首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >DYNAMIC CUTTINGS SLIP VELOCITY EVALUATION IN NON-NEWTONIAN FLUIDS USING A TEMPERATURE DEPENDENT TRANSIENT DRIFT-FLUX MODEL FOR DIRECTIONAL WELLS
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DYNAMIC CUTTINGS SLIP VELOCITY EVALUATION IN NON-NEWTONIAN FLUIDS USING A TEMPERATURE DEPENDENT TRANSIENT DRIFT-FLUX MODEL FOR DIRECTIONAL WELLS

机译:利用定向井的温度相关瞬态漂移通量模型对非牛顿流体动态切割滑动速度进行评估

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The objective of drilling a well is to prepare a clean hole without obstructions for further casing and production tubing running. Cuttings transport has always been important, but challenging process, especially when drilling long directional wells. Poor hole cleaning causes severe problems, as stuck pipe, extreme torque and drag, difficulties in casing landing, cementing, etc. Extensive studies of cuttings transport, both theoretical and experimental, have been performed to estimate, for example, cuttings concentration and cuttings slip velocity to determine optimal conditions for effective hole cleaning. This paper presents a dynamic analysis of cuttings transport in non-Newtonian fluids based on a transient drift-flux model and an associated numerical scheme AUSMV (advection upstream splitting method) developed by Evje and Fjelde 2002. In this paper, the scheme is modified to simulate cuttings transport dynamically taking into account effects related to pressure, temperature and cuttings slip. During drilling, the heat is transported from the formation into the wellbore and up to the surface. In this paper, the energy balance is enhanced by introducing an analytical temperature model into the AUSMV scheme. The temperature distribution along the well is calculated at the beginning of simulation and kept constant throughout the simulation. Additionally, the AUSMV scheme is improved by considering drilling fluid's transport- and thermal properties. Transport properties of an oil-based mud, such as viscosity and density, are obtained from experiments. The experimental results were used to determine the coefficients in a linear density model used in the study to investigate the effect of non-Newtonian behavior on the heat transfer, cuttings transport and downhole pressure. Furthermore, a model to calculate the apparent viscosity at various pressures and temperatures was developed based on the experimental results and used to evaluate the impact of viscous forces on the cuttings distribution in the well. Presented numerical scheme solves dynamic cuttings transport problems taking into account the slip velocity variation with wellbore geometry, operational (controllable) parameters and formation properties. In comparison to the traditional steady-state models, the transient cuttings transport model with integrated depth-dependent parameters gives a possibility to achieve a more realistic simulation of cuttings transport, distribution and accumulation along the wellbore through the time.
机译:钻一口井的目的是准备一个干净的孔,没有障碍物,以便进一步套管和生产油管运行。钻屑运输一直很重要,但过程却极具挑战性,尤其是在钻长定向井时。不良的孔清理会导致严重的问题,例如卡住的管子,极高的扭矩和阻力,套管着陆困难,固井等。对钻屑运移进行了广泛的研究,包括理论上和实验上的估算,例如钻屑浓度和钻屑滑移确定有效清洁孔的最佳条件的速度。本文基于瞬变漂移通量模型和Evje和Fjelde 2002年开发的相关数值方案AUSMV(对流上游分裂方法),对非牛顿流体中的岩屑运移进行了动态分析。考虑与压力,温度和钻屑滑移有关的影响,动态模拟钻屑运输。在钻井过程中,热量从地层传输到井眼中,再到地表。在本文中,通过将分析温度模型引入AUSMV方案来增强能量平衡。沿井的温度分布在模拟开始时进行计算,并在整个模拟过程中保持恒定。另外,通过考虑钻井液的传输和热学性质来改进AUSMV方案。油基泥浆的传输特性(例如粘度和密度)可从实验中获得。实验结果用于确定线性密度模型中的系数,该模型用于研究非牛顿行为对传热,岩屑运移和井下压力的影响。此外,基于实验结果,开发了一种用于计算在各种压力和温度下的表观粘度的模型,该模型用于评估粘性力对井中钻屑分布的影响。提出的数值方案考虑了滑移速度随井眼几何形状,操作(可控制)参数和地层性质的变化,解决了动态钻屑运输问题。与传统的稳态模型相比,具有集成的深度相关参数的瞬态钻屑运移模型使实现随时间推移沿井眼的钻屑运移,分布和堆积的模拟更加现实的可能性。

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