Izci Davut, Ekinci Serdar, Çelik Emre, Bajaj Mohit, Blazek Vojtech, Prokop Lukas
Department of Computer Engineering, Batman University, Batman, 72100, Turkey.
Applied Science Research Center, Applied Science Private University, Amman, 11931, Jordan.
Sci Rep. 2024 Oct 29;14(1):26011. doi: 10.1038/s41598-024-77247-3.
Ensuring the stability and reliability of modern power systems is increasingly challenging due to the growing integration of renewable energy sources and the dynamic nature of load demands. Traditional proportional-integral-derivative (PID) controllers, while widely used, often fall short in effectively managing these complexities. This paper introduces a novel approach to load frequency control (LFC) by proposing a filtered PID (PID-F) controller optimized through a hybrid simulated annealing based quadratic interpolation optimizer (hSA-QIO). The hSA-QIO uniquely combines the local search capabilities of simulated annealing (SA) with the global optimization strengths of the quadratic interpolation optimizer (QIO), providing a robust and efficient solution for LFC challenges. The key contributions of this study include the development and application of the hSA-QIO, which significantly enhances the performance of the PID-F controller. The proposed hSA-QIO was evaluated on unimodal, multimodal, and low-dimensional benchmark functions, to demonstrate its robustness and effectiveness across diverse optimization scenarios. The results showed significant improvements in solution quality compared to the original QIO, with lower objective function values and faster convergence. Applied to a two-area interconnected power system with hybrid photovoltaic-thermal power generation, the hSA-QIO-tuned controller achieved a substantial reduction in the integral of time-weighted absolute error by 23.4%, from 1.1396 to 0.87412. Additionally, the controller reduced the settling time for frequency deviations in Area 1 by 9.9%, from 1.0574 s to 0.96191 s, and decreased the overshoot by 8.8%. In Area 2, the settling time was improved to 0.89209 s, with a reduction in overshoot by 4.8%. The controller also demonstrated superior tie-line power regulation, achieving immediate response with minimal overshoot.
由于可再生能源的日益融合以及负载需求的动态特性,确保现代电力系统的稳定性和可靠性面临着越来越大的挑战。传统的比例积分微分(PID)控制器虽然被广泛使用,但在有效管理这些复杂性方面往往存在不足。本文提出了一种新颖的负荷频率控制(LFC)方法,即通过基于混合模拟退火的二次插值优化器(hSA-QIO)优化的滤波PID(PID-F)控制器。hSA-QIO独特地将模拟退火(SA)的局部搜索能力与二次插值优化器(QIO)的全局优化优势相结合,为LFC挑战提供了一种强大而有效的解决方案。本研究的关键贡献包括hSA-QIO的开发和应用,它显著提高了PID-F控制器的性能。所提出的hSA-QIO在单峰、多峰和低维基准函数上进行了评估,以证明其在不同优化场景下的鲁棒性和有效性。结果表明与原始QIO相比,解的质量有显著提高,目标函数值更低且收敛更快。应用于具有混合光伏-热力发电的两区域互联电力系统时,hSA-QIO调谐控制器将时间加权绝对误差积分大幅降低了23.4%,从1.1396降至0.87412。此外,该控制器将区域1频率偏差的调节时间减少了9.9%,从1.0574秒降至0.96191秒,并将超调量降低了8.8%。在区域2,调节时间改善到0.89209秒,超调量降低了4.8%。该控制器还展示了卓越的联络线功率调节能力,实现了即时响应且超调量最小。