Electromechanical finite element analysis for designed low-frequency MEMS piezoelectric vibration energy harvester

Ling Xu, Shengrui Zhou, Ying Xiang, Yinglin Yang
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引用次数: 2

Abstract

This work presents an electromechanical finite element analysis for a proposed MEMS piezoelectric vibration energy harvester. The structure of the MEMS energy harvester consists of a basic cantilever beam with a clamped end mass and a spring net which can enhance the reliability of the device. Aluminum nitride thin film is applied as the piezoelectric function material. The proposed MEMS device is also fabricated, packaged and characterized to determine its performance. The spring net structure design is proven to increase the yield of the MEMS energy harvester chips during transportation. Three dimensional electromechanical finite element model coupled the solid mechanics physics and electrostatics physics is built to simulate the piezoelectric effect. The simulated results and the experimental measured data are in close agreement, which verified the prediction of the finite element model. The validation of the model indicate that the finite model can instruct the design of an ideal MEMS piezoelectric device in short period at a low cost.
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设计的低频MEMS压电振动能量采集器机电有限元分析
本文对拟建的MEMS压电振动能量采集器进行了机电有限元分析。MEMS能量采集器的结构由端部质量夹紧的基本悬臂梁和弹簧网组成,从而提高了器件的可靠性。采用氮化铝薄膜作为压电功能材料。提出的MEMS器件也制作,封装和表征,以确定其性能。实践证明,弹簧网结构设计可以提高MEMS能量采集器芯片在运输过程中的成品率。建立了固体力学和静电力学耦合的三维机电有限元模型来模拟压电效应。仿真结果与实验实测数据吻合较好,验证了有限元模型的预测结果。模型的验证表明,该有限模型可以指导在短时间内以低成本设计出理想的MEMS压电器件。
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