气井液体加载瞬态行为的计算流体动力学模拟

M. Khaled, M. A. Rahman, Ibrahim Hassan, Rasel A. Sultan, R. Hasan
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引用次数: 2

摘要

液体载荷是气井中主要的流动保障挑战之一,它会导致生产问题并降低最终采收率。液体负荷被定义为油井无法将所有的产液送入油管。这导致液体在井中积聚,导致井底压力升高,气体流速下降。尽管对液体加载现象进行了许多研究,但现有的模型通常缺乏捕捉气井中液体加载瞬态行为的能力。我们利用Ansys Fluent 19.1 R3版本开发了计算流体动力学(CFD)模型来模拟液体加载的瞬态特征。在这项研究中,CFD模型的建立和验证使用了来自德克萨斯A&M大学42米长垂直管道实验室的数据。采用欧拉多相法结合流体体积法(VOF) -可实现k-Є湍流闭合的多流体VOF模型来研究流体的流动特性。此外,采用六面体网格,并与四面体网格进行比较,以测试精度和计算时间。所建立的CFD模型具有独特的参数组合,与实验结果吻合较好。采用六面体网格可以提高模型精度和计算时间。液膜流动逆转机制有望成为气井液荷的根本原因,而不是液滴回落机制。CFD模型捕捉了从一个阶段到另一个阶段的过渡,这对于确定井的最终寿命至关重要。该模型的新颖性是基于其作为一种可靠的预测工具的能力,该工具可以帮助修复液体载荷,并精确地表示气井中液体载荷的瞬态行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Fluid Dynamics Simulation of the Transient Behavior of Liquid Loading in Gas Wells
Liquid loading is one of the major flow assurance challenges in gas wells, causing production problems and reducing the ultimate recovery. Liquid loading is defined as the inability of a well to carry all the co-produced liquid up the tubing. This leads to liquid accumulation in the well resulting in increased bottomhole pressure and decline of gas flow rate. Although many studies have been performed on liquid loading phenomena, available models generally lack the ability to capture transient behavior of liquid loading in gas wells. We have developed a computational fluid dynamics (CFD) model using Ansys Fluent 19.1 R3 version to model the transient features of liquid loading. In this study, the CFD model is developed and validated with data from 42 meter long vertical pipe lab at Texas A&M University. The Eulerian multiphase approach combined with volume of fluid approach (VOF) - Multi-fluid VOF model with realizable k-Є turbulence closure is used to study the flow behavior. In addition, hexahedral mesh is utilized and compared to tetrahedron mesh to test accuracy and computational time. The developed CFD model has unique parameters combinations that shows an acceptable agreement with the experimental work. Model accuracy and computational time is improved by using hexahedral mesh. Liquid film flow reversal mechanism is expected to be the root cause of liquid loading in gas wells rather than droplet fall back mechanism. The CFD model captures the transition from one phase to another that is crucial for determining well end life. Model novelty is based on the ability to be a reliable predictive tool that can help in the remediation of liquid loading and give a precise representation of liquid loading transient behavior in gas wells.
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