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ELECTROELASTIC MODELING AND EXPERIMENTAL VALIDATION OF PIEZOELECTRIC ENERGY HARVESTING FROM BROADBAND RANDOM VIBRATIONS

机译:宽带随机振动对压电能量的电弹性建模和实验验证

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Energy harvesting from ambient environment has received increasing attention over the last decade due to the need for minimizing the dependence on conventional batteries in wireless applications. Among the methods of vibration-to-electricity conversion, piezoelectric transduction has been investigated by numerous research groups due to the ease of application and high power density offered by piezoelectric materials. Electromechanical modeling efforts of piezoelectric energy harvesters have been mostly focused on deterministic forms of excitation input, as in the typical case of harmonic excitation. In most practical applications, however, ambient vibrational energy is often stochastic with broad frequency content. This paper presents analytical and numerical modeling, simulations, and experimental validations of piezoelectric energy harvesting from broadband random vibrations. The models employed herein are based on distributed-parameter electroelastic solution to ensure that the effects of higher vibration modes are included. The goal is to predict the expected value of the power output in terms of the given power spectral density (PSD) or time history of the random vibration input. The analytical estimations are based on the PSD of broadband random base excitation and distributed-parameter frequency response functions (FRFs) of the coupled voltage and vibration response. The numerical simulations use the Fourier series representation of base acceleration history in an ordinary differential equation solver that employs first-order electroelastic equations. The simulations are compared against the experiments for a brass-reinforced PZT-5H bimorph under different random excitation levels. The analytical and numerical simulations exhibit very good agreement with the experimental measurements. Soft and hard ceramic and single crystal bimorphs (made of PZT-5H, PZT-8, PMN-PZT, and PMN-PZT-Mn) are compared for broadband random excitation through a theoretical case study.
机译:在过去的十年中,由于需要最大程度地减少无线应用中对常规电池的依赖性,从周围环境中收集能量已引起越来越多的关注。在振动-电转换方法中,由于压电材料的易用性和高功率密度,压电换能已被众多研究小组研究。压电能量收集器的机电建模工作主要集中在确定性形式的激励输入上,就像在谐波激励的典型情况下一样。然而,在大多数实际应用中,环境振动能量通常是随机的,具有广泛的频率含量。本文介绍了从宽带随机振动中收集压电能量的分析和数值模型,仿真和实验验证。本文采用的模型基于分布参数电弹性解,以确保包括较高振动模式的影响。目的是根据给定的功率谱密度(PSD)或随机振动输入的时间历史来预测功率输出的期望值。分析估计基于宽带随机基极激励的PSD和耦合电压和振动响应的分布参数频率响应函数(FRF)。数值模拟在采用一阶电弹性方程的普通微分方程求解器中使用基本加速度历史的傅里叶级数表示。在不同的随机激励水平下,将黄铜增强的PZT-5H双压电晶片的仿真与实验进行了比较。分析和数值模拟与实验测量结果非常吻合。通过理论案例研究,比较了软硬陶瓷单晶双压电晶片(由PZT-5H,PZT-8,PMN-PZT和PMN-PZT-Mn制成)的宽带随机激励。

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