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Robust decentralised frequency stabilisers design of static synchronous series compensators by taking system uncertainties into consideration

机译:考虑系统不确定性的静态同步串联补偿器鲁棒分散型频率稳定器设计

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This paper presents a new robust decentralised frequency stabilisers design of Static Synchronous Series Compensators (SSSCs) by taking system uncertainties into consideration. As an interconnected power system is subjected to load disturbances with changing frequency in the vicinity of the inter-area oscillation mode, system frequency may be severely disturbed and oscillate. To compensate for such load disturbances and stabilise frequency oscillations, the dynamic power flow control by an SSSC installed in series with a tie line between interconnected systems can be applied. The proposed decentralised design translates SSSCs installed in interconnected power systems into a Multi-Input Multi-Output (MIMO) system. The overlapping decompositions is used to extract the decoupled Single-Input Single-Output (SISO) subsystem embedded with the inter-area mode of interest from an MIMO system. As a result, each frequency stabiliser of SSSC can be independently designed to enhance the damping of the inter-area mode in the decoupled subsystem. In addition, by incorporating the multiplicative uncertainty model in the decoupled subsystem, the robust stability margin of system against uncertainties such as various load changes, system parameters variations etc., can be guaranteed in terms of the multiplicative stability margin (MSM). In this study, the configuration of frequency stabiliser is practically based on a second-order lead/lag compensator. Without trial and error, the control parameters of the frequency stabiliser are automatically optimised by a micro genetic algorithm, so that the desired damping ratio of the inter-area mode and the best MSM are acquired. Simulation study shows the high robustness of the decentralised frequency stabilisers against various load disturbances and system parameter variations in the three-area loop interconnected power system.
机译:本文考虑了系统的不确定性,提出了一种静态同步串联补偿器(SSSC)的新型鲁棒分散式频率稳定器设计。当互连的电力系统在区域间振荡模式附近受到频率变化的负载干扰时,系统频率可能会受到严重干扰并发生振荡。为了补偿这种负载干扰并稳定频率振荡,可以应用由与互连系统之间的联络线串联安装的SSSC进行的动态潮流控制。拟议的分散式设计将安装在互连电源系统中的SSSC转换为多输入多输出(MIMO)系统。重叠分解用于从MIMO系统中提取嵌入了感兴趣的区域间模式的解耦后的单输入单输出(SISO)子系统。结果,SSSC的每个频率稳定器都可以独立设计,以增强解耦子系统中区域间模式的阻尼。另外,通过在解耦子系统中合并乘法不确定性模型,就可以通过乘法稳定性裕度(MSM)保证系统针对各种不确定性(例如各种负载变化,系统参数变化等)的鲁棒稳定性裕度。在本研究中,频率稳定器的配置实际上基于二阶超前/滞后补偿器。无需反复试验,就可以通过微遗传算法自动优化频率稳定器的控制参数,从而获得期望的区域间模式阻尼比和最佳MSM。仿真研究表明,在三区域环网互连电力系统中,分散式频率稳定器对于各种负载干扰和系统参数变化具有很高的鲁棒性。

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