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Novel Insights into the Pore-Scale Mechanism of Low Salinity Water Injection and the Improvements on Oil Recovery

机译:低盐度注水的孔隙尺度机制的新洞察力及石油回收改善

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摘要

The long-held industry view that the Low Salinity Effect (LSE) depends mainly on rock-fluid interactions has led to failures and successes that can be explained by fluid-fluid interactions. Therefore, elevating our knowledge about the microscopic interactions occurring in the crude oil/brine/rock system appears to be of paramount importance. This paper chooses to outline various analytical tools in combination with a microfluidic instrument (Micromodel) to identify these interactions at simulated reservoir conditions for the first time (temperature and pressure of 50 degrees C and 2000 psi). In this study, six crude oil samples have undergone testing for microdispersion quantification and surface charge evaluation. Microdispersion is a term referring to the spontaneous formation of water clusters (in micrometer sizes) within the crude oil during low salinity water injection (LSWI), which will be elaborated in this study. Despite all samples showing the same trend regarding the negative surface charges, they showed an entirely different propensity toward formation of water microdispersion. The analysis of the oil/water interface by Fourier-transform infrared spectroscopy (FT-IR) led to the understanding that conjugated acidic compounds within the crude oil are the main compounds for the creation of water microdispersions. The Micromodel results revealed the predominant role of microdispersions in oil swelling and wettability alteration in a porous medium leading to an increase in the microscopic sweeping efficiency, thus leading to improved oil recovery. Also highlighted is the pivotal importance of water microdispersion as a screening method for oil reservoirs before waterflooding operation.
机译:长持有的行业视图,即低盐度效果(LSE)主要取决于岩石流体相互作用导致了可以通过流体流体相互作用来解释的故障和成功。因此,提升我们关于原油/盐水/岩石系统中发生的微观相互作用的知识似乎是至关重要的。本文选择概述各种分析工具与微流体仪器(MicroModeL)组合,以识别模拟储层条件下的这些相互作用第一次(温度和50℃和2000 psi的压力)。在本研究中,六种原油样品经历了对微分散量化和表面电荷评估的测试。微分散是一种术语,其参考在低盐度注水期间原油(LSWI)内的水簇(MIM计尺寸)的自发形成,这将在本研究中阐述。尽管所有样品显示出对负面收费的相同趋势,但它们朝着形成水微二分裂的形成完全不同的倾向。通过傅里叶变换红外光谱(FT-IR)对油/水界面的分析导致了原油内缀合的酸性化合物是制造水微管的主要化合物。微模型结果表明,多孔介质中的微分子溶胀和润湿性改变的主要作用导致显微扫描效率的增加,从而提高了溢油。还强调的是水微量分散作为水储油前的筛选方法的枢转重要性。

著录项

  • 来源
    《Energy & fuels》 |2020年第10期|12050-12064|共15页
  • 作者单位

    Heriot Watt Univ Ctr Enhanced Oil Recovery & CO2 Solut Edinburgh Midlothian Scotland;

    Heriot Watt Univ Ctr Enhanced Oil Recovery & CO2 Solut Edinburgh Midlothian Scotland;

    Heriot Watt Univ Ctr Enhanced Oil Recovery & CO2 Solut Edinburgh Midlothian Scotland;

    Heriot Watt Univ Ctr Enhanced Oil Recovery & CO2 Solut Edinburgh Midlothian Scotland;

  • 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
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:25:00

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