Casing Twist Insight Through Fiber Cable

Robello Samuel, Stuart Wood, G. Olin
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Abstract

During perforating operations, identifying the orientation of fiber cable accurately is critical for maintaining the integrity of permanently installed fiber.Beyond completions,it alsoprovides insights into how the casings get twisted and how the mechanical stability of the casing is altered as the string is run in the hole. The drilling and completion system is as unique as the aspect ratio and length/diameter is very high. This puzzles the researchers in modeling forces, stresses, stretch, and twists. To aid the accurate prediction in the position of the casing, radial orientation of downhole fiber optic cables canbe used. The clear images obtained by mapping the equipmentoutside thecasing provides not only how the casings get twisted after running in but also provide improved risk mitigation for perforating operations.The orientation angle of the casing versus depthis then analyzed to get the finaltwist and pitch of the twist of the casing. Several wells datawere analyzed to get a comprehensive view of the casingtwist as the casings were run and versus the model prediction. The raw data obtained using the pulsed-eddy current time-domain decay at each station are used for the analysis. Each installed cable detection clamp (CDC) is placed above a casing centralizer located 2' above each joint of casing that had a clamp installed.This simplifies the process of locating the depth of each CDC. A casing collar locator easily identifies the casingjoints.Further, the data are used to find the casing rotation. Several wells showed normal casing rotation of 2–3 wraps along the lateral and onewell showed more than 12 wraps. Several reasons were considered and analyzed including the wellbore spiraling, borehole torsion,and additional mechanical forces applied duringrunning the casing. The coupling of the geometrical and mechanical twist and mechanical stability of the string are discussed in the paper withmathematical underpinnings. In thecase of abnormal prediction, additional mechanical forcesandgeometrical considerations were overlapped and comparedagainst the torque and drag model prediction.It has also beenfound that in some wells where the wellbore torsion washigh,it resulted in a complete twist of 360° atthe heel and in some cases negative trend.
套管扭转洞察通过光纤电缆
在射孔作业中,准确识别光缆的方向对于保持永久安装光纤的完整性至关重要。除了完井之外,它还提供了套管是如何扭曲的信息,以及管柱下入井中时套管的机械稳定性是如何改变的。该钻完井系统的独特之处在于其纵横比和长度/直径都非常高。这让研究人员在模拟力、应力、拉伸和扭转时感到困惑。为了帮助准确预测套管的位置,可以使用井下光纤电缆的径向定向。通过测绘套管外设备获得的清晰图像,不仅可以显示套管下入后的扭曲情况,还可以降低射孔作业的风险。然后对套管的定向角与深度进行分析,得到套管的最终扭距和扭距。分析了几口井的数据,以全面了解套管下入时的套管扭曲情况,并与模型预测结果进行对比。利用脉冲涡流时域衰减在每个站点获得的原始数据进行分析。每个安装的电缆检测卡箍(CDC)都放置在套管扶正器上方,该扶正器位于每个安装了卡箍的套管接头上方2英尺处。这简化了定位每个CDC深度的过程。套管接箍定位器可轻松识别套管接头。此外,这些数据用于计算套管旋转。几口井显示沿水平段正常旋转2-3个套管,有一口井显示超过12个套管。考虑并分析了几个原因,包括井筒螺旋、井眼扭转和下套管过程中施加的额外机械力。本文在数学基础上讨论了管柱的几何扭曲与机械扭曲的耦合以及管柱的机械稳定性。在异常预测的情况下,额外的机械力和几何因素被重叠,并与扭矩和阻力模型预测进行比较。研究还发现,在一些井筒扭矩较大的井中,它会导致跟部完全扭转360°,在某些情况下还会出现负趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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