Nothing Special   »   [go: up one dir, main page]

CN103484810A - Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof - Google Patents

Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof Download PDF

Info

Publication number
CN103484810A
CN103484810A CN201310434691.1A CN201310434691A CN103484810A CN 103484810 A CN103484810 A CN 103484810A CN 201310434691 A CN201310434691 A CN 201310434691A CN 103484810 A CN103484810 A CN 103484810A
Authority
CN
China
Prior art keywords
coating
entropy alloy
powder
preparation
tic
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN201310434691.1A
Other languages
Chinese (zh)
Other versions
CN103484810B (en
Inventor
程江波
张保森
王泽华
林尽染
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hohai University HHU
Original Assignee
Hohai University HHU
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hohai University HHU filed Critical Hohai University HHU
Priority to CN201310434691.1A priority Critical patent/CN103484810B/en
Publication of CN103484810A publication Critical patent/CN103484810A/en
Application granted granted Critical
Publication of CN103484810B publication Critical patent/CN103484810B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Other Surface Treatments For Metallic Materials (AREA)
  • Powder Metallurgy (AREA)

Abstract

The invention discloses a plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and a preparation method thereof. The coating material comprises the following components according to atomic percentage: 17-19 percent of Co, 17-19 percent of Cr, 17-19 percent of Fe, 17-19 percent of Ni, 17-19 percent of Mn, 3-10 percent of Ti, 0.5-2 percent of B4C and 1.5-3 percent of BN. The preparation method comprises the steps as follows: (a), pre-treating a substrate; (b), preparing high-entropy alloy coating raw materials; (c), mixing powder; (d), preparing the high-entropy alloy by adopting plasma cladding equipment. The organization structure of the high-entropy alloy coating comprises an FCC phase, a BCC phase and a TiB2-TiC-TiN ternary ceramic phase, and favorable metallurgy bonding between a coating and the substrate is realized; the average Vickers hardness reaches 1,104 Hv.According to the invention, on the basis of the conventional high-entropy alloy coating,a TiB2-TiC-TiN reinforced phase is synthesized in-situ,the strength, hardness and the toughness of the coating are further improved, the match between the hardness and the toughness is achieved, and the potentiality of the high-entropy alloy coating is brought into play to the greatest extent. Moreover, the preparation method is reasonable in working procedures, simple and convenient to implement, is used for preparing durable antisepsis or abrasion proof coatings, and can remarkably prolong the service life of machinery parts.

