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Theoretical investigation of stable dropwise condensation heat transfer on a horizontal tube
Affiliation:1. School of Physical Science and Mathematics, Xuzhou Institute of Technology, Xuzhou 221000, Jiangsu, China;2. School of Mechatronics Engineering, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China;1. University of Leeds, School of Chemical & Process Engineering, Leeds LS2 9JT, United Kingdom;2. University of Huddersfield, School of Computing & Engineering, Huddersfield HD1 3DH, United Kingdom;3. University of Leeds, School of Computing, Leeds LS2 9JT, United Kingdom;4. Ecole Centrale de Lyon (LTDS), CNRS UMR 5513, 69134 Ecully, France
Abstract:The heat transfer model of stable dropwise condensation for saturated vapor on a horizontal tube is developed based on previous theoretical models. Through a comprehensive analysis of all the contributing thermal resistances, the convection effect inside the droplet itself is taken into consideration in the model. For the stable dropwise condensation process in dynamic conservation, a method of double integration of heat flux through numerous inclined plates with different inclination angles is introduced to obtain the overall heat flux through the horizontal tube surface. The model can predict the variation of heat transfer of stable dropwise condensation with different contact angles outside a horizontal tube. The influences of contact angle, temperature difference, and other typical parameters on both a single droplet and the whole condensation process are discussed. The results indicate that a high contact angle can cause a size reduction of falling droplets from condensing surface and thus taking more heat away. The adsorbed condensate film adds an extra thermal resistance and its thickness plays a significant role on the dropwise condensation heat transfer.
Keywords:Theoretical model  Dropwise condensation heat transfer  Contact angle  Horizontal tube
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