For a stratified incompressible Euler fluid under gravity confined by rigid boundaries, sources of vorticity are classified with the aim of isolating those which are sensitive to the topological configurations of density isopycnals, for both layered and continuous density variations. The simplest case of a two-layer fluid is studied first. This shows explicitly that topological sources of vorticity are present whenever the interface intersects horizontal boundaries. Accordingly, the topological separation of the fluid domain due to the interface-boundary intersections can contribute additional terms to the vorticity balance equation. This phenomenon is reminiscent of Klein's 'Kaffeelöffel' thought-experiment for a homogeneous fluid (Klein, Z. Math. Phys., vol. 59, 1910, pp. 259-262), and it is essentially independent of the vorticity generation induced by the baroclinic term in the bulk of the fluid. In fact, the two-layer case is generalized to show that for the continuously stratified case topological vorticity sources are generically present whenever density varies along horizontal boundaries. The topological sources are expressed explicitly in terms of local contour integrals of the pressure along the intersection curves of isopycnals with domain boundaries, and their effects on vorticity evolution are encoded by an appropriate vector, termed here the 'topological vorticity'.

Camassa, R., Falqui, G., Ortenzi, G., Pedroni, M. (2015). Topological effects on vorticity evolution in confined stratified fluids. JOURNAL OF FLUID MECHANICS, 776, 109-136 [10.1017/jfm.2015.317].

Topological effects on vorticity evolution in confined stratified fluids

FALQUI, GREGORIO;ORTENZI, GIOVANNI
;
2015

Abstract

For a stratified incompressible Euler fluid under gravity confined by rigid boundaries, sources of vorticity are classified with the aim of isolating those which are sensitive to the topological configurations of density isopycnals, for both layered and continuous density variations. The simplest case of a two-layer fluid is studied first. This shows explicitly that topological sources of vorticity are present whenever the interface intersects horizontal boundaries. Accordingly, the topological separation of the fluid domain due to the interface-boundary intersections can contribute additional terms to the vorticity balance equation. This phenomenon is reminiscent of Klein's 'Kaffeelöffel' thought-experiment for a homogeneous fluid (Klein, Z. Math. Phys., vol. 59, 1910, pp. 259-262), and it is essentially independent of the vorticity generation induced by the baroclinic term in the bulk of the fluid. In fact, the two-layer case is generalized to show that for the continuously stratified case topological vorticity sources are generically present whenever density varies along horizontal boundaries. The topological sources are expressed explicitly in terms of local contour integrals of the pressure along the intersection curves of isopycnals with domain boundaries, and their effects on vorticity evolution are encoded by an appropriate vector, termed here the 'topological vorticity'.
Articolo in rivista - Articolo scientifico
mathematical foundations; stratified flows; vortex flows;
mathematical foundations, stratified flows, vortex flows
English
2015
776
109
136
none
Camassa, R., Falqui, G., Ortenzi, G., Pedroni, M. (2015). Topological effects on vorticity evolution in confined stratified fluids. JOURNAL OF FLUID MECHANICS, 776, 109-136 [10.1017/jfm.2015.317].
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/85182
Citazioni
  • Scopus 1
  • ???jsp.display-item.citation.isi??? 1
Social impact