Child, A, Hollerbach, R and Kersale, E (2017) Axisymmetric pulse train solutions in narrow-gap spherical Couette flow. Physica D: Nonlinear Phenomena, 348. pp. 54-59. ISSN 0167-2789
Abstract
We numerically compute the flow induced in a spherical shell by fixing the outer sphere and rotating the inner one. The aspect ratio ϵ = ( r o − r i ) / r i is set at 0.04 and 0.02, and in each case the Reynolds number measuring the inner sphere’s rotation rate is increased to ∼ 10% beyond the first bifurcation from the basic state flow. For ϵ = 0.04 the initial bifurcations are the same as in previous numerical work at ϵ = 0.154 , and result in steady one- and two-vortex states. Further bifurcations yield travelling wave solutions similar to previous analytic results valid in the ϵ → 0 limit. For ϵ = 0.02 the steady one-vortex state no longer exists, and the first bifurcation is directly to these travelling wave solutions, consisting of pulse trains of Taylor vortices travelling toward the equator from both hemispheres, and annihilating there in distinct phase-slip events. We explore these time-dependent solutions in detail, and find that they can be both equatorially symmetric and asymmetric, as well as periodic or quasi-periodic in time.
Metadata
Item Type: | Article |
---|---|
Authors/Creators: |
|
Copyright, Publisher and Additional Information: | © 2017 Published by Elsevier B.V. This is an author produced version of a paper published in Physica D: Nonlinear Phenomena. Uploaded in accordance with the publisher's self-archiving policy. |
Keywords: | Spherical Couette flow; Hydrodynamic stability; Pattern formation |
Dates: |
|
Institution: | The University of Leeds |
Academic Units: | The University of Leeds > Faculty of Engineering & Physical Sciences (Leeds) > School of Mathematics (Leeds) > Applied Mathematics (Leeds) |
Depositing User: | Symplectic Publications |
Date Deposited: | 27 Feb 2017 12:53 |
Last Modified: | 24 Feb 2018 01:38 |
Published Version: | https://doi.org/10.1016/j.physd.2017.02.009 |
Status: | Published |
Publisher: | Elsevier |
Identification Number: | 10.1016/j.physd.2017.02.009 |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:112913 |