TY - JOUR
T1 - An adaptive mesh method for shale gas reservoir with complex fracture networks 复杂裂缝网络页岩气藏自适应网格剖分方法
AU - Mi, Lidong
AU - Jiang, Hanqiao
AU - Hu, Xiangyang
AU - Li, Junjian
AU - Hu, Xiaohu
AU - Zhou, Yuanlong
AU - Jia, Ying
AU - Yan, Bicheng
N1 - Generated from Scopus record by KAUST IRTS on 2023-02-20
PY - 2019/2/1
Y1 - 2019/2/1
N2 - The computation mesh is a basic factor for reservoir simulation. The traditional mesh generation method restricts the development of numerical simulation technology of shale gas reservoir with complex fracture network. Therefore, it is of great significance to establish an efficient mesh generation method for fractured medium. On the basis of fracture nodes, an adaptive mesh method (AMM)is established based on the principles of pixel point and distance nearest as well as the logarithmic encryption method. The AMM can handle the arbitrary complex network with a small number of grids, showing high computing precision. The results show that the control area of fractured grid in AMM is closer to the actual situation than that in NFFLOW; AMM can also handle any arbitrary complex fracture network and complex boundary condition model. Compared with the existing mesh method, AMM greatly reduces the number of computational grids. When performing numerical simulation for shale gas reservoirs, AMM can solve the problems such as large amount of computational grids and low precision caused by complex fractures, so as to lay a foundation for the numerical simulation of field-scale shale gas reservoirs.
AB - The computation mesh is a basic factor for reservoir simulation. The traditional mesh generation method restricts the development of numerical simulation technology of shale gas reservoir with complex fracture network. Therefore, it is of great significance to establish an efficient mesh generation method for fractured medium. On the basis of fracture nodes, an adaptive mesh method (AMM)is established based on the principles of pixel point and distance nearest as well as the logarithmic encryption method. The AMM can handle the arbitrary complex network with a small number of grids, showing high computing precision. The results show that the control area of fractured grid in AMM is closer to the actual situation than that in NFFLOW; AMM can also handle any arbitrary complex fracture network and complex boundary condition model. Compared with the existing mesh method, AMM greatly reduces the number of computational grids. When performing numerical simulation for shale gas reservoirs, AMM can solve the problems such as large amount of computational grids and low precision caused by complex fractures, so as to lay a foundation for the numerical simulation of field-scale shale gas reservoirs.
UR - http://www.syxb-cps.com.cn/CN/abstract/abstract5630.shtml
UR - http://www.scopus.com/inward/record.url?scp=85066125924&partnerID=8YFLogxK
U2 - 10.7623/syxb201902008
DO - 10.7623/syxb201902008
M3 - Article
SN - 0253-2697
VL - 40
SP - 197
EP - 206
JO - Shiyou Xuebao/Acta Petrolei Sinica
JF - Shiyou Xuebao/Acta Petrolei Sinica
IS - 2
ER -