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首页> 外文期刊>International Journal of Engineering Science >Two-dimensional contact mechanics problems involving inhomogeneously elastic solids split into three distinct layers
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Two-dimensional contact mechanics problems involving inhomogeneously elastic solids split into three distinct layers

机译:涉及非均质弹性固体的二维接触力学问题分为三个不同的层

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This paper investigates the frictionless two-dimensional contact problem of an inhomogeneously elastic material under a rigid punch. The inhomogeneous solid is deemed to comprise three distinct regions which represent a homogeneously elastic coating and substrate joined together by a functionally graded transition layer (interlayer) whose shear modulus depends exponentially on the vertical coordinate. We propose closed form solutions for the horizontal and vertical displacements of the solid which are analytic if the contact pressure is known exactly. These solutions are further used to derive a fast and efficient iterative algorithm from which the contact footprint resulting from the rigid stamp problem may be computed. A selection of numerical results are then presented using this method and it is found that our model compares well with those of other authors in the two particular limiting cases considered here. We then investigate the effects of material inhomogeneity and coating thickness on the cylindrical stamp problem and it is found that the maximum principal stress is highly dependent on the thickness and mechanical properties of the layer. In particular, it is found that the maximum principal stress that occurs in a material with a hard coating may be reduced by increasing the thickness of the transition layer whilst lower stresses are achieved in materials with soft coatings by decreasing interlayer thickness.
机译:本文研究了刚性冲头下非均质弹性材料的无摩擦二维接触问题。不均匀的固体被认为包括三个不同的区域,它们代表通过功能梯度的过渡层(中间层)连接在一起的均匀弹性涂层和基体,该过渡层的剪切模量与垂直坐标呈指数关系。我们为固体的水平和垂直位移提出了封闭形式的解决方案,如果精确知道接触压力,则可以进行解析。这些解决方案还用于推导快速有效的迭代算法,从中可以计算出由刚性压模问题引起的接触足迹。然后使用此方法提供了一些数值结果,发现在这里考虑的两个特定的极限情况下,我们的模型可以与其他作者的模型很好地比较。然后,我们研究了材料不均匀性和涂层厚度对圆柱印模问题的影响,发现最大主应力高度依赖于涂层的厚度和机械性能。特别地,发现可以通过增加过渡层的厚度来减小在具有硬涂层的材料中出现的最大主应力,而在具有软涂层的材料中通过减小中间层厚度可以实现较低的应力。

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