首页|Analysis and experimental study on resistance-increasing behavior of composite high efficiency autonomous inflow control device

Analysis and experimental study on resistance-increasing behavior of composite high efficiency autonomous inflow control device

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Bottom water coning is the main reason to reduce the recovery of horizontal bottom water reservoir.By water coning,we mean the oil-water interface changes from a horizontal state to a mound-shaped cone and breaks through to the wellbore.Autonomous inflow control device(AICD)is an important instru-ment maintain normal production after bottom water coning,however,the resistance increasing ability of the swirl type AICD is insufficient at present,which seriously affects the water control effect.Aiming this problem,this paper designs a multi-stage resistance-increasing and composite type AICD.The separation mechanism of oil-water two phases in this structure,the resistance form of oil-water single phase and the resistance-increasing principle of water phase are analyzed.Establishing the dual-phase multi-stage separation and resistance-increasing model,and verified by measuring the throttling pres-sure drop and oil-water volume fraction of the AICD,it is found that the composite type AICD has the effect of ICD and AICD at the same time,which can balance the production rate of each well section at the initial stage of production,delay the occurrence of bottom water coning.In the middle and later stages of production,water-blocking can be effectively increased to achieve water control and stable production.After structural sensitivity analysis,the influence law of various structural parameters on the water control performance of composite AICD was obtained.The simulation calculation results show that,compared with the existing swirl type AICD,composite AICD has higher sensitivity to moisture content,the water phase throttling pressure drop is increased by 4.5 times on average.The composite AICD is suitable for the entire stage of horizontal well production.

Water controlFlow separationFlow resistance-increasingAICD deviceSimulation and experiment

Liang-Liang Dong、Yu-Lin Zhang

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School of Mechatronic Engineering,Southwest Petroleum University,Chengdu,610500,Sichuan,China

State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation,Southwest Petroleum University,Chengdu,610500,Sichuan,China

Oil and Gas Equipment Technology,Sharing and Service Platform of Sichuan Province,Chengdu,610500,Sichuan,China

国家自然科学基金四川省科技计划四川省科技计划

522040502021ZHCG001322ZDYF3009

2024

石油科学(英文版)
中国石油大学(北京)

石油科学(英文版)

EI
影响因子:0.88
ISSN:1672-5107
年,卷(期):2024.21(2)
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