NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Back to Results
Tortuosity measurement and the effects of finite pulse widths on xenon gas diffusion NMR studies of porous mediaWe have extended the utility of NMR as a technique to probe porous media structure over length scales of approximately 100-2000 microm by using the spin 1/2 noble gas 129Xe imbibed into the system's pore space. Such length scales are much greater than can be probed with NMR diffusion studies of water-saturated porous media. We utilized Pulsed Gradient Spin Echo NMR measurements of the time-dependent diffusion coefficient, D(t), of the xenon gas filling the pore space to study further the measurements of both the pore surface-area-to-volume ratio, S/V(p), and the tortuosity (pore connectivity) of the medium. In uniform-size glass bead packs, we observed D(t) decreasing with increasing t, reaching an observed asymptote of approximately 0.62-0.65D(0), that could be measured over diffusion distances extending over multiple bead diameters. Measurements of D(t)/D(0) at differing gas pressures showed this tortuosity limit was not affected by changing the characteristic diffusion length of the spins during the diffusion encoding gradient pulse. This was not the case at the short time limit, where D(t)/D(0) was noticeably affected by the gas pressure in the sample. Increasing the gas pressure, and hence reducing D(0) and the diffusion during the gradient pulse served to reduce the previously observed deviation of D(t)/D(0) from the S/V(p) relation. The Pade approximation is used to interpolate between the long and short time limits in D(t). While the short time D(t) points lay above the interpolation line in the case of small beads, due to diffusion during the gradient pulse on the order of the pore size, it was also noted that the experimental D(t) data fell below the Pade line in the case of large beads, most likely due to finite size effects.
Document ID
20040112374
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Mair, R. W.
(Harvard-Smithsonian Center for Astrophysics Cambridge, MA 02138, United States)
Hurlimann, M. D.
Sen, P. N.
Schwartz, L. M.
Patz, S.
Walsworth, R. L.
Date Acquired
August 21, 2013
Publication Date
April 1, 2001
Publication Information
Publication: Magnetic resonance imaging
Volume: 19
Issue: 3-4
ISSN: 0730-725X
Subject Category
Life Sciences (General)
Distribution Limits
Public
Copyright
Other
Keywords
Non-NASA Center
NASA Discipline Life Sciences Technologies

Available Downloads

There are no available downloads for this record.
No Preview Available