Environmental Noise Harvester Using a Helmholtz Resonator and Piezoelectric Transducer

Daniel Aguilar-Torres, O. Jiménez-Ramírez, Onesimo Flores-Acoltzi, Juan Á Jiménez-García, Guillermo Luque-Zuñiga, R. Vázquez-Medina
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引用次数: 1

Abstract

This work represents a guideline for designing, analyzing, and implementing a compact, low-cost, lightweight, and portable system that harvests energy from environmental noise at different locations. Considering that the proposed energy harvesting system (EHS) is based on a piezoelectric transducer (PZT) embedded in a Helmholtz resonator (HR), we first characterize the noise at four different locations selecting the most suitable ones for energy harvesting. Then, we electrically analyze and describe the PZT determining its resonance frequency. Subsequently, by using this frequency, we perform the sizing of the HR. Thus, we analyze the behavior of the implemented EHS under controlled and actual conditions. In controlled conditions, we determine the gain of the implemented EHS using a pure sinusoidal signal at 500 Hz and a pink noise signal. In actual conditions, we measured its gain considering two different locations. We observed that under controlled conditions, the implemented EHS achieved a gain between 168.3% and 200.3%, and under actual conditions, its gain was 159.5% in the traffic zone and 597.7% in the music zone. In addition, for the HR modeling and design, we show that its theoretical gain corresponds to its simulation gain but differs from its experimental gain due to the used material and manufacturing. Finally, we show that the implemented EHS performs similarly or better than other more sophisticated systems or systems with more piezoelectric elements.
使用亥姆霍兹谐振腔和压电换能器的环境噪声收集器
这项工作为设计、分析和实现一种紧凑、低成本、轻便、便携的系统提供了指导方针,该系统可以从不同地点的环境噪声中收集能量。考虑到所提出的能量收集系统(EHS)是基于嵌入在亥姆霍兹谐振器(HR)中的压电换能器(PZT),我们首先对四个不同位置的噪声进行表征,选择最适合能量收集的位置。然后,我们电分析和描述PZT确定其谐振频率。随后,通过使用这个频率,我们执行HR的大小调整。因此,我们分析了在受控和实际条件下实施EHS的行为。在受控条件下,我们使用500 Hz的纯正弦信号和粉红噪声信号来确定实现的EHS的增益。在实际条件下,我们测量了两个不同位置的增益。我们观察到,在控制条件下,实施的EHS的增益在168.3% ~ 200.3%之间,在实际条件下,交通区域的增益为159.5%,音乐区域的增益为597.7%。此外,对于HR建模和设计,我们表明其理论增益与仿真增益相对应,但由于所用材料和制造方法的不同而与实验增益不同。最后,我们证明了所实现的EHS的性能与其他更复杂的系统或具有更多压电元件的系统相似或更好。
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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