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An approach for energy modeling of a building integrated photovoltaic (BIPV) Trombe wall system

机译:用于建筑物集成光伏(BIPV)Trombe墙系统的能量建模的方法

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摘要

In this paper, an attempt has been made to validate the simulation model with experimental results of a model BIPV Trombe wall built in Izmir, Turkey. An energy analysis for determining the performance of a BIPV Trombe wall integrated to the facade of a room has been carried out. The analysis is based on transient condition. Computational fluid dynamics (CFD) has been applied to predict the temperature and velocity distribution in the test room model. The simulations for two-dimensional model of BIPVTrombe wall system have been carried out for February 4-7th, 2008. The temperature and velocity distribution of the BIPV Trombe wall system are obtained from the simulation results. The simulation results and the measured values of surface temperatures of PV module and thermal wall; indoor, inter-space, inlet and outlet air temperatures have been compared and it is seen that they are in good agreement. The experimental results also show that 10% of solar radiation transmittance has been supplied by using a semi-transparent a-Si solar cell. Thus, thermal energy input to the system increases compared to other BIPV systems. Meanwhile, the experimental daily average electrical and thermal efficiency of this system can reach 4.52% and 27.2% respectively.
机译:在本文中,已经尝试用在土耳其伊兹密尔建造的BIPV Trombe墙模型的实验结果来验证仿真模型。进行了能源分析,以确定BIPV Trombe墙集成到房间立面的性能。该分析基于瞬态条件。计算流体动力学(CFD)已用于预测测试室模型中的温度和速度分布。 BIPVTrombe墙系统的二维模型已于2008年2月4日至7日进行了仿真。BIPVTrombe墙系统的温度和速度分布是从仿真结果中得出的。仿真结果以及光伏组件和热壁的表面温度测量值;对室内,空间,入口和出口的空气温度进行了比较,发现它们之间具有很好的一致性。实验结果还表明,使用半透明的a-Si太阳能电池可提供10%的太阳辐射透射率。因此,与其他BIPV系统相比,输入系统的热能有所增加。同时,该系统的实验日均电效率和热效率分别可以达到4.52%和27.2%。

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