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首页> 外文期刊>European Transactions on Electrical Power >Application of reinforcement learning for generating optimal control signal to the IPFC for damping of low‐ frequency oscillations
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Application of reinforcement learning for generating optimal control signal to the IPFC for damping of low‐ frequency oscillations

机译:强化学习在生成最佳控制信号到IPFC的应用中,以衰减低频振荡

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摘要

In this paper, an adaptive design of interline power flow controller (IPFC) using a reinforcement learning (RL) approach is utilized for damping of the low-frequency oscillations (LFOs) in power system. This Q-learning-based adaptive damping controller is applied to a single-machine and multi-machine power system. The main advantages of the Q-learning based controller are its robustness and adaptive behavior to change in the operation condition; also, it does not need any knowledge about the control system, making the control strategy suitable for the realistic power systems with high nonlinearities. In order to demonstrate the performance of the proposed RL-based damping controller in both single-machine and multi-machine power system, nonlinear simulations are carried out using MATLAB/Simulink. Three cases of simulations are performed; the system equipped with (1) only optimal classical power system stabilizer (PSS), (2) coordinated designed of PSS and IPFC, and (3) RL-based optimized IPFC. Krill herd optimization algorithm is used for coordination design of PSS and IPFC in both single machine and multi-machine power systems. Suitable time-domain performance indices in multiple operating conditions and different fault types are calculated for all 3 cases of simulations and are compared with one another. Simulation results demonstrate the effectiveness of the proposed control strategy in damping of the LFOs in the power systems.
机译:在本文中,采用强化学习(RL)方法的线间潮流控制器(IPFC)的自适应设计被用于阻尼电力系统中的低频振荡(LFO)。这种基于Q学习的自适应阻尼控制器适用于单机和多机电源系统。基于Q学习的控制器的主要优点是其鲁棒性和适应工况变化的适应性;而且,它不需要任何有关控制系统的知识,从而使控制策略适用于具有高非线性度的实际电力系统。为了证明所提出的基于RL的阻尼控制器在单机和多机电源系统中的性能,使用MATLAB / Simulink进行了非线性仿真。进行了三种模拟情况。该系统配备(1)仅最佳经典电力系统稳定器(PSS),(2)PSS和IPFC的协调设计,以及(3)基于RL的优化IPFC。磷虾群优化算法用于单机和多机动力系统中PSS和IPFC的协调设计。针对所有3种仿真情况,计算了在多种操作条件下以及不同故障类型下的合适时域性能指标,并将它们进行了比较。仿真结果证明了所提出的控制策略在电力系统中的LFO阻尼方面的有效性。

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