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A fully transient novel thermal model for in-field photovoltaic modules using developed explicit and implicit finite difference schemes

机译:使用已开发的显式和隐式有限差分方案的场内光伏模块的全瞬态新型热模型

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Three fully transient numerical thermal models have been developed for photovoltaic (PV) modules in MATLAB environment, using 2-D finite difference (FD) method. One of the thermal FD model is based on explicit time scheme, while the other two are based on implicit time schemes. Out of the two implicit FD models, one has been modeled using preexisting toolboxes of MATLAB, while the other has been modeled using a self-developed novel method. All the three FD models are based on energy balance of different control volumes, which as a whole constitute the complete solid domain of the PV panel. The models have been tested against a variety of experimental data, ranging from sunny clear days, sunny cloudy days, rainy overcast days and consecutive sunny clear days. All the three models are found to agree very well with experimental results, i.e. the errors between the modeled and experimental data ranges between 0.2–0.7 °C. The main difference is between their computational speeds. In terms of average execution time per iteration for transient analyses, the self-developed novel implicit method (referred to as implicit BB throughout the work) was about 1200 times slower than the explicit method. However, overall, the implicit BB method took less time for the entire transient analyses, as it requires less number of iterations due to its tolerance to adapt longer time steps for each iteration. In other words, the explicit method although slightly more accurate, took approximately 900 times more CPU time to simulate the same time span test compared to implicit BB method. Thus, the self-developed novel method (implicit BB) has been recommended for these types of thermal models.
机译:使用二维有限差分(FD)方法,为MATLAB环境中的光伏(PV)模块开发了三个完全瞬态数值热模型。热FD模型之一基于显式时间方案,而另两个基于隐式时间方案。在这两种隐式FD模型中,一种模型是使用MATLAB预先存在的工具箱建模的,而另一种模型是使用自行开发的新颖方法建模的。三种FD模型均基于不同控制量的能量平衡,总体上构成了光伏面板的完整实体范围。这些模型已针对各种实验数据进行了测试,范围包括晴天,晴天,阴天,阴雨天和连续晴天。发现这三个模型都与实验结果非常吻合,即,模型数据和实验数据之间的误差范围为0.2–0.7C。主要区别在于它们的计算速度之间。就瞬态分析每次迭代的平均执行时间而言,自行开发的新型隐式方法(在整个工作中称为隐式BB)比显式方法慢大约1200倍。但是,总的来说,隐式BB方法在整个瞬态分析中花费的时间更少,因为它需要较少的迭代次数,因为它具有适应每次迭代较长时间步长的容限。换句话说,与隐式BB方法相比,显式方法虽然精确度稍高,但模拟相同的时间跨度测试所花费的CPU时间大约要多900倍。因此,已针对这些类型的热模型推荐了自行开发的新方法(隐式BB)。

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