邓德伟

个人信息Personal Information

副教授

硕士生导师

性别:男

毕业院校:大连理工大学

学位:博士

所在单位:材料科学与工程学院

学科:材料加工工程. 材料表面工程

办公地点:大连甘井子区软件园路80号大连理工大学科技园大厦B座510房间

联系方式:HANDY:13998509875 TEL: 86-411-84706561-8051 FAX: 86-411-84788732 deng@dlut.edu.cn 191753572@qq.com

电子邮箱:deng@dlut.edu.cn

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Microstructure and tribological properties of AlCrFe2Ni2W0.2Mo0.75 high-entropy alloy coating prepared by laser cladding in seawater, NaCl solution and deionized water

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论文类型:期刊论文

发表时间:2020-10-25

发表刊物:SURFACE & COATINGS TECHNOLOGY

收录刊物:SCIE

卷号:400

ISSN号:0257-8972

关键字:Laser cladding; High-entropy alloy coating; Microstructure; Tribological properties

摘要:Ocean engineering equipment frequently undergoes tribological impacts during service, resulting in an accelerated deterioration of ocean materials. Thus an effective strategy by introducing high entropy alloy coating was proposed to protect ocean engineering equipment. Accordingly, a new wear-resistant AlCrFe2Ni2W0.2Mo0.75 high entropy alloy coating was designed and deposited on Q235 steel by laser cladding. The corresponding microstructure, microhardness, corrosion resistance and tribological properties in artificial seawater, 3.5 wt% NaC1 solution and deionized water were investigated deeply. The microstructure of coating presents a weave-like morphology and consists of BCC and ordered B2 phases. Its hardness is approximately 630.88 HV, which is almost 4.6 times than that of substrate. In addition, the coating exhibits better tribological properties than Q235 steel substrate and SUS304 in NaCl solution and seawater. And the friction and wear of coating in seawater are the mildest among all environments. It is mainly due to the lubrication effect of Mg(OH)(2), CaCO3 and Ca(OH)(2), as well as the formation of other metal hydroxides and oxides on worn surface of coating, which isolates and reduces wear and friction, resulting in a decrease in friction coefficient and wear rate. Besides, the coating has better corrosion resistance than Q235 substrate and SUS304 in seawater. These suggest that the AlCrFe2Ni2W0.2Mo0.75 coating is a promising material for surface protection of ocean engineering equipment.