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Modeling and design of Galfenol unimorph energy harvesters

机译:Galfenol unimorph能量收集器的建模和设计

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This article investigates the modeling and design of vibration energy harvesters that utilize iron-gallium (Galfenol) as a magnetoelastic transducer. Galfenol unimorphs are of particular interest; however, advanced models and design tools are lacking for these devices. Experimental measurements are presented for various unimorph beam geometries. A maximum average power density of 24.4 mW cm(-3) and peak power density of 63.6 mW cm(-3) are observed. A modeling framework with fully coupled magnetoelastic dynamics, formulated as a 2D finite element model, and lumped-parameter electrical dynamics is presented and validated. A comprehensive parametric study considering pickup coil dimensions, beam thickness ratio, tip mass, bias magnet location, and remanent flux density (supplied by bias magnets) is developed for a 200 Hz, 9.8 m s(-2) amplitude harmonic base excitation. For the set of optimal parameters, the maximum average power density and peak power density computed by the model are 28.1 and 97.6 mW cm(-3), respectively.
机译:本文研究了利用铁镓(Galfenol)作为磁弹性换能器的振动能量收集器的建模和设计。 Galfenol的单晶硅特别令人感兴趣。但是,这些设备缺少先进的模型和设计工具。提出了针对各种单压电晶片几何形状的实验测量结果。观察到最大平均功率密度为24.4 mW cm(-3),峰值功率密度为63.6 mW cm(-3)。提出并验证了具有完全耦合的磁弹性动力学的建模框架,该框架被构造为2D有限元模型,并且具有集总参数电动力学。针对200 Hz,9.8 m s(-2)振幅谐波基极激励,进行了一项综合的参数研究,该研究考虑了拾波线圈的尺寸,束厚比,尖端质量,偏置磁铁的位置和剩余磁通密度(由偏置磁铁提供)。对于一组最佳参数,该模型计算出的最大平均功率密度和峰值功率密度分别为28.1和97.6 mW cm(-3)。

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