Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes
Dual-perspective high-speed imaging and acoustic detection is used to characterise cavitation activity at the tip of a commercial 20 kHz (f0) ultrasonic horn, over 2 s sonications across the range of input powers available (20 – 100%). Imaging at 1 × 105 frames per second (fps) captures cavitation-b...
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2021-01-01
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doaj-d55f38a8cc0249d2878a03418bee9f9d2021-02-27T04:37:14ZengElsevierUltrasonics Sonochemistry1350-41772021-01-0170105273Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudesLukman Yusuf0Mark D. Symes1Paul Prentice2Cavitation Laboratory, Centre for Medical and Industrial Ultrasonics, University of Glasgow, Glasgow G12 8QQ, United KingdomWestCHEM, School of Chemistry, University of Glasgow, University Avenue, Glasgow G12 8QQ, United KingdomCavitation Laboratory, Centre for Medical and Industrial Ultrasonics, University of Glasgow, Glasgow G12 8QQ, United Kingdom; Corresponding author.Dual-perspective high-speed imaging and acoustic detection is used to characterise cavitation activity at the tip of a commercial 20 kHz (f0) ultrasonic horn, over 2 s sonications across the range of input powers available (20 – 100%). Imaging at 1 × 105 frames per second (fps) captures cavitation-bubble cluster oscillation at the horn-tip for the duration of the sonication. Shadowgraphic imaging at 2 Mfps, from an orthogonal perspective, probes cluster collapse and shock wave generation at higher temporal resolution, facilitating direct correlation of features within the acoustic emission data generated by the bubble activity. f0/m subharmonic collapses of the primary cavitation cluster directly beneath the tip, with m increasing through integer values at increasing input powers, are studied. Shock waves generated by periodic primary cluster collapses dominate the non-linear emissions of the cavitation noise spectra. Transitional input powers for which the value of m is indistinct, are identified. Overall shock wave content within the emission signals collected during sonications at transitional input powers are reduced, relative to input powers with distinct m. The findings are relevant for the optimisation of applications such as sonochemistry, known to be mediated by bubble collapse phenomena.http://www.sciencedirect.com/science/article/pii/S1350417720306763Ultrasonic hornCavitationShock waveSubharmonicVibration amplitude |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lukman Yusuf Mark D. Symes Paul Prentice |
spellingShingle |
Lukman Yusuf Mark D. Symes Paul Prentice Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes Ultrasonics Sonochemistry Ultrasonic horn Cavitation Shock wave Subharmonic Vibration amplitude |
author_facet |
Lukman Yusuf Mark D. Symes Paul Prentice |
author_sort |
Lukman Yusuf |
title |
Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
title_short |
Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
title_full |
Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
title_fullStr |
Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
title_full_unstemmed |
Characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
title_sort |
characterising the cavitation activity generated by an ultrasonic horn at varying tip-vibration amplitudes |
publisher |
Elsevier |
series |
Ultrasonics Sonochemistry |
issn |
1350-4177 |
publishDate |
2021-01-01 |
description |
Dual-perspective high-speed imaging and acoustic detection is used to characterise cavitation activity at the tip of a commercial 20 kHz (f0) ultrasonic horn, over 2 s sonications across the range of input powers available (20 – 100%). Imaging at 1 × 105 frames per second (fps) captures cavitation-bubble cluster oscillation at the horn-tip for the duration of the sonication. Shadowgraphic imaging at 2 Mfps, from an orthogonal perspective, probes cluster collapse and shock wave generation at higher temporal resolution, facilitating direct correlation of features within the acoustic emission data generated by the bubble activity. f0/m subharmonic collapses of the primary cavitation cluster directly beneath the tip, with m increasing through integer values at increasing input powers, are studied. Shock waves generated by periodic primary cluster collapses dominate the non-linear emissions of the cavitation noise spectra. Transitional input powers for which the value of m is indistinct, are identified. Overall shock wave content within the emission signals collected during sonications at transitional input powers are reduced, relative to input powers with distinct m. The findings are relevant for the optimisation of applications such as sonochemistry, known to be mediated by bubble collapse phenomena. |
topic |
Ultrasonic horn Cavitation Shock wave Subharmonic Vibration amplitude |
url |
http://www.sciencedirect.com/science/article/pii/S1350417720306763 |
work_keys_str_mv |
AT lukmanyusuf characterisingthecavitationactivitygeneratedbyanultrasonichornatvaryingtipvibrationamplitudes AT markdsymes characterisingthecavitationactivitygeneratedbyanultrasonichornatvaryingtipvibrationamplitudes AT paulprentice characterisingthecavitationactivitygeneratedbyanultrasonichornatvaryingtipvibrationamplitudes |
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