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Numerical simulations of rough contacts between viscoelastic materials

机译:粘弹性材料粗触点的数值模拟

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The durability of the mechanical contact is often plagued by surface-related phenomena like rolling contact fatigue, wear or crack propagation, which are linked to the important gradients of stress arising in the contacting bodies due to interaction at the asperity level. The semi-analytical computational approach adopted in this paper is based on a previously reported algorithm capable of simulating the contact between bodies with arbitrary limiting surfaces and viscoelastic behaviour, which is enhanced and adapted for the contact of real surfaces with microtopography. As steep slopes at the asperity level inevitably lead to localized plastic deformation at the tip of the asperities that are first brought into contact, the viscoelastic behaviour is amended by limiting the maximum value of the pressure on the contact area to that of the material hardness, according to the Tabor equation. In this manner, plasticity is considered in a simplified manner that assures the knowledge of the contact area and of the pressure distribution without estimation of the residual state. The main advantage of this approach is the preservation of the algorithmic complexity, allowing the simulation of very fine meshes capable of capturing particular features of the investigated contacting surface. The newly advanced model is expected to predict the contact specifics of rough surfaces as resulting from various manufacturing processes, thus assisting the design of durable machine elements using elastomers or rubbers.
机译:机械触点的耐久性通常通过滚动接触疲劳,磨损或裂纹传播等表面相关现象困扰,这与由于在粗糙度水平的相互作用中引起的接触体中产生的重要梯度连接。本文采用的半分析计算方法基于先前报告的算法,能够模拟具有任意限制表面和粘弹性行为的体之间的接触,这增强和适于具有微拷作的实际表面的接触。由于在粗糙度水平处的陡坡不可避免地导致首先使粗糙的尖端处于首先接触的粗糙度的局部化塑性变形,通过限制接触区域上的压力的最大值,以使材料硬度的最大值来修改粘弹性行为,根据Tabor方程。以这种方式,以简化的方式考虑可塑性,其确保接触面积和压力分布的知识而无需估计残余状态。这种方法的主要优点是保存算法复杂性,允许模拟能够捕获所研究的接触表面的特定特征的非常细网。新的先进模型预计采用各种制造工艺预测粗糙表面的接触细节,从而帮助使用弹性体或橡胶设计耐用机器元件。

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