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Compositional Mixing Characteristics of Separate Gas and Oil Charges into Oil Field Reservoirs

机译:油田油藏分离气料的成分混合特征

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摘要

Many reservoirs worldwide received separate charges of primary biogenic gas and oil. In high pressure provinces such as the Gulf of Mexico, the added gas should be in solution if thoroughly mixed. In addition, this biogenic gas is easily differentiated from thermogenic gas by measurement of methane carbon isotopes and gas composition. Consequently, the extent of muting can be determined with accuracy, and the gas and oil mixing processes depend on specifics of reservoir charging and can lead to multiple outcomes. The conventional expectation is that the biogenic gas always precedes oil entry into the reservoir. Here, chemical evaluation of reservoir fluids coupled with reservoir understanding of several reservoirs establishes that the oil can arrive prior to biogenic gas. Seismic imaging of gas chimneys provides a plausible explanation for how this can occur. In addition, thermodynamic and geochemical evaluation of the reservoir fluids across the reservoir tightly constrains possible mixing processes. Simple reservoir simulation shows that excellent gas and oil mixing can occur over a wide range of conditions provided that the gas charges into the oil column at its bottom (at the oil-water contact). This modeling exhibits simple fluid mechanics expectations for this reservoir charging process. In addition, since the increase of solution gas destabilizes asphaltenes, fluid geodynamic processes are indicated that can lead to redistributions of asphaltenes. Evaluation of gas and oil mixing processes in reservoirs fits within the framework of the powerful new technical discipline, reservoir fluid geodynamics, for subsurface characterization.
机译:全世界许多油藏分别收取了初级生物气和石油的收费。在墨西哥湾等高压省份,如果充分混合,添加的气体应该在溶液中。此外,通过测量甲烷碳同位素和气体成分,可以很容易地将这种生物气体与生热气体区分开来。因此,可以准确地确定消融程度,并且天然气和石油混合过程取决于储层充注的具体情况,并可能导致多种结果。传统的预期是,生物气体总是先于石油进入储层。在这里,对储层流体的化学评估加上对几个储层的储层了解,确定石油可以在生物气之前到达。煤气烟囱的地震成像为这种情况的发生提供了合理的解释。此外,对整个储层流体的热力学和地球化学评估严格限制了可能的混合过程。简单的储层模拟表明,只要气体在其底部(油水接触处)充入油柱,就可以在很宽的条件下实现出色的气体和石油混合。该模型显示了对该储层充注过程的简单流体力学期望。此外,由于溶液气体的增加会破坏沥青质的稳定性,因此表明流体地球动力学过程可能导致沥青质的重新分布。油藏中天然气和石油混合过程的评估符合强大的新技术学科——储层流体地球动力学的框架,用于地下表征。

著录项

  • 来源
    《Energy & Fuels》 |2023年第11期|7760-7776|共17页
  • 作者单位

    Schlumberger-Doll Research, SLB, Cambridge, Massachusetts 02139, United States;

    NoviDigiTech, Katy, Texas 77449, UnitedStates;

    Schlumberger Technologies, Beijing 100084,ChinaSchlumberger-Doll Research, SLB,Cambridge, Massachusetts 02139, United StatesSLB, Houston, Texas 77042, UnitedStatesTabs Energy, Houston, Texas 77002, UnitedStatesTalos Energy, Houston, Texas 77002,United StatesThe University of Texas at Austin,Austin, Texas 78712, United StatesSchlumberger Information Solutions AS,1366 Lysaker, NorwaySchlumberger, Calgary, Alberta T2G 0P6, CanadaSchlumberger, Houston, Texas 77041, UnitedStates;

  • 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 英语
  • 中图分类
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