Heat market for interconnected multi-energy microgrids: A distributed optimization approach

被引:0
|
作者
Gonzalez-Castellanos, Alvaro [1 ]
Bischi, Aldo [2 ]
机构
[1] Corp Red Solvers, Barranquilla, Atlantico, Colombia
[2] Univ Pisa, Dept Energy Syst Terr & Construct Engn, Largo Lucio Lazzarino 1, I-56122 Pisa, Italy
来源
ENERGY NEXUS | 2024年 / 14卷
关键词
Interconnected microgrids; Multi-energy microgrids; Heat market; Combined heat and power; Distributed optimization; SYSTEMS; NETWORK; ADMM;
D O I
10.1016/j.nexus.2024.100292
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Thermal networks, part of heat -and -power multi -energy microgrids, may face capacity issues, generation and distribution ones, either due to the increase in the requested demand or capacity underused, which is sized for peak hours. Under -capacity issues may be addressed with generation and pipeline capacity expansion, resulting in considerable capital costs and extra maintenance costs. In the case of over -capacity, better usage of the existing assets may bring further revenues and increase the multi -energy microgrid's overall energy efficiency. In the electricity sector, it is being considered the interconnection of microgrids via the distribution system network, since microgrids can operate in both islanded and network -connected modes. In this work, in a similar fashion, we propose the interconnection of adjacent thermal networks enabling direct heat trading among them to increase the micro -grids' supply flexibility, help meeting demand peaks, and reduce operational costs. Examples of integrated heat -and -power microgrids that could benefit from thermal interconnections are industrial parks, university campuses, hospitals, and even residential complexes with a shared heat generator. This paper presents a market model for the optimal heat transfer between thermally interconnected heat -and -power microgrids. The resulting model is a convex quadratic programming model that enables the derivation of heat transfer prices that guarantee a competitive equilibrium. Furthermore, we performed numerical tests to explore the impact of connection topology, thermal power transfer capacity, and interconnection efficiency on transferred energy and prices.
引用
下载
收藏
页数:16
相关论文
共 50 条
  • [21] Economic and environmental assessment of multi-energy microgrids under a hybrid optimization technique
    Ding, Xiaonan
    Guo, Qun
    Tian, Qiannan
    Jermsittiparsert, Kittisak
    SUSTAINABLE CITIES AND SOCIETY, 2021, 65
  • [22] Multi-objective Optimization for Design and Operation of Distributed Energy Systems through the Multi-energy Hub Network Approach
    Maroufmashat, Azadeh
    Sattari, Sourena
    Roshandel, Ramin
    Fowler, Michael
    Elkamel, Ali
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2016, 55 (33) : 8950 - 8966
  • [23] Energy optimization and routing control strategy for energy router based multi-energy interconnected energy system
    Du, Yunfei
    Yin, Xianggen
    Lai, Jinmu
    Ullah, Zia
    Wang, Zhen
    Hu, Jiaxuan
    INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2021, 133
  • [24] Modelling Aspects of Flexible Multi-Energy Microgrids
    Holjevac, Ninoslav
    Capuder, Tomislav
    Kuzle, Igor
    Zhang, Ning
    Kang, Chongquing
    2018 POWER SYSTEMS COMPUTATION CONFERENCE (PSCC), 2018,
  • [25] Reliability assessment of island multi-energy microgrids
    Santos, Marcos
    Huo, Da
    Wade, Neal
    Greenwood, David
    Sarantakos, Ilias
    Energy Conversion and Economics, 2021, 2 (03): : 169 - 182
  • [26] Cost-aware modeling and operation of interconnected multi-energy microgrids considering environmental and resilience impact
    Masrur, Hasan
    Khaloie, Hooman
    Al-Awami, Ali T.
    El Ferik, Sami
    Senjyu, Tomonobu
    APPLIED ENERGY, 2024, 356
  • [27] Electricity-Heat-Based Integrated Demand Response Considering Double Auction Energy Market with Multi-Energy Storage for Interconnected Areas
    Wang, Dan
    Huang, Deyu
    Hu, Qing'e
    Jia, Hongjie
    Liu, Bo
    Lei, Yang
    CSEE JOURNAL OF POWER AND ENERGY SYSTEMS, 2024, 10 (04): : 1688 - 1700
  • [28] Coordinating Multi-Energy Microgrids for Integrated Energy System Resilience: A Multi-Task Learning Approach
    Wang, Yi
    Qiu, Dawei
    Sun, Xiaotian
    Bie, Zhaohong
    Strbac, Goran
    IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2024, 15 (02) : 920 - 937
  • [29] Resilient Distributed Energy Management for Systems of Interconnected Microgrids
    Ananduta, Wicak
    Maria Maestre, Jose
    Ocampo-Martinez, Carlos
    Ishii, Hideaki
    2018 IEEE CONFERENCE ON DECISION AND CONTROL (CDC), 2018, : 3159 - 3164
  • [30] Peer-to-Peer Energy Trading and Energy Conversion in Interconnected Multi-Energy Microgrids Using Multi-Agent Deep Reinforcement Learning
    Chen, Tianyi
    Bu, Shengrong
    Liu, Xue
    Kang, Jikun
    Yu, F. Richard
    Han, Zhu
    IEEE TRANSACTIONS ON SMART GRID, 2022, 13 (01) : 715 - 727