润湿
接触角
材料科学
氧化物
十六烷
石墨烯
化学工程
吸附
表面能
X射线光电子能谱
表面张力
多孔性
渗吸
复合材料
纳米技术
化学
有机化学
热力学
冶金
发芽
物理
工程类
生物
植物
作者
Yanling Wang,Y. Li,Qian Wang,Longhao Tang,Liang Lei,Yijin Zeng,Jincheng Lan,Ning Xu
标识
DOI:10.1016/j.colsurfa.2021.126565
摘要
Gas condensate reservoir plays an indispensable role in the supply of fossil fuels to alleviate energy shortages. However, liquid condensate near the wellbore can lead to a decrease in gas well deliverability during development. In this work, the strong gas-wetting graphene oxide is prepared by functional modification and characterized by FTIR and XPS. Thermodynamic analysis shows that surface modification can improve the temperature resistance of graphene oxide. To investigate the influence of gas-wetting alteration on the core, the contact angle of the droplets on the core surface is measured and the results exhibit that the contact angles of water and n-hexadecane increase from 23° and 0–140° and 132°, respectively. Meanwhile, the surface free energy is sharply reduced from 67.97 mN/m to 1.15 mN/m after treatment. These results are further verified by imbibition. Core flooding illustrates that the required pressure for water and n-hexadecane injection into the core is reduced by 57.06% and 54.08%, respectively, and the permeability of different cores is improved after the gas-wetting alteration. Also, the analyses of the 3D morphology and elements demonstrate that the gas-wetting adsorption layer has been formed on the core surface. These results indicate that the liquid is easier to peel from the core surface to improve the ability of transportation and distribution. Besides, this work also reveals the mechanism of gas-wetting alteration so that it can be better applied to other oil fields and engineering fields.
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