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Analytical Model to Estimate the Downhole Casing Wear Using the Total Wellbore Energy

机译:利用总井眼能量估算井下套管磨损的分析模型

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摘要

The increasing complexities of wellbore geometry imply an increasing potential of damage resulting from the casing-wear downhole. Much work has been done to quantify and estimate wear in casing; however, the results of such predictions have been mixed. While the locations of critical-wear areas along the casing string have been predicted fairly accurately, quantifying the actual amount of casing wear has been a magnitude off. A ■ mathematical model that describes this casing wear in terms of the total wellbore energy has been developed and used to estimate the depth of the wear groove and the wear volume downhole. The wellbore energy provides a mathematical criterion to quantify the borehole quality and incorporates the parameters, borehole curvature, and the wellbore torsion. The casing wear observed downhole is also an integral function of these two parameters. Hence, a combined "wear-energy" model has been proposed to estimate the casing wear in curved sections of the wellbore that have the drill string lying on its low side. The fundamental assumption of this model is that the volume worn away from the casing wall is proportional to the work done by friction on its inner wall by the tool joints only. It also assumes that the primary mechanism for casing wear is the rotation of the drill string, and the wear caused during tripping is insignificant. The borehole torsion models of wellbore trajectory, namely spatial-arc, natural-curve, cylindrical-helix, and constant-tool face, have been incorporated separately to enhance the accuracy of estimating the wear volume downhole. The wear-energy model for a detailed analysis of a practical example using real-time well survey data will be presented. Wear zones along the wellbore have been identified using a mathematical criterion of the "contact zone parameter." The wear-groove depths for each contact zone along with an equivalent average wear for the curved section of the wellbore have been estimated. The wear volumes predicted by the various curvature and torsion models of wellbore energy have been graphically studied. The wellbore torsion has been found to significantly impact the casing-wear downhole.
机译:井眼几何形状的日益复杂意味着由套管磨损井下造成的损坏的可能性增加。为了量化和估计套管的磨损,已经做了很多工作。但是,这种预测的结果好坏参半。尽管已经相当准确地预测了沿套管柱的关键磨损区域的位置,但量化套管的实际磨损量却是一个很大的困难。已经开发了一个■以总井眼能量来描述套管磨损的数学模型,并将其用于估算磨损槽的深度和井下的磨损量。井眼能量提供了数学标准来量化井眼质量,并结合了参数,井眼曲率和井眼扭转。井下观察到的套管磨损也是这两个参数的积分函数。因此,已经提出了一种组合的“磨损能量”模型来估计在钻柱位于其下侧的井眼的弯曲部分中的套管磨损。该模型的基本假设是,从套管壁磨损下来的体积仅与通过工具接头在其内壁上的摩擦所完成的功成比例。还假定套管磨损的主要机理是钻柱的旋转,而在脱扣过程中引起的磨损微不足道。井眼轨迹的井眼扭转模型(即空间弧,自然曲线,圆柱螺旋和恒定工具面)已分别纳入,以提高估算井下磨损量的准确性。将介绍使用实时测井数据对实际示例进行详细分析的磨损能量模型。已经使用“接触区参数”的数学标准来识别沿井眼的磨损区。已经估计了每个接触区的磨损槽深度以及井眼弯曲部分的等效平均磨损量。已经通过图形研究了由井眼能量的各种曲率和扭转模型预测的磨损量。已经发现井眼扭转会严重影响井下的套管磨损。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2013年第4期|042901.1-042901.8|共8页
  • 作者单位

    University of Houston Houston, TX 77004;

    University of Houston Houston, TX 77004;

    Halliburton Fellow Halliburton, Houston, TX 77032;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:29:13

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