一种低频人体运动能量收集应用的软化与硬化联合机制

Q2 Physics and Astronomy Advances in Acoustics and Vibration Pub Date : 2014-09-07 DOI:10.1155/2014/217032
K. Suhaimi, R. Ramlan, A. Putra
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引用次数: 7

摘要

本文研究了从人体运动中获取能量的机理。首先利用放置在人体不同部位的三轴振动记录仪测量人体在步行和慢跑时运动产生的振动信号。然后使用傅立叶级数对测量信号进行处理以研究其频率含量。提出了一种从人体低频低幅运动中获取能量的机制。该机构由非线性硬化和非线性软化相结合的机构组成,旨在拓宽带宽,放大人体低运动频率。这是通过使用平移-旋转机构实现的,该机构将人体运动的平移运动转换为旋转运动。通过引入卷绕弹簧刚度和磁刚度来实现系统的非线性。通过准静态和动态测量对机构的性能进行了研究。结果表明,在适当的非线性程度下,两种模态可以组合在一起产生宽的平坦响应。对于频率放大,该机构设法将频率增加约8倍的转速。
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A Combined Softening and Hardening Mechanism for Low Frequency Human Motion Energy Harvesting Application
This paper concerns the mechanism for harvesting energy from human body motion. The vibration signal from human body motion during walking and jogging was first measured using 3-axes vibration recorder placed at various places on the human body. The measured signal was then processed using Fourier series to investigate its frequency content. A mechanism was proposed to harvest the energy from the low frequency-low amplitude human motion. This mechanism consists of the combined nonlinear hardening and softening mechanism which was aimed at widening the bandwidth as well as amplifying the low human motion frequency. This was realized by using a translation-to-rotary mechanism which converts the translation motion of the human motion into the rotational motion. The nonlinearity in the system was realized by introducing a winding spring stiffness and the magnetic stiffness. Quasi-static and dynamic measurement were conducted to investigate the performance of the mechanism. The results show that, with the right degree of nonlinearity, the two modes can be combined together to produce a wide flat response. For the frequency amplification, the mechanism manages to increase the frequency by around 8 times in terms of rotational speed.
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期刊介绍: The aim of Advances in Acoustics and Vibration is to act as a platform for dissemination of innovative and original research and development work in the area of acoustics and vibration. The target audience of the journal comprises both researchers and practitioners. Articles with innovative works of theoretical and/or experimental nature with research and/or application focus can be considered for publication in the journal. Articles submitted for publication in Advances in Acoustics and Vibration must neither have been published previously nor be under consideration elsewhere. Subject areas include (but are not limited to): Active, semi-active, passive and combined active-passive noise and vibration control Acoustic signal processing Aero-acoustics and aviation noise Architectural acoustics Audio acoustics, mechanisms of human hearing, musical acoustics Community and environmental acoustics and vibration Computational acoustics, numerical techniques Condition monitoring, health diagnostics, vibration testing, non-destructive testing Human response to sound and vibration, Occupational noise exposure and control Industrial, machinery, transportation noise and vibration Low, mid, and high frequency noise and vibration Materials for noise and vibration control Measurement and actuation techniques, sensors, actuators Modal analysis, statistical energy analysis, wavelet analysis, inverse methods Non-linear acoustics and vibration Sound and vibration sources, source localisation, sound propagation Underwater and ship acoustics Vibro-acoustics and shock.
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