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Air sheet contraction

delete2020-07-20
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PRE
AI
Z
Zhen Jian
P
Peng Deng
M
Marie-Jean Thoraval *
DOI:10.1017/jfm.2020.385delete
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Abstract

Abstract

En 中文
A two-dimensional air sheet in a surrounding liquid contracts under surface tension. We investigate numerically and analytically this contraction dynamics for a range of Ohnesorge numbers . In a similar way as for liquid films, three contraction regimes can be identified based on the : vortex shedding, smooth contraction and viscous regime. For , the rim can even pinch-off due to the rim deformations caused by the vortex shedding. In contrast with a liquid film that continuously accelerates towards the Taylor-Culick velocity when the surrounding fluid can be neglected, the air film contraction velocity first rises to a maximum value before decreasing due to the drag of the external fluid on the moving rim. This follows a capillary-inertial scaling at low and continuously shifts to a capillary-viscous scaling with increasing . We demonstrate that the decreasing contraction velocity scales as , which is faster than the scaling derived under the assumption of a constant drag coefficient. The transition between the capillary-inertial and capillary-viscous regimes can be characterised by the local time evolving Ohnesorge number based on the thickness of the rim. The oscillations of the rim appear at a critical local Weber number . Then they follow a well-defined oscillation frequency with a characteristic Strouhal number. Beyond a local Reynolds number larger than 200, the oscillations become more irregular with more complex vortex sheddings, eventually leading to the pinch-off of the rim.
Keywords:
drops and bubbles
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Journal

Journal of Fluid Mechanics cover
Journal of Fluid Mechanics
IF:
3.9
Papers:
2.0W
Citations:
9.4W

Organization

X
xi'an jiaotong university
Scholars:
9.3W
Papers: 6.7W
Citations: 75
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