优化油管和尾管完井设计,提高现有井的天然气产量:ADNOC陆上油田案例研究

M. F. Fathalla, M. A. Al Hosani, I. Mohamed, A. A. Al Bairaq, Djamal Kherroubi, A. Abdullayev, Allen Roopal
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引用次数: 1

摘要

一个陆上气田包含几口气井,这些气井具有低间歇生产速率。产量不佳的原因是井筒中的液体加载问题。本研究将探讨优化油管和尾管完井设计对提高油井产气率的影响。在不同的油管和尾管尺寸下进行了多次灵敏度下入,以确定最佳的井下完井设计。该研究首先确定存在严重产气问题的弱井。一旦识别出薄弱井,就会对这些井的井眼图进行研究。使用当前的井下完井设计进行模拟运行,这将作为基本案例。考虑了几种完井设计,以尽量减少井中液体载荷的影响;这些措施包括减小油管直径但保持现有尾管直径不变,保持原有油管直径不变但只减小尾管直径,在保持原有油管直径的情况下将油管延伸至总深度(TD),以及将减小直径的管柱延伸至TD。造成液体加载的主要原因似乎是储层中进入的气体在流过井筒时速度降低。利用不同的完井设计进行了模拟研究,以优化完井,并在弱井中获得更高的气速。研究结果表明,当油管直径和尾管直径减小时,产气率显著提高,这进一步证明了由于流动受限导致的进入流体速度增加导致液体载荷减少。论述了井下完井设计对气井产能的影响。研究表明,重新审视现有的完井设计,并使用商业模拟器对其进行优化,可以显著提高油井产量。还需要注意的是,限制砂面附近的流动可以增加流入流体的速度,并减少井中的液体负荷。
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Optimizing Tubing and Liner Completion Design to Improve Gas Production from Existing Wells: Case Study for ADNOC Onshore Field Abu Dhabi, UAE
An onshore gas field contains several gas wells which have low–intermittent production rates. The poor production has been attributed to liquid loading issue in the wellbore. This study will investigate the impact of optimizing the tubing and liner completion design to improve the gas production rates from the wells. Numerous sensitivity runs are carried out with varying tubing and liner dimensions, to identity optimal downhole completions design. The study begins by identifying weak wells having severe gas production problems. Once the weak wells have been identified, wellbore schematics for those wells are studied. Simulation runs are performed with the current downhole completion design and this will be used as the base case. Several completion designs are considered to minimize the effect of liquid loading in the wells; these include reducing the tubing diameter but keeping the existing liner diameter the same, keeping the original tubing diameter the same but only reducing the liner diameter, extending the tubing to the Total Depth (TD) while keeping the original tubing diameter, and extending a reduced diameter tubing string to the TD. The primary cause of the liquid loading seems to be the reduced velocity of the incoming gas from the reservoir as it flows through the wellbore. A simulation study was performed using the various completion designs to optimize the well completion and achieve higher gas velocities in the weak wells. The results of the study showed significant improvement in gas production rates when the tubing diameter and liner diameter were reduced, providing further evidence that increased velocity of the incoming fluids due to restricted flow led to less liquid loading. The paper demonstrates the impact of downhole completion design on the productivity of the gas wells. The study shows that revisiting the existing completion designs and optimizing them using commercial simulators can lead to significant improvement in well production rates. It is also noted that restricting the flow near the sand face increases the velocity of the incoming fluid and reduces liquid loading in the wells.
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