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固体氧化物燃料电池-液流电池和集成电力流控制器对采用经非洲秃鹫算法优化的组合比例积分和分数阶比例微分控制器的可再生多区域电力系统的影响。

Impact of solid oxide FC-RFB and IPFC on a renewable multi-area power system using combined PI and FOPD controllers optimized by the African Vulture algorithm.

作者信息

Saha Arindita, Bhaskar Mahajan Sagar, Elmorshedy Mahmoud F, Almakhles Dhafer J, Padmanaban Sanjeevikumar

机构信息

Department of Electrical Engineering, Regent Education & Research Foundation Group of Institutions, Kolkata, 700121, West Bengal, India.

Renewable Energy Lab, College of Engineering, Prince Sultan University, Riyadh, Saudi Arabia.

出版信息

Sci Rep. 2025 May 23;15(1):17978. doi: 10.1038/s41598-025-97761-2.

Abstract

The expanding complexity of modern energy systems and the increasing integration of renewable sources make stable load frequency control (LFC) in interconnected power networks a continuing issue. Traditional controllers, such as proportional-integral (PI), proportional-integral-derivative (PID), and other subordinate control methods, frequently fail to control frequency adequately, especially in multi-source generating systems. Furthermore, standard optimization techniques may exhibit sluggish convergence and inefficient tuning, limiting their usefulness in real-time applications. To address these problems, this study suggest an enhanced LFC framework for a three-area power system that includes thermal-biodiesel (Area-1), thermal (Area-2), and hydro-thermal (Area-3) components. The African Vulture Optimization Algorithm (AVOA) is used to improve a novel PI(FOPD) controller that combines integer-order PI with fractional-order Proportional Derivative (FOPD). According to a comparative investigation, the AVOA-augmented PI(FOPD) controller outperforms conventional I, PI, and PID controllers in terms of transient responsiveness, stability, and convergence. Additionally, AVOA outperforms optimization approaches such as Cuckoo Search, Particle Swarm Optimization, and the Firefly Algorithm. The integration of a Dish-Stirling solar thermal system, a Flexible AC Transmission System (FACTS) device, and an energy storage component improves system robustness. The results show that the AVOA-optimized PI(FOPD) controller greatly enhances LFC performance, making it a promising alternative for current power networks.

摘要

现代能源系统日益复杂,可再生能源的整合程度不断提高,这使得互联电网中的稳定负荷频率控制(LFC)一直是个问题。传统控制器,如比例积分(PI)、比例积分微分(PID)以及其他从属控制方法,常常无法充分控制频率,尤其是在多源发电系统中。此外,标准优化技术可能会出现收敛缓慢和调谐效率低下的情况,限制了它们在实时应用中的实用性。为了解决这些问题,本研究提出了一种针对三区域电力系统的增强型LFC框架,该系统包括热-生物柴油(区域1)、热力(区域2)和水热(区域3)组件。非洲秃鹫优化算法(AVOA)用于改进一种新型的PI(FOPD)控制器,该控制器将整数阶PI与分数阶比例微分(FOPD)相结合。根据对比研究,AVOA增强型PI(FOPD)控制器在瞬态响应、稳定性和收敛性方面优于传统的I、PI和PID控制器。此外,AVOA优于布谷鸟搜索、粒子群优化和萤火虫算法等优化方法。碟式斯特林太阳能热系统、灵活交流输电系统(FACTS)装置和储能组件的集成提高了系统的鲁棒性。结果表明,AVOA优化的PI(FOPD)控制器大大提高了LFC性能,使其成为当前电网中一个有前景的替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a016/12102167/65b3f1a2e1b8/41598_2025_97761_Fig1a_HTML.jpg

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