An electromechanical stimulation regulating model with flexoelectric effect of piezoelectric laminated micro-beam for cell bionic culture

Author:

Rao Wei-Feng,Wang Ya-Wen,Li An-Qing,Zhou Sha-Sha,Zheng Zu-Mei

Abstract

AbstractCell bionic culture requires the construction of cell growth microenvironments. In this paper, mechanical force and electrical stimulations are applied to the cells cultured on the surface of the piezoelectric laminated micro-beam driven by an excitation voltage. Based on the extended dielectric theory, the electromechanical microenvironment regulating model of the current piezoelectric laminated micro-beam is established. The variational principle is used to obtain the governing equations and boundary conditions. The differential quadrature method and the iterative method are used to solve two boundary value problems for cantilever beams and simply supported beams. In two cases, the mechanical force and electrical stimulations applied to the cells are analyzed in detail and the microscale effect is investigated. This study is meaningful for improving the quality of cell culture and promoting the cross-integration of mechanics and biomedicine.

Funder

the National Natural Science Foundation of China

Science and Technology Support Plan for Youth Innovation of Colleges and Universities in Shandong Province

Nature Science Foundation of Shandong Province, China

Talent research project of Qilu University of Technology

Publisher

Springer Science and Business Media LLC

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