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Reformulating the bromine alpha factor and equivalent effective stratospheric chlorine (EESC): evolution of ozone destruction rates of bromine and chlorine in future climate scenarios

机译:重新制定溴α因子和等同的有效平流层氯(EESC):将来气候情景中溴和氯的臭氧破坏率的演变

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Future trajectories of the stratospheric trace gas background will alter the rates of bromine- and chlorine-mediated catalytic ozone destruction via changes in the partitioning of inorganic halogen reservoirs and the underlying temperature structure of the stratosphere. The current formulation of the bromine alpha factor, the ozone-destroying power of stratospheric bromine atoms relative to stratospheric chlorine atoms, is invariant with the climate state. Here, we refactor the bromine alpha factor, introducing normalization to a benchmark chemistry–climate state, and formulate Equivalent Effective Stratospheric Benchmark-normalized Chlorine (EESBnC) to reflect changes in the rates of both bromine- and chlorine-mediated ozone loss catalysis with time. We show that the ozone-processing power of the extrapolar stratosphere is significantly perturbed by future climate assumptions. Furthermore, we show that our EESBnC-based estimate of the extrapolar ozone recovery date is in closer agreement with extrapolar ozone recovery dates predicted using more sophisticated 3-D chemistry–climate models than predictions made using equivalent effective stratospheric chlorine (EESC).
机译:平流层痕量气体背景的未来轨迹将通过变化改变溴 - 介导的催化臭氧破坏的催化臭氧破坏,以及平流层的下层温度结构。溴α因子的当前制剂,流石溴原子相对于平坦散氯原子的臭氧破坏力,是不变的气候状态。在这里,我们重构溴α因子,向基准化学 - 气候状态引入标准化,并制定了等效的有效的平流层基准 - 归一化氯(EESBNC),反映了溴和氯介导的臭氧损失催化催化的变化随着时间的推移。我们表明,外侧流层的臭氧加工能力因未来的气候假设而显着扰乱。此外,我们表明,我们的EESBNC基于EESBNC臭氧恢复日期的估计与使用更复杂的3-D特化学 - 气候模型预测的外臭臭氧恢复日期比使用等同的有效平分氯(EESES)的预测更仔细。

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