Liquid surface depression and bubble generation by acoustic radiation

Liquid surfaces can be depressed by applying acoustic radiation force. The balance between the acoustic radiation force, surface tension force, and buoyant force sustains the stable dimple depression. Beyond a certain threshold, higher acoustic radiation force leads to instability and bubble formati...

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Veröffentlicht in:Droplet (Print) 2024-07, Vol.3 (3), p.n/a
Hauptverfasser: Fang, Zilong, Wan, Kai‐Tak, Taslim, Mohammad E.
Format: Artikel
Sprache:eng
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Zusammenfassung:Liquid surfaces can be depressed by applying acoustic radiation force. The balance between the acoustic radiation force, surface tension force, and buoyant force sustains the stable dimple depression. Beyond a certain threshold, higher acoustic radiation force leads to instability and bubble formation. The bubble size is determined by the acoustic radiation force and the liquid surface tension. Effective management of bubble generation can be achieved by controlling acoustic radiation waves. A novel method for creating depression on liquid surfaces and generating bubbles is described, which requires neither gas supply nor direct contact with equipment. Acoustic radiation can induce a stable depression on a liquid surface, similar to air impingement on a liquid surface. The balance between the acoustic radiation force, surface tension force, and buoyant force sustains the stable dimple depression. Beyond a certain threshold, higher acoustic radiation force leads to instability and bubble formation. The bubble size is determined by the acoustic radiation force and the liquid surface tension. Effective management of bubble generation can be achieved by controlling acoustic radiation waves. A novel method for creating depression on liquid surface and generating bubbles is described, which requires neither gas supply nor direct contact with equipment.
ISSN:2731-4375
2769-2159
2731-4375
DOI:10.1002/dro2.123