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An Experimental Investigation of Free Cooling by Natural Convection of Vertical Surfaces for Building Integrated Photovoltaic (BIPV) Applications

机译:基于建筑集成光伏(BIPV)应用的垂直表面自然对流自由对流的实验研究

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An experimental study is carried out to investigate the effect of the geometrical configuration on the thermal performance of a series of vertical heaters cooled by natural convection of air. The aim of the work is to investigate the physical mechanisms which influences the thermal behaviour of a double-skin photovoltaic (PV) facade. This results in a better understanding of the related phenomena and infers useful engineering information for controlling the energy transfers to the building where the PV system is applied. In real applications, the PV integrated double facade allows local production of electricity and heat to be employed for the building needs. Furthermore increasing the heat transfer rate from the PV surfaces increases the conversion efficiency of the PV modules since they operate better as the working temperature is lower. The test section consists in a double vertical wall, 2 m high, and each wall is constituted by 10 different heating modules 0.2 m high. The separating distance between the walls is varied from 0.03 to 0.16 m, and the convective heat flux at the wall ranges from 75 to 200 W/m. In this study, the heated section is 1.6 m in height. Different heating configurations are analysed, including the uniform heating mode and two different configurations of non uniform, alternate heating. The experimental procedure allows the wall temperature and local heat transfer coefficient to be inferred and shows that the proper selection of the separating distance and heating mode can noticeably decrease the surface temperatures and hence enhance the conversion efficiency of PV modules
机译:进行了实验研究,以研究几何配置对通过自然对流冷却的一系列垂直加热器的热性能的影响。该工作的目的是研究影响双皮光伏(PV)立面的热行为的物理机制。这导致更好地理解相关现象和Infers用于将能量转移到应用PV系统的建筑物的有用工程信息。在实际应用中,PV集成双面允许局部生产电力和热量用于建筑需求。此外,增加来自PV表面的传热速率增加了PV模块的转换效率,因为它们在工作温度较低时更好地运行。测试部分在双垂直墙壁上组成,2米高,每个壁由0.2米高的10个不同的加热模块构成。壁之间的分离距离在0.03至0.16μm中变化,并且壁的对流热通量范围为75至200w / m。在这项研究中,加热部分的高度为1.6米。分析了不同的加热配置,包括均匀的加热模式和两种不同的非均匀配置配置。 The experimental procedure allows the wall temperature and local heat transfer coefficient to be inferred and shows that the proper selection of the separating distance and heating mode can noticeably decrease the surface temperatures and hence enhance the conversion efficiency of PV modules

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