Interaction between Rossby Waves and a Jet Flow: Basic Equations and Verification for the Antarctic Circumpolar Current

Izvestiya, Atmospheric and Oceanic Physics - Tập 55 Số 5 - Trang 412-422 - 2019
V. G. Gnevyshev1, A. V. Frolova2, A. I. Kubryakov3, Yu. V. Sobko4, Т. В. Белоненко2
1Shirshov Institute of Oceanology, Russian Academy of Sciences, 117997, Moscow, Russia
2Saint Petersburg State University, 199034 St. Petersburg, Russia
3Marine Hydrophysical Institute, 299011, Sevastopol, Russia
4Deutsche Telekom, St. Petersburg Division, RUS GmbH, T-Systems, 199034, St. Petersburg, Russia

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M. V. Nezlin, “Rossby solitons (Experimental investigations and laboratory model of natural vortices of the Jovian Great Red Spot type),” Phys.-Usp. 29 (9), 807–842 (1986).

D. B. Chelton and M. G. Schlax, “Global observations of oceanic Rossby waves,” Science 272, 234–238 (1996).

D. B. Chelton, M. G. Schlax, R. M. Samelson, and R. A. de Szoeke, “Global observations of large oceanic eddies,” Geophys. Res. Lett. 34 (15), L15606 (2007). https://doi.org/10.1029/2007GL030812

D. B. Chelton, P. Gaube, M. G. Schlax, J. J. Early, and R. M. Samelson, “The influence of nonlinear mesoscale eddies on near-surface oceanic chlorophyll,” Science 334 (6054), 328–332 (2011).

T. V. Belonenko, E. A. Zakharchuk, and V. R. Fuks, “Waves or eddies?,” Vestn. S.-Peterb. Univ., Ser. 7: Geol., Geogr., No. 3, 37–44 (1998).

T. V. Belonenko, E. A. Zakharchuk, and V. R. Fuks, Gradient-Vorticity Waves in the Ocean (SPbGU, St. Petersburg, 2004). 215 p. [in Russian].

W. K. Dewar, “On “too fast” baroclinic planetary waves in the general circulation," J. Phys. Oceanogr. 28 (9), 1739–1758 (1998).

T. V. Belonenko and A. A. Kubryakov, “Temporal variability of the phase velocity of Rossby waves in the North Pacific,” Sovrem. Probl. Distantsionnogo Zondirovaniya Zemli Kosmosa 11 (3), 9–18 (2014).

T. V. Belonenko, A. A. Kubrjakov, and S.V. Stanichny, “Spectral characteristics of Rossby Waves in the northwestern Pacific based on satellite altimetry,” Issled. Zemli Kosmosa, Nos. 1–2, 43–52 (2016).

T. V. Belonenko, A. A. Kubrjakov, and S.V. Stanichny, “Spectral characteristics of Rossby Waves in the northwestern Pacific based on satellite altimetry,” Izv., Atmos. Ocean. Phys. 52 (9), 920–928 (2016). https://doi.org/10.1134/S0001433816090073

C. W. Hughes, “The Antarctic Circumpolar Current as a waveguide for Rossby Waves,” J. Phys. Oceanogr. 26 (7), 1375–1387 (1995).

C. W. Hughes, “Nonlinear vorticity balance of the Antarctic Circumpolar Current,” J. Geophys. Res. 110, C11008 (2005). https://doi.org/10.1029/2004JC002753

P. D. Killworth, D. B. Chelton, and R. A. de Szoeke, “The speed of observed and theoretical long extratropical planetary waves,” J. Phys. Oceanogr. 27 (9), 1946–1966 (1997).

S. A. Cunningham, S. G. Alderson, B. A. King, and M. A. Brandon, “Transport and variability of the Antarctic Circumpolar Current in Drake Passage,” J. Geophys. Res. 108 (C5), 8084 (2003). https://doi.org/10.1029/2001JC001147

R. Yu. Tarakanov, Doctoral Dissertation in Physics and Mathematics (Institute of Oceanology, Russian Academy of Sciences, Moscow, 2015).

