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首页> 外文期刊>Quarterly Journal of the Royal Meteorological Society >The role of the south-east Asian monsoon and other seasonal features in creating the 'tape-recorder' signal in the Unified Model
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The role of the south-east Asian monsoon and other seasonal features in creating the 'tape-recorder' signal in the Unified Model

机译:东南亚季风和其他季节性特征在统一模型中创建“磁带记录器”信号的作用

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A multi-year simulation with an atmospheric general-circulation model (AGCM), the Unified Model, is shown to simulate the main features of seasonal variations in the concentrations of water vapour in the stratosphere--the so-called tape-recorder signal An off-line transport model, utilizing winds from the AGCM, is used to synthesize the signal from local contributions During Tune-July-August, the most significant localized contribution to the moist phase of the signal comes from an air stream emanating from the South-East Asian monsoon. The moist air does not enter the stratosphere immediately above the monsoon in a localized 'fountain'. Rather, the air stream moves southward, via the monsoon's upper level anticyclone, into the tropical stratospherewhile moving steadily upwards across isentropic surfaces in a field of radiative heating in the tropical tropopause layer (TTL) As a result of this steady ascent during equatorward movement, not all the airstream is freeze dried in the cold cap of low temperatures which exists in the TTL above the monsoon. The water vapour mixing ratios of air entering the stratospheric tape-recorder are therefore not entirely set by the minimum temperatures near the equator, but in part by physical conditions outsidethe inner tropical region used to define the tape-recorder signal. During December-January-February, the flow near the tropopause is simpler Dry air enters the stratosphere by slow upglide through the localized temperature minimum near the tropical tropopause over the western Pacific. The mixing ratios during the dry phase are set largely by freeze drying in this region. The simple tape-recorder model, which envisages that mixing ratios are set by the minimum temperature near the tropical tropopause istherefore an oversimplification.
机译:展示了使用大气通用循环模型(AGCM)进行的多年模拟,该模拟模拟了平流层中水蒸气浓度的季节性变化的主要特征,即所谓的磁带记录仪信号An离线传输模型利用AGCM的风来合成来自局部贡献的信号。在7月7日至8月的周二期间,对信号潮湿阶段最显着的局部贡献来自南方空气流。东亚季风。潮湿的空气不会在局部“喷泉”中立即进入季风上方的平流层。相反,气流通过季风的上层反气旋向南移动到热带平流层,同时在热带对流层顶层(TTL)的辐射加热场中,通过等熵表面稳定向上移动。由于赤道运动期间这种稳定的上升,并非所有气流都在季风上方TTL中存在的低温冷盖中冻干。因此,进入平流层磁带录音机的空气的水蒸气混合比并不完全由赤道附近的最低温度设定,而是部分由用于定义磁带录音机信号的热带内部区域以外的物理条件来设定。在12月至1月2月,对流层顶附近的气流更简单。干燥空气通过缓慢的上滑运动,通过西太平洋热带对流层顶附近的局部最低温度进入平流层。干燥阶段的混合比例主要通过在该区域冷冻干燥来设定。因此,简单的磁带录音机模型设想混合比由热带对流层顶附近的最低温度来设定,因此过于简单了。

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