Power enhancement of vibration energy harvesters by way of magnetic flux gradient analysis of electromagnetic induction

IF 6.7 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Science: Advanced Materials and Devices Pub Date : 2024-09-10 DOI:10.1016/j.jsamd.2024.100791
Hak-Jun Lee , Jinsoo Yang , Dahoon Ahn
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Abstract

This study proposes strategies to enhance the conversion of mechanical energy to electrical energy in cylindrical electromagnetic induction-type vibration energy harvesters (VEH) using disc or ring-shaped magnets and ring-shaped coils. The rationale behind these strategies has been substantiated by an analysis of magnetic flux gradients based on simulations. In particular, the utilization of a repulsive magnet pair and a yoke has been proposed to maximize the magnetic flux gradient at the coil winding position by manipulating the magnetic flux path. Simulation results confirm that the use of a yoke can produce a nearly 5.8-fold increase in power consumption at the external load. Additionally, the study demonstrates that the positioning and thickness settings of the coil are critical for improving the electrical output based on the spatial distribution of the magnetic flux gradient. Within the same magnet topology, points where power generation is not feasible due to a zero magnetic flux gradient are identified, besides a nearly 5.3-fold increase in observed power generation depending on coil placement. Given the structural feasibility of VEH implementation, a design for a moving magnet VEH utilizing ring magnets with a yoke enclosure is proposed, demonstrating that it can generate power at nearly 85% of the level attributed to using disc magnets.

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通过电磁感应的磁通梯度分析增强振动能量收集器的功率
本研究提出了在圆柱形电磁感应式振动能量收集器(VEH)中使用盘形或环形磁铁和环形线圈来增强机械能到电能的转换的策略。基于模拟的磁通梯度分析证实了这些策略的合理性。特别是,我们提出了利用一对斥力磁铁和一个磁轭,通过操纵磁通路径来最大化线圈绕组位置的磁通梯度。仿真结果证实,使用磁轭可使外部负载的功耗增加近 5.8 倍。此外,研究还表明,线圈的定位和厚度设置对于根据磁通梯度的空间分布来提高电力输出至关重要。在相同的磁体拓扑结构中,由于磁通梯度为零而无法发电的点被识别出来,此外,根据线圈的位置,观察到的发电量增加了近 5.3 倍。考虑到 VEH 结构的可行性,我们提出了一种利用环形磁铁和磁轭外壳的动磁铁 VEH 设计,证明其发电量几乎是使用圆盘磁铁发电量的 85%。
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来源期刊
Journal of Science: Advanced Materials and Devices
Journal of Science: Advanced Materials and Devices Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
11.90
自引率
2.50%
发文量
88
审稿时长
47 days
期刊介绍: In 1985, the Journal of Science was founded as a platform for publishing national and international research papers across various disciplines, including natural sciences, technology, social sciences, and humanities. Over the years, the journal has experienced remarkable growth in terms of quality, size, and scope. Today, it encompasses a diverse range of publications dedicated to academic research. Considering the rapid expansion of materials science, we are pleased to introduce the Journal of Science: Advanced Materials and Devices. This new addition to our journal series offers researchers an exciting opportunity to publish their work on all aspects of materials science and technology within the esteemed Journal of Science. With this development, we aim to revolutionize the way research in materials science is expressed and organized, further strengthening our commitment to promoting outstanding research across various scientific and technological fields.
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