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Leidenfrost drops on liquid baths: theory
sobac, benjamin; rednikov, alexey; Maquet, Laurent et al.
201568th Annual Meeting of the APS Division of Fluid Dynamics
 

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Disciplines :
Physics
Author, co-author :
sobac, benjamin
rednikov, alexey
Maquet, Laurent ;  Université de Liège > Département de physique > Physique statistique
Darbois-Texier, Baptiste ;  Université de Liège > Département de physique > Physique statistique
Duchesne, Alexis ;  Université de Liège > Département de physique > Optofluidique
Brandenbourger, Martin ;  Université de Liège > Département de physique > Physique statistique
Dorbolo, Stéphane  ;  Université de Liège > Département de physique > Physique statistique
colinet, pierre
Language :
English
Title :
Leidenfrost drops on liquid baths: theory
Publication date :
2015
Event name :
68th Annual Meeting of the APS Division of Fluid Dynamics
Event date :
November 22–24, 2015
References of the abstract :
It is well known that a liquid drop released over a very hot surface generally does not contact the surface nor boils but rather levitates over a thin vapor film generated by its own evaporation (Leidenfrost effect). In particular, the case of a hot (and flat) solid substrate has been extensively studied in recent years. In contrast, we here focus on Leidenfrost drops over a superheated liquid bath, addressing the problem theoretically and comparing our predictions with experimental results, detailed in a separate talk. We predict the geometry of the drop and of the liquid bath, based on the hydrostatic Young-Laplace and lubrication equations. A good agreement is observed with the available experimental data concerning the deformation of the liquid bath. The modeling also yields a rather complete insight into the shape of the drop. As in the case of a solid substrate, the vapor layer generally appears to be composed of a vapor pocket surrounded by a circular neck. The influences of the superheat and of the drop size are parametrically investigated. A number of scaling laws are established. Unlike the case of a solid substrate, no chimney instability was found in the range of drop size studied.
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