A New Hybrid Mass‐Flux/High‐Order Turbulence Closure for Ocean Vertical Mixing

Author:

Garanaik Amrapalli1ORCID,Pereira Filipe S.23,Smith Katherine3,Robey Rachel4,Li Qing5ORCID,Pearson Brodie1ORCID,Van Roekel Luke3ORCID

Affiliation:

1. College of Earth, Ocean, and Atmospheric Sciences Oregon State University Corvallis OR USA

2. Verification and Analysis Los Alamos National Laboratory Los Alamos NM USA

3. Fluid Dynamics and Solid Mechanics Los Alamos National Laboratory Los Alamos NM USA

4. Department of Applied Mathematics University of Colorado Boulder Boulder CO USA

5. Earth, Ocean and Atmospheric Sciences Thrust The Hong Kong University of Science and Technology (Guangzhou) Guangzhou China

Abstract

AbstractWhile various parameterizations of vertical turbulent fluxes at different levels of complexity have been proposed, each has its own limitations. For example, simple first‐order closure schemes such as the K‐Profile Parameterization (KPP) lack energetic constraints; two‐equation models like directly solve an equation for the turbulent kinetic energy but do not account for non‐diffusive fluxes, and high‐order closures that include the high‐order transport terms are computationally expensive. To address these, we extend the Assumed‐Distribution Higher‐Order Closure (ADC) framework originally proposed for the atmospheric boundary layer and apply it to the ocean surface boundary layer. By assuming a probability distribution function relationship between the vertical velocity and tracers, all second‐order and higher‐order moments are exactly constructed and turbulence closure is achieved in the ADC scheme. In addition, this ADC parameterization has full energetic constraints and includes non‐diffusive fluxes without the computational cost of a full higher‐order closure scheme. We have tested the ADC scheme against a combination of large eddy simulation (LES), KPP, and for surface buoyancy‐driven convective mixing and found that the ADC scheme is robust with different vertical resolutions and compares well to the LES results.

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Environmental Chemistry,Global and Planetary Change

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