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首页> 外文期刊>IEEJ Transactions on Electrical and Electronic Engineering >Robust Parameter Estimation for Photovoltaic Array Model under Partial Shading Condition
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Robust Parameter Estimation for Photovoltaic Array Model under Partial Shading Condition

机译:光伏阵列模型在部分阴影条件下的强大参数估计

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摘要

Modeling the photovoltaic (PV) array can analyze the influence of temperature, irradiance, and other factors on the I-V characteristic curve. The model can be used to replace the actual PV array to implement various PV experiments for reducing experimental costs and saving experimental time. Parameter estimation can make the parameters of the PV array model more accurate and make the outputs of model consistent with the outputs of the actual device. This work focuses on PV array under partial shading condition problems. The main contribution is to use different types of robust estimators for parameter estimation and present a comparative analysis of the traditional weighted least squares (WLS) estimator and eight robust estimators, including the Quasi-weighted least squares (QWLS) estimator, Correntropy, etc. The performance of these estimators is analyzed in the simulation, where both random errors and gross errors are considered. The results showed that the robust estimators have better performance than the traditional WLS estimator especially when the measurement data contain gross errors. The robust estimators can be used in the parameter estimation for PV array model to estimate the accurate parameters. (c) 2022 Institute of Electrical Engineers of Japan. Published by Wiley Periodicals LLC.
机译:建模光伏(PV)阵列可以分析温度,辐照度和其他因素对I-V特征曲线的影响。该模型可用于替换实际的PV阵列,以实施各种PV实验,以减少实验成本并节省实验时间。参数估计可以使PV阵列模型的参数更加准确,并使模型的输出与实际设备的输出一致。这项工作着重于部分阴影条件问题的PV阵列。主要的贡献是使用不同类型的可靠估计器进行参数估计,并对传统加权最小二乘(WLS)估计器和八个可靠的估计器进行比较分析,包括准加权的最小二乘(QWLS)估计量,Correntropy,Correntropy等。在模拟中分析了这些估计器的性能,其中考虑了随机错误和总误差。结果表明,稳健的估计器的性能比传统的WLS估计器更好,尤其是当测量数据包含总误差时。可靠的估计器可以在PV阵列模型的参数估计中使用,以估计准确的参数。 (c)2022日本电气工程师研究所。由Wiley Wendericals LLC出版。

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