DocumentCode :
3423836
Title :
Revelation of optimum modes of ultrasonic influence for atomization of viscous liquids by mathematical modelling
Author :
Khmelev, Vladimir N. ; Golykh, Roman N. ; Shalunov, Andrey V. ; Shalunova, Anna V. ; Genne, Dmitry V.
Author_Institution :
Center of Ultrasonic Technol., Biysk, Russia
fYear :
2012
fDate :
2-6 July 2012
Firstpage :
114
Lastpage :
123
Abstract :
In the article the process of cavitation low-frequency (up to 250 kHz) ultrasonic atomization of viscous liquids in a layer is investigated. It takes place with entering of acoustic energy to working zone through liquid. To reveal optimum modes of ultrasonic influence depending on physical properties of atomized liquid (viscosity, surface tension, etc.) the model describing stepwise transformation of mechanical vibration energy of ulrtasonic frequency into energy of capillary waves providing the formation of drops was proposed and developed. For the first time we offer theoretical explanation of essential dependence of drop diameter on vibration amplitude of spraying surface based on changes of mean thickness of ridges of capillary waves according to their amplitude due to occurence of nonlinear effects. Obtained results can be a base for the design of specialized ultrasonic atomizers of liquids with high viscosity for the formation of aerosols with specified productivity and dispersed features.
Keywords :
aerosols; capillary waves; cavitation; computational fluid dynamics; dissociation; drops; non-Newtonian flow; sprays; viscosity; acoustic energy; aerosol formation; atomized liquid; capillary wave ridges; cavitation low-frequency; drop diameter; drop formation; high viscosity liquids; mathematical modelling; mechanical vibration energy; nonlinear effects; optimum modes; spraying surface; stepwise transformation; ultrasonic atomizer design; ultrasonic frequency; vibration amplitude; viscous liquid atomization; Acoustics; Atomic layer deposition; Equations; Liquids; Mathematical model; Shock waves; Surface waves; Ultrasound; aerosol; atomization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Micro/Nanotechnologies and Electron Devices (EDM), 2012 IEEE 13th International Conference and Seminar of Young Specialists on
Conference_Location :
Erlagol, Altai
Print_ISBN :
978-1-4673-2517-2
Type :
conf
DOI :
10.1109/EDM.2012.6310201
Filename :
6310201
Link To Document :
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