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Performance Evaluation of an Evacuated Flat Plate Photovoltaic-Thermal (PVT) Collector for Heat and Electricity

机译:抽空平板热电光伏收集器的性能评估

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The photovoltaic (PV) systems produce heat and electricity at the same time. Heat produced by conventional PV systems is of low-grade nature that cannot be used efficiently in high temperature application. In this article a novel PV thermal air collector has been worked out that can produce heat of high-grade nature as well as electricity. To obtain high temperature vacuum has been created between the solar cells and glass glazing that will reduce the thermal loss. Currently, in this work, a mathematical model is presented for single glazed evacuated flat plate photovoltaic-thermal (EFPVT) air collector to investigate its performance under different working conditions. The model is established on heat balance equations constructed for each component of the EFPVT air collector, considering a steady state heat transfer. MATLAB software is used to develop the computer code for the heat balance model and to run the iterative simulations. Simulations are performed at different mass flow rates (0.001-0.08 kg/s), collector length (1-10 m) and different configurations (evacuatedon-evacuated, with PV lamination and without PV lamination). The results indicate that thermal efficiency for EFPVT collector is higher and achieved higher outlet air temperature. A slight reduction in PV electrical efficiency is also observed due to rise in absorber temperature, in EFPVT collector case as compared to conventional non-evacuated configuration. The proposed mathematical model is suitable for steady state simulation and can successfully predict the system's electrical and thermal performance, in good conformity with the literature.
机译:光伏(PV)系统同时产生热量和电能。常规光伏系统产生的热量属于低品位性质,无法在高温应用中有效利用。在本文中,已经研究出了一种新型的PV热空气收集器,它可以产生高等级的热量以及电力。为了获得高温,已经在太阳能电池和玻璃窗之间创建了真空,这将减少热损失。当前,在这项工作中,为单层玻璃真空平板式光热(EFPVT)空气收集器提供了一个数学模型,以研究其在不同工作条件下的性能。考虑到稳态传热,该模型是基于为EFPVT空气收集器的每个组件构建的热平衡方程建立的。 MATLAB软件用于开发热平衡模型的计算机代码并运行迭代仿真。在不同的质量流量(0.001-0.08 kg / s),收集器长度(1-10 m)和不同的配置(抽真空/不抽真空,采用PV层压和不采用PV层压)下进行模拟。结果表明,EFPVT集热器的热效率更高,并实现了更高的出口空气温度。与传统的非真空配置相比,在EFPVT收集器的情况下,由于吸收器温度的升高,PV电效率也略有下降。所提出的数学模型适用于稳态仿真,并且可以成功地预测系统的电气和热性能,与文献非常吻合。

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