油砂时移脉冲中子测井监测蒸汽室开发

Yonghwee Kim, A. Kotov, D. Chace
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摘要

蒸汽辅助重力泄油(SAGD)技术虽然是一种较新的采油方法,但已经在加拿大西部重油砂的经济开发中证明了其价值。SAGD工艺需要对蒸汽室的生长进行终身监测,以优化油藏开发,提高采收率,并最大限度地减少对环境的影响。运营商已经广泛使用脉冲中子测井来监测油砂储层的生命周期。在观测井中获得的延时脉冲中子测井数据,使作业者能够有效地跟踪蒸汽室的发展,并识别地层流体饱和度的变化。我们提出了高温脉冲中子测井技术和一种量化SAGD井中蒸汽、稠油和水饱和度的算法。测井作业的主要挑战之一是承受蒸汽室的热冲击。储层温度经常突然变化,在很短的时间内变化高达250摄氏度,因此测井工具必须在剧烈的温度变化中保持稳定。测井条件,如充满蒸汽的井筒、额外的完井硬件和糟糕的水泥质量也是具有挑战性的因素。此外,加拿大油砂的地层流体饱和度分析通常很复杂,因为地层水的盐度相对较低,但变化较大,粘土性质不均匀,SAGD作业创造了三相流体在地层中共存的条件。这些环境条件使得仅依靠常用的热中子捕获截面测量(地层sigma)变得困难。在本文中,通过案例分析,提出了上述识别多组分地层流体的挑战和解决方案。对多探测器脉冲中子测井仪进行了改进,安装了定制设计的热瓶,以应对SAGD环境中的极端温度变化。这种配备热烧瓶的仪器确保在快速和极端温度变化的情况下稳定的数据采集,并通过有效的热管理实现长时间高效的操作。对于饱和度分析,我们展示了一种先进的算法,通过伽马射线比和碳/氧(C/O)测量的组合来量化三种流体成分。
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Time-Lapse Pulsed Neutron Well Logging in Oil Sands for Monitoring Steam Chamber Development
Steam-assisted gravity drainage (SAGD) technology, although a relatively new oil recovery method, has already proved its value in economic development of heavy-oil sands in Western Canada. The SAGD process requires a lifetime monitoring of steam chamber growth to optimize reservoir development, improve oil recovery, and minimize environmental impact. Operators have widely used pulsed neutron well logs to monitor their life cycles of oil sand reservoirs. Time-lapse pulsed neutron logs acquired in observation wells enable operators to effectively track the growth of the steam chamber and identify the changes of formation fluid saturations. We present high-temperature pulsed neutron logging technology and an algorithm to quantify steam, heavy oil and water saturations in SAGD wells. One of the major challenges in well logging operation is to withstand the thermal shock from the steam chamber. Reservoir temperature often varies abruptly, by as much as 250 degrees C in a very short interval, so the logging tool must be stable in drastic temperature variations. Well logging conditions such as a steam-filled wellbore, extra completion hardware and bad cement quality are challenging factors as well. Furthermore, formation fluid saturation analysis in Canadian oil sands is typically complex because the formation water salinity is relatively fresh but varies, clay properties are not homogeneous, and SAGD operations create conditions in which three-phase fluids coexist in the formation. These environmental conditions make it difficult to rely only on commonly used thermal neutron capture cross-section measurements (formation sigma). In this paper, case study examples present the above-mentioned challenges and solutions to identify the multi-component formation fluids. The multi-detector pulsed neutron well logging instrument has been modified with a custom-designed heat flask to handle the extreme temperature variations in the SAGD environment. This heat-flask equipped instrument ensures a stable data acquisition in the presence of rapid and extreme temperature variation and enables a prolonged and time-efficient operation through effective heat management. For saturation analysis, we demonstrate an advanced algorithm to quantify three fluid components using a combination of gamma ray ratio and carbon/oxygen (C/O) measurements.
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