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首页> 外文期刊>International Journal of Solids and Structures >Complex variable formulation for non-slipping plane strain contact of two elastic solids in the presence of interface mismatch eigenstrain
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Complex variable formulation for non-slipping plane strain contact of two elastic solids in the presence of interface mismatch eigenstrain

机译:界面失配特征应变存在下两个弹性固体的滑动平面应变接触的复变量公式

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摘要

In this paper, the problems of non-slipping contact, non-slipping adhesive contact, and non-slipping adhesive contact with a stretched substrate are sequentially studied under the plane strain theory. The main results are obtained as follows: (i) The explicit solutions for a kind of singular integrals frequently encountered in contact mechanics (and fracture mechanics) are derived, which enables a comprehensive analysis of non-slipping contacts. (ii) The non-slipping contact problems are formulated in terms of the Kolosov-Muskhelishvili complex potential formulae and their exact solutions are obtained in closed or explicit forms. The relative tangential displacement within a non-slipping contact is found in a compact form. (iii) The spatial derivative of this relative displacement will be referred to in this study as the interface mismatch eigenstrain. Taking into account the interface mismatch eigenstrain, a new non-slipping adhesive contact model is proposed and its solution is obtained. It is shown that the pull-off force and the half-width of the non-slipping adhesive contact are smaller than the corresponding solutions of the JKR model (Johnson et al.; 1971). The maximum difference can reach 9% for pull-off force and 17% for pull-off width, respectively. In contrast, the new model may be more accurate in modeling the non-slipping adhesion. (iv) The non-slipping adhesions with a stretch strain (S-strain) imposed to one of contact counterparts are re-examined and the analytical solutions are obtained. The accurate analysis shows that under small values of the S-strain both the natural adhesive contact half-width and the pull-off force may be augmented, but for the larger S-strain values they are always reduced. It is also found that Dundurs' parameter β may exert a considerable effect on the solution of the pull-off problem under the S-strain. These solutions may be used to study contacts at macro-, micro-, and nano-scales.
机译:在本文中,根据平面应变理论,依次研究了防滑,胶粘剂接触以及与拉伸基材的胶粘剂接触问题。得到的主要结果如下:(i)推导了接触力学(和断裂力学)中经常遇到的一种奇异积分的显式解,从而可以对防滑接触进行全面分析。 (ii)根据Kolosov-Muskhelishvili复杂势公式来公式化防滑接触问题,并以封闭或显式形式获得其精确解。以紧凑的形式发现了防滑触点内的相对切向位移。 (iii)该相对位移的空间导数在本研究中将称为界面失配本征应变。考虑到界面失配的本征应变,提出了一种新的防滑黏着接触模型,并提出了解决方案。结果表明,防滑粘合剂接触的拉力和半宽度小于JKR模型的相应解(Johnson等; 1971)。对于拉拔力,最大差异可以分别达到9%,对于拉拔宽度,最大差异可以达到17%。相比之下,新模型在建模防滑附着力时可能更准确。 (iv)重新检查施加到接触对应物之一上的具有拉伸应变(S-应变)的防滑粘附,并获得分析溶液。准确的分析表明,在较小的S应变值下,自然胶粘剂接触半宽度和拉拔力都可能会增加,但对于较大的S应变值,它们总是会减小。还发现Dundurs参数β可能对解决S应变下的拉脱问题产生很大影响。这些解决方案可用于研究宏观,微观和纳米尺度的接触。

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