水力压裂:致密气-凝析气藏中凝析物堆积效应的最佳补救措施

Ghaleb Al Habsi, S. Ghanbarzadeh, S. Motealleh, Badar Al Busafi
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引用次数: 3

摘要

富液气藏的可用净空(露点与储层压力之差)和压降情况会影响井筒附近的凝析液降出。虽然我们已经很好地了解了径向体系中漏液的影响,但在低渗储层中加入水力裂缝会使储层的饱和度剖面变得复杂。在垂直致密砂岩井中进行大规模水力压裂增加了有效的流动表面积,从数学上讲,可以将其视为放置长水平井以减少总体井排。这项工作表明,与基质岩石的额外接触可以在减轻或延缓由凝析油堆积引起的表皮影响方面发挥重要作用。本文介绍了非常规凝析气藏水力压裂井压力瞬态分析(PTA)的实例。详细分析PTA将讨论和解决使用分析和高分辨率的数值模型,其中组成多相流考虑。该数值模型对压裂前和压裂后的试井结果进行了历史匹配和微调。水力裂缝半长、裂缝导流能力和基质相对渗透率对凝析油堆积效应的影响将通过各种情景的数值模拟研究来解决。本文将论证水力压裂在减少凝析油烘烤对油井产能的影响以及由此推断对凝析气井长期经济价值的影响方面的价值。
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Hydraulic Fracturing: Best Remedy for Condensate Banking Effects in Tight Gas-Condensate Reservoirs
Available headroom (difference between dewpoint and reservoir pressure) in liquid rich gas reservoirs and drawdown scenario affect the condensate dropout near the wellbore. Although effects of the liquid dropout are well understood in radial system, addition of hydraulic fracture in the low perm reservoirs complicates the saturation profile in reservoirs. Massive hydraulic fracturing in vertical tight sand wells adds effective surface area to flow and can mathematically be considered as placing long horizontal wells to reduce overall well draw downs. This work shows that this additional contact with matrix rock, therefore, can play a major impact in mitigating or postponing the impact of skin caused by condensate banking. This paper presents a real case of Pressure Transient Analysis (PTA) for hydraulically fractured wells in unconventional gas-condensate reservoirs. Detailed analysis of PTA will be discussed and addressed using analytical and high-resolution numerical models in which compositional multi-phase flow is considered. The numerical model is history matched and fine-tuned on pre-frac and post-frac well test results. The impact of hydraulic fracture half-length, fracture conductivity and matrix relative permeability on condensate banking effects will be addressed via a numerical simulation study for various scenarios. The paper will demonstrate the value of hydraulic fracturing in reducing condensate baking effect on well productivity and, by inference, the impact on the long-term economic value of gas-condensate wells.
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