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A physics-based high-resolution BIPV model for building performance simulations

机译:基于物理的高分辨率BIPV模型,用于构建性能模拟

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Building integrated photovoltaic (BIPV) systems are considered a promising solution to increase the share of renewable energy in the built environment. To evaluate the BIPV performance at the building level, the implementation of BIPV models in building performance simulation tools is an essential step. This paper presents the development of a multi-physics BIPV model for the simulation of BIPV facades within the openIDEAS framework for building and district energy simulations. The model couples a high-resolution electrical model to physics-based thermal and airflow models. The combination of these two modelling approaches is not common in BIPV models, particularly for building performance simulations. The model predictions are compared to three months of experimental data from a naturally ventilated BIPV module installed in the facade of a test building in Leuven, Belgium. A good agreement is obtained in terms of both BIPV energy yield and temperature. The error in daily energy yield estimations is on average below 3 % and the error in the monthly energy yield is below 2%. The back-of-module temperature is predicted with a MAE lower than 2 degrees C and RMSE lower than 5 degrees C.
机译:建筑集成光伏(BIPV)系统被认为是增加建筑环境中可再生能源的份额的有希望的解决方案。为了评估建筑物级别的BIPV性能,在构建性能仿真工具中的BIPV模型的实现是重要的步骤。本文介绍了拆除建筑物和区能量模拟Openideas框架内模拟BIPV立面的多物理BIPV模型的开发。该模型将高分辨率电气模型耦合到基于物理的热和气流模型。这两个建模方法的组合在BIPV型号中并不常见,特别是用于构建性能模拟。模型预测与来自安装在比利时雷文测试建筑的外观中的自然通风BIPV模块的三个月的实验数据。在BIPV能量产量和温度方面获得了良好的一致性。日常能源估计中的误差平均低于3%,月度能源收益率的误差低于2%。使用低于2摄氏度的MAE和低于5摄氏度的MAE来预测模块的背面温度。

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