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一种超高盐疏水缔合聚合物作为压裂液体系的流变特性

Rheological properties of an ultra-high salt hydrophobic associated polymer as a fracturing fluid system.

作者信息

Gao Jinhao, Zhang Guanghua, Wang Lei, Ding Li, Shi Huaqiang, Lai Xiaojuan, Wen Xin, Ma Shaoyun, Huang Chuanqing

机构信息

Shaanxi Key Laboratory of Chemical Additives for Industry, Shaanxi University of Science and Technology Xi'an 710021 Shaanxi China

National Engineering Laboratory for Exploration and Development of Low-Permeability Oil & Gas Fields, Changging Oil Field, PetroChina China.

出版信息

RSC Adv. 2019 May 15;9(27):15246-15256. doi: 10.1039/c9ra01725a. eCollection 2019 May 14.

Abstract

Herein, a novel ultra-high salt hydrophobic associated polymer, UUCPAM, was prepared using acrylamide, acrylic acid, 2-acrylamide-2-methyl propane sulfonic acid and the hydrophobic monomer UUC. Polymerization exothermic test results indicated that the increase in the hydrophobic monomer content led to an increase in the exothermic time, which is considerably conducive to the formation of hydrophobic structures. The scanning electron microscopy and transmission electron microscopy studies showed that the polymer had complex network structures and that this phenomenon was considerably obvious in NaCl solution. The fluorescence probe experiment verified that the critical association concentration of this polymer decreased with an increase in the hydrophobic monomer. Rheology studies indicated that the polymer had good temperature and shear resistance in NaCl solution. Moreover, the apparent viscosity of the polymer remained above 80 mPa s when 0.3 wt% UUCPAM was added at 170 s in 20 000 mg L NaCl solution at 90 °C. The storage modulus that indicated strong elasticity increased with an increase in the polymer concentration. Meanwhile, the number of hydrophobic micro-zones increased, thus forming dense network structures. Therefore, the polymer was found to have excellent salt resistance and extensive application prospects.

摘要

在此,使用丙烯酰胺、丙烯酸、2-丙烯酰胺-2-甲基丙磺酸和疏水性单体UUCP制备了一种新型超高盐疏水缔合聚合物UUCPAM。聚合放热测试结果表明,疏水性单体含量的增加导致放热时间延长,这对疏水结构的形成非常有利。扫描电子显微镜和透射电子显微镜研究表明,该聚合物具有复杂的网络结构,且在NaCl溶液中这种现象非常明显。荧光探针实验证实,该聚合物的临界缔合浓度随疏水性单体的增加而降低。流变学研究表明,该聚合物在NaCl溶液中具有良好的温度和剪切耐受性。此外,在90℃的20000mg/L NaCl溶液中,当在170s时添加0.3wt%的UUCPAM时,聚合物的表观粘度保持在80mPa·s以上。表明强弹性的储能模量随聚合物浓度的增加而增加。同时,疏水微区数量增加,从而形成致密的网络结构。因此,发现该聚合物具有优异的耐盐性和广阔的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/114d/9064263/b63b958164f9/c9ra01725a-f1.jpg

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