Unsteady temperature fields of evaporating water droplets exposed to conductive, convective and radiative heating

被引:61
作者
Kuznetsov, G. V. [1 ]
Piskunov, M. V. [1 ]
Volkov, R. S. [1 ]
Strizhak, P. A. [1 ]
机构
[1] Natl Res Tomsk Polytech Univ, 30 Lenin Ave, Tomsk 634050, Russia
关键词
Conductive; convective; radiative heating; Water droplet; Unsteady temperature field; Planar Laser Induced Fluorescence; Heating and evaporation rates; LASER-INDUCED FLUORESCENCE; OPTICAL-CONSTANTS; 2-PHASE FLOWS; VELOCIMETRY; THERMOMETRY; PARAMETERS; DYNAMICS; VELOCITY; MODEL; FUEL;
D O I
10.1016/j.applthermaleng.2017.12.021
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper, we present the rates and typical durations of high-temperature heating and evaporation of water droplets determined for the dominating conductive, convective or radiative energy supply. We developed three setups for heating a water droplet: on a substrate (conduction), in a muffle furnace (radiation), and in a heated airflow (convection). The heating temperature is up to 1000 degrees C to correspond high temperature technologies, namely thermal cleaning of fluids, polydisperse fire extinguishing with low water consumption, etc. With the help using of a high-speed video recording system, we determine the water droplet lifetimes (the times of their complete evaporation). Using Planar Laser Induced Fluorescence, we establish the quantitative differences between the water droplet heating rates (heating time to lifetime ratios) on the three setups. Maximum temperatures are determined that the water droplets reach when exposed to different heating mechanisms. Furthermore, we obtain the criterial dependences to connect the main attributes of temperature field generation of an evaporating water droplet with the heating conditions. Finally, we identify possible implications of the research findings and ways to further improve the newly developed experimental approach. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:340 / 355
页数:16
相关论文
共 48 条
[1]   Planar fluorescence for round bubble imaging and its application for the study of an axisymmetric two-phase jet [J].
Akhmetbekov, Yerbol K. ;
Alekseenko, Sergey V. ;
Dulin, Vladimir M. ;
Markovich, Dmitriy M. ;
Pervunin, Konstantin S. .
EXPERIMENTS IN FLUIDS, 2010, 48 (04) :615-629
[2]  
[Anonymous], 1994, Light and Water: Radiative Transfer in Natural Waters
[3]   Recent developments in enhanced heat transfer [J].
Bergles, Arthur E. .
HEAT AND MASS TRANSFER, 2011, 47 (08) :1001-1008
[4]   Interferometric technique for measurement of droplet diameter [J].
Bilsky, A. V. ;
Lozhkin, Yu A. ;
Markovich, D. M. .
THERMOPHYSICS AND AEROMECHANICS, 2011, 18 (01) :1-12
[5]   EXPLOSIVE VAPORIZATION OF SINGLE DROPLETS BY LASERS - COMPARISON OF MODELS WITH EXPERIMENTS [J].
CARLS, JC ;
BROCK, JR .
OPTICS LETTERS, 1988, 13 (10) :919-921
[6]   A simultaneous planar laser-induced fluorescence, particle image velocimetry and particle tracking velocimetry technique for the investigation of thin liquid-film flows [J].
Charogiannis, Alexandros ;
An, Jae Sik ;
Markides, Christos N. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2015, 68 :516-536
[7]   Spatially and temporally resolved measurements of the temperature inside droplets impinging on a hot solid surface [J].
Chaze, William ;
Caballina, Ophelie ;
Castanet, Guillaume ;
Lemoine, Fabrice .
EXPERIMENTS IN FLUIDS, 2017, 58 (08)
[8]   The saturation of the fluorescence and its consequences for laser-induced fluorescence thermometry in liquid flows [J].
Chaze, William ;
Caballina, Ophelie ;
Castanet, Guillaume ;
Lemoine, Fabrice .
EXPERIMENTS IN FLUIDS, 2016, 57 (04)
[9]   A Particle-Tracking-Velocimetry (PTV) Investigation of Liquid Injection in a DC Plasma Jet [J].
Damiani, David ;
Tarlet, Dominique ;
Meillot, Erick .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2014, 23 (03) :340-353
[10]   Review of passive heat transfer augmentation techniques [J].
Dewan, A ;
Mahanta, P ;
Raju, KS ;
Kumar, PS .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2004, 218 (A7) :509-527