Investigation of water and polymer flooding for enhanced oil recovery method in differential lobe pore structure

IF 0.9 Q4 ENGINEERING, CHEMICAL
Satyajit Chowdhury, Mayank Rakesh, J. Sangwai
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引用次数: 1

Abstract

ABSTRACT The total recovery of crude oil can be significantly improved by injecting fluids during the secondary and tertiary stages of production. The process leading to improved vertical and areal sweep efficiency is highly influenced by viscous and capillary forces. Along with reservoir rock properties, the reservoir fluid and displacing fluid properties play a critical role during enhanced oil recovery processes. In this study, a two-dimensional differential two-lobe pore throat structure was modelled to investigate the phenomena of water and polymer flooding. Computational fluid dynamics (CFD) with transient analysis was incorporated to study the oil recovery efficiency with changing effect of wettability conditions, and oil and injecting fluid properties. The fractional flow of water at the outlet, breakthrough time, and residual oil saturation were considered as the evaluation factor for numerical experiments. Navier–Stokes equation coupled with the volume of fluid (VoF) model is used to describe the flooding process and for interface tracking. Inconsistent water cut at the outlet was observed in cases with high viscosity contrast. A significant difference in residual oil saturation (10–25%) was observed between water-wet and oil-wet conditions. Polymer flooding improved the total recovery by 7–22% as compared to simple water flooding. GRAPHICAL ABSTRACT
不同叶状孔隙结构水驱聚合物提高采收率方法研究
在二、三采油阶段进行注液可以显著提高原油的总采收率。提高垂直和面扫效率的过程受粘性力和毛细力的影响很大。除储层岩石性质外,储层流体和驱替流体性质在提高采收率过程中起着至关重要的作用。在这项研究中,模拟了一个二维微分双瓣孔喉结构来研究水驱和聚合物驱的现象。采用计算流体力学(CFD)和瞬态分析方法,研究了润湿性条件、油和注入流体性质对采收率的影响。数值实验的评价因素为出口水分流、突破时间和剩余油饱和度。采用Navier-Stokes方程和流体体积(VoF)模型来描述驱油过程和界面跟踪。在高粘度对比的情况下,在出口处观察到不一致的含水率。剩余油饱和度在水湿和油湿条件下存在显著差异(10-25%)。与单纯水驱相比,聚合物驱的总采收率提高了7-22%。图形抽象
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来源期刊
Indian Chemical Engineer
Indian Chemical Engineer ENGINEERING, CHEMICAL-
CiteScore
3.00
自引率
6.70%
发文量
33
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