Through-Tubing Casing Deformation and Tubing Eccentricity Image Tool for Well-Integrity Monitoring and Plug Abandonment

Qinshan Yang, Kuang Qin, J. Olson, M. Rourke
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Abstract

Casing deformation and tubing eccentricity is a concern in the oil and gas industry for safety and operational reasons. Casing deformation or tubing eccentricity originates from various sources such as well completion, corrosion, formation swelling, collapse, and salt dome creep. It is important to implement a well-integrity surveillance program covering all casing and tubing strings for the full well life cycle from initial completion to abandonment. However, there has been no effective through-tubing logging method to evaluate the casing string for deformation and eccentricity. This paper describes a new Deformation-and-Eccentricity (DEC) tool that is based on electromagnetic technology and designed to measure casing deformation and tubing eccentricity while logging inside completion tubing. The DEC tool generates a unique compressed-and-focused magnetic field that provides an increased signal-to-noise ratio (SNR). The tool then employs an array of magnetic sensors to measure the magnetic flux density distributions azimuthally around the tool. The tool’s compressed-and-focused magnetic field is designed to (1) saturate the magnetic flux of the tubing, (2) to inject more magnetic flux into the first casing behind the tubing, and (3) to increase the signal measurement sensitivity and SNR. The sensor matrix measures flux density changes that correspond to variations in distance between tubing and casing. The high-resolution azimuthal magnetic sensor matrix delivers high-accuracy measurements that are used to image the flux density changes. A finite-element-based forward modeling and an optimized Gaussian processes regression method have been developed to process the raw logging data. The DEC tool has a built-in orientation measurement capability that is based on gyroscopes and accelerometers that are used to align the deformation and eccentricity images and index curves as well as the tubing thickness image. The tool specifications state accuracies of 1% of the eccentricity ratio and 5% of the deformation ratio in the range of casing OD up to 13.375 in. DEC technology provides an advanced answer product for through-tubing casing deformation and eccentricity measurements in downhole well-integrity and plug-abandonment applications. When combined with other well-integrity measurements such as a multifinger caliper and multipipe thickness log tool, a complete well-integrity evaluation can be achieved throughout the life cycle of a well. For example, significant casing deformation can often indicate possible damaged cement behind the casing. Other applications for the technology include locating tubing clamps for fiber-optic cables and control lines and determining the orientation of multistring tubing completions. Performances of the tool have been validated through research simulations, lab tests, and field trials. This paper includes a field case study of a deviated gas production well with tubing buckling and casing micro dogleg.
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用于井筒完整性监测和桥塞弃井的套管变形和偏心图像工具
套管变形和油管偏心是油气行业出于安全和操作原因而关注的问题。套管变形或油管偏心的原因多种多样,如完井、腐蚀、地层膨胀、坍塌和盐丘蠕变。在从完井到弃井的整个生命周期内,实施覆盖所有套管和管柱的井完整性监测计划非常重要。然而,目前还没有有效的过油管测井方法来评估套管柱的变形和偏心。本文介绍了一种基于电磁技术的新型变形与偏心(DEC)测量工具,该工具可在完井油管内测井时测量套管变形和油管偏心。DEC工具产生独特的压缩聚焦磁场,提高了信噪比(SNR)。然后,该工具使用一组磁传感器来测量工具周围的磁通密度分布。该工具的压缩聚焦磁场设计为:(1)使油管的磁通量饱和;(2)向油管后面的第一套套管注入更多的磁通量;(3)提高信号测量的灵敏度和信噪比。传感器矩阵测量的通量密度变化对应于油管和套管之间距离的变化。高分辨率方位磁传感器矩阵提供高精度测量,用于成像磁通密度变化。提出了一种基于有限元的正演模型和一种优化的高斯过程回归方法来处理原始测井资料。DEC工具具有内置的定向测量功能,该功能基于陀螺仪和加速度计,用于对齐变形和偏心图像、指数曲线以及油管厚度图像。该工具规格说明,在套管外径13.375 in范围内,其偏心比精度为1%,变形比精度为5%。DEC技术为井下井完整性和桥塞弃井应用中的过油管套管变形和偏心测量提供了一种先进的解决方案。当与其他井完整性测量(如多指井径仪和多管厚度测井工具)相结合时,可以在一口井的整个生命周期内完成完整的井完整性评估。例如,严重的套管变形通常表明套管后面的水泥可能受损。该技术的其他应用包括定位光纤电缆和控制线的油管夹,以及确定多管柱完井的方向。该工具的性能已经通过研究模拟、实验室测试和现场试验进行了验证。本文对某斜度产气井的油管屈曲和套管微狗腿问题进行了现场实例研究。
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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