Optimization of energy system of natural gas hydrate offshore platform considering wind power uncertainty

被引:0
作者
Ma, Xiaojuan [1 ]
Cui, Ziyuan [1 ]
Yu, Xinhai [2 ]
Wang, Yufei [1 ]
机构
[1] China Univ Petr, State Key Lab Heavy Oil Proc, 18 Fuxue Rd, Beijing 102249, Peoples R China
[2] East China Univ Sci & Technol, Sch Mech & Power Engn, Meilong Rd 130, Shanghai 200237, Peoples R China
基金
中国国家自然科学基金;
关键词
Robust optimization; Energy system; Wind power; Offshore platform; SURFACE-ROUGHNESS; TURBINE;
D O I
10.1016/j.energy.2024.133344
中图分类号
O414.1 [热力学];
学科分类号
摘要
Natural gas hydrate has potentially become a clean energy source in the future. Most natural gas hydrates are stored in the ocean, and the exploitation of deep-sea gas hydrates requires the construction of offshore platforms. Generally, the platform consumes a lot of energy due to its impact on the marine environment. Therefore, the adoption of a reasonable energy equipment operation scheme can effectively reduce the platform operation cost. Compared with the way of directly consuming natural gas to provide power to the platform, introducing wind energy may be cleaner and more economical. However, the uncertainty and volatility of wind power must be carefully considered when it is introduced. The paper establishes a mixed integer linear programming (MILP) model to solve this problem. A flexible distributed energy system framework for the natural gas hydrate mining platform is constructed to design and optimize the equipment scale and the number of wind turbines with the minimum total annual cost of the energy system as the objective function. A case study is conducted by an established model and the results show that access to wind energy can significantly reduce the cost of the energy system by 18.9 % and CO2 emissions by 46.9 %. Meanwhile, the uncertainty of electric energy demand is the most sensitive to the optimization results.
引用
收藏
页数:14
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共 41 条
  • [1] Hybrid renewable energy system for sustainable residential buildings based on Solar Dish Stirling and wind Turbine with hydrogen production
    Allouhi, H.
    Allouhi, A.
    Almohammadi, K. M.
    Hamrani, A.
    Jamil, A.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2022, 270
  • [2] Towards a low-carbon future for offshore oil and gas industry: A smart integrated energy management system with floating wind turbines and gas turbines
    Banihabib, Reyhaneh
    Assadi, Mohsen
    [J]. JOURNAL OF CLEANER PRODUCTION, 2023, 423
  • [3] Exergy analysis and energy improvement of a Brazilian floating oil platform using Organic Rankine Cycles
    Barrera, Julian Esteban
    Bazzo, Edson
    Kami, Eduardo
    [J]. ENERGY, 2015, 88 : 67 - 79
  • [4] Robust linear optimization under general norms
    Bertsimas, D
    Pachamanova, D
    Sim, M
    [J]. OPERATIONS RESEARCH LETTERS, 2004, 32 (06) : 510 - 516
  • [5] The price of robustness
    Bertsimas, D
    Sim, M
    [J]. OPERATIONS RESEARCH, 2004, 52 (01) : 35 - 53
  • [6] Application of fuzzy mathematical programming approach to the production allocation and distribution supply chain network problem
    Bilgen, Bilge
    [J]. EXPERT SYSTEMS WITH APPLICATIONS, 2010, 37 (06) : 4488 - 4495
  • [7] Developing offshore natural gas hydrate from existing oil & gas platform based on a novel multilateral wells system: Depressurization combined with thermal flooding by utilizing geothermal heat from existing oil & gas wellbore
    Chen, Xuyue
    Du, Xu
    Yang, Jin
    Gao, Deli
    Zou, Yiqi
    He, Qinyi
    [J]. ENERGY, 2022, 258
  • [8] Design of sustainable offshore hybrid energy systems for improved wave energy dispatchability
    Cipolletta, Mariasole
    Crivellari, Anna
    Moreno, Valeria Casson
    Cozzani, Valerio
    [J]. APPLIED ENERGY, 2023, 347
  • [9] Cruz FAD, 2018, Estud Psicolog, P35
  • [10] Performance analysis of ocean thermal energy conversion system integrated with waste heat recovery from offshore oil and gas platform
    Du, Yanlian
    Peng, Hao
    Xu, Jiahua
    Tian, Zhen
    Zhang, Yuan
    Han, Xuanhe
    Shen, Yijun
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2024, 54