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Dynamic analysis for two-phase vortex flow and optimization of vortex tools to unload liquid from gas wells

机译:两相涡流流动的动态分析及涡旋工具优化从气井卸载液体

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Vortex drainage gas recovery is a new technology to unload liquid from gas wells. However, its operating mechanism and efficiency are still not clearly understood, the dynamic analysis model in the wellbore two-phase vortex flow is still lacking. In this study, the forces of the liquid film in the wellbore gas-liquid vortex flow are analyzed based on the two-phase fluid dynamic theory. A dynamic analysis film model for prediction of the pressure drop in the wellbore two-phase vortex flow and the optimal helical angle of vortex tools is established. Besides, the physical simulation experimental facilities were set up and the wellbore two-phase vortex flow was obtained. Various parameters with vortex tools, including the wellbore pressure drop, the operating envelope and the critical flow rate, were examined. The influences of structure parameters of vortex tools on the drainage effect were analyzed. These structure parameters include the flow section of the flow channel, the leak-tightness around the flow channel and the helical angle. The vortex tool which has the best drainage effect was chosen and tested, and the extent of reduction of the critical flow rate with the optimal vortex tool was determined. Then, a liquid loading gas well in the field was chosen. Vortex tools were optimized and used in the wellbore of the gas well. The dynamic analysis model is verified by the experiment and field test. The results show that the dynamic analysis model of the liquid film in the wellbore two-phase vortex flow is reasonable. The effectiveness of vortex tools can be improved by enhancing the leak-tightness on both sides of the flow channel and reducing the flow section of the flow channel. After installing the optimal vortex tool, the wellbore pressure drop decreased by about 9.6%, the liquid flow rate increased by about 12.4% and the critical flow rate decreased by about 20%. The helical angle of the vortex tool has an optimal value, which can be calculated by using the dynamic analysis model. Research results may provide theoretical guidance for the optimization and design of vortex tools.
机译:Vortex排水气体回收是一种从煤气井卸下液体的新技术。然而,其操作机制和效率仍未清楚地理解,井筒两相涡流流动的动态分析模型仍然缺乏。在该研究中,基于两相流体动态理论分析了井眼气液涡流中的液膜中的力。建立了一种动态分析膜模型,用于预测井筒两相涡流流动中的压降和涡旋工具的最佳螺旋角度。此外,设立了物理仿真实验设施,并获得了井筒两相涡流流动。检查各种参数,涡旋工具,包括井筒压降,操作包络和临界流量。分析了涡旋工具结构参数对排水效果的影响。这些结构参数包括流动通道的流动部分,流动通道周围的泄漏性和螺旋角度。选择和测试具有最佳排水效果的涡旋工具,并确定具有最佳涡流工具的临界流速的降低程度。然后,选择在该领域中的液体加载气体井。涡旋工具优化并在气体的井筒中使用。通过实验和现场测试验证动态分析模型。结果表明,井筒两相涡流中液膜的动态分析模型是合理的。通过增强流动通道两侧的泄漏密封性并减小流动通道的流动部分,可以提高涡旋工具的有效性。安装最佳涡旋工具后,井筒压降下降约9.6%,液体流速增加约12.4%,临界流量降低约20%。涡旋工具的螺旋角度具有最佳值,可以通过使用动态分析模型来计算。研究结果可以为涡旋工具的优化和设计提供理论指导。

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