samples were also prepared by the procedure described in the silica preparation. A commercial alumina sold by AKZO Company as Ketjen grade B alumina was obtained, having a pore volume of about 1.78 cc/g and a surface area of around 340 square meters per gram. The temperatures used in the preparation of these aluminas were 400° C., 600° C., and 800° C.
  • A silica-alumina was also obtained from W. R. Grace (MS 13-110 containing 13% alumina and 87% silica). This silica-alumina had a pore volume of 1.2 cc/g and a surface area of about 300 square meters per gram. This silica-alumina was prepared as described in the silica preparation. The temperature used in the preparation of this silica-alumina was 600° C.
  • A silica-titania was obtained by co-gellation as described in U.S. Pat. No. 3,887,494 (“Deitz”). Titanyl sulfate was dissolved in concentrated sulfuric acid, to form a first mixture. Afterwards, a sodium silicate solution was slowly added, with vigorous stirring, to this first mixture, to form a second mixture. When the pH of the second mixture reached about 6, this second mixture gelled into a homogenous, substantially-clear first product. This first product was then aged, at 80° C. and a pH 7, for three hours, followed by washing it nine times with water, and two times in 1% ammonium nitrate, to form a second product. This second product, which was a gel, was then azeotropically dried in ethyl acetate, to form a third product. This third product contained 8% titanium. It also had a surface area of 450 square meters per gram and a pore volume of 2.0 cc/g. This silica-titania was then prepared as described in the silica preparation. The temperature use in the preparation of this silica-titania was 600° C.
  • An alumino-phosphate was prepared according to U.S. Pat. No. 4,364,855 (McDaniel). Aluminum nitrate (380 grams) and mono-ammonium phosphate (94 grams) was dissolved in deionized water to form a first mixture. About 170 milliliters of ammonium hydroxide was then added to this first mixture to form a second mixture. At a pH of about 8 this second mixture gelled to form a first product. This first product was then washed twice in water, and once in n-propanol, before drying overnight at 80° C. under a vacuum, to form a second product. This second product contained a phosphorus to aluminum molar ratio of 0.8, a pore volume of 2.1 cc/g, and a surface area of 250 square meters per gram. This alumino-phosphate was then prepared as described in the silica preparation. The temperature use in the preparation of this alumina-phosphate was 600° C.
  • Comparative Examples 1-2
  • These examples demonstrate that an organometal compound contacted with an organoaluminum compound, provides little, if any, polymerization activity.
  • A polymerization run was made as described earlier. First, an organometal compound was added to the reactor (2 ml of bis(n-butylcyclopentadienyl)zirconium dichloride solution containing 0.5 grams per 100 ml of toluene). Second, half of the isobutane was then added to the reactor. Third, 2 ml of 15 weight percent triethyl aluminum for example 1, or 2 ml of 25 weight percent ethyl aluminum dichloride (EADC) for example 2, were added to the reactor. Fourth, the other half of the isobutane was added to the reactor.
  • Ethylene was then added to the reactor but no polymerization activity was observed. After one hour of contacting, the reactor was depressurized and opened.
  • In each case, no polymer was found. These results are shown in Table-I.
  • Comparative Examples 3-9
  • These examples demonstrate that contacting a solid oxide compound, with an organometal compound, and with an organoaluminum compound, provided little, if any, polymerization activity.
  • Each of the solid oxide compounds described earlier was added to the reactor, followed by an organometal compound (2 ml of bis(n-butylcyclopentadienyl)zirconium dichloride solution (0.5 grams per 100 ml of toluene), and then the organoaluminum compound (triethylaluminum). These examples are shown in Table-I.
  • The first two examples show that contacting an organometal compound with an organoaluminum compound provides little, if any, polymerization activity. The silica example produced almost no polymer. Alumina, which is regarded as more acidic than silica, produced more polymer, but still the activity was very low. The alumino-phosphate, silica-alumina, and silica-titania supports exhibited only marginal activity. Activity is expressed in Table-I as gP/(gS·hr).
  • Comparative Example 10
  • A solution was made of 244 grams of ammonium sulfate dissolved in water to equal 437 mls total. Then 100 mls of this solution was impregnated onto 33.2 grams of W. R. Grace grade 952 silica. The wet mixture was dried in a vacuum oven at 110° C. for 12 hours. This is equivalent to 12.7 mmol of sulfate per gram of silica. The dried material was ground through a 35 mesh screen, then calcined in air at 400° C. according to the procedure described earlier. It was found to have a pore volume of 1.22 cc/g and a surface area of 223 square meters per gram. A sample of this material was then tested for ethylene polymerization activity as described earlier. It produced no polymer. This experiment is shown in Table II as example 10.
  • Examples 11-12
  • 122 mls of the above ammonium sulfate solution was impregnated onto 40.6 grams of Ketjen grade B alumina. The wet mixture was dried in a vacuum oven at 110° C. for 12 hours. This is equivalent to 12.7 mmol of sulfate per gram of uncalcined alumina. The dried material was then ground through a 35 mesh screen and calcined in air at 400° C. according to the procedure described above. It was found to have a pore volume of only 0.25 cc/g and a surface area of only 38 square meters per gram. A sample of this material was then tested for ethylene polymerization activity as described earlier. Despite the very low porosity it still produced 33 g/g/h of polymer. This experiment is shown in Table II as example 11.
  • This same material was then calcined again in air at 750° C. as described earlier, and retested for polymerization activity. This time it provided 583 g/g/h of polymer. This is quite remarkable considering the very low surface area. The polymer was found to have a melt index of 0.15 and a high load melt index of 3.24. This experiment is shown in Table II as example 12.
  • Example 13A, B, C
  • Ketjen B alumina was first calcined in air at 600° C. as described earlier. Then 11.1 grams of this material was slurried with 30 mls of isopropanol mixed with 1.73 grams of sulfuric acid. This is equivalent to 1.6 mmol of sulfate per gram of calcined alumina. The isopropanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in air at 550° C. as described earlier. A sample of this material was then tested for ethylene polymerization. It yielded 1387 g/g/h of polymer. This experiment is shown in Table II as example 13A.
  • The earlier procedure Ketjen B alumina was first calcined in air at 600° C., then 5.9 grams of this material was slurried with 15 mls of isopropanol mixed with 0.453 grams of sulfuric acid. This is equivalent to 1.6 mmol of sulfate per gram of calcined alumina. The isopropanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in air at 550° C. as described earlier. It was found to have a pore volume of 0.93 cc/g and a surface area of 205 square meters per gram. A sample of this material was then tested for ethylene polymerization. It yielded 324 g/g/h of polymer. This experiment is shown in Table II as example 13B.
  • This material was then calcined again at 800° C. for three hours in air as described earlier. It was found to have a pore volume of 1.03 cc/g and a surface area of 236 square meters per gram. It provided activity of 58 g/g/h polymer. This experiment is shown in Table II as example 13C.
  • Examples 14A, B and 15
  • The procedure of example 11 was repeated except that 33.14 grams of Ketjen B alumina was impregnated with 11.60 grams of ammonium sulfate and then it was calcined at 550 C. The results of testing are shown in Table II as example 14A. During this run the sulfated alumina and metallocene were precontacted in the reactor for 32 minutes at 90 C before other ingredients were introduced to begin the run. Polymer produced in this run was found to have a MI of 0.21, a HLMI of 3.5, giving a shear ratio of 16.7. Gel permeation chromatography of the polymer indicated Mw=168,000, Mn=67,900 and Mw/Mn=2.5. After calcining the sulfated alumina was found to have a surface area of 284 square meters per gram and a pore volume of 0.67 cc/g and an average pore radius of 94 angstroms.
  • The above sulfated alumina (14A) was then calcined in air at 650 C for three hours and tested again for polymerization. Again the sulfated alumina and the metallocene werre precontacted for 30 minutes at 90 C. Details of the run are shown in Table II as example 14B. This material was found to have a surface area of 305 square meters per gram, a pore volume of 0.9 cc/g, and an average pore volume of 110 angstroms.
  • Another sample of sulfated alumina was made by the same proceedure as example 14A except that 26.9 g of Ketjen B alumina was inpreganated with 5.41 g of ammonium sulfate. Calcination was at 550 C. It was found to have a surface area of 352 square meters per gram, a pore volume of 0.93 cc/g, and an average pore radius of 106 angstroms. Details of the polymertization are given in Table II as example 15.
  • Comparative Example 16
  • A solution of 2.0 grams of concentrated sulfuric acid in 200 mls of isopropanol was made. Ketjen B alumina was calcined in air at 600° C. as described earlier. Then 6.34 grams of this material was slurried with 16 mls of the solution. This is equivalent to 0.26 mmol of sulfate per gram of calcined alumina. The isopropanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in air at 500° C. as described earlier. It was found to have a pore volume of 0.95 cc/g and a surface area of 213 square meters per gram. A sample of this material was then tested for ethylene polymerization. It yielded 6 g/g/h of polymer. This experiment is shown in Table II as example 16.
  • Example 17
  • A silica-alumina was obtained from W. R. Grace under the commercial name of MS13-110. It's properties and activity have already been described earlier. It was impregnated with sulfuric acid as described above in example 16 to contain 1.6 mmol sulfate per gram. It was then calcined in air at 600° C. as described earlier. A sample of this material was then charged to the reactor along with the metallocene and isobutane and stirred for 32 minutes at 90° C. before ethylene was added. It yielded 82 g/g/h of polymer. This experiment is shown in Table II as example 17.
  • Example 18
  • A solution of 0.5 grams of ammonium bifluoride in 30 mls of methanol was added to 4.5 grams of Ketjen grade B alumina which had been calcined in air at 600° C. as described earlier. This moistened the alumina just beyond the point of incipient wetness. This is equivalent to 3.90 mmol of fluoride per gram of calcined alumina. The methanol was then evaporated off under nitrogen with heat. The dry solid was then calcined in nitrogen at 500° C. as described earlier. A sample of this material was then tested for ethylene polymerization. It yielded 927 g/g/h of polymer. This experiment is shown in Table III as example 18.
  • Examples 19-21
  • The procedure described in example 18 was repeated except that the final calcination was accomplished at 250° C., 400° C., and 600° C. Each was tested for polymerization activity and the results are shown in Table III as examples 19, 20, and 21.
  • Example 22
  • The procedure described in example 18 was repeated except that uncalcined Ketjen B alumina was impregnated with 5.80 mmol per gram of fluoride. After calcination at 500° C. it was tested for polymerization activity and the result are shown in Table III as example 22.
  • Example 23-24
  • W. R. Grace grade HPV alumina was calcined at 600° C. in air three hours, giving a material of surface area around 500 square meters per gram and pore volume of about 2.8 cc/g. 3.36 grams of this material was heated under fluidizing nitrogen to 600° C. Then 5.0 mls of perfluorohexane was injected into the nitrogen upstream from the alumina. Over the next 15 minutes the perfluorohexane evaporated at room temperature into the nitrogen and was then carried up through the fluidizing bed of alumina, where it reacted. This exposure would be equivalent to about 55 mmol of fluoride per gram of alumina if all of the fluoride reacted (which was obviously not the case). The alumina turned black, presumably due to carbon deposited on it. This material was then tested for polymerization activity when a sample was charged to the reactor with the metallocene at 90° C. After 30 minutes of stirring, triethyl aluminum and ethylene were added and the sample was found to provide 1266 g/g/h of polymer. Details are shown in Table III as example 23.
  • This material was then recalcined in air at 600° C. for three hours to burn off residual carbon. The black color turned back to white. It was then tested for polymerization activity when a sample of it was added to the reactor along with metallocene and triethyl aluminum, followed immediately by ethylene. It provided an activity of 2179 g/g/h of polymer. Details are shown in Table III as example 24.
  • Examples 25-26
  • Ketjen Grade B alumina was calcined in air for three hours at 600° C. as described in example 5. 9.29 grams of this alumina was charged to a dry quartz activator tube and fluidized in carbon monoxide at 600° C. Then 4.5 mls of methyl bromide was injected upstream into the carbon monoxide. During the next 30 minutes the methyl bromide was warmed with an electric heater causing it to evaporate and be carried by the carbon monoxide gas through the fluidizing alumina bed at 600° C. After this treatment the alumina was black, presumably from carbon deposits. A sample was tested for polymerization activity and found to give 223 g/g/h of polymer. In a second similar run it was found to give 181 g/g/h of polymer. These two runs are shown in Table IV as examples 25 and 26.
