Optimum Study of Power Efficiency of a THUNDER Harvester

Nahid Hasan, Shang Wang, A. Arab, Fengxia Wang
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引用次数: 4

Abstract

A piezoelectric-coupled finite element model for a THUNDER harvester (THin layer UNimorph DrivER) is developed and studied in this work. THUNDER is a curved piezoelectric energy generator developed by NASA Langley Research Center, which has better vibration absorption and higher energy recovery efficiency at low-frequency vibration compared to a flat PZT harvester. To apprehend the piezoelectric effect of the THUNDER harvester, finite element method was used to perform the piezoelectric coupled field analysis. Piezoelectric THUNDER harvester was studied under cantilever boundary condition. In the model, the excitation forces are distribution force allied on the top of the dome line. An electric circuit element was used to create load resistance across the electrodes to obtain the generated voltage and power. The effect of the geometric parameter was investigated via the varying radius of curvature, which affects the resonance frequency, voltage, and power output of the THUNDER. Good agreement between finite element analysis and experimental results were also observed. In finite element analysis: Modal analysis was carried out to find the resonance frequency at which maximum performance characteristics of the THUNDER can be achieved. Then, the harmonic analysis was performed to distinguish the voltage and power output variation as the load resistance changes. The effects of the varying radius of curvature on the power efficiency of the THUNDER were summarized.
THUNDER收割机功率效率优化研究
本文建立并研究了雷电采集器(THin layer UNimorph DrivER)的压电耦合有限元模型。THUNDER是美国国家航空航天局兰利研究中心研制的弯曲压电能量发生器,与扁平PZT收割机相比,在低频振动时具有更好的吸振性和更高的能量回收效率。为了理解THUNDER收割机的压电效应,采用有限元法进行了压电耦合场分析。对悬臂边界条件下的压电式THUNDER采集器进行了研究。在模型中,激励力是联合在穹顶线顶部的分布力。电路元件用于在电极之间产生负载电阻,以获得产生的电压和功率。通过曲率半径的变化,研究了几何参数对THUNDER谐振频率、电压和输出功率的影响。有限元分析结果与实验结果吻合较好。在有限元分析中:进行模态分析,以找到能够实现THUNDER最大性能特性的共振频率。然后,进行谐波分析,以区分电压和输出功率随负载电阻变化的变化。总结了不同曲率半径对THUNDER功率效率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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