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A Robust Steady-State Model for Flowing-Fluid Temperature in Complex Wells

机译:复杂井流动流体温度的鲁棒稳态模型

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This paper presents an analytic model for computing the wellbore-fluid-temperature profile for steady fluid flow. Although wells with constant-deviation angle can be handled with existing analytic models, complex well architectures demand rigorous treatment. For example, changing geothermal-temperature gradient and deepwater wells present significant challenges. Additionally, available analytic models rarely provide calculation methods for various required thermal parameters, such as the Joule-Thompson coefficient and fluid expansivity. The approach taken in this study entails dividing the wellbore into many sections of uniform thermal properties and deviation angle. The governing differential equation is solved for each section, with fluid temperature from the prior section as the boundary condition. This piecewise approach makes the model versatile, allowing step-by-step calculation of fluid temperature for the entire wellbore. We present simple, thermodynamically sound approaches for estimating thermal parameters. Good success is indicated when performance of the proposed model is compared with data from three wells; producing two-phase gas/oil mixture, single-phase oil, and single-phase gas. Sensitivity of the estimated fluid temperatures to various thermal properties is also examined using our model. Overall, the effects of Joule-Thompson coefficient and liquid expansivity are found to be significant.
机译:本文提出了用于计算稳定流体流动的井筒-流体温度曲线的解析模型。尽管可以使用现有的分析模型来处理具有恒定偏差角的井,但复杂的井结构需要严格的处理。例如,不断变化的地热温度梯度和深水井提出了重大挑战。此外,可用的分析模型很少提供各种所需热参数(如焦耳-汤普森系数和流体膨胀率)的计算方法。本研究采用的方法需要将井眼分为均匀热特性和偏角的许多部分。以前一部分的流体温度为边界条件,求解每个部分的控制微分方程。这种分段方法使模型具有通用性,可以逐步计算整个井眼的流体温度。我们提出了简单的,热力学上合理的方法来估算热参数。将所提模型的性能与三口井的数据进行比较,表明成功。生产两相气/油混合物,单相油和单相气体。还使用我们的模型检查了估计的流体温度对各种热特性的敏感性。总的来说,发现焦耳-汤普森系数和液体膨胀率的影响是显着的。

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