How Thermal Fluctuations Affect Hard-Wall Repulsion and Thereby Hertzian Contact Mechanics

IF 2 Q2 ENGINEERING, MECHANICAL
Yunong Zhou, Anle Wang, M. Müser
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引用次数: 6

Abstract

Contact problems as they occur in tribology and colloid science are often solved with the assumption of hard-wall and hard-disk repulsion between locally smooth surfaces. This approximation is certainly meaningful at sufficiently coarse scales. However, at small scales, thermal fluctuations can become relevant. In this study, we address the question how they render non-overlap constraints into finite-range repulsion. To this end, we derive a closed-form analytical expression for the potential of mean force between a hard wall and a thermally fluctuating, linearly elastic counterface. Theoretical results are validated with numerical simulations based on the Green's function molecular dynamics technique, which is generalized to include thermal noise while allowing for hard-wall interactions. Applications consist of the validation of our method for flat surfaces and the generalization of the Hertzian contact to finite temperature. In both cases, similar force-distance relationships are produced with effective potentials as with fully thermostatted simulations. Analytical expressions are identified that allow the thermal corrections to the Hertzian load-displacement relation to be accurately estimated. While these corrections are not necessarily small, they turn out surprisingly insensitive to the applied load.
热波动如何影响硬壁斥力从而影响赫兹接触力学
摩擦学和胶体科学中出现的接触问题,通常以局部光滑表面之间存在硬壁和硬盘斥力的假设来解决。这种近似在足够粗糙的尺度上当然是有意义的。然而,在小尺度上,热波动可能是相关的。在这项研究中,我们解决了它们如何将非重叠约束呈现为有限范围排斥的问题。为此,我们导出了硬壁和热波动线性弹性面之间的平均力势的封闭解析表达式。基于格林函数分子动力学技术的数值模拟验证了理论结果,该技术被推广到包括热噪声,同时允许硬壁相互作用。应用包括我们的方法在平面上的验证和有限温度下赫兹接触的推广。在这两种情况下,产生的有效势与完全恒温模拟的力-距离关系相似。确定了能够准确估计赫兹载荷-位移关系的热修正的解析表达式。虽然这些修正不一定很小,但它们对所施加的负载却出奇地不敏感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Mechanical Engineering
Frontiers in Mechanical Engineering Engineering-Industrial and Manufacturing Engineering
CiteScore
4.40
自引率
0.00%
发文量
115
审稿时长
14 weeks
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