压电
材料科学
电场
极化(电化学)
电介质
压电系数
多孔性
有限元法
极化密度
机电耦合系数
复合材料
机械
光电子学
物理
热力学
磁场
化学
物理化学
量子力学
磁化
作者
Germán Martínez-Ayuso,Michael I. Friswell,Hamed Haddad Khodaparast,James Roscow,Christopher R. Bowen
标识
DOI:10.1016/j.actamat.2019.04.021
摘要
High piezoelectric coupling coefficients enable the harvesting of more energy or increase the sensitivity of sensors which work using the principle of piezoelectricity. These coefficients depend on the material properties, but the manufacturing process can have a significant impact on the resulting overall coefficients. During the manufacturing process, one of the main steps is the process of polarization. The degree of polarization depends on multiple factors and it can strongly influence the final piezoelectric coefficients. In this paper, a study on the electric field distribution on the sensitivity of the main piezoelectric and dielectric coefficients to the polarization process is performed, focusing on porous piezoelectric materials. Different inclusion geometries are considered, namely spherical, ellipsoidal and spheres with cracks. The electric field distribution at the micro scale within a representative volume element is modelled to determine the material polarization level using the finite element method. The results show that the electric field distribution is highly dependent on the inclusion geometries and cracks and it has a noticeable impact on the equivalent piezoelectric coefficients. These results are compared with experimental measurements from published literature. Good agreement is found between the ellipsoidal model and the experimental data.
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