Evidence of a recent decline in UK emissions of hydrofluorocarbons determined by the InTEM inverse model and atmospheric measurements
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Published:2021-08-27
Issue:16
Volume:21
Page:12739-12755
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Manning Alistair J.ORCID, Redington Alison L., Say DanielORCID, O'Doherty SimonORCID, Young DickonORCID, Simmonds Peter G., Vollmer Martin K.ORCID, Mühle JensORCID, Arduini JgorORCID, Spain Gerard, Wisher Adam, Maione MichelaORCID, Schuck Tanja J.ORCID, Stanley KieranORCID, Reimann StefanORCID, Engel AndreasORCID, Krummel Paul B.ORCID, Fraser Paul J., Harth Christina M., Salameh Peter K., Weiss Ray F.ORCID, Gluckman Ray, Brown Peter N., Watterson John D., Arnold Tim
Abstract
Abstract. National greenhouse gas inventories (GHGIs) are submitted annually to the
United Nations Framework Convention on Climate Change (UNFCCC). They are
estimated in compliance with Intergovernmental Panel on Climate Change (IPCC) methodological guidance using activity data, emission factors and
facility-level measurements. For some sources, the outputs from these
calculations are very uncertain. Inverse modelling techniques that use
high-quality, long-term measurements of atmospheric gases have been developed to provide independent verification of national GHGIs. This is considered good practice by the IPCC as it helps national inventory compilers to verify reported emissions and to reduce emission uncertainty. Emission estimates from the InTEM (Inversion Technique for Emission Modelling) model are presented for the UK for the hydrofluorocarbons (HFCs) reported to the UNFCCC (HFC-125, HFC-134a, HFC-143a, HFC-152a, HFC-23, HFC-32, HFC-227ea, HFC-245fa, HFC-43-10mee and HFC-365mfc). These HFCs have high global warming potentials (GWPs), and the global background mole fractions of all but two are increasing, thus highlighting their relevance to the climate and a need for increasing the accuracy of emission estimation for regulatory purposes. This study presents evidence that the long-term annual increase in growth of HFC-134a has stopped and is now decreasing. For HFC-32 there is an early indication, its rapid global growth period has ended, and there is evidence that the annual increase
in global growth for HFC-125 has slowed from 2018. The inverse modelling
results indicate that the UK implementation of European Union regulation of
HFC emissions has been successful in initiating a decline in UK emissions from 2018. Comparison of the total InTEM UK HFC emissions in 2020 with the average from 2009–2012 shows a drop of 35 %, indicating progress toward the target of a 79 % decrease in sales by 2030. The total InTEM HFC emission estimates (2008–2018) are on average 73 (62–83) % of, or 4.3 (2.7–5.9) Tg CO2-eq yr−1 lower than, the
total HFC emission estimates from the UK GHGI. There are also
significant discrepancies between the two estimates for the individual HFCs.
Funder
National Oceanic and Atmospheric Administration
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference39 articles.
1. AGAGE – Advanced Global Atmospheric Gases Experiment: AGAGE Data & Figures, available at: http://agage.mit.edu/data/agage-data, last access: 1 March 2021. a 2. Arnold, T., Manning, A. J., Kim, J., Li, S., Webster, H., Thomson, D., Mühle, J., Weiss, R. F., Park, S., and O'Doherty, S.: Inverse modelling of CF4 and NF3 emissions in East Asia, Atmos. Chem. Phys., 18, 13305–13320, https://doi.org/10.5194/acp-18-13305-2018, 2018. a, b, c, d, e 3. Bergamaschi, P., Corazza, M., Karstens, U., Athanassiadou, M., Thompson, R. L., Pison, I., Manning, A. J., Bousquet, P., Segers, A., Vermeulen, A. T., Janssens-Maenhout, G., Schmidt, M., Ramonet, M., Meinhardt, F., Aalto, T., Haszpra, L., Moncrieff, J., Popa, M. E., Lowry, D., Steinbacher, M., Jordan, A., O'Doherty, S., Piacentino, S., and Dlugokencky, E.: Top-down estimates of European CH4 and N2O emissions based on four different inverse models, Atmos. Chem. Phys., 15, 715–736, https://doi.org/10.5194/acp-15-715-2015, 2015. a 4. Bergamaschi, P., Karstens, U., Manning, A. J., Saunois, M., Tsuruta, A., Berchet, A., Vermeulen, A. T., Arnold, T., Janssens-Maenhout, G., Hammer, S., Levin, I., Schmidt, M., Ramonet, M., Lopez, M., Lavric, J., Aalto, T., Chen, H., Feist, D. G., Gerbig, C., Haszpra, L., Hermansen, O., Manca, G., Moncrieff, J., Meinhardt, F., Necki, J., Galkowski, M., O'Doherty, S., Paramonova, N., Scheeren, H. A., Steinbacher, M., and Dlugokencky, E.: Inverse modelling of European CH4 emissions during 2006–2012 using different inverse models and reassessed atmospheric observations, Atmos. Chem. Phys., 18, 901–920, https://doi.org/10.5194/acp-18-901-2018, 2018. a 5. Breidenich, C., Magraw, D., Rowley, A., and Rubin, J. W.: The Kyoto protocol to the United Nations framework convention on climate change, Am. J. Int. Law, 92, 315–331, 1998. a
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