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A predictive protocol to obtain maximum water-free oil production rate for perforated vertical wells

机译:一种预测方案,以获得穿孔垂直井的最大无水油生产率

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Producing an oilfield in a cost-effective way depends on how long water production could be delayed in the reservoir. Many flow mechanisms, correlations, and methods to calculate maximum water-free oil production rate have been published, However, those methods have generally failed to not consider the skin effect which affects the flow into the wellbore. In this paper, the semi-analytical perforation skin model as presented by Karakas and Tariq is incorporated into the Meyer and Garder correlation for critical oil rate from a perforated vertical well interval to obtain the maximum water-free oil production rate and optimal perforation parameters. The resulting coupled computational model is used to determine the sensitivity of the maximum water-free oil production rate to wellbore perforation parameters. Whilst an increase in perforation length and decrease in spacing between perforation increase the critical flow rate, an increase in perforation radius did not translate to higher productivity. The optimal perforation angles are 45° and 60°, however, for the data used in this work the maximum water-free oil rate of 23.2 std/d was obtained at 45° of phasing angle, 1 in of spacing between perforation, 0.36 in of perforation radius and 48 in of perforation length. Thus, the perforation strategy can be optimized prior to drilling and completion operations to improve productivity using the computational model presented in this work.
机译:以成本效益的方式生产油田取决于水产量可能会延迟水库。许多流动机制,相关性和方法来计算最大的无水油生产率,然而,这些方法通常未能考虑影响流入井筒的皮肤效果。本文介绍了卡拉卡斯和塔里克的半分析穿孔皮肤模型,纳入了Meyer和Carder相关性,从穿孔垂直井间隔内临界油速进行,以获得最大的无水油生产率和最佳穿孔参数。所得到的耦合计算模型用于确定最大无水油生产率与井眼穿孔参数的灵敏度。虽然穿孔长度的增加和穿孔之间的间距减小增加临界流速,但穿孔半径的增加并未转化为更高的生产率。最佳穿孔角度为45°和60°,然而,对于在该工作中使用的数据,在45°的相位角度下获得了23.2 std / d的最大无水油速率,穿孔间距为0.36穿孔半径和48缺陷长度。因此,可以在钻井和完成操作之前优化穿孔策略,以提高使用本工作中提供的计算模型的生产率。

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