Role of chemical short-range order in friction and wear behaviors in medium-entropy alloy CoCrNi

IF 6.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL Tribology International Pub Date : 2024-02-06 DOI:10.1016/j.triboint.2024.109392
Hongcai Xie , Rui Zhao , Zhichao Ma , Wei Zhang , Hongwei Zhao , Luquan Ren
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Abstract

Chemical short-range order (SRO) can effectively retard the dislocation motion, allowing for a substantive hardening effect. Notwithstanding, fundamental mechanisms behind subsequent friction and wear processes at the atom level are insufficiently understood. Meanwhile, it is still a tall order to experimentally characterize this nanoscale chemical inhomogeneity. Here, through conducting hybrid Monte-Carlo (MC) and molecular dynamic (MD) simulations, the impact of chemical SRO on the friction and wear behaviors in a CoCrNi medium-entropy alloy (MEA) was investigated. The friction weakening after introducing SRO was demonstrated to be the consequence of a combination of several factors apart from a reduction in penetration depth, which encompassed a suppression of the pile-up effect and lowered densities in total and immobile dislocation ahead of tip. Meanwhile, the SRO-dependent repression of sub-surface deformation behaviors was verified to effectively improve wear resistance. Particularly, the presence of Ni-rich domains was validated to impose additional resistance to dislocations slipping toward the interior and increase the interlocking likelihood between dislocations parallel to the surface and those slipping deeper into the sub-surface, effectively weakening the sub-surface damage. In addition, a strong SRO was corroborated to further decrease friction and wear damage. These findings are expected to provide important insights into understanding chemical SRO-related anti-friction and wear-resisting behaviors in a CoCrNi MEA.

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化学短程有序在中熵合金 CoCrNi 的摩擦和磨损行为中的作用
化学短程有序(SRO)可有效延缓位错运动,从而产生实质性的硬化效果。尽管如此,人们对随后的摩擦和磨损过程在原子层面上的基本机制了解得还不够。同时,对这种纳米级化学不均匀性进行实验表征仍然是一项艰巨的任务。本文通过蒙特卡洛(MC)和分子动力学(MD)混合模拟,研究了化学 SRO 对钴铬镍中熵合金(MEA)摩擦和磨损行为的影响。结果表明,引入 SRO 后的摩擦减弱是多个因素综合作用的结果,除了穿透深度的减小外,还包括堆积效应的抑制以及尖端前方总位错和不动位错密度的降低。同时,SRO 对表层下变形行为的抑制作用被证实能有效提高耐磨性。特别是,富镍畴的存在被证实对向内部滑动的位错施加了额外的阻力,并增加了平行于表面的位错与滑向次表面深处的位错之间的互锁可能性,从而有效地削弱了次表面损伤。此外,强 SRO 被证实可进一步减少摩擦和磨损损伤。这些发现有望为理解钴铬镍 MEA 中与化学 SRO 相关的抗摩擦和耐磨损行为提供重要见解。
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来源期刊
Tribology International
Tribology International 工程技术-工程:机械
CiteScore
10.10
自引率
16.10%
发文量
627
审稿时长
35 days
期刊介绍: Tribology is the science of rubbing surfaces and contributes to every facet of our everyday life, from live cell friction to engine lubrication and seismology. As such tribology is truly multidisciplinary and this extraordinary breadth of scientific interest is reflected in the scope of Tribology International. Tribology International seeks to publish original research papers of the highest scientific quality to provide an archival resource for scientists from all backgrounds. Written contributions are invited reporting experimental and modelling studies both in established areas of tribology and emerging fields. Scientific topics include the physics or chemistry of tribo-surfaces, bio-tribology, surface engineering and materials, contact mechanics, nano-tribology, lubricants and hydrodynamic lubrication.
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