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Prediction of the friction coefficient of filled rubber sliding on dry and wet surfaces with self-affine large roughness

机译:具有仿射粗糙度的干湿路面上滑动的填充橡胶的摩擦系数预测

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The friction of filled rubber on a rough surface is mainly determined by the rubber viscoelasticity and the surface property of multiple-scale asperities that can be represented by the power spectral density of the surface profile (i.e., power spectrum of surface roughness). This paper investigates a prediction model of rubber friction on dry and wet surfaces with large roughness under lightly squeezing, and finds a high stationary friction coefficient that depends on sliding speed. To this end, we demonstrated friction testing at low velocities with carbon-black-filled rubber and a hard substrate having self-affine surface roughness. From the experiment results, we estimated the hysteresis friction coefficient related to energy dissipation resulting from cyclic deformations of the viscoelastic rubber by applying the theory developed by Persson [(J. Chem. Phys. 115 , 3840 (2001)]. We discussed the additional factor, an adhesion force, which also increases the friction coefficient. We concluded that the hysteresis loss of rubber viscoelastic deformation contributes most of the friction force, accounting for the nonlinear viscoelastic behavior of filled rubber, and that the operative surface wavelength extends to the order of micrometers.
机译:填充橡胶在粗糙表面上的摩擦主要取决于橡胶的粘弹性和多尺度粗糙表面的特性,这些特性可以由表面轮廓的功率谱密度(即表面粗糙度的功率谱)表示。本文研究了在轻微挤压下在大粗糙度的干湿表面上橡胶摩擦的预测模型,并发现了取决于滑动速度的高静态摩擦系数。为此,我们演示了使用炭黑填充的橡胶和具有自仿射表面粗糙度的硬质基材在低速下进行的摩擦测试。从实验结果出发,我们应用Persson [[J. Chem。Phys。 115,3840(2001)]的理论,估计了由粘弹性橡胶的循环变形引起的能量耗散相关的磁滞摩擦系数。讨论了附加因素,即粘附力,它也增加了摩擦系数,我们得出结论,橡胶粘弹性变形的滞后损失是大部分摩擦力的原因,这解释了填充橡胶的非线性粘弹性行为,并且工作表面波长在到微米的数量级。

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