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US20030145682A1 - Gel of elemental material or alloy and liquid metal and salt - Google Patents

Gel of elemental material or alloy and liquid metal and salt Download PDF

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Publication number
US20030145682A1
US20030145682A1 US10/238,297 US23829702A US2003145682A1 US 20030145682 A1 US20030145682 A1 US 20030145682A1 US 23829702 A US23829702 A US 23829702A US 2003145682 A1 US2003145682 A1 US 2003145682A1
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Prior art keywords
metal
vapor
liquid
mixtures
alkaline earth
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Abandoned
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US10/238,297
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Richard Anderson
Donn Armstrong
Stanley Borys
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Kroftt-Brakston International Inc
Ineos Pigments USA Inc
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Kroftt-Brakston International Inc
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Priority claimed from US08/691,423 external-priority patent/US5779761A/en
Priority claimed from US08/782,816 external-priority patent/US5958106A/en
Priority claimed from US10/125,988 external-priority patent/US7435282B2/en
Priority to US10/238,297 priority Critical patent/US20030145682A1/en
Application filed by Kroftt-Brakston International Inc filed Critical Kroftt-Brakston International Inc
Publication of US20030145682A1 publication Critical patent/US20030145682A1/en
Priority to US10/654,464 priority patent/US6861038B2/en
Priority to ZA200307069A priority patent/ZA200307069B/en
Priority to PCT/US2004/028528 priority patent/WO2005023725A2/en
Assigned to TWACG, LLC reassignment TWACG, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: INTERNATIONAL TITANIUM POWDER, L.L.C.
Assigned to INTERNATIONAL TITANIUM POWDER, L.L.C. reassignment INTERNATIONAL TITANIUM POWDER, L.L.C. CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: TWACG, LLC
Assigned to THE NATIONAL TITANIUM DIOXIDE CO. LTD. reassignment THE NATIONAL TITANIUM DIOXIDE CO. LTD. SECURITY AGREEMENT Assignors: INTERNATIONAL TITANIUM POWDER, L.L.C.
Assigned to INTERNATIONAL TITANIUM POWDER, LLC reassignment INTERNATIONAL TITANIUM POWDER, LLC RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS). Assignors: THE NATIONAL TITANIUM DIOXIDE CO. LTD.
Assigned to CRISTAL US, INC. reassignment CRISTAL US, INC. MERGER (SEE DOCUMENT FOR DETAILS). Assignors: INTERNATIONAL TITANIUM POWDER, L.L.C.
Abandoned legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22BPRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
    • C22B34/00Obtaining refractory metals
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22BPRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
    • C22B34/00Obtaining refractory metals
    • C22B34/10Obtaining titanium, zirconium or hafnium
    • C22B34/12Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08
    • C22B34/1218Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08 obtaining titanium or titanium compounds from ores or scrap by dry processes
    • C22B34/1222Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08 obtaining titanium or titanium compounds from ores or scrap by dry processes using a halogen containing agent
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22BPRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
    • C22B34/00Obtaining refractory metals
    • C22B34/10Obtaining titanium, zirconium or hafnium
    • C22B34/12Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08
    • C22B34/1263Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08 obtaining metallic titanium from titanium compounds, e.g. by reduction
    • C22B34/1268Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08 obtaining metallic titanium from titanium compounds, e.g. by reduction using alkali or alkaline-earth metals or amalgams
    • C22B34/1272Obtaining titanium or titanium compounds from ores or scrap by metallurgical processing; preparation of titanium compounds from other titanium compounds see C01G23/00 - C01G23/08 obtaining metallic titanium from titanium compounds, e.g. by reduction using alkali or alkaline-earth metals or amalgams reduction of titanium halides, e.g. Kroll process
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22BPRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
    • C22B5/00General methods of reducing to metals
    • C22B5/02Dry methods smelting of sulfides or formation of mattes
    • C22B5/04Dry methods smelting of sulfides or formation of mattes by aluminium, other metals or silicon
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P10/00Technologies related to metal processing
    • Y02P10/20Recycling

Definitions

  • This invention relates to the production of elemental material from the halides thereof and has particular applicability to those metals and non-metals for which the reduction of the halide to the element is exothermic.
  • Particular interest exists for titanium and the present invention will be described with particular reference to titanium, but is applicable to other metals and non-metals such as Al, As, Sb, Sn, Be, B, Ta, Ge, V, Nb, Mo, Ga, Ir, Os, U and Re, all of which produce significant heat upon reduction from the halide to the metal.
  • elemental materials include those metals and non-metals listed above or in Table 1.
  • titanium production is by reduction of titanium tetrachloride, which is made by chlorinating relatively high-grade titanium dioxide ore. Ores containing rutile can be physically concentrated to produce a satisfactory chlorination feed material; other sources of titanium dioxide, such as ilmenite, titaniferous iron ores and most other titanium source materials, require chemical beneficiation.
  • the Kroll process and the Hunter process are the two present day methods of producing titanium commercially.
  • titanium tetrachloride is chemically reduced by magnesium at about 1000° C.
  • the process is conducted in a batch fashion in a metal retort with an inert atmosphere, either helium or argon.
  • Magnesium is charged into the vessel and heated to prepare a molten magnesium bath.
  • Liquid titanium tetrachloride at room temperature is dispersed dropwise above the molten magnesium bath.
  • the liquid titanium tetrachloride vaporizes in the gaseous zone above the molten magnesium bath.
  • a reaction occurs on the molten magnesium surface to form titanium and magnesium chloride.
  • the Hunter process is similar to the Kroll process, but uses sodium instead of magnesium to reduce the titanium tetrachloride to titanium metal and produces sodium chloride as a by product.
  • the reaction is uncontrolled and sporadic and promotes the growth of dendritic titanium metal.
  • the titanium fuses into a mass that encapsulates some of the molten magnesium (or sodium) chloride. This fused mass is called titanium sponge.
  • the solidified titanium sponge metal is broken up, crushed, purified and then dried in a stream of hot nitrogen.
  • Metal ingots are made by compacting the sponge, welding pieces into an electrode and then melting it into an ingot in a high vacuum arc furnace. High purity ingots require multiple arc melting operations. Powder titanium is usually produced from the sponge through grinding, shot casting or centrifugal processes.
  • a common technique is to first react the titanium with hydrogen to make brittle titanium hydride to facilitate the grinding process. After formation of the powder titanium hydride, the particles are dehydrogenated to produce a usable metal powder product.
  • the processing of the titanium sponge into a usable form is difficult, labor intensive, and increases the product cost by a factor of two to three.
  • an object of the present invention is to provide a method and system for producing non-metals or metals or alloys thereof which is continuous having significant capital and operating costs advantages over existing batch technologies.
  • Another object of the present invention is to provide an improved batch or semi-batch process for producing non-metals or metals or alloys thereof where continuous operations are not warranted by the scale of the production.
  • Another object of the present invention is to provide a method and system for producing metals and non-metals from the exothermic reduction of the halide while preventing the metal or non-metal from sintering into large masses or onto the apparatus used to produce same.
  • Stil another object of the invention is to provide a method and system for producing non-metal or metal from the halides thereof wherein the process and system recycles the reducing agent and removes the heat of reaction for use as process heat or for power generation, thereby substantially reducing the environmental impact of the process.
  • FIG. 1 is a process flow diagram showing the continuous process for producing as an example titanium metal from titanium tetrachloride:
  • FIG. 2 is an example of a burner reaction chamber for a continuous process
  • FIG. 3 is a process diagram of a batch process reaction
  • FIG. 4 is a diagram of the apparatus used to produce titanium.
