Rotation-induced-tunable stochastic resonance for stabilizing sustainability of energy harvesting

Yunshun Zhang, Xiangshuai Zhao, Wanshu Wang
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引用次数: 1

Abstract

Energy harvesting from rotating system has been an important topic for realizing the applications of tire monitoring system. This paper proposes a self-tuning stochastic resonance for exploring its principle for further stabilizing the sustainable capability of energy harvesting. The principle of stochastic resonance of a nonlinear system in a rotating environment is studied which is used to increase the energy harvesting efficiency of the cantilever piezoelectric vibrator at low frequencies. The centrifugal force caused by the behavior of ration acting on the end mass of the cantilever changes the equivalent stiffness of the cantilever and thus can tune the stochastic resonance frequency. Through the match-able relationship of non-linear bitable system between the Kramers rate and the external rotation frequency, the optimal centrifugal distance is theoretically obtained. The simulation results show that when the centrifugal distance is 12.11 cm, the effective frequency bandwidth of the system response is broadened to 20–40 rad/s and the output root mean square (RMS) voltage is significantly improved.
稳定能量收集可持续性的旋转诱导可调随机共振
从旋转系统中获取能量一直是实现轮胎监测系统应用的一个重要课题。为了进一步稳定能量收集的持续能力,本文提出了一种自调谐随机共振的原理。研究了旋转环境下非线性系统的随机共振原理,利用该原理提高了悬臂式压电振子在低频时的能量收集效率。作用在悬臂梁端部质量上的质点所产生的离心力改变了悬臂梁的等效刚度,从而可以调节随机共振频率。通过非线性可咬系统克雷默率与外旋转频率的匹配关系,从理论上得到了最优离心距离。仿真结果表明,当离心距离为12.11 cm时,系统响应的有效频率带宽展宽至20 ~ 40 rad/s,输出均方根(RMS)电压显著提高。
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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