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The annual cycle in lower stratospheric temperatures revisited

机译:重新审视了较低的平流层温度的年度周期

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Observed lower stratospheric temperatures show a prominent annual cycle. The cycles in the tropics and Northern Hemisphere are in phase and the cycle in the Southern Hemisphere has the opposite phase. In an elegant and influential paper, Yulaeva, Holton and Wallace (1994) explained the observed pattern as a direct consequence of hemispheric asymmetries in the dynamical forcing of the stratospheric circulation. They showed that in Microwave Sounding Unit channel 4 (weighting centered in the lower stratosphere) data the combined extratropical and the tropical temperature cycle nearly compensate and interpreted the out-of-phase temperature variations between tropics and extratropics as the temperature response to an annual cycle in the wave driven residual circulation. We show that the near-compensation of temperature variations observed by Yulaeva et al. (1994) is artefact of the weighting function of the MSU-4 channel and does not hold on individual pressure levels. We discuss in detail the conditions required that temperature variations compensate, and what insights can be obtained from analysis of tropical, extratropical and global mean temperature variations. Dynamically induced seasonal variations of lower stratospheric ozone lead to an amplification of the seasonal temperature cycle particularly in the tropics. The latitudinal structure of static stability also induces a significant deviation from compensation of tropical and combined extratropical temperature variations. In line with Yulaeva et al. (1994) we affirm that the see-saw pattern in the annual cycles of tropical and combined extratropical temperatures provides an important pointer to mechanistic models for interannual variability and trends, but additionally conclude that the feedback of dynamically induced ozone variations on temperatures and the latitudinal structure of static stability should be included as leading order processes in such models.
机译:观察到的较低平流层温度显示出突出的年度周期。热带和北半球的周期在阶段,南半球的循环有相反的相位。在优雅且有影响力的纸张中,Yulaeva,Holton和Wallace(1994)将观察到的图案作为半球循环动力学强迫中的半球不对称的直接后果。他们认为,在微波探测单元通道4中(以较低的平流层中的加权为中心)数据,组合的卓越性和热带温度周期几乎补偿并解释了热带和卓越层之间的相位异常温度变化作为对年周期的温度响应在波驱动的残余循环中。我们表明Yulaeva等人观察到的温度变化的近乎补偿。 (1994)是MSU-4通道的加权函数的人工制品,并没有保持各个压力水平。我们详细讨论了温度变化补偿所需的条件,以及从热带,卓越和全球平均温度变化的分析中可以获得什么知识。动态诱导较低平流层臭氧的季节变化导致季节性温度循环的放大,特别是在热带地区。静态稳定性的纬度结构也引起了热带补偿和组合的卓越温度变化的显着偏差。符合yulaeva等。 (1994)我们确认热带和联合额外温度的年度周期中的See-Saw模式对维修范围和趋势的机械模型提供了重要的指针,但另外得出结论,动态诱导的臭氧变化对温度和纬度的反馈静态稳定性的结构应作为这种模型中的领先订单过程。

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