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A mechanistic understanding of the wear coefficient: From single to multiple asperities contact

机译:对磨损系数的机械理解:从单次粗糙接触到多次粗糙接触

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Sliding contact between solids leads to material detaching from their surfaces in the form of debris particles, a process known as wear. According to the well-known Archard wear model, the wear volume (i.e. the volume of detached particles) is proportional to the load and the sliding distance, while being inversely proportional to the hardness. The influence of other parameters are empirically merged into a factor, referred to as wear coefficient, which does not stem from any theoretical development, thus limiting the predictive capacity of the model. Based on a recent understanding of a critical length-scale controlling wear particle formation, we present two novel derivations of the wear coefficient: one based on Archard’s interpretation of the wear coefficient as the probability of wear particle detachment and one that follows naturally from the up-scaling of asperity-level physics into a generic multi-asperity wear model. As a result, the variation of wear rate and wear coefficient are discussed in terms of the properties of the interface, surface roughness parameters and applied load for various rough contact situations. Both new wear interpretations are evaluated analytically and numerically, and recover some key features of wear observed in experiments. This work shines new light on the understanding of wear, potentially opening a pathway for calculating the wear coefficient from first principles.
机译:固体之间的滑动接触会导致材料以碎片颗粒的形式从其表面脱离,此过程称为磨损。根据众所周知的Archard磨损模型,磨损量(即分离的颗粒的体积)与载荷和滑动距离成正比,而与硬度成反比。其他参数的影响将根据经验合并为一个称为磨损系数的因素,该因素并非源于任何理论发展,因此限制了模型的预测能力。基于对控制磨损颗粒形成的关键长度尺度的最新理解,我们提出了两种新的磨损系数推导:一种基于Archard对磨损系数作为磨损颗粒脱离概率的解释,而另一种则自然而然地遵循-将粗糙级物理转换成通用的多粗糙磨损模型。结果,讨论了磨损率和磨损系数的变化,涉及界面的特性,表面粗糙度参数和各种粗糙接触情况下的施加载荷。两种新的磨损解释都经过了分析和数值评估,并恢复了在实验中观察到的磨损的一些关键特征。这项工作为了解磨损提供了新的思路,可能为从第一性原理计算磨损系数开辟道路。

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