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Finite element analysis of the spherical indentation of transversely isotropic piezoelectric materials

机译:横向各向同性压电材料的球形压痕的有限元分析

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摘要

Finite element analysis was used to analyze the indentation deformation of a transversely isotropic piezoelectric material (PZT-4) by a rigid spherical indenter. Three cases were considered in the analysis, which included (a) the indentation by an insulating indenter, (b) the indentation by a conducting indenter and (c) the indentation of the piezoelectric material with equal electric potential on the top surface. The indentation load was found to be proportional to the 3/2 power of the indentation depth for all three cases. Using the simulation results and the analytical relation for the indentation by a rigid, insulating indenter, semi-empirical relations were developed between the indentation load and the indentation depth and between the electric potential on the indenter and the indentation depth, respectively, for the indentation by a rigid, conducting indenter. The singularity of electric field for the indentation by the conducting indenter led to a stress singularity at the contact edge, which will likely cause a structural damage. The electric analysis found that a non-zero electric potential was induced on the conducting indenter and the surface of the piezoelectric material with equal potential on the top surface. The apparent piezoelectric coefficients determined from the indentation by the conducting indenter and the indentation of the piezoelectric material with equal potential on the top surface decreased with increasing indentation depth.
机译:使用有限元分析来分析刚性球形压头对横向各向同性压电材料(PZT-4)的压痕变形。分析中考虑了三种情况,其中包括(a)绝缘压头的压痕,(b)导电压头的压痕,以及(c)顶面上等电位的压电材料的压痕。发现在所有三种情况下,压痕载荷都与压痕深度的3/2幂成比例。利用仿真结果和刚性绝缘压头的压痕解析关系,分别得出压痕载荷和压痕深度以及压痕电位和压痕深度之间的半经验关系。用刚性的压头。用于导电压头的压痕的电场奇异性会导致接触边缘处的应力奇异性,这很可能会导致结构损坏。电分析发现,在导电压头和压电材料的表面上感应出非零电势,在顶表面上电势相等。由导电压头的压痕和顶表面上等电位的压电材料的压痕确定的视在压电系数随着压痕深度的增加而减小。

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