基于元启发式优化的修正摄动滑模控制与观察控制PV接口并网系统的最大功率

IF 4.3 3区 工程技术 Q2 ENERGY & FUELS
Anupama Ganguly, Pabitra Kumar Biswas, Suraj Gupta, Furkan Ahmad
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引用次数: 0

摘要

随着文明的进步,对能源的需求总是越来越大。由于传统燃料的供应正在逐渐枯竭,可再生能源对于满足能源需求是必不可少的。这项研究的目标是最大限度地利用可再生资源产生的电力。在效率、清洁和无污染方面,太阳能比任何资源都表现得更好。然而,这种资源的主要缺点是其不稳定的性质。系统必须集成最大功率点(MPP)跟踪(MPPT)方法来克服间歇性,产生连续的最优功率。本文的新颖之处在于开发了一种用于在阳光和阴影下工作的光伏(PV)系统的滑模MPPT控制器。此外,本文还引入了启发式算法mountain gazelle optimization (MGO),并将其应用于滑模控制器(SMC)的参数优化,以保证太阳能光伏(SPV)的MPP提取。根据误差参数对上述控制拓扑的稳定性进行了评估。改进的扰动和观测(MPb&;O)方法与MGO相结合,称为(MGO-MPb&;O)方法,具有更好的跟踪能力,克服了传统的Pb&;O方法在阴影条件下无法跟踪的缺点。所提出的方法在引入(MGO-MPb&;O)后,寻找长周期内的每个最大值点,以找到全局最大值点,MATLAB/Simulink的结果表明,该算法在所提出的系统和环境场景的物理参数任意变化下都具有良好的性能。此外,在目标函数的最大功率提取、效率和收敛时间方面,将所提出的混合控制拓扑(MGO-MPb&;O)与其他两种混合控制拓扑(PSO-MPb&;O)和(杜鹃搜索算法[CSA]-MPb&;O)进行了比较。实验结果表明,该算法在各方面都有较好的表现,证明了SMC的鲁棒性。该算法还在不同遮光方式(SF)的部分遮光条件下进行了测试,以分析瞬态响应。这两个不同转换实例的性能图表明,所建议的MPPT算法可以确定新遮阳模式(SP)从均匀状态转移到部分遮阳状态时的全局MPP (x轴中间)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metaheuristic Optimization-Based Sliding Mode Control With Modified Perturb and Observe for Controlling MPPT of a PV Interfaced Grid Connected System

Energy is always needed more and more as civilization advances. Since the supply of traditional fuels is gradually depleting, renewable energy sources are essential for meeting energy needs. The goal of the research is to maximize the electricity that can be produced from renewable resources. Solar energy performed better than any resource regarding efficiency, cleanliness, and pollution-free nature. However, the primary drawback of the resource is its erratic nature. The system must integrate the maximum power point (MPP) tracking (MPPT) method to overcome intermittency and produce continuous optimal power. The novelty of this article is the development of a sliding mode MPPT controller for photovoltaic (PV) systems working in sunny and shaded. Also, this article introduces the meta-heuristic algorithm mountain gazelle optimization (MGO), which is incorporated to optimize the parameters of the sliding mode controller (SMC) to ensure the solar PV (SPV) MPP extraction. The stability of the mentioned control topology is assessed in terms of error parameters. The modified perturb and observe (MPb&O) method is incorporated with MGO, called (MGO-MPb&O) for performing a better tracking ability and to overcome the inability of conventional Pb&O tracking during the shaded conditions. The suggested approach looks for every maximum point across a lengthy number of cycles to find the global maximum point after introducing (MGO-MPb&O), and the results of the MATLAB/Simulink show that the algorithm performs well under the arbitrary changes of the physical parameters of the proposed system and ambient scenario. Also, the proposed hybrid (MGO-MPb&O) is compared with two other hybrid control topologies that are (PSO-MPb&O) and (cuckoo search algorithm [CSA]-MPb&O) in terms of maximum power extracted, efficiency, and convergence time of the objective function. Results depict that the proposed algorithm outperforms in every aspect and also justify the robustness of SMC. The proposed algorithm was also tested in various shading fashion (SF) in partial shading conditions for analyzing the transient response. These two performance figures for various transition instances demonstrate that the suggested MPPT algorithm can determine the global MPP for the new shading pattern (SP) when it shifts from a uniform state to a partially shaded condition at 4s (middle of the x-axis).

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来源期刊
International Journal of Energy Research
International Journal of Energy Research 工程技术-核科学技术
CiteScore
9.80
自引率
8.70%
发文量
1170
审稿时长
3.1 months
期刊介绍: The International Journal of Energy Research (IJER) is dedicated to providing a multidisciplinary, unique platform for researchers, scientists, engineers, technology developers, planners, and policy makers to present their research results and findings in a compelling manner on novel energy systems and applications. IJER covers the entire spectrum of energy from production to conversion, conservation, management, systems, technologies, etc. We encourage papers submissions aiming at better efficiency, cost improvements, more effective resource use, improved design and analysis, reduced environmental impact, and hence leading to better sustainability. IJER is concerned with the development and exploitation of both advanced traditional and new energy sources, systems, technologies and applications. Interdisciplinary subjects in the area of novel energy systems and applications are also encouraged. High-quality research papers are solicited in, but are not limited to, the following areas with innovative and novel contents: -Biofuels and alternatives -Carbon capturing and storage technologies -Clean coal technologies -Energy conversion, conservation and management -Energy storage -Energy systems -Hybrid/combined/integrated energy systems for multi-generation -Hydrogen energy and fuel cells -Hydrogen production technologies -Micro- and nano-energy systems and technologies -Nuclear energy -Renewable energies (e.g. geothermal, solar, wind, hydro, tidal, wave, biomass) -Smart energy system
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