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基于挠电膜的机械能收集生物启发模型。

Bioinspired model of mechanical energy harvesting based on flexoelectric membranes.

作者信息

Rey Alejandro D, Servio P, Herrera-Valencia E E

机构信息

Department of Chemical Engineering, McGill University, Montreal, Quebec, Canada H3A 2B2.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Feb;87(2):022505. doi: 10.1103/PhysRevE.87.022505. Epub 2013 Feb 19.

Abstract

Membrane flexoelectricity is an electromechanical coupling process that describes membrane electrical polarization due to bending and membrane bending under electric fields. In this paper we propose, formulate, and characterize a mechanical energy harvesting system consisting of a deformable soft flexoelectric thin membrane subjected to harmonic forcing from contacting bulk fluids. The key elements of the energy harvester are formulated and characterized, including (i) the mechanical-to-electrical energy conversion efficiency, (ii) the electromechanical shape equation connecting fluid forces with membrane curvature and electric displacement, and (iii) the electric power generation and efficiency. The energy conversion efficiency is cast as the ratio of flexoelectric coupling to the product of electric and bending elasticity. The device is described by a second-order curvature dynamics coupled to the electric displacement equation and as such results in mechanical power absorption with a resonant peak whose amplitude decreases with bending viscosity. The electric power generation is proportional to the conversion factor and the power efficiency decreases with frequency. Under high bending viscosity, the power efficiency increases with the conversion factor and under low viscosities it decreases with the conversion factor. The theoretical results presented contribute to the ongoing experimental efforts to develop mechanical energy harvesting from fluid flow energy through solid-fluid interactions and electromechanical transduction.

摘要

膜挠曲电效应是一种机电耦合过程,它描述了由于弯曲导致的膜电极化以及在电场作用下膜的弯曲。在本文中,我们提出、阐述并表征了一种机械能收集系统,该系统由一个可变形的柔性挠曲电薄膜组成,该薄膜受到来自接触的大量流体的谐波力作用。对能量收集器的关键元件进行了阐述和表征,包括:(i)机械能到电能的转换效率;(ii)将流体力与膜曲率和电位移联系起来的机电形状方程;(iii)发电及效率。能量转换效率表示为挠曲电耦合与电弹性和弯曲弹性乘积的比值。该装置由与电位移方程耦合的二阶曲率动力学描述,因此会导致机械能吸收,并出现一个共振峰,其振幅随弯曲粘度降低。发电量与转换因子成正比,功率效率随频率降低。在高弯曲粘度下,功率效率随转换因子增加,而在低粘度下,功率效率随转换因子降低。本文给出的理论结果有助于正在进行的实验工作,即通过固 - 液相互作用和机电转换从流体流动能量中开发机械能收集技术。

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