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首页> 外文期刊>Journal of Modern Power Systems and Clean Energy >Energy Exchange Control in Multiple Microgrids with Transactive Energy Management
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Energy Exchange Control in Multiple Microgrids with Transactive Energy Management

机译:具有透气能量管理的多个微电网中的能量交换控制

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摘要

In recent years, the advent of microgrids with numerous renewable energy sources has created some fundamental challenges in the control, coordination, and management of energy trading between microgrids and the power grid. To respond to these challenges, some techniques such as the transactive energy (TE) technology are proposed to control energy sharing. Therefore, this paper uses TE technology for energy exchange control among the microgrids, and applies three operation cases for analyzing the energy trading control of four and ten microgrids with the aim of minimizing the energy cost of each microgrid, respectively. In this regard, Monte Carlo simulation and fast forward selection (FFS) methods are respectively exerted for scenario generation and reduction in uncertainty modeling process. The first case is assumed that all microgrids can only receive energy from the network and do not have any connection with each other. In order to maximize the energy cost saving of each microgrid, the second case is proposed to provide a positive percentage of cost saving for microgrids. All microgrids can also trade energy with each other to get the most benefit by reducing the dependency on the main grid. The third case is similar to the second case, but its target is to indicate the scalability of the models based on the proposed TE technology by considering ten commercial microgrids. Finally, the simulation results indicate that microgrids can achieve the positive amount of cost saving in the second and third cases. In addition, the total energy cost of microgrids has been reduced in comparison with the first case.
机译:近年来,具有众多可再生能源的微电网的出现在微电网和电网之间的控制,协调和管理中创造了一些根本挑战。为了应对这些挑战,提出了一些诸如缩写能量(TE)技术的技术来控制能量共享。因此,本文使用TE技术进行微电网中的能量交换控制,并应用三个操作案例,用于分析四个和十个微电网的能量交易控制,目的是最大限度地减少每个微电网的能量成本。在这方面,蒙特卡罗仿真和快速前进选择(FFS)方法分别施加用于场景生成和不确定性建模过程的降低。第一种情况被假设所有MicroGrids只能从网络接收能量,并且没有彼此连接。为了最大限度地提高每个微电网的能量成本,提出了第二种情况,以提供微电网的节能成本的正百分比。所有MicroGrids还可以通过降低主电网的依赖性来互相交易能量以获得最大的利益。第三种情况类似于第二种情况,但其目标是通过考虑十个商业微电网基于所提出的TE技术来指示模型的可扩展性。最后,仿真结果表明,微电网可以达到第二和第三案例中的成本节约量的正数量。此外,与第一种情况相比,微电网的总能量成本已经减少。

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