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Analytical Downhole Temperature Model for Coiled Tubing Operations

机译:卷管操作分析井下温度模型

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The detailed modeling of temperature and friction for coiled tubing(CT)operations is especially important in extended-reach wells. Although the fluid flow through the CT and annulus,downhole temperature,and the CT mechanical friction inside the well are crucial during CT operations,a mathematical model that captures all these effects does not currently exist. In a separate study,we propose a new temperature-dependent coefficient of friction correlation,based on an extensive in-house experimental data set.In the current study we implement this correlation in a thermal well flow model.The model includes transient single-phase mass,momentum,and energy balance equations for the CT and annulus.Heat exchange between tubing and annulus and between annulus and formation as well as heat generated by CT mechanical friction while sliding inside the well are included in the model.Frictional pressure drops due to the fluid flowing downwards through the tubing and upwards through the annulus are also included in the momentum equations.The formation temperature is assumed to be geothermal.Although the model is aimed specifically at CT operations,it can easily be extended to other applications where thermal multiphase well flow in tubing and annulus is important. We proceed by first presenting two analytical solutions for tubing and annulus temperature under various assumptions(similar solutions have been previously obtained for drilling operations).We then describe the use of one of these solutions,which allows for space-dependent fluid density and velocity and time-and space-dependent temperature inside the tubing and the annulus.The analytical model is verified against the corresponding numerical model that solves the full mass,momentum,and energy conservation equations and is validated against a Distributed Temperature Sensing(DTS)field case.Close agreement is obtained for the cases presented.A synthetic case that shows the effect of several key downhole parameters on tubular and annular temperature is also presented.We show that temperature distribution inside the well is important for best prediction of an average coefficient of friction for the entire well.For instance,the generic coefficient of friction of 0.24 that is currently used in the planning of CT operations does not apply for similar CT strings in wells with different downhole temperatures.The overall procedure is therefore very well suited for use in thermal simulation of CT operations.
机译:温度和摩擦连续油管(CT)的操作的详细的建模是在延长位移井尤其重要。虽然通过CT和环,井下温度,并在井内的CT机械摩擦流体流动过程中CT业务,建立数学模型捕捉所有这些影响目前不存在是至关重要的。在另一项研究中,我们提出的摩擦相关的一个新的温度依赖系数,基于set.In当前的研究中,我们在热执行这种相关性以及流动model.The模型的广泛的内部实验数据包括瞬时单相质量,动量,以及用于CT和管和环和环和地层之间的间annulus.Heat交换能量平衡方程以及同时在阱内被包括在model.Frictional压力滑动通过CT机械摩擦产生的热降低由于通过管道向上穿过环形空间中的流体流动的向下也被包括在该动量equations.The地层温度被假定为geothermal.Although模型是在CT操作专门针对,它可以容易地扩展到其他应用中的热多相井管流和环是很重要的。我们继续通过第一呈现两个解析解为下各种假设管和环带的温度(类似的解决方案已经为在钻井操作先前已获得)。我们然后描述了使用这些解决方案中的一个的,这允许空间依赖流体密度和速度以及时间和所述管内部空间依赖性,温度和annulus.The分析模型针对相应的数值模型,它解决了充分的质量,动量和能量守恒方程,并且针对分布式温度传感(DTS)字段的情况下验证验证。对于例获得了接近于协议presented.A合成的情况下示出的上管状的,并且环状温度几个关键井下参数的效果也显示presented.We井内是用于摩擦的平均系数的最佳预测重要的是,温度分布整个well.For实例,0.24当前在使用的摩擦系数一般CT行动的规划并不适用于井类似CT串用不同的井下temperatures.The整个过程因此非常适合在CT操作的热模拟使用。

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