A numerical simulation of acoustic field within liquids subject to three orthogonal ultrasounds

W. Zhai, H. M. Liu, Z. Y. Hong, W. J. Xie, B. Wei

Research output: Contribution to journalArticlepeer-review

61 Scopus citations

Abstract

When one beam of ultrasound propagates along a single direction in liquids, the cavitation effect is always confined to a limited volume close to the ultrasonic source. This greatly limits the application of power ultrasound in liquid processing and materials fabrication. In this study, a methodology for applying three orthogonal ultrasounds within liquids has been proposed. By solving the Helmholtz equation, the sound field distribution characteristics are investigated in 1D (one dimensional), 2D (two dimensional) and 3D (three dimensional) ultrasounds at their resonant frequencies, which show that the coherent interaction of three beams of ultrasounds is able to strikingly promote the sound pressure level and reinforce the mean acoustic energy density as compared with that in 1D case. Hence, the potential cavitation volume is enlarged remarkably. This opens new possibilities for the design and optimization of ultrasonic technology in fabricating materials.

Original languageEnglish
Pages (from-to)130-135
Number of pages6
JournalUltrasonics Sonochemistry
Volume34
DOIs
StatePublished - 1 Jan 2017

Keywords

  • Acoustic energy density
  • Cavitation
  • Power ultrasound
  • Sound pressure

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