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YIELD MODELLING FOR MICRO INVERTER, POWER OPTIMIZER AND STRING INVERTER UNDER CLEAR AND PARTIALLY SHADED CONDITIONS

机译:清晰和部分遮蔽条件下的微型逆变器,功率优化器和弦逆变器的发电模型

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Building Integrated and Building Attached Photovoltaic (BIPV, BAPV) systems may suffer from lower performance than predicted as a result of unwanted partial shading. New system architectures have been proposed to optimize performance. The common approach of these new architectures is to track the Maximum Power Point (MPP) of every solar module individually. A simulation model is developed to quantity the benefits and drawbacks of different PV system architectures. The model includes a shading evaluation of the installation with means of 3D modeling, irradiance calculations, PV cell modelling and finally an empirical power conversion model. The energy yield of three leading architectures is confirmed (string inverter, power optimizer, micro inverter) for clear and partial shading conditions by means of an outdoor field test. Results show that there is a clear benefit for MLPE systems at higher irradiance when partial shading is present. The analysis method can be used by PV installers and system designer to determine which is the optimal system architecture for maximum energy yield especially when partial shading is present.
机译:由于不需要的部分阴影,建筑物集成和建筑物附加光伏(BIPV,BAPV)系统的性能可能会比预期的低。已经提出了新的系统架构来优化性能。这些新架构的通用方法是分别跟踪每个太阳能模块的最大功率点(MPP)。开发了一个仿真模型,以量化不同光伏系统架构的优缺点。该模型包括通过3D建模,辐照度计算,PV电池建模以及最终的经验功率转换模型对安装进行遮光评估。通过室外现场测试,确认了三种领先架构(串式逆变器,功率优化器,微型逆变器)的能量产出,以实现清晰和部分遮蔽条件。结果表明,当存在部分阴影时,在较高辐照度下,MLPE系统具有明显的优势。 PV安装人员和系统设计人员可以使用该分析方法来确定哪种方法是实现最大能量产出的最佳系统体系结构,尤其是在存在部分阴影的情况下。

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