Construction and simulation of reservoir scale layered model for production and utilization of methane hydrate: The case of Nankai Trough Japan

被引:94
作者
Chen, Lin [1 ]
Feng, Yongchang [2 ]
Kogawa, Takuma [2 ]
Okajima, Junnosuke [2 ]
Komiya, Atsuki [2 ]
Maruyama, Shigenao [2 ,3 ]
机构
[1] Tohoku Univ, Dept Aerosp Engn, Aoba Ku, Aoba 6-6, Sendai, Miyagi 9808579, Japan
[2] Tohoku Univ, Inst Fluid Sci, Aoba Ku, Katahira 2-1-1, Sendai, Miyagi 9808577, Japan
[3] Hachinohe Coll, Natl Inst Technol, Hachinohe, Aomori 0391192, Japan
关键词
Methane hydrate; Energy conversion; Multi-phase flow; Numerical analysis; Nankai Trough; INDUCED GAS-PRODUCTION; PRODUCTION TEST-SITE; POWER-GENERATION; NORTH SLOPE; DEPRESSURIZATION; DISSOCIATION; ALASKA; FLOW;
D O I
10.1016/j.energy.2017.10.108
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study is focused on the utilization of oceanic methane hydrate as an energy resource under the real production situations of Nankai Trough, Japan. Due to the complex geological conditions and the sensitive thermal-mechanical properties of methane hydrate bearing layers, it is very difficult to extract and utilize the methane hydrate stably and economically. The current status of development in Japan and major challenges from real reservoir-scale analysis are discussed. Low-carbon emission process is discussed and shown into detail with careful numerical modeling procedures. The numerical model is constructed based on the geological conditions of Nankai Trough of Japan. Numerical model is also scaled-up from single thin-layer to thick multi-layer model for real reservoir conditions, based on the recent geological survey data. In the current study, the production behaviors, boundary conditions and reservoir parameter effects are discussed into detail. The predicted production rate level in this simulation agrees with recent real tests. It is found that proper selection of layer models and production strategy is very important for large-scale simulation and prediction. Combined methods and strategic production design are recommended in future real tests. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:128 / 140
页数:13
相关论文
共 38 条
[1]   Regional long-term production modeling from a single well test, Mount Elbert Gas Hydrate Stratigraphic Test Well, Alaska North Slope [J].
Anderson, Brian J. ;
Kurihara, Masanori ;
White, Mark D. ;
Moridis, George J. ;
Wilson, Scott J. ;
Pooladi-Darvish, Mehran ;
Gaddipati, Manohar ;
Masuda, Yoshihiro ;
Collett, Timothy S. ;
Hunter, Robert B. ;
Narita, Hideo ;
Rose, Kelly ;
Boswell, Ray .
MARINE AND PETROLEUM GEOLOGY, 2011, 28 (02) :493-501
[2]  
[Anonymous], 2007, OFFSHORE TECHNOLOGY
[3]  
[Anonymous], [No title captured]
[4]   Is Gas Hydrate Energy Within Reach? [J].
Boswell, Ray .
SCIENCE, 2009, 325 (5943) :957-958
[5]  
Burshears M., 1986, SPE Unconv. Gas Technol. Symp, P449
[6]   Study of methane hydrate as a future energy resource: low emission extraction and power generation [J].
Chen, L. ;
Yamada, H. ;
Kanda, Y. ;
Sasaki, H. ;
Okajima, J. ;
Iga, Y. ;
Komiya, A. ;
Maruyama, S. .
2016 INTERNATIONAL CONFERENCE ON NEW ENERGY AND FUTURE ENERGY SYSTEM (NEFES 2016), 2016, 40
[7]   Production strategy for oceanic methane hydrate extraction and power generation with Carbon Capture and Storage (CCS) [J].
Chen, Lin ;
Sasaki, Hirotoshi ;
Watanabe, Tsutomu ;
Okajima, Junnosuke ;
Komiya, Atsuki ;
Maruyama, Shigenao .
ENERGY, 2017, 126 :256-272
[8]   Investigation on the dissociation flow of methane hydrate cores: Numerical modeling and experimental verification [J].
Chen, Lin ;
Yamada, Hikaru ;
Kanda, Yuki ;
Okajima, Junnosuke ;
Komiya, Atsuki ;
Maruyama, Shigenao .
CHEMICAL ENGINEERING SCIENCE, 2017, 163 :31-43
[9]   Numerical analysis of core-scale methane hydrate dissociation dynamics and multiphase flow in porous media [J].
Chen, Lin ;
Yamada, Hikaru ;
Kanda, Yuki ;
Lacaille, Guillaume ;
Shoji, Eita ;
Okajima, Junnosuke ;
Komiya, Atsuki ;
Maruyama, Shigenao .
CHEMICAL ENGINEERING SCIENCE, 2016, 153 :221-235
[10]  
China Geological Survey Bureau, 2017, CHIN SUCC MIN COMB I