Transactive energy framework in multi-carrier energy hubs: A fully decentralized model

被引:90
|
作者
Javadi, Mohammad Sadegh [1 ]
Nezhad, Ali Esmaeel [2 ]
Jordehi, Ahmad Rezaee [3 ]
Gough, Matthew [4 ,5 ]
Santos, Sergio F. [4 ,6 ]
Catalao, Joao P. S. [4 ,5 ]
机构
[1] Islamic Azad Univ, Shiraz Branch, Dept Elect Engn, Shiraz, Iran
[2] LUT Univ, Sch Energy Syst, Dept Elect Engn, Lappeenranta 53850, Finland
[3] Islamic Azad Univ, Rasht Branch, Dept Elect Engn, Rasht, Iran
[4] Inst Syst & Comp Engn, Technol & Sci INESC TEC, Porto, Portugal
[5] Univ Porto, Fac Engn, FEUP, Porto, Portugal
[6] Portucalense Univ Infante D Henr UPT, R Dr Antonio Bernardino de Almeida 541, Porto, Portugal
关键词
Alternating direction method of multipliers; Peer-to-Peer; Transactive energy; Multi-carrier energy hubs; MANAGEMENT; ALGORITHM;
D O I
10.1016/j.energy.2021.121717
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper investigates a fully decentralized model for electricity trading within a transactive energy market. The proposed model presents a peer-to-peer (P2P) trading framework between the clients. The model is incorporated for industrial, commercial, and residential energy hubs to serve their associated demands in a least-cost paradigm. The alternating direction method of multipliers (ADMM) is implemented to address the decentralized power flow in this study. The optimal operation of the energy hubs is modeled as a standard mixed-integer linear programming (MILP) optimization problem. The corresponding decision variables of the energy hubs operation are transferred to the peer-to-peer (P2P) market, and ADMM is applied to ensure the minimum data exchange and address the data privacy issue. Two different scenarios have been studied in this paper to show the effectiveness of the electricity trading model between peers, called integrated and coordinated operation modes. In the integration mode, there is no P2P energy trading while in the coordinated framework, the P2P transactive energy market is taken into account. The proposed model is simulated on the modified IEEE 33-bus distribution network. The obtained results confirm that the coordinated model can efficiently handle the P2P transactive energy trading for different energy hubs, addressing the minimum data exchange issue, and achieving the least-cost operation of the energy hubs in the system. The obtained results show that the total operating cost of the hubs in the coordinated model is lower than that of the integrated model by $590.319, i.e. 11.75 % saving in the costs. In this regard, the contributions of the industrial, commercial, and residential hubs in the total cost using the integrated model are $3441.895, $596.600, and $988.789, respectively. On the other hand, these energy hubs contribute to the total operating cost in the coordinated model by $2932.645, $590.155, and $914.165 respectively. The highest decrease relates to the industrial hub by 14.8 % while the smallest decrease relates to the residential hub by 1 %. Furthermore, the load demand in the integrated and coordinated models is mitigated by 13 % and 17 %, respectively. These results indicate that the presented framework could effectively and significantly reduce the total load demand which in turn leads to reducing the total cost and power losses. (c) 2021 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Urban energy systems with smart multi-carrier energy networks and renewable energy generation
    Niemi, R.
    Mikkola, J.
    Lund, P. D.
    RENEWABLE ENERGY, 2012, 48 : 524 - 536
  • [32] MILP model for integrated expansion planning of multi-carrier active energy systems
    Ghasemi, Hosein
    Aghaei, Jamshid
    Gharehpetian, Gevork Babamalek
    Safdarian, Amir
    IET GENERATION TRANSMISSION & DISTRIBUTION, 2019, 13 (07) : 1177 - 1189
  • [33] Operational and structural optimization of multi-carrier energy systems
    Geidl, Martin
    Andersson, Goeran
    EUROPEAN TRANSACTIONS ON ELECTRICAL POWER, 2006, 16 (05): : 463 - 477
  • [34] Maximizing Exergy Efficiency in Multi-Carrier Energy Systems
    Krause, Thilo
    Kienzle, Florian
    Art, Simon
    Andersson, Goeran
    IEEE POWER AND ENERGY SOCIETY GENERAL MEETING 2010, 2010,
  • [35] Model-Based Predictive Control Applied to Multi-Carrier Energy Systems
    Arnold, Michele
    Negenborn, Rudy R.
    Andersson, Goeran
    De Schutter, Bart
    2009 IEEE POWER & ENERGY SOCIETY GENERAL MEETING, VOLS 1-8, 2009, : 4592 - 4599
  • [36] Strategic bidding of a multi-carrier microgrid in energy market
    Haddadipour, Shapour
    Amir, Vahid
    Javadi, Saeid
    IET RENEWABLE POWER GENERATION, 2022, 16 (03) : 634 - 649
  • [37] A Stackelberg Approach for Energy Efficient Multi-carrier Systems
    Hayel, Yezekayel
    Haddad, Majed
    2012 IEEE GLOBAL COMMUNICATIONS CONFERENCE (GLOBECOM), 2012, : 3280 - 3285
  • [38] Operational and topological optimization of multi-carrier energy systems
    Geidl, Martin
    Andersson, Goran
    2005 International Conference on Future Power Systems (FPS), 2005, : 1 - 6
  • [39] Optimal Resilient Operation of Multi-Carrier Energy Systems
    Shahcheraghi, Seyed Hadi
    Nazar, Mehrdad Setayesh
    2024 11TH IRANIAN CONFERENCE ON RENEWABLE ENERGY AND DISTRIBUTION GENERATION, ICREDG 2024, 2024,
  • [40] Transactive Energy Systems in Decentralized Autonomous Renewable Energy Communities
    Trevisan, Riccardo
    Mureddu, Mario
    Ghiani, Emilio
    Galici, Marco
    Pilo, Fabrizio
    2023 IEEE POWER & ENERGY SOCIETY GENERAL MEETING, PESGM, 2023,