Effect of Anionic Surfactants on the Oil–Water–Rock Interactions by an Improved Washburn Method

润湿 接触角 表面张力 表面能 化学工程 临界胶束浓度 油滴 材料科学 石油工程 化学 胶束 矿物学 地质学 复合材料 有机化学 水溶液 热力学 乳状液 物理 工程类
作者
Tie Kuang,Yubo Lan,Zhilin Yin,Xin He,Wanquan Tang,Yan‐Feng Wang,Yefei Wang,Feng Yan,Lu Zhang
出处
期刊:Molecules [Multidisciplinary Digital Publishing Institute]
卷期号:29 (12): 2878-2878 被引量:4
标识
DOI:10.3390/molecules29122878
摘要

The complex and variable structure of subsurface oil reservoirs as well as the small pore throat size of reservoirs make it extremely important to investigate the effect of oil–water–rock interactions for enhancing oil recovery. In this paper, the powder wettability of oil sand with different polar solvents was investigated using the improved Washburn capillary rise method, and the surface free energy of oil sand was calculated in combination with the OWRK method. In addition, the wettability of anionic surfactants HABS and PS solutions on the surface of oil sand was determined, and it showed that their wetting rates showed different trends after CMC (critical micelle concentration). The C×cosθ value of HABS decreased significantly with increasing concentration, whereas PS showed little changes. This may be related to the aggregate structure formed by HABS on the oil sand surface. Meanwhile, the interfacial free energy between crude oil and oil sand was obtained by crude oil-to-oil sand wetting experiments, and found that the wetting rate of crude oil to oil sand was much lower than that of solvents and surfactants. In combination with the above results and the oil–water interfacial tension (IFT), the oil–water–rock three-phase contact angle and the work of adhesion between the crude oil and the solid were obtained by Young’s equation. From the three-phase contact angle results, it can be found that the contact angle values of both HABS and PS are obviously higher than that of the simulated water, and both HABS and PS have the ability to significantly reduce the work of adhesion, which shows a strong ability to strip the oil film on the surface of the solid. The research results of this paper are helpful to understand the oil displacement mechanism of chemical flooding in reservoir pores, which is of great significance for improving oil recovery.
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