A Novel Bat Algorithm-Optimized Quantum Neural Network-Based MPPT Techniques for Enhanced Photovoltaic in Grid Connected System Performance

光伏系统 最大功率点跟踪 布谷鸟搜索 计算机科学 总谐波失真 谐波 功率(物理) 失真(音乐) 控制理论(社会学) 网格 趋同(经济学) 谐波 电子工程 最大功率原理 Bat算法 人工神经网络 电压 遗传算法 可靠性(半导体) 电力系统 发电 光伏并网发电系统 电效率 工程类
作者
G. Manavaalan,Eswara Rao Thamatapu,P. Vinodh Kumar,S. Elango
出处
期刊:Journal of Circuits, Systems, and Computers [World Scientific]
卷期号:35 (13)
标识
DOI:10.1142/s0218126626500179
摘要

Renewable energy source (RES) production has increased nowadays due to the depletion of fossil fuel reserves and the rise in greenhouse emissions. Incorporating RES into the grid may produce additional problems in power quality, system stability, harmonics and reliability owing to their sporadic nature. The RES is capable of operating in both ON and OFF electrical grid modes since ON-grid power systems are linked to the utility grid, while off-grid systems are not. However, because of the environmental variability, it can be challenging to obtain optimal voltage and extract maximum RES power. It is crucial to derive an optimal solution to obtain the maximum power from RES. Therefore, this paper proposes a bat algorithm for tracking (BAT) with a quantum neural network (QNN) for extracting maximum power from a PV panel. The Bat Optimization Algorithm (BOA) is used to select optimal parameters for QNN. The suggested method is designed via MATLAB/Simulink, and various parameters are considered, in which total harmonic distortion (THD) and efficiency analysis of the proposed method with an ant lion optimized cuckoo search (ALO-CS) algorithm are compared. Simulation and hardware implementation results demonstrate superior performance compared to the ALO-CS method. The proposed approach achieves a peak efficiency of 93.6% in simulation and 93.4% in hardware, with convergence times of 0.1[Formula: see text]s and 0.16[Formula: see text]s, respectively. Harmonic distortion is significantly reduced, with THD values of 0.43% in simulation and 0.7% in hardware using a current control technique. These results confirm that the QNN-BOA method provides faster tracking, higher efficiency and better power quality than conventional maximum power point tracking (MPPT) techniques, making it highly suitable for hybrid RES applications.
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