Tribology of thin wetting films between bubble and moving solid surface

This work shows a successful example of coupling of theory and experiment to study the tribology of bubble rubbing on solid surface. Such kind of investigation is reported for the first time in the literature. A theory about wetting film intercalated between bubble and moving solid surface was devel...

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Main Authors: Karakashev, S.I., Stöckelhuber, K.W., Tsekov, R., Phan, Chi, Heinrich, G.
Format: Journal Article
Published: Elsevier BV 2014
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/15373
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author Karakashev, S.I.
Stöckelhuber, K.W.
Tsekov, R.
Phan, Chi
Heinrich, G.
author_facet Karakashev, S.I.
Stöckelhuber, K.W.
Tsekov, R.
Phan, Chi
Heinrich, G.
author_sort Karakashev, S.I.
building Curtin Institutional Repository
collection Online Access
description This work shows a successful example of coupling of theory and experiment to study the tribology of bubble rubbing on solid surface. Such kind of investigation is reported for the first time in the literature. A theory about wetting film intercalated between bubble and moving solid surface was developed, thus deriving the non-linear evolution differential equation which accounted for the friction slip coefficient at the solid surface. The stationary 3D film thickness profile, which appears to be a solution of the differential equation, for each particular speed of motion of the solid surface was derived by means of special procedure and unique interferometric experimental setup. This allowed us to determine the 3D map of the lift pressure within the wetting film, the friction force per unit area and the friction coefficient of rubbing at different speeds of motion of the solid surface. Thus, we observed interesting tribological details about the rubbing of the bubble on the solid surface like for example: 1. A regime of mixed friction between dry and lubricated friction exists in the range of 6–170µm/s, beyond which the rubbing between the bubble and solid becomes completely lubricated and passes through the maximum;2. The friction coefficient of rubbing has high values at very small speeds of solid's motion and reduces substantially with the increase of the speed of the solid motion until reaching small values, which change insignificantly with the further increase of the speed of the solid. Despite the numerous studies on the motion of bubble/droplet in close proximity to solid wall in the literature, the present investigation appears to be a step ahead in this area as far as we were able to derive 3D maps of the bubble close to the solid surface, which makes the investigation more profound.
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institution Curtin University Malaysia
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publishDate 2014
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spelling curtin-20.500.11937-153732018-03-29T09:07:21Z Tribology of thin wetting films between bubble and moving solid surface Karakashev, S.I. Stöckelhuber, K.W. Tsekov, R. Phan, Chi Heinrich, G. Thin wetting films Friction Stribeck curves Tribology Lift force This work shows a successful example of coupling of theory and experiment to study the tribology of bubble rubbing on solid surface. Such kind of investigation is reported for the first time in the literature. A theory about wetting film intercalated between bubble and moving solid surface was developed, thus deriving the non-linear evolution differential equation which accounted for the friction slip coefficient at the solid surface. The stationary 3D film thickness profile, which appears to be a solution of the differential equation, for each particular speed of motion of the solid surface was derived by means of special procedure and unique interferometric experimental setup. This allowed us to determine the 3D map of the lift pressure within the wetting film, the friction force per unit area and the friction coefficient of rubbing at different speeds of motion of the solid surface. Thus, we observed interesting tribological details about the rubbing of the bubble on the solid surface like for example: 1. A regime of mixed friction between dry and lubricated friction exists in the range of 6–170µm/s, beyond which the rubbing between the bubble and solid becomes completely lubricated and passes through the maximum;2. The friction coefficient of rubbing has high values at very small speeds of solid's motion and reduces substantially with the increase of the speed of the solid motion until reaching small values, which change insignificantly with the further increase of the speed of the solid. Despite the numerous studies on the motion of bubble/droplet in close proximity to solid wall in the literature, the present investigation appears to be a step ahead in this area as far as we were able to derive 3D maps of the bubble close to the solid surface, which makes the investigation more profound. 2014 Journal Article http://hdl.handle.net/20.500.11937/15373 10.1016/j.cis.2013.10.019 Elsevier BV restricted
spellingShingle Thin wetting films
Friction
Stribeck curves
Tribology
Lift force
Karakashev, S.I.
Stöckelhuber, K.W.
Tsekov, R.
Phan, Chi
Heinrich, G.
Tribology of thin wetting films between bubble and moving solid surface
title Tribology of thin wetting films between bubble and moving solid surface
title_full Tribology of thin wetting films between bubble and moving solid surface
title_fullStr Tribology of thin wetting films between bubble and moving solid surface
title_full_unstemmed Tribology of thin wetting films between bubble and moving solid surface
title_short Tribology of thin wetting films between bubble and moving solid surface
title_sort tribology of thin wetting films between bubble and moving solid surface
topic Thin wetting films
Friction
Stribeck curves
Tribology
Lift force
url http://hdl.handle.net/20.500.11937/15373