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Design and performance study on a large-scale hybrid CPV/T system based on unsteady-state thermal model

机译:基于非稳态热模型的大型混合CPV / T系统设计与性能研究

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A hybrid CPV/T unit designed in this work concentrates solar radiation by a compound parabolic concentrator (CPC) and converts solar energy into electrical and thermal energy by a PV/T module. The CPC eliminating multiple reflections of solar radiation is defined as the 'EMR-CPC' in our previous work, which improves photoelectric and thermal conversion efficiencies. Two similar CPV/T units were tested with two-axis tracking device and south-north single-axis tracking device respectively, and the average photoelectric conversion efficiencies were 13% and 12%. A large-scale south-north tracking hybrid CPV/T system with sunlight collecting area of 810 m(2) was built to explore practical application of this CPV/T unit. The whole-day thermal efficiency and total thermal output of the large-scale hybrid CPV/T system were 55% and 1,730,039 kJ respectively on April 14, 2017. The steady-state and unsteady-state thermal models of the hybrid CPV/T system were established and the energy loss was analyzed. The calculated whole-day comprehensive thermal efficiencies of the unsteady-state thermal model and the steady-state thermal model were 55.3% and 55.0% respectively, which were close to the measurement 55.8%. However, the steady-state thermal model failed to accurately predict the whole-day thermal efficiency variation of the system. In comparison, the unsteady-state thermal model accurately predicts instantaneous thermal efficiency of the system varying with meteorological conditions and its total daily heat output.
机译:在这项工作中设计的混合式CPV / T单元通过复合抛物线聚光器(CPC)聚集太阳辐射,并通过PV / T模块将太阳能转换为电能和热能。消除太阳辐射多次反射的CPC在我们以前的工作中被定义为“ EMR-CPC”,它提高了光电和热转换效率。使用两轴跟踪设备和南北单轴跟踪设备分别测试了两个类似的CPV / T单元,其平均光电转换效率为13%和12%。为了探索该CPV / T装置的实际应用,建立了一个阳光收集面积为810 m(2)的大型南北跟踪混合CPV / T系统。到2017年4月14日,大型混合CPV / T系统的全天热效率和总热输出分别为55%和1,730,039 kJ。混合CPV / T系统的稳态和非稳态热模型建立并分析能量损失。计算得出的非稳态热模型和稳态热模型的全天综合热效率分别为55.3%和55.0%,接近实测值55.8%。但是,稳态热模型无法准确预测系统的全天热效率变化。相比之下,非稳态热模型可以准确地预测随气象条件及其每日总热量输出而变化的系统的瞬时热效率。

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