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Magnetic Resonance Characterization of Porous Media Using Diffusion through Internal Magnetic Fields

机译:利用内部磁场扩散对多孔介质的磁共振表征

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摘要

When a porous material is inserted into a uniform magnetic field, spatially varying fields typically arise inside the pore space due to susceptibility contrast between the solid matrix and the surrounding fluid. As a result, direct measurement of the field variation may provide a unique opportunity to characterize the pore geometry. The sensitivity of nuclear magnetic resonance (NMR) to inhomogeneous field variations through their dephasing effects on diffusing spins is unique and powerful. Recent theoretical and experimental research sheds new light on how to utilize susceptibility-induced internal field gradients to quantitatively probe the microstructure of porous materials. This article reviews ongoing developments based on the stimulated echo-pulse sequence to extend the characterization of porous media using both spatially resolved and unresolved susceptibility-induced internal gradients that operate on a diffusing-spin ensemble.
机译:当将多孔材料插入均匀的磁场中时,由于固体基质与周围流体之间的磁化率差异,通常会在孔空间内部出现空间变化的磁场。结果,对场变化的直接测量可以提供表征孔隙几何形状的独特机会。核磁共振(NMR)通过其对扩散自旋的消相作用对非均匀场变化的敏感性是独特而强大的。最近的理论和实验研究为如何利用磁化诱导的内部场梯度来定量探测多孔材料的微观结构提供了新的思路。本文回顾了基于受激回波脉冲序列的不断发展,以利用空间分辨和未分辨的磁化率引起的内部梯度扩展多孔介质的特性,这些内部梯度作用于扩散自旋整体。

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