C. W. Hughes, M. S. Jones, and S. Carnochan, “Use of transient features to identify eastward currents in the Southern Ocean,” J. Geophys. Res. 103, 2929–2942 (1998).

A. Klocker, R. Ferrari, and J. H. LaCasce, “Estimating suppression of eddy mixing by mean flows,” J. Phys. Oceanogr. 42, 1566–1576 (2012a).

A. Klocker, R. Ferrari, J. H. LaCasce, and S. T. Merrifield, “Reconciling float-based and tracer-based estimates of eddy diffusivities in the Southern Ocean,” J. Mar. Res. 70, 569–602 (2012b).

S. Yu. Annenkov and V. I. Shrira, “On zonal waveguides for Rossby waves in the World Ocean,” Okeanologiya 32 (1), 5–12 (1992).

V. G. Gnevyshev and V. I. Shrira, “Transformation of monochromatic Rossby waves in the critical layer of the zonal current,” Izv. Akad. Nauk SSSR: Fiz. Atmos. Okeana 25 (8), 852–862 (1989a).

V. G. Gnevyshev and V. I. Shrira, “Dynamics of Rossby wave packets in the vicinity of the zonal critical layer taking into account viscosity,” Izv. Akad. Nauk SSSR: Fiz. Atmos. Okeana 25 (10), 1064–1074 (1989b).

T. V. Belonenko and A. V. Frolova, “Antarctic Circumpolar Current as a waveguide for Rossby waves and mesoscale eddies,” Sovrem. Probl. Distantsionnogo Zondirovaniya Zemli Kosmosa 16 (1), 181–190 (2019).

A. Hochet, T. Huck, A. Colin de Verdière, “Large-scale baroclinic instability of the mean oceanic circulation: A local approach,” J. Phys. Oceanogr. 45 (11), 2738–2754 (2015).

P. D. Killworth and J. R. Blundell, “The dispersion relation for planetary waves in the presence of mean flow and topography. Part II: Two-dimensional and global results,” J. Phys. Oceanogr. 35 (11), 2110–2133 (2005).

P. D. Killworth and J. R. Blundell, “The dispersion relation for planetary waves in the presence of mean flow and topography. Part I: Analytical theory and one-dimensional examples,” J. Phys. Oceanogr. 34, 2692–2711 (2004).

J. Pedlosky, Geophysical Fluid Dynamics (Springer, Berlin, 1979; Mir, Moscow, 1984).

V. N. Zyryanov, Topographic Eddies in the Dynamics of Sea Currents (IVP RAN, 1995) [in Russian].

V. N. Zyryanov, “Topographic eddies in a stratified ocean,” Regular Chaotic Dyn. 11 (4), 491–521 (2006). https://doi.org/10.1070/RD2006v011n04ABEH000367

G. R. Flier, P. Malanotte-Rizzoli, and N. J. Zabusky, “Nonlinear waves and coherent vortex structures in barotropic β-plane jets,” J. Phys. Oceanogr. 17, 1408–1438 (1987).

P. Le Blond and L. Mysak, Waves in the Ocean (Elsevier, 1977; Mir, Moscow, 1981).

A. Gill, Atmosphere–Ocean Dynamics (Academic, London, 1982; Mir, Moscow, 1986).

B. Sinha and K. J. Richards, “Jet structure and scaling in Southern Ocean models,” J. Phys. Oceanogr. 29, 1143–1155 (1998).

P. G. Challenor, P. Cipollini, and D. Cromwell, “Use of the 3D radon transform to examine the properties of oceanic Rossby waves,” J. Atmos. Oceanic Technol. 18, 1558–1566 (2001).

D. B. Chelton, R. A. de Szoeke, M. G. Schlax, K. El Naggar, and N. Siwertz, “Geographical variability of the first-baroclinic Rossby radius of deformation,” J. Phys. Oceanogr. 28, 433–460 (1998).