Description

The plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method
 
Technical field
The present invention relates to a kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof, belongs to Materials Processing Engineering specialty surface engineering technology coatings art.
Background technology
All the time, traditional alloy design method is all to using one or both elements as major components, usually improve again the structure property of alloy by adding other yuan, as the two component system intermetallic compounds such as stainless steel, aluminium alloy, Ni-Al and block amorphous alloy etc.Yet, along with the development of modern industry, people have proposed more and more higher requirement at aspects such as use temperature, intensity, wear resistancies to material.Although people have developed new material processing technique, as rapid solidification, laser processing etc., improve the use properties of material, but can not meet the demands.Taiwan's scholars professors Ye Junwei in 1995 have taken the lead in jumping out the development framework of conventional alloys, propose new alloy designs theory, i.e. many pivots high-entropy alloy.Because high-entropy alloy has the excellent specific property that a lot of conventional alloys does not have, such as the design of the alloy formula by suitable, can obtain the property combination such as high rigidity, high work hardening, high temperature resistant softening, high temperature oxidation resisting, corrosion-resistant, high resistivity, therefore there is very large application potential, as: the instrument that high rigidity and wear-resistant temperature-resistant are anti-corrosion, mould; The corrosion-proof and high-strength degree material of chemical plant, ships; The heat-stable material of turbine blade, heat exchanger and High Temperature Furnaces Heating Apparatus etc.And existing coating technology makes the application of high-entropy alloy obtain further developing.
Up to now, high-entropy alloy mainly adopts the method preparations such as vacuum arc furnace melting and founding.Aspect the preparation of coating: professor Ye Junwei adopts magnetron sputtering to prepare (AlCrNbSiTiV) N xand (AlCrTaTiZr) O xhigh-entropy alloy coating (Scripta Materialia, 2010,62:105-108 and Thin Solid Films, 2010,518:2732-2737), but the prepared film thickness of the method only can reach micro-meter scale, is difficult to bring into play the advantage of high-entropy alloy mechanical property aspect, and base material be there are certain requirements.Professor Liang Xiubing of armored force engineering institute adopt the High Speed Electric Arc Spraying method the AZ91 magnesium alloy matrix surface prepared FeCrNiCoCu and two kinds of high-entropy alloy coatings of FeCrNiCoCuB (Chinese Surface Engineering, 2011,24:70-73).Professor Pan Ye of Southeast China University adopts laser melting and coating technique to prepare FeCoNiCrAl 2si high-entropy alloy coating (Acta Metallurgica Sinica, 2011,47:1075-1079).Yet the document that relevant employing plasma melting coating technique prepares the aspect research of high-entropy alloy coating is also very few, applicant's research work in earlier stage once adopted the plasma melting coating technique successfully to prepare CoCrCuFeNi high-entropy alloy coating (J.B. Cheng, X.B. Liang, Z.H. Wang, B. S. Xu. Plasma Chemistry and Plasma Process, DOI:10.1007/s11090-013-9469-1), although coating has good corrosion resistance nature, but its average hardness is relatively low, be only 195Hv; And have intercrystalline segregation in coating structure, this has directly affected the quality and performance of coating, has limited to a certain extent its industrial application.Along with the development of modern science and technology has proposed more and more higher requirement to material, in order to improve the hardness of CoCrCuFeNi high-entropy alloy coating, reduce intercrystalline segregation, the research of developing the plasma cladding high-entropy alloy base composite coating with excellent mechanical property and homogeneous microstructure still is significant.But up to now, yet there are no and utilize the plasma melting coating technique to prepare in-situ self-generated TiB 2-TiC-TiN ternary ceramics strengthens the report of CoCrFeNiMn high-entropy alloy coating aspect.
Summary of the invention
Prepare the problems such as the lower and tissue distribution of the hardness of CoCrCuFeNi high-entropy alloy coating is inhomogeneous for the past plasma cladding, the object of the present invention is to provide a kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof, utilizes its tissue of coating that the plasma melting coating technique prepares by FCC phase matrix and TiB 2the phase composite of-TiC-TiN ternary ceramics, the average Vickers' hardness of coating is up to 1104Hv.This coating can be applicable to long-effective corrosion and the environment such as wear-resisting of steel construction, and has the characteristics such as cost is lower.
The present invention realizes that the technical scheme of above-mentioned purpose is:
A kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens the high-entropy alloy coated material, and it is characterized in that: the composition of this coated material, by atomic percent, is respectively Co 17 ~ 19 %, Cr17 ~ 19 %, Fe 17 ~ 19 %, Ni 17 ~ 19 %, Mn 17 ~ 19 %, Ti 3 ~ 10 %, B 4c 0.5 ~ 2 % and BN 1.5 ~ 3 %.
