用阳离子或两性离子表面活性剂稳定CO2/水泡沫,在高盐度盐水中温度高达120°C

Chang Da, A. Elhag, Guoqing Jian, Leilei Zhang, Shehab Alzobaidi, Xuan Zhang, A. Sumaiti, S. Biswal, G. Hirasaki, K. Johnston
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引用次数: 11

摘要

由于表面活性剂在水相中的溶解度、起泡性和热稳定性有限,在高温和高盐度条件下,用表面活性剂稳定水(C/W)泡沫中的CO2具有挑战性。用二胺表面活性剂C16-18N(CH3)C3N(CH3)2 (Duomeen TTM)或两性离子表面活性剂十六烷基甜菜碱(cetyl betaine)在120℃的22%全固溶(TDS)盐水中形成粘弹性水相,C/W泡沫的表观粘度提高到35 cP。Duomeen TTM在pH ~6的水相中可以从非离子(非质子化胺)状态切换到阳离子(质子化胺)状态。因此,它既可以在水相中注入,也可以在CO2相中注入。两种表面活性剂的粘弹性相的形成降低了最小压力梯度(MPG),并通过使外部水相更具粘性来增强片层抗排水和奥斯特瓦尔德成熟,即使在非常高的泡沫质量下也能形成稳定的泡沫。这两种表面活性剂都具有优异的热稳定性,当与油(十二烷)混合时形成不稳定的乳液。岩心驱油结果表明,两种表面活性剂在4英尺/天的表面流速下很容易产生强泡沫。Duomeen TTM的油水分配系数(O/W)对pH值非常敏感,而十六烷基甜菜碱的油水分配系数在很大的pH值范围内是恒定的。单种热稳定表面活性剂在高温和高盐度条件下稳定C/W泡沫的能力,对提高采收率、二氧化碳封存和水力压裂等广泛应用都有很大的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CO2/Water Foams Stabilized with Cationic or Zwitterionic Surfactants at Temperatures up to 120 °C in High Salinity Brine
Stabilization of CO2 in water (C/W) foams with surfactants at high temperatures and high salinities is challenging, due to limited solubility of surfactants in aqueous phase, foamability and thermal stability. The apparent viscosities of C/W foams has been raised to up to 35 cP with viscoelastic aqueous phases formed with a diamine surfactant, C16-18N(CH3)C3N(CH3)2 (Duomeen TTM), or a zwitterionic surfactant, cetyl betaine, at 120 °C in 22% total-dissolved-solids (TDS) brine. Duomeen TTM is switchable from the nonionic (unprotonated amine) state, where it is soluble in CO2, to the cationic (protonated amine) state in an aqueous phase under pH ~6. Therefore, it may be injected in either the aqueous phase or the CO2 phase. The formation of viscoelastic phases with both surfactants lowers the minimum pressure gradient (MPG), and strengthens the lamella against drainage and Ostwald ripening by making the external aqueous phase more viscous, leading to stable foam even at very high foam quality. Both surfactants were shown to have excellent thermal stability and to form unstable emulsions when mixed with oil (dodecane). The core flood results showed that strong foam could be easily generated with both surfactants at a superficial velocity of 4 ft/day. The oil/water (O/W) partition coefficient of Duomeen TTM was very sensitive to pH, while that of cetyl betaine was constant over a wide range of pH. The ability to stabilize C/W foams at high temperature and salinity conditions with a single thermally stable surfactant is of great benefit to a wide range of applications including EOR, CO2 sequestration and hydraulic fracturing.
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