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首页> 外文期刊>Progress in Oceanography >Meridional overturning transports at 7.5N and 24.5N in the Atlantic Ocean during 1992-93 and 2010-11
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Meridional overturning transports at 7.5N and 24.5N in the Atlantic Ocean during 1992-93 and 2010-11

机译:1992-93年和2010-11年期间,大西洋的子午线翻转运输量分别为7.5N和24.5N

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摘要

Transatlantic hydrographic sections along latitudes 7.5N and 24.5N have been repeated with about 20 years difference, at the beginning of the 1990s and 2010s. For each period, an inverse model is applied to the closed box bound by both sections. The model imposes mass conservation for individual layers, defined by isoneutral surfaces, and the whole water column, using surface Ekman transport and several transport constraints for specific ranges of longitudes and depths. As a result, the velocities at the reference layer for each station pair and the dianeutral velocities between layers are estimated, and the horizontal velocity fields and the water, heat and freshwater transports are calculated; in particular, we find that mass transport per stratum at 24.5N in 2011 is in good agreement with the transport estimates from the RAPID-Watch array. During both realizations the dianeutral velocities downwell from the Upper North Atlantic Deep Water (UNADW) to the Lower North Atlantic Deep Water (LNADW) strata, resulting in the merging of the two southward flowing strata at 24.5N into one deep southward-moving stratum at 7.5N. At 24.5N, there is an increase in southward UNADW transport between 1992 and 2011, compensated by a decrease of southward LNADW transport; a descent in the upper limit of the Antarctic Bottom Water (AABW) from 1992 to 2011 is also inferred. The Atlantic Meridional Overturning Circulation (AMOC) is larger in 1992-93 than in 2010-11, decreasing from 24.7 ± 1.7 to 20.1 ± 1.4 Sv at 24.5N and from 29.2 ± 1.7 to 16.9 ± 1.5 Sv at 7.5N. Much of this decrease arises because of the northward flow of Antarctic Intermediate Water (AAIW), which was much more intense in 1992-93 than in 2010-11. As a consequence, heat transport at 24.5N is not significantly different in 1992 (1.4 ±0.1 PW) and 2011 (1.2 + 0.1 PW). The estimation of heat transport at 7.5N strongly depends on the magnitude of the North Brazil Current over the American continental platform. The freshwater flux into the box bounded by the two transoceanic sections decreases significantly from 1992-93 (-0.45 ±0.05 Sv) to 2010-11 (-0.36 ± 0.3 Sv), meaning a decrease in net evaporation over this same area.
机译:在1990年代初和2010年代初,横跨7.5N和24.5N纬度的跨大西洋水文断面已被重复,相差约20年。对于每个周期,将逆模型应用于两个部分所限定的封闭框。该模型使用表面Ekman输运和针对特定经度和深度范围的若干输运约束,对由中性表面和整个水柱定义的各个层进行质量守恒。结果,估计了每个站对的参考层的速度和层之间的二流速度,并计算了水平速度场以及水,热和淡水的运输;特别是,我们发现,2011年每层24.5N的大众运输量与RAPID-Watch阵列的运输量估算值高度吻合。在这两个实现过程中,从上北大西洋深水层(UNADW)到下北大西洋深水层(LNADW)的下流速度都向下,导致两个南北向流动层(24.5N)合并为南北向一个深层7.5牛在1992年至2011年之间,在24.5N时,联合国南斯拉夫妇女解放运动的南部运输量有所增加,而南北非洲民族解放运动的南部运输量有所减少。还可以推断出1992年至2011年南极底水(AABW)上限的下降。 1992-93年的大西洋子午线翻转环流(AMOC)比2010-11年的要大,在24.5N时从24.7±1.7降至20.1±1.4 Sv,在7.5N时从29.2±1.7降至16.9±1.5 Sv。这种减少的主要原因是南极中间水(AAIW)向北流动,1992-93年南极中间水比2010-11年更加强烈。因此,1992年(1.4±0.1 PW)和2011年(1.2 + 0.1 PW)在24.5N处的热传递没有显着差异。估计在7.5N处的热传递很大程度上取决于整个美国大陆平台上的北巴西洋流的大小。从1992-93年(-0.45±0.05 Sv)到2010-11年(-0.36±0.3 Sv),进入由两个跨洋剖面界定的盒子的淡水通量显着下降,这意味着同一区域的净蒸发量下降。

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  • 来源
    《Progress in Oceanography》 |2014年第11期|98-114|共17页
  • 作者单位

    Instituto de Oceanografia y Cambio Global (IOCAG), Universidad de Las Palmas de Gran Canaria, 35017 Las Palmas, Spain;

    Department d'Oceanografia Fisica i Tecnologica, Institut de Ciencies del Mar, CSIC, Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    Instituto Espanol de Oceanografia, Centra Oceanografico de Canarias, 38180 Santa Cruz de Tenerife, Spain;

    Instituto Espanol de Oceanografia, Centra Oceanografico de Canarias, 38180 Santa Cruz de Tenerife, Spain;

    Department d'Oceanografia Fisica i Tecnologica, Institut de Ciencies del Mar, CSIC, Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    Instituto de Oceanografia y Cambio Global (IOCAG), Universidad de Las Palmas de Gran Canaria, 35017 Las Palmas, Spain;

    Instituto Espanol de Oceanografia, Centra Oceanografico de Canarias, 38180 Santa Cruz de Tenerife, Spain;

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