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Using the Artificial Tracer e90 to Examine Present and Future UTLS Tracer Transport in WACCM

机译:使用人工示踪器E90检查WACCM中的现在和未来的UTL示踪传输

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Large-scale tracer transport in the upper troposphere and lower stratosphere (UTLS) is investigated using simulations of the Whole Atmosphere Community Climate Model (WACCM) over the period 1955-2099. The analyses are based on e90, an artificial passive tracer with constant emissions and atmospheric loss rates. The separate contributions of advection by the residual circulation, eddy mixing, and subgrid convection to total transport are explicitly evaluated. The results highlight distinct large-scale transport regimes in the tropics, characterized by efficient vertical tracer transport, and the extratropics, dominated by isentropic mixing. One novel result is the important role of vertical eddy mixing in the tropical upper troposphere. It is shown that interannual variability in e90 is largely driven by El Nino-Southern Oscillation and the quasi-biennial oscillation. The long-term trends emphasize a strong impact of a rising tropopause with climate change on UTLS dynamics and tracer transport. The analyses directly attribute the e90 trends to changes in the different transport components. Stronger residual circulation in the future leads to increased tracer concentrations in the tropical lower stratosphere. Enhanced eddy mixing increases e90 in the extratropical lowermost stratosphere, linked to an upward shift of wave dissipation tied to the tropopause rise. In the troposphere, reduced concentrations in the future are due to weaker convective transport out of the boundary layer and weaker extratropical isentropic eddy mixing.
机译:在1955 - 2019年期间,使用全氛围社区气候模型(WACCM)的模拟来研究上层对流层和较低的平流层(UTL)的大规模示踪物运输。分析基于E90,一种具有恒定排放和大气损失率的人工被动示踪剂。明确评估了剩余循环,涡流混合和底下对流对总运输的单独贡献。结果突出了热带地区的不同大规模的传输制度,其特征在于高效的垂直示踪传输,以及通过熵搅拌主导地位的鞋面。一种新的结果是垂直涡流在热带上层对流层中的重要作用。结果表明,E90中的续变性在很大程度上受到EL Nino-Southern振荡和准双年振荡的驱动。长期趋势强调了对博罗博的强烈影响与UTLS动力学和示踪运输的气候变化。分析直接将E90趋势直接归因于不同传输组件的更改。未来的剩余循环强劲导致热带下划线中的示踪剂浓度增加。增强型涡流混合在潜在的最低层平流层中增加E90,与对象升起的波浪耗散的向上偏移连接。在对流层中,未来的减少浓度是由于边界层的对流输出较弱,并且较弱的含有额内腹涡流混合。

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