Game-theoretical energy management design for smart cyber-physical power systems

被引:0
|
作者
Zhou, Zhenyu [1 ]
Bai, Jinfang [1 ]
Dong, Mianxiong [2 ]
Ota, Kaoru [2 ]
Zhou, Sheng [3 ]
机构
[1] State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, School of Electrical and Electronic Engineering, North China Electric Power University, Beijing, China
[2] Department of Information and Electric Engineering, Muroran Institute of Technology, Muroran, Japan
[3] Tsinghua National Laboratory for Information Science and Technology, Department of Electronic Engineering, Tsinghua University, Beijing, China
基金
美国国家科学基金会;
关键词
Backward induction methods - Closed-form expression - Management problems - Micro grid - Smart grid - Stackelberg equilibrium - Stackelberg Games - Theoretical approach;
D O I
10.1080/23335777.2015.980624
中图分类号
学科分类号
摘要
In this paper, we consider the energy management problem for smart cyber-physical power systems with conventional utility companies, microgrids (MGs) and customers. We have adopted a game-theoretical approach to model the problem as a hierarchical game, which takes the interactions and interconnections among utility companies, MGs and customers into consideration. We have considered two completely different situations depending on whether utility companies can enforce their strategies upon MGs and customers, and have modelled the problem as a two-stage Stackelberg game and three-stage Stackelberg game, respectively. The backward induction method is used to analyse the proposed games and closed-form expressions are derived for optimum strategies. We prove that there exists a unique Nash equilibrium for each non-cooperative price competition game, and these Nash equilibria constitute the Stackelberg equilibrium. Simulation results show the effectiveness of the proposed algorithm and the relationships among system parameters. © 2015, © 2015 Taylor & Francis.
引用
收藏
页码:24 / 45
相关论文
共 50 条
  • [21] Smart Cities as Cyber-Physical Social Systems
    Cassandras, Christos G.
    ENGINEERING, 2016, 2 (02) : 156 - 158
  • [22] Smart Monitoring of the Emergencies by Cyber-Physical Systems
    Ruchkin, Vladimir
    Romanchuk, Vitaly
    Kostrov, Boris
    Kolesenkov, Aleksandr
    Ruchkina, Ekaterina
    12TH INTERNATIONAL CONFERENCE ELEKTRO 2018, 2018,
  • [23] Intelligent, smart and scalable cyber-physical systems
    Vijayakumar, V.
    Subramaniyaswamy, V.
    Abawajy, Jemal
    Yang, Longzhi
    JOURNAL OF INTELLIGENT & FUZZY SYSTEMS, 2019, 36 (05) : 3935 - 3943
  • [24] Smart Grids: A Cyber-Physical Systems Perspective
    Yu, Xinghuo
    Xue, Yusheng
    PROCEEDINGS OF THE IEEE, 2016, 104 (05) : 1058 - 1070
  • [25] Mobile Cyber-Physical Systems for Smart Cities
    Zhang, Desheng
    WWW'20: COMPANION PROCEEDINGS OF THE WEB CONFERENCE 2020, 2020, : 546 - 548
  • [26] Security and Privacy for Smart Cyber-Physical Systems
    Ma, Liran
    Huo, Yan
    Hu, Chunqiang
    Li, Wei
    SECURITY AND COMMUNICATION NETWORKS, 2019, 2019
  • [27] Towards Trustworthy Smart Cyber-Physical Systems
    David, M. W.
    Yerkes, C. R.
    Simmons, M. E.
    Franceschini, W.
    INFORMATION AND COMMUNICATIONS SECURITY, ICICS 2016, 2016, 9977 : 392 - 399
  • [28] Cybersecurity in Cyber-Physical Power Systems
    Ribas Monteiro, Luiz Fernando
    Rodrigues, Yuri R.
    Zambroni de Souza, A. C.
    ENERGIES, 2023, 16 (12)
  • [29] A Model-Based Design of Cyber-Physical Energy Systems
    Al Faruque, Mohammad Abdullah
    Ahourai, Fereidoun
    2014 19TH ASIA AND SOUTH PACIFIC DESIGN AUTOMATION CONFERENCE (ASP-DAC), 2014, : 97 - 104
  • [30] Design Automation for Cyber-Physical Systems
    Zhu, Qi
    Sangiovanni-Vincentelli, Alberto
    Hu, Shiyan
    Li, Xin
    PROCEEDINGS OF THE IEEE, 2018, 106 (09) : 1479 - 1483