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Electromechanical finite element modelling for dynamic analysis of a cantilevered piezoelectric energy harvester with tip mass offset under base excitations

机译:机电有限元建模,用于基础激励下具有尖端质量偏移的悬臂式压电能量采集器的动态分析

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摘要

A new electromechanical finite element modelling of a vibration power harvester and its validation with experimental studies are presented in this paper. The new contributions for modelling the electromechanical finite element piezoelectric unimorph beam with tip mass offset under base excitation encompass five major solution techniques. These include the electromechanical discretization, kinematic equations, coupled field equations, Lagrangian electromechanical dynamic equations and orthonormalized global matrix and scalar forms of electromechanical finite element dynamic equations. Such techniques have not been rigorously modelled previously by other researchers. There are also benefits to presenting the numerical techniques proposed in this paper. First, the proposed numerical techniques can be used for applications in many different geometrical models, including micro-electro-mechanical system power harvesting devices. Second, applying tip mass offset located after the end of the piezoelectric beam length can result in a very practical design, which avoids direct contact with piezoelectric material because of its brittle nature. Since the surfaces of actual piezoelectric material are covered evenly with thin conducting electrodes for generating single voltage, we introduce the new electromechanical discretization, consisting of the mechanical and electrical discretized elements. Moreover, the reduced electromechanical finite element dynamic equations can be further formulated to obtain the series form of new multimode electromechanical frequency response functions of the displacement, velocity, voltage, current and power, including optimal power harvesting. The normalized numerical strain node and eigenmode shapes are also further formulated using numerical discretization. Finally, the parametric numerical case studies of the piezoelectric unimorph beam under a resistive shunt circuit show good agreement with the experimental studies.
机译:本文提出了一种新型的振动能量采集器机电有限元模型,并通过实验研究对其进行了验证。在基础激励下对具有尖端质量偏移的机电有限元压电单压电晶片进行建模的新贡献包括五种主要解决技术。这些包括机电离散化,运动学方程,耦合场方程,拉格朗日机电动力学方程以及机电有限元动力学方程的正态化全局矩阵和标量形式。以前,其他研究人员尚未对这些技术进行严格的建模。介绍本文提出的数值技术也有好处。首先,所提出的数值技术可以用于许多不同的几何模型中,包括微机电系统功率收集装置。其次,施加位于压电束长度末端之后的尖端质量偏移可以导致非常实用的设计,由于其易碎性,避免了与压电材料的直接接触。由于实际的压电材料表面均匀地覆盖着薄的导电电极以产生单电压,因此我们引入了新的机电离散化方法,该方法由机械和电气离散元素组成。此外,可以进一步公式化简化的机电有限元动力学方程,以获得位移,速度,电压,电流和功率(包括最佳功率收集)的新的多模式机电频率响应函数的级数形式。还使用数值离散化进一步制定了归一化的数值应变节点和本征模形状。最后,在电阻分流电路下压电单压电晶片梁的参数数值案例研究与实验研究显示出良好的一致性。

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