Mechanical-magnetic-electric coupled behaviors for stress-driven Terfenol-D energy harvester
Author(s) -
Shuying Cao,
Jiaju Zheng,
Bowen Wang,
Ruzheng Pan,
Ran Zhao,
Ling Weng,
Ying Sun,
Chengcheng Liu
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4975364
Subject(s) - nonlinear system , eddy current , mechanics , amplitude , magnetic field , materials science , constitutive equation , terfenol d , electric field , magnetization , stress (linguistics) , permeability (electromagnetism) , control theory (sociology) , magnetostriction , physics , computer science , finite element method , thermodynamics , optics , genetics , biology , linguistics , philosophy , control (management) , quantum mechanics , membrane , artificial intelligence
The stress-driven Terfernol-D energy harvester exhibits the nonlinear mechanical-magnetic-electric coupled (MMEC) behaviors and the eddy current effects. To analyze and design the device, it is necessary to establish an accurate model of the device. Based on the effective magnetic field expression, the constitutive equations with eddy currents and variable coefficients, and the dynamic equations, a nonlinear dynamic MMEC model for the device is founded. Comparisons between the measured and calculated results show that the model can describe the nonlinear coupled curves of magnetization versus stress and strain versus stress under different bias fields, and can provide the reasonable data trends of piezomagnetic coefficients, Young’s modulus and relative permeability for Terfenol-D. Moreover, the calculated power results show that the model can determine the optimal bias conditions, optimal resistance, suitable proof mass, suitable slices for the maximum energy extraction of the device under broad stress amplitude and broad frequency
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