Characterization of cavitation under ultrasonic horn tip-Proposition of an acoustic cavitation parameter

被引:42
作者
Kozmus, Gregor [1 ]
Zevnik, Jure [1 ]
Hocevar, Marko [1 ]
Dular, Matevz [1 ]
Petkovsek, Martin [1 ]
机构
[1] Univ Ljubljana, Fac Mech Engn, Askerceva 6, Ljubljana 1000, Slovenia
关键词
Acoustic cavitation; Cavitation number; Ultrasonic horn; Salt solutions; BUBBLE COALESCENCE; FREQUENCY;
D O I
10.1016/j.ultsonch.2022.106159
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Acoustic cavitation, generated by a piezo-driven transducer, is a commonly used technique in a variety of processes, from homogenization, emulsification, and intensification of chemical reactions to surface cleaning and wastewater treatment. An ultrasonic horn, the most commonly used acoustic cavitation device, creates unique cavitation conditions under the horn tip that depend on various parameters such as the tip diameter, the driving frequency of the horn, its amplitude, and fluid properties. Unlike for hydrodynamic cavitation, the scaling laws for acoustic cavitation are poorly understood. Empirical relationships between cavitation dynamics, ultrasonic horn operating conditions, and fluid properties were found through systematic characterization of cavitation under the tip. Experiments were conducted in distilled water with various sodium chloride salt concentrations under different horn amplitudes, tip geometries, and ambient pressures. Cavitation characteristics were monitored by high-speed (200,000 fps) imaging, and numerous relations were found between operating conditions and cavitation dynamics. The compared results are discussed along with a proposal of a novel acoustic cavitation parameter and its relationship to the size of the cavitation cloud under the horn tip. Similar to the classical hydrodynamic cavitation number, the authors propose for the first time an acoustic cavitation parameter based on experimental results.
引用
收藏
页数:10
相关论文
共 45 条
[31]   Acoustic Cavitation Assisted Preparation and Characterization of Polyhydroxy Butyrate-Chitosan Composite [J].
Jadhav, Ananda J. ;
Patil, Pranit ;
Goswami, Abhijeet D. ;
Holkar, Chandrakant R. ;
Pinjari, Dipak V. .
JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2025,
[32]   Numerical and Experimental Studies on the Effect of Surface Roughness and Ultrasonic Frequency on Bubble Dynamics in Acoustic Cavitation [J].
Altay, Rana ;
Sadaghiani, Abdolali K. ;
Sevgen, M. Ilker ;
Sisman, Alper ;
Kosar, Ali .
ENERGIES, 2020, 13 (05)
[33]   Numerical Characterization of Acoustic Cavitation Bubbles with Respect to the Bubble Size Distribution at Equilibrium [J].
Kerboua, Kaouther ;
Hamdaoui, Oualid ;
Alghyamah, Abdulaziz .
PROCESSES, 2021, 9 (09)
[34]   Failure analysis of a Ti-6Al-4V ultrasonic horn used in cavitation erosion tests [J].
Nedelcu, D. ;
Cojocaru, V. ;
Nedeloni, M. ;
Peris-Bendu, F. ;
Ghican, A. .
MECHANIKA, 2015, (04) :272-276
[35]   Analysis of Dependences of Threshold Parameters for Acoustic Cavitation Onset in a Liquid on an Ultrasonic Frequency, Hydrostatic Pressure, and Temperature [J].
Smirnov, I., V ;
Mikhailova, N., V ;
Yakupov, B. A. ;
Volkov, G. A. .
TECHNICAL PHYSICS, 2022, 67 (02) :161-170
[36]   Analysis of Dependences of Threshold Parameters for Acoustic Cavitation Onset in a Liquid on an Ultrasonic Frequency, Hydrostatic Pressure, and Temperature [J].
I. V. Smirnov ;
N. V. Mikhailova ;
B. A. Yakupov ;
G. A. Volkov .
Technical Physics, 2022, 67 :161-170
[37]   Numerical modelling of ultrasonic waves in a bubbly Newtonian liquid using a high-order acoustic cavitation model [J].
Lebon, G. S. Bruno ;
Tzanakis, I. ;
Djambazov, G. ;
Pericleous, K. ;
Eskin, D. G. .
ULTRASONICS SONOCHEMISTRY, 2017, 37 :660-668
[38]   Oxidation of alkylarenes using aqueous potassium permanganate under cavitation: comparison of acoustic and hydrodynamic techniques [J].
Ambulgekar, GV ;
Samant, SD ;
Pandit, AB .
ULTRASONICS SONOCHEMISTRY, 2005, 12 (1-2) :85-90
[39]   Modelling particle breakage in in-line fluidic devices: Application to wet mill, ultrasonic horn, and vortex-based cavitation device [J].
Tiwari, Vidit ;
Ranade, Vivek .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2025, 213 :230-242
[40]   Acoustic cavitation and ultrasound-assisted nitration process in ultrasonic microreactors: The effects of channel dimension, solvent properties and temperature [J].
Zhao, Shuainan ;
Yao, Chaoqun ;
Zhang, Qiang ;
Chen, Guangwen ;
Yuan, Quan .
CHEMICAL ENGINEERING JOURNAL, 2019, 374 (68-78) :68-78