Surface effect on the partial-slip contact of a nano-sized flat indenter

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Mechanics of Materials Pub Date : 2024-06-01 DOI:10.1016/j.mechmat.2024.105057
Sha Xiao, Hui Wu, Zhilong Peng, Yin Yao, Shaohua Chen
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Abstract

The partial-slip contact at nano-scale is always influenced by a surface effect. A new model based on the Gurtin-Murdoch (G-M) surface elasticity theory is proposed in this paper to study the partial-slip contact behavior of a rigid flat nano-indenter on an elastic half-space. The surface effect in the partial-slip contact is characterized via a non-classical boundary condition involving a surface-induced normal traction related to the residual surface stress and a surface-induced tangential traction related to the surface elasticity, the influences of which on stress and displacement fields and the stick-slip state at the contact surface are investigated. It is found that, with the increase of residual surface stress, both the normal pressure and vertical and horizontal displacements in the contact zone decrease, the relative slip between indenter and substrate reduces and the stick region is enlarged. Such effects are basically attributed to the action of the surface-induced normal traction opposite to the externally applied compression. However, the increase of surface elastic constants is conductive to the relative slip and results in a shrinkage of the stick region, which is attributed to the action of the surface-induced tangential traction opposite to the frictional stress. An interesting phenomenon is further unveiled that, when the frictional coefficient increases, the dominant role in affecting the stick-slip state changes from the surface-induced tangential traction to the normal one, thus inspiring a feasible route to manipulate the surface effect by tuning the frictional coefficient of substrate. The present research enables one to better understand the partial-slip contact behavior of nano-indenters, which is of guiding value for anti-wear designs in nano-mechanical devices.

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纳米级平面压头部分滑动接触的表面效应
纳米尺度的部分滑动接触总是受到表面效应的影响。本文提出了一个基于 Gurtin-Murdoch (G-M) 表面弹性理论的新模型,用于研究刚性平面纳米压头在弹性半空间上的部分滑动接触行为。部分滑动接触中的表面效应是通过非经典边界条件来表征的,该边界条件涉及与表面残余应力相关的表面诱导法向牵引和与表面弹性相关的表面诱导切向牵引,研究了它们对接触表面的应力场、位移场和粘滑状态的影响。研究发现,随着表面残余应力的增加,接触区的法向压力、垂直和水平位移均减小,压头与基体之间的相对滑移减小,粘滑区扩大。这些效应主要归因于与外加压缩力相反的表面法向牵引力的作用。然而,表面弹性常数的增加对相对滑移有传导作用,并导致粘滞区域的收缩,这归因于与摩擦应力相反的表面切向牵引力的作用。研究进一步揭示了一个有趣的现象:当摩擦系数增大时,影响粘滑状态的主导作用从表面诱导的切向牵引力转变为法向牵引力,从而为通过调整基底摩擦系数来操纵表面效应提供了一条可行的途径。本研究有助于更好地理解纳米压头的部分滑动接触行为,对纳米机械装置的抗磨损设计具有指导意义。
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来源期刊
Mechanics of Materials
Mechanics of Materials 工程技术-材料科学:综合
CiteScore
7.60
自引率
5.10%
发文量
243
审稿时长
46 days
期刊介绍: Mechanics of Materials is a forum for original scientific research on the flow, fracture, and general constitutive behavior of geophysical, geotechnical and technological materials, with balanced coverage of advanced technological and natural materials, with balanced coverage of theoretical, experimental, and field investigations. Of special concern are macroscopic predictions based on microscopic models, identification of microscopic structures from limited overall macroscopic data, experimental and field results that lead to fundamental understanding of the behavior of materials, and coordinated experimental and analytical investigations that culminate in theories with predictive quality.
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