Depressurization and electrical heating of methane hydrate sediment for gas production: Laboratory-scale experiments

被引:62
|
作者
Minagawa, Hideki [1 ]
Ito, Takuma [1 ,2 ]
Kimura, Sho [1 ,3 ]
Kaneko, Hiroaki [1 ,4 ]
Noda, Shohei [5 ]
Tenma, Norio [5 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, 2-17-2-1 Tsukisamu Higashi, Sapporo, Hokkaido 0628517, Japan
[2] Res Inst Innovat Technol Earth RITE, 9-2 Kizugawa Dai, Kizugawa, Kyoto 6190292, Japan
[3] Univ Ryukyus, 1 Senbaru, Nishihara, Okinawa 9030129, Japan
[4] Japan Fdn Engn Co LTD, Shibuya Ku, 1-1-12 Hatagaya, Tokyo 1510072, Japan
[5] Natl Inst Adv Ind Sci & Technol, 16-1 Onogawa, Tsukuba, Ibaraki 3058569, Japan
关键词
Permeability; Methane hydrate; Sand sediment; Thermal stimulation method; Depressurization; Electrical heating; DISSOCIATION; PERMEABILITY; WATER;
D O I
10.1016/j.jngse.2017.10.024
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
The in situ dissociation of methane hydrate is necessary for the commercial recovery of methane gas from sediments. Thermal stimulation and depressurization are both effective dissociation methods. To simulate methane gas production from a methane hydrate (MH) layer, we used laboratory experiments to investigate the use of depressurization with electrical heating on MH sediment. To clarify the effect of temperature around the production well of the MH layer, depressurization experiments were examined at three initial temperatures: 0 degrees C, 3 degrees C, and 10 degrees C. A MH sediment core saturated with NaCl electrolyte solution (3.5 wt.%) was used. After depressurization, the core temperature decreased to between 10 degrees C and 3 degrees C below the initial temperature because of the endothermic MH dissociation reaction. When electrical heating was applied during depressurization at the initial temperatures of 3 degrees C and 10 degrees C, this decrease in core temperature was suppressed, and the core temperature increased to between 1 degrees C and 9 degrees C above the initial temperature. Electrical heating at a current density of 10 A/m(2), which corresponds to an electrical power of 1.6-0.8 W/kg, during depressurization was found to dissociate the hydrate effectively. Overall, the findings indicate that depressurization combined with the electrical heating of hydrated sediment saturated with electrolyte solution enables higher gas production compared to depressurization with lower electrical power.
引用
收藏
页码:147 / 156
页数:10
相关论文
共 50 条
  • [21] Numerical study on gas production from methane hydrate reservoir by depressurization in a reactor
    Shao, Yazhou
    Yang, Longbin
    Zhang, Qun
    Wang, Shidong
    Wang, Kunfang
    Xu, Runzhang
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 134 (134):
  • [22] Secondary hydrate formation in gas hydrate production by depressurization
    Ma C.
    Qin X.
    Sun J.
    Yu L.
    Li S.
    Wang J.
    Mao W.
    Bian H.
    Lu C.
    Zhongguo Shiyou Daxue Xuebao (Ziran Kexue Ban)/Journal of China University of Petroleum (Edition of Natural Science), 2022, 46 (06): : 21 - 30
  • [23] Numerical simulation on natural gas hydrate depressurization production considering sediment compression effects
    Jiang, Yujing
    Ma, Xianzhuang
    Luan, Hengjie
    Wu, Xuezhen
    Wang, Changsheng
    Shan, Qinglin
    Cheng, Xianzhen
    ENERGY, 2024, 301
  • [24] Study on the Settlement Characteristics of Hydrate Bearing Sediment Caused by Gas Production with the Depressurization Method
    Li, Lijia
    Li, Xiao-Sen
    Wang, Yi
    Huang, Xiaoliang
    Qi, Zhilin
    Chen, Zhu
    ENERGY & FUELS, 2024, 38 (07) : 5810 - 5821
  • [25] Gas production from methane hydrate deposits induced by depressurization in conjunction with thermal stimulation
    Wang, Bin
    Dong, Hongsheng
    Fan, Zhen
    Zhao, Jiafei
    Song, Yongchen
    8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105
  • [26] Development of methane hydrate production method - A large-scale laboratory reactor for methane hydrate production tests
    Nagao, Jiro
    Synthesiology, 2012, 5 (02): : 89 - 97
  • [27] Numerical Studies of Methane Gas Production from Hydrate Decomposition by Depressurization in porous media
    Yu, Minghao
    Li, Weizhong
    Yang, Mingjun
    Jiang, Lanlan
    Song, Yongchen
    8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105 : 250 - 255
  • [28] Numerical study of gas production from methane hydrate deposits by depressurization at 274 K
    Yu, Minghao
    Li, Weizhong
    Jiang, Lanlan
    Wang, Xin
    Yang, Mingjun
    Song, Yongchen
    APPLIED ENERGY, 2018, 227 : 28 - 37
  • [29] Numerical simulations of CO2-hydrate formation in laboratory-scale sand sediment
    Takahashi, Tomoki
    Sato, Toru
    Inui, Masayuki
    OCEANS, 2012 - YEOSU, 2012,
  • [30] FUEL 215-Simulation of methane production in a laboratory-scale reactor containing hydrate-bearing porous medium
    Gamwo, Isaac K.
    Myshakin, Evgeniy M.
    Zhang, Wu
    Warzinski, Robert P.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2008, 235