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首页> 外文期刊>Intermetallics >Microstructure, mechanical properties and corrosion resistance of CoCrFeNiWx (x=0, 0.2, 0.5) high entropy alloys
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Microstructure, mechanical properties and corrosion resistance of CoCrFeNiWx (x=0, 0.2, 0.5) high entropy alloys

机译:COCRFENIWX(X = 0,0.2,0.5)高熵合金的微观结构,机械性能和耐腐蚀性

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In this study, the microstructures, microhardness, compression performance and corrosion resistance of CoCrFeNiWx (x = 0, 0.2, 0.5, denoted as W-free, W-0.2, and W-0.5, respectively) high-entropy alloys (HEAs) have been studied. Intensive studies show that W addition leads the severe lattice distortion, and thus aggravates the driving force of composition decomposition for W-free HEA. The dual-phase with face-centered cubic (FCC) microstructure in W-0.2 and W-0.5 HEAs was identified. In addition, a mu-(FeCoCr)(7)W-6 phase precipitate from the matrix in W-0.5 HEA. Moreover, the 11.12 at.% W addition induces the formation of cell dendrites and eutectic inter-dendrites with fine laminar spacing in W-0.5 HEA. W addition obviously decreases the grain size, and enhances the microhardness and yield strength of W-free HEA. The W-0.5 HEA has the high microhardness of 357.9 HV and yield strength of 556 MPa, while maintaining the reasonable fracture strain of 35.6%. The strengthening mechanism of mechanical properties can be attributed to the grain refinement strengthening, solid-solution strengthening, and interface hardening. The enhancements of the latter two strengthening effects depend upon the existence of dual FCC phases. The pitting resistance of the containing-W HEAs is enhanced in seawater solution compared with W-free HEA. Especially, the W-0.5 HEA bears the best pitting resistance and easy passivation behavior, owing to that W addition improves the stability of the protective layer.
机译:在本研究中,COCRFENIWX的微观结构,微硬度,压缩性能和耐腐蚀性(x = 0,0.2,0.5,表示为无W-0.2和W-0.5)高熵合金(HEAS)已经研究过。密集研究表明,W添加引起严重的晶格扭曲,从而加剧了W空闲Hea的组成分解的驱动力。鉴定了W-0.2和W-0.5 HEA中的具有面为中心的立方(FCC)微结构的双相。另外,MU-(FECOCR)(7)W-6相对于W-0.5 HEA中的基质沉淀出来。此外,11.12。%w加入诱导细胞枝晶和枝形树枝状细胞间,在W-0.5 Hea中的细层间距。另外,显然降低了晶粒尺寸,增强了无W空的微硬度和产量强度。 W-0.5 HEA具有357.9HV的高型微硬度,屈服强度为556MPa,同时保持合理的断裂菌株35.6%。机械性能的强化机理可归因于晶粒细化强化,固溶强化和界面硬化。后两种强化效应的增强取决于双FCC阶段的存在。与W-Free Hea相比,海水溶液中含有-W HEA的蚀性增强。特别是,由于W添加改善保护层的稳定性,因此W-0.5 Hea承受了最佳的粘接性和易于钝化的行为。

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