Explicit Data-Driven Small-Signal Stability Constrained Optimal Power Flow

被引:15
|
作者
Liu, Juelin [1 ]
Yang, Zhifang [1 ]
Zhao, Junbo [2 ]
Yu, Juan [1 ]
Tan, Bendong [2 ]
Li, Wenyuan [1 ]
机构
[1] Chongqing Univ, State Key Lab Power Transmiss Equipment & Syst Se, Coll Elect Engn, Chongqing 400044, Peoples R China
[2] Univ Connecticut, Dept Elect & Comp Engn, Storrs, CT 06269 USA
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
Power system stability; Thermal stability; Generators; Stability criteria; Numerical stability; Support vector machines; Voltage; Optimal power flow; small-signal stability; sensitivity analysis; support vector machine; PART I; ENHANCEMENT; GENERATION;
D O I
10.1109/TPWRS.2021.3135657
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper proposes a data-driven small-signal stability constrained optimal power flow (SSSC-OPF) method with high computational efficiency. Instead of repeating the computational expense small-signal stability analysis via differential and algebraic equations during the iterative OPF process, a computationally cheap surrogate constraint for small-signal stability is developed. To reduce the learning difficulty for small-signal stability boundaries, an efficient sample generation strategy is proposed with sampling space compression. This allows us to use the support vector machine (SVM) with a kernel function to derive the explicit data-driven surrogate constraint for small-signal stability. Penalty factor optimization is proposed to compensate for the error caused by SVM. The learned small-signal stability constraint is embedded into the OPF model for generator control. An examination strategy is also developed to avoid the small-signal instability of re-dispatch caused by the error of the data-driven surrogate model. Comparison results with other model-based and data-driven methods on the IEEE 39-bus and 118-bus systems demonstrate the high computational efficiency and economic benefits of the proposed method.
引用
收藏
页码:3726 / 3737
页数:12
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