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Lunar soil properties and soil mechanics. Flow in porous media under rarefied gas conditions. Research phase: Fluid conductivity of lunar surface materialsTheoretical and experimental research on fluid conductivity of lunar surface materials is summarized. Theoretical methods were developed for the analysis of transitional and free-molecular flows, and for analysis of lunar permeability probe data in general. Experimental studies of rarefied flows under conditions of a large pressure gradient show flows in the continuum regime to be responsible for the largest portion of the pressure drop between source and sink for one dimensional flow, provided the entrance Knudsen number is sufficiently small. The concept of local similarity leading to a universal nondimensional function of Knudsen number was shown to have approximate validity; flows in all regimes may be described in terms of an area fraction and a single length parameter. Synthetic porous media prepared from glass beads exhibited flow behavior similar in many regards to that of a natural sandstone; studies using artificial stones with known pore configurations may lead to new insight concerning the structure of natural materials. The experimental method involving the use of segmented specimens of large permeability is shown to be fruitful.
Document ID
19720021193
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Hurlbut, F. C.
(California Univ. Berkeley, CA, United States)
Jih, C. R.
(California Univ. Berkeley, CA, United States)
Date Acquired
August 6, 2013
Publication Date
May 1, 1972
Subject Category
Space Sciences
Report/Patent Number
SSL-SER-13-ISSUE-43
NASA-CR-130103
Report Number: SSL-SER-13-ISSUE-43
Report Number: NASA-CR-130103
Accession Number
72N28843
Funding Number(s)
CONTRACT_GRANT: NGR-05-003-406
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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