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A domain-independent interaction integral for fracture analysis of nonhomogeneous piezoelectric materials

机译:用于非均质压电材料断裂分析的与域无关的相互作用积分

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摘要

Piezoelectric materials and structures contain more or less electromechanical interfaces in engineering applications. It is difficult to obtain the fracture parameters efficiently of the piezoelectric materials with complex interfaces. This paper presents a domain-independent interaction integral for material nonhomogeneity and discontinuity which can be used for solving the stress intensity factors (SIFs) and the electric displacement intensity factor (EDIF) of piezoelectric materials with complex interfaces efficiently. The interaction integral is based on the J-integral by superimposition of two admissible states and the present formulation does not involve any derivatives of mechanical and electric properties. Moreover, it is proved that the interface in the integral domain does not affect the value of the interaction integral and thus, the present method does not require electromechanical parameters of piezoelectric materials to be continuous. The interaction integral method combined with the extended finite element method (XFEM) is used to investigate the influences of material continuity on the SIF and the EDIF and the results show that the material parameters and their first-order derivatives affect both the SIF and the EDIF greatly, while the higher-order derivatives affect both of them slightly.
机译:在工程应用中,压电材料和结构或多或少包含机电接口。难以有效地获得具有复杂界面的压电材料的断裂参数。本文提出了一种用于材料非均质性和不连续性的独立于域的相互作用积分,可用于有效解决具有复杂界面的压电材料的应力强度因子(SIF)和电位移强度因子(EDIF)。相互作用积分是通过两个可允许状态的叠加而基于J积分的,并且本公式不涉及任何机械和电气特性的导数。而且,证明了积分域中的界面不影响相互作用积分的值,因此,本方法不需要压电材料的机电参数是连续的。结合相互作用积分法和扩展有限元方法(XFEM),研究了材料连续性对SIF和EDIF的影响,结果表明材料参数及其一阶导数对SIF和EDIF都有影响。高阶导数对它们的影响都很小。

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