Author:
KUROSE RYOICHI,KOMORI SATORU
Abstract
The drag and lift forces acting on a rotating rigid sphere in a
homogeneous linear shear
flow are numerically studied by means of a three-dimensional numerical
simulation.
The effects of both the fluid shear and rotational speed of the sphere
on the drag and
lift forces are estimated for particle Reynolds numbers of
1[les ]Rep[les ]500.The results show that the drag forces both on a stationary sphere in
a linear shear
flow and on a rotating sphere in a uniform unsheared flow increase with
increasing
the fluid shear and rotational speed. The lift force on a stationary sphere
in a linear
shear flow acts from the low-fluid-velocity side to the high-fluid-velocity
side for low
particle Reynolds numbers of Rep<60,
whereas it acts from the high-velocity side to
the low-velocity side for high particle Reynolds numbers of
Rep>60. The change of
the direction of the lift force can be explained well by considering the
contributions of
pressure and viscous forces to the total lift in terms of flow separation.
The predicted
direction of the lift force for high particle Reynolds numbers is also
examined
through a visualization experiment of an iron particle falling in a linear
shear flow of
a glycerin solution. On the other hand, the lift force on a rotating sphere
in a uniform
unsheared flow acts in the same direction independent of particle Reynolds
numbers.
Approximate expressions for the drag and lift coefficients for a rotating
sphere in a
linear shear flow are proposed over the wide range of
1[les ]Rep[les ]500.
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics
Cited by
284 articles.
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