  • the process of the invention may be practiced with the use of any alkali or alkaline earth metal depending upon the metal or non-metal to be reduced. In some cases, combinations of an alkali or alkaline earth metals may be used. Moreover, any halide or combinations of halides may be used with the present invention although in most circumstances chlorine, being the cheapest and most readily available, is preferred. Of the alkali or alkaline earth metals, by way of example, sodium will be chosen not for purposes of limitation but merely purposes of illustration, because it is cheapest and preferred, as has chlorine been chosen for the same purpose.
  • non-metals or metals to be reduced it is possible to reduce a single metal such as titanium or tantalum or zirconium, selected from the list set forth hereafter. It is also possible to make alloys of a predetermined composition by providing mixed metal halides at the beginning of the process in the required molecular ratio.
  • Table 1 sets forth heats of reaction per gram of liquid sodium for the reduction of a stoichiometric amount of a vapor of a non-metal or metal halides applicable to the inventive process.
  • FIG. 1 A summary process flowsheet is shown in FIG. 1 Sodium and titanium tetrachloride are combined in a reaction chamber 14 where titanium tetrachloride vapor from a source thereof in the form of a boiler 22 is injected within a flowing sodium stream from a continuously cycling loop thereof including a sodium pump 11 .
  • the sodium stream is replenished by sodium provided by an electrolytic cell 16 .
  • the reduction reaction is highly exothermic, forming molten reaction products of titanium and sodium chloride. The molten reaction products are quenched in the bulk sodium stream.
  • Particle sizes and reaction rates are controlled by metering of the titanium tetrachloride vapor flowrate (by controlling the supply pressure), dilution of the titanium tetrachloride vapor with an inert gas, such as He or Ar, and the sodium flow characteristics and mixing parameters in the reaction chamber which includes a nozzle for the titanium tetrachloride and a surrounding conduit for the liquid sodium.
  • the vapor is intimately mixed with the liquid in a zone enclosed by the liquid, i.e. a liquid continuum, and the resultant temperature, significantly affected by the heat of reaction, is controlled by the quantity of flowing sodium and maintained below the sintering temperature of the produced metal, such as for titanium at about 1000° C.
  • the temperature of the sodium away from the location of halide introduction is maintained in the range of from about 200° C. to about 600° C.
  • Products leaving the reaction zone are quenched in the surrounding liquid before contact with the walls of the reaction chamber and preferably before contact with other product particles. This precludes sintering and wall erosion.
  • the surrounding sodium stream then carries the titanium and sodium chloride reaction products away from the reaction region.
  • These reaction products are removed from the bulk sodium stream by conventional separators 15 such as cyclones, particulate filters, magnetic separators or vacuum stills.
  • the first option removes the titanium and sodium chloride products in separate steps. This is accomplished by maintaining the bulk stream temperature such that the titanium is solid but the sodium chloride is molten through control of the ratio of titanium tetrachloride and sodium flowrates to the reaction chamber 14 .
  • the titanium is removed first, the bulk stream cooled to solidify the sodium chloride, then the sodium chloride is removed from separator 12 .
  • the solid cake of salt, Ti and Na is vacuum distilled to remove the Na. Thereafter, the Ti particles are passivated by passing a gas containing some O 2 over the mixture of salt and Ti followed by a water wash to remove the salt leaving Ti particles with surfaces of TiO 2 , which can be removed by conventional methods.
  • the sodium chloride is then recycled to the electrolytic cell 16 to be regenerated.
  • the sodium is returned to the bulk process stream for introduction to reaction chamber 14 and the chlorine is used in the ore chlorinator 17 .
  • electrolysis of sodium chloride and subsequent ore chlorination will be performed using technology well known in the art, such integration and recycle of the reaction by-product directly into the process is not possible with the Kroll or Hunter process because of the batch nature of those processes and the production of titanium sponge as an intermediate product.
  • excess process heat is removed in heat exchanger 10 for co-generation of power.
  • the integration of these separate processes enabled by the inventive-chemical manufacturing process has significant benefits with respect to both improved economy of operation and substantially reduced environmental impact achieved by recycle of both energy and chemical waste streams.
  • Chlorine from the electrolytic cell 16 is used to chlorinate titanium ore (rutile, anatase or ilmenite) in the chlorinator 17 .
  • the titanium ore is blended with coke and chemically converted in the presence of chlorine in a fluidized-bed or other suitable kiln chlorinator.
  • the titanium dioxide contained in the raw material reacts to form titanium tetrachloride, while the oxygen forms carbon dioxide with the coke. Iron and other impurity metals present in the ore are also converted during chlorination to their corresponding chlorides.
  • the titanium chloride is then condensed and purified by means of distillation in column 18 . With current practice, the purified titanium chloride vapor would be condensed again and sold to titanium manufacturers; however, in this integrated process, the titanium tetrachloride vapor stream is used directly in the manufacturing process via a feed pump 21 and boiler 22 .
  • the temperature of the bulk process stream is adjusted to the desired temperature for the reaction chamber 14 at heat exchanger 10 , and then combined with the regenerated sodium recycle stream, and injected into the reaction chamber.
  • the recovered heat from heat exchangers 19 and 20 may be used to vaporize liquid halide from the source thereof to produce halide vapor to react with the metal or the non-metal. It should be understood that various pumps, filters, traps, monitors and the like will be added as needed by those skilled in the art.
  • FIG. 2 there is disclosed a typical reaction chamber in which a choke flow or injection nozzle 23 , completely submerged in a flowing liquid metal stream, introduces the halide vapor from a boiler 22 in a controlled manner into the liquid metal reductant stream 13 .
  • the reaction process is controlled through the use of a choke-flow (sonic or critical flows) nozzle.
  • a choke-flow nozzle is a vapor injection nozzle that achieves (sonic velocity of the vapor at the nozzle throat.
  • the velocity of the vapor is equal to the speed of sound in the vapor medium at the prevailing temperature and pressure of the vapor at the nozzle throat.
  • the downstream pressure may then be reduced indefinitely without increasing or decreasing the discharge.
  • the minimum upstream pressure required for choke flow is proportioned to the downstream pressure and termed the critical pressure ratio. This ratio may be calculated by standard methods.
  • the choke flow nozzle serves two purposes: (1) it isolates the vapor generator from the liquid metal system, precluding the possibility of liquid metal backing up in the halide feed system and causing potentially dangerous contact with the liquid halide feedstock, and (2) it delivers the vapor at a fixed rate, independent of temperature and pressure fluctuations in the reaction zone, allowing easy and absolute control of the reaction kinetics.
  • the liquid metal stream also has multiple functional uses: (1) it rapidly chills the reaction products, forming product powder without sintering, (2) it transports the chilled reaction products to a separator, (3) it serves as a heat transfer medium allowing useful recovery of the considerable reaction heat, and ( 4 ) it feeds one of the reactants to the reaction zone.
  • the sodium 13 entering the reaction chamber is at 200° C. having a flow rate of 38.4 kilograms per minute.
  • the titanium tetrachloride from the boiler 22 is at 2 atmospheres and at a temperature of 164° C., the flow rate through the line was 1.1 kg/min.
  • Higher pressures may be used, but it is important that back flow be prevented, so the minimum pressure should be above that determined by the critical pressure ratio for sonic conditions, or about two times the absolute-pressure of the sodium stream (two atmospheres if the sodium is at atmospheric pressure) is preferred to ensure that flow through the reaction chamber nozzle is critical or choked.
  • the batch process illustrated in FIG. 3 shows a subsurface introduction of titanium tetrachloride vapor through an injection or an injector or a choke flow nozzle 23 submerged in liquid sodium contained in a reaction vessel 24 .
  • the halide vapor from the boiler 22 is injected in a controlled manner where it reacts producing titanium powder and sodium chloride.
  • the reaction products fall to the bottom of the tank 25 where they are collected for removal.
  • the tank walls are cooled via cooling coils 24 and a portion of the sodium in the tank is pumped out via pump 11 and recycled through a heat exchanger 10 and line 5 back to the tank to control the temperature of the sodium in the reaction vessel.
