AC/DC hybrid distribution network reconfiguration with microgrid formation using multi-agent soft actor-critic

2022 ◽  
Vol 307 ◽  
pp. 118189
Author(s):  
Tao Wu ◽  
Jianhui Wang ◽  
Xiaonan Lu ◽  
Yuhua Du
2010 ◽  
Vol 439-440 ◽  
pp. 1209-1214
Author(s):  
Hong Bin Sun ◽  
Yong Sheng Ding

The paper proposes a self-learning evolutionary multi-agent system for distribution network reconfiguration. The network reconfiguration is modeled as a multi-objective combinational optimization. An autonomous agent-entity cognizes the physical aspects as operational states of the local substation, the agent-entities establish relationship network based on the interactions to provide service. Multiple objectives are considered for load balancing among the feeders, minimum deviation of the nodes voltage, minimize the power loss and branch current constraint violation. These objectives are modeled with fuzzy sets to evaluate their imprecise nature and one can provide the anticipated value of each objective. The method completes the network reconfiguration based on the negotiation of autonomous agent-entities. Simulation results demonstrated that the proposed method is effective in improving performance.


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