Three-Phase Saturation Evaluation Using Advanced Pulsed Neutron Measurement

Ilies Mostefai, Marie Van Steene, Ali Al-Mulla
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Abstract

Accurately monitoring saturation change mechanisms requires adequate surveillance methods and techniques. We present a methodology to evaluate three-phase saturation using an advanced pulsed neutron measurement. This is a complex reservoir monitoring situation, where gas saturation must be monitored in addition to oil saturation, in a variable water salinity environment. An advanced pulsed neutron logging tool provided robust thermal neutron measurement (hydrogen index) for gas quantification. Formation capture cross section (sigma) was not used for water saturation because of its sensitivity to water salinity, which changes vertically and laterally in the subject field. The apparent volume of oil from the tool's improved-precision carbon/oxygen (C/O) method provided a salinity-independent indicator of oil saturation. Since this C/O apparent oil volume combines the carbon contributions from oil and gas, elemental modeling provided the apparent oil volume response to gas. Lithology information and porosity from initial formation evaluation were also entered in a linear solver to resolve water, oil, and gas volumes. This methodology was applied in wells where all three fluid saturations (water, oil, and gas) were expected to change over time. Surveys were taken at regular intervals over a span of several years. With the improved precision of the advanced pulsed neutron measurement, it was possible to precisely map the saturation changes with time in the field and identify variations in the fluids’ volumes down to a few porosity units. This information was critical in understanding fluid movements inside the reservoir. This is the first implementation of this technique. The precision brought by the advanced pulsed neutron tool provides superior results for monitoring a complex fluid mixture.
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利用先进的脉冲中子测量技术评估三相饱和度
准确监测饱和度变化机制需要适当的监测方法和技术。我们提出了一种方法来评估三相饱和度使用先进的脉冲中子测量。这是一个复杂的储层监测情况,除了油饱和度之外,还必须在可变的水盐度环境中监测气饱和度。先进的脉冲中子测井工具为气体定量提供了可靠的热中子测量(氢指数)。由于地层捕获截面(sigma)对水矿化度的敏感性,因此没有使用它来计算含水饱和度,而水矿化度在研究区域的垂直和横向变化。该工具提高了精度的碳/氧(C/O)方法所产生的表观油体积提供了一个与含盐量无关的油饱和度指标。由于C/O视油体积结合了石油和天然气的碳贡献,元素模型提供了视油体积对天然气的响应。地层初始评价的岩性信息和孔隙度也被输入到线性求解器中,以求解水、油和气的体积。该方法适用于所有三种流体饱和度(水、油和气)随时间变化的井。调查是在几年的时间里定期进行的。随着先进的脉冲中子测量精度的提高,可以精确地绘制出饱和度随时间的变化,并识别出流体体积的变化,甚至可以精确到几个孔隙度单位。这些信息对于了解储层内部的流体运动至关重要。这是该技术的第一个实现。先进的脉冲中子工具带来的精度为监测复杂的流体混合物提供了优越的结果。
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