Multiresonant Frequency Piezoelectric Energy Harvesters Integrated with High Sensitivity Piezoelectric Accelerometer for Bridge Health Monitoring Applications

Prathish Raaja Bhaskaran, Joseph Daniel Rathnam, K. Sumangala, K. Subramanian
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引用次数: 8

Abstract

Wireless Structural Health Monitoring (WSHM) is a less expensive but efficient mode of health monitoring. However, it needs frequent change of batteries since remote WSHM consumes large power. The best scientific solution to this problem is to employ energy harvesters integrated along with the vibration sensors in the same substrate so that the battery is recharged by the energy harvested during vibrations caused by the passing vehicles in bridges. In this work, an attempt has been made to design an energy harvester and a micro accelerometer integrated chip. Civil structures have low natural frequencies and therefore low bandwidth design is adopted to maximize the harvested energy and accelerometer sensitivity. The other special feature of the proposed design is its ability to provide further increase in energy harvesting by the parallel operation of an array of energy harvesters with closely spaced natural frequencies. The studies show that the natural frequencies of the harvesters should be less than that of the structure in healthy condition. Simulation studies conducted on these devices show that it is possible to harvest a maximum power of 2.283 mW/g. The integrated micro accelerometer is also capable of giving a sensitivity of 27.67 V/g with appreciable improvement in other performance indices.
集成高灵敏度压电加速度计的多谐振频率压电能量采集器在桥梁健康监测中的应用
无线结构健康监测(WSHM)是一种成本较低但效率较高的健康监测模式。但由于远程WSHM耗电量大,需要频繁更换电池。对这个问题最好的科学解决方案是将能量收集器与振动传感器集成在同一个基板上,这样电池就可以通过桥梁上过往车辆引起的振动收集能量来充电。本文尝试设计能量采集器和微加速度计集成芯片。土木结构的固有频率较低,因此采用低带宽设计,以最大限度地获取能量和加速度计的灵敏度。所提出的设计的另一个特点是,它能够提供进一步增加能量收集的能力,通过一组具有紧密间隔的自然频率的能量收集器的并行操作。研究表明,收割机的固有频率应小于结构在健康状态下的固有频率。在这些器件上进行的仿真研究表明,它可以获得2.283 mW/g的最大功率。集成的微加速度计还能够提供27.67 V/g的灵敏度,并在其他性能指标上有明显改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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