Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary

This thesis presents an axisymmetric numerical model to simulate interfacial flows near a sharp corner, where contact line pinning occurs. The method has been used to analyze drop imbibition into a capillary. To evaluate the performance of the numerical method, for a liquid drop initially placed par...

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Bibliographic Details
Main Author: Ferdowsi, Poorya A.
Other Authors: Bussmann, Markus
Language:en_ca
Published: 2012
Subjects:
CFD
VoF
Online Access:http://hdl.handle.net/1807/32709
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spelling ndltd-TORONTO-oai-tspace.library.utoronto.ca-1807-327092013-04-19T19:57:32ZCombined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open CapillaryFerdowsi, Poorya A.MultiphaseCFDSurface tensionNumerical modelVoFnormals and curvaturedrop imbibitionAdvectioninterfacial flows0548This thesis presents an axisymmetric numerical model to simulate interfacial flows near a sharp corner, where contact line pinning occurs. The method has been used to analyze drop imbibition into a capillary. To evaluate the performance of the numerical method, for a liquid drop initially placed partially within a capillary, a thermodynamic model has also been developed, to predict equilibrium states. The first part of this thesis presents an axisymmetric VoF algorithm to simulate interfacial flows near a sharp corner. (1) A new method to exactly calculate the normals and curvatures of any circle with a radius as small as the grid size is presented. This method is a hybrid least squares height function technique which fits a discretized osculating circle to a curve, from which interface normals and curvature can be evaluated. (2) A novel technique for applying the contact angle boundary condition has been devised, based on the definition of an osculating circle near a solid phase. (3) A new flux volume construction technique is presented, which can be applied to any split advection scheme. Unlike the traditional approach where the flux volumes are assumed rectangular, the new flux volumes can be either trapezoidal or triangular. The new technique improves the accuracy and consistency of the advection scheme. (4) Explicit PLIC reconstruction expressions for axisymmetric coordinates have been derived. (5) Finally, a numerical treatment of VoF for contact line motion near a sharp corner is presented, base on the idea of contact line pinning and an edge contact angle. The second part of the thesis is on the imbibition of a drop into an open capillary. A thermodynamic analysis based on minimization of an interfacial surface energy function is presented to predict equilibrium configurations of drops. Based on the drop size compared to the hole size, the equilibrium contact angle, and the geometry of the capillary, the drop can be totally imbibed by the capillary, or may not wet the capillary at all. The thesis concludes with application of the numerical scheme to the same problem, to examine the dynamics of wetting or dewetting of a capillary. All of the simulations yield results that correspond to the equilibrium states predicted by the thermodynamic analysis, but offer additional insight on contact line motion and interface deformation near the capillary edge.Bussmann, Markus2012-062012-08-21T17:55:43ZNO_RESTRICTION2012-08-21T17:55:43Z2012-08-21Thesishttp://hdl.handle.net/1807/32709en_ca
collection NDLTD
language en_ca
sources NDLTD
topic Multiphase
CFD
Surface tension
Numerical model
VoF
normals and curvature
drop imbibition
Advection
interfacial flows
0548
spellingShingle Multiphase
CFD
Surface tension
Numerical model
VoF
normals and curvature
drop imbibition
Advection
interfacial flows
0548
Ferdowsi, Poorya A.
Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
description This thesis presents an axisymmetric numerical model to simulate interfacial flows near a sharp corner, where contact line pinning occurs. The method has been used to analyze drop imbibition into a capillary. To evaluate the performance of the numerical method, for a liquid drop initially placed partially within a capillary, a thermodynamic model has also been developed, to predict equilibrium states. The first part of this thesis presents an axisymmetric VoF algorithm to simulate interfacial flows near a sharp corner. (1) A new method to exactly calculate the normals and curvatures of any circle with a radius as small as the grid size is presented. This method is a hybrid least squares height function technique which fits a discretized osculating circle to a curve, from which interface normals and curvature can be evaluated. (2) A novel technique for applying the contact angle boundary condition has been devised, based on the definition of an osculating circle near a solid phase. (3) A new flux volume construction technique is presented, which can be applied to any split advection scheme. Unlike the traditional approach where the flux volumes are assumed rectangular, the new flux volumes can be either trapezoidal or triangular. The new technique improves the accuracy and consistency of the advection scheme. (4) Explicit PLIC reconstruction expressions for axisymmetric coordinates have been derived. (5) Finally, a numerical treatment of VoF for contact line motion near a sharp corner is presented, base on the idea of contact line pinning and an edge contact angle. The second part of the thesis is on the imbibition of a drop into an open capillary. A thermodynamic analysis based on minimization of an interfacial surface energy function is presented to predict equilibrium configurations of drops. Based on the drop size compared to the hole size, the equilibrium contact angle, and the geometry of the capillary, the drop can be totally imbibed by the capillary, or may not wet the capillary at all. The thesis concludes with application of the numerical scheme to the same problem, to examine the dynamics of wetting or dewetting of a capillary. All of the simulations yield results that correspond to the equilibrium states predicted by the thermodynamic analysis, but offer additional insight on contact line motion and interface deformation near the capillary edge.
author2 Bussmann, Markus
author_facet Bussmann, Markus
Ferdowsi, Poorya A.
author Ferdowsi, Poorya A.
author_sort Ferdowsi, Poorya A.
title Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
title_short Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
title_full Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
title_fullStr Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
title_full_unstemmed Combined Numerical and Thermodynamic Analysis of Drop Imbibition Into an Axisymmetric Open Capillary
title_sort combined numerical and thermodynamic analysis of drop imbibition into an axisymmetric open capillary
publishDate 2012
url http://hdl.handle.net/1807/32709
work_keys_str_mv AT ferdowsipooryaa combinednumericalandthermodynamicanalysisofdropimbibitionintoanaxisymmetricopencapillary
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