(In)compressibility and parameter identification in phase field models for capillary flows

Phase field (diffuse interface) models accommodate diffusive triple line motion with variable contact angle, thus allowing for the no-slip boundary condition without the stress singularities. We consider two commonly used classes of phase field models: the compositionally compressible (CC) model wit...

Full description

Bibliographic Details
Main Authors: Dehsara M., Fu H., Mesarović S.Đ, Sekulić D.P., Krivilyov M.
Format: Article
Language:English
Published: Serbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, Belgrade 2017-01-01
Series:Theoretical and Applied Mechanics
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/1450-5584/2017/1450-55841700009D.pdf
id doaj-bb1b4eeadcd24a9cb087731f1ff897da
record_format Article
spelling doaj-bb1b4eeadcd24a9cb087731f1ff897da2020-11-25T00:17:11ZengSerbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, BelgradeTheoretical and Applied Mechanics1450-55842406-09252017-01-0144218921410.2298/TAM170803009D1450-55841700009D(In)compressibility and parameter identification in phase field models for capillary flowsDehsara M.0Fu H.1Mesarović S.Đ2Sekulić D.P.3Krivilyov M.4Washington State University, School of Mechanical and Materials Engineering, Pullman, USAUniversity of Kentucky, Department of Mechanical Engineering, Lexington, USAWashington State University, School of Mechanical and Materials Engineering, Pullman, USAUniversity of Kentucky, Department of Mechanical Engineering, Lexington, USA + State Key Laboratory for Welding and Advanced Joining School of Materials Science and Engineering Harbin Institute of Technology, Harbin, ChinaInformatics and Physics Udmurt State University, Laboratory of Condensed Matter Physics Institute of Mathematics, Izhevsk, RussiaPhase field (diffuse interface) models accommodate diffusive triple line motion with variable contact angle, thus allowing for the no-slip boundary condition without the stress singularities. We consider two commonly used classes of phase field models: the compositionally compressible (CC) model with compressibility limited to the fluid mix within the diffuse interface, and the incompressible (IC) model. First, we show that the CC model applied to fluids with dissimilar mass densities exhibits the computational instability leading to the breakup of the triple line. We provide a qualitative physical explanation of this instability and argue that the compositional compressibility within the diffuse interface is inconsistent with the global incompressible flow. Second, we derive the IC model as a systematic approximation to the CC model, based on a suitable choice of continuum velocity field. Third, we benchmark the IC model against sharp interface theory and experimental kinetics. The triple line kinetics is well represented by the triple line mobility parameter. Finally, we investigate the effects of the bulk phase field diffusional mobility parameter on the kinetics of the wetting process and find that within a wide range of magnitudes the bulk mobility does not affect the flow.http://www.doiserbia.nb.rs/img/doi/1450-5584/2017/1450-55841700009D.pdfdiffusive triple line motionno-slip boundary conditionquasi compressibilitycomputational instabilities
collection DOAJ
language English
format Article
sources DOAJ
author Dehsara M.
Fu H.
Mesarović S.Đ
Sekulić D.P.
Krivilyov M.
spellingShingle Dehsara M.
Fu H.
Mesarović S.Đ
Sekulić D.P.
Krivilyov M.
(In)compressibility and parameter identification in phase field models for capillary flows
Theoretical and Applied Mechanics
diffusive triple line motion
no-slip boundary condition
quasi compressibility
computational instabilities
author_facet Dehsara M.
Fu H.
Mesarović S.Đ
Sekulić D.P.
Krivilyov M.
author_sort Dehsara M.
title (In)compressibility and parameter identification in phase field models for capillary flows
title_short (In)compressibility and parameter identification in phase field models for capillary flows
title_full (In)compressibility and parameter identification in phase field models for capillary flows
title_fullStr (In)compressibility and parameter identification in phase field models for capillary flows
title_full_unstemmed (In)compressibility and parameter identification in phase field models for capillary flows
title_sort (in)compressibility and parameter identification in phase field models for capillary flows
publisher Serbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, Belgrade
series Theoretical and Applied Mechanics
issn 1450-5584
2406-0925
publishDate 2017-01-01
description Phase field (diffuse interface) models accommodate diffusive triple line motion with variable contact angle, thus allowing for the no-slip boundary condition without the stress singularities. We consider two commonly used classes of phase field models: the compositionally compressible (CC) model with compressibility limited to the fluid mix within the diffuse interface, and the incompressible (IC) model. First, we show that the CC model applied to fluids with dissimilar mass densities exhibits the computational instability leading to the breakup of the triple line. We provide a qualitative physical explanation of this instability and argue that the compositional compressibility within the diffuse interface is inconsistent with the global incompressible flow. Second, we derive the IC model as a systematic approximation to the CC model, based on a suitable choice of continuum velocity field. Third, we benchmark the IC model against sharp interface theory and experimental kinetics. The triple line kinetics is well represented by the triple line mobility parameter. Finally, we investigate the effects of the bulk phase field diffusional mobility parameter on the kinetics of the wetting process and find that within a wide range of magnitudes the bulk mobility does not affect the flow.
topic diffusive triple line motion
no-slip boundary condition
quasi compressibility
computational instabilities
url http://www.doiserbia.nb.rs/img/doi/1450-5584/2017/1450-55841700009D.pdf
work_keys_str_mv AT dehsaram incompressibilityandparameteridentificationinphasefieldmodelsforcapillaryflows
AT fuh incompressibilityandparameteridentificationinphasefieldmodelsforcapillaryflows
AT mesarovicsđ incompressibilityandparameteridentificationinphasefieldmodelsforcapillaryflows
AT sekulicdp incompressibilityandparameteridentificationinphasefieldmodelsforcapillaryflows
AT krivilyovm incompressibilityandparameteridentificationinphasefieldmodelsforcapillaryflows
_version_ 1725380656343547904