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Cuttings-liquid frictional pressure loss model for horizontal narrow annular flow with rotating drillpipe

机译:旋转钻杆水平窄环形流动的切割 - 液体摩擦压力损失模型

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During oil and gas drilling operations, frictional pressure loss is experienced as the drilling fluid transports the drilled cuttings from the bottom-hole, through the annulus, to the surface. Estimation of these pressure losses is critical when designing the drilling hydraulic program. Two-phase frictional pressure loss in the annulus is very difficult to predict, and even more complex when there is drillpipe rotation. Accurate prediction will ensure that the correct equivalent circulating density (ECD) is applied in the wellbore to prevent formation fracture, especially in formations with narrow window between the pore pressure and fracture gradient. Few researchers have attempted to propose cuttings-liquid frictional pressure loss models, nevertheless, these models fail when they are applied to narrow wellbores such as in casing-while-drilling and slimhole applications. This study proposes improved cuttings-liquid frictional pressure loss models for narrow horizontal annuli with drillpipe rotation using Dimensional Analysis. Both Newtonian and non-Newtonian fluids were considered. The proposed model constants were fitted by generated data from a full-scale simulation study using ANSYS-CFX. The models showed improvement over existing cuttings-liquid pressure loss correlations in literature.
机译:在油气钻孔操作期间,由于钻井流体将钻孔的切割从底孔,通过环,表面传送到表面,因此经历了摩擦压力损失。在设计钻井液压程序时,这些压力损失的估计至关重要。环形中的两相摩擦压力损失是非常难以预测的,并且当有钻石旋转时甚至更复杂。精确的预测将确保在井筒中施加正确的等效循环密度(ECD)以防止形成骨折,尤其是在孔隙压力和裂缝梯度之间具有窄窗口的形成。少数研究人员试图提出切屑 - 液体摩擦压力损失模型,然而,当它们施加到狭窄的井筒等套管钻孔和石窟应用时,这些模型失效。本研究提出了利用尺寸分析改进了钻灯旋转的窄水平云的切屑 - 液体摩擦压力损失模型。考虑了牛顿和非牛顿液体。通过使用ANSYS-CFX的全规模仿真研究,所提出的模型常数被生成的数据。该模型显示出在文献中的现有切屑液压力损失相关性的改善。

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