Combining reactive transport modeling with geochemical observations to estimate the natural gas hydrate accumulation

被引:12
|
作者
Tian, Hailong [1 ]
Yu, Ceting [1 ]
Xu, Tianfu [1 ]
Liu, Changling [2 ,3 ]
Jia, Wei [4 ,5 ]
Li, Yuanping [6 ]
Shang, Songhua [1 ]
机构
[1] Jilin Univ, Key Lab Groundwater Resources & Environm, Minist Educ, Changchun 130021, Peoples R China
[2] Minist Nat Resources, Key Lab Gas Hydrate, Qingdao 266071, Peoples R China
[3] Pilot Natl Lab Marine Sci & Technol Qingdao, Lab Marine Mineral Resource, Qingdao 266071, Peoples R China
[4] Univ Utah, Dept Civil & Environm Engn, Salt Lake City, UT 84112 USA
[5] Univ Utah, Energy & Geosci Inst, Salt Lake City, UT 84108 USA
[6] Inst CNOOC Ltd Shenzhen, Shenzhen 518054, Peoples R China
基金
中国国家自然科学基金;
关键词
Natural gas hydrate; Hydrate accumulation; Methane source; Reactive transport modeling; The South China Sea; METHANE HYDRATE; SHENHU AREA; ORGANIC-MATTER; MARINE-SEDIMENTS; COLD SEEP; CHINA; DECOMPOSITION; SLOPE; DISSOCIATION; DEGRADATION;
D O I
10.1016/j.apenergy.2020.115362
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
Predicting the distribution and resource of gas hydrates and understanding gas hydrate forming mechanisms are critical for assessing natural gas hydrate exploration potential, as well as exploiting hydrates. This study aims to provide a portable solution for evaluating resource of natural gas hydrate and quantifying contribution of methane sources via numerical simulations constrained by site-specific data. To numerically describe the complex process of biogenic methane production, an integrated simulation package, TOUGH + Hydrate + React (TOUGH + HR), was developed by coupling reactive transport, biodegradation and deposition of organic matter with behavior of hydrate-bearing system. Based on observed data from site SH2 in the South China Sea, a growing one-dimensional column model was constructed, and simulated via the developed TOUGH + HR tool. The results showed that when considering biogenic methane was the only source for hydrate, simulated maximum saturation of hydrate reached similar to 0.19, which is much lower than the observed value (similar to 0.46), suggesting that the in-situ biogenic methane is not enough to form the high-saturation hydrate. When the upward flux of methane (considered as thermogenic methane) increased to 1.00 x 10(-11) kg.m(-2).s(-1), both simulated saturation and distribution of hydrates matched the observed data well, including the profile of remained total organic carbon (TOC), the location of interface between dissolved methane and sulfate (SMI), and the derived chlorinity. Simulation results suggest that the ratio of biogenic methane to thermogenic methane forming hydrates was about 1:3. Predicted amount of methane hydrate using the column model was 3258.33 kg, very close to the estimated based on field observation (3112.82 kg).
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Mathematical modeling of natural gas underground storage in hydrate state
    Bondarev, E.A.
    Rozhin, I.I.
    Popov, V.V.
    Argunova, K.K.
    SOCAR Proceedings, 2015, (02): : 54 - 67
  • [22] Experiments of physical modeling for petrophysical properties of natural gas hydrate
    Zhao, Q
    Guo, J
    Hao, SL
    Geng, JH
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2005, 48 (03): : 649 - 655
  • [23] Modeling of hydrate formation prediction in binary components of natural gas
    Abbasi, Aijaz
    Hashim, Fakhruldin Mohd
    Machmudah, Affiani
    PETROLEUM SCIENCE AND TECHNOLOGY, 2022, 40 (16) : 2025 - 2037
  • [24] Algorithms for activity correction models for geochemical speciation and reactive transport modeling
    Carrayrou, Jerome
    Bertagnolli, Caroline
    Fahs, Marwan
    AICHE JOURNAL, 2022, 68 (01)
  • [25] Genesis of mass transport deposits and their effect on gas hydrate accumulation in the Qiongdongnan Basin
    Du H.
    Shi W.
    Liang J.
    Wang R.
    He Y.
    Xu L.
    Shiyou Diqiu Wuli Kantan/Oil Geophysical Prospecting, 2021, 56 (04): : 869 - 881
  • [26] Accumulation mechanism of natural gas hydrate in the Qilian Mountain permafrost, Qinghai, China
    Zhang, Fugui
    Yang, Zhibin
    Zhou, Yalong
    Zhang, Shunyao
    Yu, Linsong
    FRONTIERS IN ENERGY RESEARCH, 2022, 10
  • [27] Numerical Study of Gas Evolution and Transport Behaviours in Natural Gas-Hydrate Reservoirs
    Uddin, M.
    Wright, F.
    Coombe, D.
    JOURNAL OF CANADIAN PETROLEUM TECHNOLOGY, 2011, 50 (01): : 70 - 88
  • [28] Transport and storage of CO2 in natural gas hydrate reservoirs
    Ersland, Geir
    Husebo, Jarle
    Graue, Arne
    Kvamme, Bjorn
    GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01): : 3477 - 3484
  • [29] Hydrate Formation during Transport of Natural Gas Containing Water and Impurities
    Kvamme, Bjorn
    Kuznetsova, Tatiana
    Bauman, Jordan Michael
    Sjoblom, Sara
    Kulkarni, Anuli Avinash
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2016, 61 (02): : 936 - 949
  • [30] Reactive transport modeling of acid gas generation and condensation
    Zhang, GX
    Spycher, N
    Sonnenthal, E
    Steefel, C
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2005, 69 (10) : A157 - A157