缓解气井液体负荷的有效喷嘴工作包线试验研究

C. Xie, Yonghui Liu, Chengcheng Luo
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引用次数: 1

摘要

利用超音速喷管进行井下液体雾化是一种经济有效的减轻液体负荷的方法,但其最优效率条件尚不明确。本文在长6 m,内径30 mm的垂直有机玻璃管内进行了实验研究,以评估不同条件下超音速喷管的性能。利用摄像机记录喷嘴下游流体流动特性,结合dip图像技术,利用MATLAB软件确定液滴直径。实验结果表明,当气液两相流型喷嘴下游为非环空流动时,由于喷嘴下游有液体负载,雾容易被液体体捕获,从而导致该技术的失败。在环空流动条件下,由于温度的巨大下降,一小部分雾被凝结成液滴,然后附着在管壁上形成液膜。剩下的雾仍然可以向上流动。在本文中,当喷嘴上游气流速度为2.4m/s ~ 3.2m/s时,液滴尺寸为50μm ~ 1000μm。现场应用表明,该技术在有效的操作包络层下,能够有效地去除储液,使气井保持长期稳定生产。
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Experimental Study on Effective Operating Envelops of Nozzle to Mitigate Liquid Loading in Gas Wells
The downhole liquid atomization by supersonic nozzle is an economic and efficient way to alleviate the liquid loading, but the optimal efficiency conditions are still not clear. In this paper, experimental studies were conducted in a 6-m long and 30-mm inner diameter vertical Perspex pipe to evaluate the performance of supersonic nozzle in different conditions. Camera was employed to record the characteristic of fluid flow downstream the nozzle, and the MATLAB was used in combination with DIP-image technology to determine the diameter of droplets. The experimental results show that mist is easy to be captured by the liquid bulk due to the liquid loading downstream the nozzle when the gas-liquid two phase flow pattern downstream nozzle is non-annular flow, thus leading to a failure of this technology. Due to the huge temperature drop in the annular flow condition, small fraction of mist is condensed into droplets and then attaches onto the pipe wall, forming liquid film. The remaining mist can still flow upwards. In this article, when the gas velocities upstream the nozzle range from 2.4m/s to 3.2m/s, the size of droplets range from 50μm to 1000μm correspondingly. Field application indicates that this technology under the effective operating envelops are able to be efficient to remove the liquid-loading, and the gas wells can maintain a long-term stable production.
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