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Modeling and Analysis of Upright Piezoelectric Energy Harvester under Aerodynamic Vortex-induced Vibration

机译:气动涡流振动下立式压电能量采集器的建模与分析

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摘要

This paper presents an upright piezoelectric energy harvester (UPEH) with cylinder extension along its longitudinal direction. The UPEH can generate energy from low-speed wind by bending deformation produced by vortex-induced vibrations (VIVs). The UPEH has the advantages of less working space and ease of setting up an array over conventional vortex-induced vibration harvesters. The nonlinear distributed modeling method is established based on Euler–Bernoulli beam theory and aerodynamic vortex-induced force of the cylinder is obtained by the van der Pol wake oscillator theory. The fluid–solid–electricity governing coupled equations are derived using Lagrange’s equation and solved through Galerkin discretization. The effect of cylinder gravity on the dynamic characteristics of the UPEH is also considered using the energy method. The influences of substrate dimension, piezoelectric dimension, the mass of cylinder extension, and electrical load resistance on the output performance of harvester are studied using the theoretical model. Experiments were carried out and the results were in good agreement with the numerical results. The results showed that a UPEH configuration achieves the maximum power of 635.04 μW at optimum resistance of 250 kΩ when tested at a wind speed of 4.20 m/s. The theoretical results show that the UPEH can get better energy harvesting output performance with a lighter tip mass of cylinder, and thicker and shorter substrate in its synchronization working region. This work will provide the theoretical guidance for studying the array of multiple upright energy harvesters.
机译:本文介绍一种立式压电能量采集器(UPEH),其圆柱体沿其纵向延伸。 UPEH可以通过由涡流诱发的振动(VIV)产生的弯曲变形来从低速风中产生能量。与传统的涡流诱发的振动收集器相比,UPEH具有工作空间较小和易于设置阵列的优点。建立了基于欧拉-伯努利梁理论的非线性分布建模方法,并利用范德波尔尾振子理论获得了气缸的气动涡流诱导力。用拉格朗日方程推导流体-固体-电控制耦合方程,并通过Galerkin离散化求解。还使用能量方法考虑了圆柱重力对UPEH动力特性的影响。利用理论模型研究了基片尺寸,压电尺寸,圆柱延伸量和电阻负载对收割机输出性能的影响。进行了实验,结果与数值结果吻合良好。结果表明,在风速为4.20 m / s进行测试时,UPEH配置在250kΩ的最佳电阻下可获得635.04μW的最大功率。理论结果表明,UPEH的气缸尖端质量更轻,同步工作区域中的基板更厚,更短,可以获得更好的能量收集输出性能。这项工作将为研究多个立式能量采集器的阵列提供理论指导。

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