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Optimal sliding mode control for frequency regulation in deregulated power systems with DFIG-based wind turbine and TCSC-SMES

机译:基于DFIG的风力涡轮机和TCSC-SME的解除管制电力系统频率调节的最佳滑模控制

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In this article, disrupted oppositionallearned gravitational search algorithm (DOGSA)-optimized sliding mode control (SMC) is proposed for the load frequency regulation problem in deregulated power system including flexible alternating current transmission system devices, namely thyristor-controlled series capacitor (TCSC) and superconducting magnetic energy storage (SMES) without and with doubly fed induction generator (DFIG) wind turbine. Initially, the performance of the proposed control scheme is compared with genetic algorithm-tuned integral controller reported in the literature for two-area interconnected power system with TCSC in tie-line under deregulated environment. Further, the SMES unit is also considered in one of the areas and the system performance is analyzed and found to be better with the combination of optimized SMC and TCSC-SMES for unilateral, bilateral as well as contract violation cases in comparison with system with optimal SMC and TCSC and also with the controller reported in the literature. The potential of the proposed schemes is further analyzed and studied in the presence of nonlinear constraints, namely generation rate constraint, governor deadband and time delay which are present in the real-time power system. From the simulation results, it is deduced that the optimal SMC-generated control signal eliminates the chattering problem in the controller output. Also, the combination of TCSC and SMES improves the transient performance of the system. Thus, the frequency regulation in deregulated power system has been performed using the DOGSA-tuned SMC and also investigated the coordinated action of TCSC-SMES with inclusion of DFIG wind turbine in both the control areas of the system.
机译:在本文中,提出了破坏的对立血栓性重力搜索算法(Dogsa) - 优化的滑模控制(SMC),用于解除稳压电力系统中的负载频率调节问题,包括柔性交流传输系统装置,即晶闸管控制的串联电容器(TCSC)和超导磁能存储(中小企业),无且具有双馈感应发电机(DFIG)风力涡轮机。最初,将所提出的控制方案的性能与在解调环境下的TCSC中的两个区域互连电力系统中的文献中报告的遗传算法调谐积分控制器进行了比较。此外,中小企业单元也被认为是在其中一个领域和系统性能中进行分析,并发现优化的SMC和TCSC-中小企业的组合,用于单侧,双边以及合同违规病例与具有最佳系统的系统相比SMC和TCSC以及控制器在文献中报告。在实时功率系统中存在的非线性约束,即存在于实时电力系统中存在的产生率约束,总调节器死区和时间延迟,进一步分析和研究所提出的方案的潜力。从仿真结果中,推导出最佳SMC产生的控制信号消除了控制器输出中的抖动问题。此外,TCSC和SME的组合提高了系统的瞬态性能。因此,已经使用Dogsa调谐SMC执行了解除管制电力系统的频率调节,并研究了TCSC-SME的协调动作,包括在系统的控制区域中包含DFIG风力涡轮机。

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