TOUGH+CO2: A multiphase fluid-flow simulator for CO2 geologic sequestration in saline aquifers
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作者:
Zhang, Keni
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Univ Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USA
Zhang, Keni
[1
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Moridis, George
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Univ Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USA
Moridis, George
[1
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Pruess, Karsten
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Univ Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USA
Pruess, Karsten
[1
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机构:
[1] Univ Calif Berkeley, Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA 94720 USA
TOUGH +CO2 is a new simulator for modeling of CO2 geologic sequestration in saline aquifers. It is a member of TOUGH+, the successor to the TOUGH2 family of codes for multicomponent, multiphase fluid and heat flow simulation. The code accounts for heat and up to 3 mass components, which are partitioned into three possible phases. In the code, the thermodynamics and thermophysical properties of H2O-NaCl-CO2 mixtures are determined based on system status and subdivided into six different phase combinations. By solving coupled mass and heat balance equations, TOUGH +CO2 can model non-isothermal or isothermal CO2 injection, phase behavior and flow of fluids and heat under typical conditions of temperature, pressure and salinity in CO2 geologic storage projects. The code takes into account effects of salt precipitation on porosity and permeability changes, and the wettability phenomena. The new simulator inherits all capabilities of TOUGH2 in handling fractured media and using unstructured meshes for complex simulation domains. The code adds additional relative permeability and capillary pressure functions. The FORTRAN 95 OOP architecture and other new language features have been extensively used to enhance memory use and computing efficiency. In addition, a domain decomposition approach has been implemented for parallel simulation. All these features lead to increased computational efficiency, and allow applicability of the code to multi-core/processor parallel computing platforms with excellent scalability. Published by Elsevier Ltd.
机构:
Alberta Energy & Utilities Board, Alberta Geol Survey, Edmonton, AB T6B 2X3, CanadaAlberta Energy & Utilities Board, Alberta Geol Survey, Edmonton, AB T6B 2X3, Canada
Bachu, S
Adams, JJ
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Alberta Energy & Utilities Board, Alberta Geol Survey, Edmonton, AB T6B 2X3, CanadaAlberta Energy & Utilities Board, Alberta Geol Survey, Edmonton, AB T6B 2X3, Canada
机构:
Univ Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, MalaysiaUniv Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia
Kumar, Sunil
Foroozesh, Jalal
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Univ Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia
Univ Teknol PETRONAS, Chem Engn Dept, Seri Iskandar, Perak, MalaysiaUniv Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia
Foroozesh, Jalal
Edlmann, Katriona
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Univ Edinburgh, Sch Geosci, Edinburgh, Midlothian, ScotlandUniv Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia
Edlmann, Katriona
Rezk, Mohamed Gamal
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Univ Teknol PETRONAS, Petr Engn Dept, Seri Iskandar, Perak, MalaysiaUniv Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia
Rezk, Mohamed Gamal
Lim, Chun Yan
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Univ Teknol PETRONAS, Petr Engn Dept, Seri Iskandar, Perak, Malaysia
ExxonMobil, Upstream Integrated Solut, Kuala Lumpur, MalaysiaUniv Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar, Perak, Malaysia