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Latitudinal Structure of the Meridional Overturning Circulation Variability on Interannual to Decadal Time Scales in the North Atlantic Ocean

机译:北大西洋跨越截止划分循环变异性的纬度结构

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摘要

The latitudinal structure of the Atlantic meridional overturning circulation (AMOC) variability in the North Atlantic is investigated using numerical results from three ocean circulation simulations over the past four to five decades. We show that AMOC variability south of the Labrador Sea (53 degrees N) to 25 degrees N can be decomposed into a latitudinally coherent component and a gyre-opposing component. The latitudinally coherent component contains both decadal and interannual variabilities. The coherent decadal AMOC variability originates in the subpolar region and is reflected by the zonal density gradient in that basin. It is further shown to be linked to persistent North Atlantic Oscillation (NAO) conditions in all three models. The interannual AMOC variability contained in the latitudinally coherent component is shown to be driven by westerlies in the transition region between the subpolar and the subtropical gyre (40 degrees-50 degrees N), through significant responses in Ekman transport. Finally, the gyre-opposing component principally varies on interannual time scales and responds to local wind variability related to the annual NAO. The contribution of these components to the total AMOC variability is latitude-dependent: 1) in the subpolar region, all models show that the latitudinally coherent component dominates AMOC variability on interannual to decadal time scales, with little contribution from the gyre-opposing component, and 2) in the subtropical region, the gyreopposing component explains a majority of the interannual AMOC variability in two models, while in the other model, the contributions from the coherent and the gyre-opposing components are comparable. These results provide a quantitative decomposition of AMOC variability across latitudes and shed light on the linkage between different AMOC variability components and atmospheric forcing mechanisms.
机译:在过去的四到五十年中,使用数值结果研究了北大西洋中大西洋的大西洋经络循环(AMOC)变异性的纬度。我们表明,拉布拉多海(53度)至25度N的南方的Amoc变异可以分解成纬度相干的组分和陀螺仪相对的组分。纬度连贯的组件含有二等际和际变量。相干的十二次AMOC可变性源于亚极区域中,并被该盆地中的区域密度梯度反射。进一步显示在所有三种模型中与持久的北大西洋振荡(NAO)条件相关联。纬度地相干组分中包含的持续的AMOC可变性被示出为通过EKMAN传输的显着反应的亚波拉和亚热带陀螺(40度-50度N)之间的过渡区域中的Westerlies驱动。最后,陀螺相反组件主要在持续时间范围内各种各样地变化,并响应与年度NAO相关的局部风可变性。这些组件对总AMOC变异性的贡献是依赖于纬度依赖性:1)在亚极区域中,所有模型都表明,纬度相干的组件统称跨越截止额外时间尺度的AMOC变异,与陀螺仪相反的组件几乎没有贡献, 2)在亚热带区域中,锭剂化组分解释了两种模型中的大多数持续的AMOC变异,而在另一模型中,来自相干和陀螺组分的贡献是可比的。这些结果在不同Amoc可变性组分和大气强制机构之间的连锁上提供了跨纬度的Amoc变异性的定量分解。

著录项

  • 来源
    《Journal of Climate》 |2020年第9期|共18页
  • 作者单位

    Duke Univ Durham NC 27708 USA;

    Duke Univ Durham NC 27708 USA;

    Florida State Univ Ctr Ocean Atmospher Predict Studies Tallahassee FL 32306 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 气候学;
  • 关键词

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