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Numerical Investigation of Evaporation in the Developing Region of Laminar Falling Film Flow Under Constant Wall Heat Flux Conditions
- Source :
- Numerical Heat Transfer, Part A: Applications. 58:41-64
- Publication Year :
- 2010
- Publisher :
- Informa UK Limited, 2010.
-
Abstract
- A finite-volume-based incompressible flow algorithm on Cartesian grid is presented for the simulation of evaporation phenomena in a falling liquid film under low wall superheat conditions. The model employs the PLIC-VOF method to capture the free surface evolution, and the continuum surface force (CSF) approximation to emulate the effects of interfacial tension. The phase change process is represented through a source term in the interfacial cells, which is evaluated from the normal temperature gradients on either side of the interface. In order to evaluate these discontinuous temperature gradients across the interface accurately, a simple and efficient ghost fluid method has been implemented, which properly takes into account the dynamic evolution of the interface. The overall numerical model, including the phase change algorithm, has been validated against standard benchmark analytical results. Finally, the model is used to simulate the evaporating flow of a 2-D laminar, developing film falling over an inclined plane surface, subjected to constant wall heat flux. The results thus obtained, clearly illustrate the significance of inertial effects in the developing region of the falling film, which are generally neglected in the available analytical models. It is also observed, that the evaporation of fluid commences only after the growing thermal boundary layer reaches the interface, and the length of the nonevaporating section reduces with the increase in wall heat flux value. Copyright � Taylor & Francis Group, LLC.
- Subjects :
- Falling film
Evaporation
Constant wall heat flux
Phase interfaces
Physics::Fluid Dynamics
Surface tension
Superheat conditions
Incompressible flow
Two dimensional
Source terms
Mathematical models
Numerical Analysis
Thermal evaporation
Temperature gradient
Mechanics
Condensed Matter Physics
Cartesian grid
Heat flux
Dynamic evolution
Inertial effect
Developing regions
Materials science
Numerical models
Flow (psychology)
Continuum surface forces
Thermodynamics
Analytical model
Thermal boundary layer
Falling liquid films
Machinery
Phase Change
Interfacial tensions
VOF method
Ghost fluid method
Wall heat flux
Thermal gradients
Inclined planes
Numerical investigations
Finite-volume
Phase change process
Falling film flow
Laminar flow
Analytical results
Superheating
Free surfaces
Plasmas
Free surface
Liquid films
Subjects
Details
- ISSN :
- 15210634 and 10407782
- Volume :
- 58
- Database :
- OpenAIRE
- Journal :
- Numerical Heat Transfer, Part A: Applications
- Accession number :
- edsair.doi.dedup.....eacfad4c26d5985f58136a1e8af67ea8
- Full Text :
- https://doi.org/10.1080/10407782.2010.490174