  • Example 27
  • Ketjen Grade B alumina was calcined in air for three hours at 600° C. as described in example 5. 9.82 grams of this alumina was charged to a dry quartz activator tube and fluidized in carbon monoxide at 600° C. Then 1.0 mls of bromine liquid was injected upstream into the carbon monoxide which slowly evaporated and was carried through the fluidizing alumina bed at 600° C. After this treatment the alumina was white. A sample was tested for polymerization activity and found to give 106 g/g/h of polymer. This run is shown in Table IV as example 27.
  • Examples 28-31
  • Ten mls of Ketjen Grade B alumina was calcined in air for three hours at 600° C. as described in example 5. After this calcining step, the furnace temperature was lowered to 400° C. and 1.0 ml of carbon tetrachloride was injected into the nitrogen stream and evaporated upstream from the alumina bed. It was carried into the bed and there reacted with the alumina to chloride the surface. This is equivalent to approximately 15.5 mmol chloride per gram of dehydrated alumina. After this treatment the alumina was white. A sample was tested for polymerization activity. In addition to the ethylene, 50 mls of 1-hexene was also added to the reactor as a comonomer. This material gave 939 g/g/h of copolymer having the following properties: melt index of 0.63, high load melt index of 10.6, shear ratio of 16.7, density of 0.9400, weight average MW of 126,000, number average MW of 50,200, and polydispersity of 2.5. This run in shown in Table V as example 28.
  • This chlorided alumina was run again but without the hexene and the details are shown in Table V as example 29. It produced 1019 g/g/h of polymer having the following properties: melt index of 0.15, high load melt index of 2.68, shear ratio of 17.9, density of 0.9493, weight average MW of 202,000, number average MW of 62,400, and polydispersity of 3.2.
  • In a similar experiment, 7.3 grams of Ketjen Grade B alumina already calcined at 600° C. in air, was treated with 0.37 mls of carbon tetrachloride vapor in nitrogen at 400° C. This is equivalent to approximately 2.4 mmol chloride per gram of calcined alumina. This material provided 146 g/g/h activity and is shown in Table V as example 30.
  • In yet another similar experiment, the procedure of example 29 was repeated except that 6.2 grams of 600° C. calcined alumina was treated with 5.0 mils of carbon tetrachloride at 400° C., which is approximately equivalent to 37.6 mmol chloride per gram. This material yielded 1174 g/g/h activity and is shown in Table V as example 31.
  • Examples 32-35
  • Three other samples of Ketjen Grade B alumina were also calcined at 600° C. in air as described in the above examples and then treated with various amounts of carbon tetrachloride at various temperatures. Table V shows the results of these experiments as examples 32, 33, and 34. In example 33 the treatment was done in carbon monoxide gas instead of nitrogen.
  • The catalyst of example 33 was retested for polymerization activity but with the following variation. Instead of charging all ingredients to the reactor and immediately starting the run, the oxide and the meta11ocene were charged with the isobutane first and allowed to contact each other for 37 minutes at 90° C. before the cocatalyst and ethylene were added to begin the run. This run is shown in Table V as example 35.
  • Example 36
  • W. R. Grace Grade HPV alumina was calcined in air for three hours at 600° C., yielding a surface area of approximately 500 square meters per gram and a pore volume of about 2.8 cc/g. 5.94 grams of this alumina was then treated with 5.0 mils of carton tetrachloride in nitrogen at 600° C. Results of polymerization testing are shown in Table V as example 36.
  • Example 37
  • W. R. Grace Grade MS13-110 silica-alumina was calcined in air for three hours at 600° C., as described in example 8 above. 11.2 grams then treated with 2.8 mils of carton tetrachloride in nitrogen at 600° C. Results of polymerization testing are shown in Table V as example 37.
  • Example 38
  • 6.96 grams of Ketjen Grade B alumina which had been calcined at 400° C. in air for three hours was charged to a dry activator tube and heated under nitrogen to 400° C. 2.1 mils of silicon tetrachloride was then injected into the nitrogen upstream from the alumina. As it evaporated it was carried up through the alumina bed, reacting and chloriding the surface. When tested for polymerization activity this material provided 579 g/g/h of polymer having a melt index of 0.20, a high load melt index of 3.58, and a shear ratio of 17.9. Details of the polymerization test are shown in Table VI as example 38.
  • Example 39
  • 8.49 grams of Ketjen Grade B alumina which had been calcined at 600° C. in air for three hours was charged to a dry activator tube and heated under nitrogen to 300° C. 2.8 mils of thionyl chloride was then injected into the nitrogen upstream from the alumina. As it evaporated it was carried up through the alumina bed, reacting and chloriding the surface. When tested for polymerization activity this material provided 764 g/g/h of polymer having a melt index of 0.13, a high load melt index of 2.48, and a shear ratio of 18.6. Details of the polymerization test are shown in Table VI as example 39.
  • Example 40
  • 7.63 grams of Ketjen Grade B alumina which had been calcined at 400° C. in air for three hours was charged to a dry activator tube and heated under dry air to 300° C. 2.55 mls of sulfuryl chloride was then injected into the air upstream from the alumina. As it evaporated over a period of about 45 minutes at room temperature it was carried up through the alumina bed, reacting and chloriding the surface. When tested for polymerization activity this material provided 459 g/g/h of polymer having a melt index of 0.11, a high load melt index of 2.83, and a shear ratio of 25.6. Details of the polymerization test are shown in Table VI as example 40.
  • Comparative Examples 41-43 and Examples 44-45
  • 2.6955 grams of solid aluminum trichloride was added to the reactor along with 2.0 mls of 15% triethyl aluminum and 2.0 mls of the metallocene solution used in previous experiments. Isobutane and ethylene were added as in previous runs. However, no activity was observed. This run is summarized in Table 6 as example 41. The experiment was then repeated but with less aluminum trichloride in the reactor, but again no activity was observed. This was example 42. Thus AlCl3 itself does not function as an activator for metallocenes. There is a distinct difference between aluminum trichloride and chlorided alumina.
  • In the following example aluminum trichloride was deposited onto the surface of dehydrated alumina in order to give it a higher surface area. 1.4 grams of anhydrous aluminum trichloride was dissolved in 100 mls of dichloromethane. This solution was then added to 6 grams of Ketjen Grade B alumina which had been calcined at 600° C. in air for three hours. The dichloromethane was evaporated under nitrogen at 60° C. A sample of this material was then tested for polymerization activity (example 43) but it had little. The material was then heated under nitrogen to 250° C. for one hour and retested for polymerization activity (example 44). This time some activity was detected. Next the material was again heated under nitrogen to 400° C. for one hour and retested for polymerization activity (example 45) and activity was observed.
  • Comparative Examples 46 and 48 and Example 47
  • In another experiment 3.5 grams of Ketjen Grade B alumina calcined at 600° C. was treated with 10 mls of 25% ethyl aluminum dichloride (EADC) at 60° C. for 10 minutes, then rinsed twice to remove any unreacted EADC. When tested for polymerization activity (first without, then with cocatalyst), none was observed (example 46). The material was then heated under nitrogen for 1 hour at 200° C. and retested (example 47). Some activity was observed.
  • In a similar experiment 4.31 grams of Ketjen Grade B alumina calcined at 400° C. was treated with 30 mls of 25 wt % diethyl aluminum chloride (DEAC) at 90° C. for 30 minutes. The excess DEAC was decanted and the solid washed three times in dry heptane. It was then dried at 100° C. under nitrogen and tested for polymerization activity (example 48). It exhibited 29.g/g/h activity.
  • Comparative Example 49
  • A 2.26 gram sample of Davison 952 silica which had previously been calcined in dry air for three hours at 600° C. was impregnated to the point of incipient wetness with 3.4 mls of trifluoromethane sulfonic acid (95.7% pure). The procedure was done under nitrogen in a flask. This material was then mixed with 8.96 grams of Ketjen Grade B alumina which had previously been calcined in dry air for three hours at 600° C. The resulting solid material was 79.9% by weight alumina, 29.1% by weight silica. This procedure was done in a dry activator tube on a fluidized bed in nitrogen. The mixture was heated to 193° C.-230° C. for three hours in nitrogen to allow the trifluoromethane sulfonic acid to evaporate and react with the alumina, which would give a triflouromethane sulfonic acid loading of 1 millimole per gram of the alumina. It was then tested for polymerization activity as described above except that the ethylene pressure was set at 450 psig instead of 550 psig and 25 mls of 1-hexene was added to the reactor. Results are shown in Table VII.
  • Example 50
  • The solid oxide from example 49 was then heated under nitrogen to 400° C. for an additional three hours to further encourage distribution and reaction of the triflic acid. It was then tested for polymerization activity as described above except that the ethylene pressure was set at 450 psig instead of 550 psig and 25 mls of 1-hexene was added to the reactor. Results are shown in Table VII.
  • Example 51
  • The solid oxide from example 50 was again heated under nitrogen to 600° C. for an additional three hours to further encourage distribution of the triflic acid. It was then tested for polymerization activity as described above except that the ethylene pressure was set at 450 psig instead of 550 psig and 25 mls of 1-hexene was added to the reactor. Results are shown in Table VII.
  • Example 52
  • A solution of 0.5 grams of ammonium bifluoride was dissolved in 30 mls of methanol and deposited onto a 4.5 gram sample of Ketjen Grade B alumina which had been calcined at 600° C. for three hours in air. This brought the solid just beyond the point of incipient wetness. The methanol was then evaporated off under a nitrogen purge on a hot plate and then transferred to an activator tube, where it was heated under nitrogen to 500° C. and held 2 hours. 1.89 grams of this material was then treated at 500 C under nitrogen with 0.5 mls of carbon tetrachloride injected into the gas stream. A sample was then tested for polymerization activity with metallocene and 2.0 mls of triethyl aluminum cocatalyst. It generated 3132 g/g/h of polymer. Details are listed in Table VIII.
  • Example 53-54
  • 6.18 grams of W. R. Grace Grade HPV alumina which had been calcined at 600° C. for three hours in air yielding a surface area of approximately 500 square meters per gram and a pore volume of about 2.8 cc/g, was transferred to a dry activator tube and heated under nitrogen to 600° C. 0.24 mls of perfluorohexane was then injected into the nitrogen stream ahead of the furnace. The liquid evaporated and was carried up through the alumina bed, fluoriding its surface. Then 1.55 mls of carbon tetrachloride was injected into the nitrogen stream and carried into the alumina bed at 600° C. The temperature was cooled to 25° C. and the resultant fluorided-chlorided alumina was stored under nitrogen. A small sample of this material was then tested for polymerization activity with metallocene and triethyl aluminum. The activity, shown in example 53, was quite high, at 4390 g/g/h.
  • This material was then run again except that it was allowed to stir in isobutane with the metallocene at 90° C. for 30 minutes before the other ingredients were added. This procedure yielded 6298 g/g/h activity (example 54).
  • Example 55
  • Degussa Aluminoxid C, obtained by flame hydrolysis, was calcined at 600° C. in air for three hours. Then 2.74 grams of this calcined alumina was heated to 600° C. in air, into which 4.1 mls of perfluorohexane was injected. As the liquid evaporated, it was carried up by the air through the alumina bed. Afterwards the gas stream was switched from air to nitrogen and 1.0 ml of carbon tetrachloride was injected. After all had evaporated, the solid was cooled to room temperature and stored under dry nitrogen. A small sample was tested for polymerization activity with metallocene and cocatalyst as previously described. This material was found to yield 1383 g/g/h. Details are recorded in Table VIII.
  • Examples 56, 60-61, 63-64 and Comparative Examples 57-59, 62 65-66
  • A chlorided alumina was prepared identically to that in example 33. In each experiment a sample of the oxide was added to the reactor under nitrogen, then 2 mls of a solution of 0.5 grams of bis(n-butyl cyclopentadienyl) zirconium dichloride in 100 mls of toluene was added, then 0.6 liter of isobutane liquid, then 1 mmol of the cocatalyst (usually from a hexane solution) followed by another 0.6 liter of isobutane, and finally the ethylene was added after the reactor reached 90° C. Table IX shows the results of these experiments as examples 56 through 62.
  • A similar comparison of cocatalysts was made using an alumina which had been fluorided rather than chlorided according to the preparation used in example 21. These runs are shown in Table IX in examples 63 through 66.
  • Examples 67-71
  • In each run below the fluorided chlorided alumina used in example 50 was charged to the reactor, followed by 2 mls of a solution of 0.5 grams of the selected metallocene in 100 mls of toluene, followed by 0.6 liter of isobutane liquid, then 2.0 mls of 1M triethyl aluminum as cocatalyst, followed by another 0.6 liters of isobutane and finally the ethylene. These runs were made at 90° C., like all previous runs. Details are shown in Table X.
