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首页> 外文期刊>Iranian Journal of Science and Technology, Transactions of Electrical Engineering >A Moth-Flame Optimization for UPFC-RFB-Based Load Frequency Stabilization of a Realistic Power System with Various Nonlinearities
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A Moth-Flame Optimization for UPFC-RFB-Based Load Frequency Stabilization of a Realistic Power System with Various Nonlinearities

机译:基于UPFC-RFB的具有多种非线性的现实电力系统的基于负载频率稳定的飞蛾优化

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In this article, a realistic multi-area multi-source test power system model is investigated by imposing the effects of nonlinearities for the betterment of automatic generation control (AGC) realization. The confined area of presented work is to cogitate the effectiveness of combined unified power flow controller (UPFC) and redox flow battery (RFB) in view of damping of oscillations subjected to increased load perturbation. The investigated power system model is a six-area system having reheat thermal, hydro and gas-generating units lumped together in each control area. The present prospect analyzes a very realistic approach of AGC by adding physical constraints like time delay, governor dead band, boiler dynamics, reheat turbine and generation rate constraint to the aforesaid system. A nature-inspired novel moth-flame optimization (MFO) algorithm is employed as an optimization tool in the design of proportional-integral-derivative gains and the tunable parameters of UPFC and RFBs. The substantial point of discussion is the guaranteed convergence mobility as the moths in this algorithm update their positions with respect to the flames which represent the most promising solutions. The MFO-based results are compared with genetic algorithm-based method to show the superiority of MFO over other similar metaheuristic optimization techniques. Robustness of the designed controller is also studied over +/- 25% uncertainties in parametric values and under loaded condition. The simulation works showed that the inclusion of UPFC and RFB is very much effective in load frequency stabilization and is quite robust for a realistic power system.
机译:在本文中,通过施加非线性效应来改善自动发电控制(AGC)的实现,研究了一个现实的多区域多源测试电源系统模型。鉴于受负载扰动增加引起的振动阻尼的影响,本文工作的局限性是要弄清楚组合式统一潮流控制器(UPFC)和氧化还原液流电池(RFB)的有效性。所研究的电力系统模型是一个六区域系统,在每个控制区域中将再热的热力,水力和气体发电单元集中在一起。目前的前景通过向上述系统添加物理约束(例如时间延迟,调速器死区,锅炉动力学,再热汽轮机和发电率约束)来分析一种非常现实的AGC方法。在设计比例积分微分增益和UPFC和RFB的可调参数时,采用了一种自然界启发的新颖的飞蛾优化(MFO)算法作为优化工具。讨论的实质点是保证的收敛移动性,因为此算法中的飞蛾相对于代表最有希望解决方案的火焰更新其位置。将基于MFO的结果与基于遗传算法的方法进行比较,以显示MFO优于其他类似的元启发式优化技术。还对参数值和负载条件下+/- 25%的不确定性进行了设计控制器的鲁棒性研究。仿真工作表明,包含UPFC和RFB在负载频率稳定方面非常有效,并且对于实际的电源系统而言非常健壮。

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