INERTIAL EFFECT ON STABILITY OF CONE-AND-PLATE FLOW - PART 2 - NON-AXISYMMETRICAL MODES

Citation
Y. Renardy et Do. Olagunju, INERTIAL EFFECT ON STABILITY OF CONE-AND-PLATE FLOW - PART 2 - NON-AXISYMMETRICAL MODES, Journal of non-Newtonian fluid mechanics, 78(1), 1998, pp. 27-45
Citations number
20
Categorie Soggetti
Mechanics
ISSN journal
03770257
Volume
78
Issue
1
Year of publication
1998
Pages
27 - 45
Database
ISI
SICI code
0377-0257(1998)78:1<27:IEOSOC>2.0.ZU;2-B
Abstract
We consider torsional flow of a viscoelastic fluid in a cone-and-plate device. This flow is known to undergo a purely elastic instability wh en the Deborah number reaches a critical value. Beyond this critical v alue a Hopf bifurcation to spiral vortices occurs. In this paper we co nsider the stability of the flow to non-axisymmetric disturbances when the Reynolds number is non-zero. We examine the effect of inertia on the critical value of the Deborah number at the onset of instability, the winding number of the spiral waves, as well as the wave number of the vortices. The constitutive model of Oldroyd-B is used in the prese nt analysis. Our results show that in general when the cone angle is s mall the stability characteristics of the flow do not change much with inertia, indicating that the creeping model is indeed a very good app roximation in such cases. We show that the critical Deborah number ten ds to increase with inertia in the case of non-axisymmeric disturbance s. One important implication of our results is that whereas the creepi ng flow approximation gives a good prediction of the onset of instabil ity the post critical bifurcations will be influenced by the inertial terms. In particular, since inertia tends to stabilize non-axisymmetri c modes while destabilizing axisymmetric modes, the interaction of the two modes could be more significant than is predicted by the creeping flow results. Indeed, experimental results reported in McKinley et al ., 1995, J. Fluid. Mech. 285, 123, show that for parameter values for which the creeping flow equations predict bifurcations to spiral vorti ces, purely axisymmetric modes were also observed. An energy analysis of the non-axisymmetric modes shows the mechanism driving the instabil ity to be the coupling between the perturbation polymeric stress and t he base velocity. (C) 1998 Elsevier Science B.V. All rights reserved.