Optimizing Hardware & Workflow to Maximize Formation Fluid Scanning & Sampling While Drilling Success in Unconsolidated Formations

I. D. Santo, M. Turner, Yon Blanco, Scott Paul, S. Haq, V. Agarwal
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Abstract

This paper presents a novel methodology to successfully maximize sampling and scanning of formation fluids using formation mapping-while-drilling (FMWD) technology in real time when drilling poorly consolidated formations. The methodology, based on a solid workflow built on experience garnered and captured in various operations and geomechanical studies performed around the world, can be applied in a wide range of wellbore geometries and formation types. The methodology is based on four processes: 1. Predict, assess, and confirm potential fines migration and formation collapse during FMWD operations. The analysis is based on processing and interpreting existing geomechanical properties from offset wells and real-time newly acquired sonic and/or density data. 2. Design FMWD operations such that formation sanding is prevented, and formation integrity is maintained. 3. Prevent mobilized fines from entering the FMWD tool if partial formation collapsing occurs. 4. Focus the workflow on reducing the negative impact solids will have on the flowline, pump out, and optical analyzers if fines enter the tool. The paper contains two case studies in which the methodology workflow resulted in successful sampling and real-time downhole fluid analysis of formations with very limited diagenesis and a history of sanding and collapsing during formation testing-while-drilling operations. These two case studies show how assessing offset wells during the planning phase and applying this workflow while evaluating logging while drilling (LWD) petrophysical data in real-time provide a quick insight into how a formation will respond during pump out. The results define station depth selection, timing of the operation with respect to wellbore exposure time, and pump out rate strategy. The application of fixed-rate pump out or intelligent pump out with a fixed differential can then be applied based on the real-time indicators. Specific screen sizes are selected in advance, which limit ingress of fines into the sampling tool. In both case studies, the operating company's objectives were met. An additional case study is presented in which the risk of sanding was not perceived, and no qualification of un-consolidation had taken place, ultimately resulting in formation breakdown in the sampling phase, mobilization of fines, and plugging of the tool; thus, highlighting the value of the novel methodology. The innovation of this workflow is its holistic approach to sampling while drilling in unconsolidated formations, extensively covering both job planning and execution phases. Additionally, the workflow allows for optimizing tool configuration, and by risk identification, suggests a variety of measures to eliminate or mitigate the impact of partial formation collapse. This workflow extends the application of fluid mapping and sampling while drilling into operational environments, which were previously considered highly unsuitable for this technology.
优化硬件和工作流程,最大限度地提高地层流体扫描和采样,同时在松散地层中成功钻井
本文提出了一种新颖的方法,可以在钻进固结不良的地层时,利用随钻地层测绘(FMWD)技术,成功地实现对地层流体的实时采样和扫描。该方法基于在世界各地进行的各种作业和地质力学研究中积累和获取的经验,可以应用于各种井眼几何形状和地层类型。该方法基于四个过程:1。在FMWD作业过程中,预测、评估和确认潜在的细粒迁移和地层坍塌。该分析基于对邻井现有地质力学特性的处理和解释,以及实时获取的声波和/或密度数据。2. 设计FMWD作业,防止地层出砂,并保持地层完整性。3.如果发生部分地层垮塌,防止被移动的细粒进入FMWD工具。4. 将工作流程的重点放在减少固体颗粒进入工具后对管道、泵出和光学分析仪的负面影响上。本文包含了两个案例研究,在这些案例中,该方法工作流程成功地对地层进行了采样和实时井下流体分析,这些地层在随钻测试过程中成岩作用非常有限,并且有出砂和坍塌的历史。这两个案例研究表明,在规划阶段评估邻井,并在实时评估随钻测井(LWD)岩石物理数据时应用该工作流程,可以快速了解泵出过程中地层的变化情况。结果确定了站深选择、作业时间与井筒暴露时间以及泵出率策略。然后可以根据实时指标应用固定速率泵出或具有固定差的智能泵出。具体的屏幕尺寸是事先选定的,这限制了细粒进入采样工具。在这两个案例研究中,运营公司的目标都得到了满足。在另一个案例研究中,没有意识到出砂的风险,也没有对未固结进行鉴定,最终导致取样阶段地层破裂、细粒运移和工具堵塞;从而突出了该方法的价值。该工作流程的创新之处在于,它采用了一种全面的方法,可以在松散地层中进行取样,广泛地涵盖了作业计划和执行阶段。此外,该工作流程允许优化工具配置,并通过风险识别,提出各种措施来消除或减轻部分地层坍塌的影响。该工作流程扩展了钻井过程中流体测绘和采样的应用范围,而在此之前,作业环境被认为非常不适合该技术。
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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