The effect of surface roughness on Nuclear Magnetic Resonance relaxation
Most theoretical treatments of Nuclear Magnetic Resonance (NMR) measurements of porous media assume ideal pore geometries for the pores (i.e. slabs, spheres or cylinders) with welldefined surface-to-volume ratios (S/V). This same assumption is commonly adopted for naturally occurring materials, whe...
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Universitätsbibliothek Leipzig
2016
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ndltd-DRESDEN-oai-qucosa.de-bsz-15-qucosa-2143922016-11-26T03:30:26Z The effect of surface roughness on Nuclear Magnetic Resonance relaxation Nordin, Matias Knight, Rosemary Diffusion poröse Medien Kernspintomographie Relaxation Oberflächenbeschaffenheit Diffusion porous media NMR relaxation surface roughness ddc:530 Most theoretical treatments of Nuclear Magnetic Resonance (NMR) measurements of porous media assume ideal pore geometries for the pores (i.e. slabs, spheres or cylinders) with welldefined surface-to-volume ratios (S/V). This same assumption is commonly adopted for naturally occurring materials, where the pore geometry can differ substantially from these ideal shapes. In this paper the effect of the roughness of the pore surface on the T2 relaxation spectrum is studied. By homogenization of the problem using an electrostatic approach it is found that the effective surface relaxivity can increase dramatically in the presence of rough surfaces. This leads to a situation where the system responds as a pore with a smooth surface, but with significantly increased surface relaxivity. As a result the standard approach of assuming an idealized geometry with known surface to-volume and inverting the T2 relaxation spectrum to a pore size distribution is no longer valid. The effective relaxivity is found to be fairly insensitive to the shape of the roughness but strongly dependent on the width and depth of the surface geometry. Universitätsbibliothek Leipzig Stanford University, Department of Geophysics Chalmers University of Technology, Department of Civil and Environmental Engineering Universität Leipzig, Fakultät für Physik und Geowissenschaften 2016-11-25 doc-type:article application/pdf http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-214392 urn:nbn:de:bsz:15-qucosa-214392 http://www.qucosa.de/fileadmin/data/qucosa/documents/21439/diff_fund_26%282016%293.pdf Diffusion fundamentals 26 (2016) eng |
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English |
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Diffusion poröse Medien Kernspintomographie Relaxation Oberflächenbeschaffenheit Diffusion porous media NMR relaxation surface roughness ddc:530 |
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Diffusion poröse Medien Kernspintomographie Relaxation Oberflächenbeschaffenheit Diffusion porous media NMR relaxation surface roughness ddc:530 Nordin, Matias Knight, Rosemary The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
description |
Most theoretical treatments of Nuclear Magnetic Resonance (NMR) measurements of porous media assume ideal pore geometries for the pores (i.e. slabs, spheres or cylinders) with welldefined
surface-to-volume ratios (S/V). This same assumption is commonly adopted for naturally occurring materials, where the pore geometry can differ substantially from these ideal shapes. In this paper the effect of the roughness of the pore surface on the T2 relaxation spectrum is studied. By homogenization of the problem using an electrostatic approach it is found that the effective surface relaxivity can increase dramatically in the presence of rough surfaces. This leads to a situation where the system responds as a pore with a smooth surface, but with
significantly increased surface relaxivity. As a result the standard approach of assuming an idealized geometry with known
surface to-volume and inverting the T2 relaxation spectrum to a pore size distribution is no longer valid. The effective relaxivity is found to be fairly insensitive to the shape of the roughness but strongly dependent on the width and depth of the surface geometry. |
author2 |
Stanford University, Department of Geophysics |
author_facet |
Stanford University, Department of Geophysics Nordin, Matias Knight, Rosemary |
author |
Nordin, Matias Knight, Rosemary |
author_sort |
Nordin, Matias |
title |
The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
title_short |
The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
title_full |
The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
title_fullStr |
The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
title_full_unstemmed |
The effect of surface roughness on Nuclear Magnetic Resonance relaxation |
title_sort |
effect of surface roughness on nuclear magnetic resonance relaxation |
publisher |
Universitätsbibliothek Leipzig |
publishDate |
2016 |
url |
http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-214392 http://nbn-resolving.de/urn:nbn:de:bsz:15-qucosa-214392 http://www.qucosa.de/fileadmin/data/qucosa/documents/21439/diff_fund_26%282016%293.pdf |
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AT nordinmatias theeffectofsurfaceroughnessonnuclearmagneticresonancerelaxation AT knightrosemary theeffectofsurfaceroughnessonnuclearmagneticresonancerelaxation AT nordinmatias effectofsurfaceroughnessonnuclearmagneticresonancerelaxation AT knightrosemary effectofsurfaceroughnessonnuclearmagneticresonancerelaxation |
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1718398128497885184 |