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作 者:Jianchao Shi Yanan Zhang Wantao Liu Yuliang Su Jian Shi
机构地区:[1]Exploration and Development Research Institute,Changqing Oilfield Company,Xi’an,710018,China [2]National Engineering Laboratory for Exploration and Development of Low Permeability Oil and Gas Fields,Xi’an,710018,China [3]Key Laboratory of Unconventional Oil and Gas Development(China University of Petroleum(East China)),Ministry of Education,Qingdao,266580,China
出 处:《Fluid Dynamics & Materials Processing》2024年第5期1147-1163,共17页流体力学与材料加工(英文)
基 金:the China Research and Pilot Test on Key Technology of Efficient Production of Changqing Tight Oil(Grant No.2021DJ2202).
摘 要:Class III tight oil reservoirs have low porosity and permeability,which are often responsible for low production rates and limited recovery.Extensive repeated fracturing is a well-known technique to fix some of these issues.With such methods,existing fractures are refractured,and/or new fractures are created to facilitate communication with natural fractures.This study explored how different refracturing methods affect horizontal well fracture networks,with a special focus on morphology and related fluid flow changes.In particular,the study relied on the unconventional fracture model(UFM).The evolution of fracture morphology and flow field after the initial fracturing were analyzed accordingly.The simulation results indicated that increased formation energy and reduced reservoir stress differences can promote fracture expansion.It was shown that the length of the fracture network,the width of the fracture network,and the complexity of the fracture can be improved,the oil drainage area can be increased,the distance of oil and gas seepage can be reduced,and the production of a single well can be significantly increased.
关 键 词:Type III tight oil reservoirs refracturing methods horizontal wells fracture network study fracture network evolution
分 类 号:TE32[石油与天然气工程—油气田开发工程]
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