非常规气/凝析气藏水力压裂井凝析液漏出效应实例研究

Ali Alsultan, J. Shaoul, Jason Park, P. Zitha
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摘要

凝析气库是凝析气藏生产作业中的一个主要问题。由于压力降至露点以下,近井区液体饱和度增加,降低了井的产能和产出的凝析气比(CGR)。本文研究了凝析油堆积对超低渗透(0.001 ~ 0.1 mD)凝析气藏水力压裂井产能的影响。通过详细的油藏数值模拟,研究了不仅在裂缝面附近,而且在大范围内发生凝析液滴出的情况。利用商业成分模拟器在裂缝周围进行局部网格细化(LGR),量化由于储层压力下降而导致的凝析油漏失及其对油井产能指数(PI)的影响。研究了产气量和储层渗透率的影响。数值模拟结果表明,由于储层衰竭过程中压力下降,在大储层体积上流体成分和相对渗透率发生了显著变化。研究结果进一步说明了理解“非常规”凝析气藏水力压裂井PI演化的复杂性,并说明了如何在这种情况下正确评估裂缝性能。我们的研究结果和新方法有助于更准确地预测骨折后的表现。它们不仅可以帮助我们更好地了解井筒和裂缝附近以及储层深处的油气相变化,这在非常规凝析气藏中是至关重要的。通过提高生产工程师对天然气和凝析油产量的预测能力,可以实现水平井裂缝间距和直井开发井间距的优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Case Study of Condensate Dropout Effect in Unconventional Gas/Condensate Reservoirs with Hydraulically Fractured Wells
Condensate banking is a major issue in the production operations of gas condensate reservoirs. Increase in liquid saturation in the near-wellbore zone due to pressure decline below dew point, decreases well deliverability and the produced condensate-gas ratio (CGR). This paper investigates the effects of condensate banking on the deliverability of hydraulically fractured wells producing from ultralow permeability (0.001 to 0.1 mD) gas condensate reservoirs. Cases where condensate dropout occurs over a large volume of the reservoir, not only near the fracture face, were examined by a detailed numerical reservoir simulation. A commercial compositional simulator with local grid refinement (LGR) around the fracture was used to quantify condensate dropout as a result of reservoir pressure decline and its impact on well productivity index (PI). The effects of gas production rate and reservoir permeability were investigated. Numerical simulation results showed a significant change in fluid compositions and relative permeability to gas over a large reservoir volume due to pressure decline during reservoir depletion. Results further illustrated the complications in understanding the PI evolution of hydraulically fractured wells in "unconventional" gas condensate reservoirs and illustrate how to correctly evaluate fracture performance in such a situation. The findings of our study and novel approach help to more accurately predict post-fracture performance. They provide a better understanding of the hydrocarbon phase change not only near the wellbore and fracture, but also deep in the reservoir, which is critical in unconventional gas condensate reservoirs. The optimization of both fracture spacing in horizontal wells and well spacing for vertical well developments can be achieved by improving the ability of production engineers to generate more realistic predictions of gas and condensate production over time.
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