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A hierarchical optimization model for energy data flow in smart grid power systems

机译:智能电网电力系统中能量数据流的分层优化模型

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Environmental concerns and high prices of fossil fuels increase the feasibility of using renewable energy sources in smart grid. Smart grid technologies are currently being developed to provide efficient and clean power systems. Communication in smart grid allows different components to collaborate and exchange information. Traditionally, the utility company uses a central management unit to schedule energy generation, distribution, and consumption. Using centralized management in a very large scale smart grid forms a single point of failure and leads to serious scalability issues in terms of information delivery and processing. In this paper, a three-level hierarchical optimization approach is proposed to solve scalability, computational overhead, and minimize daily electricity cost through maximizing the used percentage of renewable energy. At level one, a single home or a group of homes are combined to form an optimized power entity (OPE) that satisfies its load demand from its own renewable energy sources (RESs). At level two, a group of OPEs satisfies energy requirements of all OPEs within the group. At level three, excess in renewable energy from different groups along with the energy from the grid is used to fulfill unsatisfied demands and the remaining energy are sent to storage devices. (C) 2014 Elsevier Ltd. All rights reserved.
机译:环境问题和化石燃料的高价格增加了在智能电网中使用可再生能源的可行性。目前正在开发智能电网技术,以提供高效清洁的电力系统。智能电网中的通信允许不同的组件进行协作和交换信息。传统上,公用事业公司使用中央管理单元安排能源的产生,分配和消耗。在大型智能电网中使用集中管理会形成单点故障,并在信息传递和处理方面导致严重的可伸缩性问题。本文提出了一种三级分层优化方法,以解决可扩展性,计算开销以及通过最大化可再生能源的使用百分比来最小化每日电费。在第一级,将一个或一组房屋组合在一起,形成一个满足其自身可再生能源(RES)的负荷需求的优化电源实体(OPE)。在第二级,一组OPE满足该组中所有OPE的能源需求。在第三级,来自不同组的过量可再生能源以及来自电网的能源被用来满足未满足的需求,并将剩余的能源发送到存储设备。 (C)2014 Elsevier Ltd.保留所有权利。

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