Power quality enhancement of solar–wind grid connected system employing genetic-based ANFIS controller

Vemuri Sowmya Sree, M. Ankarao
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Abstract

Abstract The demand for electricity globally has led to the search for renewable energy resources for power generation and attaining it in an eco-friendly manner. The solar photovoltaic systems and wind-based generators of power are regarded as primary resources of renewable energy and are called Distributed Generation units as they are scattered in nature. These are operated with bidirectional converters by providing auxiliary services at grid side and load side in either mode of microgrid operation. Besides, the DC power generation units’ integration gets converted into AC system by means of inverters. These types of systems not only increase voltage and current harmonics and power frequency deviations but also drive the distribution system to risky operating zone. This emphasizes the stipulation of advanced control schemes for microgrid architecture. Consequently, power electronic converters introduce harmonics in the system and affect system performance. To report these expanded issues, the authors recognized an advanced custom power device entitled Distributed Power Flow Controller (DPFC). In this study, the proposed system on solar–wind-based hybrid energy approach has been examined primarily through the strategy of DPFC mechanism. Later, the system has been examined with Genetic Algorithm (GA)-based fuzzy logic controller and GA-based adaptive neuro fuzzy inference system controller for shunt control of context built with DPFC mechanism. Furthermore, the validated results are verified using MATLAB/Simulink software.
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基于遗传ANFIS控制器的太阳能风能并网系统电能质量增强研究
全球对电力的需求促使人们寻找可再生能源发电,并以环保的方式实现这一目标。太阳能光伏发电系统和风力发电机组是可再生能源的主要资源,由于其性质分散,被称为分布式发电机组。在微电网运行的任何一种模式下,这些都是通过在电网侧和负载侧提供辅助服务的双向转换器来运行的。此外,直流发电机组的集成通过逆变器转化为交流系统。这些类型的系统不仅增加了电压和电流的谐波和工频偏差,而且还将配电系统推向危险的工作区域。这强调了对微电网结构的先进控制方案的规定。因此,电力电子变流器会在系统中引入谐波,影响系统的性能。为了报告这些扩展的问题,作者认可了一种名为分布式潮流控制器(DPFC)的先进定制电源设备。在本研究中,主要通过DPFC机制的策略对所提出的基于太阳能-风能的混合能源方法进行了研究。随后,采用基于遗传算法的模糊逻辑控制器和基于遗传算法的自适应神经模糊推理系统控制器对基于DPFC机制的上下文分流控制进行了测试。利用MATLAB/Simulink软件对验证结果进行了验证。
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