Investigation of Piezoelectric Energy Harvesting From Structural Vibration Induced by Rotating Machinery

H. Ucar
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Abstract

Increasing energy consumption has led recent efforts towards energy harvesting technologies. Among them, piezoelectric energy harvesting with piezo-based sensors and energy harvesters have gained significant attention due to their applicability and efficacy for microscale power generation systems. Present study aims to investigate energy harvesting with piezoelectric materials from structural vibration propagating throughout the structure from vibration sources. For this purpose, a use case of a mechanical pump mounted on a steel foundation is chosen. A Finite Element (FE) model of the foundation of the pump with piezoelectric energy harvesters is developed and validated in an experimental setup. Measured frequency response functions (FRFs) show particularly good match with simulation results. Afterwards, a real measured acceleration data from the mechanical pump is applied. Simulations are performed and effectiveness of the piezoelectric energy harvester for two different locations are demonstrated. In this study, piezoceramic (PZT), PVDF polymer, ZnO film and a PMN-PT single crystal composite is considered as harvester material and the effectiveness of each piezoelectric material are compared.
旋转机械结构振动中压电能量收集的研究
不断增加的能源消耗导致了最近对能量收集技术的努力。其中,基于压电传感器和能量采集器的压电能量收集技术因其在微尺度发电系统中的适用性和有效性而备受关注。本研究旨在研究压电材料从振动源传播到整个结构的能量收集。为此,选择了安装在钢基础上的机械泵用例。建立了压电能量采集器泵的基础有限元模型,并在实验装置上进行了验证。实测频响函数(frf)与仿真结果吻合较好。然后,应用了实际测量的机械泵加速度数据。通过仿真验证了压电能量采集器在两个不同位置的有效性。本研究以压电陶瓷(PZT)、PVDF聚合物、ZnO薄膜和PMN-PT单晶复合材料作为收获材料,并比较了每种压电材料的有效性。
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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