  • TABLE I
    Ex. # A1 ° C.2 S3 OAC4 P5 T6 A7
    18 None NA 0.0000 2 TEA 0 61.1 0
    2 None NA 0.0000 2 EADC 0 28.0 0
    3 Silica 600 0.5686 2 TEA 0.65 63.0 1
    4 Alumina 800 0.6948 1 TEA 2.7 30.7 8
    5 Alumina 600 0.2361 2 TEA 6.9 60.9 29
    6 Alumina 400 0.8475 1 TEA trace 57.2 0
    7 Alumino- 600 0.8242 1 TEA 45 66.0 50
    Phosphate (0.8)
    8 Silica- 600 0.3912 1 TEA 8.3 40.0 32
    Alumina
    9 Silica- 600 0.1392 2 TEA 0 60.0 0
    Titania
    Table-I Notes
    1This is the untreated solid oxide compound used.
    2This is the calcining temperature.
    3This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    4This is the amount, in milliliters of organoaluminum compound used and the type of organoaluminum used. The TEA was a 15 weight percent solution of triethylaluminum in heptane.
    5This is the amount of polymer produced in grams.
    6This is the amount of time used in minutes.
    7This is the activity in gP/(gS · hr).
    8The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE II
    Ex. # A1 S2 ° C.3 S4 OAC5 P6 T7 A7
    109 Silica 12.7 400 1.3360 2 0 30.0 0
    11 Alumina 12.7 400 1.5251 2 38.0 45.0 33
    12 Alumina 12.7 750 0.2994 2 174.5 60.0 583
    13A Alumina 1.6 550 0.3474 1 385.5 48.0 1387
    13B Alumina 0.8 550 0.7468 2 242.0 60.0 324
    13C Alumina 0.8 800 0.8004 2 34.8 45.0 58
    14A Alumina 2.7 550 0.0842 2 241 60 2862
    14B Alumina 2.7 650 0.0801 2 203 60 2534
    15 Alumina 1.5 550 0.0279 2 90 60 3226
    16 Alumina 0.26 500 0.7749 2 2.3 30.0 6
    17 Silica- 1.6 600 0.3318 1 19.0 42.0 82
    Alumina
    Table -II Notes
    1This is the solid oxide compound used.
    2This is the amount of sulfate used in mmols sulfate per gram of solid oxide.
    3This is the calcining temperature.
    4This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    5This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    6This is the amount of polymer produced in grams.
    7This is the amount of time used in minutes.
    8This is the activity in gP/(gS · hr).
    9The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE III
    Ex. # A1 S2 ° C.3 S4 OAC5 P6 T7 A8
    189 Alumina 3.90 500 0.8284 2 296.8 23.2 927
    19 Alumina 3.90 250 0.2542 2 7.6 40.0 45
    20 Alumina 3.90 400 0.2358 2 88.1 60.0 374
    21 Alumina 3.90 600 0.2253 2 281.6 60.0 1250
    22 Alumina 5.80 500 0.2563 1 243.9 60.0 952
    23 Alumina 55 500 0.2212 1 280.0 60.0 1266
    24 Alumina 55 600 0.0855 1 187.5 60.5 2179
    Table -III Notes
    1This is the solid oxide compound used.
    2This is the amount of fluoride used in mmols fluoride per gram of solid oxide.
    3This is the calcining temperature.
    4This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    5This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    6This is the amount of polymer produced in grams.
    7This is the amount of time used in minutes.
    8This is the activity in gP/(gS · hr).
    9The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE IV
    Ex. # A1 ° C.2 S3 OAC4 P5 T6 A7
    258 Alumina 600 0.2612 1 62.0 64.0 223
    26 Alumina 600 0.1688 1 38.0 74.6 181
    27 Alumina 600 0.2046 1 11.9 33.0 106
    Table -IV Notes
    1This is the solid oxide compound used.
    2This is the calcining temperature.
    3This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    4This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    5This is the amount of polymer produced in grams.
    6This is the amount of time used in minutes.
    7This is the activity in gP/(gS · hr).
    8The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE V
    Ex. # A1 S2 ° C.3 S4 OAC5 P6 T7 A8
    289 Alumina 15.5 400 0.1596 2 149.8 60.0 939
    29 Alumina 15.5 400 0.1166 2 121.8 61.5 1019
    30 Alumina 2.4 400 0.2157 2 28.8 55.0 146
    31 Alumina 37.6 400 0.1021 2 123.9 62.0 1174
    32 Alumina 11.7 250 0.4878 2 39.2 60.0 80
    33 Alumina 11.7 600 0.2058 2 351.5 63.0 1627
    34 Alumina 38.2 800 0.0488 1 30.6 46.5 809
    35 Alumina 11.7 600 0.1505 1 400.0 62.0 2572
    36 Alumina 39.3 600 0.0927 1 260.2 60.0 2807
    37 Silica- 11.7 600 0.0667 1 147.8 60.5 2198
    Alumina
    Table -V Notes
    1This is the solid oxide compound used.
    2This is the amount of chloride used in mmols chloride per gram of solid oxide.
    3This is the calcining temperature.
    4This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    5This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    6This is the amount of polymer produced in grams.
    7This is the amount of time used in minutes.
    8This is the activity in gP/(gS · hr).
    9The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE VI
    Ex. # A1 Treatment S2 OAC3 P4 T5 A6
    387 Alumina SiCl4 - 400° C. 0.2013 1 116.5 60.0 579
    39 Alumina SOCl2 - 300° C. 0.0793 1 62.0 61.4 764
    40 Alumina SO2Cl2 - 300° C. 0.3915 1 186.0 62.1 459
    41 none AlCl3 solid 2.6955 2 0 30.0 0
    42 none AlCl3 solid 0.0380 2 0 34.4 0
    43 Alumina AlCl3 - 80° C. 0.4264 2 4.3 28.0 22
    44 Alumina AlCl3 - 250° C. 0.3374 2 135.3 60.0 401
    45 Alumina AlCl3 - 400° C. 0.2335 1 74.9 60.0 322
    46 Alumina EtAlCl2 - 60° C. 0.8855 2 0 30.0 0
    47 Alumina EtAlCl2 - 200° C. 0.8943 2 122.9 49.0 168
    48 Alumina Et2AlCl - 90° C. 0.4263 1 4.9 24.0 29
    1This is the solid oxide compound used.
    2This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    3This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    4This is the amount of polymer produced in grams.
    5This is the amount of time used in minutes.
    6This is the activity in gP/(gS · hr).
    7The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE VII
    Ex. # A1 S2 ° C.3 S4 OAC5 P6 T7 A8
    49 Alumina 1.0 200 .0868 1 1.5 80.5 13
    50 Alumina 1.0 400 .1530 1 95.1 60.5 616
    51 Alumina 1.0 600 .0467 1 51.1 60.2 1090
    Table -VII Notes
    1This is the solid oxide compound used.
    2This is the amount of triflate used in mmols triflate per gram of solid oxide.
    3This is the calcining temperature.
    4This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    5This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    6This is the amount of polymer produced in grams.
    7This is the amount of time used in minutes.
    8This is the activity in gP/(gS · hr).
    9The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 450 psig ethylene, in 1.2 liters of isobutane, and in 25 mls of 1-hexene.
  • TABLE VIII
    EX. # A1 Treatment S2 OAC3 P4 R5 A6
    527 Alumina F/500 C. & Cl/500 C. 0.2822 2 294.6 20.0 3132
    53 Alumina F/600 C. & Cl/600 C. 0.0767 2 338.4 60.3 4390
    54 Alumina F/600 C. & Cl/600 C. 0.0967 2 304.5 30.0 6298
    55 Alumina F/600 C. & Cl/600 C. 0.1196 1 174.2 63.2 1383
    Table VIII Notes
    1This is the solid oxide compound used.
    2This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    3This is the amount, in milliliters, of TEA used. It was a 15 weight percent solution of triethylaluminum in heptane.
    4This is the amount of polymer produced in grams.
    5This is the amount of time used in minutes.
    6This is the activity in gP/(gS · hr).
    7The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE IX
    Ex. # A1 Treatment S2 CC3 P4 T5 A6
    567 Alumina Chlorided 0.1866 AlEt3 336.0 60.0 1800
    57 Alumina Chlorided 0.1958 GaMe3 0 60.0 0
    58 Alumina Chlorided 0.1878 ZnEt2 0 60.0 0
    59 Alumina Chlorided 0.1756 MgBu2 2.5 60.0 14
    60 Alumina Chlorided 0.1966 AlEt2H 52.6 60.0 268
    61 Alumina Chlorided 0.1777 Al(I-Bu)3 293 60.0 1649
    62 Alumina Chlorided 0.1840 LiHex 0 60.0 0
    63 Alumina Fluorided 0.2253 AlEt3 281.6 60.0 1250
    64 Alumina Fluorided 0.2181 AlMe3 154.2 60.0 707
    65 Alumina Fluorided 0.2307 AlEt2Cl 0 40.0 0
    66 Alumina Fluorided 0.2465 BEt3 0 30.0 0
    Table -IX Notes
    1This is the solid oxide compound used.
    2This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    3This is the amount, in milliliters, of cocatalyst used.
    4This is the amount of polymer produced in grams.
    5This is the amount of time used in minutes.
    6This is the activity in gP/(gS · hr).
    7The amount of organometal compound used was 25 micromoles. The type of organometal compound used was bis(n-butylcyclopentadienyl) zirconium dichloride. This organometal compound was in a solution that contained 0.5 grams of bis(n-butylcyclopentadienyl) zirconium dichloride per 100 milliliters of toluene. Additionally, these example were run at 90° C., under 550 psig ethylene, in 1.2 liters of isobutane.
  • TABLE X
    Metal-
    Ex. # A1 Treatment S2 locene6 P3 T4 A5
    67 Alumina F/Cl 600 C. 0.0212 A 141.3 63.3 6318
    68 Alumina F/Cl 600 C. 0.0170 B 31.1 66.3 1656
    69 Alumina F/Cl 600 C. 0.0213 C 15.8 64.2 693
    70 Alumina F/Cl 600 C. 0.1000 D 83.9 61.5 819
    Table -IX Notes
    1This is the solid oxide compound used.
    2This is the amount of solid oxide compound, in grams, being contacted with the other compounds.
    3This is the amount of polymer produced in grams.
    4This is the amount of time used in minutes.
    5This is the activity in gP/(gS · hr).
    6A = bis(n-butylcyclopentadienyl) zirconium dichloride
    B = bis(cyclopentadienyl) zirconium dichloride
    C = bis(cyclopentadienyl) hafnium dichloride
    D = bis(n-butylcyclopentadienyl) zirconium chloride trimethylsilysmethyl

Claims (21)

1-25. (canceled)
26. A polymerization process, the process comprising:
contacting a catalyst composition with at least one monomer in a polymerization zone under polymerization conditions to produce a polymer, wherein the catalyst composition comprises a contact product of at least one organometal compound, at least one organoaluminum compound, and at least one treated solid oxide compound,
wherein the at least one organometal compound has the following general formula:

(X1)(X2)(X3)(X4)M1
wherein M1 is titanium, zirconium, or hafnium;
wherein (X1) is a cyclopentadienyl, an indenyl, a fluorenyl, a substituted cyclopentadienyl, a substituted indenyl, or a substituted fluorenyl, and wherein each substituent on the substituted cyclopentadienyl, the substituted indenyl, or the substituted fluorenyl, independently is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, an organometallic group, or hydrogen;
wherein (X3) and (X4) independently are a halide, an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, or an organometallic group;
wherein (X2) is a halide, an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, an organometallic group, a cyclopentadienyl, an indenyl, a fluorenyl, a substituted cyclopentadienyl, a substituted indenyl, or a substituted fluorenyl, and wherein each substituent on the substituted cyclopentadienyl, the substituted indenyl, or the substituted fluorenyl, independently is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, an organometallic group, or hydrogen; and
wherein (X1) and (X2) optionally are connected by a bridging group;
wherein the at least one organoaluminum compound has the following general formula:

Al(X5)n(X6)3−n
wherein (X5) is a hydrocarbyl having from 1 to 20 carbon atoms;
wherein (X6) is a halide, a hydride, or an alkoxide;
wherein “n” is a number from 1 to 3, inclusive;
wherein the at least one treated solid oxide compound comprises a calcined contact product of at least one solid oxide compound and at least one electron-withdrawing anion source compound;
wherein the at least one treated solid oxide compound has a surface area greater than 100 M2/g;
wherein when the at least one solid oxide compound is alumina and the at least one electron-withdrawing anion source compound is a fluoride compound, the alumina is calcined alumina;
wherein there is a substantial absence of aluminoxanes and borate compounds; and
wherein the catalyst composition has a catalyst activity greater than 100 grams of polyethylene per gram of treated solid oxide compound per hour under slurry polymerization conditions, using isobutane as a diluent, with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig.
