The effect of a temperature-dependent viscosity on cooling droplet-droplet collisions

被引:7
作者
Durubal, P. M. [1 ]
Tavanaei, A. [1 ]
Buist, K. A. [1 ]
Kuipers, J. A. M. [1 ]
Baltussen, M. W. [1 ]
机构
[1] Eindhoven Univ Technol, Dept Chem Engn & Chem, Multiphase Reactors Grp, POB 513, NL-5600 MB Eindhoven, Netherlands
关键词
Droplet collisions; Interaction regimes; Temperature-dependent viscosity; Volume of fluid; Direct numerical simulations; SURFACE-TENSION MODELS; BINARY COLLISIONS; COALESCENCE; VOLUME; SEPARATION; BEHAVIOR; REGIMES; GAS;
D O I
10.1016/j.ces.2023.119277
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A detailed understanding of the collision dynamics of liquid droplets is relevant to natural phenomena and industrial applications. These droplets could experience temperature changes altering their physical properties, which affect the droplet collisions. As viscosity is one of the relevant physical properties, this study focuses on the effect of temperature on viscosity, with an Arrhenius temperature dependence, of collisions of two equal-sized droplets using the Volume of Fluid Method. The results show that the higher temperature of the droplets leads to an effectively lower viscosity, leading to increased interface oscillations. This leads to the onset of separation at lower Weber numbers as expected. The local cooling droplets will create a local viscosity profiles, which results in the formation of a ridge upon combination of droplets. In addition, the collision outcomes sometimes cannot be explained solely on basis of an effective viscosity, undermining the usefulness of existing collision regime maps.
引用
收藏
页数:14
相关论文
共 55 条
[41]  
Rajkotwala A.H, 2020, Chem. Eng. Sci. X
[42]   Influence of viscosity, surface and interfacial tensions on the liquid droplet collisions [J].
Shlegel, N. E. ;
Tkachenko, P. P. ;
Strizhak, P. A. .
CHEMICAL ENGINEERING SCIENCE, 2020, 220
[43]   Collision Behavior of Heterogeneous Liquid Droplets [J].
Shlegel, N. E. ;
Strizhak, P. A. ;
Volkov, R. S. .
MICROGRAVITY SCIENCE AND TECHNOLOGY, 2019, 31 (05) :487-503
[44]   Advances in modelling of binary droplet collision outcomes in Sprays: A review of available knowledge [J].
Sommerfeld, M. ;
Pasternak, L. .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2019, 117 :182-205
[45]   Modelling droplet collision outcomes for different substances and viscosities [J].
Sommerfeld, Martin ;
Kuschel, Matthias .
EXPERIMENTS IN FLUIDS, 2016, 57 (12)
[46]   RELAXATION AND BREAKUP OF AN INITIALLY EXTENDED DROP IN AN OTHERWISE QUIESCENT FLUID [J].
STONE, HA ;
LEAL, LG .
JOURNAL OF FLUID MECHANICS, 1989, 198 :399-427
[47]   Numerical investigation of head-on droplet collision with lattice Boltzmann method [J].
Sun, Kai ;
Jia, Ming ;
Wang, Tianyou .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 58 (1-2) :260-275
[48]  
Team T.P, 2020, The trilinos project website
[49]   Viscosity of aqueous carbohydrate solutions at different temperatures and concentrations [J].
Telis, V. R. N. ;
Telis-Romero, J. ;
Mazzotti, H. B. ;
Gabas, A. L. .
INTERNATIONAL JOURNAL OF FOOD PROPERTIES, 2007, 10 (01) :185-195
[50]   Collisions of water droplets in the high-temperature air [J].
Tkachenko, P. P. ;
Shlegel, N. E. ;
Strizhak, P. A. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 170