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Towards adopting passive heat dissipation approaches for temperature regulation of PV module as a sustainable solution

机译:致力于采用无源散热方法来调节光伏组件的温度,这是可持续的解决方案

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Solar technology is a promising renewable option and essential towards a sustainable energy future. PV power systems represent a major part of solar technology. The efficiency of a PV module is limited by many factors such as ohmic losses between solar cells, solar radiation, high module temperature, dust and packing factor. A combined PV/T concept was proposed to reduce the thermal stress of PV module by recovering the heat of high PV module temperature and use it for thermal applications. After decades of continuous research and development (R&D) aspects on PV/T, many researchers reported lower PV electrical efficiency, lower thermal efficiency and lower PV/T efficiency for it than the two separate systems. That is why, the product reliability of the PV/T system does not succeed in penetrating the market due to technical, cost and size barriers such as materials, design, manufacturing techniques, initial cost, installation cost and the bulk size of the system. Since the PVT concept failed to increase the electrical and thermal efficiencies concurrently, it would be more appropriate if the R&D community refocuses its efforts again on the heat dissipation option instead of the costly heat recovery option to regulate the high PV module temperature. The aim of this review is to provide an insight into the role of passive and active techniques in the thermal regulation of PV module temperature. The study will shed light on the temperature reduction range that is possible by the available passive and active heat dissipation approaches. Also, the effectiveness of passive approaches in lowering the temperature of the PV module when compared to active approaches will be highlighted as well. In addition to this overall study, this review will include a discussion of the effectiveness of passive and active approaches in the context of PVT collector, thus supporting the argument towards the potential of passive approaches when compared to active approaches. The outcomes of this study are detailed in the lessons-learned section and future research priorities are highlighted in the conclusion section.
机译:太阳能技术是一种有前途的可再生能源,对可持续能源的未来至关重要。光伏发电系统是太阳能技术的重要组成部分。 PV模块的效率受到许多因素的限制,例如太阳能电池之间的欧姆损耗,太阳辐射,模块温度高,粉尘和填充因子。提出了组合的PV / T概念,通过回收高PV模块温度的热量并将其用于热应用来降低PV模块的热应力。经过数十年的PV / T持续研究与开发(R&D)方面,许多研究人员报告说,与两个单独的系统相比,其PV电气效率更低,热效率更低,PV / T效率更低。因此,由于技术,成本和尺寸方面的障碍(例如材料,设计,制造技术,初始成本,安装成本和系统体积),PV / T系统的产品可靠性无法成功打入市场。由于PVT概念无法同时提高电效率和热效率,因此如果R&D社区重新将精力集中在散热选项而不是昂贵的热回收选项上来调节高PV模块温度,则更为合适。这篇综述的目的是提供对被动和主动技术在光伏组件温度热调节中的作用的认识。该研究将揭示可用的被动和主动散热方法可能实现的降温范围。同样,与主动方法相比,被动方法在降低PV模块温度方面的有效性也将得到重点介绍。除了这项总体研究之外,本综述还将讨论在PVT收集器背景下被动和主动方法的有效性,从而支持与主动方法相比对被动方法潜力的争论。本研究的结果在经验教训一节中进行了详细说明,在结论部分中强调了未来的研究重点。

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