Optimization of design parameters of glazed hybrid photovoltaic thermal module using genetic algorithm

Sonveer Singh, S. Agrawal, D. Avasthi
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引用次数: 10

Abstract

The aim of this paper is to maximize the overall exergy efficiency of single channel photovoltaic thermal module. The solar panel (PV module) generally gives electrical efficiency in the range of 7% to 12%, the rest energy being dissipated in the form of heat losses. To recover thermal energy from the module photovoltaic thermal system has been simulated. The analysis in this work investigates the influence of seven important parameters on the efficiency of PVT solar system which inter alia includes length and depth of the channel, depth of insulation, velocity of fluid in the channel, depth of the tedlar and glass, and temperature of the fluid at the inlet on the basis of which optimization of the exergy efficiency of the module is done. Attempt is made to develop mathematical model and optimize parameters of glazed hybrid single channel photovoltaic thermal (PVT) module. The relevant mathematical equations for the glazed hybrid single channel photovoltaic thermal module are derived and genetic algorithm (GA) used to optimize overall exergy efficiency of the module. Only the parameters that could physically be varied are included in this optimization analysis while naturally occurring parameters like ambient temperature and solar intensity which vary naturally are excluded from design parameters in the algorithm. During second stage following first optimization only one parameter is varied at a time in the course of analysis while others are kept constant at the previously obtained optimal value.
基于遗传算法的玻璃混合光伏热模块设计参数优化
本文的目的是最大化单通道光伏热模块的整体火用效率。太阳能电池板(PV组件)的电效率一般在7%到12%之间,其余的能量以热损失的形式散失。为了从组件中回收热能,对光伏热系统进行了仿真。本文分析了通道长度和深度、隔热层深度、通道内流体速度、面板和玻璃深度、入口流体温度等7个重要参数对PVT太阳能系统效率的影响,并在此基础上对组件的火用效率进行了优化。建立了玻璃混合单通道光伏热模块的数学模型,并对其参数进行了优化。推导了玻璃混合单通道光伏热模块的相关数学方程,并采用遗传算法优化组件的整体火用效率。在优化分析中只考虑了物理上可以变化的参数,而自然发生的环境温度、太阳强度等自然变化的参数在算法中不包括在设计参数中。在第一次优化之后的第二阶段,在分析过程中每次只改变一个参数,而其他参数保持在先前获得的最优值不变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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