A kind ofly prepare a kind of plasma cladding in-situ self-generated TiB claimed in claim 1 2-TiC-TiN strengthens the high-entropy alloy coated material, it is characterized in that preparation method's step is as follows:
(a) pre-treatment of base material: select soft steel as base material, the pre-treatment of base material comprises deoxidation compound and surface cleaning; Wherein remove oxide compound and adopt grinder buffing or method for turning, until it exposes metalluster; Surface cleaning is in acetone soln, to adopt ultrasonic method to be cleaned; With the alcohol wipe surface of steel plate and dry in drying baker, standby after cleaning;
(b) prepare the high-entropy alloy coating material: the composition of this coating material, by atomic percent, is respectively Co 17 ~ 19 %, Cr17 ~ 19 %, Fe 17 ~ 19 %, Ni 17 ~ 19 %, Mn 17 ~ 19 %, Ti 3 ~ 10 %, B 4c 0.5 ~ 2 % and BN 1.5 ~ 3 %.Its raw material is chosen metal-powder and the compound powder of respective element, and the purity of each raw material is not less than 99.9%, and the granularity of powder is 20 ~ 150 μ m;
(c) mixed powder: the various raw materials in step (b) are mixed, put into the mixed powder of three-dimensional motion mixer, the mixing machine speed of mainshaft is set as 15-20 rpm, and the mixed powder time is 3-4h, to guarantee powder, mixes;
(d) prepare the high-entropy alloy coating: the powder that step (c) is mixed is packed in powder feeder; adopt the plasma melting coating equipment to prepare coating; concrete processing parameter is: cladding electric current 160-180A; cladding voltage 32-34V, ion-gas flow 1.5-1.8 L/min, shielding gas flow amount 2-2.6 L/min; powder feeding gas flow 1.2-1.5 L/min; cladding speed 40-50 mm/min, welding gun amplitude of oscillation 20-25mm, the spread of electrodes workpiece surface is apart from 15-20 mm.
Described preparation method, is characterized in that being argon gas at ion-gas described in step (d), protection gas and powder feeding gas.
Described preparation method, is characterized in that prepared coating in step (d), and reaching thickness is 1.5 ~ 3mm, and the weave construction of coating is the FCC phase, BCC phase and TiB 2-TiC-TiN ternary ceramics phase; Average Vickers' hardness is up to 1104Hv; The coating of preparation and matrix produce metallurgical binding.
Technique scheme makes the present invention have following beneficial effect: the present invention has disclosed a kind of plasma cladding in-situ self-generated TiB on original high-entropy alloy coating basis 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof, overcome artificial additional ceramic particle and may have pollution, the shortcoming such as combine with coated substrate not firm, make intensity, hardness and the toughness of high-entropy alloy base composite coating all significantly improve, effectively realized the coupling of hardness and obdurability, brought into play to greatest extent the potential of coating, its procedure arrangement is reasonable, be easy to implement, but there is promotional value.
The accompanying drawing explanation
The X ray diffracting spectrum of Fig. 1: embodiment 1 preparation coating,
The surface topography map of Fig. 2: embodiment 2 preparation coatings,
The Cross Section Morphology figure of Fig. 3: embodiment 3 preparation coatings.
Embodiment
embodiment 1:a kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof:
(1), the composition of high-entropy alloy coated material, by atomic percent, be respectively: Co 17 %, Cr17%, Fe 17 %, Ni 17 %, Mn 17%, Ti 10 %, B 4c 2 % and BN 3 %.
(2), the step of high-entropy alloy coating production is as follows:
(a) pretreatment of base material: at first mild steel plate is cut into to the sheet material of 40 * 60 * 8mm, then adopt emery wheel to be polished to surface of steel plate, remove zone of oxidation, until it exposes metalluster; The steel plate of the milled of then fighting each other carries out cleaning by degreasing, adopts acetone soln to be cleaned in ultrasonic wave, and during cleaning, temperature is 25 ° of C; With the alcohol wipe surface of steel plate and dry in drying baker, standby after cleaning;
(b) prepare the high-entropy alloy coating material: accurate weighing coating material powder; By atomic percent, the composition of this coating material powder is Co 17 %, Cr17%, and Fe 17 %, Ni 17 %, Mn 17%, Ti 10 %, B 4c 2 % and BN 3 %.Its raw material is chosen metal-powder and the compound powder of respective element, and the purity of each raw material is not less than 99.9%, and the granularity of powder is 20 ~ 150 μ m;
(c) mixed powder: the various raw materials in step (b) are mixed, put into the mixed powder of three-dimensional motion mixer, the mixing machine speed of mainshaft is set as 15 rpm, and the mixed powder time is 3h, to guarantee powder, mixes;
(d) prepare the high-entropy alloy coating: the powder that step (c) is mixed is packed in powder feeder; adopt the plasma melting coating equipment to carry out the cladding operation; protection gas, ion-gas and powder feeding gas used are argon gas, and the processing parameter of preparation is: cladding electric current 160A, cladding voltage 32V; ion-gas flow 1.5 L/min; shielding gas flow amount 2 L/min, powder feeding gas flow 1.2 L/min, cladding speed 40 mm/min; the welding gun amplitude of oscillation 20 mm, spread of electrodes workpiece surface distance 15 mm.
