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An Innovative Stochastic Multi-Agent-Based Energy Management Approach for Microgrids Considering Uncertainties

机译:基于创新的随机多智能体的能源管理方法,用于考虑不确定性的微电网

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In microgrids a major share of the energy production comes from renewable energy sources such as photovoltaic panels or wind turbines. The intermittent nature of these types of producers along with the fluctuation in energy demand can destabilize the grid if not dealt with properly. This paper presents a multi-agent-based energy management approach for a non-isolated microgrid with solar and wind units and in the presence of demand response, considering uncertainty in generation and load. More specifically, a modified version of the lightning search algorithm, along with the weighted objective function of the current microgrid cost, based on different scenarios for the energy management of the microgrid, is proposed. The probability density functions of the solar and wind power outputs, as well as the demand of the households, have been used to determine the amount of uncertainty and to plan various scenarios. We also used a particle swarm optimization algorithm for the microgrid energy management and compared the optimization results obtained from the two algorithms. The simulation results show that uncertainty in the microgrid normally has a significant effect on the outcomes, and failure to consider it would lead to inaccurate management methods. Moreover, the results confirm the excellent performance of the proposed approach.
机译:在微电网中,能源生产的主要份额来自可再生能源,如光伏电池板或风力涡轮机。这些类型的生产者的间歇性质以及能量需求波动可以使网格稳定,如果没有正确处理。本文介绍了一种基于多种子体的能量管理方法,用于具有太阳能和风电脑的非孤立的微电网,并且在存在需求响应的情况下,考虑到产生和负载的不确定性。更具体地,提出了一种改进的闪电搜索算法的修改版本,以及基于当前微电网成本的加权目标函数,基于微电网的能量管理的不同场景。太阳能和风力输出的概率密度功能以及家庭的需求,用于确定不确定性的数量和计划各种情景。我们还使用了微电网能源管理的粒子群优化算法,并比较了从两种算法获得的优化结果。仿真结果表明,微电网中的不确定性通常对结果产生显着影响,并且未能考虑它会导致不准确的管理方法。此外,结果证实了所提出的方法的优异性能。

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