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Estimation of ice shelf melt rate in the presence of a thermohaline staircase

Kimura, Satoshi ORCID: https://orcid.org/0000-0003-1689-1605; Nicholls, Keith W. ORCID: https://orcid.org/0000-0002-2188-4509; Venables, Emily. 2015 Estimation of ice shelf melt rate in the presence of a thermohaline staircase. Journal of Physical Oceanography, 45 (1). 133-148. 10.1175/JPO-D-14-0106.1

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Abstract/Summary

Diffusive convection–favorable thermohaline staircases are observed directly beneath George VI Ice Shelf, Antarctica. A thermohaline staircase is one of the most pronounced manifestations of double-diffusive convection. Cooling and freshening of the ocean by melting ice produces cool, freshwater above the warmer, saltier water, the water mass distribution favorable to a type of double-diffusive convection known as diffusive convection. While the vertical distribution of water masses can be susceptible to diffusive convection, none of the observations beneath ice shelves so far have shown signals of this process and its effect on melting ice shelves is uncertain. The melt rate of ice shelves is commonly estimated using a parameterization based on a three-equation model, which assumes a fully developed, unstratified turbulent flow over hydraulically smooth surfaces. These prerequisites are clearly not met in the presence of a thermohaline staircase. The basal melt rate is estimated by applying an existing heat flux parameterization for diffusive convection in conjunction with the measurements of oceanic conditions at one site beneath George VI Ice Shelf. These estimates yield a possible range of melt rates between 0.1 and 1.3 m yr−1, where the observed melt rate of this site is ~1.4 m yr−1. Limitations of the formulation and implications of diffusive convection beneath ice shelves are discussed.

Item Type: Publication - Article
Digital Object Identifier (DOI): 10.1175/JPO-D-14-0106.1
Programmes: BAS Programmes > Polar Science for Planet Earth (2009 - ) > Polar Oceans
ISSN: 0022-3670
Date made live: 21 Oct 2014 07:36 +0 (UTC)
URI: https://nora.nerc.ac.uk/id/eprint/508647

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