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Investigating HALocarbon impacts on the global Environment

Lead Research Organisation: University of Leeds
Department Name: School of Earth and Environment

Abstract

With the Kigali Amendment coming into force in 2019, the Montreal Protocol on Substances that Deplete the Ozone Layer has entered a major new phase in which the production and use of hydrofluorocarbons (HFCs) will be controlled in most major economies. This landmark achievement will enhance the Protocol's already-substantial benefits to climate, in addition to its success in protecting the ozone layer. However, recent scientific advances have shown that challenges lie ahead for the Montreal Protocol, due to the newly discovered production of ozone-depleting substances (ODS) thought to be phased-out, rapid growth of ozone-depleting compounds not controlled under the Protocol, and the potential for damaging impacts of halocarbon degradation products. This proposal tackles the most urgent scientific questions surrounding these challenges by combining state-of-the-art techniques in atmospheric measurements, laboratory experiments and advanced numerical modelling. We will: 1) significantly expand atmospheric measurement coverage to better understand the global distribution of halocarbon emissions and to identify previously unknown atmospheric trends, 2) combine industry models and atmospheric data to improve our understanding of the relationship between production (the quantity controlled under the Protocol), "banks" of halocarbons stored in buildings and products, and emissions to the atmosphere, 3) determine recent and likely future trends of unregulated, short-lived halocarbons, and implications for the timescale of recovery of the ozone layer, 4) explore the complex atmospheric chemistry of the newest generation of halocarbons and determine whether breakdown products have the potential to contribute to climate change or lead to unforeseen negative environmental consequences, 5) better quantify the influence of halocarbons on climate and refine the climate- and ozone-depletion-related metrics used to compare the effects of halocarbons in international agreements and in the design of possible mitigation strategies. This work will be carried out by a consortium of leaders in the field of halocarbon research, who have an extensive track record of contributing to Montreal Protocol bodies and the Intergovernmental Panel on Climate Change, ensuring lasting impact of the new developments that will be made.
 
Description Helped to inform communications to public and media on the state of the Montreal Protocol and ozone layer.
First Year Of Impact 2023
Sector Environment
 
Description WMO/UNEP Ozone Assessment 2026
Geographic Reach Multiple continents/international 
Policy Influence Type Participation in a guidance/advisory committee
URL https://ozone.unep.org/system/files/documents/SAP_Presentation_36MOP_31Oct2024.pdf
 
Title TCOM-HCl : Daily global gap-free stratospheric hydrogen chloride profile data set based on TOMCAT CTM and Occultation Measurements 
Description Methodology: TOMCAT simulation is performed at T64L32 resolution for the 1991-2021 time period. Collocated hydrogen chloride (HCl) profiles are divided in five latitude bins: SH polar (90S-50S), SH mid-lat (70S-20S), tropics (40S-40N), NH mid-lat (20N-70N) and NH polar (50N-90N). Initially, model-measurement differences are calculated for each zonal bins (46 height levels, 15km to 60km). Separate XGBoost regression models are trained for the differences between TOMCAT and measurements at each level for a given latitude bin. XGBoost model is then used to estimate error corrections for all the TOMCAT grids ( day/night, 2 X11323 time steps). TOMCAT output sampled at 1.30 am and 1.30 pm local time at the equator. Estimated corrections for a given model grid that are added to the original TOMCAT simulated day and night time HCl profiles. Height resolved data are then interpolated on 28-pressure levels (300 - 0.1hPa). For overlapping latitude bins, we use averages and then calculate daily zonal mean values. For more details see attached presentation. Dataset also includes two files containing daily mean zonal mean HCl profiles on height (15-60 km) and pressure (300-0.1 hPa) levels: zmhcl_TCOM_hlev_T2Dz_1991_2021.nc - height level data (15 to 60 km) zmhcl_TCOM_plev_T2Dz_1991_2021.nc - pressure level data (300 to 0.1 hPa) Daily 3D profiles on height and pressure levels would be made available upon request 
Type Of Material Database/Collection of data 
Year Produced 2023 
Provided To Others? Yes  
Impact Has been used to test models and constrain retrievals. 
URL https://zenodo.org/record/7608194
 
Title TCOM-HF : Daily global gap-free stratospheric hydrogen fluoride (HF) profile data set based on TOMCAT CTM and Occultation Measurements 
Description Methodology: TOMCAT simulation is performed at T64L32 resolution for the 1991-2021 time period. Collocated hydrogen fluoride (HF) profiles are divided in five latitude bins: SH polar (90S-50S), SH mid-lat (70S-20S), tropics (40S-40N), NH mid-lat (20N-70N) and NH polar (50N-90N). Initially, model-measurement differences are calculated for each zonal bins (46 height levels, 15km to 60km). Separate XGBoost regression models are trained for the differences between TOMCAT and measurements at each level for a given latitude bin. XGBoost model is then used to estimate error corrections for all the TOMCAT grids ( day/night, 2 X11323 time steps). TOMCAT output sampled at 1.30 am and 1.30 pm local time at the equator. Estimated corrections for a given model grid that are added to the original TOMCAT simulated day and night time hydrogen fluoride profiles. Height resolved data are then interpolated on 28-pressure levels (300 - 0.1hPa). For overlapping latitude bins, we use averages and then calculate daily zonal mean values. For more details see attached presentation. Dataset also includes two files containing daily mean zonal mean hydrogen fluoride profiles on height (15-60 km) and pressure (300-0.1 hPa) levels: zmhf_TCOM_hlev_T2Dz_1991_2021.nc - height level data (15 to 60 km) zmhf_TCOM_plev_T2Dz_1991_2021.nc - pressure level data (300 to 0.1 hPa) Daily 3D profiles on height and pressure levels would be made available on request. 
Type Of Material Database/Collection of data 
Year Produced 2023 
Provided To Others? Yes  
Impact Has been used to test models and constrain retrievals. 
URL https://zenodo.org/record/7607564