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Mechanical Expansion of Steel Tubing as a Solution to Leaky Wellbores

机译:机械扩管作为泄漏井眼的解决方案

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摘要

Wellbore cement, a procedural component of wellbore completion operations, primarily provides zonal isolation and mechanical support of the metal pipe (casing), and protects metal components from corrosive fluids. These are essential for uncompromised wellbore integrity. Cements can undergo multiple forms of failure, such as debonding at the cement/rock and cement/metal interfaces, fracturing, and defects within the cement matrix. Failures and defects within the cement will ultimately lead to fluid migration, resulting in inter-zonal fluid migration and premature well abandonment. Currently, there are over 1.8 million operating wells worldwide and over one third of these wells have leak related problems defined as Sustained Casing Pressure (SCP)1. The focus of this research was to develop an experimental setup at bench-scale to explore the effect of mechanical manipulation of wellbore casing-cement composite samples as a potential technology for the remediation of gas leaks. The experimental methodology utilized in this study enabled formation of an impermeable seal at the pipe/cement interface in a simulated wellbore system. Successful nitrogen gas flow-through measurements demonstrated that an existing microannulus was sealed at laboratory experimental conditions and fluid flow prevented by mechanical manipulation of the metal/cement composite sample. Furthermore, this methodology can be applied not only for the remediation of leaky wellbores, but also in plugging and abandonment procedures as well as wellbore completions technology, and potentially preventing negative impacts of wellbores on subsurface and surface environments.
机译:井筒水泥是井筒完井作业的程序组成部分,主要为金属管(套管)提供区域隔离和机械支撑,并保护金属组件免受腐蚀性流体的侵蚀。这些对于保证井眼完整性是至关重要的。水泥会经历多种形式的破坏,例如在水泥/岩石和水泥/金属界面处的剥离,破裂以及水泥基体内的缺陷。水泥内部的缺陷和缺陷最终将导致流体运移,从而导致区域间流体运移和井筒过早废弃。当前,全球有超过180万口作业井,其中超过三分之一的井口存在与泄漏有关的问题,即持续套管压力(SCP) 1 。这项研究的重点是在工作台规模上开发实验装置,以探索机械操纵井眼套管-水泥复合材料样本作为补救气体泄漏的潜在技术的效果。在这项研究中使用的实验方法能够在模拟井眼系统中的管道/水泥界面处形成不可渗透的密封。成功的氮气流过测量结果表明,现有的微环在实验室实验条件下被密封,并且通过金属/水泥复合材料样品的机械操作防止了流体流动。此外,该方法不仅可以用于泄漏井眼的补救,而且可以用于堵漏和废弃程序以及井眼完井技术,并有可能防止井眼对地下和地面环境的负面影响。

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