The X ray diffracting spectrum of embodiment 1 preparation coating is shown in Fig. 1.Can find out, after plasma cladding the structure of coating mainly by the FCC phase, BCC phase, TiB 2, TiC and TiN ceramic phase form.Coating to embodiment 1 preparation utilizes HVS-1000 type Vickers hardness tester to carry out micro-hardness testing, and result shows that the average microhardness of coating is 1104 Hv.
embodiment 2: a kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof:
(1), the composition of high-entropy alloy coated material, by atomic percent, be respectively: Co 18 %, Cr18%, Fe 18%, Ni 18 %, Mn 18%, Ti 7 %, B 4c 1 % and BN 2 %.
(2), the step of high-entropy alloy coating production is as follows:
(a) pretreatment of base material: at first mild steel plate is cut into to the sheet material of 50 * 70 * 8mm, then adopt emery wheel to be polished to surface of steel plate, remove zone of oxidation, until it exposes metalluster; The steel plate of the milled of then fighting each other carries out cleaning by degreasing, adopts acetone soln to be cleaned in ultrasonic wave, and during cleaning, temperature is 25 ° of C; With the alcohol wipe surface of steel plate and dry in drying baker, standby after cleaning;
(b) prepare the high-entropy alloy coating material: accurate weighing coating material powder; By atomic percent, the composition of this coating material powder is Co 18 %, Cr18%, and Fe 18%, Ni 18 %, Mn 18%, Ti 7 %, B 4c 1 % and BN 2 %; Its raw material is chosen metal-powder and the compound powder of respective element, and the purity of each raw material is not less than 99.9%, and the granularity of powder is 20 ~ 150 μ m;
(c) mixed powder: the various raw materials in step (b) are mixed, put into the mixed powder of three-dimensional motion mixer, the mixing machine speed of mainshaft is set as 18 rpm, and the mixed powder time is 3.5 h, to guarantee powder, mixes;
(d) prepare the high-entropy alloy coating: the powder that step (c) is mixed is packed in powder feeder; adopt the plasma melting coating equipment to carry out the cladding operation; protection gas, ion-gas and powder feeding gas used are argon gas, and the processing parameter of preparation is: cladding electric current 170A, cladding voltage 33V; ion-gas flow 1.7 L/min; shielding gas flow amount 2.5 L/min, powder feeding gas flow 1.3 L/min, cladding speed 45 mm/min; the welding gun amplitude of oscillation 23 mm, spread of electrodes workpiece surface distance 18 mm.
Fig. 2 is the surface topography of embodiment 2 preparation coatings.Can find out: the TiB that has a large amount of strips in coating 2ceramic phase, the TiC of tiny bulk and TiN ceramic phase; Grey be organized as the FCC phase, the eutectic structure of white is the BCC phase.
embodiment 3:a kind of plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens high-entropy alloy coated material and preparation method thereof:
(1), the composition of high-entropy alloy coated material, by atomic percent, be respectively: Co 19 %, Cr19%, Fe 19 %, Ni 19 %, Mn 19%, Ti 3 %, B 4c 0.5 % and BN 1.5 %.
(2), the step of high-entropy alloy coating production is as follows:
(a) pretreatment of base material: at first mild steel plate is cut into to the sheet material of 60 * 80 * 8mm, then adopt emery wheel to be polished to surface of steel plate, remove zone of oxidation, until it exposes metalluster; The steel plate of the milled of then fighting each other carries out cleaning by degreasing, adopts acetone soln to be cleaned in ultrasonic wave, and during cleaning, temperature is 25 ° of C; With the alcohol wipe surface of steel plate and dry in drying baker, standby after cleaning;
(b) prepare the high-entropy alloy coating material: accurate weighing coating material powder; By atomic percent, the composition of this coating material powder is Co 19 %, Cr19%, and Fe 19 %, Ni 19 %, Mn 19%, Ti 3 %, B 4c 0.5 % and BN 1.5 %; Its raw material is chosen metal-powder and the compound powder of respective element, and the purity of each raw material is not less than 99.9%, and the granularity of powder is 20 ~ 150 μ m;
(c) mixed powder: the various raw materials in step (b) are mixed, put into the mixed powder of three-dimensional motion mixer, the mixing machine speed of mainshaft is set as 20 rpm, and the mixed powder time is 4 h, to guarantee powder, mixes;
(d) prepare the high-entropy alloy coating: the powder that step (c) is mixed is packed in powder feeder; adopt the plasma melting coating equipment to carry out the cladding operation; protection gas, ion-gas and powder feeding gas used are argon gas, and the processing parameter of preparation is: cladding electric current 180A, cladding voltage 34V; ion-gas flow 1.8 L/min; shielding gas flow amount 2.6 L/min, powder feeding gas flow 1.5 L/min, cladding speed 50 mm/min; the welding gun amplitude of oscillation 25 mm, spread of electrodes workpiece surface distance 20 mm.
As shown in Figure 3, there is metallurgical binding in the Cross Section Morphology of embodiment 3 preparation coating not eroded between coating and matrix, and the structure of coating is by brilliant transformation of crystal orientation, plane bag shape; Tissue is main by white FCC phase, the BCC phase of grey and tiny black ceramic phase composite.

