Modeling Frequency Dynamics in Unit Commitment With a High Share of Renewable Energy

IEEE Transactions on Power Systems - Tập 35 Số 6 - Trang 4383-4395 - 2020
Ziyang Zhang1,2, Ershun Du1,2, Fei Teng3, Ning Zhang1,2, Chongqing Kang1,2
1Department of Electrical Engineering, State Key Lab of Power Systems, Tsinghua University, Beijing, China
2International Joint Laboratory on Low Carbon Clean Energy Innovation, Beijing, China
3Department of Electrical and Electronic Engineering, Imperial College London, London, U.K.

Tóm tắt

The power system inertia is gradually decreasing with the growing share of variable renewable energy (VRE). This may jeopardize the frequency dynamics and challenges the secure operation of power systems. In this paper, the concept of frequency security margin is proposed to quantify the system frequency regulation ability under contingency. It is defined as the maximum power imbalance that the system can tolerate while keeping frequency within the tolerable frequency range. A frequency constrained unit commitment (FCUC) model considering frequency security margin is proposed. Firstly, the analytical formulation of system frequency nadir is derived while considering both the frequency regulation characteristics of the thermal generators and the frequency support from VRE plants. Then, the frequency security margin is analytically formulated and piecewise linearized. A novel FCUC model is proposed by incorporating linear frequency security constraints into the traditional unit commitment model. Case studies on a modified IEEE RTS-79 system and HRP-38 system are provided to verify the effectiveness of the proposed FCUC model. The impacts of VRE penetration on system frequency security are analyzed using frequency security margin.

Từ khóa

#Frequency dynamics #power system inertia #unit commitment #high share of renewable energy #virtual synchronous machine

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