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Comparison of the Adaptive Neural-Fuzzy Interface System (ANFIS) based Solar Maximum Power Point Tracking (MPPT) with other Solar MPPT Methods

机译:基于自适应神经模糊接口系统(ANFIS)太阳能最大功率点跟踪(MPPT)与其他太阳MPPT方法的比较

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Maximum power point tracking (MPPT) is a desirable factor in the Photovoltaic (PV) systems and is used to increase the extracted power of the PV system. There are many existing conventional techniques such as Perturb & Observe (P&O), Hill Climb (HC) and Incremental Conductance (IC) for the MPPT in PV systems. However, recently with inclusion of the artificial intelligence (AI) based techniques, the MPPT has become more efficient. This work presents the MPPT in PV system by an artificial intelligence technique called as Adaptive Neural-Fuzzy interface system (ANFIS). ANFIS is considered more accurate because of fast response as this technique is integration of Artificial Neural Network (ANN) and Fuzzy Logic Controller (FLC). ANFIS uses the selectivity of FLC and Training of ANN in order to achieve the MPPT in PV systems which results in good computation and robust response. In this work, an ANFIS based MPPT system has been designed and compared in MATLAB/SIMULINK with other MPPT techniques. The comparison results verify that ANFIS based MPPT outperforms than ANN and FLC in terms of convergence time and output power under fixed as well as varying solar irradiance. Moreover, it is worth mentioning that the convergence time is ten times less in ANFIS method than FLC, IC and P&O techniques which results in less chance of error and accurate tracking of maximum power point (MPP).
机译:最大功率点跟踪(MPPT)是光伏(PV)系统中的理想因素,用于增加PV系统的提取功率。对于PV系统中的MPPT,存在许多现有的传统技术,例如扰动和观察(P&O),爬坡(HC)和增量电导(IC)。然而,最近含有基于人工智能(AI)的技术,MPPT变得更有效。这项工作通过称为自适应神经模糊界面系统(ANFIS)的人工智能技术介绍了PV系统中的MPPT。由于这种技术是人工神经网络(ANN)和模糊逻辑控制器(FLC)的集成,ANFIS被认为更准确。 ANFIS使用FLC的选择性和ANN的训练,以便在PV系统中实现MPPT,这导致良好的计算和鲁棒响应。在这项工作中,在Matlab / Simulink与其他MPPT技术中设计并比较了基于ANFI的MPPT系统。比较结果验证了基于ANFIS的MPPT优于ANN和FLC,根据固定的时间和输出功率以及不同的太阳辐照度。此外,值得一提的是,ANFIS方法的收敛时间比FLC,IC和P&O技术在内,导致误差的可能性较小,准确跟踪最大功率点(MPP)。

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