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Energy harvesting from hydraulic pressure fluctuations

机译:通过液压波动收集能量

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State-of-the-art hydraulic hose and piping systems employ integral sensor nodes for structural health monitoring to avoid catastrophic failures. Energy harvesting in hydraulic systems could enable self-powered wireless sensor nodes for applications such as energy-autonomous structural health monitoring and prognosis. Hydraulic systems inherently have a high energy intensity associated with the mean pressure and flow. Accompanying the mean pressure is the dynamic pressure ripple, which is caused by the action of pumps and actuators. Pressure ripple is a deterministic source with a periodic time-domain behavior conducive to energy harvesting. An energy harvester prototype was designed for generating low-power electricity from pressure ripples. The prototype employed an axially-poled off-the-shelf piezoelectric stack. A housing isolated the stack from the hydraulic fluid while maintaining a mechanical coupling allowing for dynamic-pressure-induced deflection of the stack. The prototype exhibited an off-resonance energy harvesting problem since the fundamental resonance of the piezoelectric stack was much higher than the frequency content of the pressure ripple. The prototype was designed to provide a suitable power output for powering sensors with a maximum output of 1.2 mW. This work also presents electromechanical model simulations and experimental characterization of the piezoelectric power output from the pressure ripple in terms of the force transmitted into the harvester.
机译:最先进的液压软管和管道系统采用集成的传感器节点进行结构健康状况监控,以免发生灾难性故障。液压系统中的能量收集可以实现自供电的无线传感器节点的应用,例如能量自主的结构健康监测和预测。液压系统固有地具有与平均压力和流量相关的高能量强度。伴随平均压力的是动态压力波动,该波动是由泵和执行器的作用引起的。压力脉动是确定性源,具有周期性的时域行为,有利于能量收集。能量收集器原型设计用于通过压力波动产生低功率电能。该原型采用了轴向极化的现成压电叠层。壳体将堆垛与液压流体隔离,同时保持机械耦合,从而允许由动态压力引起的堆垛偏转。由于压电叠层的基本共振远高于压力脉动的频率含量,因此原型出现了共振能量收集问题。该原型旨在为最大功率为1.2 mW的传感器供电提供合适的功率输出。这项工作还提供了机电模型仿真和根据传递到收割机的力从压力脉动输出的压电功率的实验特性。

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