  • Process temperatures and pressures are similar to the continuous flow case with bulk sodium temperature of 200° C., titanium tetrachloride vapor of 164° C., and the feed pressure of the titanium tetrachloride vapor about twice the pressure in the reaction vessel.
  • FIG. 3 is illustrative of the types of design parameters which may be used to produce titanium metal in a batch process which avoids agglomeration problems inherent in the batch process presently in use commercially.
  • FIG. 4 shows a schematic depiction of a loop used to produce titanium metal powder.
  • the parts of the loop of most importance to the operation are a large (10 liter) reaction vessel 29 with a collection funnel 28 at the bottom feeding into a recycle stream.
  • the recycle stream has a low volume, low head, electromagnetic pump 11 and a flow meter 25 .
  • a titanium tetrachloride injection system consisted of a heated transfer line, leading from a heated tank 30 with a large heat capacity, to a submerged choke flow nozzle 23 .
  • the system could be removed completely from the sodium loop for filling and cleaning. It should be understood that some commercial grades of Na have Ca or other alkaline earth metals therein. This has no substantial affect on the invention.
  • a filtration scheme was used to remove products from the bulk sodium at the end of the test.
  • the recycle stream system was removed from the sodium loop.
  • a filter 26 consisting of two 5 cm diameter screens with 100 ⁇ m holes in a housing 20 cm long, was plumbed into a direct line connecting the outset of the reaction vessel to the sodium receiver tank. All of the sodium was transferred to the transfer tank 27 .
  • the reaction product was washed with ethyl alcohol to remove residual sodium and then passivated with an oxygen containing gas and washed with water to remove the sodium chloride by-product.
  • Particle size of the substantially pure titanium ranged between about 0.1 and about 10 ⁇ m with a mean size of about 5.5 ⁇ m.
  • the titanium powder produced in the apparatus was readily separable from the sodium and sodium chloride by-product.
  • the invention has been illustrated by reference to titanium alone and titanium tetrachloride as a feedstock, in combination with sodium as the reducing metal.
  • sodium as the reducing metal.
  • Table 1 which of course include the fluorides of uranium and rhenium and well as other halides such as bromides.
  • sodium while being the preferred reducing metal because of cost and availability, is clearly not the only available reductant.
  • Lithium, potassium as well as magnesium, calcium and other alkaline earth metals are available and thermodynamically feasible.
  • combinations of alkali metals and alkaline earth metals have been used, such as Na and Ca.
  • the two most common reducing agents for the production of Ti are Na and Mg, so mixtures of these two metals may be used, along with Ca, which is present in some Na as a by product of the method of producing Na. It is well within the skill of the art to determine from the thermodynamic Tables which metals are capable of acting as a reducing agent in the foregoing reactions, the principal applications of the process being to those illustrated in Table 1 when the chloride or halide is reduced to the metal. Moreover, it is well within the skill of the art and it is contemplated in this invention that alloys can be made by the process of the subject invention by providing a suitable halide feed in the molecular ratio of the desired alloy.

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Abstract

A method of producing a non-metal element or a metal or an alloy thereof from a halide or mixtures thereof. The halide or mixtures thereof are contacted with a stream of liquid alkali metal or alkaline earth metal or mixtures thereof in sufficient quantity to convert the halide to the non-metal or the metal or alloy and to maintain the temperature of the reactants at a temperature lower than the lesser of the boiling point of the alkali or alkaline earth metal at atmospheric pressure or the sintering temperature of the produced non-metal or metal or alloy. A continuous method is disclosed, particularly applicable to titanium.

Description

    RELATED APPLICATIONS
  • This is a continuation-in-part of our previously filed application Ser. No. 08/782,816, filed Jan. 13, 1997, now U.S. Pat. No. ______, which was a continuation-in-part of Ser. No. 08/691,423, filed Aug. 2, 1995, now U.S. Pat. No. 5,779,761, which was a file wrapper continuation of Ser. No. 08/283,358, filed Aug. 1, 1994, now abandoned.[0001]
  • BACKGROUND OF THE INVENTION
  • This invention relates to the production of elemental material from the halides thereof and has particular applicability to those metals and non-metals for which the reduction of the halide to the element is exothermic. Particular interest exists for titanium and the present invention will be described with particular reference to titanium, but is applicable to other metals and non-metals such as Al, As, Sb, Sn, Be, B, Ta, Ge, V, Nb, Mo, Ga, Ir, Os, U and Re, all of which produce significant heat upon reduction from the halide to the metal. For the purposes of this application, elemental materials include those metals and non-metals listed above or in Table 1. [0002]
  • At present titanium production is by reduction of titanium tetrachloride, which is made by chlorinating relatively high-grade titanium dioxide ore. Ores containing rutile can be physically concentrated to produce a satisfactory chlorination feed material; other sources of titanium dioxide, such as ilmenite, titaniferous iron ores and most other titanium source materials, require chemical beneficiation. [0003]
  • The reduction of titanium tetrachloride to metal has been attempted using a number of reducing agents including hydrogen, carbon, sodium, calcium, aluminum and magnesium. Both the magnesium and sodium reduction of titanium tetrachloride have proved to be commercial methods for producing titanium metal. However, current commercial methods use batch processing which requires significant material handling with resulting opportunities for contamination and gives quality variation from batch to batch. The greatest potential for decreasing production cost is the development of a continuous reduction process with attendant reduction in material handling. There is a strong demand for both the development of a process that enables continuous economical production of titanium metal and for the production of metal powder suitable for use without additional processing for application to powder metallurgy or for vacuum-arc melting to ingot form. [0004]
  • The Kroll process and the Hunter process are the two present day methods of producing titanium commercially. In the Kroll process, titanium tetrachloride is chemically reduced by magnesium at about 1000° C. The process is conducted in a batch fashion in a metal retort with an inert atmosphere, either helium or argon. Magnesium is charged into the vessel and heated to prepare a molten magnesium bath. Liquid titanium tetrachloride at room temperature is dispersed dropwise above the molten magnesium bath. The liquid titanium tetrachloride vaporizes in the gaseous zone above the molten magnesium bath. A reaction occurs on the molten magnesium surface to form titanium and magnesium chloride. The Hunter process is similar to the Kroll process, but uses sodium instead of magnesium to reduce the titanium tetrachloride to titanium metal and produces sodium chloride as a by product. [0005]
  • For both processes, the reaction is uncontrolled and sporadic and promotes the growth of dendritic titanium metal. The titanium fuses into a mass that encapsulates some of the molten magnesium (or sodium) chloride. This fused mass is called titanium sponge. After cooling of the metal retort, the solidified titanium sponge metal is broken up, crushed, purified and then dried in a stream of hot nitrogen. Metal ingots are made by compacting the sponge, welding pieces into an electrode and then melting it into an ingot in a high vacuum arc furnace. High purity ingots require multiple arc melting operations. Powder titanium is usually produced from the sponge through grinding, shot casting or centrifugal processes. A common technique is to first react the titanium with hydrogen to make brittle titanium hydride to facilitate the grinding process. After formation of the powder titanium hydride, the particles are dehydrogenated to produce a usable metal powder product. The processing of the titanium sponge into a usable form is difficult, labor intensive, and increases the product cost by a factor of two to three. [0006]
  • The processes discussed above have several intrinsic problems that contribute heavily to the high cost of titanium production. Batch process production is inherently capital and labor intensive. Titanium sponge requires substantial additional processing to produce titanium in a usable form; thereby increasing cost, increasing hazard to workers and exacerbating batch quality control difficulties. Neither process utilizes the large exothermic energy reaction, requiring substantial energy input for titanium production (approximately 6 kW-hr/kg product metal). In addition, the processes generate significant production wastes that are of environmental concern. [0007]
  • SUMMARY OF THE INVENTION
