Evolution and breakdown of a vortex street in two dimensions
- 1 August 1981
- journal article
- research article
- Published by Cambridge University Press (CUP) in Journal of Fluid Mechanics
- Vol. 109, 435-463
- https://doi.org/10.1017/s0022112081001158
Abstract
The initial-value problem defined by two parallel vortex sheets of opposite sign is studied. Strictly two-dimensional, incompressible, nearly inviscid dynamics is assumed throughout. The roll-up of the sheets into a vortex street is simulated numerically using 4096 point vortices. Much longer runs than in previous work are performed, and it is found that only for a finite range of values of the ratio,h/λ, of sheet separation to perturbation wavelength, does a long-lived vortex street emerge. Forh/λ [gsim ] 0·6 a pairing transition within each row intervenes. Forh/λ [lsim ] 0·3 we find oscillatory modes.Using up to 16384 point vortices, we also study the breakdown of the metastable street to a two-dimensional, turbulent shear flow. The vortex blobs that made up the street may merge with others of the same sign after the breakdown, but otherwise persist throughout the turbulent regime. Neither their disintegration nor amalgamation with vortices of opposite sign was observed. Using dimensional arguments we derive the relevant scaling theory, and show that it applies to a flow started from two random vortex sheets. The resulting turbulence is not self-similar. For the turbulent flow that follows from the breakdown of a regular vortex street two length scales with different power-law growth in time appear to be necessary. The important differences in the asymptotic structure of flows initialized from random and regular sheets leads us to question the idea of universality. The influence of the symmetry of the initial perturbation on the subsequent development is also considered.Keywords
This publication has 22 references indexed in Scilit:
- Vortex Waves: Stationary "States," Interactions, Recurrence, and BreakingPhysical Review Letters, 1978
- Vortex pairing : the mechanism of turbulent mixing-layer growth at moderate Reynolds numberJournal of Fluid Mechanics, 1974
- Turbulent vortex streets and the entrainment mechanism of the turbulent wakeJournal of Fluid Mechanics, 1974
- Instability, coalescence and fission of finite-area vortex structuresJournal of Fluid Mechanics, 1973
- Numerical study of slightly viscous flowJournal of Fluid Mechanics, 1973
- On the phenomenon of vortex street breakdownJournal of Fluid Mechanics, 1971
- Dynamical evolution of two-dimensional unstable shear flowsJournal of Fluid Mechanics, 1971
- Vortex growth in jetsJournal of Fluid Mechanics, 1970
- The formation of vortex streetsJournal of Fluid Mechanics, 1962
- Do vortex sheets roll up?Rendiconti del Circolo Matematico di Palermo Series 2, 1959