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首页> 外文期刊>Sensors and Actuators, A. Physical >Acoustic bubble-powered miniature rotor for wireless energy harvesting in a liquid medium
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Acoustic bubble-powered miniature rotor for wireless energy harvesting in a liquid medium

机译:声学气泡动力微型转子,用于在液体介质中收集无线能量

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摘要

This paper presents a new type of acoustic energy harvesting technology in which a miniature rotor actuated by acoustically oscillating bubble-induced synthetic jets periodically vibrates piezocantilevers in order to generate electric power. The behavior of an oscillating bubble under acoustic excitation and an oscillating bubble-induced synthetic jet is experimentally verified to prove the working principle of an acoustically driven miniature rotor. The motion of the acoustically driven miniature rotor and the generated electric voltage from the vibrating piezocantilever are investigated. The rotating speed of the rotor and the electric voltage generated are highly dependent on the applied acoustic frequency. A custom-made electrical circuit with different electric loads is used to rectify the electric voltage and power generated by the vibrating piezocantilever. As proof of concept, storage capacitor charging tests are conducted with 1 mu F and 1 mu F capacitors. Furthermore, the effect of multiple piezocantilevers on the electric energy density is investigated to demonstrate the possibility of improving the electric energy density obtained from the proposed energy harvesting technology. The investigation shows that the total value of the voltage generated from piezocantilevers is proportional to the number of piezocantilevers. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文介绍了一种新型的声能收集技术,其中通过声学振荡气泡诱导的合成喷射致动的微型转子周期性地振动压电膜,以产生电力。在声学激发下振荡气泡的行为和振荡气泡诱导的合成射流进行实验验证以证明声学驱动的微型转子的工作原理。研究了声学驱动的微型转子的运动和来自振动压电膜的产生电压。转子的旋转速度和产生的电压高度依赖于所施加的声学频率。具有不同电负载的定制电路用于纠正电压和由振动压电膜的电源产生的电源。作为概念证明,存储电容器充电测试用1μF和1μF电容器进行。此外,研究了多个压电膜对电能密度对电能密度的影响,以证明改善从所提出的能量收集技术获得的电能密度的可能性。研究表明,压电膜中产生的电压的总值与压电膜的数量成比例。 (c)2018年elestvier b.v.保留所有权利。

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