孙正龙, 刘勇, 陈威翰, et al. 计及预案式失配冲击的响应驱动频率稳定紧急切负荷策略[J]. Power System Protection and Control, 2026, (1).
DOI:
孙正龙, 刘勇, 陈威翰, et al. 计及预案式失配冲击的响应驱动频率稳定紧急切负荷策略[J]. Power System Protection and Control, 2026, (1). DOI: 10.19783/j.cnki.pspc.250155.
计及预案式失配冲击的响应驱动频率稳定紧急切负荷策略
摘要
在新型电力系统复杂工况下,以策略表为主体、通过“离线仿真、在线匹配”的预案式频率稳定控制方案存在较高失配风险,甚至因调控失当引发二次冲击,严重威胁电力系统的安全稳定运行。提出一种计及预案式失配冲击的响应驱动频率稳定紧急切负荷策略。该策略动作在预案式控制之后,是对预案式控制的有益补充,能够有效提升系统频率稳定性。首先建立了基于系统频率响应(system frequency response
Under complex operating conditions in modern power systems
pre-planned frequency stability control schemes based on strategy tables and implemented through an “offline simulation-online matching” paradigm are subject to a high risk of mismatch. Inappropriate control actions may even trigger secondary disturbances
posing a serious threat to the safe and stable operation of power systems. To address this issue
a response-driven emergency load shedding strategy for frequency stability considering the mismatch impacts of pre-planned schemes is proposed. This strategy is executed after the pre-planned control actions and serves as an effective supplement to them
significantly enhancing system frequency stability. First
a method for calculating the required load shedding amount for frequency stability based on system frequency response (SFR) model identification is established. A sparse frequency measurement-based SFR model identification approach is proposed
upon which an SFR model incorporating stability control is established
and the load shedding amount is iteratively solved according to frequency stability control objectives. Second
a frequency control sensitivity point mining model based on a Transformer network is constructed. By analyzing the mapping relationship between frequency time-series data of key generator bus nodes and frequency control sensitivity points
response-driven online identification of frequency control sensitivity points is achieved. Finally
the total control action is rapidly allocated according to the ranking of sensitive points to construct an emergency frequency stability control scheme. The effectiveness of the proposed method is verified on a practical large-scale AC/DC hybrid power system with tens of thousands of nodes.
TAN Wenbo(1. School of Automation and Electronic Information, Xiangtan University
National Electric Power Conversion and Control Engineering Technology Research Center (Hunan University),,)
WANG Xin(1. College of Electrical and Power Engineering, Taiyuan University of Technology
National Key Laboratory of Renewable Energy Grid-integration (China Electric Power Research Institute)
Key Laboratory of Modern Power System Simulation and Control & Renewable Energy Technology Ministry of Education (Northeast Electric Power University),,)