27. The process of claim 26, wherein (X1) and (X2) independently are a cyclopentadienyl, an indenyl, a fluorenyl, a substituted cyclopentadienyl, a substituted indenyl, or a substituted fluorenyl, and wherein each substituent on the substituted cyclopentadienyl, the substituted indenyl, or the substituted fluorenyl, independently is hydrogen, methyl, ethyl, propyl, butyl, tert-butyl, isobutyl, amyl, isoamyl, hexyl, cyclohexyl, heptyl, octyl, nonyl, decyl, dodecyl, 2-ethylhexyl, pentenyl, butenyl, or phenyl.
28. The process of claim 26, wherein (X3) and (X4) independently are a halide or a hydrocarbyl group having from 1 to 10 carbon atoms.
29. The process of claim 26, wherein the bridging group connecting (X1) and (X2) is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, or an organometallic group.
30. The process of claim 26, wherein the bridging group connecting (X1) and (X2) comprises a silicon or germanium atom.
31. The process of claim 26, wherein (X5) is an alkyl group having from 1 to 10 carbon atoms, and “n” is equal to 3.
32. The process of claim 26, wherein the at least one solid oxide compound is Al2O3, B2O3, BeO, Bi2O3, CdO, Co3O4, Cr2O3, CuO, Fe2O3, Ga2O3, La2O3, Mn2O3, MoO3, NiO, P2O5, Sb2O5, SiO2, SnO2, SrO, ThO2, TiO2, V2O5, WO3, Y2O3, ZnO, ZrO2, silica-alumina, silica-zirconia, silica-titania, alumino-phosphate, or any mixture thereof.
33. The process of claim 26, wherein the at least one solid oxide compound is alumina, zirconia, titania, silica-alumina, silica-zirconia, silica-titania, alumino-phosphate, or any mixture thereof.
34. The process of claim 26, wherein the at least one electron-withdrawing anion source compound comprises an electron-withdrawing anion selected from a halide, sulfate, or triflate.
35. The process of claim 26, wherein the contact product of the at least one solid oxide compound and the at least one electron-withdrawing anion source compound is calcined for about 1 hour to about 10 hours at a temperature in a range from about 400° C. to about 800° C.
36. The process of claim 26, wherein the at least one treated solid oxide compound has a pore volume greater than about 1 cc/g.
37. The process of claim 26, wherein the catalyst activity of the catalyst composition is greater than 1000 grams of polyethylene per gram of treated solid oxide compound per hour under slurry polymerization conditions, using isobutane as a diluent, with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig.
38. The process of claim 26, wherein the at least one monomer comprises an unsaturated hydrocarbon having from 2 to 20 carbon atoms.
39. The process of claim 26, wherein the at least one monomer is ethylene, propylene, 1-butene, 3-methyl-1-butene, 1-pentene, 3-methyl-1-pentene, 4-methyl-1-pentene, 1-hexene, 3-ethyl-1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, or mixtures thereof.
40. The process of claim 26, wherein the at least one monomer comprises ethylene and 1-hexene.
41. The process of claim 26, wherein the polymerization process is a slurry polymerization process, a gas phase polymerization process, or a solution polymerization process.
42. The process of claim 26, wherein the polymerization process is conducted in a loop slurry reactor.
43. A polymerization process, the process comprising:
contacting a catalyst composition with at least one monomer in a polymerization zone under polymerization conditions to produce a polymer, wherein the catalyst composition comprises a contact product of at least one organometal compound, at least one organoaluminum compound, and at least one treated solid oxide compound,
wherein the at least one organometal compound has the following general formula:

(X1)(X2)(X3)(X4)M1
wherein M1 is titanium, zirconium, or hafnium;
wherein (X1) is a cyclopentadienyl, an indenyl, a fluorenyl, a substituted cyclopentadienyl, a substituted indenyl, or a substituted fluorenyl, and wherein each substituent on the substituted cyclopentadienyl, the substituted indenyl, or the substituted fluorenyl, independently is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, an organometallic group, or hydrogen;
wherein (X3) and (X4) independently are a halide or a hydrocarbyl group having from 1 to 10 carbon atoms;
wherein (X2) is a cyclopentadienyl, an indenyl, a fluorenyl, a substituted cyclopentadienyl, a substituted indenyl, or a substituted fluorenyl, and wherein each substituent on the substituted cyclopentadienyl, the substituted indenyl, or the substituted fluorenyl, independently is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, an organometallic group, or hydrogen; and
wherein (X1) and (X2) optionally are connected by a bridging group, and wherein the bridging group is an aliphatic group, a cyclic group, a combination of aliphatic and cyclic groups, or an organometallic group;
wherein the at least one organoaluminum compound has the following general formula:

Al(X5)3
wherein (X5) is an alkyl group having from 1 to 10 carbon atoms;
wherein the at least one treated solid oxide compound comprises a calcined contact product of at least one solid oxide compound and at least one electron-withdrawing anion source compound;
wherein the at least one treated solid oxide compound has a surface area greater than 100 M2/g, a pore volume greater than about 1 cc/g, and a particle size in a range from about 50 to about 200 microns;
wherein the at least one solid oxide compound is Al2O3, B2O3, BeO, Bi2O3, CdO, CO3O4, Cr2O3, CuO, Fe2O3, Ga2O3, La2O3, Mn2O3, MoO3, NiO, P2O5, Sb2O5, SiO2, SnO2, SrO, ThO2, TiO2, V2O5, WO3, Y2O3, ZnO, ZrO2, silica-alumina, silica-zirconia, silica-titania, alumino-phosphate, or any mixture thereof;
wherein when the at least one solid oxide compound is alumina and the at least one electron-withdrawing anion source compound is a fluoride compound, the alumina is calcined alumina;
wherein there is a substantial absence of aluminoxanes and borate compounds;
wherein the catalyst composition has a catalyst activity greater than 100 grams of polyethylene per gram of treated solid oxide compound per hour under slurry polymerization conditions, using isobutane as a diluent, with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig; and
wherein the at least one monomer is ethylene, propylene, 1-butene, 3-methyl-1-butene, 1-pentene, 3-methyl-1-pentene, 4-methyl-1-pentene, 1-hexene, 3-ethyl-1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, or mixtures thereof.
44. The process of claim 43, wherein:
(X3) and (X4) independently are fluoro, chloro, or methyl;
the at least one treated solid oxide compound comprises fluorided alumina, chlorided alumina, sulfated alumina, fluorided silica-alumina, or chlorided silica-alumina;
the catalyst activity of the catalyst composition is greater than 1000 grams of polyethylene per gram of treated solid oxide compound per hour under slurry polymerization conditions, using isobutane as a diluent, with a polymerization temperature of 90° C., and an ethylene pressure of 550 psig; and
the polymerization process is a slurry polymerization process, a gas phase polymerization process, or a solution polymerization process.
45. The process of claim 43, wherein the catalyst composition consists essentially of a contact product of the at least one organometal compound, the at least one organoaluminum compound, and the at least one treated solid oxide compound.
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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8877672B2 (en) 2013-01-29 2014-11-04 Chevron Phillips Chemical Company Lp Catalyst compositions and methods of making and using same
US8895679B2 (en) 2012-10-25 2014-11-25 Chevron Phillips Chemical Company Lp Catalyst compositions and methods of making and using same
US8937139B2 (en) 2012-10-25 2015-01-20 Chevron Phillips Chemical Company Lp Catalyst compositions and methods of making and using same
US9034991B2 (en) 2013-01-29 2015-05-19 Chevron Phillips Chemical Company Lp Polymer compositions and methods of making and using same

Families Citing this family (233)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6300271B1 (en) * 1998-05-18 2001-10-09 Phillips Petroleum Company Compositions that can produce polymers
EP1082355B1 (en) * 1998-05-18 2008-10-15 Chevron Phillips Chemical Company Lp Catalyst composition for polymerizing monomers
US6355594B1 (en) * 1999-09-27 2002-03-12 Phillips Petroleum Company Organometal catalyst compositions
US6395666B1 (en) * 1999-09-29 2002-05-28 Phillips Petroleum Company Organometal catalyst compositions
US6548441B1 (en) * 1999-10-27 2003-04-15 Phillips Petroleum Company Organometal catalyst compositions
US6391816B1 (en) * 1999-10-27 2002-05-21 Phillips Petroleum Organometal compound catalyst
US6613712B1 (en) * 1999-11-24 2003-09-02 Phillips Petroleum Company Organometal catalyst compositions with solid oxide supports treated with fluorine and boron
US6548442B1 (en) * 1999-12-03 2003-04-15 Phillips Petroleum Company Organometal compound catalyst
EP1242179B1 (en) * 1999-12-16 2013-05-15 Chevron Phillips Chemical Company LP Organometal compound catalyst
US6750302B1 (en) 1999-12-16 2004-06-15 Phillips Petroleum Company Organometal catalyst compositions
US6524987B1 (en) 1999-12-22 2003-02-25 Phillips Petroleum Company Organometal catalyst compositions
US7041617B2 (en) 2004-01-09 2006-05-09 Chevron Phillips Chemical Company, L.P. Catalyst compositions and polyolefins for extrusion coating applications
US20080281063A9 (en) * 1999-12-30 2008-11-13 Sukhadia Ashish M Ethylene polymers and copolymers with high optical opacity and methods of making the same
CA2334049C (en) * 2001-02-02 2010-03-23 Nova Chemicals Corporation Halosulfonic acid treated catalyst support for olefin polymerization
CA2338094C (en) * 2001-02-23 2009-09-15 Nova Chemicals Corporation Catalyst for olefin polymerization
EP1461151A4 (en) * 2001-11-30 2010-03-24 Univation Tech Llc Method of making mixed ziegler-natta/metallocene catalysts
US7273912B2 (en) * 2002-12-17 2007-09-25 Innovene Europe Limited Supported olefin polymerization catalyst
US7244795B2 (en) * 2003-12-08 2007-07-17 Univation Technologies, Llc Polymerization process using metallocene catalyst systems
US7119153B2 (en) 2004-01-21 2006-10-10 Jensen Michael D Dual metallocene catalyst for producing film resins with good machine direction (MD) elmendorf tear strength
US7094857B2 (en) * 2004-03-10 2006-08-22 Chevron Phillips Chemical Company, L.P. Ethylene polymers and copolymers with high optical opacity
US7696280B2 (en) 2004-04-30 2010-04-13 Chevron Phillips Chemical Company, Lp HDPE resins for use in pressure pipe and related applications
US7294599B2 (en) 2004-06-25 2007-11-13 Chevron Phillips Chemical Co. Acidic activator-supports and catalysts for olefin polymerization
US20050288461A1 (en) * 2004-06-25 2005-12-29 Jensen Michael D Polymerization catalysts for producing polymers with low levels of long chain branching
US7148298B2 (en) * 2004-06-25 2006-12-12 Chevron Phillips Chemical Company, L.P. Polymerization catalysts for producing polymers with low levels of long chain branching
EP1799726B1 (en) * 2004-10-12 2011-07-13 ExxonMobil Chemical Patents Inc. Trialkylaluminum treated supports
US7163906B2 (en) * 2004-11-04 2007-01-16 Chevron Phillips Chemical Company, Llp Organochromium/metallocene combination catalysts for producing bimodal resins
US7199073B2 (en) * 2004-11-10 2007-04-03 Chevron Phillips Chemical Company, Lp Resins that yield low haze films and the process for their production
US7410927B2 (en) * 2005-04-13 2008-08-12 Chevron Phillips Chemical Company, Lp Catalysts for olefin polymerization
US7226886B2 (en) 2005-09-15 2007-06-05 Chevron Phillips Chemical Company, L.P. Polymerization catalysts and process for producing bimodal polymers in a single reactor
US7312283B2 (en) * 2005-08-22 2007-12-25 Chevron Phillips Chemical Company Lp Polymerization catalysts and process for producing bimodal polymers in a single reactor
US7615596B2 (en) * 2005-09-30 2009-11-10 Chevron Phillips Chemical Company Lp Multiple component feed methods and systems
US7420010B2 (en) * 2005-11-02 2008-09-02 Chevron Philips Chemical Company Lp Polyethylene compositions
EP1984407A2 (en) * 2006-01-11 2008-10-29 Ineos Europe Limited Supported catalyst system
US7517939B2 (en) 2006-02-02 2009-04-14 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing high molecular weight polymers with low levels of long chain branching
