基于Stackelberg主从博弈的集成能源系统双层低碳优化策略研究

IF 1.9 Q4 ENERGY & FUELS Global Energy Interconnection Pub Date : 2023-08-01 DOI:10.1016/j.gloei.2023.08.002
Lizhen Wu , Cuicui Wang , Wei Chen , Tingting Pei
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引用次数: 0

摘要

随着综合能源系统改革的不断深入,各个能源子系统作为基于有限理性的参与者,通过相互学习和模仿,对整个综合能源系统的最优调度产生重要影响。合理的多智能体联合运行策略有助于实现该系统的低碳目标。本文提出了一种基于Stackelberg主从博弈和多智能体联合操作的双层低碳IES最优运行策略。所研究的IES包括热电联产、电制气和碳捕获系统。基于Stackelberg主从博弈理论,在上层以卖方作为领导者来设定电力和热能的价格,在下层以能源生产商、储能供应商和负荷聚合商作为追随者来调整系统的运行策略。建立了基于Stackelberg主从博弈的IES双层优化模型。最后,利用Karush-Kuhn-Tucker (KKT)条件和线性松弛技术将双层博弈模型转化为单层博弈模型。CPLEX是一种数学程序求解器,用于求解各主体收益达到最大时系统的均衡问题和碳排放交易成本,并分析不同的碳排放交易价格和增长率对系统运行策略的影响。作为实验演示,我们模拟了一个与IEEE 39节点电网系统、六节点热网系统和六节点燃气网络系统耦合的IES。仿真结果验证了该模型的有效性和可行性。
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Research on the bi-layer low carbon optimization strategy of integrated energy system based on Stackelberg master slave game

With increasing reforms related to integrated energy systems (IESs), each energy subsystem, as a participant based on bounded rationality, significantly influences the optimal scheduling of the entire IES through mutual learning and imitation. A reasonable multiagent joint operation strategy can help this system meet its low-carbon objectives. This paper proposes a bilayer low-carbon optimal operational strategy for an IES based on the Stackelberg master-slave game and multiagent joint operation. The studied IES includes cogeneration, power-to-gas, and carbon capture systems. Based on the Stackelberg master-slave game theory, sellers are used as leaders in the upper layer to set the prices of electricity and heat, while energy producers, energy storage providers, and load aggregators are used as followers in the lower layer to adjust the operational strategy of the system. An IES bilayer optimization model based on the Stackelberg master-slave game was developed. Finally, the Karush-Kuhn-Tucker (KKT) condition and linear relaxation technology are used to convert the bilayer game model to a single layer. CPLEX, which is a mathematical program solver, is used to solve the equilibrium problem and the carbon emission trading cost of the system when the benefits of each subject reach maximum and to analyze the impact of different carbon emission trading prices and growth rates on the operational strategy of the system. As an experimental demonstration, we simulated an IES coupled with an IEEE 39-node electrical grid system, a six-node heat network system, and a six-node gas network system. The simulation results confirm the effectiveness and feasibility of the proposed model.

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来源期刊
Global Energy Interconnection
Global Energy Interconnection Engineering-Automotive Engineering
CiteScore
5.70
自引率
0.00%
发文量
985
审稿时长
15 weeks
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