电润湿太阳能聚光电池的模拟

Iftekhar Khan, G. Rosengarten
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引用次数: 4

摘要

液体透镜的电润湿控制已成为太阳能跟踪和集中的一种新方法。最近的研究已经证明了使用薄的电润湿电池而不使用任何笨重的机械设备来引导阳光的概念。该技术的有效应用将有助于设计薄型和平板型太阳能聚光器。通过试错实验方法来了解电润湿电池液-液和液-固界面的行为是低效且耗时的。本文建立了电润湿电池液-液和液-固界面特性随外加电压、介电常数、电池尺寸等参数变化的仿真模型。我们使用Comsol Multiphysics模拟,结合不同液体的实验数据。我们设计了二维和三维仿真模型来预测液体透镜的形状。该模型采用Young-Lippman方程计算接触角,采用移动网格界面求解具有Navier滑移壁边界条件的Navier-stokes方程。电极电场的模拟与Young-Lippman方程耦合。该模型还可用于确定其他MEMS电润湿器件的工作特性,如电润湿显示器、光开关、电子纸、电润湿菲涅耳透镜等。
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Simulation of an electrowetting solar concentration cell
Electrowetting control of liquid lenses has emerged as a novel approach for solar tracking and concentration. Recent studies have demonstrated the concept of steering sunlight using thin electrowetting cells without the use of any bulky mechanical equipment. Effective application of this technique may facilitate designing thin and flat solar concentrators. Understanding the behavior of liquid-liquid and liquid-solid interface of the electrowetting cell through trial and error experimental processes is not efficient and is time consuming. In this paper, we present a simulation model to predict the liquid-liquid and liquid-solid interface behavior of electrowetting cell as a function of various parameters such as applied voltage, dielectric constant, cell size etc. We used Comsol Multiphysics simulations incorporating experimental data of different liquids. We have designed both two dimensional and three dimensional simulation models, which predict the shape of the liquid lenses. The model calculates the contact angle using the Young-Lippman equation and uses a moving mesh interface to solve the Navier-stokes equation with Navier slip wall boundary condition. Simulation of the electric field from the electrodes is coupled to the Young-Lippman equation. The model can also be used to determine operational characteristics of other MEMS electrowetting devices such as electrowetting display, optical switches, electronic paper, electrowetting Fresnel lens etc.
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