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Self-Powered Wireless Sensor Using a Pressure Fluctuation Energy Harvester

机译:使用压力波动能量收割机自动无线传感器

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摘要

Condition monitoring devices in hydraulic systems that use batteries or require wired infrastructure have drawbacks that affect their installation, maintenance costs, and deployment flexibility. Energy harvesting technologies can serve as an alternative power supply for system loads, eliminating batteries and wiring requirements. Despite the interest in pressure fluctuation energy harvesters, few studies consider end-to-end implementations, especially for cases with low-amplitude pressure fluctuations. This generates a research gap regarding the practical amount of energy available to the load under these conditions, as well as interface circuit requirements and techniques for efficient energy conversion. In this paper, we present a self-powered sensor that integrates an energy harvester and a wireless sensing system. The energy harvester converts pressure fluctuations in hydraulic systems into electrical energy using an acoustic resonator, a piezoelectric stack, and an interface circuit. The prototype wireless sensor consists of an industrial pressure sensor and a low-power Bluetooth System-on-chip that samples and wirelessly transmits pressure data. We present a subsystem analysis and a full system implementation that considers hydraulic systems with pressure fluctuation amplitudes of less than 1 bar and frequencies of less than 300 Hz. The study examines the frequency response of the energy harvester, the performance of the interface circuit, and the advantages of using an active power improvement unit adapted for piezoelectric stacks. We show that the interface circuit used improves the performance of the energy harvester compared to previous similar studies, showing more power generation compared to the standard interface. Experimental measurements show that the self-powered sensor system can start up by harvesting energy from pressure fluctuations with amplitudes starting at 0.2 bar at 200 Hz. It can also sample and transmit sensor data at a rate of 100 Hz at 0.7 bar at 200 Hz. The system is implemented with off-the-shelf circuits.
机译:使用电池或需要有线基础架构的液压系统中的状态监测设备具有影响其安装,维护成本和部署灵活性的缺点。能量收集技术可以作为系统负载的替代电源,消除电池和布线要求。尽管对压力波动能量收割机有兴趣,但很少有研究考虑端到端的实施,特别是对于低幅度压力波动的情况。这产生了关于在这些条件下可用于负载的实际能量的研究差距,以及用于高效能量转换的接口电路要求和技术。在本文中,我们介绍了一个自动传感器,它集成了能量收割机和无线传感系统。能量收割机使用声谐振器,压电堆和接口电路将液压系统中的压力波动转换为电能。原型无线传感器由工业压力传感器和芯片的低功耗蓝牙系统组成,用于样品和无线传输压力数据。我们提出了一个子系统分析和完整的系统实现,其考虑具有小于1巴的压力波动幅度的液压系统,并且频率小于300 Hz。该研究检查了能量收割机的频率响应,接口电路的性能以及使用适用于压电堆的有源电力改进单元的优点。我们表明,与先前类似的研究相比,使用的接口电路可以提高能量收割机的性能,与标准界面相比,显示出更多发电。实验测量表明,自动传感器系统可以通过在200Hz时从0.2巴起到0.2巴开始的幅度的压力波动来启动。它还可以以200Hz的0.7巴的速率以100Hz的速率进行采样和传输传感器数据。该系统由现成的电路实现。

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