  • Accordingly, an object of the present invention is to provide a method and system for producing non-metals or metals or alloys thereof which is continuous having significant capital and operating costs advantages over existing batch technologies. [0008]
  • Another object of the present invention is to provide an improved batch or semi-batch process for producing non-metals or metals or alloys thereof where continuous operations are not warranted by the scale of the production. [0009]
  • Another object of the present invention is to provide a method and system for producing metals and non-metals from the exothermic reduction of the halide while preventing the metal or non-metal from sintering into large masses or onto the apparatus used to produce same. [0010]
  • Stil another object of the invention is to provide a method and system for producing non-metal or metal from the halides thereof wherein the process and system recycles the reducing agent and removes the heat of reaction for use as process heat or for power generation, thereby substantially reducing the environmental impact of the process. [0011]
  • The invention consists of certain novel features and a combination of parts hereinafter fully described, illustrated in the accompanying drawings, and particularly pointed out in the appended claims, it being understood that various changes in the details may be made without departing from the spirit, or sacrificing any of the advantages of the present invention. [0012]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • For the purpose of facilitating an understanding of the invention, there is illustrated in the accompanying drawings a preferred embodiment thereof, from an inspection of which, when considered in connection with the following descripton, the invention, its construction and operation, and many of its advantages should be readily understood and appreciated. [0013]
  • FIG. 1 is a process flow diagram showing the continuous process for producing as an example titanium metal from titanium tetrachloride: [0014]
  • FIG. 2 is an example of a burner reaction chamber for a continuous process; [0015]
  • FIG. 3 is a process diagram of a batch process reaction; and [0016]
  • FIG. 4 is a diagram of the apparatus used to produce titanium.[0017]
  • DETAILED DESCRIPTION OF THE INVENTION
  • The process of the invention may be practiced with the use of any alkali or alkaline earth metal depending upon the metal or non-metal to be reduced. In some cases, combinations of an alkali or alkaline earth metals may be used. Moreover, any halide or combinations of halides may be used with the present invention although in most circumstances chlorine, being the cheapest and most readily available, is preferred. Of the alkali or alkaline earth metals, by way of example, sodium will be chosen not for purposes of limitation but merely purposes of illustration, because it is cheapest and preferred, as has chlorine been chosen for the same purpose. [0018]
  • Regarding the non-metals or metals to be reduced, it is possible to reduce a single metal such as titanium or tantalum or zirconium, selected from the list set forth hereafter. It is also possible to make alloys of a predetermined composition by providing mixed metal halides at the beginning of the process in the required molecular ratio. By way of example, Table 1 sets forth heats of reaction per gram of liquid sodium for the reduction of a stoichiometric amount of a vapor of a non-metal or metal halides applicable to the inventive process. [0019]
    TABLE 1
    FEEDSTOCK HEAT kJ/g
    TiCl
    4 10
    AlCL3 9
    SnCl 2 4
    SbCl 3 14
    BeCl 2 10
    BCl 3 12
    TaCl 5 11
    ZrCl4 9
    VCl 4 12
    NbCl 5 12
    MoCl 4 14
    GaCl 3 11
    UF6 10
    ReF6 17
  • The process will be illustrated, again for purposes of illustration and not for limitation, with a single metal titanium being produced from the tetrachloride. [0020]
  • A summary process flowsheet is shown in FIG. 1 Sodium and titanium tetrachloride are combined in a [0021] reaction chamber 14 where titanium tetrachloride vapor from a source thereof in the form of a boiler 22 is injected within a flowing sodium stream from a continuously cycling loop thereof including a sodium pump 11. The sodium stream is replenished by sodium provided by an electrolytic cell 16. The reduction reaction is highly exothermic, forming molten reaction products of titanium and sodium chloride. The molten reaction products are quenched in the bulk sodium stream. Particle sizes and reaction rates are controlled by metering of the titanium tetrachloride vapor flowrate (by controlling the supply pressure), dilution of the titanium tetrachloride vapor with an inert gas, such as He or Ar, and the sodium flow characteristics and mixing parameters in the reaction chamber which includes a nozzle for the titanium tetrachloride and a surrounding conduit for the liquid sodium. The vapor is intimately mixed with the liquid in a zone enclosed by the liquid, i.e. a liquid continuum, and the resultant temperature, significantly affected by the heat of reaction, is controlled by the quantity of flowing sodium and maintained below the sintering temperature of the produced metal, such as for titanium at about 1000° C. Preferably, the temperature of the sodium away from the location of halide introduction is maintained in the range of from about 200° C. to about 600° C. Products leaving the reaction zone are quenched in the surrounding liquid before contact with the walls of the reaction chamber and preferably before contact with other product particles. This precludes sintering and wall erosion.
  • The surrounding sodium stream then carries the titanium and sodium chloride reaction products away from the reaction region. These reaction products are removed from the bulk sodium stream by [0022] conventional separators 15 such as cyclones, particulate filters, magnetic separators or vacuum stills.
  • Three separate options for separation of the titanium and the sodium chloride exist. The first option removes the titanium and sodium chloride products in separate steps. This is accomplished by maintaining the bulk stream temperature such that the titanium is solid but the sodium chloride is molten through control of the ratio of titanium tetrachloride and sodium flowrates to the [0023] reaction chamber 14. For this option, the titanium is removed first, the bulk stream cooled to solidify the sodium chloride, then the sodium chloride is removed from separator 12.
  • In the second option for reaction product removal, a lower ratio of titanium tetrachloride to sodium flowrate would be maintained in the [0024] reaction chamber 14 so that the bulk sodium temperature would remain below the sodium chloride solidification temperature. For this option, titanium and sodium chloride would be removed simultaneously using conventional separators. The sodium chloride and any residual sodium present on the particles would then be removed in a water-alcohol wash.
  • In the third, and preferred option for product removal, the solid cake of salt, Ti and Na is vacuum distilled to remove the Na. Thereafter, the Ti particles are passivated by passing a gas containing some O[0025] 2 over the mixture of salt and Ti followed by a water wash to remove the salt leaving Ti particles with surfaces of TiO2, which can be removed by conventional methods.
  • Following separation, the sodium chloride is then recycled to the [0026] electrolytic cell 16 to be regenerated. The sodium is returned to the bulk process stream for introduction to reaction chamber 14 and the chlorine is used in the ore chlorinator 17. It is important to note that while both electrolysis of sodium chloride and subsequent ore chlorination will be performed using technology well known in the art, such integration and recycle of the reaction by-product directly into the process is not possible with the Kroll or Hunter process because of the batch nature of those processes and the production of titanium sponge as an intermediate product. In addition, excess process heat is removed in heat exchanger 10 for co-generation of power. The integration of these separate processes enabled by the inventive-chemical manufacturing process has significant benefits with respect to both improved economy of operation and substantially reduced environmental impact achieved by recycle of both energy and chemical waste streams.
  • Chlorine from the [0027] electrolytic cell 16 is used to chlorinate titanium ore (rutile, anatase or ilmenite) in the chlorinator 17. In the chlorination stage, the titanium ore is blended with coke and chemically converted in the presence of chlorine in a fluidized-bed or other suitable kiln chlorinator. The titanium dioxide contained in the raw material reacts to form titanium tetrachloride, while the oxygen forms carbon dioxide with the coke. Iron and other impurity metals present in the ore are also converted during chlorination to their corresponding chlorides. The titanium chloride is then condensed and purified by means of distillation in column 18. With current practice, the purified titanium chloride vapor would be condensed again and sold to titanium manufacturers; however, in this integrated process, the titanium tetrachloride vapor stream is used directly in the manufacturing process via a feed pump 21 and boiler 22.
