Author:
ELLINGSEN KJETIL,RISSO FRÉDÉRIC
Abstract
This work is an experimental study of the rise of an air bubble in still water.
For the bubble diameter considered, path oscillations develop in the absence of
shape oscillations and the effect of surfactants is shown to be negligible. Both the
three-dimensional motion of the bubble and the velocity induced in the liquid are
investigated. After the initial acceleration stage, the bubble shape remains constant
and similar to an oblate ellipsoid with its symmetry axis parallel to the bubble-centre
velocity, and with constant velocity magnitude. The bubble motion combines path
oscillations with slow trajectory displacements. (These displacements, which consist
of horizontal drift and rotation about a vertical axis, are shown to have no influence
on the oscillations). The bubble dynamics involve two unstable modes which have the
same frequency and are π/2 out of phase. The primary mode develops first, leading
to a plane zigzag trajectory. The secondary mode then grows, causing the trajectory
to progressively change into a circular helix. Liquid-velocity measurements are taken
up to 150 radii behind the bubble. The nature of the liquid flow field is analysed from
systematic comparisons with potential theory and direct numerical simulations. The
flow is potential in front of the bubble and a long wake develops behind. The wake
structure is controlled by two mechanisms: the development of a quasi-steady wake
that spreads around the non-rectilinear bubble trajectory; and the wake instability
that generates unsteady vortices at the bubble rear. The velocities induced by the
wake vortices are small compared to the bubble velocity and, except in the near wake,
the flow is controlled by the quasi-steady wake.
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics
Cited by
236 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献