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Coarse-grained description of thermo-capillary flow
David Jasnow
,
Jorge Viñals
Physics and Astronomy (Twin Cities)
Research output
:
Contribution to journal
›
Article
›
peer-review
219
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Scopus citations
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Keyphrases
Order Parameter
100%
Thermocapillary Flow
100%
Surface Tension
66%
Phase Separation
33%
Fluid Flow
33%
Mesoscopic
33%
Spinodal Decomposition
33%
Temperature Gradient
33%
Bulk Phase
33%
Navier-Stokes Equations
33%
Binary Fluid
33%
Cahn-Hilliard Equation
33%
Interfacial Region
33%
Transition Zone
33%
Advective Transport
33%
Interfacial Forces
33%
Mean Curvature
33%
Tangential Force
33%
Capillary Force
33%
Parameter Representation
33%
Capillary Migration
33%
Explicit Coupling
33%
Tangential Derivative
33%
Capillary-driven Flow
33%
Coarse-grained Method
33%
Inhomogeneous Navier-Stokes Equations
33%
Engineering
Tension Surface
100%
Navier-Stokes Equation
100%
Interfacial Tension
100%
Fluid Flow
50%
Tangential Force
50%
Interfacial Region
50%
Capillary Force
50%
Bulk Phase
50%
Phase Separation
50%
Thermal Gradient
50%
Temperature Gradients
50%
Advection
50%
Chemical Engineering
Fluid Flow
100%
Phase Separation
100%
Thermal Gradient
100%
Mathematics
Navier-Stokes Equation
100%
Mean Curvature
50%
Material Science
Surface Tension
100%
Fluid Flow
50%