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Low light conditions modelling for building integrated photovoltaic (BIPV) systems

机译:用于建筑物集成光伏(BIPV)系统的弱光条件建模

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摘要

The low irradiance efficiency of photovoltaic modules is important to the optimization of BIPV systems. When photovoltaic modules are integrated into a building, architectural design considerations compete with maximizing photovoltaic energy production. As a result, BIPV arrays are often not facing south and are frequently mounted vertically. Under these conditions, a greater portion of the total sunlight striking the array is diffuse or at high angles of incidence. In northern latitudes a significant amount of the total yearly energy is produced at low light levels. A grid-connected array of BIPV modules integrated into the BCIT Technology Centre building in Burnaby, B.C. was used for assessing the accuracy of an energy performance model developed for BIPV systems. The BIPV system uses AC modules and a computerized data acquisition system for monitoring the performance of modules and inverters. The performance model was developed from analysis of the open circuit voltage, maximum power point voltage and maximum power point current of the individual modules comprising the BIPV array. The algorithm for calculating power output of the photovoltaic array is derived from the ideal diode equation using the single diode model of a photovoltaic cell. An empirically derived parameter modifies the equation. Once the parameters for different module technologies are established, it is possible to compare their annual performance in a BIPV system.
机译:光伏模块的低辐照效率对于BIPV系统的优化很重要。当将光伏模块集成到建筑物中时,建筑设计方面的考虑会与最大化光伏能量产生产生竞争。结果,BIPV阵列通常不面向南方,并且经常垂直安装。在这些条件下,撞击阵列的总阳光中有很大一部分是漫射的或以高入射角入射。在北纬地区,低照度下每年产生大量的总能量。 BIPV模块的网格连接阵列,已集成到不列颠哥伦比亚省本那比的BCIT技术中心大楼中。用于评估为BIPV系统开发的能源绩效模型的准确性。 BIPV系统使用交流模块和计算机数据采集系统来监视模块和逆变器的性能。通过分析组成BIPV阵列的各个模块的开路电压,最大功率点电压和最大功率点电流来开发性能模型。使用光伏电池的单二极管模型从理想二极管方程中得出用于计算光伏阵列的功率输出的算法。根据经验得出的参数会修改方程。一旦建立了不同模块技术的参数,就可以在BIPV系统中比较它们的年度性能。

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