Experimental Analysis of a Piezoelectric Energy Harvesting System for Harmonic, Random, and Sine on Random Vibration

Q2 Physics and Astronomy Advances in Acoustics and Vibration Pub Date : 2013-08-04 DOI:10.1155/2013/241025
Jackson W. Cryns, B. Hatchell, Emiliano Santiago-Rojas, K. Silvers
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引用次数: 21

Abstract

Harvesting power with a piezoelectric vibration powered generator using a full-wave rectifier conditioning circuit is experimentally compared for varying sinusoidal, random, and sine on random (SOR) input vibration scenarios; the implications of source vibration characteristics on harvester design are discussed. The rise in popularity of harvesting energy from ambient vibrations has made compact, energy dense piezoelectric generators commercially available. Much of the available literature focuses on maximizing harvested power through nonlinear processing circuits that require accurate knowledge of generator internal mechanical and electrical characteristics and idealization of the input vibration source, which cannot be assumed in general application. Variations in source vibration and load resistance are explored for a commercially available piezoelectric generator. The results agree with numerical and theoretical predictions in the previous literature for optimal power harvesting in sinusoidal and flat broadband vibration scenarios. Going beyond idealized steady-state sinusoidal and flat random vibration input, experimental SOR testing allows for more accurate representation of real world ambient vibration. It is shown that characteristic interactions from more complex vibration sources significantly alter power generation and processing requirements by varying harvested power, shifting optimal conditioning impedance, inducing voltage fluctuations, and ultimately rendering idealized sinusoidal and random analyses incorrect.
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压电谐振、随机、正弦随机振动能量收集系统的实验分析
实验比较了采用全波整流调理电路的压电振动发电机在不同正弦、随机和正弦对随机(SOR)输入振动情况下的收获功率;讨论了源振动特性对收割机设计的影响。从环境振动中收集能量的普及使得紧凑、能量密集的压电发电机商业化。现有的许多文献都侧重于通过非线性处理电路来最大化收获的功率,这需要对发电机内部机械和电气特性的准确了解以及输入振动源的理想化,这在一般应用中是无法假设的。探讨了一种商用压电发电机的源振动和负载阻力的变化。结果与先前文献中关于正弦和平坦宽带振动情况下最优功率收集的数值和理论预测一致。超越理想的稳态正弦和平坦随机振动输入,实验SOR测试允许更准确地表示现实世界的环境振动。研究表明,来自更复杂振动源的特征相互作用通过改变收获功率、移动最佳调节阻抗、诱导电压波动,最终使理想的正弦和随机分析不正确,从而显著改变发电和处理要求。
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期刊介绍: The aim of Advances in Acoustics and Vibration is to act as a platform for dissemination of innovative and original research and development work in the area of acoustics and vibration. The target audience of the journal comprises both researchers and practitioners. Articles with innovative works of theoretical and/or experimental nature with research and/or application focus can be considered for publication in the journal. Articles submitted for publication in Advances in Acoustics and Vibration must neither have been published previously nor be under consideration elsewhere. Subject areas include (but are not limited to): Active, semi-active, passive and combined active-passive noise and vibration control Acoustic signal processing Aero-acoustics and aviation noise Architectural acoustics Audio acoustics, mechanisms of human hearing, musical acoustics Community and environmental acoustics and vibration Computational acoustics, numerical techniques Condition monitoring, health diagnostics, vibration testing, non-destructive testing Human response to sound and vibration, Occupational noise exposure and control Industrial, machinery, transportation noise and vibration Low, mid, and high frequency noise and vibration Materials for noise and vibration control Measurement and actuation techniques, sensors, actuators Modal analysis, statistical energy analysis, wavelet analysis, inverse methods Non-linear acoustics and vibration Sound and vibration sources, source localisation, sound propagation Underwater and ship acoustics Vibro-acoustics and shock.
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