基于算子的能源互联网系统Stackelberg博弈框架

IF 6.7 2区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Yue Chen;Peng Yi;Jinlong Lei;Xiangjun Li
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引用次数: 0

摘要

本文提出了一个Stackelberg博弈框架,用于管理一个集可再生能源发电、能源转换和能源交易于一体的能源互联网系统。该系统由相互竞争的能源公司控制的枢纽组成,包括外部能源交易和点对点能源交换。它涉及多个利益相关者,他们的决策是相互依赖的,这给决策带来了挑战。为了应对这些挑战,我们提出了一个具有两个主要目标的网络化Stackelberg游戏框架。首先,从能源公司的角度来看,公司通过考虑与其他公司的战略互动来做出决策,同时考虑被动消费者在点对点约束下的最佳反应。第二,从消费者的角度来看,消费者根据他们对公司战略的观察来调整他们的决策。该框架采用了一种分层决策结构,能源公司在其中扮演领导者的角色,制定预测消费者需求反应的战略,同时在纳什博弈中竞争。与此同时,在需求管理中心的管理下,消费者集群根据激励价格机制调整其能源使用。为了寻找平衡点,我们提出了一种结合隐式梯度方法和近算子分裂技术的算子理论方法,并证明了其收敛性。在具有多个能量集线器的IEEE 37总线和气源组合模型上进行了数值研究和仿真,验证了该模型的有效性和算法的高效性。结果证明了该系统的运行效率和战略稳定性,强调了能源公司和消费者积极参与市场的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Stackelberg Game Framework for Energy Internet System by Operator Approach
This paper proposes a Stackelberg game framework for managing an Energy Internet System that integratesrenewable energy generation, energy conversion, and energy trading. The system comprises hubs controlled by competing energy companies, incorporating both external energy trading and peer-to-peer energy exchanges. It involves multiple stakeholders whose decisions are interdependent, creating challenges in decision-making. To tackle these challenges, we propose a networked Stackelberg game framework with two main objectives. First, from the energy companies' perspective, the companies make decisions by considering strategic interactions with other companies while accounting for the best responses of passive consumers within peer-to-peer constraints. Second, from the consumer side, consumers adjust their decisions based on their observations of the companies' strategies. The framework adopts a hierarchical decision-making structure in which energy companies act as leaders, formulating strategies that anticipate consumer demand responses, while competing within a Nash game. Meanwhile, consumer clusters, managed by demand management centers, modify their energy usage based on an incentive price mechanism. To search for the equilibrium, we develop an operator-theoretic approach that combines implicit gradient methods with proximal operator splitting techniques, and prove its convergence. Numerical studies and simulations on a combined IEEE 37-bus and gas source model with multiple energy hubs validate the model's effectiveness and the efficiency of the proposed algorithms. The results demonstrate the operational efficiency and strategic stability of the system, emphasizing the advantages of active market participation for both energy companies and consumers.
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来源期刊
IEEE Transactions on Network Science and Engineering
IEEE Transactions on Network Science and Engineering Engineering-Control and Systems Engineering
CiteScore
12.60
自引率
9.10%
发文量
393
期刊介绍: The proposed journal, called the IEEE Transactions on Network Science and Engineering (TNSE), is committed to timely publishing of peer-reviewed technical articles that deal with the theory and applications of network science and the interconnections among the elements in a system that form a network. In particular, the IEEE Transactions on Network Science and Engineering publishes articles on understanding, prediction, and control of structures and behaviors of networks at the fundamental level. The types of networks covered include physical or engineered networks, information networks, biological networks, semantic networks, economic networks, social networks, and ecological networks. Aimed at discovering common principles that govern network structures, network functionalities and behaviors of networks, the journal seeks articles on understanding, prediction, and control of structures and behaviors of networks. Another trans-disciplinary focus of the IEEE Transactions on Network Science and Engineering is the interactions between and co-evolution of different genres of networks.
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