Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model

ABSTRACT An advective model was used to simulate the drift of larval walleye pollock ( Theragra chalcogramma ) over a 40‐day period (late April through early June) near Shelikof Strait, Alaska. This model was used: (i) to assess how much of the observed change in larval positions during that period...

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Published in:Fisheries Oceanography
Main Authors: HERMANN, ALBERT J., RUGEN, WILLIAM C., STABENO, PHYLLIS J., BOND, NICHOLAS A.
Format: Article in Journal/Newspaper
Language:English
Published: Wiley 1996
Subjects:
Online Access:http://dx.doi.org/10.1111/j.1365-2419.1996.tb00082.x
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spelling crwiley:10.1111/j.1365-2419.1996.tb00082.x 2024-06-02T08:15:14+00:00 Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model HERMANN, ALBERT J. RUGEN, WILLIAM C. STABENO, PHYLLIS J. BOND, NICHOLAS A. 1996 http://dx.doi.org/10.1111/j.1365-2419.1996.tb00082.x https://api.wiley.com/onlinelibrary/tdm/v1/articles/10.1111%2Fj.1365-2419.1996.tb00082.x https://onlinelibrary.wiley.com/doi/pdf/10.1111/j.1365-2419.1996.tb00082.x en eng Wiley http://onlinelibrary.wiley.com/termsAndConditions#vor Fisheries Oceanography volume 5, issue s1, page 58-70 ISSN 1054-6006 1365-2419 journal-article 1996 crwiley https://doi.org/10.1111/j.1365-2419.1996.tb00082.x 2024-05-03T10:50:27Z ABSTRACT An advective model was used to simulate the drift of larval walleye pollock ( Theragra chalcogramma ) over a 40‐day period (late April through early June) near Shelikof Strait, Alaska. This model was used: (i) to assess how much of the observed change in larval positions during that period can be explained by transport at fixed depth; (ii) to demonstrate that observed change can be related to mean large‐scale meteorological forcing; and (iii) to investigate accumulation of larvae in specific areas near the coast. Based on availability of larval and circulation data, three years were studied: 1988, 1989 and 1991. Velocity fields generated from a hydrodynamic model driven by winds and runoff were used to advect particles seeded in accordance with observed larval distributions in late April of each year. The modelled larvae were tracked at 40 m depth, corresponding to the mean depth of sampled larvae and the depth of neutrally buoyant drifters employed in field studies. Specific features observed in late May larval surveys were reproduced by the model, such as the accumulation of larvae in a shoal area downstream of the strait. Differences among the modelled years include extensive flushing of larvae to the south‐west in 1988 and 1991, vs. limited flushing in 1989. These differences appear related to the mean large‐scale atmospheric pressure patterns for April‐May of those years. Article in Journal/Newspaper Theragra chalcogramma Alaska Wiley Online Library Fisheries Oceanography 5 s1 58 70
institution Open Polar
collection Wiley Online Library
op_collection_id crwiley
language English
description ABSTRACT An advective model was used to simulate the drift of larval walleye pollock ( Theragra chalcogramma ) over a 40‐day period (late April through early June) near Shelikof Strait, Alaska. This model was used: (i) to assess how much of the observed change in larval positions during that period can be explained by transport at fixed depth; (ii) to demonstrate that observed change can be related to mean large‐scale meteorological forcing; and (iii) to investigate accumulation of larvae in specific areas near the coast. Based on availability of larval and circulation data, three years were studied: 1988, 1989 and 1991. Velocity fields generated from a hydrodynamic model driven by winds and runoff were used to advect particles seeded in accordance with observed larval distributions in late April of each year. The modelled larvae were tracked at 40 m depth, corresponding to the mean depth of sampled larvae and the depth of neutrally buoyant drifters employed in field studies. Specific features observed in late May larval surveys were reproduced by the model, such as the accumulation of larvae in a shoal area downstream of the strait. Differences among the modelled years include extensive flushing of larvae to the south‐west in 1988 and 1991, vs. limited flushing in 1989. These differences appear related to the mean large‐scale atmospheric pressure patterns for April‐May of those years.
format Article in Journal/Newspaper
author HERMANN, ALBERT J.
RUGEN, WILLIAM C.
STABENO, PHYLLIS J.
BOND, NICHOLAS A.
spellingShingle HERMANN, ALBERT J.
RUGEN, WILLIAM C.
STABENO, PHYLLIS J.
BOND, NICHOLAS A.
Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
author_facet HERMANN, ALBERT J.
RUGEN, WILLIAM C.
STABENO, PHYLLIS J.
BOND, NICHOLAS A.
author_sort HERMANN, ALBERT J.
title Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
title_short Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
title_full Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
title_fullStr Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
title_full_unstemmed Physical transport of young pollock larvae (Theragra chalcogramma) near Shelikof Strait as inferred from a hydrodynamic model
title_sort physical transport of young pollock larvae (theragra chalcogramma) near shelikof strait as inferred from a hydrodynamic model
publisher Wiley
publishDate 1996
url http://dx.doi.org/10.1111/j.1365-2419.1996.tb00082.x
https://api.wiley.com/onlinelibrary/tdm/v1/articles/10.1111%2Fj.1365-2419.1996.tb00082.x
https://onlinelibrary.wiley.com/doi/pdf/10.1111/j.1365-2419.1996.tb00082.x
genre Theragra chalcogramma
Alaska
genre_facet Theragra chalcogramma
Alaska
op_source Fisheries Oceanography
volume 5, issue s1, page 58-70
ISSN 1054-6006 1365-2419
op_rights http://onlinelibrary.wiley.com/termsAndConditions#vor
op_doi https://doi.org/10.1111/j.1365-2419.1996.tb00082.x
container_title Fisheries Oceanography
container_volume 5
container_issue s1
container_start_page 58
op_container_end_page 70
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