US7619047B2 (en) 2006-02-22 2009-11-17 Chevron Phillips Chemical Company, Lp Dual metallocene catalysts for polymerization of bimodal polymers
US7576163B2 (en) * 2006-03-31 2009-08-18 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing polymers with low levels of long chain branching
US8110518B2 (en) * 2006-04-28 2012-02-07 Fina Technology, Inc. Fluorinated transition metal catalysts and formation thereof
US7897539B2 (en) * 2007-05-16 2011-03-01 Chevron Phillips Chemical Company Lp Methods of preparing a polymerization catalyst
US8058200B2 (en) * 2007-05-17 2011-11-15 Chevron Phillips Chemical Company, L.P. Catalysts for olefin polymerization
US8119553B2 (en) 2007-09-28 2012-02-21 Chevron Phillips Chemical Company Lp Polymerization catalysts for producing polymers with low melt elasticity
US7799721B2 (en) 2007-09-28 2010-09-21 Chevron Phillips Chemical Company Lp Polymerization catalysts for producing polymers with high comonomer incorporation
US8138285B2 (en) * 2007-10-26 2012-03-20 Fina Technology, Inc. Fluorinated impregnated catalyst systems and methods of forming the same
US7863210B2 (en) * 2007-12-28 2011-01-04 Chevron Phillips Chemical Company Lp Nano-linked metallocene catalyst compositions and their polymer products
US8080681B2 (en) 2007-12-28 2011-12-20 Chevron Phillips Chemical Company Lp Nano-linked metallocene catalyst compositions and their polymer products
US8012900B2 (en) * 2007-12-28 2011-09-06 Chevron Phillips Chemical Company, L.P. Nano-linked metallocene catalyst compositions and their polymer products
US7884163B2 (en) 2008-03-20 2011-02-08 Chevron Phillips Chemical Company Lp Silica-coated alumina activator-supports for metallocene catalyst compositions
US20090240010A1 (en) * 2008-03-20 2009-09-24 Mcdaniel Max P Alumina-silica activator-supports for metallocene catalyst compositions
US11208514B2 (en) 2008-03-20 2021-12-28 Chevron Phillips Chemical Company Lp Silica-coated alumina activator-supports for metallocene catalyst compositions
US7884165B2 (en) * 2008-07-14 2011-02-08 Chevron Phillips Chemical Company Lp Half-metallocene catalyst compositions and their polymer products
US8114946B2 (en) 2008-12-18 2012-02-14 Chevron Phillips Chemical Company Lp Process for producing broader molecular weight distribution polymers with a reverse comonomer distribution and low levels of long chain branches
US8309485B2 (en) 2009-03-09 2012-11-13 Chevron Phillips Chemical Company Lp Methods for producing metal-containing sulfated activator-supports
KR101673043B1 (en) 2009-06-16 2016-11-04 셰브론 필립스 케미컬 컴퍼니 엘피 Oligomerization of alpha olefins using metallocene-ssa catalyst systems and use of the resultant polyalphaolefins to prepare lubricant blends
US9289739B2 (en) 2009-06-23 2016-03-22 Chevron Philips Chemical Company Lp Continuous preparation of calcined chemically-treated solid oxides
US7919639B2 (en) 2009-06-23 2011-04-05 Chevron Phillips Chemical Company Lp Nano-linked heteronuclear metallocene catalyst compositions and their polymer products
ES2547867T3 (en) 2009-06-29 2015-10-09 Chevron Phillips Chemical Company Lp The use of hydrogen elimination catalysts to control the molecular weight of the polymer and hydrogen levels in a polymerization reactor
US8329834B2 (en) 2009-06-29 2012-12-11 Chevron Phillips Chemical Company Lp Dual metallocene catalyst systems for decreasing melt index and increasing polymer production rates
US20110082323A1 (en) * 2009-10-06 2011-04-07 Chevron Phillips Chemical Company Lp Oligomerization of olefin waxes using metallocene-based catalyst systems
US8779045B2 (en) 2009-10-15 2014-07-15 Milliken & Company Thermoplastic polymer composition
EP2491079B1 (en) 2009-10-21 2016-07-20 Milliken & Company Thermoplastic polymer composition
US8383754B2 (en) 2010-04-19 2013-02-26 Chevron Phillips Chemical Company Lp Catalyst compositions for producing high Mz/Mw polyolefins
US8288487B2 (en) 2010-07-06 2012-10-16 Chevron Phillips Chemical Company Lp Catalysts for producing broad molecular weight distribution polyolefins in the absence of added hydrogen
US8399580B2 (en) 2010-08-11 2013-03-19 Chevron Philips Chemical Company Lp Additives to chromium catalyst mix tank
US8476394B2 (en) 2010-09-03 2013-07-02 Chevron Philips Chemical Company Lp Polymer resins having improved barrier properties and methods of making same
US8932975B2 (en) 2010-09-07 2015-01-13 Chevron Phillips Chemical Company Lp Catalyst systems and methods of making and using same
US8797540B2 (en) 2010-09-08 2014-08-05 The Board Of Trustees Of The Leland Stanford Junior University Slow-light fiber Bragg grating sensor
US8828529B2 (en) 2010-09-24 2014-09-09 Chevron Phillips Chemical Company Lp Catalyst systems and polymer resins having improved barrier properties
US8501651B2 (en) 2010-09-24 2013-08-06 Chevron Phillips Chemical Company Lp Catalyst systems and polymer resins having improved barrier properties
US8362278B2 (en) 2010-10-01 2013-01-29 Chevron Phillips Chemical Company Lp Methods for the conversion of a substituted furan to a substituted pyrrole
US8637616B2 (en) 2010-10-07 2014-01-28 Chevron Philips Chemical Company Lp Bridged metallocene catalyst systems with switchable hydrogen and comonomer effects
US8609793B2 (en) 2010-10-07 2013-12-17 Chevron Phillips Chemical Company Lp Catalyst systems containing a bridged metallocene
US8629292B2 (en) 2010-10-07 2014-01-14 Chevron Phillips Chemical Company Lp Stereoselective synthesis of bridged metallocene complexes
US8802762B2 (en) 2011-01-17 2014-08-12 Milliken & Company Additive composition and polymer composition comprising the same
EP2665754A1 (en) * 2011-01-20 2013-11-27 Ineos Commercial Services UK Limited Activating supports
US8309748B2 (en) 2011-01-25 2012-11-13 Chevron Phillips Chemical Company Lp Half-metallocene compounds and catalyst compositions
US8618229B2 (en) 2011-03-08 2013-12-31 Chevron Phillips Chemical Company Lp Catalyst compositions containing transition metal complexes with thiolate ligands
CA2736674C (en) * 2011-04-07 2018-05-01 Nova Chemicals Corporation Supported phosphinimine catalyst systems
US8907031B2 (en) 2011-04-20 2014-12-09 Chevron Phillips Chemical Company Lp Imino carbene compounds and derivatives, and catalyst compositions made therefrom
US8440772B2 (en) 2011-04-28 2013-05-14 Chevron Phillips Chemical Company Lp Methods for terminating olefin polymerizations
US8318883B1 (en) 2011-06-08 2012-11-27 Chevron Phillips Chemical Company Lp Polymer compositions for blow molding applications
US8431729B2 (en) 2011-08-04 2013-04-30 Chevron Phillips Chemical Company Lp High activity catalyst compositions containing silicon-bridged metallocenes with bulky substituents
US9018329B2 (en) 2011-09-02 2015-04-28 Chevron Phillips Chemical Company Lp Polymer compositions having improved barrier properties
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ES2763314T3 (en) 2011-11-16 2020-05-28 Chevron Phillips Chemical Co Lp Polymeric blends and methods of using them
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US8785576B2 (en) 2011-12-28 2014-07-22 Chevron Phillips Chemical Company Lp Catalyst compositions for the polymerization of olefins
US8791217B2 (en) 2011-12-28 2014-07-29 Chevron Phillips Chemical Company Lp Catalyst systems for production of alpha olefin oligomers and polymers
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SG11201406154VA (en) 2012-04-02 2014-10-30 Chevron Phillips Chemical Co Catalyst systems containing a bridged metallocene reference to related application
US10273315B2 (en) 2012-06-20 2019-04-30 Chevron Phillips Chemical Company Lp Methods for terminating olefin polymerizations
US8916494B2 (en) 2012-08-27 2014-12-23 Chevron Phillips Chemical Company Lp Vapor phase preparation of fluorided solid oxides
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BR112015010241B1 (en) 2012-11-07 2021-07-20 Chevron Phillips Chemical Company Lp LOW DENSITY POLYOLEFIN RESINS AND FILMS MADE FROM THEM
US8912285B2 (en) 2012-12-06 2014-12-16 Chevron Phillips Chemical Company Lp Catalyst system with three metallocenes for producing broad molecular weight distribution polymers
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US8703886B1 (en) 2013-02-27 2014-04-22 Chevron Phillips Chemical Company Lp Dual activator-support catalyst systems
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US9346897B2 (en) 2013-05-14 2016-05-24 Chevron Phillips Chemical Company Lp Peroxide treated metallocene-based polyolefins with improved melt strength
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US9102768B2 (en) 2013-08-14 2015-08-11 Chevron Phillips Chemical Company Lp Cyclobutylidene-bridged metallocenes and catalyst systems containing the same
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US9580575B2 (en) 2013-09-23 2017-02-28 Milliken & Company Polyethylene articles
US9200142B2 (en) 2013-09-23 2015-12-01 Milliken & Company Thermoplastic polymer composition
US9193845B2 (en) 2013-09-23 2015-11-24 Milliken & Company Thermoplastic polymer composition
US9200144B2 (en) 2013-09-23 2015-12-01 Milliken & Company Thermoplastic polymer composition
US9120914B2 (en) 2013-09-23 2015-09-01 Milliken & Company Thermoplastic polymer composition
US9181370B2 (en) 2013-11-06 2015-11-10 Chevron Phillips Chemical Company Lp Low density polyolefin resins with low molecular weight and high molecular weight components, and films made therefrom
US9540465B2 (en) 2013-11-19 2017-01-10 Chevron Phillips Chemical Company Lp Boron-bridged metallocene catalyst systems and polymers produced therefrom
CN105849138A (en) 2013-11-19 2016-08-10 切弗朗菲利浦化学公司 Catalyst systems containing boron-bridged cyclopentadienyl-fluorenyl metallocene compounds with an alkenyl substituent
WO2015077100A2 (en) 2013-11-19 2015-05-28 Chevron Phillips Chemical Company Lp Boron-bridged bis-indenyl metallocene catalyst systems and polymers produced therefrom
US9217049B2 (en) 2013-11-19 2015-12-22 Chevron Phillips Chemical Company Lp Dual catalyst systems for producing polymers with a broad molecular weight distribution and a uniform short chain branch distribution
US10246528B2 (en) 2014-01-09 2019-04-02 Chevron Phillips Chemical Company Lp Chromium (III) catalyst systems with activator-supports
US9163098B2 (en) 2014-01-10 2015-10-20 Chevron Phillips Chemical Company Lp Processes for preparing metallocene-based catalyst systems
US9273170B2 (en) 2014-03-12 2016-03-01 Chevron Phillips Chemical Company Lp Polymers with improved toughness and ESCR for large-part blow molding applications
US9169337B2 (en) 2014-03-12 2015-10-27 Chevron Phillips Chemical Company Lp Polymers with improved ESCR for blow molding applications
US20150322184A1 (en) 2014-05-07 2015-11-12 Chevron Phillips Chemical Company Lp High Performance Moisture Barrier Films at Lower Densities
US9394387B2 (en) 2014-05-15 2016-07-19 Chevron Phillips Chemical Company Lp Synthesis of aryl coupled bis phenoxides and their use in olefin polymerization catalyst systems with activator-supports
BR112016027380B1 (en) 2014-05-22 2021-08-10 Chevron Phillips Chemical Company Lp POLYMERIZATION PROCESS AND CATALYST COMPOSITION
RU2692673C2 (en) * 2014-07-31 2019-06-26 ВЕРСАЛИС С.п.А. Solid catalyst for (co)polymerisation of alpha-olefins and method for production thereof
CA2958224A1 (en) * 2014-08-19 2016-02-25 Univation Technologies, Llc Fluorinated catalyst supports and catalyst systems
SG11201701260WA (en) * 2014-08-19 2017-03-30 Univation Tech Llc Fluorinated catalyst supports and catalyst systems
BR112017003306B1 (en) * 2014-08-19 2022-03-03 Univation Technologies, Llc Method for preparing a fluorinated catalyst support and catalyst system
US9416087B2 (en) 2014-10-08 2016-08-16 Chevron Phillips Chemical Company Lp Methods for the production of α,β-unsaturated carboxylic acids and salts thereof
US9725393B2 (en) 2014-10-08 2017-08-08 Chevron Phillips Chemical Company Lp Methods for the production of α,β-unsaturated carboxylic acids and salts thereof
US9441063B2 (en) 2014-10-09 2016-09-13 Chevron Phillips Chemical Company Lp Titanium phosphinimide and titanium iminoimidazolidide catalyst systems with activator-supports
US9303106B1 (en) 2014-10-17 2016-04-05 Chevron Phillips Chemical Company Lp Processes for preparing solid metallocene-based catalyst systems
