Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica

A mesoscale resolution (5 km) regional ocean model (ROMS), coupled thermodynamically/dynamically to a sea ice model (CICE) and thermodynamically to an ice shelf is used to investigate Ross Sea seasonal sea ice cycle, polynya dynamics, distribution and transformations of continental shelf water masse...

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Main Author: Hûsrevoğlu, Yusuf Sinan
Format: Thesis
Language:unknown
Published: Old Dominion University Libraries 2008
Subjects:
Online Access:https://dx.doi.org/10.25777/nt39-1n47
https://digitalcommons.odu.edu/oeas_etds/134/
id ftdatacite:10.25777/nt39-1n47
record_format openpolar
spelling ftdatacite:10.25777/nt39-1n47 2023-05-15T13:58:07+02:00 Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica Hûsrevoğlu, Yusuf Sinan 2008 https://dx.doi.org/10.25777/nt39-1n47 https://digitalcommons.odu.edu/oeas_etds/134/ unknown Old Dominion University Libraries Thesis Text Dissertation thesis 2008 ftdatacite https://doi.org/10.25777/nt39-1n47 2021-11-05T12:55:41Z A mesoscale resolution (5 km) regional ocean model (ROMS), coupled thermodynamically/dynamically to a sea ice model (CICE) and thermodynamically to an ice shelf is used to investigate Ross Sea seasonal sea ice cycle, polynya dynamics, distribution and transformations of continental shelf water masses, and bottom water formation. Daily atmospheric forcing is from the ECMWF ERA-40 dataset, and for a separate simulation, wind forcing for Terra Nova Bay is substituted from daily automatic weather station (AWS) data. Simulated Ross Sea sea ice concentration reproduces the winter lead opening events observed in the SSM/I signal; however, it underestimates open water area (rmsd ∼20%). Timing and advance of the Ross Sea spring-summer polynya are well captured. No local melting takes place during winter and over two years of simulation, heat loss at the ocean surface is offset 90% by lateral oceanic heat flux. Terra Nova Bay cumulatively produces more than twice the sea ice when forced with AWS winds. Forcing the Terra Nova Bay polynya with weaker winds result in continuous erosion of the High Salinity Shelf Water (HSSW) layer over the western Ross Sea continental shelf. Enhanced sea ice production and export driven by realistic winds are required to maintain the northward transport of dense shelf water. High Salinity Shelf Water (HSSW) is formed in and exported from Terra Nova Bay and Ross Sea polynya areas at 0.14 and 0.64 Sv over two years of simulation. The larger area including the coastal polynya regions in the western Ross Sea provides a 1 Sv HSSW source while the Ross Ice Shelf (RIS) is a sink for about 0.4 Sv. Low Salinity Shelf Water (LSSW) outflow from beneath RIS cavity is 0.60 Sv. Modified Shelf Water (MSW)/Antarctic Bottom Water (AABW) is abundant over the entire continental shelf, forming the anticyclonic cell over the western Ross Sea. MSW/AABW net off-shelf transport and Modified Circumpolar Deep Water (MCDW)/Lower Circumpolar Deep Water (LCDW) net onshelf transport are 2.23 and 0.7 Sv, respectively. Replacing AWS winds with ECMWF ERA-40 winds over the Terra Nova Bay results in larger scale dilution of HSSW in the depressions of the western Ross Sea shelf, diminishes HSSW circulation and transport northward along Victoria Land Coast, disrupts the western gyre, and causes an overall decrease in vertically averaged transport over the western Ross Sea shelf. Thesis Antarc* Antarctic Antarctica Ice Shelf Ross Ice Shelf Ross Sea Sea ice Victoria Land DataCite Metadata Store (German National Library of Science and Technology) Antarctic Ross Sea Victoria Land Terra Nova Bay Ross Ice Shelf
institution Open Polar
collection DataCite Metadata Store (German National Library of Science and Technology)
op_collection_id ftdatacite
language unknown
description A mesoscale resolution (5 km) regional ocean model (ROMS), coupled thermodynamically/dynamically to a sea ice model (CICE) and thermodynamically to an ice shelf is used to investigate Ross Sea seasonal sea ice cycle, polynya dynamics, distribution and transformations of continental shelf water masses, and bottom water formation. Daily atmospheric forcing is from the ECMWF ERA-40 dataset, and for a separate simulation, wind forcing for Terra Nova Bay is substituted from daily automatic weather station (AWS) data. Simulated Ross Sea sea ice concentration reproduces the winter lead opening events observed in the SSM/I signal; however, it underestimates open water area (rmsd ∼20%). Timing and advance of the Ross Sea spring-summer polynya are well captured. No local melting takes place during winter and over two years of simulation, heat loss at the ocean surface is offset 90% by lateral oceanic heat flux. Terra Nova Bay cumulatively produces more than twice the sea ice when forced with AWS winds. Forcing the Terra Nova Bay polynya with weaker winds result in continuous erosion of the High Salinity Shelf Water (HSSW) layer over the western Ross Sea continental shelf. Enhanced sea ice production and export driven by realistic winds are required to maintain the northward transport of dense shelf water. High Salinity Shelf Water (HSSW) is formed in and exported from Terra Nova Bay and Ross Sea polynya areas at 0.14 and 0.64 Sv over two years of simulation. The larger area including the coastal polynya regions in the western Ross Sea provides a 1 Sv HSSW source while the Ross Ice Shelf (RIS) is a sink for about 0.4 Sv. Low Salinity Shelf Water (LSSW) outflow from beneath RIS cavity is 0.60 Sv. Modified Shelf Water (MSW)/Antarctic Bottom Water (AABW) is abundant over the entire continental shelf, forming the anticyclonic cell over the western Ross Sea. MSW/AABW net off-shelf transport and Modified Circumpolar Deep Water (MCDW)/Lower Circumpolar Deep Water (LCDW) net onshelf transport are 2.23 and 0.7 Sv, respectively. Replacing AWS winds with ECMWF ERA-40 winds over the Terra Nova Bay results in larger scale dilution of HSSW in the depressions of the western Ross Sea shelf, diminishes HSSW circulation and transport northward along Victoria Land Coast, disrupts the western gyre, and causes an overall decrease in vertically averaged transport over the western Ross Sea shelf.
format Thesis
author Hûsrevoğlu, Yusuf Sinan
spellingShingle Hûsrevoğlu, Yusuf Sinan
Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
author_facet Hûsrevoğlu, Yusuf Sinan
author_sort Hûsrevoğlu, Yusuf Sinan
title Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
title_short Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
title_full Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
title_fullStr Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
title_full_unstemmed Modeling the Seasonal Sea Ice Cycle in the Ross Sea, Antarctica
title_sort modeling the seasonal sea ice cycle in the ross sea, antarctica
publisher Old Dominion University Libraries
publishDate 2008
url https://dx.doi.org/10.25777/nt39-1n47
https://digitalcommons.odu.edu/oeas_etds/134/
geographic Antarctic
Ross Sea
Victoria Land
Terra Nova Bay
Ross Ice Shelf
geographic_facet Antarctic
Ross Sea
Victoria Land
Terra Nova Bay
Ross Ice Shelf
genre Antarc*
Antarctic
Antarctica
Ice Shelf
Ross Ice Shelf
Ross Sea
Sea ice
Victoria Land
genre_facet Antarc*
Antarctic
Antarctica
Ice Shelf
Ross Ice Shelf
Ross Sea
Sea ice
Victoria Land
op_doi https://doi.org/10.25777/nt39-1n47
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