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Effect of Charge Density of Reverse Emulsion Breaker on Demulsification Performance for Steam-Assisted Gravity Drainage(SAGD) Emulsions under High Temperature and High Pressure

机译:逆向乳液断路器电荷密度对高温高压下蒸汽辅助重力引流(SAGD)乳液的破乳性能的影响

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摘要

Reverse emulsion breakers (REBs) play a crucial role in the demulsification of complex water-in-oil-in-water (W/O/W) emulsions in steam-assisted gravity drainage (SAGD) production of oil sands. Developing effective REBs remains challenging due to the poor understanding of influencing factors and demulsification mechanisms. In particular, despite the recognition of the vital role of charge density of the REBs in their demulsification performance, the available literature is limited. Herein, we investigated the correlation between the charge density of commercial REBs and their demulsification performance for complex emulsions under simulated SAGD operation conditions (100–200 °C and 0.3–1.4 MPa) by employing an in-house-built bottle test system. It is demonstrated that a high charge density of the REBs not only promotes the qualities of produced water and oil but also significantly accelerates the speed of oil/water phase separation. At the microscale, the REB with a high charge density is capable of reducing the amount and size of residual oil droplets in produced water. The interactions of the species involved during the demulsification process were investigated by employing multiple techniques including optical microscopy imaging, ζ potential measurement, and dynamic light scattering. The results suggest that the cationic REBs are adsorbed at the oil/water interface, neutralize negative surface charge of oil droplets, and replace interface-active species originally present at the oil/water interface. Multilayer adsorption of REBs may be generated after demulsification, and the adsorbed REBs could partially desorb from the surface of oil droplets with increasing temperature. This work has delineated the influence of the charge density of REBs on their demulsification performance and improved the fundamental understanding of the interactions of the constituent species in SAGD emulsions and REBs, which provides useful information on the development and applications of efficient and cost-effective chemicals in oil sands exploitation and emulsion treatment.
机译:逆转乳液断路器(REBS)在蒸汽辅助重力引流(SAGD)生产油砂中的复杂水包内(W / O / W)乳液的破乳中起至关重要的作用。由于对影响因素和破坏机制的理解差,发展有效的REBS仍然具有挑战性。特别是,尽管识别在其破产性能下充电密度的充电密度至关重要的作用,但可用的文献是有限的。在此,我们通过采用内置内置的瓶子测试系统,研究了商业REBS的电荷密度和它们的破乳性能与其在模拟的SAG运行条件下的复杂乳液(100-200°C和0.3-1.4MPa)之间的相关性。结果证明,REBS的高电荷密度不仅促进生产的水和油的质量,而且还显着加速了油/水相分离的速度。在微观尺寸下,具有高电荷密度的REB能够降低产水中残留油滴的量和尺寸。通过采用多种技术研究了在破乳过程中所涉及的物种的相互作用,包括光学显微镜成像,潜能测量和动态光散射。结果表明,阳离子REBS被吸附在油/水界面,中和油滴的负面表面电荷,并更换最初存在于油/水界面的界面活性物质。在破乳后可以产生多层吸附REBS,并且吸附的REBS可以部分地从油滴的表面下解吸,随着温度的增加。这项工作已经阐述了REBS充电密度对破乳性能的影响,并改善了对SAGD乳液和REBS中组成种的相互作用的基本理解,提供了有关高效且经济高效的化学品的开发和应用的有用信息油砂剥削和乳液处理。

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  • 来源
    《Energy & fuels》 |2020年第11期|13893-13902|共10页
  • 作者单位

    Department of Chemical and Materials Engineering University of Alberta;

    Department of Chemical and Materials Engineering University of Alberta;

    Department of Chemical and Materials Engineering University of Alberta;

    Department of Chemical and Materials Engineering University of Alberta;

    ChampionX;

    ChampionX;

    Department of Chemical and Materials Engineering University of Alberta;

    Department of Chemical and Materials Engineering University of Alberta;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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