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Effective macroscopic adhesive contact behavior induced by small surface roughness

机译:小表面粗糙度引起的有效宏观粘合剂接触行为

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In this paper we study a model contact problem involving adhesive elastic frictionless contact between rough surfaces. The problem's most notable feature is that it captures the phenomenon of depth-dependent-hysteresis (DDH) (e.g., see Kesari et al., 2010), which refers to the observation of different contact forces during the loading and unloading stages of a contact experiment. We specifically study contact between a rigid axi-symmetric punch and an elastic half-space. The roughness is represented as arbitrary periodic undulations in the punch's radial profile. These undulations induce multiple equilibrium contact regions between the bodies at each indentation-depth. Assuming that the system evolves so as to minimize its potential energy, we show that different equilibrium contact regions are selected during the loading and unloading stages at each indentation-depth, giving rise to DDH. When the period and amplitude of our model's roughness is reduced, we show that the evolution of the contact force and radius with the indentation-depth can be approximated with simpler curves, the effective macroscopic behavior, which we compute. Remarkably, the effective behavior depends solely on the amplitude and period of the model's roughness. The effective behavior is useful for estimating material properties from contact experiments displaying DDH. We show one such example here. Using the effective behavior for a particular roughness model (sinusoidal) we analyze the energy loss during a loading/ unloading cycle, finding that roughness can toughen the interface. We also estimate the energy barriers between the different equilibrium contact regions at a fixed indentation-depth, which can be used to assess the importance of ambient energy fluctuations on DDH.
机译:在本文中,我们研究了涉及粗糙表面之间的粘合剂弹性无摩擦接触的模型接触问题。该问题最显着的特征是它捕获了深度相关滞后现象(DDH)(例如,参见Kesari等人,2010年),该现象是指在触点的加载和卸载阶段观察到不同的接触力实验。我们专门研究刚性轴对称冲头和弹性半空间之间的接触。粗糙度表示为冲头径向轮廓中的任意周期性起伏。这些起伏在每个压痕深度处在物体之间引起多个平衡接触区域。假设系统不断发展,以使其势能最小化,我们表明在加载和卸载阶段的每个压痕深度选择了不同的平衡接触区域,从而产生了DDH。当减少模型粗糙度的周期和幅度时,我们表明,接触力和半径随压痕深度的变化可以用更简单的曲线(即我们计算出的有效宏观行为)来近似。值得注意的是,有效行为仅取决于模型粗糙度的幅度和周期。有效行为可用于根据显示DDH的接触实验估算材料性能。我们在这里显示一个这样的例子。使用特定粗糙度模型(正弦波)的有效行为,我们分析了加载/卸载循环期间的能量损失,发现粗糙度可以使界面变硬。我们还估计了在固定压入深度下不同平衡接触区域之间的能垒,该能垒可用于评估DDH上环境能量波动的重要性。

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