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Electrical and mechanical fully coupled theory and experimental verification of Rosen-type piezoelectric transformers

机译:罗森型压电变压器的机电全耦合理论与实验验证

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摘要

A piezoelectric transformer is a power transfer device that converts its input and output voltage as well as current by effectively using electrical and mechanical coupling effects of piezoelectric materials. Equivalent-circuit models, which are traditionally used to analyze piezoelectric transformers, merge each mechanical resonance effect into a series of ordinary differential equations. Because of using ordinary differential equations, equivalent circuit models are insufficient to reflect the mechanical behavior of piezoelectric plates. Electromechanically, fully coupled governing equations of Rosen-type piezoelectric transformers, which are partial differential equations in nature, can be derived to address the deficiencies of the equivalent circuit models. It can be shown that the modal actuator concept can be adopted to optimize the electromechanical coupling effect of the driving section once the added spatial domain design parameters are taken into account, which are three-dimensional spatial dependencies of electromechanical properties. The maximum power transfer condition for a Rosen-type piezoelectric transformer is detailed. Experimental results, which lead us to a series of new design rules, also are presented to prove the validity arid effectiveness of the theoretical predictions.
机译:压电变压器是一种功率传输设备,可通过有效利用压电材料的电气和机械耦合效应来转换其输入和输出电压以及电流。传统上用于分析压电变压器的等效电路模型将每个机械共振效应合并为一系列常微分方程。由于使用了常微分方程,因此等效电路模型不足以反映压电板的机械性能。从机械上讲,可以得出Rosen型压电变压器的全耦合控制方程,本质上是偏微分方程,可以解决等效电路模型的不足。可以看出,一旦考虑了附加的空间域设计参数,即机电特性的三维空间相关性,就可以采用模态致动器概念来优化驱动部分的机电耦合效果。详细介绍了Rosen型压电变压器的最大功率传输条件。实验结果使我们得出了一系列新的设计规则,也证明了理论预测的有效性和有效性。

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