  • After providing process heat for the distillation step in [0028] heat exchangers 19 and 20, the temperature of the bulk process stream is adjusted to the desired temperature for the reaction chamber 14 at heat exchanger 10, and then combined with the regenerated sodium recycle stream, and injected into the reaction chamber. The recovered heat from heat exchangers 19 and 20 may be used to vaporize liquid halide from the source thereof to produce halide vapor to react with the metal or the non-metal. It should be understood that various pumps, filters, traps, monitors and the like will be added as needed by those skilled in the art.
  • In all aspects, for the process of FIG. 1, it is important that the titanium that is removed from the [0029] separator 15 be at or below the sintering temperature of titanium in order to preclude and prevent the solidification of the titanium on the surfaces of the equipment and the agglomeration of titanium particles into large masses, which is one of the fundamental difficulties with the commercial processes used presently. By maintaining the temperature of the titanium metal below the sintering temperature of titanium metal, the titanium will not attach to the walls of the equipment or itself as it occurs with prior art and, therefore, the physical removal of the same will be obviated. This is an important aspect of this invention and is obtained by the use of sufficient sodium metal or diluent gas or both to control the temperature of the elemental (or alloy) product. In other aspects, FIG. 1, is illustrative of the types of design parameters which may be used to produce titanium metal in a continuous process which avoids the problems with the prior art. Referring now to FIG. 2, there is disclosed a typical reaction chamber in which a choke flow or injection nozzle 23, completely submerged in a flowing liquid metal stream, introduces the halide vapor from a boiler 22 in a controlled manner into the liquid metal reductant stream 13. The reaction process is controlled through the use of a choke-flow (sonic or critical flows) nozzle. A choke-flow nozzle is a vapor injection nozzle that achieves (sonic velocity of the vapor at the nozzle throat. That is the velocity of the vapor is equal to the speed of sound in the vapor medium at the prevailing temperature and pressure of the vapor at the nozzle throat. When sonic conditions are achieved, any change in downstream conditions that causes a pressure change cannot propagate upstream to affect the discharge. The downstream pressure may then be reduced indefinitely without increasing or decreasing the discharge. Under choke flow conditions only the upstream conditions need to be controlled to control the flow-rate. The minimum upstream pressure required for choke flow is proportioned to the downstream pressure and termed the critical pressure ratio. This ratio may be calculated by standard methods.
  • The choke flow nozzle serves two purposes: (1) it isolates the vapor generator from the liquid metal system, precluding the possibility of liquid metal backing up in the halide feed system and causing potentially dangerous contact with the liquid halide feedstock, and (2) it delivers the vapor at a fixed rate, independent of temperature and pressure fluctuations in the reaction zone, allowing easy and absolute control of the reaction kinetics. [0030]
  • The liquid metal stream also has multiple functional uses: (1) it rapidly chills the reaction products, forming product powder without sintering, (2) it transports the chilled reaction products to a separator, (3) it serves as a heat transfer medium allowing useful recovery of the considerable reaction heat, and ([0031] 4) it feeds one of the reactants to the reaction zone.
  • For instance in FIG. 2, the [0032] sodium 13 entering the reaction chamber is at 200° C. having a flow rate of 38.4 kilograms per minute. The titanium tetrachloride from the boiler 22 is at 2 atmospheres and at a temperature of 164° C., the flow rate through the line was 1.1 kg/min. Higher pressures may be used, but it is important that back flow be prevented, so the minimum pressure should be above that determined by the critical pressure ratio for sonic conditions, or about two times the absolute-pressure of the sodium stream (two atmospheres if the sodium is at atmospheric pressure) is preferred to ensure that flow through the reaction chamber nozzle is critical or choked.
  • The batch process illustrated in FIG. 3 shows a subsurface introduction of titanium tetrachloride vapor through an injection or an injector or a [0033] choke flow nozzle 23 submerged in liquid sodium contained in a reaction vessel 24. The halide vapor from the boiler 22 is injected in a controlled manner where it reacts producing titanium powder and sodium chloride. The reaction products fall to the bottom of the tank 25 where they are collected for removal. The tank walls are cooled via cooling coils 24 and a portion of the sodium in the tank is pumped out via pump 11 and recycled through a heat exchanger 10 and line 5 back to the tank to control the temperature of the sodium in the reaction vessel. Process temperatures and pressures are similar to the continuous flow case with bulk sodium temperature of 200° C., titanium tetrachloride vapor of 164° C., and the feed pressure of the titanium tetrachloride vapor about twice the pressure in the reaction vessel.
  • In the flow diagrams of FIGS. 1 and 3. sodium make-up is indicated by the [0034] line 13 and this may come from an electrolytic cell 16 or some other entirely different source of sodium. In other aspects, FIG. 3 is illustrative of the types of design parameters which may be used to produce titanium metal in a batch process which avoids agglomeration problems inherent in the batch process presently in use commercially.
  • Brief Description of the Production of Titanium
  • FIG. 4 shows a schematic depiction of a loop used to produce titanium metal powder. The parts of the loop of most importance to the operation are a large (10 liter) reaction vessel [0035] 29 with a collection funnel 28 at the bottom feeding into a recycle stream. The recycle stream has a low volume, low head, electromagnetic pump 11 and a flow meter 25.
  • A titanium tetrachloride injection system consisted of a heated transfer line, leading from a [0036] heated tank 30 with a large heat capacity, to a submerged choke flow nozzle 23. The system could be removed completely from the sodium loop for filling and cleaning. It should be understood that some commercial grades of Na have Ca or other alkaline earth metals therein. This has no substantial affect on the invention.
  • Operation [0037]
  • A typical operating procedure follows: [0038]
  • 1. Raise temperature of sodium loop to desired point (200° C). [0039]
  • 2. Open titanium tetrachloride tank and fill with titanium tetrachloride. [0040]
  • 3. Insert the nozzle into the airlock above the [0041] ball valve 33.
  • 4. Heat titanium tetrachloride tank to desired temperature (168° C.) as determined by vapor pressure curve (2 atm.) and the required critical flow pressure [0042]
  • 5. Start an argon purge through the nozzle. [0043]
  • 6. [0044] Open ball valve 33 and lower the nozzle into sodium.
  • 8. Stop the purge and [0045] open valve 32 allowing titanium tetrachloride to flow through the nozzle into the sodium.
  • 9. When titanium tetrachloride pressure drops close to the critical pressure ratio, close the [0046] valve 32 and withdraw the nozzle above valve 33.
  • 10. [0047] Close valve 33 and let the nozzle cool to room temperature.
  • 11. Remove the titanium tetrachloride delivery system and clean. [0048]
  • The injection of titanium tetrachloride was monitored by measuring the pressure in the titanium tetrachloride system. A [0049] pressure transducer 31 was installed and a continuous measurement of pressure was recorded on a strip chart.
  • A filtration scheme was used to remove products from the bulk sodium at the end of the test. The recycle stream system was removed from the sodium loop. In its place, a [0050] filter 26 consisting of two 5 cm diameter screens with 100 μm holes in a housing 20 cm long, was plumbed into a direct line connecting the outset of the reaction vessel to the sodium receiver tank. All of the sodium was transferred to the transfer tank 27.
