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Use of infrared thermography for the study of evaporation in a square capillary tube
Authors:F Chauvet  S Cazin  P Duru  M Prat
Affiliation:1. Université de Toulouse, INPT, UPS, IMFT (Institut de Mécanique des Fluides de Toulouse), Allée Camille Soula, F-31400 Toulouse, France;2. CNRS, IMFT, F-31400 Toulouse, France;1. Institute of Fluid Mechanics and Aerodynamics, Alarich-Weiss-Str. 10, Technische Universität Darmstadt, 64287 Darmstadt, Germany;2. Department of Physics and Center for Complex Fluids Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA;2. State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, PR China;3. Beijing Key Laboratory of Multiphase Flow and Heat Transfer for Low Grade Energy, North China Electric Power University, Beijing 102206, PR China;1. SINTEF Buiding and Infrastructure, Trondheim, Norway;2. NTNU, Norwegian University of Science and technology, Department of Civil and Transport Engineering, Trondheim, Norway;3. SAPA Building Systems GmbH;1. School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore;2. Singapore Institute of Manufacturing Technology, 2 Fusionopolis Way, Singapore 138634, Singapore
Abstract:In this paper we report experimental results on evaporation of a volatile wetting liquid in a capillary tube of square internal cross section, when conditions are such that liquid films develop along the tube internal corners under the effect of capillary forces, as the bulk meniscus recedes inside the tube. Combining an infrared thermography technique with visualizations by ombroscopy makes it possible to determine the time-space evolution of the temperature minimum on the capillary outer surface together with the bulk meniscus position within the tube. When the tube is held horizontal, the temperature minimum stays at the tube entrance and the evaporation rate reaches a stationary value. In contrast with the horizontal case, the position of the temperature minimum changes when the bulk meniscus has sufficiently receded inside the tube when the tube is vertical and opened at the top. The rate of evaporation then decreases significantly. This is explained by the thinning of the corner films in the vertical tube entrance region, under the conjugated effects of gravity and viscous forces up to the depinning of the films from the tube entrance. When the tube is held horizontal, the capillary effects are dominant and the film thickness remains essentially constant in the tube entrance region. This analysis is supported by a simple model of liquid flow within the corner films.
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