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首页> 外文期刊>International journal of low carbon technologies >Passive cooling technology for photovoltaic panels for domestic houses
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Passive cooling technology for photovoltaic panels for domestic houses

机译:家用光伏面板的被动冷却技术

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摘要

The efficiency of photovoltaic panels decreases as the panels' temperature increases, which results in deduction of electricity generation. In order to reduce this effect, different cooling methods were proposed and investigated. This paper reviews the previous work on cooling PV cells and concludes that the cost-effectiveness, design feasibility and minimal energy consumption are the important design consideration for cooling systems. Based on these considerations, this paper reports a passive cooling method that utilizes rainwater as cooling media and a gas expansion device to distribute the rainwater. The gas is thermally expanded from receiving solar radiation as such the amount of water it pushes to flow over the PV cells is proportional with the solar radiation it received. The paper reports a design and simulation of such a system for a domestic house application. In the paper, a relationship of the gas chamber size, solar radiation and gas expansion volume was established for evaluation with respect to the variation of gas temperature and the amount of rainwater used for cooling. A heat transfer model was used to evaluate the performance of the cells by cooling with this passive device. The results show that on a design day, the passive cooling system reduces the temperature of the cells and increases electrical efficiency of the PV panel by 8.3%. The payback period of this system is <14 years.
机译:光伏面板的效率随着面板温度的升高而降低,这导致了发电量的减少。为了减小这种影响,提出并研究了不同的冷却方法。本文回顾了冷却光伏电池的先前工作,并得出结论,成本效益,设计可行性和最低能耗是冷却系统的重要设计考虑因素。基于这些考虑,本文报道了一种被动冷却方法,该方法利用雨水作为冷却介质并利用气体膨胀装置分配雨水。气体从接收到的太阳辐射中进行热膨胀,因此气体推动流过PV电池的水量与接收到的太阳辐射成比例。该论文报告了这种用于住宅应用的系统的设计和仿真。在本文中,建立了气室尺寸,太阳辐射和气体膨胀量之间的关系,以评估气体温度变化和用于冷却的雨水量。使用传热模型通过此被动设备冷却来评估电池的性能。结果表明,在设计日,被动冷却系统降低了电池温度,并使PV面板的电效率提高了8.3%。该系统的投资回收期<14年。

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