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Strong dynamical modulation of the cooling of the polar stratosphere associated with the Antarctic ozone hole

机译:与南极臭氧洞相关的极地平流层冷却的强烈动态调制

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摘要

A model simulation forced by prescribed ozone depletion shows strong dynamical modulation of the springtime cooling of the polar stratosphere associated with the Antarctic ozone hole. The authors find that in late spring the anomalous radiative cooling in response to ozone depletion is almost canceled above ~100 hPa by an increase in dynamical heating. Between ~300 and ~100 hPa, however, it is enhanced by a reduction in dynamical heating, resulting in the descent of the cold anomaly down to the tropopause. In early summer increased dynamical heating dominates as the radiative cooling diminishes so that the cold anomaly associated with the delayed breakup of the stratospheric vortex is reduced. The anomalous dynamical heating is driven by changes in the Brewer–Dobson circulation arising primarily from the dissipation of resolved-scale waves. The model changes are broadly consistent with trends from reanalysis and offline diagnoses of heating rates using a radiation scheme. These results help one to understand dynamically induced change in the evolution and timing of the stratospheric vortex in recent decades and will help to enable improved simulation of the Southern Hemisphere climate.
机译:由规定的臭氧消耗强迫进行的模型仿真显示,与南极臭氧洞有关的极地平流层的春季冷却具有很强的动力调节作用。作者发现,在春季末期,由于动态加热的增加,响应于臭氧消耗的异常辐射冷却几乎在100 hPa以上被抵消。但是,在约300 hPa至约100 hPa之间,动态加热的减少会增强该强度,导致冷异常下降到对流层顶。在夏季初,随着辐射冷却的减少,动态加热占主导地位,从而减少了与平流层涡旋延迟破裂有关的冷异常。布鲁尔-多布森环流的变化主要是由分解尺度波的消散引起的,从而引起了异常的动态加热。模型的变化与使用辐射方案对加热速率的重新分析和离线诊断的趋势基本一致。这些结果有助于人们了解近几十年来平流层涡旋演化和时间动态变化引起的变化,并将有助于改进对南半球气候的模拟。

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