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首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Stratospheric drain over Indonesia and dehydration within the tropical tropopause layer diagnosed by air parcel trajectories - art. no. 4610
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Stratospheric drain over Indonesia and dehydration within the tropical tropopause layer diagnosed by air parcel trajectories - art. no. 4610

机译:通过航空包裹轨迹诊断的印度尼西亚上空的平流层排水和热带对流层顶层内的脱水-艺术。没有。 4610

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1] The structures of temperature and velocity fields in the tropical tropopause layer (TTL) in boreal winter are investigated using an atmospheric general circulation model (AGCM). The model reveals strong upward motions in the lower part of the TTL over the maritime continent and the western tropical Pacific, corresponding to the "stratospheric fountain'' region, and downward motions in the upper part of the TTL over Indonesia, representing the stratospheric drain. In the TTL, strong easterlies prevail, and the cold ascent region tilts eastward. A down-slope flow over the upward-bulging isentropic surface produces the downward p velocity over Indonesia. In addition, reduction of longwave heating over deep convection suppresses the upward motion. The model simulates the observed stratospheric drain signature well, without convective overshootings. A trajectory analysis using the AGCM-simulated three-dimensional wind and temperature is performed to clarify the entry process of air parcels from the tropical troposphere to the stratosphere and to investigate the dehydration process during passage through the TTL. Tropospheric air parcels are advected upward to the bottom of the TTL mainly from the stratospheric fountain region. A pair of anticyclonic circulations in the tropical western Pacific entrains air parcels, which then pass through the equatorial cold region several times during the slow ascent in the TTL. This slow spirally ascending motion brings about low humidity in the stratosphere, despite the local downward motion over Indonesia. In addition, transient disturbances, particularly low-frequency disturbances, produce intermittent upward motions over the fountain region, resulting in effective dehydration of the air. The spiral ascent and transient mechanisms are key factors in the dehydration process in the TTL. The interannual variation in the water vapor mixing ratio into the tropical lower stratosphere with the El Nino/Southern Oscillation cycle is also estimated, and it is found that in La Nina years, air is more dehydrated. [References: 26
机译:1]使用大气总循环模型(AGCM)研究了北方冬季热带对流层顶层(TTL)的温度和速度场结构。该模型显示了对应于“平流层喷泉”区域的海洋大陆和西部热带太平洋上空的TTL下部强烈的向上运动,以及代表平流层流失的印度尼西亚上空的TTL上部强烈的向下运动。在TTL中,主要是东风,冷的上升区域向东倾斜,向上膨胀的等熵表面上的下坡流在印度尼西亚上空产生了下p速度,此外,深对流中长波加热的减少抑制了上层对流。该模型很好地模拟了观测到的平流层流失特征,没有对流超调,利用AGCM模拟的三维风和温度进行了轨迹分析,以阐明空气从热带对流层进入平流层的过程,并进行了调查。穿过TTL期间的脱水过程。对流层空气包裹向上平移到b TTL的底部主要来自平流层喷泉区。热带西太平洋的一对反气旋环流夹带着空气包裹,然后在TTL缓慢上升期间,空气包裹多次通过赤道寒冷地区。尽管印度尼西亚上空局部向下运动,但这种缓慢的螺旋上升运动导致平流层湿度较低。另外,瞬态扰动,特别是低频扰动,在喷泉区域产生间歇性的向上运动,导致空气有效脱水。螺旋上升和瞬变机制是TTL脱水过程中的关键因素。还估计了随着厄尔尼诺/南方涛动周期,进入热带低平流层的水蒸气混合比的年际变化,并且发现在拉尼娜年代,空气更加脱水。 [参考:26

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