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An efficient MPPT controller using differential evolution and neural network

机译:一种高效的MPPT控制器,使用差分演进和神经网络

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Performance of the photovoltaic (PV) system is highly dependent on the ambient conditions i.e irradiation and temperature. It has non-linear P-V characteristics that will vary with irradiation and temperature, which will affect the output power of PV array. This nonlinear behavior becomes more complex in partial shading and rapidly changing irradiation conditions. Conventional Maximum Power Point Tracking (MPPT) methods fail to track and extract the maximum power from the PV array in such conditions. Another problem with the conventional methods is the steady state oscillations. All these factors result in power losses. This paper presents a new method for the tracking of Maximum Power Point (MPP) based on Differential Evolution (DE) and Artificial Neural Network (ANN). DE has the capacity to optimize the non-linear problem without the use of gradient and ANN has the ability to model complex relationship between the inputs and outputs. Combining both techniques will result in a better controller. The proposed controller will adjust the Duty ratio ‘D’ of the Boost converter to track maximum power from PV array and gives the constant output voltage. The proposed MPPT method has been developed and simulated using the MATLAB software package. Analysis and comparison show that proposed controller can track the MPP in less time compared to conventional MPP methods and without any fluctuation in steady state. The robustness of the proposed controller has been demonstrated in the partial shading and rapidly changing irradiation conditions.
机译:光伏(PV)系统的性能高度依赖于辐照和温度的环境条件。它具有不含辐照和温度的非线性P-V特性,这将影响PV阵列的输出功率。这种非线性行为在部分阴影和快速改变的照射条件下变得更复杂。传统的最大功率点跟踪(MPPT)方法无法跟踪和提取在这种条件下的PV阵列的最大功率。传统方法的另一个问题是稳态振荡。所有这些因素导致功率损耗。本文介绍了一种基于差分演进(DE)和人工神经网络(ANN)的最大功率点(MPP)的新方法。除了使用梯度的情况下,DE具有优化非线性问题的能力,ANN具有模拟输入和输出之间复杂关系的能力。组合两种技术将导致更好的控制器。建议的控制器将调整占空比‘ d’升压转换器以跟踪PV阵列的最大功率并提供恒定输出电压。使用MATLAB软件包开发和模拟所提出的MPPT方法。分析和比较表明,与传统的MPP方法和稳定状态下没有任何波动,所提出的控制器可以在更少的时间内跟踪MPP。所提出的控制器的稳健性已经在部分遮阳和快速变化的照射条件下进行了证明。

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