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◆ Journal of visualized experiments : JoVE2026-09-08

Multi-Agent RL-Based Dynamic Feeder Acceptance Orchestration Using the FeederBW Dataset and 236-Bus Low-Voltage Distribution Network.

Jingxin Xia, Xingyuan Fan, Xiaoruo Chen, Miaozhuang Cai, Junyi Chen, Xin Wen

原始摘要(英文原文)· Original abstract
The extensive integration of distributed renewable energy sources and the rapid expansion of low-voltage (LV) feeders have created operational challenges related to feeder acceptance and congestion coordination. Existing voltage-control and feeder-management approaches may have limited scalability and adaptability under intermittent renewable generation and changing network conditions. To address these limitations, this study proposes a Dynamic Orchestration Framework for Low-Voltage Feeder Acceptance based on intelligent-agent collaboration within a multi-agent reinforcement learning approach. Unlike voltage-control strategies focused primarily on voltage stabilization, the proposed framework supports dynamic feeder acceptance through the coordinated operation of agents responsible for feeder monitoring, congestion management, and voltage-sensitivity-based prioritization. The agents independently observed feeder states, evaluated congestion and voltage sensitivities, and collaborated on feeder-acceptance decisions. The framework was evaluated through simulations using the FeederBW dataset and the 236-bus low-voltage distribution-network dataset under varying renewable-integration levels and load conditions. The proposed framework achieved a Feeder Acceptance Rate of 97%, a Voltage Compliance Index of 98%, an orchestration latency of 98 ms measured as the wall-clock execution time of the orchestration algorithm on the reported hardware, and a convergence speed of 98.5%, outperforming the evaluated centralized coordination methods. The results also indicated improved adaptability, operational resilience, and decentralized decision-making efficiency under the simulated low-voltage distribution-network conditions.
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Multi-Agent RL-Based Dynamic Feeder Acceptance Orchestration Using the FeederBW Dataset and 236-Bus Low-Voltage Distribution Network. — 科研速览 Science Skim