Claims (4)

1. a plasma cladding in-situ self-generated TiB 2-TiC-TiN strengthens the high-entropy alloy coated material, and it is characterized in that: the composition of this coated material, by atomic percent, is respectively Co 17 ~ 19 %, Cr17 ~ 19 %, Fe 17 ~ 19 %, Ni 17 ~ 19 %, Mn 17 ~ 19 %, Ti 3 ~ 10 %, B 4c 0.5 ~ 2 % and BN 1.5 ~ 3 %.
2. one kind prepares a kind of plasma cladding in-situ self-generated TiB claimed in claim 1 2-TiC-TiN strengthens the high-entropy alloy coated material, it is characterized in that preparation method's step is as follows:
(a) pre-treatment of base material: select soft steel as base material, the pre-treatment of base material comprises deoxidation compound and surface cleaning; Wherein remove oxide compound and adopt grinder buffing or method for turning, until it exposes metalluster; Surface cleaning is in acetone soln, to adopt ultrasonic method to be cleaned; With the alcohol wipe surface of steel plate and dry in drying baker, standby after cleaning;
(b) prepare the high-entropy alloy coating material: the composition of this coating material, by atomic percent, is respectively Co 17 ~ 19 %, Cr17 ~ 19 %, Fe 17 ~ 19 %, Ni 17 ~ 19 %, Mn 17 ~ 19 %, Ti 3 ~ 10 %, B 4c 0.5 ~ 2 % and BN 1.5 ~ 3 %;
?its raw material is chosen metal-powder and the compound powder of respective element, and the purity of each raw material is not less than 99.9%, and the granularity of powder is 20 ~ 150 μ m;
(c) mixed powder: the various raw materials in step (b) are mixed, put into the mixed powder of three-dimensional motion mixer, the mixing machine speed of mainshaft is set as 15-20 rpm, and the mixed powder time is 3-4h, to guarantee powder, mixes;
(d) prepare the high-entropy alloy coating: the powder that step (c) is mixed is packed in powder feeder; adopt the plasma melting coating equipment to prepare coating; concrete processing parameter is: cladding electric current 160-180A; cladding voltage 32-34V, ion-gas flow 1.5-1.8 L/min, shielding gas flow amount 2-2.6 L/min; powder feeding gas flow 1.2-1.5 L/min; cladding speed 40-50 mm/min, welding gun amplitude of oscillation 20-25mm, the spread of electrodes workpiece surface is apart from 15-20 mm.
3. preparation method according to claim 2, is characterized in that being argon gas at ion-gas described in step (d), protection gas and powder feeding gas.
4. according to the described preparation method of claim 2, it is characterized in that prepared coating in step (d), reaching thickness is 1.5 ~ 3mm, and the weave construction of coating is the FCC phase, BCC phase and TiB 2-TiC-TiN ternary ceramics phase; Average Vickers' hardness is up to 1104Hv; The coating of preparation and matrix produce metallurgical binding.
CN201310434691.1A 2013-09-23 2013-09-23 Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof Active CN103484810B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201310434691.1A CN103484810B (en) 2013-09-23 2013-09-23 Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201310434691.1A CN103484810B (en) 2013-09-23 2013-09-23 Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof

