The effect of binary solution concentration and laser heating configuration on non-isothermal heat transfer and evaporation rate; Experimental Thermal and Fluid Science; Vol. 169

Détails bibliographiques
Parent link:Experimental Thermal and Fluid Science.— .— Amsterdam: Elsevier Science Publishing Company Inc.
Vol. 169.— 2025.— Article number 111529, 19 p.
Autres auteurs: Misyura S. Ya. Sergey Yakovlevich, Egorov R. I. Roman Igorevich, Zaitsev A. S. Aleksandr Sergeevich, Morozov V. S. Vladimir Sergeevich
Résumé:Title screen
The control over heat exchange and evaporation of multicomponent and binary films of solutions is widely applied. Some technologies necessitate homogenous mixing of liquids and uniform particle deposition, as well as increased heat transfer and enhanced mixing of liquids. To date, there are practically no research works on the effect of local heating and concentration of volatile components on increased convection and heat transfer. The article examines the effect of ethanol concentration (from 0 to 90 %) on heat transfer in binary liquids, as well as the effects of single- and two-point laser heating on heat transfer. It has previously been shown that during uniform heating and local laser heating, a highly inhomogeneous temperature field forms in a single-component liquid, leading to a nonuniform deposition of colloidal particles. The experimental data of the presented article indicate that two-point heating and a small concentration of ethanol destabilize the dynamic and temperature field, leading to a much more uniform temperature distribution. For the first time it is found that the contribution of the convective velocity in he heat transfer coefficient during the transition from water to water-alcohol solution is approximately equal to 135 %. The transition of a stable velocity field to a chaotic one is determined by the ratio of the thermal to soluble Marangoni number. The paper examines the influence of various key factors on the heat transfer coefficient of a binary liquid. Two characteristic heat exchange modes are implemented at changes in alcohol concentrations. The obtained results will serve to apply a new mechanism of transfer enhancement for chemical and biochemical reactors, to intensify heat transfer during cooling of surfaces, as well as for homogeneous particle deposition during the creation of microfilms
Текстовый файл
AM_Agreement
Langue:anglais
Publié: 2025
Sujets:
Accès en ligne:https://doi.org/10.1016/j.expthermflusci.2025.111529
Format: MixedMaterials Électronique Chapitre de livre
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=680423

MARC

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330 |a The control over heat exchange and evaporation of multicomponent and binary films of solutions is widely applied. Some technologies necessitate homogenous mixing of liquids and uniform particle deposition, as well as increased heat transfer and enhanced mixing of liquids. To date, there are practically no research works on the effect of local heating and concentration of volatile components on increased convection and heat transfer. The article examines the effect of ethanol concentration (from 0 to 90 %) on heat transfer in binary liquids, as well as the effects of single- and two-point laser heating on heat transfer. It has previously been shown that during uniform heating and local laser heating, a highly inhomogeneous temperature field forms in a single-component liquid, leading to a nonuniform deposition of colloidal particles. The experimental data of the presented article indicate that two-point heating and a small concentration of ethanol destabilize the dynamic and temperature field, leading to a much more uniform temperature distribution. For the first time it is found that the contribution of the convective velocity in he heat transfer coefficient during the transition from water to water-alcohol solution is approximately equal to 135 %. The transition of a stable velocity field to a chaotic one is determined by the ratio of the thermal to soluble Marangoni number. The paper examines the influence of various key factors on the heat transfer coefficient of a binary liquid. Two characteristic heat exchange modes are implemented at changes in alcohol concentrations. The obtained results will serve to apply a new mechanism of transfer enhancement for chemical and biochemical reactors, to intensify heat transfer during cooling of surfaces, as well as for homogeneous particle deposition during the creation of microfilms 
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610 1 |a Natural convection 
610 1 |a Heat mass transfer 
610 1 |a laser heating 
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701 1 |a Misyura  |b S. Ya.  |c specialist in the field of power engineering  |c leading researcher of Tomsk Polytechnic University, candidate of technical sciences  |f 1964-  |g Sergey Yakovlevich  |9 21039 
701 1 |a Egorov  |b R. I.  |c specialist in the field of heat and power engineering  |c Researcher of Tomsk Polytechnic University, candidate of physical and mathematical sciences  |f 1980-  |g Roman Igorevich  |9 19642 
701 1 |a Zaitsev  |b A. S.  |c specialist in the field of heat and power engineering  |c Associate Professor, highly qualified worker of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1991-  |g Aleksandr Sergeevich  |9 19177 
701 1 |a Morozov  |b V. S.  |g Vladimir Sergeevich 
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