Double Diffusion, Shear Instabilities, and Heat Impacts of a Pacific Summer Water Intrusion in the Beaufort Sea

Author:

Fine Elizabeth C.12ORCID,MacKinnon Jennifer A.2,Alford Matthew H.2,Middleton Leo3,Taylor John3,Mickett John B.4,Cole Sylvia T.1,Couto Nicole2,Boyer Arnaud Le2,Peacock Thomas5

Affiliation:

1. a Woods Hole Oceanographic Institution, Woods Hole, Massachusetts

2. b Scripps Institution of Oceanography, University of California, San Diego, La Jolla, California

3. c University of Cambridge, Cambridge, England

4. d Applied Physics Laboratory, University of Washington, Seattle, Washington

5. e Massachusetts Institute of Technology, Cambridge, Massachusetts

Abstract

Abstract Pacific Summer Water eddies and intrusions transport heat and salt from boundary regions into the western Arctic basin. Here we examine concurrent effects of lateral stirring and vertical mixing using microstructure data collected within a Pacific Summer Water intrusion with a length scale of ∼20 km. This intrusion was characterized by complex thermohaline structure in which warm Pacific Summer Water interleaved in alternating layers of m thickness with cooler water, due to lateral stirring and intrusive processes. Along interfaces between warm/salty and cold/freshwater masses, the density ratio was favorable to double-diffusive processes. The rate of dissipation of turbulent kinetic energy (ε) was elevated along the interleaving surfaces, with values up to 3 × 10−8 W kg−1 compared to background ε of less than 10−9 W kg−1. Based on the distribution of ε as a function of density ratio Rρ, we conclude that double-diffusive convection is largely responsible for the elevated ε observed over the survey. The lateral processes that created the layered thermohaline structure resulted in vertical thermohaline gradients susceptible to double-diffusive convection, resulting in upward vertical heat fluxes. Bulk vertical heat fluxes above the intrusion are estimated in the range of 0.2–1 W m−2, with the localized flux above the uppermost warm layer elevated to 2–10 W m−2. Lateral fluxes are much larger, estimated between 1000 and 5000 W m−2, and set an overall decay rate for the intrusion of 1–5 years.

Funder

Office of Naval Research

National Science Foundation

Publisher

American Meteorological Society

Subject

Oceanography

Reference98 articles.

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