Experimental investigation of the formation and distribution of remaining oil from pore scale to core scale during supercritical CO2 flooding

物理 超临界流体 比例(比率) 芯(光纤) 比例模型 石油工程 机械 统计物理学 热力学 航空航天工程 光学 量子力学 工程类
作者
Lian Li,Yong Kang,Yi Hu,Haizeng Pan,Yong Huang,Quan Yuan
出处
期刊:Physics of Fluids [American Institute of Physics]
卷期号:36 (12) 被引量:3
标识
DOI:10.1063/5.0246498
摘要

Research on the formation and distribution characteristics of remaining oil has primarily focused on individual scales, with studies at both the pore scale and core scale often lacking effective integration, particularly under supercritical conditions. In this study, a high-temperature and high-pressure microfluidic experimental system (temperature: 75 °C, pressure: 22 MPa) and micro-computed tomography (CT) scanning technology were employed to systematically investigate the formation mechanisms and distribution characteristics of five different types of remaining oil after CO2 injection. The experimental results indicate that after CO2 injection, the remaining oil mainly appears in columnar and droplet patterns, predominantly distributed in pores ranging from 4 to 13 μm, and is significantly influenced by the Marangoni effect and Jamin effect. Additionally, at the pore scale, the oil recovery increased by approximately 8.7% under high flow rates (0.5 ml/min) compared to low flow rates (0.1 ml/min); In contrast, at the core scale, the oil recovery decreased by 15.9%. This contrasting behavior can be attributed to flow non-uniformity caused by the fingering effect, which leads to uneven fluid distribution within the porous media. The comparison between pore scale and core scale provides new insights into understanding the distribution patterns of remaining oil.
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