基于效用最大化的智能电网实时最优定价算法

Pedram Samadi, Amir-Hamed Mohsenian-Rad, R. Schober, V. Wong, J. Jatskevich
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引用次数: 961

摘要

在本文中,我们考虑了一个智能电力基础设施,其中多个用户共享一个共同的能源。每个用户都配备了一个能耗控制器(ECC)单元,作为其智能电表的一部分。每个智能电表不仅与电网相连,还与局域网等通信基础设施相连。这允许智能电表之间的双向通信。考虑到能源定价作为开发高效需求侧管理策略的重要工具,我们为未来的智能电网提出了一种新的实时定价算法。我们关注智能电表与能源供应商之间的交互,通过交换控制消息,其中包含用户的能源消耗和实时价格信息。首先,我们基于微观经济学的概念,以精心选择的效用函数的形式,对用户的偏好及其能源消费模式进行了分析建模。其次,我们提出了一种分布式算法,自动管理智能电表和能源供应商之间的ECC单元之间的交互。该算法在公平和高效的前提下,找到每个用户的最优能耗水平,使系统中所有用户的总效用最大化。最后,我们证明了能源供应商可以通过所提出的实时定价交互在用户之间鼓励一些理想的消费模式。仿真结果表明,所提出的分布式算法对用户和能源供应商都有潜在的好处。
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Optimal Real-Time Pricing Algorithm Based on Utility Maximization for Smart Grid
In this paper, we consider a smart power infrastructure, where several subscribers share a common energy source. Each subscriber is equipped with an energy consumption controller (ECC) unit as part of its smart meter. Each smart meter is connected to not only the power grid but also a communication infrastructure such as a local area network. This allows two-way communication among smart meters. Considering the importance of energy pricing as an essential tool to develop efficient demand side management strategies, we propose a novel real-time pricing algorithm for the future smart grid. We focus on the interactions between the smart meters and the energy provider through the exchange of control messages which contain subscribers' energy consumption and the real-time price information. First, we analytically model the subscribers' preferences and their energy consumption patterns in form of carefully selected utility functions based on concepts from microeconomics. Second, we propose a distributed algorithm which automatically manages the interactions among the ECC units at the smart meters and the energy provider. The algorithm finds the optimal energy consumption levels for each subscriber to maximize the aggregate utility of all subscribers in the system in a fair and efficient fashion. Finally, we show that the energy provider can encourage some desirable consumption patterns among the subscribers by means of the proposed real-time pricing interactions. Simulation results confirm that the proposed distributed algorithm can potentially benefit both subscribers and the energy provider.
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