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Application of the hybrid complex variable method to the analysis of a crack at a piezoelectric-metal interface

DOI:10.2140/jomms.2018.13.587 期刊:Journal of Mechanics of Materials and Structures 出版年份:2018 更新时间:2025-09-23 15:23:52
摘要: A plane strain problem for an electrically conducting interface crack between linear transversely isotropic piezoelectric and isotropic elastic conductor materials under remote mechanical loading is considered. The attention is focused on a hybrid complex variable method which combines the Stroh formalism for piezoelectric materials with the Muskhelishvili formalism for conducting isotropic elastic materials. This method is illustrated in detail for the open crack model and the contact zone crack model. Using special presentations of mechanical quantities via sectionally analytic functions, a combined Dirichlet–Riemann and Hilbert boundary value problem is formulated and solved analytically. Stress intensity factors as well as the crack tip energy release rate are found in a clear analytical form. Furthermore, transcendental equations for the determination of the realistic contact zone length and the location of the first interpenetration point have been obtained. A significant influence of the external mechanical loading on the crack opening and the stresses as well as the contact zone and interpenetration region lengths is observed. The dependencies of the mentioned values on the intensities of the mechanical loading are presented in tables and associated diagrams.
作者: Volodymyr Govorukha,Marc Kamlah
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To analyze an electrically conducting interface crack between piezoelectric and metal materials under mechanical loading using a hybrid complex variable method, focusing on stress intensity factors, energy release rate, and crack behavior.

The hybrid complex variable method effectively analyzes interface cracks in piezoelectric-metal bimaterials, providing analytical solutions for stress intensity factors and energy release rate. Oscillating singularities in the open crack model lead to unrealistic interpenetration, addressed by the contact zone model. External mechanical loading significantly influences crack behavior, with contact zone and interpenetration lengths increasing under shear stress. The method offers insights for fracture mechanics in electromechanical devices.

The analysis is limited to plane strain conditions and specific material properties (PZT-4 and steel). Assumes frictionless contact and no electric loading effects. The contact zone model may not fully capture real-world complexities, and iterative refinement might be needed for accurate contact zone length prediction.

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