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Analysis of the Key Factors Affecting the Capability and Optimization for Magnetostrictive Iron-Gallium Alloy Ambient Vibration Harvesters

机译:影响磁致​​伸缩铁镓合金环境振动收集器性能的关键因素分析与优化

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摘要

The basic phenomena of a cantilever energy harvesting device based on iron-gallium alloy magnetostrictive material for low frequency were systematically studied. The results highlighted how the physical parameters, geometric structure and bias conditions affected the vibration harvesting capacity through a thorough experimental aimed at enhancing the vibration energy harvesting capacity through an optimal design. How the performance is affected by the configuration of the multi-layers composite beam, material and dimensions of the elastic layer, arrangement position and number of bias magnets, the matching load resistance and other important design parameters was studied in depth. For the first time, it was clearly confirmed that the magnetic field of bias magnets and electromagnetic vibration shaker have almost no effect on the measurement of the voltage induced from the harvester. A harvesting power RMS up to 13.3 mW and power density RMS up to 3.7 mW/cm /g was observed from the optimized prototype. Correspondingly, the DC output power and power density after the two-stage signal processing circuit were up to 5.2 mW and 1.45 mW/cm /g, respectively. The prototype successfully powered multiple red light emitting diode lamps connected in a sinusoidal shape and multiple red digital display tubes, which verified the vibration harvesting capability or electricity-generating capability of the harvester prototype and the effectiveness of the signal converter.
机译:系统研究了基于铁镓合金磁致伸缩材料的低频悬臂式能量采集装置的基本现象。结果强调了物理参数,几何结构和偏置条件如何通过彻底的实验旨在通过优化设计增强振动能量收集能力的方式对振动收集能力的影响。深入研究了多层复合梁的结构,弹性层的材料和尺寸,偏置磁铁的布置位置和数量,匹配的负载电阻及其他重要设计参数如何影响性能。首次明确证实,偏置磁体和电磁振动筛的磁场几乎对采集器感应的电压的测量没有影响。从优化的原型中可以观察到高达13.3 mW的采集功率RMS和高达3.7 mW / cm / g的功率密度RMS。相应地,两级信号处理电路后的直流输出功率和功率密度分别高达5.2mW和1.45mW / cm / g。该原型成功为多个以正弦形连接的红色发光二极管灯和多个红色数字显示管供电,这证明了该采集器原型的振动采集能力或发电能力以及信号转换器的有效性。

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