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Disjoining Pressure and Gas Condensate Coupling in Gas Condensate Reservoirs

机译:凝析气藏中压力与凝析气的分离

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Pore-scale coupled flow of gas and condensate is believed to be the main mechanism for condensate production in low interfacial tension (IFT) gas condensate reservoirs. While coupling enhances condensate flow due to transport of condensate lenses by the gas, it dramatically reduces gas permeability by introducing capillary resistance against gas flow. In this study, a dynamic wetting approach is used to investigate the effect of viscous resistance, IFT and disjoining pressure on pore-scale coupling of gas and condensate. Disjoining pressure arises from van der Waals interactions between gas and solid through thin liquid films, e.g., condensate films on pore walls. Low values of IFT and small pore diameters, as involved in many gas condensate reservoirs, give rise to importance of disjoining pressure. Calculations show that disjoining pressure postpones gas condensate coupling to higher condensate flow fractions-from about 0.08 for vanishing disjoining effect to more than 0.16 for strong disjoining effect. Results also suggest that strong disjoining effect will result in higher gas relative permeability after coupling. Finally, the positive rate effect on gas permeability is only observed when disjoining effects are weak.
机译:气孔和凝结水的孔隙尺度耦合流动被认为是低界面张力(IFT)凝结水储层中凝结水生产的主要机理。虽然耦合通过气体传输冷凝透镜来增强冷凝流,但通过引入抵抗气流的毛细管阻力,它大大降低了气体渗透率。在这项研究中,使用动态润湿方法来研究粘性阻力,IFT和分离压力对气体和冷凝物孔隙尺度耦合的影响。气体和固体之间通过薄液膜(例如,孔壁上的冷凝液膜)之间的范德华相互作用而产生分离压力。 IFT值低且孔径小,这与许多气体凝析气藏有关,因此需要分离压力。计算表明,分离压力使气体冷凝物的耦合延迟到较高的冷凝水流率,从0.08(消失消失)到大于0.16(强烈分离)。结果还表明,强解离作用将导致耦合后较高的气体相对渗透率。最后,仅当分离作用较弱时才能观察到对气体渗透率的正速率效应。

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