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Quantifying tracer transport in the tropical lower stratosphere using WACCM

机译:使用WACCM量化热带低平流层中的示踪剂传输

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The zonal mean transport of ozone and carbon monoxide (CO) near the tropical tropopause is investigated using the Whole-Atmosphere Community Climate Model version 4 (WACCM4). The variability in temperature, ozone and CO in the model shows good agreement with satellite and balloon observations. Modeled temperature and tracers exhibit large and closely coupled annual cycles in the tropical lower stratosphere, as in the observations. The thermodynamic and tracer budgets in the model are analyzed based on the Transformed Eulerian Mean (TEM) framework on log-pressure coordinates and also using the isentropic formulation. Results show that the coupled seasonal cycles are mainly forced by tropical upwelling over altitudes with large vertical tracer gradients, in agreement with previous observational studies. The model also allows explicit calculation of eddy transport terms, which make an important contribution to ozone tendencies in the tropical lower stratosphere. The character of the eddy fluxes changes with altitude. At higher levels (~2 km above the cold point tropopause), isentropic eddy transport occurs during winter and spring in each hemisphere in the sub-tropics, associated with transient Rossby waves acting on strong background latitudinal gradients. At lower altitudes, close to the tropical tropopause, there is a maximum in horizontal eddy transport during boreal summer associated with the Asian monsoon anticyclone. Subseasonal variability in ozone and CO, tied to fluctuations in temperature, is primarily driven by transient tropical upwelling. In isentropic coordinates, the overall tracer budgets are similar to the log-pressure results, highlighting crossisentropic advection as the main term in the time-mean balance, with large seasonality above the tropopause. However, in isentropic coordinates the tracer variability is largely reduced on both seasonal and sub-seasonal timescales, because tracer fluctuations are highly correlated with temperature (as a response to upwelling).
机译:使用全大气层社区气候模式第4版(WACCM4)研究了热带对流层顶附近臭氧和一氧化碳(CO)的区域平均传输。该模型中温度,臭氧和一氧化碳的变化与卫星和气球观测显示出良好的一致性。如观测结果所示,模拟的温度和示踪剂在热带低平流层中表现出较大且紧密耦合的年周期。基于对数压力坐标上的变换欧拉均值(TEM)框架以及等熵公式,分析了模型中的热力学和示踪剂预算。结果表明,与以前的观测研究一致,耦合的季节周期主要是由热带上升流在垂直示踪剂梯度较大的高度上强迫的。该模型还允许显式计算涡流输运项,这对热带低平流层中的臭氧趋势做出了重要贡献。涡流的特征随高度而变化。在较高的高度(距对流层顶上方约2 km处),在亚热带的每个半球的冬季和春季,等熵涡流会发生,这与作用在强背景纬度梯度上的瞬态Rossby波有关。在较低的高度,靠近热带对流层顶,与亚洲季风反气旋有关的北方夏季,水平涡流的输送量最大。臭氧和一氧化碳的季节变化与温度波动有关,主要是由短暂的热带上升驱动的。在等熵坐标系中,示踪剂的总体预算与对数压力结果相似,突出了等熵交叉对流作为时间均值的主要术语,对流层顶上方具有较大的季节性。但是,在等熵坐标系中,示踪剂的变异性在季节和次季节时间尺度上都大大降低了,因为示踪剂的波动与温度高度相关(作为对上升流的响应)。

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