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首页> 外文期刊>Energy Conversion & Management >Spectral-splitting hybrid PV-thermal (PV-T) solar collectors employing semi-transparent solar cells as optical filters
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Spectral-splitting hybrid PV-thermal (PV-T) solar collectors employing semi-transparent solar cells as optical filters

机译:采用半透明太阳能电池作为光学滤波器的光谱分离杂交PV-热(PV-T)太阳能收集器

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摘要

Spectral splitting is a promising design methodology that can significantly improve the performance of hybrid photovoltaic-thermal (PV-T) collectors. However, conventional spectral-splitting PVT (SSPVT) collectors require additional optical components, which significantly increases the complexity and cost of the collector. This study proposes SSPVT collector designs that employ semi-transparent photovoltaic (PV) solar cells, which act as both the electricity generator as well as the spectral-splitting optical filter. In these designs, a part of the solar spectrum is absorbed by the semi-transparent solar cells for electricity generation, while the rest (especially the near-infrared region of the solar spectrum) is transmitted to an absorber where it generates a high-temperature thermal energy output. Three types of emerging semi-transparent solar cells, i.e., cadmium telluride (CdTe), perovskite solar cells (PVSCs) and polymer solar cells (PSCs), are selected for investigation in this context. A comprehensive two-dimensional model of such SSPVT collectors is developed and used to investigate their electrical and thermal performance. The results show that the proposed designs are effective at thermally decoupling the PV cells from the solar thermal absorber, thereby promoting a higher electrical efficiency and enabling the simultaneous generation of low-temperature thermal energy (60 degreesC), along with high-temperature thermal energy (100-200 degrees C) under one sun. For example, a PVSC-based SSPVT collector is shown to be capable of simultaneously generating: electricity with an efficiency of 13.8%, high-temperature heat (150 degrees C) with a thermal efficiency of 21.1%, and low-temperature heat (50 degrees C) with a thermal efficiency of 22.5%. The relative performance between the CdTe-, PVSC- and PSC-based collectors depend on the relative value of the hightemperature thermal energy to that of electricity. It is concluded that semi-transparent solar cells are of great promise in this application, and can give rise to next-generation, high-performance solar collectors.
机译:光谱分裂是一个有希望的设计方法,可以显着提高混合光伏 - 热(PV-T)收集器的性能。然而,传统的光谱分离PVT(SSPVT)收集器需要额外的光学组件,这显着提高了收集器的复杂性和成本。本研究提出了采用半透明光伏(PV)太阳能电池的SSPVT收集器设计,其充当电力发生器以及光谱分裂滤光器。在这些设计中,太阳光谱的一部分被用于发电的半透明太阳能电池吸收,而其余的(特别是太阳光谱的近红外区域)被传递到产生高温的吸收器热能输出。在这种情况下,选择三种类型的新出现的半透明太阳能电池,即碲化镉(CdTe),钙钛矿太阳能电池(PVSCS)和聚合物太阳能电池(PSC)进行研究。开发并用于调查其电气和热性能的综合二维模型。结果表明,该建议的设计在热与太阳能热吸收器中热解耦了PV电池,从而促进了更高的电效率并使低温热能(& 60℃)同时产生。在一个阳光下高温热能(100-200摄氏度)。例如,基于PVSC的SSPVT收集器被显示为能够同时产生:电力效率为13.8%,高温热(150℃),热效率为21.1%,低温热量(50摄氏度C)热效率为22.5%。 CDTE - ,PVSC和PSC的收集器之间的相对性能取决于高温热能对电力的相对值。结论是,半透明太阳能电池在本申请中具有很大的承诺,并且可以产生下一代高性能的太阳能收集器。

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