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首页> 外文期刊>Sensors and Actuators, A. Physical >Design and performance enhancement of a force-amplified piezoelectric stack energy harvester under pressure fluctuations in hydraulic pipeline systems
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Design and performance enhancement of a force-amplified piezoelectric stack energy harvester under pressure fluctuations in hydraulic pipeline systems

机译:液压管道系统压力波动下力放大压电堆稳态收割机的设计与性能

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Pipelines are a safe and environmentally friendly way to convey fluids over a long distance. Pressure fluctuations generated by unsteady flows are a common phenomenon in hydraulic pipeline systems. In this paper, a piezoelectric stack energy harvester is designed to scavenge the vibration energy of pressure fluctuations in pipeline systems, where a force amplifier is introduced as an auxiliary booster to enhance the energy conversion efficiency under low-frequency excitation levels. The device can be integrated with health monitoring sensors to eliminate the needs of batteries or wired power supplies to individual sensors. The working principle of the force amplifier is analyzed by investigating the magnification coefficient based on a dynamic model. The optimized structural parameters are also investigated by theoretical studies. Besides, the finite element model of the force amplifier is also constructed to analyze the magnification coefficient and to validate the theoretical results. Experimental studies are also carried out to identify the effect of the force amplifier on the proposed energy harvester. The results show that there is great potential to realize a self-powered wireless sensor network technology for pipeline monitoring. (C) 2020 Elsevier B.V. All rights reserved.
机译:管道是一种安全和环保的方式,可以在长途距离中传送液体。不稳定流产生的压力波动是液压管道系统中的常见现象。在本文中,设计了一种压电堆能量收割机,用于清除管道系统中的压力波动的振动能量,其中引导力放大器作为辅助增压器,以提高低频激发水平下的能量转换效率。该设备可以与健康监控传感器集成,以消除电池或有线电源到各个传感器的需求。通过基于动态模型研究放大系数来分析力放大器的工作原理。通过理论研究还研究了优化的结构参数。此外,还构造了力放大器的有限元模型以分析放大系数并验证理论结果。还进行了实验研究,以确定力放大器对所提出的能量收割机的影响。结果表明,实现用于管道监测的自动无源传感器网络技术存在巨大潜力。 (c)2020 Elsevier B.v.保留所有权利。

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