Publications (2)

Publication Number Publication Date
CN103484810A true CN103484810A (en) 2014-01-01
CN103484810B CN103484810B (en) 2015-06-10

Family

ID=49825397

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201310434691.1A Active CN103484810B (en) 2013-09-23 2013-09-23 Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof

Country Status (1)

Country Link
CN (1) CN103484810B (en)

Cited By (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104264151A (en) * 2014-10-13 2015-01-07 中国人民解放军装甲兵工程学院 Preparation method for TiN coating by adopting in situ synthesis through reactive plasma cladding
CN108048784A (en) * 2018-01-04 2018-05-18 苏州科技大学 A kind of method that plasma thermal sprayed prepares nitride enhancing high-entropy alloy coating
CN108048785A (en) * 2018-01-04 2018-05-18 苏州科技大学 A kind of preparation method of thermal spraying nitride enhancing high-entropy alloy coating
CN108941546A (en) * 2018-06-15 2018-12-07 燕山大学 A kind of high-entropy alloy combination cubic boron nitride superhard composite material and preparation method
CN109504886A (en) * 2018-11-29 2019-03-22 福建工程学院 A kind of high temperature resistant Ti (C, N)-TiB2- HEAs composite cermet material and preparation method thereof
CN109628786A (en) * 2019-01-25 2019-04-16 台州学院 A kind of high temperature resistant Strengthening and Toughening Ti(C, N) based ceramic metal product molding method for preparing
CN111020579A (en) * 2019-12-19 2020-04-17 贵州理工学院 Preparation of TiB on titanium alloy2Method for particle reinforced high-entropy alloy coating
CN111057896A (en) * 2018-10-16 2020-04-24 南京理工大学 Method for preparing FeCoNiCu high-entropy alloy and TiC particle composite reinforced copper-based composite material by vacuum arc melting
CN111441052A (en) * 2020-05-20 2020-07-24 南京工程学院 In-situ synthesized multi-element ceramic reinforced coating and preparation method and application thereof
CN111996435A (en) * 2020-08-31 2020-11-27 重庆理工大学 High-entropy alloy composite powder and method for reinforcing magnesium alloy through ultrahigh-speed laser cladding
CN112251749A (en) * 2020-10-23 2021-01-22 黑龙江科技大学 Method for preparing ceramic phase enhanced high-entropy alloy wear-resistant coating of directional array by plasma cladding
CN113122841A (en) * 2021-04-25 2021-07-16 中国海洋大学 Corrosion-resistant and wear-resistant coating with gradient composite structure and preparation method thereof
CN113564576A (en) * 2020-07-31 2021-10-29 中北大学 Ceramic phase gradient single-phase high-entropy alloy coating material and preparation method thereof
CN114150203A (en) * 2021-11-10 2022-03-08 青岛理工大学 Laser cladding in-situ self-generated high-entropy alloy gradient coating and preparation method thereof
CN114318208A (en) * 2022-01-07 2022-04-12 中国科学院合肥物质科学研究院 Composite coating for lead-based reactor pump impeller and preparation method thereof
CN114574748A (en) * 2022-03-08 2022-06-03 山东农业大学 High-entropy alloy coating material with high wear resistance

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1405355A (en) * 2001-08-04 2003-03-26 山东科技大学机械电子工程学院 Method for depositing paint-coat of metal surface, especially for gradient paint-coat
JP2003253467A (en) * 2002-02-27 2003-09-10 Tocalo Co Ltd Ni ALLOY MEMBER AND PRODUCTION METHOD THEREOF
JP2003277954A (en) * 2002-03-26 2003-10-02 Tocalo Co Ltd Ni BASED HIGH TEMPERATURE STRENGTH MEMBER, PRODUCTION METHOD THEREOF, AND FILM FORMING MATERIAL FOR THE MEMBER
CN102459688A (en) * 2009-06-18 2012-05-16 苏舍梅塔普拉斯有限责任公司 Protective coating, coated component having a protective coating, and method for producing a protective coating

