Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7842003 | Journal of Molecular Liquids | 2018 | 24 Pages |
Abstract
Attributing to its advantages including no residue, low friction and complete gel breaking, viscoelastic surfactant (VES) fracturing fluids are attracting more and more attention. However, high price and high consumption restrict the wide applications of VES. SiO2 nanoparticle-assisted VES fracturing fluid (NAVES) with low concentration is proposed in this study. The NAVES system consisting of 1% EDAA and 0.01% SiO2 maintains a shear viscosity of above 33â¯mPa·s at 70â¯Â°C for 2â¯h; in contrast, the viscosity of a 1% EDAA (VES) solution is 24â¯mPa·s at 70â¯Â°C for 2â¯h. This could be attributing to the formation of a strong dynamic network structure, in which the surfactant micelles attach to the surface of SiO2 nano-particles that are negatively charged through electrostatic interactions. The pseudo-crosslinking between the SiO2 and micelles also improves the shear resistance and relaxation time of the VES, without affecting the gel breaking performance. The NAVES system could break completely within 100â¯min, as reflected by the fact that its viscosity decreased to less than 3â¯mPa·s. The settling rate of quartz sand in an EDAA/SiO2 system at 25â¯Â°C was 0.0021â¯cm/s, which was lower than that of traditional VES fracturing fluid. Therefore, NAVES could serve as a low-concentration hydraulic fracturing fluid. In addition, the current study provides a cost-effective approach for hydraulic fracturing.
Related Topics
Physical Sciences and Engineering
Chemistry
Physical and Theoretical Chemistry
Authors
Hairong Wu, Qiong Zhou, Derong Xu, Renxian Sun, Pengyi Zhang, Baojun Bai, Wanli Kang,