EVAPORATING EXTENDED MENISCUS IN A V-SHAPED CHANNEL

Citation
Lw. Swanson et Gp. Peterson, EVAPORATING EXTENDED MENISCUS IN A V-SHAPED CHANNEL, Journal of thermophysics and heat transfer, 8(1), 1994, pp. 172-180
Citations number
24
Categorie Soggetti
Engineering, Mechanical",Thermodynamics
ISSN journal
08878722
Volume
8
Issue
1
Year of publication
1994
Pages
172 - 180
Database
ISI
SICI code
0887-8722(1994)8:1<172:EEMIAV>2.0.ZU;2-D
Abstract
A mathematical model of the evaporating extended meniscus in a V-shape d channel was developed to investigate the effect of wedge half-angle and vapor mass transfer on meniscus morphology, fluid flow, and heat t ransfer. The liquid was unsaturated, flowed down the wedge due to grav ity, and evaporated into atmospheric air. The average Nusselt number w as found to decrease as the wedge half-angle increased, primarily beca use of an increase in the average wall-interface temperature differenc e. The mean curvature changed from zero at the interline to a constant , at a distance approximately three times the adsorbed layer thickness from the wall. The capillary pressure calculated from first principle s was nearly twice as large as that determined from a semicircular app roximation of the mean curvature. We believe that this was partially d ue to the presence of the van der Waals attraction near the wall. Down stream from the inlet, both thermocapillary convection and pressure re covery in the liquid caused the interline to move downward toward the wedge apex and then upward away from the apex until the piezometric pr essure gradient was equal to zero. The locus of liquid dry out points were estimated based on axial locations where the piezometric pressure gradient was equal to zero; this represented a point of zero flow in the channel. As expected, the points where dry out occurred, moved clo ser to the inlet as the surface mass flux was increased.