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A multimicrogrid energy management model implementing an evolutionary game-theoretic approach

机译:一种实施进化游戏理论方法的多射线能源管理模型

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Microgrids (MGs) are widely increasing to manage unequal electrical load requirements based on the infrastructure. The goal of this article is to manage energy in a centralized controller multimicrogrid (MMG) system operated at islanded mode. Renewable energy fluctuations in MG due to weather conditions build oscillation in MG operation modes. To solve this, a three-stage energy management MMG system is proposed. The proposed system is composed of operating mode prediction by measuring the weather conditions. In islanded mode, energy management is incorporated using a two-round fuzzy-based speed (TRFS) algorithm followed by evolutionary game theory and status updating by Markov chain. The TRFS algorithm takes into account voltage, frequency, power factor, total harmonic distortion, and loss of produced power probability parameters. The parallel processing of the TRFS algorithm reduces processing time, then a Stackelberg game with a quasi-oppositional symbiotic organisms search approach is carried out for power exchange. Markov chain based future prediction of MG states ensures detection of MG operating mode along with weather changes. Simulations are developed in MATLAB Simulink, and their outcomes show better performance than previous work whose results are evaluated in terms of load and generator output at two modes, power generated at individual MG and exchanged power.
机译:微电网(MGS)众所周度地增加,以基于基础设施管理不等电负载需求。本文的目标是管理以岛模式运行的集中控制器多种式格栅(MMG)系统中的能量。由于天气条件,MG的可再生能量波动因天气条件构建MG操作模式的振荡。为了解决这一点,提出了一种三级能源管理MMG系统。所提出的系统通过测量天气条件来组成操作模式预测。在岛屿模式中,使用双循环模糊的速度(TRFS)算法并入到Envolueary Game理论和Markov Chain的状态更新。 TRFS算法考虑到电压,频率,功率因数,总谐波失真和产生功率概率参数的损失。 TRFS算法的并行处理降低了处理时间,然后对电力交换进行了具有准反对共生生物搜索方法的Stackelberg游戏。 Markov链基于MG状态的未来预测可确保检测MG操作模式以及天气变化。模拟是在Matlab Simulink中开发的,其结果表现出比以前的工作更好的性能,其结果是在两个模式下在负载和发电机输出时进行评估的,在各个MG处产生的电力和交换功率。

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