Bio-inspired superhydrophobic interface of nano-gaseous film for reducing injection pressure in oil reservoirs

纳米流体 润湿 纳米- 莲花效应 材料科学 阻力 纳米技术 肺表面活性物质 表面粗糙度 表面光洁度 纳米材料 化学工程 纳米颗粒 复合材料 工程类 接触角 化学 机械 有机化学 原材料 物理
作者
Zhongzheng Xu,Mingwei Zhao,Yiming Zhang,Pan Wang,Yining Wu,Lin Li,Xin Cui,Ning Sun,Caili Dai
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:454: 140393-140393 被引量:14
标识
DOI:10.1016/j.cej.2022.140393
摘要

Superhydrophobic wettability inspired by the “lotus effect” is an intriguing property in nature, but it is rarely applied in oilfield development. Superhydrophobic nanomaterials can effectively solve the problem of “high injection pressure and insufficient water injection” in low permeability oilfields by changing the properties of the core surface, which is of great significance to the development of low permeability oilfields. Herein, we report a novel type of superhydrophobic nanoparticle (SHNP) simply modified by fluorinated long chains, and a stable nanofluid is successfully prepared by compounding surfactant. The prepared SHNP nanofluid has an excellent core drag reduction effect, and the drag reduction rate is 1.35 times that of conventional NPs under the same conditions. The SHNPs assemble on the core surface to form a large number of micro/nanorough structures, which can effectively reduce the surface roughness of the core. The PIV experimental results show that compared with the injection of pure water, the center flow velocity in the subsequent water flooding center increases by 98.27% after the injection of SHNPs nanofluid (the flow velocity decreases by 53.45% after the injection of NPs). Moreover, bubble probe AFM technology has successfully shown that bubbles can be captured through the SHNPs superhydrophobic interface to form a gaseous film. By using the barrier effect of the gaseous film, the liquid-solid interface is converted to a liquid-gas-solid interface, thereby reducing the large resistance caused by the direct contact between the liquid and solid. Such SHNPs with simple modification and low cost have broad application potential in oilfield development.
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