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Impact of signal transmission delays on power system damping control using heuristic dynamic programming

机译:信号传输延迟对电力系统阻尼控制使用启发式动态规划的影响

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In this paper, the impact of signal transmission delays on static VAR compensator (SVC) based power system damping control using reinforcement learning is investigated. The SVC is used to damp low-frequency oscillation between interconnected power systems under fault conditions, where measured signals from remote areas are first collected and then transmitted to the controller as the inputs. Inevitable signal transmission delays are introduced into such design that will degrade the dynamic performance of SVC and in the worst case, cause system instability. The adopted reinforcement learning algorithm, called goal representation heuristic dynamic programming (GrHDP), is employed to design the SVC controller. Impact of signal transmission delays on the adopted controller is investigated with fully transient model based time-domain simulation in Matlab/Simulink environment. The simulation results on a four-machine two-area benchmark system with SVC demonstrate the effectiveness of the adopted algorithm on damping control and the impact of signal transmission delays.
机译:本文研究了利用增强学习的静态VAR补偿器(基于SVC)电力系统阻尼控制的信号传输延迟的影响。 SVC用于在故障条件下跨越电力系统之间的低频振荡,首先收集来自远程区域的测量信号,然后将其发送到控制器作为输入。不可避免的信号传输延迟被引入这种设计,这将降低SVC和最坏情况下的动态性能,导致系统不稳定。采用了所采用的加固学习算法,称为目标表示启发式动态编程(GRHDP),用于设计SVC控制器。采用MATLAB / SIMULINK环境的全瞬态模型基于时域模拟研究了信号传输延迟对所采用控制器的影响。具有SVC的四机双面积基准系统的仿真结果证明了采用算法对阻尼控制的有效性及信号传输延迟的影响。

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