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Modeling and Analysis of Bimorph Piezoelectromagnetic Energy Harvester

机译:双压电晶片压电能量采集器的建模与分析

摘要

Piezoelectric energy harvesting is one of the methods of obtaining energy from environment. It is often a cantilever beam with or without tip mass poled with piezoelectric material. The fixed end of cantilever beam is subjected to either base excitation or translation as occurring from an environmental source such as automobile or vibrating engine. The piezoelectric energy harvester generates maximum energy when it is excited at resonance frequency and the little variation below or above the resonance frequency will drastically reduce the power output. In this line, present work studies a broadband nonlinear piezoelectric energy harvester driven by periodic and random oscillations. The simulated response to the base excitation is illustrated in terms of harvested power. By introducing magnetic force, we can broaden the frequency zone so as to capture more energy even the beam do not vibrate close to source frequency. A magnetic tip is included at the free end of the cantilever beam and is excited by two permanent magnets fixed on either sides laterally. The symmetric bimorph cantilever beam piezoelectric energy harvester with magnetic tip is modeled as Single-degree of freedom lumped parameter system. The time domain history and frequency response diagrams for the cantilever displacement, voltage and power at the constant load resistance gives a stability picture as well as the amount of energy harvested. The effect of various parameters of energy harvester system on induced voltage and output power is studied. The distributed parameter model is formulated by using Euler-Bernoulli beam theory and Galerkin’s approximation technique. The finite element modeling equations are presented with piezoelectric coupling terms. Novelty in the work include; (i) adding a magnetic force in the system to make it as broadband harvester (ii) validation of approximation solutions with spring-mass modeling.
机译:压电能量收集是从环境中获取能量的方法之一。它通常是带有或不带有由压电材料极化的尖端质量的悬臂梁。悬臂梁的固定端受到来自环境源(例如汽车或振动发动机)的激发或平移。压电能量采集器在共振频率下激发时会产生最大能量,低于或高于共振频率的微小变化将大大降低功率输出。在这一方面,当前的工作研究了由周期性和随机振荡驱动的宽带非线性压电能量采集器。根据采集的功率说明了对基本激励的模拟响应。通过引入磁力,我们可以加宽频率区域,以捕获更多能量,即使光束没有在源频率附近振动也是如此。悬臂梁的自由端包含一个磁头,该磁头由两个横向固定在两侧的永久磁铁激励。将具有磁头的对称双压电晶片悬臂梁压电能量采集器建模为单自由度集总参数系统。悬臂位移,恒定负载电阻下的电压和功率的时域历史和频率响应图给出了稳定性图以及所收集的能量。研究了能量收集器系统的各种参数对感应电压和输出功率的影响。分布式参数模型是通过使用Euler-Bernoulli束理论和Galerkin的近似技术制定的。用压电耦合项给出了有限元建模方程。工作中的新颖性包括: (i)在系统中增加磁力,使其成为宽带采集器(ii)使用弹簧质量模型验证近似解。

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    Teli Satish Balaso;

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  • 年度 2015
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