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1405355A (en) * 2001-08-04 2003-03-26 山东科技大学机械电子工程学院 Method for depositing paint-coat of metal surface, especially for gradient paint-coat
JP2003253467A (en) * 2002-02-27 2003-09-10 Tocalo Co Ltd Ni ALLOY MEMBER AND PRODUCTION METHOD THEREOF
JP2003277954A (en) * 2002-03-26 2003-10-02 Tocalo Co Ltd Ni BASED HIGH TEMPERATURE STRENGTH MEMBER, PRODUCTION METHOD THEREOF, AND FILM FORMING MATERIAL FOR THE MEMBER
CN102459688A (en) * 2009-06-18 2012-05-16 苏舍梅塔普拉斯有限责任公司 Protective coating, coated component having a protective coating, and method for producing a protective coating

Cited By (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104264151A (en) * 2014-10-13 2015-01-07 中国人民解放军装甲兵工程学院 Preparation method for TiN coating by adopting in situ synthesis through reactive plasma cladding
CN104264151B (en) * 2014-10-13 2020-01-07 中国人民解放军装甲兵工程学院 Preparation method for TiN coating by reactive plasma cladding in-situ synthesis
CN108048784A (en) * 2018-01-04 2018-05-18 苏州科技大学 A kind of method that plasma thermal sprayed prepares nitride enhancing high-entropy alloy coating
CN108048785A (en) * 2018-01-04 2018-05-18 苏州科技大学 A kind of preparation method of thermal spraying nitride enhancing high-entropy alloy coating
CN108048784B (en) * 2018-01-04 2019-07-12 苏州科技大学 A kind of method that plasma thermal sprayed prepares nitride enhancing high entropy alloy coating
CN108048785B (en) * 2018-01-04 2019-07-12 苏州科技大学 A kind of preparation method of thermal spraying nitride enhancing high entropy alloy coating
CN108941546A (en) * 2018-06-15 2018-12-07 燕山大学 A kind of high-entropy alloy combination cubic boron nitride superhard composite material and preparation method
CN111057896A (en) * 2018-10-16 2020-04-24 南京理工大学 Method for preparing FeCoNiCu high-entropy alloy and TiC particle composite reinforced copper-based composite material by vacuum arc melting
CN109504886A (en) * 2018-11-29 2019-03-22 福建工程学院 A kind of high temperature resistant Ti (C, N)-TiB2- HEAs composite cermet material and preparation method thereof
CN109628786A (en) * 2019-01-25 2019-04-16 台州学院 A kind of high temperature resistant Strengthening and Toughening Ti(C, N) based ceramic metal product molding method for preparing
CN111020579A (en) * 2019-12-19 2020-04-17 贵州理工学院 Preparation of TiB on titanium alloy2Method for particle reinforced high-entropy alloy coating
CN111020579B (en) * 2019-12-19 2022-02-15 贵州理工学院 Preparation of TiB on titanium alloy2Method for particle reinforced high-entropy alloy coating
CN111441052B (en) * 2020-05-20 2020-11-20 南京工程学院 In-situ synthesized multi-element ceramic reinforced coating and preparation method and application thereof
CN111441052A (en) * 2020-05-20 2020-07-24 南京工程学院 In-situ synthesized multi-element ceramic reinforced coating and preparation method and application thereof
CN113564576A (en) * 2020-07-31 2021-10-29 中北大学 Ceramic phase gradient single-phase high-entropy alloy coating material and preparation method thereof
CN111996435A (en) * 2020-08-31 2020-11-27 重庆理工大学 High-entropy alloy composite powder and method for reinforcing magnesium alloy through ultrahigh-speed laser cladding
CN112251749A (en) * 2020-10-23 2021-01-22 黑龙江科技大学 Method for preparing ceramic phase enhanced high-entropy alloy wear-resistant coating of directional array by plasma cladding
CN112251749B (en) * 2020-10-23 2023-04-07 黑龙江科技大学 Method for preparing ceramic phase enhanced high-entropy alloy wear-resistant coating of directional array by plasma cladding
CN113122841A (en) * 2021-04-25 2021-07-16 中国海洋大学 Corrosion-resistant and wear-resistant coating with gradient composite structure and preparation method thereof
CN114150203A (en) * 2021-11-10 2022-03-08 青岛理工大学 Laser cladding in-situ self-generated high-entropy alloy gradient coating and preparation method thereof
CN114150203B (en) * 2021-11-10 2022-12-27 青岛理工大学 Laser cladding in-situ self-generated high-entropy alloy gradient coating and preparation method thereof
CN114318208A (en) * 2022-01-07 2022-04-12 中国科学院合肥物质科学研究院 Composite coating for lead-based reactor pump impeller and preparation method thereof
CN114318208B (en) * 2022-01-07 2023-12-08 中国科学院合肥物质科学研究院 Composite coating for lead-based reactor pump impeller and preparation method thereof
CN114574748A (en) * 2022-03-08 2022-06-03 山东农业大学 High-entropy alloy coating material with high wear resistance

