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Fracture characteristics of a cracked equilateral triangle hole with surface effect in piezoelectric materials

机译:压电材料表面效应裂纹等边三角形孔的断裂特性

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A theoretical study is conducted on the fracture behavior of a cracked equilateral triangle hole with surface effect subjected to far-field antiplane mechanical load and inplane electric load. A rigorous analytical solution to the stress and electric displacement fields are obtained based on the theory of Gurtin-Murdoch surface model and conformal mapping technique. A closed form solution to the stress intensity factor, the electric displacement intensity factor and the energy release rate at the tip of crack are presented. Numerical examples are provided to reveal the variations of the electroelastic field intensity factors and the energy release rate with the size of triangle hole, the length of crack and the applied mechanical load and electrical load. The major results of the study are as follows: (1) The electroelastic field intensity factors at crack tip are dramatically size dependent when the size of the cracked triangle hole is at nanoscale. The present solution approaches classical electroelastic theory when the length of cracked equilateral triangle hole has large characteristic dimensions. (2) With the increase of the length of crack, the electroelastic field intensity factors first increase rapidly, and then slowly decrease, and finally stabilize. (3) When considering surface effect, the stress and electric displacement intensity factors depend on the applied mechanical-electrical loads, which is different from that of the classical electroelastic fracture theory. (4) The normalized energy release rate increases with the increase of the size of the cracked triangle hole. (5) The influences of the applied mechanical load on the normalized energy release rate depend on whether the applied electrical load is positive or negative. (6) With the increase of the applied electrical load from negative to positive, the normalized energy release rate release rate first increases and then decreases. Very high positive and negative applied electrical loads shield th
机译:对裂纹等边三角形孔的裂缝行为进行了理论研究,具有对远场抗普林机械负荷和浸入式电荷的表面效应。基于Gurtin-Murdoch表面模型和保形映射技术的理论,获得了应力和电位移场的严格分析解决方案。呈现了应力强度因子的封闭形式的溶液,电容器强度因子和裂缝尖端的能量释放速率。提供了数值示例以揭示电铸场强度因子的变化和具有三角形孔的尺寸的能量释放速率,裂缝长度和所施加的机械负载和电负载。该研究的主要结果如下:(1)当裂纹三角形孔的尺寸在纳米级时,裂纹尖端处的电弹性场强度因子在巨大尺寸上。当裂纹等边三角形孔的长度具有大的特征尺寸时,本解决方法接近经典电弹性理论。 (2)随着裂缝长度的增加,电弹性场强度因子首先迅速增加,然后缓慢减少,最后稳定。 (3)在考虑表面效应时,应力和电力位移强度因子取决于所施加的机械电荷,这与经典电弹性裂缝理论不同。 (4)归一化的能量释放速率随着裂纹三角孔的尺寸的增加而增加。 (5)施加的机械负荷对归一化能量释放速率的影响取决于所施加的电负载是正的还是负的。 (6)随着施加的电负荷从负数呈正值,归一化能量释放率释放速率首先增加,然后减少。非常高的正面和负面应用电荷盾盾

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