US9828451B2 (en) 2014-10-24 2017-11-28 Chevron Phillips Chemical Company Lp Polymers with improved processability for pipe applications
US9796795B2 (en) 2015-01-14 2017-10-24 Exxonmobil Chemical Patents Inc. Tetrahydroindacenyl catalyst composition, catalyst system, and processes for use thereof
WO2016171808A1 (en) 2015-04-20 2016-10-27 Exxonmobil Chemical Patents Inc. Catalyst composition comprising fluorided support and processes for use thereof
US10640583B2 (en) 2015-04-20 2020-05-05 Exxonmobil Chemical Patents, Inc. Catalyst composition comprising fluorided support and processes for use thereof
CN107667123B (en) 2015-04-20 2020-09-01 埃克森美孚化学专利公司 Polyethylene composition
US9708426B2 (en) 2015-06-01 2017-07-18 Chevron Phillips Chemical Company Lp Liquid-solid sampling system for a loop slurry reactor
US9481749B1 (en) 2015-06-26 2016-11-01 Chevron Phillips Chemical Company Lp Processes for preparing metallocene-based catalyst systems in cyclohexene
US10131725B2 (en) 2015-06-26 2018-11-20 Chevron Phillips Chemical Company Lp Production of high haze films using metallocene-based catalyst systems in cyclohexene
CA3194571C (en) 2015-07-08 2023-12-05 Errun Ding Ziegler-natta - metallocene dual catalyst systems with activator-supports
US9732300B2 (en) 2015-07-23 2017-08-15 Chevron Phillipa Chemical Company LP Liquid propylene oligomers and methods of making same
US9650459B2 (en) 2015-09-09 2017-05-16 Chevron Phillips Chemical Company Lp Methods for controlling die swell in dual catalyst olefin polymerization systems
US9493589B1 (en) 2015-09-09 2016-11-15 Chevron Phillips Chemical Company Lp Polymers with improved ESCR for blow molding applications
US9758599B2 (en) 2015-09-24 2017-09-12 Chevron Phillips Chemical Company Lp Heterogeneous Ziegler-Natta catalysts with fluorided silica-coated alumina
US9540457B1 (en) 2015-09-24 2017-01-10 Chevron Phillips Chemical Company Lp Ziegler-natta—metallocene dual catalyst systems with activator-supports
US9845367B2 (en) 2015-09-24 2017-12-19 Chevron Phillips Chemical Company Lp Heterogeneous Ziegler-Natta catalysts with fluorided silica-coated alumina
CN113402375B (en) 2015-12-15 2024-04-02 切弗朗菲利浦化学公司 Formation of alpha, beta-unsaturated carboxylic acids and salts thereof from metal lactones and anionic polyelectrolytes
US9890093B2 (en) 2015-12-22 2018-02-13 Chevron Phillips Chemical Company Lp Olefin oligomerizations using chemically-treated solid oxides
US10883197B2 (en) 2016-01-12 2021-01-05 Chevron Phillips Chemical Company Lp High melt flow polypropylene homopolymers for fiber applications
US9505856B1 (en) 2016-01-13 2016-11-29 Chevron Phillips Chemical Company Lp Methods for making fluorided chromium (VI) catalysts, and polymerization processes using the same
US9611188B1 (en) 2016-02-17 2017-04-04 Chevron Phillips Chemical Company Lp Aromatic alkylation using chemically-treated solid oxides
CN115433075A (en) 2016-04-06 2022-12-06 切弗朗菲利浦化学公司 Process for producing alpha, beta-unsaturated carboxylic acids and salts thereof
EP3452521B1 (en) 2016-05-03 2023-07-12 ExxonMobil Chemical Patents Inc. Tetrahydroindacenyl catalyst composition, catalyst system, and processes for use thereof
US9803037B1 (en) 2016-05-03 2017-10-31 Exxonmobil Chemical Patents Inc. Tetrahydro-as-indacenyl catalyst composition, catalyst system, and processes for use thereof
EP3440118A1 (en) 2016-05-20 2019-02-13 Chevron Phillips Chemical Company LP Low pressure process for preparing low-density polyethylene
US9758600B1 (en) 2016-05-25 2017-09-12 Chevron Phillips Chemical Company Lp Bicyclic bridged metallocene compounds and polymers produced therefrom
US9758540B1 (en) 2016-05-25 2017-09-12 Chevron Phillips Chemical Company Lp Bicyclic bridged metallocene compounds and polymers produced therefrom
US9707549B1 (en) 2016-05-26 2017-07-18 Chevron Phillips Chemical Company Lp Ethylene oligomerization catalyst systems using chemically-treated solid oxides
US10005861B2 (en) 2016-06-09 2018-06-26 Chevron Phillips Chemical Company Lp Methods for increasing polymer production rates with halogenated hydrocarbon compounds
US10647626B2 (en) 2016-07-12 2020-05-12 Chevron Phillips Chemical Company Lp Decene oligomers
US9951158B2 (en) 2016-08-12 2018-04-24 Chevron Phillips Chemical Company Lp Process for reducing the light oligomer content of polypropylene oils
US10000594B2 (en) 2016-11-08 2018-06-19 Chevron Phillips Chemical Company Lp Dual catalyst system for producing LLDPE copolymers with a narrow molecular weight distribution and improved processability
US10240102B2 (en) 2017-03-16 2019-03-26 Chevron Phillips Chemical Company, Lp Lubricant compositions containing hexene-based oligomers
US10221258B2 (en) 2017-03-17 2019-03-05 Chevron Phillips Chemical Company Lp Methods for restoring metallocene solids exposed to air
US10428091B2 (en) 2017-04-07 2019-10-01 Chevron Phillips Chemical Company Lp Catalyst systems containing low valent titanium-aluminum complexes and polymers produced therefrom
US10000595B1 (en) 2017-04-07 2018-06-19 Chevron Phillips Chemical Company Lp Catalyst systems containing low valent titanium compounds and polymers produced therefrom
US10005865B1 (en) 2017-04-07 2018-06-26 Chevron Phillips Chemical Company Lp Methods for controlling molecular weight and molecular weight distribution
US9975976B1 (en) 2017-04-17 2018-05-22 Chevron Phillips Chemical Company Lp Polyethylene compositions and methods of making and using same
US10550252B2 (en) 2017-04-20 2020-02-04 Chevron Phillips Chemical Company Lp Bimodal PE resins with improved melt strength
US10550061B2 (en) 2017-06-14 2020-02-04 Chevron Phillips Chemical Company Lp Sulfur oxoacid-substituted and phosphorus oxoacid-substituted polyaromatic resins and salts thereof as promoters in acrylate production from coupling reactions of olefins and carbon dioxide
US10544080B2 (en) 2017-06-14 2020-01-28 Chevron Phillips Chemical Company Lp Continuous process for the conversion of olefins and carbon dioxide to acrylates via solution phase reactor
US10697889B2 (en) 2017-07-21 2020-06-30 Chevron Phillips Chemical Company Lp Methods for determining transition metal compound concentrations in multicomponent liquid systems
US10030086B1 (en) 2017-07-21 2018-07-24 Chevron Phillips Chemical Company Lp Methods for determining transition metal compound concentrations in multicomponent liquid systems
US10336663B2 (en) 2017-09-12 2019-07-02 Chevron Phillips Chemical Company Lp Methods for the preparation and use of suspensions of chemically-treated solid oxides in an olefin-derived liquid medium
US10358506B2 (en) 2017-10-03 2019-07-23 Chevron Phillips Chemical Company Lp Dual catalyst system for producing LLDPE copolymers with improved processability
US10703838B2 (en) 2017-10-31 2020-07-07 Exxonmobil Chemical Patents Inc. Mixed catalyst systems with four metallocenes on a single support
US10300460B1 (en) 2017-11-17 2019-05-28 Chevron Phillips Chemical Company L.P. Aqueous methods for titanating a chromium/silica catalyst
US10259893B1 (en) 2018-02-20 2019-04-16 Chevron Phillips Chemical Company Lp Reinforcement of a chromium/silica catalyst with silicate oligomers
US10899853B2 (en) 2018-03-19 2021-01-26 Exxonmobil Chemical Patents Inc. Processes for producing high propylene content PEDM using tetrahydroindacenyl catalyst systems
US10679734B2 (en) 2018-03-29 2020-06-09 Chevron Phillips Chemical Company Lp Methods for determining transition metal compound concentrations in multicomponent liquid systems
US10507445B2 (en) 2018-03-29 2019-12-17 Chevron Phillips Chemical Company Lp Methods for determining transition metal compound concentrations in multicomponent liquid systems
WO2019194959A1 (en) 2018-04-06 2019-10-10 Exxonmobil Chemical Patents Inc. Compatibilized thermoplastic vulcanizate compositions
US10787526B2 (en) 2018-04-06 2020-09-29 Chevron Phillips Chemical Company Lp Method for startup of a gas phase polymerization reactor
EP4223803A3 (en) 2018-09-17 2023-11-08 Chevron Phillips Chemical Company LP Modified supported chromium catalysts and ethylene-based polymers produced therefrom
EP4241878A3 (en) 2018-09-24 2023-11-15 Chevron Phillips Chemical Company LP Methods for making supported chromium catalysts with increased polymerization activity
WO2020068888A2 (en) 2018-09-27 2020-04-02 Chevron Phillips Chemical Company Lp Processes for producing fluorided solid oxides and uses thereof in metallocene-based catalyst systems
US11174213B2 (en) 2018-10-12 2021-11-16 Chevron Phillips Chemical Company, Lp Effects of catalyst concentration and solid activator on nickel-mediated olefin/carbon dioxide coupling to acrylates
US10961331B2 (en) 2018-12-19 2021-03-30 Chevron Phillips Chemical Company Lp Ethylene homopolymers with a reverse short chain branch distribution
US11661504B2 (en) 2019-01-23 2023-05-30 Milliken & Company Thermoplastic composition
US10774161B2 (en) 2019-01-31 2020-09-15 Chevron Phillips Chemical Company Lp Systems and methods for polyethylene recovery with low volatile content
US11014997B2 (en) 2019-05-16 2021-05-25 Chevron Phillips Chemical Company Lp Dual catalyst system for producing high density polyethylenes with long chain branching
US11186656B2 (en) 2019-05-24 2021-11-30 Chevron Phillips Chemical Company Lp Preparation of large pore silicas and uses thereof in chromium catalysts for olefin polymerization
US11478781B2 (en) 2019-06-19 2022-10-25 Chevron Phillips Chemical Company Lp Ziegler-Natta catalysts prepared from solid alkoxymagnesium halide supports
EP3999359A1 (en) 2019-07-17 2022-05-25 ExxonMobil Chemical Patents Inc. Tires comprising rubber compounds that comprise propylene-alpha-olefin-diene polymers
US11377541B2 (en) 2019-07-26 2022-07-05 Chevron Phillips Chemical Company Lp Blow molding polymers with improved cycle time, processability, and surface quality
US11028258B2 (en) 2019-08-19 2021-06-08 Chevron Phillips Chemical Company Lp Metallocene catalyst system for producing LLDPE copolymers with tear resistance and low haze
US11396485B2 (en) 2019-09-16 2022-07-26 Chevron Phillips Chemical Company Lp Chromium-based catalysts and processes for converting alkanes into higher and lower aliphatic hydrocarbons
CN114401936A (en) 2019-09-16 2022-04-26 切弗朗菲利浦化学公司 Chromium-catalyzed production of alcohols from hydrocarbons
US11667777B2 (en) 2019-10-04 2023-06-06 Chevron Phillips Chemical Company Lp Bimodal polyethylene copolymers
US11186665B2 (en) 2019-10-04 2021-11-30 Chevron Phillips Chemical Company Lp Catalyst composition and method for preparing polyethylene
US11472828B2 (en) 2019-10-11 2022-10-18 Exxonmobil Chemical Patents Inc. Indacene based metallocene catalysts useful in the production of propylene polymers
US11325995B2 (en) 2020-02-21 2022-05-10 Chevron Phillips Chemical Company Lp Metallocene catalysts for polyethylene
US11339279B2 (en) 2020-04-01 2022-05-24 Chevron Phillips Chemical Company Lp Dual catalyst system for producing LLDPE and MDPE copolymers with long chain branching for film applications
US11267919B2 (en) 2020-06-11 2022-03-08 Chevron Phillips Chemical Company Lp Dual catalyst system for producing polyethylene with long chain branching for blow molding applications
US11186662B1 (en) 2020-07-14 2021-11-30 Chevron Phillips Chemical Company Lp Metallocene catalyst systems with chemically-treated solid oxides for producing ethylene-based plastomers and elastomers
TWI790693B (en) 2020-08-03 2023-01-21 美商美力肯及公司 Thermoplastic polymer composition and method for making films from the same
TWI798764B (en) 2020-08-03 2023-04-11 美商美力肯及公司 Thermoplastic polymer composition and method for molding the same
CN116490268A (en) 2020-09-14 2023-07-25 切弗朗菲利浦化学公司 Alcohol and carbonyl compounds production from hydrocarbons by transition metal catalysis
US11578156B2 (en) 2020-10-20 2023-02-14 Chevron Phillips Chemical Company Lp Dual metallocene polyethylene with improved processability for lightweight blow molded products
US11124586B1 (en) 2020-11-09 2021-09-21 Chevron Phillips Chemical Company Lp Particle size control of metallocene catalyst systems in loop slurry polymerization reactors
WO2022125581A2 (en) 2020-12-08 2022-06-16 Chevron Phillips Chemical Company Lp Particle size control of supported chromium catalysts in loop slurry polymerization reactors
WO2022155026A1 (en) 2021-01-12 2022-07-21 Exxonmobil Chemical Patents Inc. Asymmetric constrained geometry catalysts
