A Model of Sea Ice Formation in Leads and Polynyas

Cracks in the sea ice cover break the barrier between the ocean and atmosphere, exposing the ocean to the cold atmosphere during the winter. These cracks are known as leads within the continuous sea ice pack and polynyas near land or ice shelves. Sea ice formation starts with frazil ice crystals in...

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Main Authors: Heorton, HDBS, Radia, N, Feltham, DL
Format: Article in Journal/Newspaper
Language:English
Published: AMER METEOROLOGICAL SOC 2017
Subjects:
Online Access:https://discovery.ucl.ac.uk/id/eprint/10059956/1/Heorton%20et%20al.%20-%202017%20-%20A%20Model%20of%20Sea%20Ice%20Formation%20in%20Leads%20and%20Polynyas.pdf
https://discovery.ucl.ac.uk/id/eprint/10059956/
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author Heorton, HDBS
Radia, N
Feltham, DL
author_facet Heorton, HDBS
Radia, N
Feltham, DL
author_sort Heorton, HDBS
collection University College London: UCL Discovery
description Cracks in the sea ice cover break the barrier between the ocean and atmosphere, exposing the ocean to the cold atmosphere during the winter. These cracks are known as leads within the continuous sea ice pack and polynyas near land or ice shelves. Sea ice formation starts with frazil ice crystals in supercooled waters, which grow and precipitate to the ocean surface to form grease ice, eventually consolidating into a layer of solid sea ice that grows downward. In this study, a numerical model is formulated to simulate the formation of sea ice in a lead or polynya from frazil ice to a layer of new sea ice. The simulations show the refreezing of a lead within 48 h of its opening. Grease ice covers the lead typically within 3–10 h and consolidates into sea ice within 15–30 h. This study uses its model to simulate an observed polynya event in the Laptev Sea showing the vertical distribution of frazil ice and water supercooling. Sensitivity studies are used to investigate the dependence of ice growth on the ambient environment with the surface wind speed shown to be of greatest importance to lead exposure time and total ice growth. The size and distribution of frazil crystals and the time taken for the lead to freeze over is shown to be highly dependent upon the ambient forcing and lead geometry.
format Article in Journal/Newspaper
genre ice pack
Ice Shelves
laptev
Laptev Sea
Sea ice
genre_facet ice pack
Ice Shelves
laptev
Laptev Sea
Sea ice
geographic Laptev Sea
geographic_facet Laptev Sea
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institution Open Polar
language English
op_collection_id ftucl
op_relation https://discovery.ucl.ac.uk/id/eprint/10059956/1/Heorton%20et%20al.%20-%202017%20-%20A%20Model%20of%20Sea%20Ice%20Formation%20in%20Leads%20and%20Polynyas.pdf
https://discovery.ucl.ac.uk/id/eprint/10059956/
op_rights open
op_source Journal of Physical Oceanography , 47 (7) pp. 1701-1718. (2017)
publishDate 2017
publisher AMER METEOROLOGICAL SOC
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spelling ftucl:oai:eprints.ucl.ac.uk.OAI2:10059956 2025-01-16T22:24:43+00:00 A Model of Sea Ice Formation in Leads and Polynyas Heorton, HDBS Radia, N Feltham, DL 2017-07 text https://discovery.ucl.ac.uk/id/eprint/10059956/1/Heorton%20et%20al.%20-%202017%20-%20A%20Model%20of%20Sea%20Ice%20Formation%20in%20Leads%20and%20Polynyas.pdf https://discovery.ucl.ac.uk/id/eprint/10059956/ eng eng AMER METEOROLOGICAL SOC https://discovery.ucl.ac.uk/id/eprint/10059956/1/Heorton%20et%20al.%20-%202017%20-%20A%20Model%20of%20Sea%20Ice%20Formation%20in%20Leads%20and%20Polynyas.pdf https://discovery.ucl.ac.uk/id/eprint/10059956/ open Journal of Physical Oceanography , 47 (7) pp. 1701-1718. (2017) Sea ice Mixed layer Ice crystals Ice thickness Nonlinear models Subgrid-scale processes Article 2017 ftucl 2023-11-27T13:07:32Z Cracks in the sea ice cover break the barrier between the ocean and atmosphere, exposing the ocean to the cold atmosphere during the winter. These cracks are known as leads within the continuous sea ice pack and polynyas near land or ice shelves. Sea ice formation starts with frazil ice crystals in supercooled waters, which grow and precipitate to the ocean surface to form grease ice, eventually consolidating into a layer of solid sea ice that grows downward. In this study, a numerical model is formulated to simulate the formation of sea ice in a lead or polynya from frazil ice to a layer of new sea ice. The simulations show the refreezing of a lead within 48 h of its opening. Grease ice covers the lead typically within 3–10 h and consolidates into sea ice within 15–30 h. This study uses its model to simulate an observed polynya event in the Laptev Sea showing the vertical distribution of frazil ice and water supercooling. Sensitivity studies are used to investigate the dependence of ice growth on the ambient environment with the surface wind speed shown to be of greatest importance to lead exposure time and total ice growth. The size and distribution of frazil crystals and the time taken for the lead to freeze over is shown to be highly dependent upon the ambient forcing and lead geometry. Article in Journal/Newspaper ice pack Ice Shelves laptev Laptev Sea Sea ice University College London: UCL Discovery Laptev Sea
spellingShingle Sea ice
Mixed layer
Ice crystals
Ice thickness
Nonlinear models
Subgrid-scale processes
Heorton, HDBS
Radia, N
Feltham, DL
A Model of Sea Ice Formation in Leads and Polynyas
title A Model of Sea Ice Formation in Leads and Polynyas
title_full A Model of Sea Ice Formation in Leads and Polynyas
title_fullStr A Model of Sea Ice Formation in Leads and Polynyas
title_full_unstemmed A Model of Sea Ice Formation in Leads and Polynyas
title_short A Model of Sea Ice Formation in Leads and Polynyas
title_sort model of sea ice formation in leads and polynyas
topic Sea ice
Mixed layer
Ice crystals
Ice thickness
Nonlinear models
Subgrid-scale processes
topic_facet Sea ice
Mixed layer
Ice crystals
Ice thickness
Nonlinear models
Subgrid-scale processes
url https://discovery.ucl.ac.uk/id/eprint/10059956/1/Heorton%20et%20al.%20-%202017%20-%20A%20Model%20of%20Sea%20Ice%20Formation%20in%20Leads%20and%20Polynyas.pdf
https://discovery.ucl.ac.uk/id/eprint/10059956/