Convection and restratification in the Labrador Sea, 1990-2000

被引:246
作者
Lazier, J [1 ]
Hendry, R
Clarke, A
Yashayaev, I
Rhines, P
机构
[1] Bedford Inst Oceanog, Dartmouth, NS B2Y 4AZ, Canada
[2] Univ Washington, Seattle, WA 98195 USA
关键词
convection; stratification; vertical mixing; heat and salt fluxes; North Atlantic ocean; Labrador Sea;
D O I
10.1016/S0967-0637(02)00064-X
中图分类号
P7 [海洋学];
学科分类号
0707 [海洋科学];
摘要
Temperature, salinity and other property distributions observed across the central Labrador Sea in the early summers between 1990 and 2000 reveal a 4-year period of exceptionally intense convection followed by 5 years of restratification. The intense convection led, in the centre of the Sea, to mixed layers increasing in density and depth to a maximum of 2300m thereby creating a fresh deep pool of Labrador Sea Water (LSW). In the second half of the decade, warmer winter weather limited the depth of convection to similar to 1000 m. The shallower convection isolated the deep reservoir of homogeneous LSW between 1000 and 2000m from renewal: this reservoir slowly diminished in volume as the layer became more stratified. In addition, the mean temperature and salinity of the 1000-2000 m layer increased by 0.4degreesC and 0.025 as warmer more saline water was mixed into the central region from the boundaries. In the upper layer between 150 and 1000 m the restratification processes led to an increase in temperature of 0.6degreesC but no significant change in salinity. The upper 150 m also showed no discernible trends in salinity but did participate in the warming trend. Interannual variability in local atmospheric forcing accounts for much of the observed change in heat content in the convectively overturned part of the water column during both the convection and restratification phases. It is proposed that constant horizontal fluxes transport heat and salt from the boundaries into the centre of the Sea. When the heat loss from the sea surface is greater than the horizontal flux the mixed layer becomes colder and denser and the depth of convection increases. When the heat loss is less than the horizontal flux and the convection remains shallow the temperature rises in both the 0-1000m and the 1000-2000m layers and salinity increases in the deeper layer. In both situations salinity in the upper 1000 m remains roughly constant as the horizontal salinity flux approximately offsets the annual input of fresh water of 60+/-10 cm into the surface layer. Crown Copyright (C) 2002 Published by Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:1819 / 1835
页数:17
相关论文
共 24 条
[1]
Long-period ocean heat storage rates and basin-scale heat fluxes from TOPEX [J].
Chambers, DP ;
Tapley, BD ;
Stewart, RH .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1997, 102 (C5) :10525-10533
[2]
Oceanic transport of subpolar climate signals to mid-depth subtropical waters [J].
Curry, RG ;
McCartney, MS ;
Joyce, TM .
NATURE, 1998, 391 (6667) :575-577
[3]
THE GREAT SALINITY ANOMALY IN THE NORTHERN NORTH-ATLANTIC 1968-1982 [J].
DICKSON, RR ;
MEINCKE, J ;
MALMBERG, SA ;
LEE, AJ .
PROGRESS IN OCEANOGRAPHY, 1988, 20 (02) :103-151
[4]
GILL A, 1982, INT GEOPHYSICS SERIE, V30
[5]
GRANT AB, 1968, 196511967 AOL BEDF I
[6]
GRANT AB, 1968, 685 AOL BEDF I OC
[7]
Salt and Heat Balances in the Labrador Sea Using a Box Model [J].
Ikeda, M. .
ATMOSPHERE-OCEAN, 1987, 25 (02) :197-223
[8]
Kistler R, 2001, B AM METEOROL SOC, V82, P247, DOI 10.1175/1520-0477(2001)082<0247:TNNYRM>2.3.CO
[9]
2
[10]
Mid-depth recirculation observed in the interior Labrador and Irminger seas by direct velocity measurements [J].
Lavender, KL ;
Davis, RE ;
Owens, WB .
NATURE, 2000, 407 (6800) :66-69