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On the performance of concentrating fluid-based spectral-splitting hybrid PV-thermal (PV-T) solar collectors

机译:基于流体的谱分离杂交PV-热(PV-T)太阳能收集器的性能

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Concentrating fluid-based spectral-splitting hybrid PV-thermal (SSPVT) collectors are capable of high electrical and thermal efficiencies, as well as high-temperature thermal outputs. However, the optimal optical filter and the maximum potential of such collectors remain unclear. In this study, we develop a comprehensive two-dimensional model of a fluid-based SSPVT collector. The temperature distributions reveal that these designs are effective in thermally decoupling the PV module from the high-temperature filter flow-channel, improving the electrical performance of the module. For a Si solar cell-based SSPVT collector with optical filter #Si400-1100, the filter channel is able to produce high-temperature thermal energy (400 degrees C) with an efficiency of 19.5%, low-temperature thermal energy (70 degrees C) with an efficiency of 49.5%, and electricity with an efficiency 17.5%. Of note is that the relative fraction of high-temperature thermal energy, low-temperature thermal energy and electricity generated by such a SSPVT collector can be adjusted by shifting the upper- and lower-bound cut-off wavelengths of the optical filter, which are found to strongly affect the spectral and energy distributions through the collector. The optimal upper-bound cut-off always equals the bandgap wavelength of the solar cell material (e.g., 1100 nm for Si, and 850 nm for CdTe), while the optimal lower-bound cut-off follows more complex selection criteria. The SSPVT collector with the optimal filter has a significantly higher total effective efficiency than an equivalent conventional solar-thermal collector when the relative value of the high-temperature heat to that of electricity is lower than 0.5. Detailed guidance for selecting optimal filters and their role in controlling SSPVT collector performance under different conditions is provided. (C) 2021 Elsevier Ltd. All rights reserved.
机译:集中基于流体的光谱分离杂交PV-热(SSPVT)收集器能够高电气和热效率,以及高温热输出。然而,最佳滤光器和这种收集器的最大电位仍然不清楚。在这项研究中,我们开发了一种基于流体的SSPVT收集器的全面二维模型。温度分布揭示这些设计在高温过滤器流动通道中热解耦PV模块,从而提高了模块的电气性能。对于具有滤光器#SI400-1100的Si太阳能电池的SSPVT集电极,滤波器通道能够产生高温热能(400摄氏度),效率为19.5%,低温热能(70摄氏度) )效率为49.5%,电力效率为17.5%。值得注意的是,可以通过使光学滤光器的上限和下束的截止波长移位来调节由这种SSPVT收集器产生的高温热能,低温热能和电力的相对分数。发现强烈影响通过收集器的光谱和能量分布。最佳的上限截止始终等于太阳能电池材料的带隙波长(例如,对于Si,1100nm,Cdte的850nm),而最佳的下束截止遵循更复杂的选择标准。当高温热的相对值低于0.5时,具有最佳滤波器的SSPVT收集器的总有效效率明显高于当量的传统太阳能热集光器。提供了选择最佳过滤器的详细指导及其在控制不同条件下控制SSPVT收集器性能方面的作用。 (c)2021 elestvier有限公司保留所有权利。

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