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Multi-agent System Based Energy Management Strategies for Microgrid by using Renewable Energy Source and Load Forecasting

机译:可再生能源与负荷预测的基于多智能体系统的微电网能源管理策略

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摘要

This article focuses on multi-agent system based hierarchical energy management strategies for maximum economic and environmental benefits for microgrids. First, a two-level multi-agent based energy management system is constructed, which consists of an upper-level EMA in the view of whole system, multiple lower-level unit agents in a distributed manner, and their interactions based on communication. Second, in the upper-level agent, the energy management strategies are mainly designed by constructing multi-objective functions and by using a particle swarm optimization method based on hybrid probabilistic forecasting of renewable energy sources and loads. Third, in lower-level renewable energy source and load agents, the forecasting approach regarding renewable energy sources and loasd is mainly researched by means of the ensemble empirical mode decomposition combined with sparse Bayesian learning, called the hybrid probabilistic forecast approach. Moreover, in lower-level schedulable generation unit agents, local control strategies are also presented to regulate the output power to satisfy the reference power that is set by the upper-level agent. Finally, the validity of the proposed multi-agent based energy management strategies is demonstrated by means of simulation results.
机译:本文重点介绍基于多主体系统的分层能源管理策略,以使微电网获得最大的经济和环境效益。首先,构建了一个基于多主体的两级能源管理系统,该系统由整个系统的上级EMA,分布式分布的多个下级单位代理以及它们基于通信的交互组成。其次,在上级代理中,能源管理策略主要是通过构建多目标函数并基于可再生能源和负荷的混合概率预测,使用粒子群优化方法来设计的。第三,在低层可再生能源和负荷代理中,主要通过集合经验模式分解和稀疏贝叶斯学习相结合的方法研究可再生能源和零散的预测方法,称为混合概率预测方法。此外,在较低级别的可调度发电单元代理中,还提出了局部控制策略来调节输出功率,以满足由高层代理设置的参考功率。最后,通过仿真结果证明了所提出的基于多主体的能源管理策略的有效性。

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