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Data-Model Hybrid Driven Dynamic Optimal Voltage Control for AC/DC Hybrid Distribution Network
  • +3
  • Xiaolong Xiao,
  • Xiaoxing Lu,
  • Chenyu Zhang,
  • Ning Guo,
  • Fan Wu,
  • Jiahao Guo
Xiaolong Xiao
Southeast University
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Xiaoxing Lu
State Grid Jiangsu Electric Power Co Ltd Research Institute

Corresponding Author:xiaoxinglu@outlook.com

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Chenyu Zhang
State Grid Jiangsu Electric Power Co Ltd Research Institute
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Ning Guo
State Grid Jiangsu Electric Power Co Ltd Research Institute
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Fan Wu
State Grid Jiangsu Electric Power Co Ltd Research Institute
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Jiahao Guo
State Grid Jiangsu Electric Power Co Ltd Research Institute
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Abstract

With the development of power electronics technology, AC/DC hybrid distribution networks have gradually become an important form of distribution networks in the future and have attracted widespread attention. The high proportion access of distributed new energy represented by distributed photovoltaic (PV) brings great challenges to the safe and stable operation of AC/DC hybrid distribution networks, meanwhile the randomness and fluctuation of PVs’ power output put forward higher requirements for the real-time and dynamic response of the AC/DC hybrid distribution network optimal voltage control. Firstly, the Q-V voltage control model for PV in AC network and P-V voltage control model for PV in DC network are established. Then, the dynamic optimal voltage control model of AC/DC hybrid distribution network is constructed. After that, the data-driven and model-driven control strategies are combined, the voltage control controller is trained through the Multi-agent Gradient Descent Strategy (MADDPG) to solve the optimal adjustment action value of the PV droop parameter in the real-time state, so as to realize the online dynamic voltage control of AC/DC hybrid distribution network.
11 Jan 2025Submitted to IET Generation, Transmission & Distribution
13 Jan 2025Submission Checks Completed
13 Jan 2025Assigned to Editor
13 Jan 2025Review(s) Completed, Editorial Evaluation Pending
24 Jan 2025Reviewer(s) Assigned
20 Mar 2025Editorial Decision: Revise Major
09 Apr 20251st Revision Received
12 Apr 2025Submission Checks Completed
12 Apr 2025Assigned to Editor
12 Apr 2025Review(s) Completed, Editorial Evaluation Pending
12 Apr 2025Reviewer(s) Assigned
16 May 2025Editorial Decision: Accept