Also Published As

Publication number Publication date
CN103484810B (en) 2015-06-10

Similar Documents

Publication Publication Date Title
CN103484810B (en) Plasma cladding in-situ synthesized TiB2-TiC-TiN reinforced high-entropy alloy coating material and preparation method thereof
Huang et al. Dry sliding wear behavior of laser clad TiVCrAlSi high entropy alloy coatings on Ti–6Al–4V substrate
Jin et al. Strengthening behavior of AlCoCrFeNi (TiN) x high-entropy alloy coatings fabricated by plasma spraying and laser remelting
Liu et al. Microstructure and wear behavior of (Cr, Fe) 7C3 reinforced composite coating produced by plasma transferred arc weld-surfacing process
Yang et al. Microstructure, hardness and slurry erosion-wear behaviors of high-speed laser cladding Stellite 6 coatings prepared by the inside-beam powder feeding method
CN101921930B (en) Multicomponent microalloyed titanium alloy and preparation method thereof
CN113122841B (en) Corrosion-resistant and wear-resistant coating with gradient composite structure and preparation method thereof
Cao et al. Microstructure, mechanical and tribological property of multi-components synergistic self-lubricating NiCoCrAl matrix composite
CN104388927B (en) Method for preparing high-hardness coating on aluminum alloy surface
CN103752818B (en) A kind of composite powder containing high chromium content for laser melting coating
Liu et al. Design and characterization of AlNbMoTaCux high entropy alloys laser cladding coatings
CN106148949A (en) A kind of laser-induction composite cladding Graphene strengthens Ni3the method of Ti composite
CN104313570A (en) Co3W3C fishbone-like hard phase-reinforced Fe-based wear-resistant coating and preparation thereof
CN103233224A (en) Method for preparing high-chromium wear-resistant alloy through laser cladding
CN113025926B (en) High-entropy amorphous alloy material and preparation method thereof
CN102912340A (en) Preparation method for high temperature impact wear resistant gradient composite material
CN106756997A (en) A kind of ceramic reinforced Metal Substrate laser cladding layer and its preparation technology
CN104195362A (en) Preparation method of high-boron and wear-resistant alloy
CN105506620B (en) A kind of synchronization laser cladding method of the compound nickel-base alloy of copper-based surfaces
Lv et al. Effects of WC addition on the erosion behavior of high-velocity oxygen fuel sprayed AlCoCrFeNi high-entropy alloy coatings
Zhang et al. Microstructure and high-temperature properties of Fe-Ti-Cr-Mo-BC-Y2O3 laser cladding coating
Wang et al. Wear and corrosion behavior of laser clad Cr3Si reinforced intermetallic composite coatings
CN104233282A (en) Nickel base alloy powder for repairing turbocharger wheel disc of internal combustion engine
CN104630769B (en) Flyash activity Argon arc cladding Ni base aluminium oxide titanium diboride composite coating and preparation method thereof
Liu et al. Preparation and enhanced wear resistance of HVAF-sprayed Fe-TiB2 cermet coating reinforced by carbon nanotubes

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant