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Analytical and numerical modeling reveals the mechanism of rock failure in gas UBD

机译:分析和数值模型揭示了天然气UBD中岩石破坏的机理

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摘要

Underbalanced drilling (UBD) has been proven to be an effective means of increasing drilling performance and minimizing formation damage. While UBD with gases (air, nitrogen, natural gas, etc.) gives the highest rate of penetration (ROP), addition of liquid phase significantly reduces ROP. The objective of this study was to understand the mechanism of rock failure that controls the ROP and use the gained knowledge to optimize gas UBD design. An analytical model was developed in this study to calculate the near-wellbore rock stresses induced by the bottom hole pressure and temperature. A numerical model with finite element method was used to verify the results from the analytical model. Both of the analytical model and the numerical model reveal that the rock stress in the bottom hole rock can change from compressive stress in over-balanced conditions to tensile stress in underbalanced conditions, depending on the bottom hole pressure. A new finding from this study is that the temperature-induced stresses in the bottom hole rock can contribute significantly to the stress unbalance and cause rock failure. This paper provides drilling engineers insight and understanding of rock failure mechanics, which are useful for designing bottom hole pressure and gas injection rate to improve UBD performance.
机译:欠平衡钻井(UBD)已被证明是提高钻井性能并最大程度降低地层损害的有效手段。虽然UBD与气体(空气,氮气,天然气等)的渗透率最高(ROP),但添加液相会显着降低ROP。这项研究的目的是了解控制ROP的岩石破坏机理,并利用所获得的知识来优化天然气UBD设计。在这项研究中开发了一个分析模型,以计算由井底压力和温度引起的近井岩层应力。使用有限元方法的数值模型来验证分析模型的结果。解析模型和数值模型都表明,取决于井底压力,井底岩石中的岩石应力可以从过度平衡状态下的压缩应力变为欠平衡状态下的拉伸应力。这项研究的一个新发现是,井底岩石中温度引起的应力会极大地造成应力不平衡并导致岩石破坏。本文为钻井工程师提供了对岩石破坏机理的见识和理解,这对于设计井底压力和注气速率以提高UBD性能很有用。

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