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一种用于深水钻井水基钻井液的温度敏感型聚合物流变改性剂。

A Temperature-Sensitive Polymeric Rheology Modifier Used in Water-Based Drilling Fluid for Deepwater Drilling.

作者信息

Wang Zhongyi, Sun Jinsheng, Zhang Kun, Lv Kaihe, Huang Xianbin, Wang Jintang, Wang Ren, Meng Xu

机构信息

Key Laboratory of Unconventional Oil & Gas Development, China University of Petroleum (East China), Ministry of Education, Qingdao 266580, China.

School of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China.

出版信息

Gels. 2022 May 30;8(6):338. doi: 10.3390/gels8060338.

Abstract

Rheology modifiers are essential for the flat rheology of water-based drilling fluids in deepwater. The low temperature thickening of deepwater water-based drilling fluids results in dramatic rheological changes in the 20-30 °C range. To address such problems, NIPAM with a self-polymerized product LCST of 32-35 °C was selected as the main body for synthesis. While introducing the hydrophilic monomer AM to enhance the thickening properties, the hydrophobic monomer BA was selected to reduce the LCST of the product. In this paper, a temperature-sensitive polymeric rheology modifier (PNBAM) was synthesized by emulsion polymerization using -isopropyl acrylamide, acrylamide, and butyl acrylate as monomers. The PNBAM was characterized using infrared spectroscopy (FT-IR), thermogravimetric analysis (TGA), and nuclear magnetic resonance hydrogen spectroscopy (NMR). The rheological properties, temperature resistance, and salt resistance of PNBAM in the base fluid (BF) were tested. The performance of PNBAM in the drilling fluid system was also evaluated, and a water-based drilling fluid system of flat rheology for deepwater was formulated. The rheological modification mechanism of PNBAM was analyzed by turbidity analysis, particle size analysis, and zeta analysis. Experimental results show that PNBAM has good rheological properties. PNBAM is temperature resistant to 150 °C, salt-resistant to 30 wt%, and calcium resistant to 1.0 wt%. PNBAM also has good flat rheology characteristics in drilling fluid systems: AV:AV = 1.27, PV:PV = 1.19. Mechanistic analysis showed that the LCST (Lower Critical Solution Temperature) of 0.2 wt% PNBAM in an aqueous solution was 31 °C. Through changes in hydrogen bonding forces with water, PNBAM can regulate its hydrophilic and hydrophobic properties before and after LCST, which thus assists BF to achieve a flat rheological effect. In summary, the temperature-sensitive effect of PNBAM has the property of enhancing with increasing temperature. While the tackifying effect of conventional rheology modifiers diminishes with increasing temperature, the temperature-sensitive effect of PNBAM gives it an enhanced thickening effect with increasing temperature, making it a more novel rheology modifier compared to conventional treatment additives. After LCST, compared to conventional rheology modifiers (XC), PNBAM has a more pronounced thermo-thickening effect, improving the main rheological parameters of BF by more than 100% or even up to 200% (XC less than 50%). This contributes to the flat rheology of drilling fluids. PNBAM has good application prospects and serves as a good reference for the development of other rheology modifiers.

摘要

流变改性剂对于深水水基钻井液的平坦流变特性至关重要。深水水基钻井液的低温增稠导致在20 - 30°C范围内出现显著的流变变化。为解决此类问题,选择最低临界溶液温度(LCST)为32 - 35°C的N - 异丙基丙烯酰胺(NIPAM)作为合成主体。在引入亲水性单体丙烯酰胺(AM)以增强增稠性能的同时,选择疏水性单体丙烯酸丁酯(BA)来降低产物的LCST。本文以N - 异丙基丙烯酰胺、丙烯酰胺和丙烯酸丁酯为单体,通过乳液聚合法合成了一种温敏型聚合物流变改性剂(PNBAM)。采用红外光谱(FT - IR)、热重分析(TGA)和核磁共振氢谱(NMR)对PNBAM进行了表征。测试了PNBAM在基液(BF)中的流变性能、耐温性和耐盐性。还评估了PNBAM在钻井液体系中的性能,并配制了一种用于深水的平坦流变水基钻井液体系。通过浊度分析、粒度分析和zeta电位分析对PNBAM的流变改性机理进行了分析。实验结果表明,PNBAM具有良好的流变性能。PNBAM耐温达150°C,耐盐达30 wt%,耐钙达1.0 wt%。PNBAM在钻井液体系中也具有良好的平坦流变特性:表观粘度(AV)比为1.27,塑性粘度(PV)比为1.19。机理分析表明,0.2 wt%的PNBAM在水溶液中的LCST为31°C。通过与水之间氢键力的变化,PNBAM可以在LCST前后调节其亲水和疏水性能,从而帮助基液实现平坦流变效果。综上所述,PNBAM的温敏效应具有随温度升高而增强的特性。与传统流变改性剂随温度升高增稠效果减弱不同,PNBAM的温敏效应使其随温度升高增稠效果增强,使其成为一种比传统处理剂更具创新性的流变改性剂。在LCST之后,与传统流变改性剂(XC)相比,PNBAM具有更显著的热增稠效应,使基液主要流变参数提高超过100%甚至高达200%(XC小于50%)。这有助于实现钻井液的平坦流变。PNBAM具有良好的应用前景,可为其他流变改性剂的开发提供良好参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d83/9222916/d12d79bb647c/gels-08-00338-g001.jpg

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