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Analysing the effects of sliding, adhesive contact on the deformation and stresses induced within a multi-layered elastic solid

机译:分析滑动,胶粘剂接触对多层弹性固体内形变和应力的影响

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摘要

This paper presents a mathematical model of sliding, adhering contact between a rigid parabolic indenter and a multi-layered elastic solid, which is assumed to comprise of a homogeneous coating bonded through a functionally-graded transitional layer to a homogeneous substrate. The adhesive forces in this investigation are modelled using Lennard-Jones potential and an iterative algorithm is proposed that solves for the contact pressure, surface displacement and sub-surface stresses resultant within the layered solid. The effects of surface adhesion and different material properties such as varying coating/transition layer thickness and coating hardness on the solution of the contact problem are subsequently investigated in detail.\udThe numerical approach presented in this paper demonstrates the significance of having a suitable mathematical representation for the traction distribution along the sliding, adhering contact. It is found that under weakly adhering conditions, the assumption of only Coulombic traction suffices to determine the displacements and subsurface stresses within the multi-layered solid. However, it is noted that stress concentrations within the material begin to propagate through all three layers of the elastic solid with increased surface adhesion, which could potentially induce plasticity and lead to material ploughing under sliding. The proposed model allows us to further investigate and improve our understanding of the combined effects of traction and boundary adhesion in sliding contacts, which can be used to inform the design of materials needed in such conditions.
机译:本文提出了一个刚性抛物线形压头和多层弹性固体之间滑动,粘附接触的数学模型,该模型假定包含通过功能渐变过渡层粘结到均匀基材上的均匀涂层。使用Lennard-Jones势对本研究中的粘着力进行建模,并提出了一种迭代算法,用于解决层状固体中产生的接触压力,表面位移和次表面应力。随后详细研究了表面粘附力和不同材料特性(例如变化的涂层/过渡层厚度和涂层硬度)对接触问题解决方案的影响。\ ud本文提出的数值方法证明了采用合适的数学表示法的重要性。用于沿滑动,粘附接触的牵引力分布。发现在弱附着条件下,仅库仑牵引的假设就足以确定多层固体中的位移和地下应力。但是,应注意的是,材料内的应力集中开始在弹性固体的所有三层中传播,并增加了表面附着力,这可能潜在地引起可塑性并导致材料在滑动条件下耕作。所提出的模型使我们可以进一步研究和改进对滑动接触中的牵引力和边界粘附力的综合影响的理解,这些信息可以用于指导在这种情况下所需材料的设计。

著录项

  • 作者

    Chong, WWF; Chidlow, SJ;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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