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A refined method for calculating equivalent effective stratospheric chlorine

机译:一种计算等效有效平流层氯的精制方法

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Chlorine and bromine atoms lead to catalytic depletion of ozone in the stratosphere. Therefore the use and production of ozone-depleting substances (ODSs) containing chlorine and bromine is regulated by the Montreal Protocol to protect the ozone layer. Equivalent effective stratospheric chlorine (EESC) has been adopted as an appropriate metric to describe the combined effects of chlorine and bromine released from halocarbons on stratospheric ozone. Here we revisit the concept of calculating EESC. We derive a refined formulation of EESC based on an advanced concept of ODS propagation into the stratosphere and reactive halogen release. A new transit time distribution is introduced in which the age spectrum for an inert tracer is weighted with the release function for inorganic halogen from the source gases. This distribution is termed the release time distribution. We show that a much better agreement with inorganic halogen loading from the chemistry transport model TOMCAT is achieved compared with using the current formulation. The refined formulation shows EESC levels in the year 1980 for the mid-latitude lower stratosphere, which are significantly lower than previously calculated. The year 1980 is commonly used as a benchmark to which EESC must return in order to reach significant progress towards halogen and ozone recovery. Assuming that – under otherwise unchanged conditions – the EESC value must return to the same level in order for ozone to fully recover, we show that it will take more than 10?years longer than estimated in this region of the stratosphere with the current method for calculation of EESC. We also present a range of sensitivity studies to investigate the effect of changes and uncertainties in the fractional release factors and in the assumptions on the shape of the release time distributions. We further discuss the value of EESC as a proxy for future evolution of inorganic halogen loading under changing atmospheric dynamics using simulations from the EMAC model. We show that while the expected changes in stratospheric transport lead to significant differences between EESC and modelled inorganic halogen loading at constant mean age, EESC is a reasonable proxy for modelled inorganic halogen on a constant pressure level.
机译:氯和溴原子导致平流层中臭氧的催化消耗。因此,含氯和溴的臭氧消耗物质(ODS)的使用和生产由蒙特利尔方案调节以保护臭氧层。相当于有效的平坦氯(EESC)作为适当的指标,以描述从卤代烃对平坦散臭型卤烃释放的氯和溴的组合作用。在这里,我们重新审视计算EESC的概念。基于对流层和反应性卤素释放的高渗繁殖的先进概念,我们基于对平流层和反应性卤素释放的先进概念来得出EESC的精致制剂。引入了新的运输时间分布,其中惰性示踪剂的年龄谱与来自源气体的无机卤素的释放功能加权。该分布被称为释放时间分布。我们表明,与使用当前制剂相比,实现了与化学传输模型Tomcat的无机卤素加载更好的一致。精制制剂显示了1980年为中纬度下划线的EESC水平,这显着低于先前计算的。 1980年常用为EESC必须返回的基准,以达到卤素和臭氧恢复的重大进展。假设 - 根据其他不变的条件 - EESC值必须返回相同的水平,以便臭氧完全恢复,我们表明它将需要超过10多年的时间超过平流层的该区域的估计与当前方法eesc计算。我们还展示了一系列敏感性研究,以研究分数释放因子中的变化和不确定性的影响以及释放时间分布形状的假设。我们进一步讨论了EEC的价值作为使用EMAC模型的模拟在改变大气动力学下的无机卤素负荷的代理。我们表明,虽然平坦散发性的预期变化导致恒定平均年龄的EESC和模型无机卤素载荷之间的显着差异,但EESC是一种合理的卤素在恒压水平上建模的代理。

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