Optimal cascade 2DOF fractional order master-slave controller design for LFC of hybrid microgrid systems with EV charging technology

IF 7.9 Q1 ENGINEERING, MULTIDISCIPLINARY Results in Engineering Pub Date : 2024-12-10 DOI:10.1016/j.rineng.2024.103647
Amira Hassan , Mohamed M. Aly , Ali Selim , Ahmed Elmelegi , A.O. Aldhaibani , Emad A. Mohamed
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Abstract

This paper addresses the increasing complexity and evolving challenges in recent power systems management, particularly under the integration of diverse renewable energy sources (RESs) and advanced control technologies. With the rising unpredictability of power generation due to RESs and the diminishing system inertia, robust load frequency control (LFC) solutions are desperately needed to maintain network stability and manage frequency variations. This work proposes improved FOCs for achieving load frequency control (LFC) and the virtual inertia control (VIC) provision of electric vehicles (EVs) batteries. The proposed method includes a twofold contribution using a new fractional-order LFC method. The proposed technique is innovative by merging the characteristics of cascaded 2-degree of freedom (2DOF) configuration, incorporating both tilt-integral-derivative-filter (FOTIDN) and tilt-derivative-filter (FOTDN) controllers. This method is designed to enhance the robustness of interconnected multi-microgrid systems against disturbances from RESs and load demand fluctuations. Moreover, this paper presents the application of the Marine Predators Algorithm (MPA) for optimizing the proposed controller's parameters across various interconnected systems. Through simulation and time-domain analysis, the efficacy of the proposed technique is assessed in a range of load scenarios and uncertainty levels, exhibiting superior performance in contrast to current LFC methodologies such as TID, FOTID, TID-FOPIDN, and 2DOF TIDN-TDN. The results indicate that the advanced 2DOF FOTIDN-FOTDN controller based on the MPA significantly improves system response and stability, marking a pivotal advancement in power system control strategies. Moreover, the employing of MPA optimizer is compared with the widely-used optimizers in the literature, including the MRFO, ABC, and PSO optimizers at the different objective functions of IAE, ISE, ITAE, and ITSE. For instance, the MPA method has a minimized ITAE after 30 iterations of 0.027 compared to 0.0276 with MRFO, 0.0282 with ABC, and 0.034 with PSO optimizer. Thence, fast and better minimization of objective functions are achieved using the proposed MPA.
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基于电动汽车充电技术的混合微电网LFC最优级联2DOF分数阶主从控制器设计
本文讨论了近期电力系统管理中日益复杂和不断发展的挑战,特别是在多种可再生能源(RESs)和先进控制技术的整合下。随着RESs引起的发电不可预测性的增加和系统惯性的减小,迫切需要鲁棒负载频率控制(LFC)解决方案来保持网络稳定性和管理频率变化。这项工作提出了改进的FOCs,用于实现电动汽车电池的负载频率控制(LFC)和虚拟惯性控制(VIC)。该方法采用了一种新的分数阶LFC方法,具有双重贡献。该方法结合了级联2自由度(2DOF)结构的特点,并结合了倾斜积分导数滤波器(FOTIDN)和倾斜导数滤波器(FOTDN)控制器。该方法旨在增强互联多微电网系统对RESs和负荷需求波动干扰的鲁棒性。此外,本文还介绍了海洋掠食者算法(MPA)在各种互联系统中的应用,以优化所提出的控制器参数。通过仿真和时域分析,在一系列负载场景和不确定性水平下评估了所提出技术的有效性,与当前的LFC方法(如TID, FOTID, TID- fopidn和2DOF TIDN-TDN)相比,显示出优越的性能。结果表明,基于MPA的先进2DOF FOTIDN-FOTDN控制器显著提高了系统的响应性和稳定性,标志着电力系统控制策略的重大进步。此外,将MPA优化器的使用与文献中广泛使用的优化器进行了比较,包括在IAE、ISE、ITAE和ITSE的不同目标函数下的MRFO、ABC和PSO优化器。例如,MPA方法在30次迭代后的ITAE最小值为0.027,而MRFO方法为0.0276,ABC方法为0.0282,PSO优化器为0.034。在此基础上,利用该方法实现了目标函数的快速优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Results in Engineering
Results in Engineering Engineering-Engineering (all)
CiteScore
5.80
自引率
34.00%
发文量
441
审稿时长
47 days
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