US11125680B1 (en) 2021-01-14 2021-09-21 Chevron Phillips Chemical Company Lp Methods for determining the activity of an activated chemically-treated solid oxide in olefin polymerizations
TW202229448A (en) 2021-01-26 2022-08-01 美商美力肯及公司 Thermoplastic polymer composition and method for making articles and films from the same
WO2022165503A1 (en) 2021-01-28 2022-08-04 Chevron Phillips Chemical Company Lp Bimodal polyethylene copolymers
US11584806B2 (en) 2021-02-19 2023-02-21 Chevron Phillips Chemical Company Lp Methods for chromium catalyst activation using oxygen-enriched fluidization gas
US12018141B2 (en) 2021-02-24 2024-06-25 Chevron Phillips Chemical Company Lp Extrusion coating with enhanced performance via polymeric blends
EP4326809A1 (en) 2021-04-22 2024-02-28 Milliken & Company Polyethylene polymer compositions and articles made from the same
EP4352068A1 (en) 2021-06-08 2024-04-17 Chevron Phillips Chemical Company Lp Chromium-catalyzed production of alcohols from hydrocarbons in the presence of oxygen
US11845826B2 (en) 2021-08-26 2023-12-19 Chevron Phillips Chemical Company Lp Processes for preparing metallocene-based catalyst systems for the control of long chain branch content
WO2023039581A1 (en) 2021-09-13 2023-03-16 Chevron Phillips Chemical Company Lp Hydrocyclone modification of catalyst system components for use in olefin polymerizations
US12077616B2 (en) 2021-12-15 2024-09-03 Chevron Phillips Chemical Company Lp Production of polyethylene and ethylene oligomers from ethanol and the use of biomass and waste streams as feedstocks to produce the ethanol
US20230192586A1 (en) 2021-12-16 2023-06-22 Chevron Phillips Chemical Company Lp Gas phase process for acrylate production from ethylene and carbon dioxide
US12122857B2 (en) 2021-12-16 2024-10-22 Chevron Phillips Chemical Company Lp Controlling long-chain branch content with dual activator-supports
US20230227592A1 (en) 2022-01-14 2023-07-20 Chevron Phillips Chemical Company Lp Dual metallocene bimodal hdpe resins with improved stress crack resistance
US11845814B2 (en) 2022-02-01 2023-12-19 Chevron Phillips Chemical Company Lp Ethylene polymerization processes and reactor systems for the production of multimodal polymers using combinations of a loop reactor and a fluidized bed reactor
WO2023196806A1 (en) 2022-04-06 2023-10-12 Chevron Phillips Chemical Company Lp Chromium-catalyzed reactions of carbon monoxide with hydrocarbons in the presence of uv light
US20230331875A1 (en) 2022-04-19 2023-10-19 Chevron Phillips Chemical Company Lp Loop slurry periodogram control to prevent reactor fouling and reactor shutdowns
US20230340166A1 (en) 2022-04-26 2023-10-26 Chevron Phillips Chemical Company Lp Aqueous methods for titanating a chromium/silica catalyst with an alkali metal
US12077627B2 (en) 2022-04-26 2024-09-03 Chevron Phillips Chemical Company Lp Aqueous methods for titanating a chromium/silica catalyst with an alkali metal
WO2023235799A1 (en) 2022-06-02 2023-12-07 Chevron Phillips Chemical Company Lp High porosity fluorided silica-coated alumina activator-supports and uses thereof in metallocene-based catalyst systems for olefin polymerization
US11753488B1 (en) 2022-06-24 2023-09-12 Chevron Phillips Chemical Company Lp Processes for preparing metallocene-based catalyst systems with an alcohol compound
WO2024050291A1 (en) 2022-08-29 2024-03-07 Chevron Phillips Chemical Company Lp Methods for making supported late transition metal catalysts
WO2024085884A1 (en) 2022-10-21 2024-04-25 Milliken & Company Polymer compositions comprising a salt of cyclopentylphosphonic acid and articles made from such polymer compositions
US20240301099A1 (en) 2023-03-09 2024-09-12 Chevron Phillips Chemical Company Lp Dual metallocene polyethylene with improved escr for rotomolded, injection molded, and related products
US11920089B1 (en) 2023-05-11 2024-03-05 Chevron Phillips Chemical Company Lp Solid oxide and chemically-treated solid oxide catalysts for the pyrolysis of polyethylene

Citations (58)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4077904A (en) * 1976-06-29 1978-03-07 Union Carbide Corporation Olefin polymerization process and catalyst therefor
US4101445A (en) * 1976-09-22 1978-07-18 Union Carbide Corporation Preparation of modified and activated chromocene catalysts for ethylene polymerization
US4279780A (en) * 1980-04-18 1981-07-21 Chemplex Company Method of preparing catalyst supports
US4476243A (en) * 1980-04-18 1984-10-09 Chemplex Company Olefin polymerization catalyst and catalyst support
US4526942A (en) * 1981-09-24 1985-07-02 Mobil Oil Corporation Catalyst for olefin polymerization
US4657998A (en) * 1983-08-31 1987-04-14 Exxon Research & Engineering Co. Polyethylene with broad molecular weight distribution
US4659685A (en) * 1986-03-17 1987-04-21 The Dow Chemical Company Heterogeneous organometallic catalysts containing a supported titanium compound and at least one other supported organometallic compound
US4788171A (en) * 1987-02-02 1988-11-29 Philips Petroleum Company Phosphated calcined alumina
US4803253A (en) * 1982-03-30 1989-02-07 Phillips Petroleum Company Ethylene polymer produced using a catalyst comprising a phosphate and with a bis-(cyclopentadienyl)chromium(II) compound
US4969522A (en) * 1988-12-21 1990-11-13 Mobil Oil Corporation Polymer-coated support and its use as sand pack in enhanced oil recovery
US5001204A (en) * 1987-07-20 1991-03-19 Phillips Petroleum Company Alumina phosphated with partial ester
US5171798A (en) * 1991-01-02 1992-12-15 Phillips Petroleum Company Fluorided aluminas, catalysts, and polymerization processes
US5183868A (en) * 1990-07-23 1993-02-02 Phillips Petroleum Company Olefin polymerization over pi-olefin complex of chromium supported on aluminophosphate
US5321105A (en) * 1991-09-11 1994-06-14 Quantum Chemical Corporation Polymerization process using a bimodal silica gel as a catalyst support
US5332707A (en) * 1992-07-31 1994-07-26 Amoco Corporation Olefin polymerization and copolymerization catalyst
US5401820A (en) * 1984-05-29 1995-03-28 Phillips Petroleum Company Olefin polymers prepared by polymerization with treated alumina supported chromium
US5434134A (en) * 1991-01-11 1995-07-18 Pharmac Ia Ab Use of human IGF-1 to treat cardiac disorders
US5461127A (en) * 1992-09-22 1995-10-24 Idemitsu Kosan Co., Ltd. Polymerization catalysts and process for producing polymers
US5468702A (en) * 1994-07-07 1995-11-21 Exxon Chemical Patents Inc. Method for making a catalyst system
US5496782A (en) * 1992-12-17 1996-03-05 Solvay (Socie/ te/ Anonyme) Catalyst system, use of this catalyst system for the (co)polymerization of olefins, process for preparing this catalyst system and olefin (co) polymerization process
US5527867A (en) * 1994-02-25 1996-06-18 Phillips Petroleum Company Process for producing polyolefins
US5556893A (en) * 1993-05-25 1996-09-17 Solvay (Soci et e Anonyme) Catalyst support and catalyst for the polymerization of alpha-olefins; processes for obtaining them and polymerization of alpha-olefins in presence of the catalyst
US5612271A (en) * 1992-06-05 1997-03-18 Solvay (Societe Anonyme) Process for the prepration of a catalytic system, process for the (co)polymerization of olefins and (co)polymers of at least one olefin
US5643847A (en) * 1994-08-03 1997-07-01 Exxon Chemical Patents Inc. Supported ionic catalyst composition
US5648439A (en) * 1994-02-25 1997-07-15 Phillips Petroleum Company Process for producing polyolefins
US5670580A (en) * 1993-02-24 1997-09-23 Idemitsu Kosan Co., Ltd. Propylene block copolymer, process for preparing same, and modified copolymer using propylene block copolymer
US5703181A (en) * 1992-11-18 1997-12-30 Mitsui Petrochemical Industries, Ltd. Catalyst olefin polymerization and process for olefin polymerization using the same
US5705578A (en) * 1995-05-04 1998-01-06 Phillips Petroleum Company Method for making and using a supported metallocene catalyst system
US5854165A (en) * 1993-09-30 1998-12-29 Idemitsu Kosan Co., Ltd. Transition metal compound, catalyst for olefin polymerization, process for preparing olefin polymer by use of catalyst
US5861352A (en) * 1995-02-01 1999-01-19 Enichem S.P.A. Supported metallocene catalyst for olefins (co)polymerization
US6107230A (en) * 1998-05-18 2000-08-22 Phillips Petroleum Company Compositions that can produce polymers
US6165929A (en) * 1998-05-18 2000-12-26 Phillips Petroleum Company Compositions that can produce polymers
US6239059B1 (en) * 1997-10-02 2001-05-29 Elf Atochem, S.A. Activator solid support for metallocene catalysts in the polymerization of olefins, a process for preparing such a support, and the corresponding catalytic system and polymerization process
US6300271B1 (en) * 1998-05-18 2001-10-09 Phillips Petroleum Company Compositions that can produce polymers
US6355594B1 (en) * 1999-09-27 2002-03-12 Phillips Petroleum Company Organometal catalyst compositions
US6376415B1 (en) * 1999-09-28 2002-04-23 Phillips Petroleum Company Organometal catalyst compositions
US6395666B1 (en) * 1999-09-29 2002-05-28 Phillips Petroleum Company Organometal catalyst compositions
US6524987B1 (en) * 1999-12-22 2003-02-25 Phillips Petroleum Company Organometal catalyst compositions
US6548442B1 (en) * 1999-12-03 2003-04-15 Phillips Petroleum Company Organometal compound catalyst
US6573344B1 (en) * 2000-06-22 2003-06-03 Phillips Petroleum Company Propylene polymerization process
US6613712B1 (en) * 1999-11-24 2003-09-02 Phillips Petroleum Company Organometal catalyst compositions with solid oxide supports treated with fluorine and boron
US6750302B1 (en) * 1999-12-16 2004-06-15 Phillips Petroleum Company Organometal catalyst compositions
US6936667B2 (en) * 2000-04-28 2005-08-30 Phillips Petroleum Company Polymerization catalyst compositions and processes to produce polymers and bimodal polymers
US6982306B2 (en) * 2003-11-26 2006-01-03 Chevron Phillips Chemical Company, L.P. Stannoxy-substituted metallocene catalysts for olefin and acetylene polymerization
US7026494B1 (en) * 2005-01-10 2006-04-11 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing high melt index polymers without the use of hydrogen
US7041617B2 (en) * 2004-01-09 2006-05-09 Chevron Phillips Chemical Company, L.P. Catalyst compositions and polyolefins for extrusion coating applications
US7109277B2 (en) * 1999-12-30 2006-09-19 Phillips Petroleum Company Polymerization catalysts
US7119153B2 (en) * 2004-01-21 2006-10-10 Jensen Michael D Dual metallocene catalyst for producing film resins with good machine direction (MD) elmendorf tear strength
US7148298B2 (en) * 2004-06-25 2006-12-12 Chevron Phillips Chemical Company, L.P. Polymerization catalysts for producing polymers with low levels of long chain branching
US7163906B2 (en) * 2004-11-04 2007-01-16 Chevron Phillips Chemical Company, Llp Organochromium/metallocene combination catalysts for producing bimodal resins
US7199073B2 (en) * 2004-11-10 2007-04-03 Chevron Phillips Chemical Company, Lp Resins that yield low haze films and the process for their production
US7294599B2 (en) * 2004-06-25 2007-11-13 Chevron Phillips Chemical Co. Acidic activator-supports and catalysts for olefin polymerization
US7312283B2 (en) * 2005-08-22 2007-12-25 Chevron Phillips Chemical Company Lp Polymerization catalysts and process for producing bimodal polymers in a single reactor
US20080058199A1 (en) * 1998-05-18 2008-03-06 Phillips Petroleum Company Compositions that can produce polymers
US7576163B2 (en) * 2006-03-31 2009-08-18 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing polymers with low levels of long chain branching
US20100076167A1 (en) * 2008-03-20 2010-03-25 Chevron Phillips Chemical Company Lp Silica-coated alumina activator-supports for metallocene catalyst compositions
US7732542B2 (en) * 2006-02-02 2010-06-08 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing high molecular weight polymers with low levels of long chain branching
US7884165B2 (en) * 2008-07-14 2011-02-08 Chevron Phillips Chemical Company Lp Half-metallocene catalyst compositions and their polymer products

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FI85151C (en) 1989-09-06 1992-03-10 Neste Oy New carrier catalyst for polymerization of ethylene
FR2656314B1 (en) 1989-12-22 1992-04-17 Bp Chemicals Snc ZIRCONIUM CATALYST SUPPORTED ON MAGNESIUM CHLORIDE, PROCESS FOR THE PREPARATION AND USE OF THE CATALYST IN OLEFIN POLYMERIZATION.
