Concurrent Passive Broadband Vibration Suppression and Energy Harvesting Using a Dual-Purpose Magnetoelastic Metamaterial Structure: Experimental Validation and Modeling

Winner Anigbogu, H. Bardaweel
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Abstract

A dual-purpose metamaterial structure that can concurrently suppress vibrations and scavenge energy is presented. The metamaterial assembly presented in this work uses a permanent magnet-coil system in addition to an elastic cantilever beam to perform its dual functions. A prototype is manufactured and a COMSOL model is developed. Two bandgaps are observed at 205–257 Hz and 587–639 Hz. COMSOL simulations show excellent agreement with measured data. Within these bandgaps the structure blocks vibrations from traveling through and, simultaneously, converts vibrations into electric power. The first bandgap has a vibration attenuation level larger than the attenuation level observed in the second bandgap. Mode shapes reveal that the local resonators experience larger deformations in the first bandgap than in the second bandgap and the vibrational energy is mostly contained within the first bandgap where the resonant frequency occurs, i.e., 224 Hz. The ability of the metamaterial assembly to scavenge these vibrations while simultaneously suppressing them is demonstrated. At an optimum load resistance of 15 Ω, within the first bandgap, approximately 2.5 μW was generated, while 0.6 nW was measured within the second bandgap. At optimum load resistance, measurements show maximum electric power reaching 5.2 μW within the first bandgap.
双用途磁弹性超材料结构的同步无源宽带振动抑制和能量收集:实验验证和建模
提出了一种具有抑制振动和清除能量双重功能的超材料结构。在这项工作中提出的超材料组件使用永磁体线圈系统和弹性悬臂梁来执行其双重功能。制作了原型机并开发了COMSOL模型。在205-257 Hz和587-639 Hz处观测到两个带隙。COMSOL模拟结果与实测数据吻合良好。在这些带隙中,这种结构阻止了振动通过,同时将振动转化为电能。所述第一带隙具有比在所述第二带隙中观察到的衰减水平更大的振动衰减水平。模态振型表明,局部谐振子在第一个带隙中的变形比在第二个带隙中的变形更大,振动能量主要包含在谐振频率发生的第一个带隙内,即224 Hz。证明了超材料组合在消除这些振动的同时抑制它们的能力。在最佳负载电阻为15 Ω时,在第一个带隙内产生约2.5 μW,而在第二个带隙内测量到的负载电阻为0.6 nW。在最佳负载电阻下,测量结果表明,在第一个带隙内,最大电功率达到5.2 μW。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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