Halocline water modification and along-slope advection at the Laptev Sea continental margin

A general pattern in water mass distribution and potential shelf–basin exchange is revealed at the Laptev Sea continental slope based on hydrochemical and stable oxygen isotope data from the summers 2005–2009. Despite considerable interannual variations, a frontal system can be inferred between shel...

Full description

Bibliographic Details
Published in:Ocean Science
Main Authors: D. Bauch, S. Torres-Valdes, I. Polyakov, A. Novikhin, I. Dmitrenko, J. McKay, A. Mix
Format: Article
Language:English
Published: Copernicus Publications 2014-02-01
Online Access:http://www.ocean-sci.net/10/141/2014/os-10-141-2014.pdf
_version_ 1856916540187738112
author D. Bauch
S. Torres-Valdes
I. Polyakov
A. Novikhin
I. Dmitrenko
J. McKay
A. Mix
author_facet D. Bauch
S. Torres-Valdes
I. Polyakov
A. Novikhin
I. Dmitrenko
J. McKay
A. Mix
author_sort D. Bauch
collection DOAJ
container_title Ocean Science
description A general pattern in water mass distribution and potential shelf–basin exchange is revealed at the Laptev Sea continental slope based on hydrochemical and stable oxygen isotope data from the summers 2005–2009. Despite considerable interannual variations, a frontal system can be inferred between shelf, continental slope and central Eurasian Basin waters in the upper 100 m of the water column along the continental slope. Net sea-ice melt is consistently found at the continental slope. However, the sea-ice meltwater signal is independent from the local retreat of the ice cover and appears to be advected from upwind locations. <br><br> In addition to the along-slope frontal system at the continental shelf break, a strong gradient is identified on the Laptev Sea shelf between 122° E and 126° E with an eastward increase of riverine and sea-ice related brine water contents. These waters cross the shelf break at ~ 140° E and feed the low-salinity halocline water (LSHW, salinity <i>S</i> < 33) in the upper 50 m of the water column. High silicate concentrations in Laptev Sea bottom waters may lead to speculation about a link to the local silicate maximum found within the salinity range of ~ 33 to 34.5, typical for the Lower Halocline Water (LHW) at the continental slope. However brine signatures and nutrient ratios from the central Laptev Sea differ from those observed at the continental slope. Thus a significant contribution of Laptev Sea bottom waters to the LHW at the continental slope can be excluded. The silicate maximum within the LHW at the continental slope may be formed locally or at the outer Laptev Sea shelf. Similar to the advection of the sea-ice melt signal along the Laptev Sea continental slope, the nutrient signal at 50–70 m water depth within the LHW might also be fed by advection parallel to the slope. Thus, our analyses suggest that advective processes from upstream locations play a significant role in the halocline formation in the northern Laptev Sea.
format Article
id doaj-art-28eef4d032f144b088782858d347465e
institution Directory of Open Access Journals
issn 1812-0784
1812-0792
language English
publishDate 2014-02-01
publisher Copernicus Publications
record_format Article
spelling doaj-art-28eef4d032f144b088782858d347465e2025-08-19T20:18:59ZengCopernicus PublicationsOcean Science1812-07841812-07922014-02-0110114115410.5194/os-10-141-2014Halocline water modification and along-slope advection at the Laptev Sea continental marginD. Bauch0S. Torres-Valdes1I. Polyakov2A. Novikhin3I. Dmitrenko4J. McKay5A. Mix6GEOMAR Helmholtz Centre for Ocean Research Kiel, Wischhofstr. 1–3, 24148 Kiel, GermanyOcean Biogeochemistry and Ecosystems, National Oceanography Centre (NOC), European Way, Southampton, SO14 3ZH, UKInternational Arctic Research Center and College of Natural Science and Mathematics, University of Alaska Fairbanks, Fairbanks, Alaska, USAArctic and Antarctic Research Institute, St. Petersburg, RussiaCentre for Earth Observation Science, University of Manitoba, Winnipeg, Manitoba, CanadaCollege of Earth, Ocean and Atmospheric Sciences, Oregon State University, Corvallis, Oregon, USACollege of Earth, Ocean and Atmospheric Sciences, Oregon State University, Corvallis, Oregon, USAA general pattern in water mass distribution and potential shelf–basin exchange is revealed at the Laptev Sea continental slope based on hydrochemical and stable oxygen isotope data from the summers 2005–2009. Despite considerable interannual variations, a frontal system can be inferred between shelf, continental slope and central Eurasian Basin waters in the upper 100 m of the water column along the continental slope. Net sea-ice melt is consistently found at the continental slope. However, the sea-ice meltwater signal is independent from the local retreat of the ice cover and appears to be advected from upwind locations. <br><br> In addition to the along-slope frontal system at the continental shelf break, a strong gradient is identified on the Laptev Sea shelf between 122° E and 126° E with an eastward increase of riverine and sea-ice related brine water contents. These waters cross the shelf break at ~ 140° E and feed the low-salinity halocline water (LSHW, salinity <i>S</i> < 33) in the upper 50 m of the water column. High silicate concentrations in Laptev Sea bottom waters may lead to speculation about a link to the local silicate maximum found within the salinity range of ~ 33 to 34.5, typical for the Lower Halocline Water (LHW) at the continental slope. However brine signatures and nutrient ratios from the central Laptev Sea differ from those observed at the continental slope. Thus a significant contribution of Laptev Sea bottom waters to the LHW at the continental slope can be excluded. The silicate maximum within the LHW at the continental slope may be formed locally or at the outer Laptev Sea shelf. Similar to the advection of the sea-ice melt signal along the Laptev Sea continental slope, the nutrient signal at 50–70 m water depth within the LHW might also be fed by advection parallel to the slope. Thus, our analyses suggest that advective processes from upstream locations play a significant role in the halocline formation in the northern Laptev Sea.http://www.ocean-sci.net/10/141/2014/os-10-141-2014.pdf
spellingShingle D. Bauch
S. Torres-Valdes
I. Polyakov
A. Novikhin
I. Dmitrenko
J. McKay
A. Mix
Halocline water modification and along-slope advection at the Laptev Sea continental margin
title Halocline water modification and along-slope advection at the Laptev Sea continental margin
title_full Halocline water modification and along-slope advection at the Laptev Sea continental margin
title_fullStr Halocline water modification and along-slope advection at the Laptev Sea continental margin
title_full_unstemmed Halocline water modification and along-slope advection at the Laptev Sea continental margin
title_short Halocline water modification and along-slope advection at the Laptev Sea continental margin
title_sort halocline water modification and along slope advection at the laptev sea continental margin
url http://www.ocean-sci.net/10/141/2014/os-10-141-2014.pdf
work_keys_str_mv AT dbauch haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT storresvaldes haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT ipolyakov haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT anovikhin haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT idmitrenko haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT jmckay haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin
AT amix haloclinewatermodificationandalongslopeadvectionatthelaptevseacontinentalmargin