Natural gas hydrate exploitation and recovered natural gas liquefaction driven by wind power: Process modelling and energy performance evaluation

被引:2
|
作者
Jiang, Wei [1 ]
Kan, Jingyu [2 ]
Dong, Baocan [1 ]
Li, Xingxun [1 ]
Wang, Xiaohui [1 ]
Deng, Chun [1 ]
Liu, Bei [1 ]
Li, Qingping [3 ]
Sun, Changyu [1 ]
Chen, Guangjin [1 ]
机构
[1] China Univ Petr, State Key Lab Heavy Oil Proc, Beijing 102249, Peoples R China
[2] China Univ Petr Beijing Karamay, State Key Lab Heavy Oil Proc, Karamay 834000, Peoples R China
[3] State Key Lab Nat Gas Hydrate, Beijing 100028, Peoples R China
基金
中国国家自然科学基金;
关键词
Natural gas; Hydrate; Exploitation; Simulation; Liquefaction; Energy efficiency; THERMAL-STIMULATION; METHANE HYDRATE; CARBON-DIOXIDE; PRODUCTION BEHAVIOR; DISSOCIATION; DEPRESSURIZATION; ACCUMULATIONS; SATURATION; PREDICTION; EFFICIENCY;
D O I
10.1016/j.energy.2023.128870
中图分类号
O414.1 [热力学];
学科分类号
摘要
Current oceanic hydrate research mainly focuses on its exploitation, but the subsequent storage and transportation of recovered gas is also necessary. To accelerate its commercial application and clarify the potential of liquefaction after hydrate exploitation, a rigorous simulation modelling was firstly conducted on the depressurization exploitation of hydrate coupled with recovered gas liquefaction in this paper. The energy performance was evaluated by energy consumption and efficiency analysis. The energy efficiency of the gas and liquid production process, liquefaction process, and the key influence factors of the whole process were studied separately. Results show that the energy efficiency ratio for depressurization exploitation reaches between 4.9 and 19.4, while that for the whole system of hydrate exploitation and liquefaction is only between 1.3 and 2.7 considering recovered gas combustion for power generation. The energy efficiency ratio of the whole system increases to between 2.6 and 4.3 powered by offshore wind farm. The largest energy efficiency reduction is up to 77.8% after recovered gas liquefaction compared with exploitation process. Therefore the storage process with lower energy consumption should be prioritized or the energy consumption should be optimized for the storage and transportation process after hydrate exploitation.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] An analysis of the key safety technologies for natural gas hydrate exploitation
    Yang Y.
    He Y.
    Zheng Q.
    Adv. Gco-Energy Res., 2 (100-104): : 100 - 104
  • [22] Economic Critical Resources for the Industrial Exploitation of Natural Gas Hydrate
    CHEN Xuejun
    LU Hailong
    ZHANG Jiecheng
    YE Jianliang
    XIE Wenwei
    ActaGeologicaSinica(EnglishEdition), 2022, 96 (02) : 663 - 673
  • [23] Natural Gas Hydrate Exploitation Technology and Global Development Status
    Sun, Mengying
    Pan, Yi
    Yang, Shuangchun
    2018 3RD INTERNATIONAL CONFERENCE ON NEW ENERGY AND RENEWABLE RESOURCES (ICNERR 2018), 2018, 331
  • [24] Economic Critical Resources for the Industrial Exploitation of Natural Gas Hydrate
    Chen, Xuejun
    Lu, Hailong
    Zhang, Jiecheng
    Ye, Jianliang
    Xie, Wenwei
    ACTA GEOLOGICA SINICA-ENGLISH EDITION, 2022, 96 (02) : 663 - 673
  • [25] A review on simulation models for exploration and exploitation of natural gas hydrate
    Yonghong Sun
    Xiaoshu Lü
    Wei Guo
    Arabian Journal of Geosciences, 2014, 7 : 2199 - 2214
  • [26] Development in Exploitation Methods and Environmental Effect of Natural Gas Hydrate
    Wang, Lin-jun
    Wang, Wei
    Zhang, Xue-min
    Wei, Guo-dong
    Xu, Hui
    2011 INTERNATIONAL CONFERENCE ON FUZZY SYSTEMS AND NEURAL COMPUTING (FSNC 2011), VOL VII, 2011, : 559 - 562
  • [27] Development in Exploitation Methods and Environmental Effect of Natural Gas Hydrate
    Wang, Lin-jun
    Wang, Wei
    Zhang, Xue-min
    Wei, Guo-dong
    Xu, Hui
    2011 AASRI CONFERENCE ON INFORMATION TECHNOLOGY AND ECONOMIC DEVELOPMENT (AASRI-ITED 2011), VOL 3, 2011, : 125 - 128
  • [29] Feasibility Evaluation of a New Approach of Seawater Flooding for Offshore Natural Gas Hydrate Exploitation
    Yu, Tao
    Chen, Bingbing
    Jiang, Lanlan
    Zhang, Lunxiang
    Yang, Lei
    Yang, Mingjun
    Song, Yongchen
    Abudula, Abuliti
    ENERGY & FUELS, 2023, 37 (06) : 4349 - 4364
  • [30] Evaluation of Phase Envelope on Natural Gas, Condensate and Gas Hydrate
    Promkotra, S.
    Kangsadan, T.
    4TH INTERNATIONAL CONGRESS IN ADVANCES IN APPLIED PHYSICS AND MATERIALS SCIENCE (APMAS 2014), 2015, 1653