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Photovoltaic (PV) parameter estimation of a multicrystalline panel using developed iterative and non-iterative methods

机译:使用开发的迭代和非迭代方法估算多晶硅板的光伏(PV)参数

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Mathematical modeling of photovoltaic (PV) modules is essential for any performance optimization operation or diagnostic of the photovoltaic generator under changing environmental conditions. The limited data available are provided by commercial manufacturing datasheets. The accurately estimating of these parameters remains a challenge for researchers. There is great diversity in the models and the estimation methods i.e., iterative and non-iterative methods. In this paper we are interested in estimating the parameters of both complete (5-parameter) and simplified (4-parameter) single-diode PV models by non-iterative and iterative methods i.e., the Newton-Raphson and Halley's method. The aim is to predict the behavior of a multicrystalline Kyocera KC200GT module under real environmental conditions. A new parameter Series/Parallel Ratio (SPR) ranking photovoltaic modules is defined. Depending on the value SPR, we can neglect the series or shunt resistance of single-diode model without compromising accuracy. The proposed approach is a quick and non-iterative method that allows the estimation of PV parameters. It can be used in tracking applications of Maximum Power Point Tracking (MPPT) for on-line. The results obtained with non-iterative and iterative methods are compared with experimental data. The results are discussed in terms of precision and order statistical errors. They show the limits of the use of these approaches and their relevance. The method is verified by the simulation using MATLAB/Simulink environment.
机译:光伏(PV)模块的数学建模对于在不断变化的环境条件下进行光伏发电机的任何性能优化操作或诊断至关重要。可用的有限数据由商业制造数据表提供。准确估计这些参数仍然是研究人员面临的挑战。模型和估计方法,即迭代和非迭代方法,存在很大的差异。在本文中,我们有兴趣通过非迭代和迭代方法(即Newton-Raphson和Halley方法)估算完整(5参数)和简化(4参数)单二极管PV模型的参数。目的是预测在实际环境条件下多晶京瓷KC200GT模块的行为。定义了新参数串联/并联比率(SPR)等级的光伏模块。根据值SPR,我们可以忽略单二极管模型的串联电阻或并联电阻,而不会影响精度。所提出的方法是一种快速且非迭代的方法,允许估算PV参数。它可用于在线最大功率点跟踪(MPPT)的跟踪应用中。用非迭代和迭代方法获得的结果与实验数据进行比较。根据精度和顺序统计误差讨论了结果。它们显示了使用这些方法的局限性及其相关性。通过使用MATLAB / Simulink环境进行仿真验证了该方法。

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