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Mono-stable and bi-stable magnetic spring based vibration energy harvesting systems subject to harmonic excitation: Dynamic modeling and experimental verification

机译:受谐波激励的基于单稳态和双稳态磁性弹簧的振动能量收集系统:动态建模和实验验证

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摘要

This work develops a comparative study using theoretical models and experimental evaluation of the dynamic behavior of a magnetic spring based vibration energy harvester that can be switched from a mono-stable to a bi-stable configuration. The design uses coupled magnetic interactions to achieve bi-stability. A mono-stable configuration consists of an oscillating magnet that is levitated between two stationary top and bottom magnets. A cluster of peripheral solid magnets is fixed around the harvester casing and results in a bi-stable configuration. Traditionally, magnetic forces in magnetic spring based harvesters are represented using empirical polynomial fits that are integrated into the equation of motion. In this work, first principle physics based analytical models describing the interaction between magnets are developed and integrated into the equation of motion. Results suggest that, for the bi-stable configuration, introduced analytical model provides more accurate results compared to those obtained using polynomial functions. Results show that a variety of load-deflection characteristics can be obtained by changing geometric ratios of the peripheral magnets in the bi-stable configuration. During dynamic operation, the bistable configuration exhibits interwell, chaotic, and intrawell motion at different acceleration levels. Thinner peripheral magnets are favorable for the bi-stable design, especially at lower acceleration levels. Thinner peripheral magnets yield lower energy barriers, improved frequency responses, and exhibit approximately zero stiffness near equilibrium position. Furthermore, the use of thinner peripheral magnets causes the harvester to move towards monostability.
机译:这项工作使用理论模型和基于磁性弹簧的振动能量采集器的动态行为的实验评估进行了比较研究,该振动器可以从单稳态配置转换为双稳态配置。该设计使用耦合的磁相互作用来实现双稳定性。单稳态配置由摆动的磁铁组成,该磁铁悬浮在两个固定的顶部和底部磁铁之间。周围的固态磁体簇固定在收割机外壳周围,并导致双稳态配置。传统上,使用集成到运动方程中的经验多项式拟合表示基于磁性弹簧的收割机中的磁力。在这项工作中,描述了磁体之间相互作用的基于第一物理原理的分析模型被开发并整合到运动方程中。结果表明,对于双稳态配置,与使用多项式函数获得的分析模型相比,引入的分析模型可提供更准确的结果。结果表明,通过改变双稳态构造中的外围磁体的几何比率,可以获得各种载荷-偏转特性。在动态操作期间,双稳态配置在不同的加速度水平下表现出井间运动,混沌运动和井内运动。较薄的外围磁体有利于双稳态设计,尤其是在较低的加速度水平下。较薄的外围磁体产生较低的能垒,改善了频率响应,并且在平衡位置附近显示出约零的刚度。此外,使用较薄的外围磁体会使收割机趋于单稳态。

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  • 来源
    《Mechanical systems and signal processing》 |2019年第1期|106361.1-106361.23|共23页
  • 作者单位

    Institute for Micromanufacturing College of Engineering and Science Louisiana Tech University Ruston LA 71272 United States;

    Department of Electrical Engineering College of Engineering and Science Louisiana Tech University Ruston LA 71272 United States;

    Institute for Micromanufacturing College of Engineering and Science Louisiana Tech University Ruston LA 71272 United States Department of Mechanical Engineering College of Engineering and Science Louisiana Tech University Ruston LA 71272 United States Department of Nanosystems Engineering College of Engineering and Science Louisiana Tech University Ruston LA 71272 United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnetic spring; Vibration energy harvesting; Mono-stable vibration energy harvester; Bi-stable vibration energy harvester;

    机译:磁性弹簧;振动能量收集;单稳态振动能量采集器;双稳态振动能量采集器;

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