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An improved method to determine accurate porosity of low-rank coals by nuclear magnetic resonance

机译:核磁共振测量低级煤精确孔隙的改进方法

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For existing experimental methods, drying the sample to eliminate the effects of water in the pores is usually the first step to accurately measure the porosity of the coal reservoir. However, drying coal with relatively low rank easily leads to changes in the pore structure. In this study, we propose an improved NMR method to eliminate the signal of water in the connected pores by dipole-dipole interaction and spin-exchange interaction between the Mn2+ and the hydrogen proton. Thereby providing a simple and easy-to-use method for distinguishing connected pores and isolated pores in coal reservoirs. When the water-saturated sample is submerged in the MnCl2 solution, the movement of Mn2+ is mainly due to the diffusion. At a certain temperature, reservoir porosity, water saturation, and pore tortuosity-connectivity are the most important factors affecting the diffusion rate of Mn2+ in coal reservoirs. Due to the extremely high porosity, and well-connected, low-tortuosity pore structure of low-rank coal, Mn2+ can rapidly diffuse in its pore network. The accurate connected porosity and isolated porosity were calculated by this method. In general, during coalification processes, the originally well-connected pores were compacted and deformed, coupled with the matrix shrinkage, resulting in an increase in isolated porosity.
机译:对于现有的实验方法,干燥样品以消除孔中水的影响通常是准确测量煤储层孔隙率的第一步。然而,用相对较低的级别的干燥煤容易导致孔结构的变化。在这项研究中,我们提出了一种改进的NMR方法,通过偶极 - 偶极相互作用和Mn2 +和氢质子之间的旋转交换相互作用来消除连接的孔中的水中的水。从而提供了一种简单且易于使用的方法,用于区分连接的毛孔和隔离孔在煤储层中。当水饱和样品浸没在MnCl 2溶液中时,MN2 +的运动主要是由于扩散。在一定的温度下,储层孔隙率,水饱和度和孔隙曲折 - 连通性是影响煤储层中MN2 +扩散速率的最重要因素。由于极高的孔隙率,良好的孔隙率,低级煤的低曲折孔隙结构,MN2 +可以在其孔网络中迅速漫射。通过该方法计算精确的连接孔隙率和分离的孔隙率。通常,在聚焦过程中,将最初连接的孔压实并变形,与基质收缩相结合,导致分离的孔隙率增加。

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