首页> 外文期刊>International Journal of Solids and Structures >Fracture mechanical assessment of interface cracks with contact zones in piezoelectric bimaterials under thermoelectromechanical loadings I. Electrically permeable interface cracks
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Fracture mechanical assessment of interface cracks with contact zones in piezoelectric bimaterials under thermoelectromechanical loadings I. Electrically permeable interface cracks

机译:压电双材料在热电机械载荷作用下具有接触区的界面裂纹的断裂力学评估I.电渗透界面裂纹

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An electrically permeable interface crack with a frictionless contact zone at the right crack tip between two semi-infinite piezoelectric spaces under the action of a remote electromechanical loading and a temperature flux is considered. Assuming that all fields are independent on the coordinate x(2) co-directed with the crack front, the stresses, the electrical and the temperature fluxes as well as the derivatives of the jumps of the displacements, the electrical potential and the temperature at the interface are presented via a set of analytic functions in the (x(1),x(3))-plane with a cut along the crack. Due to this representation firstly an auxiliary problem concerning the direction of the heat flux permitting a transition from a perfect thermal contact to a separation has been solved for a piezoelectric bimaterial. Besides, an inhomogeneous combined Dirichlet-Riemann boundary value problem has been formulated and solved exactly for the above mentioned interface crack. Stress and electrical displacements intensity factors are found in a clear analytical form which is especially easier for a small contact zone length. A simple equation and a closed form analytical formula for the determination of the real contact zone length have been derived and compared with the associated equation of the classical (oscillating) interface crack model defining the zone of crack faces interpenetration. For a numerical illustration of the obtained results a bimaterial cadmium selenium/glass has been used, and the influence of the heat flux upon the contact zone length and the associated stress intensity factor has been shown. (C) 2003 Elsevier Science Ltd. All rights reserved. [References: 26]
机译:考虑了在远程机电负载和温度通量的作用下,在两个半无限压电空间之间的右裂纹尖端处具有无摩擦接触区的电渗透界面裂纹。假设所有场都独立于与裂纹前沿共同指向的坐标x(2),则应力,电通量和温度通量以及位移跃迁,电势和温度的跃变的导数。界面通过(x(1),x(3))平面中的一组解析函数进行表示,并沿裂缝进行切割。首先,由于这种表示,对于压电双材料,已经解决了涉及允许从理想的热接触过渡到分离的热通量方向的辅助问题。此外,针对上述界面裂纹,提出了非均匀的组合的Dirichlet-Riemann边值问题并加以解决。应力和电位移强度因子以清晰的分析形式发现,这对于较小的接触区长度尤其容易。得出了确定实际接触区域长度的简单方程式和闭合形式的解析公式,并将其与定义了裂纹面互穿区域的经典(振荡)界面裂纹模型的相关方程式进行了比较。对于获得的结果的数值说明,已使用双材料镉硒/玻璃,并且已显示了热通量对接触区长度和相关应力强度因子的影响。 (C)2003 Elsevier ScienceLtd。保留所有权利。 [参考:26]

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