The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model

Thesis (M.S.) University of Alaska Fairbanks, 1984 Marginal ice edge zones are unique frontal systems with air-ice-sea interfaces. Phytoplankton blooms which occur along the edge of some melting ice packs in the spring, appear to be related to melt water driven density stratification. In this thesis...

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Main Author: Freed, Martin
Format: Thesis
Language:English
Published: 1984
Subjects:
Online Access:http://hdl.handle.net/11122/5121
id ftunivalaska:oai:scholarworks.alaska.edu:11122/5121
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spelling ftunivalaska:oai:scholarworks.alaska.edu:11122/5121 2023-05-15T15:43:24+02:00 The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model Freed, Martin 1984-09 http://hdl.handle.net/11122/5121 en_US eng http://hdl.handle.net/11122/5121 Thesis ms 1984 ftunivalaska 2023-02-23T21:36:21Z Thesis (M.S.) University of Alaska Fairbanks, 1984 Marginal ice edge zones are unique frontal systems with air-ice-sea interfaces. Phytoplankton blooms which occur along the edge of some melting ice packs in the spring, appear to be related to melt water driven density stratification. In this thesis a numerical model of a marginal ice edge zone is constructed. The wind driven circulation and spring phytoplankton bloom at the Bering Sea ice edge are simulated as functions of air-ice-sea-biology interaction. It was found that as long as the ice was allowed to melt, blooms occur regardless of wind direction. However, because of the compactness dependent melt scheme invoked, the faster the ice advects out from the pack, the faster the water column stratifies. The speed and the area of the bloom depend on the rate and extent of stratification. The model data compare favorably with field data. Thesis Bering Sea Sea ice Alaska University of Alaska: ScholarWorks@UA Bering Sea Fairbanks
institution Open Polar
collection University of Alaska: ScholarWorks@UA
op_collection_id ftunivalaska
language English
description Thesis (M.S.) University of Alaska Fairbanks, 1984 Marginal ice edge zones are unique frontal systems with air-ice-sea interfaces. Phytoplankton blooms which occur along the edge of some melting ice packs in the spring, appear to be related to melt water driven density stratification. In this thesis a numerical model of a marginal ice edge zone is constructed. The wind driven circulation and spring phytoplankton bloom at the Bering Sea ice edge are simulated as functions of air-ice-sea-biology interaction. It was found that as long as the ice was allowed to melt, blooms occur regardless of wind direction. However, because of the compactness dependent melt scheme invoked, the faster the ice advects out from the pack, the faster the water column stratifies. The speed and the area of the bloom depend on the rate and extent of stratification. The model data compare favorably with field data.
format Thesis
author Freed, Martin
spellingShingle Freed, Martin
The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
author_facet Freed, Martin
author_sort Freed, Martin
title The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
title_short The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
title_full The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
title_fullStr The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
title_full_unstemmed The role of stratification in the spring ice edge bloom in the Bering Sea: a numerical model
title_sort role of stratification in the spring ice edge bloom in the bering sea: a numerical model
publishDate 1984
url http://hdl.handle.net/11122/5121
geographic Bering Sea
Fairbanks
geographic_facet Bering Sea
Fairbanks
genre Bering Sea
Sea ice
Alaska
genre_facet Bering Sea
Sea ice
Alaska
op_relation http://hdl.handle.net/11122/5121
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