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Experimental Investigation of a Novel Solar Micro-Channel Loop-Heat-Pipe Photovoltaic/Thermal (MC-LHP-PV/T) System for Heat and Power Generation

机译:新型太阳能微通道回路热管光伏/热能(MC-LHP-PV / T)系统的实验研究

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This paper aims to experimentally investigate a novel solar Micro-Channel Loop-Heat-Pipe Photovoltaic/Thermal (MC-LHP-PV/T) system which, making its first attempt to employ the co-axial tubular heat exchanger as the condenser, PV-bound multiple micro-channel tubes array as the PV/evaporator, the upper end liquid header with tiny holes as the liquid header and liquid/vapour separator, and the upper end vapour header as the vapour collector and distributor, can create the improved condensation and evaporation effects within the loop-heatpipe (LHP) and thus, achieve significantly enhanced solar thermal and electrical efficiencies compared to traditional PV/T systems. Based on the results derived from our previous analytical study, a prototype MC-LHP-PV/T system employing R-134a as the working fluid was designed, constructed and tested, and the testing results were used to evaluate its operational performance including solar thermal and electrical efficiencies and their relevant impact factors. It is found that solar thermal efficiency of the MC-LHP-PV/T system varied with the inlet temperature and flow rate of coolant water, ambient temperature, as well as height difference between the condenser and evaporator. A lower inlet water temperature, a higher water flow rate, a higher ambient temperature, and a larger height difference between the condenser and the evaporator can help increase the solar thermal efficiency of the system. Under a range of testing conditions with the refrigerant charge ratio of 30%, a peak solar thermal efficiency (i.e., 71.67%) happened a solar radiation of 561W/m(2), inlet water temperature of 18 degrees C, water flow rate of 0.17m3/h, ambient temperature of 30 degrees C, and height difference of 1.3m. This set of parametrical data is therefore regarded as the optimal operational condition of the MC-LHP-PV/T system. Under these specific operational condition and the real weather solar radiation, the solar thermal efficiency of the system was in the range 25.2% to 62.2%, while the solar electrical efficiency varied from 15.59% to 18.34%. Compared to the existing PV/T and BIPV/T systems, the new MC-LHP-PV/T system achieved 17.20% and 33.31% higher overall solar efficiency.
机译:本文旨在通过实验研究一种新型的太阳能微通道环热管光伏/热能(MC-LHP-PV / T)系统,该系统首次尝试将同轴管状热交换器用作冷凝器PV束缚的多个微通道管阵列作为PV /蒸发器,带有小孔的上端液体集管作为液体集管和液/气分离器,上端蒸气集管作为蒸汽收集器和分配器,可以产生改善的冷凝与循环热管(LHP)内的热效应和蒸发效应相比,与传统的PV / T系统相比,太阳能热和电效率大大提高。根据我们之前的分析研究结果,设计,构建和测试了以R-134a为工作液的MC-LHP-PV / T原型系统,并使用测试结果评估了其运行性能,包括太阳热能电气效率及其相关影响因素。结果发现,MC-LHP-PV / T系统的太阳热效率随冷却水入口温度和流速,环境温度以及冷凝器和蒸发器之间的高度差而变化。较低的进水温度,较高的水流量,较高的环境温度以及冷凝器和蒸发器之间的高度差较大,可以帮助提高系统的太阳能热效率。在制冷剂充注率为30%的一系列测试条件下,太阳热效率达到峰值(即71.67%),太阳辐射为561W / m(2),进水温度为18摄氏度,水流量为0.17m3 / h,环境温度30摄氏度,高度差1.3m。因此,这组参数数据被视为MC-LHP-PV / T系统的最佳运行条件。在这些特定的操作条件和实际的太阳辐射下,系统的太阳热效率在25.2%至62.2%的范围内,而太阳电效率则在15.59%至18.34%之间变化。与现有的PV / T和BIPV / T系统相比,新的MC-LHP-PV / T系统的整体太阳能效率提高了17.20%和33.31%。

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