  • The reaction product was washed with ethyl alcohol to remove residual sodium and then passivated with an oxygen containing gas and washed with water to remove the sodium chloride by-product. Particle size of the substantially pure titanium ranged between about 0.1 and about 10 μm with a mean size of about 5.5 μm. The titanium powder produced in the apparatus was readily separable from the sodium and sodium chloride by-product. [0051]
  • The invention has been illustrated by reference to titanium alone and titanium tetrachloride as a feedstock, in combination with sodium as the reducing metal. However, it should be understood that the foregoing was for illustrative purposes only and the invention clearly pertains to those metals and non-metals in Table 1, which of course include the fluorides of uranium and rhenium and well as other halides such as bromides. Moreover, sodium while being the preferred reducing metal because of cost and availability, is clearly not the only available reductant. Lithium, potassium as well as magnesium, calcium and other alkaline earth metals are available and thermodynamically feasible. Moreover, combinations of alkali metals and alkaline earth metals have been used, such as Na and Ca. The two most common reducing agents for the production of Ti are Na and Mg, so mixtures of these two metals may be used, along with Ca, which is present in some Na as a by product of the method of producing Na. It is well within the skill of the art to determine from the thermodynamic Tables which metals are capable of acting as a reducing agent in the foregoing reactions, the principal applications of the process being to those illustrated in Table 1 when the chloride or halide is reduced to the metal. Moreover, it is well within the skill of the art and it is contemplated in this invention that alloys can be made by the process of the subject invention by providing a suitable halide feed in the molecular ratio of the desired alloy. [0052]
  • While there has been disclosed what is considered to be the preferred embodiment of the present invention, it is understood that various changes in the details may be made without departing from the spirit, or sacrificing any of the advantages of the present invention. [0053]

Claims (20)

I claim:
1. A method of producing an elemental material of Ti, Al, Sn, Sb, Be, B, Ga, Mo, Nb, Ta, Zr, V, Ir, Os, Re, U or an alloy thereof from a halide vapor of the elemental material or mixtures thereof comprising introducing the halide vapor or mixtures thereof into a continuum of a liquid alkali metal or a liquid alkaline earth metal or mixtures thereof to convert the halide vapor to elemental material or an alloy, said liquid alkali metal or liquid alkaline earth metal or mixtures thereof being present in an amount in excess of the stoichiometric amount needed to reduce the halide to cool the elemental material or alloy to temperatures below the sintering temperature thereof.
2. The method of claim 1, wherein the liquid alkali metal is Na, K or mixtures thereof and the liquid alkaline earth metal is Mg, Ca, Ba or mixtures therefor.
3. The method of claim 2, wherein the halide vapor is supplied at a pressure sufficient to maintain sonic flow.
4. The method of claim 3, wherein the elemental material is produced in batches or continuously.
5. A method of continuously producing a non-metal or a metal or an alloy thereof comprising, providing a supply of halide vapor of the metal or non-metal or mixtures thereof, providing a supply of a liquid alkali metal or a liquid alkaline earth metal or mixtures thereof as a reducing agent, introducing the halide vapor in a continuum of the liquid alkali metal or alkaline earth metal or mixtures thereof at a velocity not less than the sonic velocity of the halide vapor to produce a powder of a non-metal or a metal or an alloy thereof and a halide of the alkali or alkaline earth metal by an exothermic reaction, maintaining the temperature of substantially all of the powder produced below the sintering temperature thereof and separating the powder from the reactants.
6. The method of claim 5, wherein the halide vapor is one or more of TiCl4, AlCl3, SnCl2, VCl4, NbCl5, MoCl4, GaCl3, UF6, ReF6.
7. The method of claim 6, wherein the halide vapor is TiCl4, the liquid alkali or alkaline earth metal is Na, Mg or mixtures containing either Na or Mg is used, and the temperature of the liquid reducing agent away from where the halide vapor is introduced is maintained in the range of from about 200° C. to about 600° C.
8. The method of claim 7, and further comprising separating the Ti produced by sequentially distilling the reducing agent leaving Ti and a salt, passivating the Ti with O2 and thereafter rinsing with water to remove the salt.
9. A method of producing Ti powder from a source of TiCl4 vapor, comprising introducing the TiCl4 vapor submerged in liquid Na or Na with an alkaline earth metal to reduce TiCl4 to a Ti powder and the halide salts of the Na or alkaline earth metals present and separating the Ti powder from the combination of Ti powder and unreacted metal and salt.
10. The method of claim 9, wherein substantially all of the Ti powder has a particle diameter in the range of from about 0.1 to about 10 microns.
11. The method of claim 9, wherein the TiCl4 vapor is introduced into a flowing stream of liquid metal by injection.
12. The method of claim 11, wherein the flowing stream of liquid metal is present in excess over the stoichiometric quantity needed to react with the TiCl4 vapor such that the Ti powder produced does not sinter.
13. A method of producing an elemental material or an alloy thereof from a chloride vapor of the elemental material or a mixture of halide vapors of two or more elemental materials comprising the steps of introducing the chloride vapor or mixture of chloride vapors into a reaction zone in the interior of a flowing stream of a liquid alkali metal, a liquid alkaline earth metal, or any mixture thereof; intimately mixing the chloride vapor or mixture of chloride vapors with the flowing metal stream to cause a reduction reaction therebetween and form the elemental material or alloy thereof and a salt of the alkali metal, the alkaline earth metal, or any mixture thereof, and separating the elemental material or alloy thereof from the salt and unreacted metal
14. The method of claim 13, wherein the temperature of the elemental material or alloy does not exceed its sintering temperature.
15. The method of claim 13, wherein the elemental material is one or more members selected from the group consisting of Ti, Al, Sn, Sb, Be, B, Ga, Mo, Nb, Ta, Zr, V, Ir, Os, Re, U and alloys thereof.
16. The method of claim 13, wherein said alkali metal is at least one member selected from the group consisting of Na, K and Li and said alkaline earth metal is at least one member selected from the group consisting of Ca, Mg, Sr and Ba.
17. The method of claim 13, wherein the chloride vapor is mixed with an inert gas.
18. A method of producing an elemental material of Ti, Al, Sn, Sb, Be, B, Ga, Mo, Nb, Ta, Zr, V, Ir, Os, Re, U or an alloy thereof from a halide vapor of the elemental material or mixtures thereof comprising introducing the halide vapor or mixtures thereof into a liquid continuum of alkali metal or liquid alkaline earth metal or mixtures thereof to convert the halide vapor to elemental material or an alloy wherein the liquid continuum is present in sufficient quantity to maintain the temperature of substantially all of the reaction products below the sintering temperature thereof.
19. The method of claim 18, wherein the alkali metal is Na, K or mixtures thereof and the alkaline earth metal is Mg, Ca, Ba or mixtures thereof.
20. A method of producing Ti powder from a source of TiCl4 vapor, comprising introducing the TiCl4 vapor within a continuum of a liquid reducing metal principally of Na, Mg or mixtures thereof to produce Ti powder and a salt of the reducing metal or metals by a subsurface reaction and separating the Ti powder from the liquid reducing metal, wherein substantially all of the Ti powder has a particle diameter in the range of from about 0.1 microns to about 10 microns.
