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Gravity Induced Formation of Concentration Gradients in Supersaturated Binary SolutionsExperimental and theoretical studies of the formation of solute concentration gradient in supersaturated binary solutions in a gravitational field were carried out. The formation of solute concentration gradient was associated with the gravity induced redistribution of subcritical solute clusters. The birth-death process of the new solute-rich phase domains (subcritical solute clusters) was described in terms of the time-dependent Ginzburg Landau model developed for metastable state relaxation in binary (solute + solvent) non-critical solutions in the presence of a gravitational field. A new mathematical Ansatz was developed for solution of the model equations. This Ansatz has allowed to approach for the first time the following important problems: (1) Microstructure of solute distribution inside of the subcritical solute clusters. The analytical results obtained demonstrate that solute inside of the subcritical solute clusters is heterogeneously distributed with a spatially periodic structure. (2) Macrostructure of the solute subcritical clusters distribution in a gravitational field. The subcritical solute clusters are found to be distributed heterogeneously in a gravitational field. This heterogeneity, which is due to the heterogeneous birth-death process of the subcritical solute clusters in a gravitational field, initiates a noticeable solute concentration gradient in vertical columns of supersaturated binary solutions. An analysis and comparison of theoretical results and experimental data related to the solute concentration gradient formation in a gravitational field are presented. It is also demonstrated that the critical radius of solute clusters (radius of nucleation) and induction time are gravity-dependent.
Document ID
19970022754
Acquisition Source
Marshall Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Izmailov, Alexander F.
(Polytechnic Univ. Brooklyn, NY United States)
Myerson, Allan S.
(Polytechnic Univ. Brooklyn, NY United States)
Date Acquired
August 17, 2013
Publication Date
January 1, 1996
Publication Information
Publication: Physica A
Publisher: Elsevier Science B. V.
Volume: 224
ISSN: 0378-4371
Subject Category
Materials Processing
Report/Patent Number
NASA-CR-204733
NAS 1.26:204733
Accession Number
97N72142
Funding Number(s)
CONTRACT_GRANT: NAG8-960
Distribution Limits
Public
Copyright
Public Use Permitted.
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