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Direct Numerical Simulation of Quasispherical Bubble Motion in Ultrasonic Standing Wave Fields

delete2024-10-22
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PRE
AI
H
Hao Ni
M
Mingjun Pang *
DOI:10.1021/acs.iecr.4c02590delete
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Abstract

Abstract

En 中文
To promote the development of an ultrasonic levitation technique, it is essential to understand the mechanism of bubble motion in ultrasonic standing wave fields. The trajectory of bubble motion, the levitation position, and the accompanying change in the surrounding flow field were investigated. The effects of sound pressure amplitude p a , acoustic frequency f, bubble radius R b, and gravity level G/g on bubble motion were fully analyzed. It was found that the bubble levitation position y/lambda decreases with an increase in p a but it increases with an increase in R b , f, and G/g. The chaos of flow fields increases with an increase in p a , Rb, and f, but it decreases first and then increases with an increase in G/g. The time required for a bubble to remain in levitation and the flow field to be steady decreases with an increase in p a and R b , but it increases first and then decreases with an increase in f and G/g. Based on the equilibrium relationship between the time-averaged primary Bjerknes force F Bj and buoyancy force F buoy , a dimensionless parameter X is proposed to determine whether or not a bubble will remain in levitation, and the equation to predict bubble levitation position is presented.
Keywords:
SPHERICAL BUBBLE
DYNAMICS
MICROCHANNEL
OSCILLATION
PARTICLES
VELOCITY
GRAVITY
CAPSULE
SYSTEMS
DESIGN

Journal

I
Industrial and Engineering Chemistry Research
IF:
3.9
Papers:
4.0W
Citations:
9.6W

Organization

C
Changzhou University
Scholars:
1.3W
Papers: 8.1K
Citations: 1.1W