Development and Baseline Comparison of a New Pulsed-Neutron Spectroscopy Tool for Carbon- Oxygen Analysis and Three-Phase Saturation Monitoring

Ian McGlynn, T. Anniyev, F. Inanc, D. Chace, Alexandr Kotov, Emmannuel Soans, Ardi Batubara
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Abstract

A new slim multidetector pulsed-neutron wireline-logging tool has been developed for openhole or casedhole formation evaluation saturation analysis and time-lapse monitoring. With a greater neutron source output and high-spectral resolution gamma ray detectors, the tool can be operated with reduced uncertainty or faster logging speeds. New, fully programable digital electronics provide a range of acquisition modes optimized for specific formation evaluation objectives. Neutrons are generated from a high-output pulsed-neutron generator, which propagates radially outward, passing through the borehole, completion material, and into the formation. Energy is lost through scattering, and neutrons are absorbed by the surrounding material. Gamma rays are emitted from scattering and absorption interactions at discrete energies, which can be measured by one of three spectral gamma scintillation detectors. The energy distribution of these incident gamma rays by inelastic and capture interactions is affected by the elemental composition of the material. A salinity-independent oil-water saturation assessment begins with the deconvolution of neutron-induced gamma ray inelastic spectra into constituent elemental components. Carbon-oxygen ratios (C/O) of elemental yields are then compared to a reference model to determine the relative saturation and porosity-filled volume of oil and water. In PNC (pulsed-neutron capture) acquisition mode, a salinity-dependent oil-water saturation assessment is determined from neutron capture cross section (sigma) measurements, which are compared to formation and porosity fluids using a mass balance approach. Gas saturation assessment is determined from gas-sensitive inelastic (RIN13) and capture (RATO13) ratios. Gas ratios are compared to a reference model to assess the relative saturation of fluids, typically distinguishing gas from water or gas from oil. Gas saturation is not limited to hydrocarbon components and can also be used for saturation analysis of H2, He, CO2, N2, and other non-hydrocarbon-bearing components. A new Omni-mode acquisition combining simultaneous PNC and C/O measurements was also developed. This acquisition mode provides advantages in reducing multipass logging typically required from separate PNC and C/O acquisitions. By including PNC neutron capture sigma, gas-sensitive neutron capture and inelastic measurements, and C/O inelastic measurements, the simultaneous Omni-mode (PNC+C/O) acquisition is specifically optimized for three-phase saturation analysis applications, including baseline CO2 sequestration evaluation for carbon capture, utilization, and storage (CCUS) CO2 and steamflood time-lapse monitoring. Results from a field example are presented to demonstrate the new technology with spectral C/O saturation analysis compared to traditional windows C/O analysis and to compare the performance of the next-generation tool to the legacy tool. Multiphase saturations from C/O and RIN13 measurements and compatibility with legacy interpretations for time-lapse saturation monitoring are also presented.
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用于碳氧分析和三相饱和度监测的新型脉冲中子能谱学工具的开发与基线比较
为裸眼或套管井地层评价、饱和度分析和延时监测,开发了一种新型单径多探测器脉冲中子电缆测井工具。凭借更大的中子源输出和高光谱分辨率的伽马射线探测器,该工具可以降低不确定性,提高测井速度。全新的、完全可编程的数字电子设备提供了一系列针对特定地层评价目标进行优化的采集模式。中子由高输出脉冲中子发生器产生,径向向外传播,穿过井眼、完井材料,进入地层。能量因散射而损失,中子被周围的物质吸收。伽玛射线是由散射和吸收相互作用发出的离散能量,可以用三个光谱伽玛闪烁探测器中的一个来测量。这些入射伽马射线的非弹性和俘获相互作用的能量分布受材料元素组成的影响。不依赖于含盐量的油水饱和度评估首先要将中子诱发的伽马射线非弹性谱反褶积为组成元素分量。然后将元素产率的碳氧比(C/O)与参考模型进行比较,以确定油和水的相对饱和度和孔隙度填充体积。在PNC(脉冲中子捕获)采集模式中,通过中子捕获横截面(sigma)测量来确定含盐量相关的油水饱和度评估,并使用质量平衡方法将其与地层和孔隙流体进行比较。气饱和度评估由气敏非弹性比(RIN13)和俘获比(RATO13)确定。气比与参考模型进行比较,以评估流体的相对饱和度,通常区分气与水或气与油。气饱和度不仅限于烃类成分,还可以用于H2、He、CO2、N2和其他非含烃成分的饱和度分析。同时开发了一种结合PNC和C/O测量的新型omni模式采集。这种采集模式的优势在于减少了PNC和C/O采集通常需要的多通道日志记录。通过包括PNC中子捕获sigma,气敏中子捕获和非弹性测量,以及C/O非弹性测量,同时omni模式(PNC+C/O)采集专门针对三相饱和度分析应用进行了优化,包括碳捕获,利用和储存(CCUS)二氧化碳的基线CO2封存评估和蒸汽驱延时监测。现场实例的结果表明,与传统的窗口C/O分析相比,新技术具有光谱C/O饱和度分析,并将下一代工具的性能与传统工具进行了比较。还介绍了C/O和RIN13测量的多相饱和度以及与延时饱和度监测的传统解释的兼容性。
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