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A partially insulated embedded crack in an infinite functionally graded medium under thermo-mechanical loading

机译:无限功能梯度介质在热机械载荷下的部分绝缘埋藏裂纹

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摘要

In high-temperature applications, the materials research community has recently been exploring the possibility of using new nonhomogeneous coatings made of functionally graded materials (FGMs) as an alternative to the conventional homogeneous ceramic coatings. In designing components involving FGMs, an important aspect of the problem is the fracture failure. In this paper, we consider an infinite functionally graded medium with a partially insulated crack subjected to a steady-state heat flux away from the crack region as well as mechanical crack surface stresses. The material is modeled as a nonhomogeneous isotropic elastic medium. The problem is solved under the assumption of plane elasticity. The equations of heat conduction and elasticity are converted analytically into singular integral equations which are solved numerically to yield the crack tip stress intensity factors under thermo-mechanical loading. A crack-closure algorithm is developed to handle the problem of having negative mode I stress intensity factors. The main objective of the paper is to study the effect of the material nonhomogeneity parameters, crack-closure and partial crack surface insulation on the crack tip stress intensity factors for the purpose of gaining better understanding of the thermo-mechanical behavior of graded materials.
机译:在高温应用中,材料研究界最近一直在探索使用功能梯度材料(FGM)制成的新型非均质涂层作为传统均质陶瓷涂层的替代方法的可能性。在设计涉及FGM的组件时,问题的重要方面是断裂破坏。在本文中,我们考虑了具有部分绝缘裂纹的无限功能梯度介质,该介质承受了远离裂纹区域的稳态热通量以及机械裂纹表面应力。该材料被建模为非均质各向同性弹性介质。在平面弹性的假设下解决了该问题。将导热和弹性方程式解析为奇异积分方程,将其数值求解,以得出热机械载荷下的裂纹尖端应力强度因子。开发了一种裂纹闭合算法来处理具有负模I应力强度因子的问题。本文的主要目的是研究材料非均匀性参数,裂纹闭合和部分裂纹表面绝缘对裂纹尖端应力强度因子的影响,以便更好地了解梯度材料的热机械行为。

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