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On the Mechanism of Pacific Multidecadal Climate Variability in CCSM3: The Role of the Subpolar North Pacific Ocean

机译:CCSM3中太平洋多年代际气候变化的机制:亚极北太平洋的作​​用

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Previous analyses of the Community Climate System Model, version 3 (CCSM3) standard integration have revealed pronounced multidecadal variability in the Pacific climate system. The purpose of the present work is to investigate physical mechanism underlying this Pacific multidecadal variability (PMV). To better isolate the mechanism that selects the long multidecadal time scale for the PMV, a few specifically designed sensitivity experiments are carried out. When the propagating Rossby waves are blocked in the subtropics from the midbasin, the PMV remains outstanding. In contrast, when the Rossby waves are blocked beyond the subtropics across the entire North Pacific, the PMV is virtually suppressed. It suggests that the PMV relies on propagating Rossby waves in the subpolar Pacific, whereas those in the subtropics are not critical.rnA novel mechanism of PMV is advanced based on a more comprehensive analysis, which is characterized by a crucial role of the subpolar North Pacific Ocean. The multidecadal ocean temperature and salinity anomalies may originate from the subsurface of the subpolar North Pacific because of the wave adjustment to the preceding basin-scale wind curl forcing. The anomalies then ascend to the surface and are amplified through local temperature-salinity convective feedback. Along the southward Oyashio, these anomalies travel to the Kuroshio Extension (KOE) region and are further intensified through a similar convective feedback. The oceanic temperature anomaly in the KOE is able to feed back to the large-scale atmospheric circulation, inducing a wind curl anomaly over the subpolar North Pacific, which in turn generates anomalous oceanic circulation and causes temperature and salinity variability in the subpolar subsurface. Thereby, a closed loop of PMV is established in the form of an extratropical delayed oscillator. The phase transition of PMV is driven by the delayed negative feedback that resides in the wave adjustment of the subpolar North Pacific via propagating Rossby waves, whereas the convective positive feedback provides the growth mechanism. A significant role of salinity variability is unveiled in both the delayed negative feedback and convective positive feedback.
机译:先前对社区气候系统模型版本3(CCSM3)标准集成的分析显示,太平洋气候系统存在明显的多年代际变化。本工作的目的是研究这种太平洋多年代际变化(PMV)的物理机制。为了更好地隔离为PMV选择较长的数十年时间尺度的机制,进行了一些专门设计的灵敏度实验。当传播的罗斯比波在中亚盆地的亚热带地区被阻塞时,PMV仍然很出色。相反,当罗斯比波在整个北太平洋范围内被阻挡到亚热带以外时,PMV实际上被抑制了。这表明PMV依赖于在亚极太平洋传播的Rossby波,而在亚热带则不是关键.rn在更全面的分析基础上提出了一种PMV的新机制,其特征是在亚极北太平洋具有关键作用海洋。由于对先前盆地尺度风卷强迫的波浪调整,多年代际海洋温度和盐度异常可能起源于亚极北太平洋的地下。然后,异常上升到表面,并通过局部温度-盐度对流反馈被放大。沿着大矢潮以南,这些异常传播到黑潮延伸(KOE)地区,并通过类似的对流反馈进一步加剧。 KOE中的海洋温度异常能够反馈到大规模的大气环流,从而在北极亚极上引起风卷异常,进而产生异常的海洋环流,并导致亚极下层地下的温度和盐度变化。由此,以温带延迟振荡器的形式建立了PMV的闭环。 PMV的相变由延迟负反馈驱动,该负反馈通过传播的Rossby波位于子极北太平洋的波调整中,而对流正反馈则提供了增长机制。盐度变异性在延迟负反馈和对流正反馈中都发挥着重要作用。

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  • 来源
    《Journal of Physical Oceanography》 |2009年第9期|2052-2076|共25页
  • 作者

    Yafang Zhong; Zhengyu Liu;

  • 作者单位

    Center for Climatic Research, and Department of Atmospheric and Oceanic Sciences, University of Wisconsin-Madison, Madison, Wisconsin CCR, 1225 W. Dayton St., Madison, WI 53706;

    Center for Climatic Research, and Department of Atmospheric and Oceanic Sciences, University of Wisconsin-Madison, Madison, Wisconsin;

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