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An accurate method for the PV Model identification based on a genetic algorithm and the interior-point method

机译:基于遗传算法和内点法的光伏模型识别的准确方法

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摘要

Due to the PV module simulation requirements as well as recent applications of model-based controllers, the accurate photovoltaic (PV) model identification method is becoming essential to reduce the PV power losses effectively. The classical PV model identification methods use the manufacturers provided maximum power point (MPP) at the standard test condition (STC). However, the nominal operating cell temperature (NOCT) is the more practical condition and it is shown that the extracted model is not well suited to it. The proposed method in this paper estimates an accurate equivalent electrical circuit for the PV modules using both the STC and NOCT information provided by manufacturers. A multi-objective global optimization problem is formulated using only the main equation of the PV module at these two conditions that restrains the errors due to employing the experimental temperature coefficients. A novel combination of a genetic algorithm (GA) and the interior-point method (IPM) allows the proposed method to be fast and accurate regardless the PV technology. It is shown that the overall error, which is defined by the sum of the MPP errors of both the STC and the NOCT conditions, is improved by a factor between 5.1% and 31% depending on the PV technology.
机译:由于光伏模块的仿真要求以及基于模型的控制器的最新应用,精确的光伏(PV)模型识别方法对于有效降低PV功率损耗变得至关重要。经典的PV模型识别方法使用制造商提供的标准测试条件(STC)下的最大功率点(MPP)。但是,标称工作电池温度(NOCT)是更实际的条件,并且表明提取的模型不太适合它。本文中提出的方法使用制造商提供的STC和NOCT信息估算了光伏模块的精确等效电路。在这两个条件下,仅使用PV模块的主要方程式即可解决多目标全局优化问题,该问题可抑制由于采用实验温度系数而导致的误差。遗传算法(GA)和内点方法(IPM)的新颖结合使所提出的方法既快速又准确,而与PV技术无关。结果表明,取决于PV技术,由STC和NOCT条件的MPP误差之和定义的总误差提高了5.1%到31%之间。

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