Increased vertical resolution in the stratosphere reveals role of gravity waves after sudden stratospheric warmings

W. Wicker, I. Polichtchouk, D. Domeisen
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引用次数: 1

Abstract

Abstract. Sudden stratospheric warmings (SSWs) have a long-lasting effect within the stratosphere as well as impacts on the underlying troposphere. However, sub-seasonal forecasts of the winter polar stratosphere fail to use their full potential for predictability as they tend to underestimate the magnitude and persistence of these events already within the stratosphere. The origin of this underestimation is unknown. Here, we demonstrate that the associated polar stratospheric cold bias following SSW events in sub-seasonal hindcasts can be halved by increasing vertical model resolution, suggesting a potential sensitivity to gravity wave forcing. While the predictability of the planetary Rossby wave flux into the stratosphere at lead times longer than a week is limited, the existence of a critical layer for gravity waves with a low zonal phase speed caused by the disturbed polar vortex provides predictability to the upper stratosphere. Gravity wave breaking near that critical layer can, therefore, decelerate the zonal flow consistently with anomalous subsidence over the polar cap leading to warmer temperatures in the middle polar stratosphere. Since the spectrum of gravity waves involves vertical wavelengths of less than 4000 m, as estimated by wavelet analysis, a high vertical model resolution is needed to resolve the positive feedback between gravity wave forcing and the state of the polar vortex. Specifically, we find that at a spectral resolution of TCo639 (approximate horizontal grid spacing of 18 km) at least 198 levels are needed to correctly resolve the spectrum of gravity waves in the ECMWF Integrated Forecasting System. Increasing vertical resolution in operational forecasts will help to mitigate stratospheric temperature biases and improve sub-seasonal predictions of the stratospheric polar vortex.
平流层垂直分辨率的增加揭示了平流层突然变暖后重力波的作用
摘要平流层突然变暖(SSWs)在平流层内具有持久的影响,并对底层对流层产生影响。然而,冬季极地平流层的分季节预报未能充分发挥其可预测性的潜力,因为它们往往低估了平流层内这些事件的规模和持续时间。这种低估的原因尚不清楚。在这里,我们证明了在次季节预报中,随着SSW事件的发生,相关的极地平流层冷偏可以通过增加垂直模式分辨率而减半,这表明对重力波强迫的潜在敏感性。虽然在超过一周的提前时间内进入平流层的行星罗斯比波通量的可预测性是有限的,但由扰动极涡引起的具有低纬向相速的重力波临界层的存在为平流层上层提供了可预测性。因此,在该临界层附近的重力波破裂可以使纬向流持续减速,并使极帽上的异常沉降导致中极平流层温度升高。由于重力波频谱的垂直波长小于4000 m,因此需要较高的垂直模式分辨率来解析重力波强迫与极涡状态之间的正反馈。具体而言,我们发现在TCo639(大约18 km的水平网格间距)的光谱分辨率下,ECMWF综合预报系统至少需要198个能级才能正确解析重力波的频谱。提高业务预报的垂直分辨率将有助于减轻平流层温度偏差,并改善平流层极地涡旋的分季节预报。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.40
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