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Evaluation of self-affine surfaces and their implication for frictional dynamics as illustrated with a Rouse material

机译:用Rouse材料说明自仿射曲面的评估及其对摩擦动力学的影响

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We present a theory of hysteresis friction of sliding bulk rubber networks using the dynamic Rouse model for the rubber-glass transition region. The hard substrate is described by a self-affine rough surface that is a good representative for real surfaces having asperities within different length scales of different orders of magnitude. We find a general solution of the friction coefficient as a function of sliding velocity and typical surface parameters(e. g. surface fractal dimension, correlation lengths of surface profile). Further, we show the correlation with the viscoelastic loss modulus of the bulk rubber and the applicability of the Williams-Landel-Ferry transform to the velocity and temperature dependence of the frictional force as found experimentally. We demonstrate how the succesive inclusion of relaxation Rouse modes p = 1, 2, 3, … into the final expression for the frictional force leads to a superposition of the contributions of the different modes and, as a consequence, to a broad, bell-shaped frictional curve as observed in the pioneering experiments of Grosch. We show how the theory simplifies for the special case of a Rouse slider interacting with a Brownian surface.
机译:我们提出了使用动态Rouse模型的橡胶玻璃过渡区域的滑动散装橡胶网络的磁滞摩擦的理论。硬质基材用自仿射粗糙表面描述,该表面可以很好地代表具有在不同数量级的不同长度范围内具有凹凸的真实表面。我们找到了作为滑动速度和典型表面参数(例如,表面分形维数,表面轮廓的相关长度)的函数的摩擦系数的一般解。此外,我们显示了与散装橡胶的粘弹性损失模量以及威廉姆斯-兰德尔-费里变换对摩擦力的速度和温度依赖性的适用性之间的关系。我们证明了在摩擦力的最终表达式中成功地包含松弛Rouse模式p = 1,2,3,…是如何导致不同模式的贡献的叠加,并因此导致宽泛的钟形。如Grosch的开创性实验中所观察到的那样,可以形成摩擦曲线。我们展示了该理论如何简化Rouse滑块与布朗表面相互作用的特殊情况。

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