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Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030075011A1 (en) * 2001-10-09 2003-04-24 Washington University Tightly agglomerated non-oxide particles and method for producing the same
WO2005019485A1 (en) * 2003-08-22 2005-03-03 International Titanium Powder, Llc. Indexing separation system
US20070017319A1 (en) * 2005-07-21 2007-01-25 International Titanium Powder, Llc. Titanium alloy
US20080087139A1 (en) * 2006-10-16 2008-04-17 Spachner Sheldon A Process for recovering titanium
US20080217184A1 (en) * 2004-11-01 2008-09-11 Sumitomo Titanium Corporation Method and Apparatus for Producing Ti Through Reduction by Ca
US7753989B2 (en) 2006-12-22 2010-07-13 Cristal Us, Inc. Direct passivation of metal powder
CN103290433A (en) * 2013-06-26 2013-09-11 石嘴山市天合铁合金有限公司 Device for preparing pure titanium by molten salt electrolysis through double electrolytic baths and process thereof
US8821611B2 (en) 2005-10-06 2014-09-02 Cristal Metals Inc. Titanium boride
US9127333B2 (en) 2007-04-25 2015-09-08 Lance Jacobsen Liquid injection of VCL4 into superheated TiCL4 for the production of Ti-V alloy powder

Citations (53)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2205854A (en) * 1937-07-10 1940-06-25 Kroll Wilhelm Method for manufacturing titanium and alloys thereof
US2846303A (en) * 1953-08-11 1958-08-05 Nat Res Corp Method of producing titanium
US2846304A (en) * 1953-08-11 1958-08-05 Nat Res Corp Method of producing titanium
US2882143A (en) * 1953-04-16 1959-04-14 Nat Lead Co Continuous process for the production of titanium metal
US2890112A (en) * 1954-10-15 1959-06-09 Du Pont Method of producing titanium metal
US2941867A (en) * 1957-10-14 1960-06-21 Du Pont Reduction of metal halides
US2944888A (en) * 1956-01-17 1960-07-12 Ici Ltd Manufacture of titanium
US3058820A (en) * 1958-07-25 1962-10-16 Bert W Whitehurst Method of producing titanium metal
US3067025A (en) * 1957-04-05 1962-12-04 Dow Chemical Co Continuous production of titanium sponge
US3113017A (en) * 1960-07-06 1963-12-03 Vernon E Homme Method for reacting titanic chloride with an alkali metal
US3519258A (en) * 1966-07-23 1970-07-07 Hiroshi Ishizuka Device for reducing chlorides
US3535109A (en) * 1967-06-22 1970-10-20 Dal Y Ingersoll Method for producing titanium and other reactive metals
US3650681A (en) * 1968-08-08 1972-03-21 Mizusawa Industrial Chem Method of treating a titanium or zirconium salt of a phosphorus oxyacid
US3825415A (en) * 1971-07-28 1974-07-23 Electricity Council Method and apparatus for the production of liquid titanium from the reaction of vaporized titanium tetrachloride and a reducing metal
US3847596A (en) * 1968-02-28 1974-11-12 Halomet Ag Process of obtaining metals from metal halides
US3966460A (en) * 1974-09-06 1976-06-29 Amax Specialty Metal Corporation Reduction of metal halides
US4009007A (en) * 1975-07-14 1977-02-22 Fansteel Inc. Tantalum powder and method of making the same
US4017302A (en) * 1976-02-04 1977-04-12 Fansteel Inc. Tantalum metal powder
US4128421A (en) * 1973-03-29 1978-12-05 Marsh Harold G Tantalum powder for producing an embrittlement-resistant wire
US4141719A (en) * 1977-05-31 1979-02-27 Fansteel Inc. Tantalum metal powder
US4149876A (en) * 1978-06-06 1979-04-17 Fansteel Inc. Process for producing tantalum and columbium powder
US4401467A (en) * 1980-12-15 1983-08-30 Jordan Robert K Continuous titanium process
US4423004A (en) * 1983-03-24 1983-12-27 Sprague Electric Company Treatment of tantalum powder
US4445931A (en) * 1980-10-24 1984-05-01 The United States Of America As Represented By The Secretary Of The Interior Production of metal powder
US4518426A (en) * 1983-04-11 1985-05-21 Metals Production Research, Inc. Process for electrolytic recovery of titanium metal sponge from its ore
US4521281A (en) * 1983-10-03 1985-06-04 Olin Corporation Process and apparatus for continuously producing multivalent metals
US4555268A (en) * 1984-12-18 1985-11-26 Cabot Corporation Method for improving handling properties of a flaked tantalum powder composition
US4556420A (en) * 1982-04-30 1985-12-03 Westinghouse Electric Corp. Process for combination metal reduction and distillation
US4687632A (en) * 1984-05-11 1987-08-18 Hurd Frank W Metal or alloy forming reduction process and apparatus
US4725312A (en) * 1986-02-28 1988-02-16 Rhone-Poulenc Chimie Production of metals by metallothermia
US4830665A (en) * 1979-07-05 1989-05-16 Cockerill S.A. Process and unit for preparing alloyed and non-alloyed reactive metals by reduction
US4877445A (en) * 1987-07-09 1989-10-31 Toho Titanium Co., Ltd. Method for producing a metal from its halide
US4897116A (en) * 1988-05-25 1990-01-30 Teledyne Industries, Inc. High purity Zr and Hf metals and their manufacture
US4902341A (en) * 1987-08-24 1990-02-20 Toho Titanium Company, Limited Method for producing titanium alloy
US4923577A (en) * 1988-09-12 1990-05-08 Westinghouse Electric Corp. Electrochemical-metallothermic reduction of zirconium in molten salt solutions
US4940490A (en) * 1987-11-30 1990-07-10 Cabot Corporation Tantalum powder
US4985069A (en) * 1986-09-15 1991-01-15 The United States Of America As Represented By The Secretary Of The Interior Induction slag reduction process for making titanium
US5028491A (en) * 1989-07-03 1991-07-02 General Electric Company Gamma titanium aluminum alloys modified by chromium and tantalum and method of preparation
US5032176A (en) * 1989-05-24 1991-07-16 N.K.R. Company, Ltd. Method for manufacturing titanium powder or titanium composite powder
US5082491A (en) * 1989-09-28 1992-01-21 V Tech Corporation Tantalum powder with improved capacitor anode processing characteristics
US5149497A (en) * 1991-06-12 1992-09-22 General Electric Company Oxidation resistant coatings of gamma titanium aluminum alloys modified by chromium and tantalum
US5211741A (en) * 1987-11-30 1993-05-18 Cabot Corporation Flaked tantalum powder
US5259862A (en) * 1992-10-05 1993-11-09 The United States Of America As Represented By The Secretary Of The Interior Continuous production of granular or powder Ti, Zr and Hf or their alloy products
US5338379A (en) * 1989-04-10 1994-08-16 General Electric Company Tantalum-containing superalloys
US5448447A (en) * 1993-04-26 1995-09-05 Cabot Corporation Process for making an improved tantalum powder and high capacitance low leakage electrode made therefrom
US5460642A (en) * 1994-03-21 1995-10-24 Teledyne Industries, Inc. Aerosol reduction process for metal halides
US5580516A (en) * 1989-06-26 1996-12-03 Cabot Corporation Powders and products of tantalum, niobium and their alloys
US5954856A (en) * 1996-04-25 1999-09-21 Cabot Corporation Method of making tantalum metal powder with controlled size distribution and products made therefrom
US6027585A (en) * 1995-03-14 2000-02-22 The Regents Of The University Of California Office Of Technology Transfer Titanium-tantalum alloys
US6040975A (en) * 1997-06-30 2000-03-21 Nec Corporation Tantalum powder and solid electrolytic capacitor using the same
US6136062A (en) * 1998-10-13 2000-10-24 H. C. Starck Gmbh & Co. Kg Niobium powder and a process for the production of niobium and/or tantalum powders
US6193779B1 (en) * 1997-02-19 2001-02-27 H. C. Starck Gmbh & Co. Kg Tantalum powder, method for producing same powder and sintered anodes obtained from it
US6238456B1 (en) * 1997-02-19 2001-05-29 H. C. Starck Gmbh & Co. Kg Tantalum powder, method for producing same powder and sintered anodes obtained from it

Patent Citations (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2205854A (en) * 1937-07-10 1940-06-25 Kroll Wilhelm Method for manufacturing titanium and alloys thereof
