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首页> 外文期刊>Journal of Physical Oceanography >Seasonal Cycle of Mesoscale Instability of the West Spitsbergen Current
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Seasonal Cycle of Mesoscale Instability of the West Spitsbergen Current

机译:西斯匹次卑尔根流中尺度不稳定性的季节周期

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The West Spitsbergen Current (WSC) is a topographically steered boundary current that transports warm Atlantic Water northward in Fram Strait. The 16 yr (1997-2012) current and temperature-salinity measurements from moorings in the WSC at 78 degrees 50 ' N reveal the dynamics of mesoscale variability in the WSC and the central Fram Strait. A strong seasonality of the fluctuations and the proposed driving mechanisms is described. In winter, water is advected in the WSC that has been subjected to strong atmospheric cooling in the Nordic Seas, and as a result the stratification in the top 250 m is weak. The current is also stronger than in summer and has a greater vertical shear. This results in an e-folding growth period for baroclinic instabilities of about half a day in winter, indicating that the current has the ability to rapidly grow unstable and form eddies. In summer, the WSC is significantly less unstable with an e-folding growth period of 2 days. Observations of the eddy kinetic energy (EKE) show a peak in the boundary current in January-February when it is most unstable. Eddies are then likely advected westward, and the EKE peak is observed 1-2 months later in the central Fram Strait. Conversely, the EKE in the WSC as well as in the central Fram Strait is reduced by a factor of more than 3 in late summer. Parameterizations for the expected EKE resulting from baroclinic instability can account for the observed EKE values. Hence, mesoscale instability can generate the observed variability, and high-frequency wind forcing is not required to explain the observed EKE.
机译:西斯匹次卑尔根流(WSC)是一种地形导向的边界流,向Fram海峡向北输送温暖的大西洋水。从WSC在78度50'N处的系泊进行的16年(1997-2012年)电流和温度盐度测量揭示了WSC和中部弗拉姆海峡中尺度变化的动态。描述了强烈的季节性波动和建议的驱动机制。冬季,在北欧海中受到强烈大气冷却的WSC中会出现水流,因此250 m顶部的分层很弱。海流也比夏季强,垂直切变更大。这导致冬季斜压不稳定的电子折叠生长期约为半天,这表明电流具有迅速生长不稳定并形成涡流的能力。在夏季,WSC的电子折叠生长期为2天,不稳定程度明显降低。涡动能(EKE)的观察结果显示,在1-2月最不稳定的时候,边界电流达到峰值。然后涡流很可能向西平移,并且在1-2个月后在中部弗拉姆海峡观测到EKE高峰。相反,夏季末,WSC和中部弗拉姆海峡的EKE降低了三倍多。由斜压不稳定性导致的预期EKE的参数化可以解释观测到的EKE值。因此,中尺度的不稳定性会产生观测到的变化,并且不需要高频风力来解释观测到的EKE。

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