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A quantitative analysis of the reactions involved in stratospheric ozone depletion in the polar vortex core

机译:极性涡流核心平流层臭氧消耗反应的定量分析

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We present a quantitative analysis of the chemical reactions involved in polar ozone depletion in the stratosphere and of the relevant reaction pathways and cycles. While the reactions involved in polar ozone depletion are well known, quantitative estimates of the importance of individual reactions or reaction cycles are rare. In particular, there is no comprehensive and quantitative study of the reaction rates and cycles averaged over the polar vortex under conditions of heterogeneous chemistry so far. We show time series of reaction rates averaged over the core of the polar vortex in winter and spring for all relevant reactions and indicate which reaction pathways and cycles are responsible for the vortex-averaged net change of the key species involved in ozone depletion, i.e., ozone, chlorine species (ClOsubx/sub, HCl, ClONOsub2/sub), bromine species, nitrogen species (HNOsub3/sub, NOsubx/sub) and hydrogen species (HOsubx/sub). For clarity, we focus on one Arctic winter (2004–2005) and one Antarctic winter (2006) in a layer in the lower stratosphere around 54?hPa and show results for additional pressure levels and winters in the Supplement. Mixing ratios and reaction rates are obtained from runs of the ATLAS Lagrangian chemistry and transport model (CTM) driven by the European Centre for Medium-Range Weather Forecasts (ECMWF) ERA-Interim reanalysis data. An emphasis is put on the partitioning of the relevant chemical families (nitrogen, hydrogen, chlorine, bromine and odd oxygen) and activation and deactivation of chlorine./p
机译:我们对平流层中涉及极性臭氧消耗的化学反应以及相关的反应途径和循环进行了定量分析。尽管涉及极性臭氧消耗的反应是众所周知的,但很少有关于单个反应或反应周期重要性的定量估计。尤其是,到目前为止,对于异构化学条件下极性涡旋上的平均反应速率和循环还没有进行全面和定量的研究。我们显示了所有相关反应在冬季和春季在极涡旋核心平均反应速率的时间序列,并指出哪些反应途径和周期是造成臭氧耗竭的关键物种涡旋平均净变化的原因,即臭氧,氯(ClO x ,HCl,ClONO 2 ),溴,氮(HNO 3 ,NO x < / sub>)和氢(HO x )。为了清楚起见,我们将重点放在平流层下层约54?hPa的一个北极冬季(2004-2005)和一个南极冬季(2006),并在补充中显示附加压力水平和冬季的结果。混合比和反应速率是从欧洲中距离天气预报中心(ECMWF)ERA-临时再分析数据驱动的ATLAS拉格朗日化学和运输模型(CTM)的运行中获得的。重点放在相关化学族(氮,氢,氯,溴和奇数氧)的划分以及氯的活化和失活。

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