Global stability of a jet in crossflow

A linear stability analysis shows that the jet in crossflow is characterized by self-sustained global oscillations for a jet-to-crossflow velocity ratio of 3. A fully three-dimensional unstable steady-state solution and its associated global eigenmodes are computed by direct numerical simulations an...

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Veröffentlicht in:Journal of fluid mechanics 2009-04, Vol.624 (avril), p.33-44
Hauptverfasser: BAGHERI, SHERVIN, SCHLATTER, PHILIPP, SCHMID, PETER J., HENNINGSON, DAN S.
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Sprache:eng
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Zusammenfassung:A linear stability analysis shows that the jet in crossflow is characterized by self-sustained global oscillations for a jet-to-crossflow velocity ratio of 3. A fully three-dimensional unstable steady-state solution and its associated global eigenmodes are computed by direct numerical simulations and iterative eigenvalue routines. The steady flow, obtained by means of selective frequency damping, consists mainly of a (steady) counter-rotating vortex pair (CVP) in the far field and horseshoe-shaped vortices close to the wall. High-frequency unstable global eigenmodes associated with shear-layer instabilities on the CVP and low-frequency modes associated with shedding vortices in the wake of the jet are identified. Furthermore, different spanwise symmetries of the global modes are discussed. This work constitutes the first simulation-based global stability analysis of a fully three-dimensional base flow.
ISSN:0022-1120
1469-7645
1469-7645
DOI:10.1017/S0022112009006053