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电动汽车驱动 SiC器件 强化学习 ★ 5.0

基于物理引导的强化学习进行停电缓解

Blackout Mitigation via Physics-Guided RL

作者 Anmol Dwivedi · Santiago Paternain · Ali Tajer
期刊 IEEE Transactions on Power Systems
出版日期 2024年10月
技术分类 电动汽车驱动
技术标签 SiC器件 强化学习
相关度评分 ★★★★★ 5.0 / 5.0
关键词 停电预防 物理引导强化学习 控制行动 停电缓解策略 输电线路移除
语言:

中文摘要

本文研究针对系统异常的顺序校正控制策略设计,以防止停电事故。提出一种物理引导的强化学习框架,综合考虑长期稳定性影响,识别有效的实时前瞻性校正决策序列。控制空间包含离散的线路投切操作与连续的发电机调节。通过引入电力网络潮流灵敏度因子指导智能体训练过程中的探索,提升策略质量。基于Grid2Op平台的实验表明,融合物理信号显著优于黑箱方法。值得注意的是,战略性地断开部分输电线路并配合多步发电机调节,常可形成有效延缓或避免停电的长周期决策。

English Abstract

This paper considers the sequential design of remedial control actions in response to system anomalies to prevent blackouts. A physics-guided reinforcement learning (RL) framework is designed to identify effective sequences of real-time remedial look-ahead decisions accounting for the long-term impact on the system's stability. The paper considers a space of control actions involving both discrete-valued transmission line-switching decisions (line reconnections and removals) and continuous-valued generator adjustments. To identify an effective blackout mitigation policy, a physics-guided approach is designed that uses power-flow sensitivity factors associated with the power transmission network to guide the RL exploration during agent training. Comprehensive empirical evaluations using the open-source Grid2Op platform demonstrate the notable advantages of incorporating physical signals into RL decisions, establishing the gains of the proposed physics-guided approach compared to its black-box counterparts. One important observation is that strategically removing transmission lines, in conjunction with multiple real-time generator adjustments, often renders effective long-term decisions that are likely to prevent or delay blackouts.
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SunView 深度解读

该物理引导强化学习框架对阳光电源PowerTitan储能系统和构网型控制技术具有重要应用价值。研究中的潮流灵敏度因子引导策略可直接应用于ST系列储能变流器的实时功率调节决策,在电网异常时通过多步序列控制优化有功/无功输出,配合线路投切信号实现主动支撑。该方法与阳光电源GFM构网型控制技术深度契合,可增强大型储能系统在弱电网场景下的黑启动和孤岛运行能力。物理约束融合的RL框架为iSolarCloud平台的预测性维护提供新思路,通过离线训练在线推理实现毫秒级故障响应,显著提升电网级储能系统的安全裕度和经济运行效益。