EP0522581B1 (en) 1991-07-11 1997-10-15 Idemitsu Kosan Company Limited Process for producing olefin based polymers and olefin polymerization catalyst
US5434116A (en) 1992-06-05 1995-07-18 Tosoh Corporation Organic transition metal compound having π-bonding heterocyclic ligand and method of polymerizing olefin by using the same
JP2882241B2 (en) 1993-06-07 1999-04-12 東ソー株式会社 Olefin polymerization catalyst and olefin polymerization method

Patent Citations (72)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4077904A (en) * 1976-06-29 1978-03-07 Union Carbide Corporation Olefin polymerization process and catalyst therefor
US4101445A (en) * 1976-09-22 1978-07-18 Union Carbide Corporation Preparation of modified and activated chromocene catalysts for ethylene polymerization
US4279780A (en) * 1980-04-18 1981-07-21 Chemplex Company Method of preparing catalyst supports
US4476243A (en) * 1980-04-18 1984-10-09 Chemplex Company Olefin polymerization catalyst and catalyst support
US4526942A (en) * 1981-09-24 1985-07-02 Mobil Oil Corporation Catalyst for olefin polymerization
US4803253A (en) * 1982-03-30 1989-02-07 Phillips Petroleum Company Ethylene polymer produced using a catalyst comprising a phosphate and with a bis-(cyclopentadienyl)chromium(II) compound
US4657998A (en) * 1983-08-31 1987-04-14 Exxon Research & Engineering Co. Polyethylene with broad molecular weight distribution
US5401820A (en) * 1984-05-29 1995-03-28 Phillips Petroleum Company Olefin polymers prepared by polymerization with treated alumina supported chromium
US4659685A (en) * 1986-03-17 1987-04-21 The Dow Chemical Company Heterogeneous organometallic catalysts containing a supported titanium compound and at least one other supported organometallic compound
US4788171A (en) * 1987-02-02 1988-11-29 Philips Petroleum Company Phosphated calcined alumina
US5001204A (en) * 1987-07-20 1991-03-19 Phillips Petroleum Company Alumina phosphated with partial ester
US4969522A (en) * 1988-12-21 1990-11-13 Mobil Oil Corporation Polymer-coated support and its use as sand pack in enhanced oil recovery
US5183868A (en) * 1990-07-23 1993-02-02 Phillips Petroleum Company Olefin polymerization over pi-olefin complex of chromium supported on aluminophosphate
US5171798A (en) * 1991-01-02 1992-12-15 Phillips Petroleum Company Fluorided aluminas, catalysts, and polymerization processes
US5434134A (en) * 1991-01-11 1995-07-18 Pharmac Ia Ab Use of human IGF-1 to treat cardiac disorders
US5321105A (en) * 1991-09-11 1994-06-14 Quantum Chemical Corporation Polymerization process using a bimodal silica gel as a catalyst support
US5612271A (en) * 1992-06-05 1997-03-18 Solvay (Societe Anonyme) Process for the prepration of a catalytic system, process for the (co)polymerization of olefins and (co)polymers of at least one olefin
US5332707A (en) * 1992-07-31 1994-07-26 Amoco Corporation Olefin polymerization and copolymerization catalyst
US5461127A (en) * 1992-09-22 1995-10-24 Idemitsu Kosan Co., Ltd. Polymerization catalysts and process for producing polymers
US5703181A (en) * 1992-11-18 1997-12-30 Mitsui Petrochemical Industries, Ltd. Catalyst olefin polymerization and process for olefin polymerization using the same
US5496782A (en) * 1992-12-17 1996-03-05 Solvay (Socie/ te/ Anonyme) Catalyst system, use of this catalyst system for the (co)polymerization of olefins, process for preparing this catalyst system and olefin (co) polymerization process
US5670580A (en) * 1993-02-24 1997-09-23 Idemitsu Kosan Co., Ltd. Propylene block copolymer, process for preparing same, and modified copolymer using propylene block copolymer
US5556893A (en) * 1993-05-25 1996-09-17 Solvay (Soci et e Anonyme) Catalyst support and catalyst for the polymerization of alpha-olefins; processes for obtaining them and polymerization of alpha-olefins in presence of the catalyst
US5854165A (en) * 1993-09-30 1998-12-29 Idemitsu Kosan Co., Ltd. Transition metal compound, catalyst for olefin polymerization, process for preparing olefin polymer by use of catalyst
US5527867A (en) * 1994-02-25 1996-06-18 Phillips Petroleum Company Process for producing polyolefins
US5543376A (en) * 1994-02-25 1996-08-06 Phillips Petroleum Company Process for producing polyolefins
US5648439A (en) * 1994-02-25 1997-07-15 Phillips Petroleum Company Process for producing polyolefins
US5468702A (en) * 1994-07-07 1995-11-21 Exxon Chemical Patents Inc. Method for making a catalyst system
US5643847A (en) * 1994-08-03 1997-07-01 Exxon Chemical Patents Inc. Supported ionic catalyst composition
US5861352A (en) * 1995-02-01 1999-01-19 Enichem S.P.A. Supported metallocene catalyst for olefins (co)polymerization
US5705578A (en) * 1995-05-04 1998-01-06 Phillips Petroleum Company Method for making and using a supported metallocene catalyst system
US6239059B1 (en) * 1997-10-02 2001-05-29 Elf Atochem, S.A. Activator solid support for metallocene catalysts in the polymerization of olefins, a process for preparing such a support, and the corresponding catalytic system and polymerization process
US6107230A (en) * 1998-05-18 2000-08-22 Phillips Petroleum Company Compositions that can produce polymers
US6165929A (en) * 1998-05-18 2000-12-26 Phillips Petroleum Company Compositions that can produce polymers
US6300271B1 (en) * 1998-05-18 2001-10-09 Phillips Petroleum Company Compositions that can produce polymers
US6316553B1 (en) * 1998-05-18 2001-11-13 Phillips Petroleum Company Process for producing polymers using a composition comprising an organometal compound, a treated solid oxide compound, and an organoaluminum compound
US6831141B2 (en) * 1998-05-18 2004-12-14 Phillips Petroleum Company Process for producing polymers
US7763561B2 (en) * 1998-05-18 2010-07-27 Chevron Phillips Chemical Company Lp Compositions that can produce polymers
US7601665B2 (en) * 1998-05-18 2009-10-13 Chevron Phillips Chemical Company, Lp Compositions that can produce polymers
US20080058199A1 (en) * 1998-05-18 2008-03-06 Phillips Petroleum Company Compositions that can produce polymers
US6355594B1 (en) * 1999-09-27 2002-03-12 Phillips Petroleum Company Organometal catalyst compositions
US6984603B2 (en) * 1999-09-27 2006-01-10 Phillips Petroleum Company Organometal catalyst compositions
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US6395666B1 (en) * 1999-09-29 2002-05-28 Phillips Petroleum Company Organometal catalyst compositions
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US6548442B1 (en) * 1999-12-03 2003-04-15 Phillips Petroleum Company Organometal compound catalyst
US6750302B1 (en) * 1999-12-16 2004-06-15 Phillips Petroleum Company Organometal catalyst compositions
US6524987B1 (en) * 1999-12-22 2003-02-25 Phillips Petroleum Company Organometal catalyst compositions
US7109277B2 (en) * 1999-12-30 2006-09-19 Phillips Petroleum Company Polymerization catalysts
US6936667B2 (en) * 2000-04-28 2005-08-30 Phillips Petroleum Company Polymerization catalyst compositions and processes to produce polymers and bimodal polymers
US6573344B1 (en) * 2000-06-22 2003-06-03 Phillips Petroleum Company Propylene polymerization process
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US7842763B2 (en) * 2004-01-09 2010-11-30 Chevron Phillips Chemical Company Lp Catalyst compositions and polyolefins for extrusion coating applications
US7041617B2 (en) * 2004-01-09 2006-05-09 Chevron Phillips Chemical Company, L.P. Catalyst compositions and polyolefins for extrusion coating applications
US7119153B2 (en) * 2004-01-21 2006-10-10 Jensen Michael D Dual metallocene catalyst for producing film resins with good machine direction (MD) elmendorf tear strength
US7148298B2 (en) * 2004-06-25 2006-12-12 Chevron Phillips Chemical Company, L.P. Polymerization catalysts for producing polymers with low levels of long chain branching
US7790820B2 (en) * 2004-06-25 2010-09-07 Chevron Phillips Chemical Company Lp Acidic activator-supports and catalysts for olefin polymerization
US7294599B2 (en) * 2004-06-25 2007-11-13 Chevron Phillips Chemical Co. Acidic activator-supports and catalysts for olefin polymerization
US7470758B2 (en) * 2004-06-25 2008-12-30 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing polymers with low levels of long chain branching
US7629284B2 (en) * 2004-06-25 2009-12-08 Chevron Phillips Chemical Company, Lp Acidic activator supports and catalysts for olefin polymerization
US7163906B2 (en) * 2004-11-04 2007-01-16 Chevron Phillips Chemical Company, Llp Organochromium/metallocene combination catalysts for producing bimodal resins
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US7026494B1 (en) * 2005-01-10 2006-04-11 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing high melt index polymers without the use of hydrogen
US7312283B2 (en) * 2005-08-22 2007-12-25 Chevron Phillips Chemical Company Lp Polymerization catalysts and process for producing bimodal polymers in a single reactor
US7732542B2 (en) * 2006-02-02 2010-06-08 Chevron Phillips Chemical Company, Lp Polymerization catalysts for producing high molecular weight polymers with low levels of long chain branching
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US20100076167A1 (en) * 2008-03-20 2010-03-25 Chevron Phillips Chemical Company Lp Silica-coated alumina activator-supports for metallocene catalyst compositions
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US6831141B2 (en) 2004-12-14

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