Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport

Application of conventional theory of transport and deposition to small particles or large colloids, on the order of 1 micron in diameter, has received surprisingly little attention in colloid science. While the favorable deposition of colloidal particles ( < 0.5 micron diameter) has repeatedly b...

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Main Author: Cramer, Michael Christian
Other Authors: Sáez, Eduardo
Language:EN
Published: The University of Arizona. 2005
Subjects:
Online Access:http://hdl.handle.net/10150/195568
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-1955682015-10-23T04:42:49Z Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport Cramer, Michael Christian Sáez, Eduardo Sáez, Eduardo Sáez, Eduardo Ela, Wendell Baygents, James Zelinksi, Brian colloid enhanced transport rotating disk particle deposition Application of conventional theory of transport and deposition to small particles or large colloids, on the order of 1 micron in diameter, has received surprisingly little attention in colloid science. While the favorable deposition of colloidal particles ( < 0.5 micron diameter) has repeatedly been shown to agree with the Smoluchowski-Levich approximation for a convective-diffusion process, larger particles are known to deviate from this solute-like mass transfer behavior. The rotating disk, used in the experiments performed in this work, is a model experimental system that has been employed in the past to de-convolute and quantify the mechanisms of particle transport. Experimental evidence shows that particle transport to the rotating disk deviates from the predictions of the complete three-dimensional convective-diffusion equation, including hydrodynamic and surface-surface interaction forces, in that non-uniform deposition is observed over the surface of the disk. Fluid inertial effects, observed to be significant in capillary flow, have been suggested in the literature as an explanation of non-uniform deposition on the rotating disk. Calculations performed in this work show that while inertial lift forces are significant, they are not the dominant cause of non-uniform deposition. Instead, hydrodynamic blocking of available deposition surface area is shown to accurately describe experimental deposition profiles. The effect of particle size on surface area exclusion and hydrodynamic scattering are separately assessed to demonstrate that the blocking model is not only phenomenologically accurate, but also an important part of the mechanistic description of transport in the rotating disk system. 2005 text Electronic Dissertation http://hdl.handle.net/10150/195568 137354377 1208 EN Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona.
collection NDLTD
language EN
sources NDLTD
topic colloid
enhanced transport
rotating disk
particle deposition
spellingShingle colloid
enhanced transport
rotating disk
particle deposition
Cramer, Michael Christian
Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
description Application of conventional theory of transport and deposition to small particles or large colloids, on the order of 1 micron in diameter, has received surprisingly little attention in colloid science. While the favorable deposition of colloidal particles ( < 0.5 micron diameter) has repeatedly been shown to agree with the Smoluchowski-Levich approximation for a convective-diffusion process, larger particles are known to deviate from this solute-like mass transfer behavior. The rotating disk, used in the experiments performed in this work, is a model experimental system that has been employed in the past to de-convolute and quantify the mechanisms of particle transport. Experimental evidence shows that particle transport to the rotating disk deviates from the predictions of the complete three-dimensional convective-diffusion equation, including hydrodynamic and surface-surface interaction forces, in that non-uniform deposition is observed over the surface of the disk. Fluid inertial effects, observed to be significant in capillary flow, have been suggested in the literature as an explanation of non-uniform deposition on the rotating disk. Calculations performed in this work show that while inertial lift forces are significant, they are not the dominant cause of non-uniform deposition. Instead, hydrodynamic blocking of available deposition surface area is shown to accurately describe experimental deposition profiles. The effect of particle size on surface area exclusion and hydrodynamic scattering are separately assessed to demonstrate that the blocking model is not only phenomenologically accurate, but also an important part of the mechanistic description of transport in the rotating disk system.
author2 Sáez, Eduardo
author_facet Sáez, Eduardo
Cramer, Michael Christian
author Cramer, Michael Christian
author_sort Cramer, Michael Christian
title Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
title_short Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
title_full Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
title_fullStr Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
title_full_unstemmed Physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
title_sort physicochemical aspects of colloid deposition in a rotating disk system: implications for contaminant transport
publisher The University of Arizona.
publishDate 2005
url http://hdl.handle.net/10150/195568
work_keys_str_mv AT cramermichaelchristian physicochemicalaspectsofcolloiddepositioninarotatingdisksystemimplicationsforcontaminanttransport
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