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Effect of Roughness on Frictional Energy Dissipation in Presliding Contacts

机译:粗糙度对预滑动触点摩擦耗能的影响

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A finite element model (FEM) is used to investigate the effect of roughness on the frictional energy dissipation for an elastic contact subjected to simultaneous normal and tangential oscillations. Frictional energy losses are correlated against the maximum tangential load as a power-law where the exponents show the degree of nonlinearity. Individual asperity is shown to undergo similar stick-slip cycles during a loading period. Taller asperities are found to contribute significantly to the total energy dissipation and dominate the trends in the total energy dissipation. The authors' observations for spherical contacts are extended to the rough surface contact, which shows that power-law exponent depends on stick durations individual asperity contacts experience. A theoretical model for energy dissipation is then validated with the FEM, for both spherical and rough surface contacts. The model is used to study the influence of roughness parameters (asperity density, height distribution, and fractal dimension) on magnitude of energy dissipation and power-law exponents. Roughness parameters do not influence the powerlaw exponents. For a phase difference of pi/2 between normal and tangential oscillations, the frictional energy dissipation shows quadratic dependence on the tangential fluctuation amplitude, irrespective of the roughness parameters. The magnitude of energy dissipation is governed by the real area of contact and, hence, depends on the surface roughness parameters. Larger real area of contact results in more energy under similar loading conditions.
机译:有限元模型(FEM)用于研究粗糙度对同时承受法向和切向振动的弹性接触的摩擦能量耗散的影响。摩擦能量损失与最大切向载荷相关,并作为幂律,其中幂指数显示非线性程度。在加载期间,单个粗糙表面经历了类似的粘滑循环。发现更高的粗糙度对总能量耗散有显着贡献,并主导了总能量耗散的趋势。作者对球形接触的观察扩展到了粗糙表面接触,这表明幂律指数取决于单个粗糙接触的粘滞时间。然后,通过有限元方法对球形和粗糙表面接触的能量耗散理论模型进行了验证。该模型用于研究粗糙度参数(粗糙度密度,高度分布和分形维数)对能量耗散和幂律指数的影响。粗糙度参数不会影响幂律指数。对于法向和切向振荡之间的pi / 2相位差,摩擦能耗散与切向波动幅度呈二次依赖关系,而与粗糙度参数无关。能量耗散的大小由实际接触面积决定,因此取决于表面粗糙度参数。在相似的负载条件下,较大的实际接触面积会产生更多的能量。

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