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Electromechanical Response of Cracks in Piezoelectric Materials under Combined Mechanical and Electrical Loadings

机译:机电组合载荷作用下压电材料裂纹的机电响应

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An experimental and analytical investigation of the electromechanical response of cracks in piezoelectric ceramics subject to combined mechanical and electrical loading is performed. The cracks are created and propagated in piezoelectric lead zirconium titanate (PZT) material under simultaneous mechanical and electrical loads using the Vickers indentation technique. The results have demonstrated that electrical loads can inhibit or enhance crack propagation in piezoelectric materials. Cracks introduced by indentation are observed to propagate less under a positive applied electric field in which the polarity of the field is the same as that for poling whereas the crack propagation is enhanced under a negative applied electric field. Such an effect is observed to be more profound with increasing electric field strength and decreasing mechanical loading. A finite element analysis is performed to model the electromechanical response of cracks in PZT subjected to simultaneous applications of mechanical and electrical loading. It is shown that the stress intensity factor at the crack tip is increased for a negative applied electric field, whereas it is decreased for a positive applied electric field.
机译:实验和分析研究了压电陶瓷在机械和电负载共同作用下的裂纹的机电响应。使用维氏压痕技术,在同时的机械和电气负载下,裂纹会在压电钛酸锆铅(PZT)材料中产生并传播。结果表明,电负载可以抑制或增强压电材料中的裂纹扩展。观察到由压痕引入的裂纹在正电场下的传播较少,在正电场下,电场的极性与极化的极性相同,而在负电场下,裂纹的传播得到了增强。观察到随着电场强度的增加和机械负荷的减小,这种作用更加明显。进行了有限元分析,以模拟在同时施加机械载荷和电气载荷的情况下,PZT中裂纹的机电响应。结果表明,在裂纹尖端的应力强度因子对于负的施加电场是增加的,而对于正的施加电场则减小。

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