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An energy-constrained profile parameterization of shear-driven turbulence in the interior ocean

Lei Lu; Chuanyu Liu; Rui Xin Huang; Fan Wang
Frontiers in Marine Science · Vol. 12 · 2025

Abstract

This paper proposes an energy-constrained profile parameterization of both turbulent kinetic energy dissipation rate ( ϵ ) and vertical diffusivity ( κ ), for shear instability-induced turbulence that is initiated in an initial unstable layer (IUL) where the gradient Richardson number R i ∈ ( 0 , 0.25 ) . Large-eddy simulation (LES) experiments provide the data of turbulent processes originating from Kelvin-Helmholtz instability of varied initial shear conditions. The energy-constrained framework posits ϵ and κ as proportional to K a and τ – 1 , where K a represents available kinetic energy, measuring the released kinetic energy, τ denotes turbulence evolution timescale. Both are determinable by the thickness of IUL ( h 0 ), buoyancy frequency ( N 0 ), vertical shear ( S 0 ), and Richardson number ( R i 0 ) of the IUL. Notably, unlike conventional schemes that parameterize turbulent mixing for single model grid point layer by layer, the present scheme parameterizes the turbulent mixing not only for the grid point(s) of IUL, but also for all the model grid points that are within a determined vertical turbulent penetration layer, by providing a profile of diffusivity. Therefore, the scheme is termed the energy-constrained profile parameterization (EPP). EPP aligns well with the LES results and direct microstructure measurements, outperforming existing parameterizations.

Bibliographic Information

JournalFrontiers in Marine Science
PublisherFrontiers
Publication Date2025-11-07
Publication Year2025
Volume12
Document TypeJournal Article
eISSN2296-7745
DOI10.3389/fmars.2025.1615741
SubjectMarine science; fisheries; aquaculture; pollution; ocean observation; policy

Access Information

NARA Access CoverageOA / free full text
Journal Homepagehttps://www.frontiersin.org/journals/marine-science
Publisher PageOpen Publisher Page
This article is openly available from the publisher.