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Energy harvesting by magnetostrictive material (MsM) for powering wireless sensors in SHM

机译:通过磁致伸缩材料(MsM)收集能量以为SHM中的无线传感器供电

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摘要

A new class of vibrational energy harvester based on Magnetostrictive material (MsM) Metglas 2605SC is deigned, developed, and tested in building practical energy harvesting wireless sensor networks. Compared to piezoelectric material, Metglas 2605SC offers advantages including ultra-high energy conversion efficiency, high power density, longer life cycles without depolarization issue, and flexibility to operate in strong ambient vibrations. To enhance the energy conversion efficiency and shrink the size of the harvester, Metglas is annealed in the direction normal to the axial strain direction without the need of electromagnet for applying bias (static) magnetic field. To seamlessly integrate with a newly developed wireless sensor at NC State, a prototype design for the MsM harvester is proposed. An analytical model is developed for the harvesting using an equivalent electromechanical circuit. The model resulting in achievable output performances of the harvester powering a resistive load and charging a capacitive energy storage device, respectively, is quantitatively derived. An energy harvesting module, which powers a wireless sensor, stores excess energy in an ultracapacitor is designed on a printed circuit board (PCB) with dimension 25mm×35mm. The main functionalities of the circuit include a voltage quadruples a 3F ultracapacitor, and a smart regulator. The output DC voltage from the PCB can be adjusted within 2.0~5.5V. In experiments, the maximum output power and power density on the resistor can reach 200 μW and 900 μW/cm~3, respectively. For a working prototype, the average power and power density during charging the ultracapacitor can achieve 576 μW and 606 μW/cm~3 respectively, which are much higher than those of most piezo-based harvesters.
机译:设计,开发并测试了一种基于磁致伸缩材料(MsM)Metglas 2605SC的新型振动能量收集器,用于构建实用的能量收集无线传感器网络。与压电材料相比,Metglas 2605SC具有的优点包括:超高的能量转换效率,高功率密度,更长的使用寿命而没有去极化问题,以及在强环境振动下的灵活性。为了提高能量转换效率并缩小收割机的尺寸,Metglas在垂直于轴向应变方向的方向上进行了退火,而无需使用电磁体来施加偏磁场(静态)。为了与NC State的新开发的无线传感器无缝集成,提出了MsM收割机的原型设计。开发了一个分析模型,用于使用等效的机电电路进行收割。分别定量得出导致采集器为电阻负载供电和为电容式能量存储设备充电的可实现输出性能的模型。在尺寸为25mm×35mm的印刷电路板(PCB)上设计了为无线传感器供电的能量收集模块,该能量收集模块将多余的能量存储在超级电容器中。该电路的主要功能包括一个三倍电压的3F超级电容器和一个智能调节器。 PCB输出的直流电压可在2.0〜5.5V范围内调节。在实验中,电阻的最大输出功率和功率密度分别可以达到200μW和900μW/ cm〜3。对于工作中的原型,超级电容器充电期间的平均功率和功率密度分别可以达到576μW/ cm〜3和606μW/ cm〜3,这比大多数基于压电的采集器要高得多。

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