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Upgrading photolysis in the p-TOMCAT CTM: model validation and assessment of the role of clouds

机译:在p-TOMCAT CTM中升级光解:模型验证和云的作用评估

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A new version of the p-TOMCAT Chemical Transport Model (CTM) which includes an improved photolysis code, Fast-JX, is validated. Through offline testing we show that Fast-JX captures observed J(NO2) and J(O1D) values well, though with some overestimation of J(O1D) when comparing to data retrieved during a flight. By comparing p-TOMCAT output of CO and ozone with measurements, we find that the inclusion of Fast-JX in the CTM strongly improves the latter's ability to capture the seasonality and levels of tracers' concentrations. A probability distribution analysis demonstrates that photolysis rates and oxidant (OH, ozone) concentrations cover a broader range of values when using Fast-JX instead of the standard two-stream photolysis code. This is not only driven by improvements in the seasonality of cloudiness but also even more by the better representation of cloud spatial variability. We use three different cloud treatments to study the radiative effect of clouds on the abundances of a range of tracers and find only modest effects on a global scale. This is consistent with the most relevant recent study. The new version of the validated CTM will be used for a variety of future studies examining the variability of tropospheric composition and its drivers.
机译:验证了包含改进的光解代码Fast-JX的p-TOMCAT化学传输模型(CTM)的新版本。通过离线测试,我们证明Fast-JX捕获到的J(NO 2 )和J(O 1 D)值很好,尽管对J(O 1 D)与飞行中获取的数据进行比较。通过将p-TOMCAT的CO和臭氧输出与测量值进行比较,我们发现CTM中包含Fast-JX可以大大提高后者捕获示踪剂浓度的季节性和水平的能力。概率分布分析表明,当使用Fast-JX而不是标准的双流光解代码时,光解速率和氧化剂(OH,臭氧)浓度涵盖更大范围的值。这不仅是由于乌云季节的改善所致,而且还受到云空间变异性更好地表示的推动。我们使用三种不同的云处理方法来研究云对一系列示踪剂丰度的辐射影响,并且在全球范围内仅发现适度的影响。这与最近最相关的研究一致。经过验证的CTM的新版本将用于各种未来研究,以研究对流层组成及其驱动因素的变化。

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