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Parametric analysis and systems design of dynamic photovoltaic shading modules

机译:动态光伏遮阳模块的参数分析与系统设计

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Abstract Shading systems improve building energy performance and occupant comfort by controlling glare, natural lighting, and solar gain. Integrating PV (photovoltaics) in shading systems opens new opportunities for BIPV (building integrated photovoltaics) on fa???§ades. A key problem of such systems is mutual shading among PV modules as it can lead to electrical mismatch losses and overheating effects. In this work, we present a new modeling framework, which couples parametric 3D with high-resolution electrical modeling of thin-film PV modules to simulate electric energy yield of geometrically complex PV applications. The developed method is able to predict the shading pattern for individual PV modules with high spatio-temporal resolution, which is of great importance for electrical system design. The methodology is applied to evaluate the performance of different dynamic BIPV shading system configurations, as well as its sensitivity to fa???§ade orientation and module arrangement. The analysis shows, that there is a trade-off between tracking performance and mutual shading of modules. Distance between modules is a critical parameter influencing the amount of mutual shading and hence limiting solar irradiation and electricity generation of PV shading systems using solar tracking. Planning of module string configuration, PV cell orientation, and location of bypass diodes according to partial shading conditions, reduces electrical mismatch losses and results in significantly higher electricity generation. The integration of parametric 3D and electrical modeling opens new possibilities for PV system design and dynamic control optimization. Though the analysis focuses on BIPV, the method is useful for the planning and operation of solar tracking systems in general.
机译:摘要遮阳系统可通过控制眩光,自然采光和日照增益来改善建筑的能源性能和居住舒适度。将PV(光伏)集成到遮阳系统中将为立面上的BIPV(构建集成光伏)提供新的机会。这种系统的关键问题是光伏模块之间的相互遮蔽,因为它可能导致电气失配损耗和过热效应。在这项工作中,我们提出了一个新的建模框架,该框架将参数3D与薄膜PV模块的高分辨率电气建模相结合,以模拟几何形状复杂的PV应用的电能产量。所开发的方法能够以高时空分辨率预测单个PV模块的阴影模式,这对于电气系统设计非常重要。该方法用于评估不同的动态BIPV遮阳系统配置的性能,以及其对外观方向和模块布置的敏感性。分析表明,在跟踪性能和模块的相互遮挡之间需要权衡。模块之间的距离是影响相互遮光量的关键参数,因此会限制使用太阳能跟踪的太阳能遮光和PV遮光系统的发电量。根据部分遮蔽条件,规划模块串配置,PV电池方向以及旁路二极管的位置,可减少电气失配损耗并显着提高发电量。参数3D与电气建模的集成为光伏系统设计和动态控制优化开辟了新的可能性。尽管分析着重于BIPV,但该方法通常可用于太阳能跟踪系统的计划和运行。

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