Yearly Energy, Exergy, and Environmental (3E) Analyses of A Photovoltaic Thermal Module and Solar Thermal Collector in Series

S. AL-aridhee, M. Moghiman
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Abstract

The annual performance of a hybrid system of a flat plate photovoltaic thermal system and a solar thermal collector (PVT/ST) is numerically analyzed from the energy, exergy, and environmental (CO2 reduction) viewpoints. This system can produce electricity and thermal power simultaneously, with higher thermal power and exergy compared to conventional photovoltaic thermal systems. For this purpose, a 3D transient numerical model is developed for investigating the system's performance in four main steps: (1) investigating the effects of the mass flow rate of the working fluid (20 to 50 kg/h) on the temperature behavior and thermodynamic performance of the system, (2) studying the impacts of using glass covers on the different parts of the system, (3) evaluating the annual energy and exergy analyses of the system under Mashhad weather conditions, and (4) examining the CO2 reduction by using the proposed system. The results show that for the (glazed) PVT and (glazed) ST systems, increasing the mass flow rate of the working fluid from 20 to 50 kg/h results in 22% and 1.5% improvements in both thermal and electrical power, respectively. However, the thermal exergy of the system decreases by 40.1%. Furthermore, the (glazed) PVT/(glazed) ST systems generate approximately 86% and 264% more thermal power and energy than the PVT/ST systems, respectively. Using a (glazed) PVT/(glazed) ST system with a working fluid’s mass flow rate of 50 kg/h results in maximum thermal and electrical efficiencies of 40.7% and 16.22%, respectively. According to the annual analysis, the highest average thermal and electrical power, equal to approximately 338.3 and 24 W, respectively, is produced in August. The amount of CO2 reduction increases by increasing the mass flow rate and using a glass cover. The PVT/(glazed)ST system has the potential to reduce CO2 emissions by 426.3 kg per year. 
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光伏热模块和太阳能集热器串联的年度能源、能源和环境(3E)分析
从能源、能源和环境(CO2减排)的角度对平板光伏热系统和太阳能集热器(PVT/ST)混合系统的年度性能进行了数值分析。该系统可以同时发电和发电,与传统的光伏热系统相比,具有更高的热功率和火用。为此,开发了一个三维瞬态数值模型,分四个主要步骤研究系统的性能:(1)研究工作流体质量流量(20 ~ 50 kg/h)对系统温度行为和热力学性能的影响;(2)研究使用玻璃罩对系统不同部分的影响;(3)评估系统在马什哈德天气条件下的年度能量和火用分析;(4)检查使用该系统减少的二氧化碳。结果表明,对于(釉面)PVT和(釉面)ST系统,将工作流体的质量流量从20 kg/h提高到50 kg/h,热电性能分别提高22%和1.5%。然而,系统的热用能降低了40.1%。此外,(釉面)PVT/(釉面)ST系统比PVT/ST系统分别产生约86%和264%的热功率和能量。使用(釉面)PVT/(釉面)ST系统,当工作流体质量流量为50 kg/h时,热效率和电效率分别达到40.7%和16.22%。根据年度分析,8月份的平均热电功率最高,分别约为338.3瓦和24瓦。通过增加质量流量和使用玻璃罩,二氧化碳的减少量增加。PVT/(玻璃)ST系统有潜力每年减少426.3千克的二氧化碳排放。
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