US2882143A (en) * 1953-04-16 1959-04-14 Nat Lead Co Continuous process for the production of titanium metal
US2846303A (en) * 1953-08-11 1958-08-05 Nat Res Corp Method of producing titanium
US2846304A (en) * 1953-08-11 1958-08-05 Nat Res Corp Method of producing titanium
US2890112A (en) * 1954-10-15 1959-06-09 Du Pont Method of producing titanium metal
US2944888A (en) * 1956-01-17 1960-07-12 Ici Ltd Manufacture of titanium
US3067025A (en) * 1957-04-05 1962-12-04 Dow Chemical Co Continuous production of titanium sponge
US2941867A (en) * 1957-10-14 1960-06-21 Du Pont Reduction of metal halides
US3058820A (en) * 1958-07-25 1962-10-16 Bert W Whitehurst Method of producing titanium metal
US3113017A (en) * 1960-07-06 1963-12-03 Vernon E Homme Method for reacting titanic chloride with an alkali metal
US3519258A (en) * 1966-07-23 1970-07-07 Hiroshi Ishizuka Device for reducing chlorides
US3535109A (en) * 1967-06-22 1970-10-20 Dal Y Ingersoll Method for producing titanium and other reactive metals
US3847596A (en) * 1968-02-28 1974-11-12 Halomet Ag Process of obtaining metals from metal halides
US3650681A (en) * 1968-08-08 1972-03-21 Mizusawa Industrial Chem Method of treating a titanium or zirconium salt of a phosphorus oxyacid
US3825415A (en) * 1971-07-28 1974-07-23 Electricity Council Method and apparatus for the production of liquid titanium from the reaction of vaporized titanium tetrachloride and a reducing metal
US4128421A (en) * 1973-03-29 1978-12-05 Marsh Harold G Tantalum powder for producing an embrittlement-resistant wire
US3966460A (en) * 1974-09-06 1976-06-29 Amax Specialty Metal Corporation Reduction of metal halides
US4009007A (en) * 1975-07-14 1977-02-22 Fansteel Inc. Tantalum powder and method of making the same
US4017302A (en) * 1976-02-04 1977-04-12 Fansteel Inc. Tantalum metal powder
US4141719A (en) * 1977-05-31 1979-02-27 Fansteel Inc. Tantalum metal powder
US4149876A (en) * 1978-06-06 1979-04-17 Fansteel Inc. Process for producing tantalum and columbium powder
US4830665A (en) * 1979-07-05 1989-05-16 Cockerill S.A. Process and unit for preparing alloyed and non-alloyed reactive metals by reduction
US4445931A (en) * 1980-10-24 1984-05-01 The United States Of America As Represented By The Secretary Of The Interior Production of metal powder
US4401467A (en) * 1980-12-15 1983-08-30 Jordan Robert K Continuous titanium process
US4556420A (en) * 1982-04-30 1985-12-03 Westinghouse Electric Corp. Process for combination metal reduction and distillation
US4423004A (en) * 1983-03-24 1983-12-27 Sprague Electric Company Treatment of tantalum powder
US4518426A (en) * 1983-04-11 1985-05-21 Metals Production Research, Inc. Process for electrolytic recovery of titanium metal sponge from its ore
US4521281A (en) * 1983-10-03 1985-06-04 Olin Corporation Process and apparatus for continuously producing multivalent metals
US4687632A (en) * 1984-05-11 1987-08-18 Hurd Frank W Metal or alloy forming reduction process and apparatus
US4555268A (en) * 1984-12-18 1985-11-26 Cabot Corporation Method for improving handling properties of a flaked tantalum powder composition
US4725312A (en) * 1986-02-28 1988-02-16 Rhone-Poulenc Chimie Production of metals by metallothermia
US4985069A (en) * 1986-09-15 1991-01-15 The United States Of America As Represented By The Secretary Of The Interior Induction slag reduction process for making titanium
US4877445A (en) * 1987-07-09 1989-10-31 Toho Titanium Co., Ltd. Method for producing a metal from its halide
US4902341A (en) * 1987-08-24 1990-02-20 Toho Titanium Company, Limited Method for producing titanium alloy
US5211741A (en) * 1987-11-30 1993-05-18 Cabot Corporation Flaked tantalum powder
US4940490A (en) * 1987-11-30 1990-07-10 Cabot Corporation Tantalum powder
US4897116A (en) * 1988-05-25 1990-01-30 Teledyne Industries, Inc. High purity Zr and Hf metals and their manufacture
US4923577A (en) * 1988-09-12 1990-05-08 Westinghouse Electric Corp. Electrochemical-metallothermic reduction of zirconium in molten salt solutions
US5338379A (en) * 1989-04-10 1994-08-16 General Electric Company Tantalum-containing superalloys
US5032176A (en) * 1989-05-24 1991-07-16 N.K.R. Company, Ltd. Method for manufacturing titanium powder or titanium composite powder
US5580516A (en) * 1989-06-26 1996-12-03 Cabot Corporation Powders and products of tantalum, niobium and their alloys
US5028491A (en) * 1989-07-03 1991-07-02 General Electric Company Gamma titanium aluminum alloys modified by chromium and tantalum and method of preparation
US5082491A (en) * 1989-09-28 1992-01-21 V Tech Corporation Tantalum powder with improved capacitor anode processing characteristics
US5149497A (en) * 1991-06-12 1992-09-22 General Electric Company Oxidation resistant coatings of gamma titanium aluminum alloys modified by chromium and tantalum
US5259862A (en) * 1992-10-05 1993-11-09 The United States Of America As Represented By The Secretary Of The Interior Continuous production of granular or powder Ti, Zr and Hf or their alloy products
US5448447A (en) * 1993-04-26 1995-09-05 Cabot Corporation Process for making an improved tantalum powder and high capacitance low leakage electrode made therefrom
US5460642A (en) * 1994-03-21 1995-10-24 Teledyne Industries, Inc. Aerosol reduction process for metal halides
US6027585A (en) * 1995-03-14 2000-02-22 The Regents Of The University Of California Office Of Technology Transfer Titanium-tantalum alloys
US5954856A (en) * 1996-04-25 1999-09-21 Cabot Corporation Method of making tantalum metal powder with controlled size distribution and products made therefrom
US5986877A (en) * 1996-04-25 1999-11-16 Cabot Corporation Tantalum metal power with controlled size distribution and products made therefrom
US6193779B1 (en) * 1997-02-19 2001-02-27 H. C. Starck Gmbh & Co. Kg Tantalum powder, method for producing same powder and sintered anodes obtained from it
US6238456B1 (en) * 1997-02-19 2001-05-29 H. C. Starck Gmbh & Co. Kg Tantalum powder, method for producing same powder and sintered anodes obtained from it
US6040975A (en) * 1997-06-30 2000-03-21 Nec Corporation Tantalum powder and solid electrolytic capacitor using the same
US6136062A (en) * 1998-10-13 2000-10-24 H. C. Starck Gmbh & Co. Kg Niobium powder and a process for the production of niobium and/or tantalum powders

Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030075011A1 (en) * 2001-10-09 2003-04-24 Washington University Tightly agglomerated non-oxide particles and method for producing the same
WO2005019485A1 (en) * 2003-08-22 2005-03-03 International Titanium Powder, Llc. Indexing separation system
US20080217184A1 (en) * 2004-11-01 2008-09-11 Sumitomo Titanium Corporation Method and Apparatus for Producing Ti Through Reduction by Ca
US20070017319A1 (en) * 2005-07-21 2007-01-25 International Titanium Powder, Llc. Titanium alloy
US8894738B2 (en) 2005-07-21 2014-11-25 Cristal Metals Inc. Titanium alloy
US9630251B2 (en) 2005-07-21 2017-04-25 Cristal Metals Inc. Titanium alloy
US8821611B2 (en) 2005-10-06 2014-09-02 Cristal Metals Inc. Titanium boride
US20080087139A1 (en) * 2006-10-16 2008-04-17 Spachner Sheldon A Process for recovering titanium
US7901483B2 (en) * 2006-10-16 2011-03-08 Metals Production Research, Inc. Process for recovering titanium
US7753989B2 (en) 2006-12-22 2010-07-13 Cristal Us, Inc. Direct passivation of metal powder
US9127333B2 (en) 2007-04-25 2015-09-08 Lance Jacobsen Liquid injection of VCL4 into superheated TiCL4 for the production of Ti-V alloy powder
CN103290433A (en) * 2013-06-26 2013-09-11 石嘴山市天合铁合金有限公司 Device for preparing pure titanium by molten salt electrolysis through double electrolytic baths and process thereof

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