Determination of Optimum Rate in a Condensate Well with a Case of a Wellbore Liquid Loading

M. P. Ekeregbe
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引用次数: 1

Abstract

Condensate reservoirs are mostly pressure sensitive and keeping the pressure above the dew point pressure in the reservoir is critical to avoid condensate banking in the reservoir. If it occurs, production is highly inhibited and the well may ultimately quit on production under liquid loading. Fluid ratios are important in the management of condensate wells and most critical is the Gas Liquid Ratio (GLR). There is a certain GLR that below it, there will be a liquid loading in the wellbore that could quit the well. Each fluid rate goes with a GLR and the point where there is a reversal of the GLR or CGR trends may present a case of loading scenario and that is taken as the determination reference point. When a condensate well shows an improvement of water cut as the choke bean size is reduced does not necessarily signify a healthy situation and neither a one-point higher water cut with increase in choke bean size mean a water coning situation. When a liquid loading well is beaned up, there is early signs of water coning in the production data but this is just a wellbore production and the BS&W improves as the production rate is further increased. Further investigation is necessary to separate the challenge of water conning from the challenge of too low Gas rate which causes the loading of the liquids in the wellbore. That is the operating envelop to manage condensate well rates: rates too low with a possibility of a liquid loading and rates too high that depicts a case of water conning when water is close to the perforation. This band must be completely exploited to turn the production curve in the positive. This paper provides a strategy to recover a condensate well production with a challenge of liquid loading using a case study. The degree of the severity of the liquid loading can be represented using a power law model with the gradient being the level of severity of the loading. The production improvement is greater than nβ percent where n is the quadratic model number 2 and β is the product of the graphical and Lagrangian-Quadratic alpha parameters. The optimum rate can be determined using the Lagrange Multiplier optimization method to effectively extend the production life of the well.
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考虑井筒液体载荷情况下凝析井最佳产率的确定
凝析气藏大多对压力敏感,保持压力高于凝析气藏的露点压力是避免凝析气藏堆积的关键。如果发生这种情况,生产将受到严重抑制,井最终可能在液体载荷下停止生产。流体比在凝析井的管理中很重要,其中最关键的是气液比(GLR)。在一定的GLR下,井筒中会有液体载荷,可能会导致出井。每一种流体速率都有一个GLR,当GLR或CGR趋势发生逆转时,可能出现加载情况,并将其作为确定参考点。当凝结水井的含水随着节流豆尺寸的减小而有所改善时,并不一定意味着处于健康状态,并且随着节流豆尺寸的增加,含水增加一个点也不意味着出现了水锥情况。当一口含液井开始注液时,在生产数据中就会出现水进的早期迹象,但这只是井筒生产,随着产量的进一步提高,BS&W也会得到改善。进一步的研究是必要的,以区分水窜的挑战和过低的气速的挑战,后者会导致井筒中液体的负荷。这是管理凝析井流量的操作包线:流量过低,可能会导致液体负载,而流量过高,当水接近射孔时,可能会导致水流失。这一段必须完全开发,才能使产量曲线转为正增长。本文通过一个案例研究,提出了一种针对液体负荷挑战的凝析井产量恢复策略。液体加载的严重程度可以用幂律模型表示,梯度是加载的严重程度。生产改进大于nβ %,其中n是二次模型2,β是图形参数和拉格朗日二次参数的乘积。利用拉格朗日乘数优化方法确定最佳产率,有效延长油井生产寿命。
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