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Analysis and design of air ventilated building integrated photovoltaic (BIPV) system incorporating phase change materials

机译:包含相变材料的通风建筑一体化光伏(BIPV)系统的分析和设计

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摘要

Building integrated photovoltaics (BIPV) coupled with phase change materials (PCM) (BIPV/PCM) provide opportunities for reducing the photovoltaic (PV) panel temperature to increase the overall efficiency of the BIPV, while also transferring the extracted heat for building energy load management. A comprehensive numerical study is conducted to simulate the effects of different BIPV design parameters namely, BIPV height (H), air gap between BIPV/PCM and wall (delta(Air)) thickness (delta(PCM)), and air mass flow rate ((m) over dot) on the maximum PV panel temperature, the power production by the PV, and the energy extracted by the air. Optimum BIPV/PCM designs are derived from the studies for three different phase change materials, with the goal of maximizing the total energy from photovoltaics (E-PV) and extracted heat (E-air), subject to the constraint of keeping the maximum PV panel temperature to within acceptable values. From the obtained results it is concluded that for the selected range of parameters, the optimum values of delta(PCM), H, delta(Air )and m are, respectively, 0.04 m, 3 m, 0.02 m and 0.18 kg/s for maximizing E-PV and 0 m, 3 m, 0.08 m and 0.091 kg/s for maximizing E-air without any constraints.
机译:结合相变材料(PCM)(BIPV / PCM)的建筑集成光伏(BIPV)提供了降低光伏(PV)面板温度的机会,以提高BIPV的整体效率,同时还可以将提取的热量传递给建筑能源负荷管理。进行了全面的数值研究,以模拟不同BIPV设计参数的影响,即BIPV高度(H),BIPV / PCM与壁之间的气隙(delta(Air))厚度(delta(PCM))和空气质量流量((m点上的(m)上)),最大PV面板温度,PV产生的功率以及空气提取的能量。最佳BIPV / PCM设计源自对三种不同相变材料的研究,其目标是在保持最大PV的约束下,最大化光伏(E-PV)和提取的热量(E-air)的总能量面板温度在可接受的范围内。从获得的结果可以得出结论,对于选定的参数范围,对于以下参数,delta(PCM),H,delta(Air)和m的最佳值分别为0.04 m,3 m,0.02 m和0.18 kg / s最大化E-PV和0 m,3 m,0.08 m和0.091 kg / s,以最大化E-air不受任何限制。

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