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Micro-plasticity of surface steps under adhesive contact: Part Ⅱ-Multiple-dislocation mediated contact hardening

机译:粘合剂接触下表面台阶的微塑性:第二部分-多位错介导的接触硬化

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The study of micro-plastic behavior of rough surface contacts is the critical link towards a fundamental understanding of contact, friction, adhesion, and surface failures at small length scales. In the companion paper (Yu, H.H., Shrotriya, P., Gao, Y.F., Kim, K.-S., 2007. Micro-plasticity of surface steps under adhesive contact. Part I. Surface yielding controlled by single-dislocation nucleation. J. Mech. Phys. Solids 55, 489-516), we have studied the onset of surface yielding due to single-dislocation nucleation from a stepped surface under adhesive contact. Here we analyze the contact hardening behavior due to multiple dislocations in a two-dimensional dislocation model. Continuum micro-mechanical analyses are used to derive the configurational force on the dislocation, while a modified Rice-Thomson criterion is used to model dislocation nucleation. Dislocations nucleated from the surface step are stabilized and pile up as a result of the balance between the resolved driving force and the non-zero lattice resistance in the solid. The dislocation pileup will exert a strong back stress to prevent further dislocation nucleation and thus lead to the contact hardening behavior, the degree of which depends on the slip-plane orientation. Particularly, we find that dislocation interactions between two slip planes can make the contact loading order-of-magnitude easy to nucleate multiple dislocations, which is thus named "latent softening". A mechanistic explanation shows that the latent softening is closely related to the stress-concentration mode mixity at the surface step. Dislocation nucleation will modify the geometric characteristics of the surface step, so that the contact-induced stress state near the step, as described by the mode mixity, changes, which influences the subsequent dislocation nucleation. Our calculations show that the dislocation pileup on one slip plane can even cause the spontaneous dislocation nucleation on the other slip plane without further increase of the contact load. Furthermore, it is found that rough surface contacts at small length scale can lead to the dislocation segregation and the formation of a surface tensile sub-layer. The discrete-dislocation model presented here and in the companion paper provides novel insights in bridging the atomistic simulations and continuum plastic flow analysis of surface asperity contact.
机译:对粗糙表面接触的微观塑性行为的研究是通向小长度尺度上的接触,摩擦,粘附和表面破坏的基本理解的关键环节。在同伴论文中(Yu,HH,Shrotriya,P.,Gao,YF,Kim,K.-S.,2007年。胶粘剂接触下表面台阶的微塑性。第一部分。单错位成核控制表面屈服。 J. Mech。Phys。Solids 55,489-516),我们研究了由于粘合剂接触下台阶表面的单位错成核,表面屈服的开始。在这里,我们分析了二维位错模型中由于多个位错引起的接触硬化行为。连续微力学分析用于导出位错的构型力,而修改后的Rice-Thomson准则用于建模位错成核。由于解析的驱动力与固体中非零晶格电阻之间的平衡,从表面台阶形核的位错得以稳定并堆积。位错堆积将施加强大的背应力,以防止进一步的位错成核,从而导致接触硬化行为,其程度取决于滑移面的方向。特别是,我们发现两个滑动面之间的位错相互作用可以使接触载荷的数量级易于形核多个位错,因此被称为“潜在软化”。力学解释表明,潜在的软化与表面台阶处的应力集中模式混合密切相关。位错形核将改变表面台阶的几何特征,从而如模式混合所描述的那样,台阶附近的接触感应应力状态发生变化,这会影响后续的位错形核。我们的计算表明,一个滑移面上的位错堆积甚至可以导致另一滑移面上的自发位错形核,而不会进一步增加接触载荷。此外,已经发现,小长度尺度上的粗糙表面接触可导致位错偏析并形成表面拉伸子层。本文和随附论文中提出的离散位错模型为桥接原子模拟和表面粗糙接触的连续塑性流动分析提供了新颖的见解。

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