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首页> 外文期刊>IEEE Transactions on Magnetics >Magnetostrictive Energy Harvesting: Materials and Design Study
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Magnetostrictive Energy Harvesting: Materials and Design Study

机译:磁致伸缩能量收集:材料和设计研究

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In recent years, vibrational energy harvesting has established itself as a promising alternative to the use of batteries for powering microelectromechanical systems for large wireless sensor networks used in aerospace and building infrastructures. This paper has focused on the design and materials used in magnetostrictive cantilever energy harvesters. The study involved using both finite-element modeling to predict the resonance frequencies for different cantilever designs and magnetostrictive materials, followed by experimental measurements for validation. Two different magnetostrictive ribbons were investigated, Fe100-xGax with four different compositions (x = 17.5; 19.5; 21; 28 at.%) and amorphous metallic glass Metglas 2605SC (Fe81B13.5Si3.5C2). From the modeling, it was determined that the resonance frequency was strongly dependent on the cantilever length, thickness, and density. Changing the cantilever design to a "T" shape was found to decrease the resonance frequency. The experimental results found that the output voltage measured depended on the cantilever dimensions, especially the thickness, the Ga concentration, and the cantilever design. The output voltages for Fe80.5Ga19.5 cantilevers were comparable with the same dimension Metglas cantilevers. The results of the finite-element modeling were validated by good agreement between the computational and experimental resonance frequencies measured.
机译:近年来,振动能量收集已成为一种有希望的替代方法,它可以代替电池为航空航天和建筑基础设施中使用的大型无线传感器网络的微机电系统供电。本文着重于磁致伸缩悬臂式能量收集器的设计和材料。该研究涉及使用有限元建模来预测不同悬臂设计和磁致伸缩材料的共振频率,然后进行实验测量以进行验证。研究了两种不同的磁致伸缩带,Fe100-xGax具有四种不同的组成(x = 17.5; 19.5; 21; 28 at。%)和非晶态金属玻璃Metglas 2605SC(Fe81B13.5Si3.5C2)。根据建模,可以确定共振频率强烈取决于悬臂的长度,厚度和密度。发现将悬臂设计改变为“ T”形可以降低共振频率。实验结果表明,测量的输出电压取决于悬臂尺寸,尤其是厚度,Ga浓度和悬臂设计。 Fe80.5Ga19.5悬臂的输出电压与相同尺寸的Metglas悬臂相当。有限元建模的结果通过测量的计算共振频率和实验共振频率之间的良好一致性得到了验证。

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