Deep Reinforcement Scheduling of Energy Storage Systems for Real-Time Voltage Regulation in Unbalanced LV Networks With High PV Penetration

被引:43
作者
Wang, Shengyi [1 ]
Du, Liang [1 ]
Fan, Xiaoyuan [2 ]
Huang, Qiuhua [2 ]
机构
[1] Temple Univ, Dept Elect & Comp Engn, Philadelphia, PA 19122 USA
[2] Pacific Northwest Natl Lab, Elect Infrastruct, Richland, WA 99354 USA
关键词
Voltage control; Real-time systems; Distribution networks; Deep learning; Reinforcement learning; Voltage regulation; unbalanced distribution network; low voltage distribution systems; deep reinforcement learning; energy storage systems; GENERATION; INVERTERS;
D O I
10.1109/TSTE.2021.3092961
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The ever-growing higher penetration of distributed energy resources (DERs) in low-voltage (LV) distribution systems brings both opportunities and challenges to voltage support and regulation. This paper proposes a deep reinforcement learning (DRL)-based scheduling scheme of energy storage systems (ESSs) to mitigate system voltage deviations in unbalanced LV distribution networks. The ESS-based voltage regulation problem is formulated as a multi-stage quadratic stochastic program, with the objective of minimizing the expected total daily voltage regulation cost while satisfying operational constraints. While existing voltage regulation methods are mostly focused on one-time-step control, this paper explores a day-horizon system-wide voltage regulation problem. In other words, the size of action and state spaces are extremely high-dimensional and need to be delicately handled. Furthermore, in order to overcome the difficulty of modeling uncertainties and develop a real-time solution, a learn-to-schedule feedback control framework is proposed by adapting the problem to a model-free DRL setting. The proposed algorithm is tested on a customized 6-bus system and a modified IEEE 34-bus system. Simulation results validate the effectiveness and near-optimality of voltage regulation by ESS in comparison with a deterministic quadratic program solution.
引用
收藏
页码:2342 / 2352
页数:11
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