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Design and analysis of BFOA-optimized fuzzy PI/PID controller for AGC of multi-area traditional/restructured electrical power systems

机译:多面积传统/重组电力系统AGC的BFOA优化模糊PI / PID控制器的设计与分析

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In this paper, design and performance analysis of bacterial foraging optimization algorithm (BFOA)-optimized fuzzy PI/PID (FPI/FPID) controller for automatic generation control of multi-area interconnected traditional/restructured electrical power systems is presented. Firstly a traditional two-area non-reheat thermal system is considered, and gains of the fuzzy controller are tuned employing BFOA using integral of squared error objective function. The supremacy of this controller is demonstrated by juxtaposing the results with particle swarm optimization (PSO), firefly algorithm (FA), BFOA, hybrid BFOA-PSO-based PI and fuzzy PI controllers based upon pattern search (PS) and PSO algorithms for the same power system structure. The approach is then extended to a two-area reheat system, and improved results are found with the purported FPI/FPID controller in comparison with PSO and artificial bee colony optimized PI controller. Further, the approach is implemented on a traditional multi-source multi-area (MSMA) hydrothermal system and its superb performance is observed over genetic algorithm and hybrid FA-PS tuned PI controller. Additionally, to demonstrate the scalability of the designed controller to cope with restructured power system, the study is also protracted to a restructured MSMA hydrothermal power system. Finally, sensitivity analysis is performed to ascertain the robustness of the controller designed for the systems under study. It is observed that the suggested FPI/FPID controller optimized for nominal conditions is able to handle generation rate constraints and wide variations in nominal loading condition as well as system parameters.
机译:本文介绍了细菌觅食优化算法(BFOA) - 优化的模糊PI / PID(FPI / FPID)控制器用于多区互联的传统/重构电力系统的自动生成控制的设计和性能分析。首先考虑传统的两扇区非再热热系统,使用BFOA的模糊控制器的增益使用平方误差目标函数的积分进行调谐。通过将结果与粒子群优化(PSO),萤火虫算法(FA),BFOA,混合的BFOA-PSO的PI和模糊PI控制器基于模式搜索(PS)和PSO算法来证明该控制器的至高无上的验证。相同的电力系统结构。然后将该方法扩展到两个区域再热系统,并且与PSO和人造群菌落优化PI控制器相比,通过据称的FPI / FPID控制器发现了改进的结果。此外,该方法在传统的多源多面积(MSMA)水热系统上实现,并且在遗传算法和混合FA-PS调谐PI控制器上观察到其优化性能。另外,为了证明所设计的控制器的可扩展性来应对重构的电力系统,该研究也延伸到重组MSMA水热动力系统。最后,执行灵敏度分析以确定为正在研究的系统设计的控制器的鲁棒性。观察到,针对标称条件优化的建议的FPI / FPID控制器能够处理名称负载条件以及系统参数的产生率约束和宽变化。

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