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Modeling and Analysis of Drillstring Vibration in Riserless Environment

机译:无接头环境下钻柱振动的建模与分析

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摘要

Riserless drilling poses numerous operational challenges that adversely affect the efficiency of the drilling process. These challenges include increased torque and drag, buckling, increased vibration, poor hole cleaning, tubular failures, poor cement jobs, and associated problems during tripping operations. These challenges are closely associated with complex bottomhole assemblies (BHAs) and the vibration of the drillstring when the topholes are drilled directionally. Current methods lack proper modeling to predict drill-string vibration. This paper presents and validates a modified model to predict severe damaging vibrations, analysis techniques, and guidelines to avoid the vibration damage to BHAs and their associated downhole tools in the riserless highly deviated wells. The dynamic analysis model is based on forced frequency response (FFR) to solve for resonant frequencies. In addition, a mathematical formulation includes viscous, axial, tor-sional, and structural damping mechanisms. With careful consideration of input parameters and judicious analysis of the results, the author demonstrates that drillstring vibration can be avoided by determining the 3D vibrational response at selected excitations that are likely to cause them. The analysis also provides an estimate of relative bending stresses, shear forces, and lateral displacements for the assembly used. Based on the study, severe vibrations causing potentially damaging operating conditions were avoided, which posed a major problem in the nearby wells. The study indicates that the results are influenced by various parameters, including depth of the mud line, offset of the wellhead from the rig center, wellbore inclination, curvature, wellbore torsion, and angle of entry into the wellhead. This study compares simulated predictions with actual well data and describes the applicability of the model. Simple guidelines are provided to estimate the operating range of the drilling parameter to mitigate and avoid downhole tool failures.
机译:无立管钻井带来许多操作挑战,这些挑战不利地影响了钻井过程的效率。这些挑战包括增加的扭矩和阻力,弯曲,增加的振动,不良的孔清洁,管状故障,不良的水泥作业以及跳闸操作中的相关问题。这些挑战与复杂的井底钻具组合(BHA)以及定向钻探井眼时钻柱的振动密切相关。当前的方法缺乏适当的建模来预测钻柱振动。本文提出并验证了修改后的模型,以预测严重的破坏性振动,分析技术和指南,以避免振动对BHAs及其相关的井下工具在无冒口高偏井中的破坏。动态分析模型基于强制频率响应(FFR)解决共振频率。另外,数学公式包括粘性,轴向,扭转和结构阻尼机制。通过仔细考虑输入参数和对结果进行明智的分析,作者证明了通过确定可能引起它们的选定激励下的3D振动响应,可以避免钻柱振动。分析还提供了所用组件的相对弯曲应力,剪切力和横向位移的估计值。根据这项研究,避免了引起潜在破坏性操作条件的剧烈振动,这在附近的油井中构成了主要问题。研究表明,结果受多种参数的影响,包括泥线深度,井口距钻机中心的偏移,井眼倾角,曲率,井眼扭转和进入井口的角度。这项研究将模拟预测值与实际油井数据进行了比较,并描述了该模型的适用性。提供了简单的准则来估算钻井参数的工作范围,以减轻和避免井下工具故障。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2013年第1期|013101.1-013101.11|共11页
  • 作者

    Robello Samuel;

  • 作者单位

    Halliburton Technology Fellow Drilling Engineering,Halliburton,Houston, TX 77042;

  • 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 00:29:15

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