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Killing fluid loss mechanism and productivity recovery in a gas condensate reservoir considering the phase behavior change

机译:考虑相行为变化的凝析气藏压井失水机理及产能恢复

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A single well numerical model considering rock capillary pressure and hysteresis was built to study killing fluid loss mechanism and its influence on productivity recovery under different positive pressure differentials based on the gas reservoir characteristics of the gas condensate well by combining the reservoir engineering and oil and gas phase behavior theory. The results show that when reservoir pressure of near wellbore zone increases to the critical pressure of condensate oil, the three-phase (oil, gas, water) flow will change to two-phase (oil, water) flow, the gas block effect will weaken, and water-phase relative permeability will increase, which can be manifested as sharp increase of killing fluid loss rate; and the rising fluid loss into the reservoir can affect the phase of condensate oil and gas and fluid distribution in the storage space near wellbore, and consequently lead to abnormal killing fluid loss. The larger the fluid loss volume, the longer the time is needed to flow back the killing fluid after going into operation again and the lower the fluid flow back efficiency, and the longer the time need to recover stable production of condensate oil and gas will be. Using fluid loss control solution or lowering liquid-column positive pressure differential (by using low-density killing fluid) can effectively avoid abnormal fluid loss during overbalanced well workover and guarantee productivity recovery after well workover.
机译:基于凝析气藏的气藏特征,建立了考虑岩石毛细压力和滞后作用的单井数值模型,根据凝析气井的气藏特征,研究了不同正压差下的压井失水机理及其对采收率的影响。相行为理论。结果表明,当井筒附近的储层压力增加到凝析油的临界压力时,三相(油,气,水)流变为两相(油,水)流,气阻作用减弱,水相的相对渗透率将增加,这可以表现为杀灭液流失率的急剧增加;进入油藏的漏失量上升,会影响凝析油气的相和井眼附近储藏空间中的流体分布,从而导致异常的致死性漏失。输液量越大,再次投入运行后,回采灭活液所需的时间就越长,回流效率越低,恢复凝析油和气的稳定生产所需的时间也就越长。 。使用失水量控制解决方案或降低液柱正压差(通过使用低密度压井液)可以有效地避免修井过度平衡期间的异常失水,并保证修井后的生产率恢复。

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