Energetic Stratified Turbulence Generated by Kuroshio–Seamount Interactions in Tokara Strait

Author:

Takahashi Anne1ORCID,Lien Ren-Chieh1,Kunze Eric2,Ma Barry1,Nakamura Hirohiko3,Nishina Ayako3,Tsutsumi Eisuke34,Inoue Ryuichiro5,Nagai Takeyoshi6,Endoh Takahiro7

Affiliation:

1. a Applied Physics Laboratory, University of Washington, Seattle, Washington

2. b NorthWest Research Associates, Redmond, Washington

3. c Faculty of Fisheries, Kagoshima University, Kagoshima, Japan

4. d Atmosphere and Ocean Research Institute, The University of Tokyo, Tokyo, Japan

5. e Research Institute for Global Change, Japan Agency for Marine-Earth Science and Technology, Yokosuka, Japan

6. f Department of Ocean Sciences, Tokyo University of Marine Science and Technology, Tokyo, Japan

7. g Research Institute for Applied Mechanics Kyushu University, Fukuoka, Japan

Abstract

Abstract Generating mechanisms and parameterizations for enhanced turbulence in the wake of a seamount in the path of the Kuroshio are investigated. Full-depth profiles of finescale temperature, salinity, horizontal velocity, and microscale thermal-variance dissipation rate up- and downstream of the ∼10-km-wide seamount were measured with EM-APEX profiling floats and ADCP moorings. Energetic turbulent kinetic energy dissipation rates and diapycnal diffusivities above the seamount flanks extend at least 20 km downstream. This extended turbulent wake length is inconsistent with isotropic turbulence, which is expected to decay in less than 100 m based on turbulence decay time of N−1 ∼ 100 s and the 0.5 m s−1 Kuroshio flow speed. Thus, the turbulent wake must be maintained by continuous replenishment which might arise from (i) nonlinear instability of a marginally unstable vortex wake, (ii) anisotropic stratified turbulence with expected downstream decay scales of 10–100 km, and/or (iii) lee-wave critical-layer trapping at the base of the Kuroshio. Three turbulence parameterizations operating on different scales, (i) finescale, (ii) large-eddy, and (iii) reduced-shear, are tested. Average ε vertical profiles are well reproduced by all three parameterizations. Vertical wavenumber spectra for shear and strain are saturated over 10–100 m vertical wavelengths comparable to water depth with spectral levels independent of ε and spectral slopes of −1, indicating that the wake flows are strongly nonlinear. In contrast, vertical divergence spectral levels increase with ε.

Funder

National Science Foundation

Japan Society for the Promotion of Science

Publisher

American Meteorological Society

Subject

Oceanography

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