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Online Supplementary ADP Learning Controller Design and Application to Power System Frequency Control With Large-Scale Wind Energy Integration

机译:大规模风能集成在线辅助ADP学习控制器在电力系统频率控制中的应用

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The emergence of smart grids has posed great challenges to traditional power system control given the multitude of new risk factors. This paper proposes an online supplementary learning controller (OSLC) design method to compensate the traditional power system controllers for coping with the dynamic power grid. The proposed OSLC is a supplementary controller based on approximate dynamic programming, which works alongside an existing power system controller. By introducing an action-dependent cost function as the optimization objective, the proposed OSLC is a nonidentifier-based method to provide an online optimal control adaptively as measurement data become available. The online learning of the OSLC enjoys the policy-search efficiency during policy iteration and the data efficiency of the least squares method. For the proposed OSLC, the stability of the controlled system during learning, the monotonic nature of the performance measure of the iterative supplementary controller, and the convergence of the iterative supplementary controller are proved. Furthermore, the efficacy of the proposed OSLC is demonstrated in a challenging power system frequency control problem in the presence of high penetration of wind generation.
机译:鉴于众多新的风险因素,智能电网的出现给传统电力系统控制带来了巨大挑战。本文提出了一种在线补充学习控制器(OSLC)的设计方法,以补偿传统的电力系统控制器来应对动态电网。提出的OSLC是基于近似动态编程的辅助控制器,可与现有的电力系统控制器一起使用。通过引入与动作有关的成本函数作为优化目标,提出的OSLC是一种基于非标识符的方法,可在测量数据可用时自适应地提供在线最佳控制。 OSLC的在线学习在策略迭代过程中享有策略搜索效率,并且具有最小二乘法的数据效率。对于所提出的OSLC,证明了受控系统在学习过程中的稳定性,迭代辅助控制器性能测度的单调性以及迭代辅助控制器的收敛性。此外,在存在高风速发电的情况下,在具有挑战性的电力系统频率控制问题中证明了所提出的OSLC的功效。

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