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An Integrated Thermal and Multi-Phase Flow Model for Estimating Transient Temperature Dynamics During Drilling Operations

机译:一种用于估算钻井作业瞬态温度动态的集成热和多相流模型

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There is a growing need for comprehensive multi-phase hydraulic models that can accurately model more complex well control situations associated with the use of Managed Pressure Drilling (MPD) techniques, complex well geometries, High-Pressure High-Temperature (HPHT) conditions, riser gas unloading, etc. A new thermal model integrated with previously developed multi-phase hydraulics software is presented here to address this need. This de-coupled thermal model is added to a sophisticated multi-phase flow code to estimate the mud temperature in the drillstring and the annulus and in the formation adjacent to the well during complex well control situations. The model uses an explicit finite volume approach and solves the mixture energy equation for the wellbore fluids, assuming that all the phases are at thermal equilibrium. Heat transfer between the drillstring and the wellbore fluid, and between wellbore and formation is calculated using a thermal resistance network. Axial heat conduction in the mud and heat generation (e.g. at the bit) are accounted for. The steady-state results of the proposed thermal model are compared to the steady-state Hasan and Kabir model and commercial software. In addition, the transient, time-dependent temperature behavior during mud circulation is compared against the results of the commercial software. Results show a very good match for both steady-state and transient cases. Kick scenarios are simulated to show the importance of accurate temperature estimation of the drillstring and annulus fluids in HPHT conditions. Using advanced numerical schemes, a comprehensive model for heat transfer and energy storage in combination with a user-friendly Graphical User Interface (GUI) makes this model a robust tool for estimating the transient temperature profile of the mud and the formation. The model allows for evaluation of crucial parameters during well control, such as the wellbore pressure and temperature profiles, increased outflow and pit gain during kicks, gas thermodynamic behavior including solubility and unloading at low pressure conditions, gas rising velocity, and even temperature-dependent formation strength. These added features provided by the model come without loss of previous modeling capabilities, such as accounting for area discontinuity in the well and drillstring, gas dissolution in mud, non-Newtonian fluid rheology, MPD techniques, and arbitrary 3-D well trajectories.Details of the new model and the simulation approach are shared, and various applications of the new thermal modeling capability are illustrated.
机译:综合多相液压模型的需求越来越多,可以准确地模拟与使用管理压力钻孔(MPD)技术,复杂的井几何形状,高压高温(HPHT)条件,提升管相关联的复杂井控制情况气体卸载等。这里介绍了与先前开发的多相液压软件集成的新热模型以解决这一需求。将该解耦热模型添加到复杂的多相流代码中,以估计钻机和环的泥浆温度以及在复合井控制局势期间邻近井的形成。该模型使用明确的有限体积方法,并解决井筒流体的混合物能量方程,假设所有相位都处于热平衡。使用热阻网络计算钻弓和井筒流体之间的热传递以及井筒流体之间的热传递,以及井眼和地层之间。泥浆和发热中的轴向热传导(例如,在钻头上)。将所提出的热模型的稳态结果与稳态HASAN和KABIR模型和商业软件进行比较。另外,将泥浆循环期间的瞬态,时间依赖温度行为与商业软件的结果进行比较。结果显示稳态和瞬态案例非常好。模拟踢球场景以显示HPHT条件下钻头和环流体的精确温度估计的重要性。使用先进的数字方案,与用户友好的图形用户界面(GUI)结合使用先进的数字方案,使该模型成为估计泥浆和形成的瞬态温度曲线的鲁棒工具。该模型允许在井控制期间评估关键参数,例如井筒压力和温度曲线,在踢踢期间增加的流出和凹坑增益,气体热力学行为包括在低压条件下,气体上升速度,甚至温度依赖性形成力量。模型提供的这些增加的功能来没有损失以前的建模能力,例如井中的区域不连续性,摩擦,泥浆中的气体溶解,非牛顿流体流变学,MPD技术和任意3-D井轨迹。氘在新模型和仿真方法中,共享,并说明了新的热建模能力的各种应用。

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