Closed loop cavitation control - A step towards sonomechatronics

Research output: Contribution to journalArticleResearchpeer review

Authors

  • Kai Alexander Saalbach
  • Hendrik Ohrdes
  • Jens Twiefel
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Details

Original languageEnglish
Pages (from-to)14-23
Number of pages10
JournalUltrasonics Sonochemistry
Volume44
Early online date5 Feb 2018
Publication statusPublished - Jun 2018

Abstract

In the field of sonochemistry, many processes are made possible by the generation of cavitation. This article is about closed loop control of ultrasound assisted processes with the aim of controlling the intensity of cavitation-based sonochemical processes. This is the basis for a new research field which the authors call “sonomechatronics”. In order to apply closed loop control, a so called self-sensing technique is applied, which uses the ultrasound transducer's electrical signals to gain information about cavitation activity. Experiments are conducted to find out if this self-sensing technique is capable of determining the state and intensity of acoustic cavitation. A distinct frequency component in the transducer's current signal is found to be a good indicator for the onset and termination of transient cavitation. Measurements show that, depending on the boundary conditions, the onset and termination of transient cavitation occur at different thresholds, with the onset occurring at a higher value in most cases. This known hysteresis effect offers the additional possibility of achieving an energetic optimization by controlling cavitation generation. Using the cavitation indicator for the implementation of a double set point closed loop control, the mean driving current was reduced by approximately 15% compared to the value needed to exceed the transient cavitation threshold. The results presented show a great potential for the field of sonomechatronics. Nevertheless, further investigations are necessary in order to design application-specific sonomechatronic processes.

Keywords

    Cavitation, Closed loop cavitation control, Closed loop control, Sonochemistry

ASJC Scopus subject areas

Cite this

Closed loop cavitation control - A step towards sonomechatronics. / Saalbach, Kai Alexander; Ohrdes, Hendrik; Twiefel, Jens.
In: Ultrasonics Sonochemistry, Vol. 44, 06.2018, p. 14-23.

Research output: Contribution to journalArticleResearchpeer review

Saalbach KA, Ohrdes H, Twiefel J. Closed loop cavitation control - A step towards sonomechatronics. Ultrasonics Sonochemistry. 2018 Jun;44:14-23. Epub 2018 Feb 5. doi: 10.1016/j.ultsonch.2018.01.021, 10.15488/11116
Saalbach, Kai Alexander ; Ohrdes, Hendrik ; Twiefel, Jens. / Closed loop cavitation control - A step towards sonomechatronics. In: Ultrasonics Sonochemistry. 2018 ; Vol. 44. pp. 14-23.
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