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A MECHANICS APPROACH TO STATIC FRICTION OF ELASTIC-PLASTIC FRACTAL SURFACES

机译:弹塑性分形表面静摩擦的力学方法

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摘要

A contact mechanics theory of static friction is presented for isotropic rough surfaces exhibiting fractal behavior. The analysis is based on a piece-wise power-law size distribution and a normal slope distribution of the asperity contacts and elastic-fully plastic deformation models. Numerical integration yields solutions for the normal and friction forces in terms of fractal parameters, elastic-plastic material properties, and interfacial shear strength. The variation of the static coefficient of friction with normal load is related to the effect of the surface topography on the dominant deformation mode at the asperity contacts. Plastic deformation of the smaller asperity contacts dominates at low loads and elastic deformation of the larger asperity contacts at high loads. The critical load signifying the transition from predominantly plastic to elastic deformation depends on the fractal parameters and material properties. In the low-load range, the static coefficient of friction decreases with the increase of the load, while in the high-load range it increases relatively faster with the load. Numerical results for copper fractal surfaces illustrate the effects of normal load, surface topography, and interfacial shear strength on the static coefficient of friction.
机译:提出了具有分形特性的各向同性粗糙表面的静摩擦接触力学理论。该分析基于凹凸接触的分段幂律尺寸分布和正斜率分布以及弹性塑性变形模型。数值积分提供了关于分形参数,弹塑性材料特性和界面剪切强度方面的法向力和摩擦力的解决方案。静摩擦系数随法向载荷的变化与表面形貌对粗糙接触处主要变形模式的影响有关。较小的粗糙触点的塑性变形在低负载下占主导地位,较大的粗糙触点的弹性变形在高负载下占主导地位。表示从塑性变形到弹性变形的临界载荷取决于分形参数和材料特性。在低负荷范围内,静摩擦系数随负荷的增加而减小,而在高负荷范围内,静摩擦系数随负荷的增加而相对较快。铜分形表面的数值结果说明了法向载荷,表面形貌和界面剪切强度对静摩擦系数的影响。

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