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题名

A dual-grid, implicit, and sequentially coupled geomechanics-and-composition model for fractured reservoir simulation

作者
发表日期
2020
DOI
发表期刊
ISSN
1086-055X
卷号25期号:4页码:2098-2118
摘要
In the development of fractured reservoirs, geomechanics is crucial because of the stress sensitivity of fractures. However, the complexities of both fracture geometry and fracture mechanics make it challenging to consider geomechanical effects thoroughly and efficiently in reservoir simulations. In this work, we present a coupled geomechanics and multiphase-multicomponent flow model for fractured reservoir simulations. It models the solid deformation using a poroelastic equation, and the solid deformation effects are incorporated into the flow model rigorously. The noticeable features of the proposed model are it uses a pseudocontinuum equivalence method to model the mechanical characteristics of fractures; the coupled geomechanics and flow equations are split and sequentially solved using the fixed-stress splitting strategy, which retains implicitness and exhibits good stability; and it simulates geomechanics and compositional flow, respectively, using a dual-grid system (i.e., the geomechanics grid and the reservoir-flow grid). Because of the separation of the geomechanics part and the flow part, the model is not difficult to implement based on an existing reservoir simulator. We validated the accuracy and stability of this model through several benchmark cases and highlighted the practicability with two large-scale cases. The case studies demonstrate that this model is capable of considering the key effects of geomechanics in fractured-reservoir simulation, including matrix compaction, fracture normal deformation, and shear dilation, as well as hydrocarbon phase behavior. The flexibility, efficiency, and comprehensiveness of this model enable a more realistic geocoupled reservoir simulation.
相关链接[Scopus记录]
收录类别
SCI ; EI
语种
英语
学校署名
其他
资助项目
National Natural Science Foundation of China[51520105005][U1663208] ; National Science and Technology Major Project of China[2016ZX05037-003][2017ZX05049-003]
WOS研究方向
Engineering
WOS类目
Engineering, Petroleum
WOS记录号
WOS:000576604600035
出版者
EI入藏号
20203709157057
EI主题词
Shear flow ; Deformation ; Petroleum reservoirs ; Stresses ; Fracture ; Fracture mechanics
EI分类号
Geology and Geophysics:481 ; Oil Fields:512.1.1 ; Fluid Flow, General:631.1 ; Mechanics:931.1 ; Materials Science:951
ESI学科分类
ENGINEERING
Scopus记录号
2-s2.0-85090361114
来源库
Scopus
引用统计
被引频次[WOS]:3
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/154462
专题南方科技大学
工学院_环境科学与工程学院
作者单位
1.Peking University,China
2.Qingdao Dadi Institute of New Energy Technologies,China
3.Southern University of Science and Technology,China
4.Research Institute of Petroleum Exploration and Development,China
推荐引用方式
GB/T 7714
Li,Xin,Li,Xiang,Zhang,Dongxiao,et al. A dual-grid, implicit, and sequentially coupled geomechanics-and-composition model for fractured reservoir simulation[J]. SPE JOURNAL,2020,25(4):2098-2118.
APA
Li,Xin,Li,Xiang,Zhang,Dongxiao,&Yu,Rongze.(2020).A dual-grid, implicit, and sequentially coupled geomechanics-and-composition model for fractured reservoir simulation.SPE JOURNAL,25(4),2098-2118.
MLA
Li,Xin,et al."A dual-grid, implicit, and sequentially coupled geomechanics-and-composition model for fractured reservoir simulation".SPE JOURNAL 25.4(2020):2098-2118.
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