返回
Frequency Stability-Constrained Unit Commitment: Tight Approximation Using Bernstein Polynomials
DOI:10.1109/TPWRS.2023.3335348.png)
摘要
En 中文
As we replace conventional synchronous generators with renewable energy, the frequency security of power systems is at higher risk. This calls for a more careful consideration of unit commitment (UC) and primary frequency response (PFR) reserves. This paper studies frequency stability-constrained UC under significant wind power uncertainty. We coordinate the thermal units and wind farms to provide frequency support, wherein we optimize the variable inverter droop factors of the wind farms for cost minimization. In addition, we adopt distributionally robust chance constraints (DRCCs) to handle the wind power uncertainty. To depict the frequency dynamics, we incorporate a differential-algebraic equation (DAE) with dead band into the UC model. Notably, we apply Bernstein polynomials to derive tight inner approximation of the DAE and drive a mixed-integer linear representation, which can be solved by off-the-shelf solvers. Case studies demonstrate the tightness and effectiveness of the proposed method in guaranteeing frequency security.
Keyword:
Power system dynamics
Time-frequency analysis
Security
Renewable energy sources
Wind farms
Mathematical models
Frequency control
Unit commitment
frequency security
differential-algebraic equation
Bernstein polynomial
variable droop factors
distributionally robust chance constraint
期刊
IF:
7.2
论文数:
1.1W
被引数:
5.0W
机构
引用论文
Global Flexible Power Point Tracking in Photovoltaic Systems Under Partial Shading Conditions局部阴影条件下光伏系统的全局柔性功率点跟踪
Conservative Sparse Neural Network Embedded Frequency-Constrained Unit Commitment With Distributed Energy Resources具有分布式能源的保守稀疏神经网络嵌入式频率约束机组组合

