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In situ fluid typing and quantification with 1D and 2D NMR logging

机译:使用1D和2D NMR测井进行原位流体分型和定量

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In situ nuclear magnetic resonance (NMR) fluid typing has recently gained momentum due to data acquisition and inversion algorithm enhancement of NMR logging tools. T-2 distributions derived from NMR logging contain information on bulk fluids and pore size distributions. However, the accuracy of fluid typing is greatly overshadowed by the overlap between T-2 peaks arising from different fluids with similar apparent T-2 relaxation times. Nevertheless, the shapes of T-2 distributions from different fluid components are often different and can be predetermined. Inversion with predetermined T-2 distributions allows us to perform fluid component decomposition to yield individual fluid volume ratios. Another effective method for in situ fluid typing is two-dimensional (21)) NMR logging, which results in proton population distribution as a function of T-2 relaxation time and fluid diffusion coefficient (or T-1 relaxation time). Since diffusion coefficients (or T-1 relaxation time) for different fluid components can be very different, it is relatively easy to separate oil (especially heavy oil) from water signal in a 2D NMR map and to perform accurate fluid typing. Combining NMR logging with resistivity and/or neutron/density logs provides a third method for in situ fluid typing. We shall describe these techniques with field examples. (0 2007 Elsevier Inc. All rights reserved.
机译:由于NMR测井工具的数据采集和反演算法的增强,原位核磁共振(NMR)流体分型最近获得了发展。从NMR测井得到的T-2分布包含有关大体积流体和孔径分布的信息。但是,由于具有相似的表观T-2弛豫时间的不同流体产生的T-2峰之间的重叠,大大掩盖了流体分型的准确性。然而,来自不同流体成分的T-2分布的形状通常是不同的,并且可以预先确定。具有预定T-2分布的反演使我们能够执行流体成分分解以产生单独的流体体积比。另一种有效的原位流体分型方法是二维(21)NMR测井,这导致质子总体分布随T-2弛豫时间和流体扩散系数(或T-1弛豫时间)而变化。由于不同流体组分的扩散系数(或T-1弛豫时间)可能非常不同,因此在2D NMR图中从水信号中分离出油(尤其是重油)相对容易,并进行准确的流体分类。将NMR测井与电阻率和/或中子/密度测井结合起来,提供了第三种原位流体分型方法。我们将通过现场示例来描述这些技术。 (0 2007 Elsevier Inc.保留所有权利。

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