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William Ball

Publications and source records attributed to William Ball.

The Response of the Ozone Layer Under Abrupt 4xCO2 in CMIP6

Previous studies indicate a possible role of stratospheric ozone chemistry feedbacks in the climate response to 4xCO2, either via a reduction in equilibrium climate sensitivity (ECS) (Nowack et al., 2015), or via changes in the tropospheric circulation (Chiodo and Polvani, 2017). However, these effects are subject to uncertainty. Part of the uncertainty may stem from the dependency of the feedback on the pattern of the ozone response, as the radiative efficiency of ozone largely depends on its vertical distribution (Lacis et al., 1990). Here, an analysis is presented of the ozone layer response to 4xCO2 in chemistry–climate models (CCMs) which participated to CMIP intercomparisons. In a previous study using CMIP5 models, it has been shown that under 4xCO2, ozone decreases in the tropical lower stratosphere, and increases over the high latitudes and throughout the upper stratosphere. It was also found that a substantial portion of the spread in the tropical column ozone is tied to inter-model spread in tropical upwelling, which is in turn partly tied to ECS (Chiodo et al., 2018). Here, we revisit this connection using4xCO2 data from CMIP6, thereby exploiting the larger number of CCMs than in CMIP5. In addition, we explore the linearity of the ozone response, by complementing the analysis with simulations using transient CO2 forcing (1pc/year). We show that the pattern of the ozone response in is similar to CMIP5. In some models (e.g. WACCM), we find larger ozone responses in CMIP6 than in CMIP5, partly because of the larger ECS and thus larger upwelling response in the tropical pipe. In this presentation, we will discuss the relationship between radiative forcing, transport and ozone, as well as further implications for CMIP6 models.

Ozone layer

WMO Assessment 2022: Chapter 3 Summary

Efforts for the 2022 Scientific Assessment on Ozone Depletion published by the World Meteorological Organization are well underway. Chapter 3, titled “Update on Global Ozone: Past, Present, and Future”, presents our current understanding of global ozone outside of the polar regions and this talk summarizes some of the highlights and changes from the previous Assessment in 2018. Since the last Assessment, the longer observational records show a small, significant increase in near-global total column ozone. A small significant increase in total column ozone is also seen in the mid-latitudes of both hemispheres, but not yet the tropics. Different processes operating at different altitudes complicate the interpretation of the overall total column trend. However, a significant increase in upper stratospheric ozone noted in the previous Assessment continues, driven by declines in ozone depleting substances and increases in greenhouse gases. Model simulations support our understanding of these trends. Over the coming century, we expect an increase in global stratospheric ozone as the concentrations of ozone depleting substances decline. The future evolution for different latitudes and vertical levels depends on the future concentrations of greenhouse gases and precursors of tropospheric ozone., These other influences may lead to total ozone column levels that remain below 1980 values even after ozone depleting substance concentrations have recovered to pre-1980 levels.

Birgit Hassler