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Determination of equivalent circulating density of drilling fluids in deepwater drilling

机译:深水钻井中钻井液当量循环密度的测定

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Evaluation of bottom-hole pressure is a critical concern for high-pressure/high temperature (HP/HT) and deepwater drilling operations. Accurate determination of drilling fluid temperature and pressure is a key step for the prediction of fluid density. A simulator was developed to calculate the wellbore temperature and pressure during circulation and static conditions. The simulation includes effects of various operational parameters, such as rate of penetration, fluid loss as well as pump rate schedules. The mathematical model of heat transfer was developed for a deviated offshore well profile to make the algorithm flexible for different applications. The upwind numerical discretization scheme is used for determination of temperature profile. The temperature prediction of the model was verified with available analytical models for a vertical onshore well. The hydraulic model employs the yield power-law theology model. The local density of drilling fluid as a function of temperature and pressure is evaluated using the available PVT correlations. It is shown that when mud circulation stops, the equivalent static density slightly increases with time. The results of simulation also indicate that during circulation, a higher equivalent circulating density is expected as compated to the case of constant fluid density. The results of the developed method are compared with downhole temperature and pressure data in an offshore well. The comparison indicates that the developed model has a good accuracy to track the bottom-hole circulating temperature and pressure. The proposed method can be integrated into various parts of a drilling simulator such as hydraulic design, wellbore stability and well control. (C) 2016 Elsevier B.V. All rights reserved.
机译:评估井底压力是高压/高温(HP / HT)和深水钻井作业的关键问题。准确确定钻井液的温度和压力是预测流体密度的关键步骤。开发了一个模拟器来计算循环和静态条件下的井眼温度和压力。该模拟包括各种操作参数的影响,例如渗透率,流体损失以及泵速表。针对偏斜的海上钻井剖面开发了传热数学模型,以使算法灵活适用于不同的应用。逆风数值离散方案用于确定温度曲线。该模型的温度预测已使用垂直陆上井的可用分析模型进行了验证。水力模型采用屈服幂律神学模型。使用可用的PVT相关性评估随温度和压力变化的钻井液的局部密度。结果表明,当泥浆循环停止时,当量静密度随时间而略有增加。模拟结果还表明,在循环过程中,与恒定流体密度的情况相比,期望有更高的等效循环密度。将开发的方法的结果与海上油井的井下温度和压力数据进行比较。比较表明,所开发的模型具有良好的跟踪井底循环温度和压力的精度。所提出的方法可以集成到钻井模拟器的各个部分,例如液压设计,井眼稳定性和井眼控制。 (C)2016 Elsevier B.V.保留所有权利。

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