Articles | Volume 19, issue 6
https://doi.org/10.5194/acp-19-3589-2019
© Author(s) 2019. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
https://doi.org/10.5194/acp-19-3589-2019
© Author(s) 2019. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
Characterising the seasonal and geographical variability in tropospheric ozone, stratospheric influence and recent changes
Ryan S. Williams
CORRESPONDING AUTHOR
University of Reading, Reading, UK
Michaela I. Hegglin
University of Reading, Reading, UK
Brian J. Kerridge
Rutherford Appleton Laboratory (RAL), Harwell Campus, Didcot, UK
Patrick Jöckel
Institut für Physik der Atmosphäre, Deutsches Zentrum
für Luft- und Raumfahrt (DLR), Oberpfaffenhofen, Germany
Barry G. Latter
Rutherford Appleton Laboratory (RAL), Harwell Campus, Didcot, UK
David A. Plummer
Canadian Centre for Climate Modelling and Analysis, Environment and
Climate Change Canada, Montréal, QC, Canada
Related authors
Ian Simpson, Edward Hanna, Ryan S. Williams, Linh Luu, Andrew Orr, Julie Jones, Xavier Fettweis, Jose Abraham Torres Alavez, Ole Bøssing Christensen, Ella Gilbert, Sid Gumber, Christoph Kittel, Sihan Li, Damien Maure, Ruth Mottram, Tony Phillips, Willem Jan van de Berg, and Kristiina Verro
EGUsphere, https://doi.org/10.5194/egusphere-2026-2270, https://doi.org/10.5194/egusphere-2026-2270, 2026
Short summary
Short summary
The warming trend in global temperatures has potential to result in accelerated break up of the Antarctic ice shelves, which would contribute to rising sea levels. Here we present a novel database of Antarctic extreme weather events over a selection of the Antarctic ice shelves. We examine air temperature, precipitation, wind and surface pressure. In addition, we examine trends in the frequency of extreme events and the links with weather patterns around Antarctica.
William J. Dow, Amanda C. Maycock, Andrew N. Ross, Ryan S. Williams, and Thomas J. Bracegirdle
EGUsphere, https://doi.org/10.5194/egusphere-2026-1179, https://doi.org/10.5194/egusphere-2026-1179, 2026
Short summary
Short summary
This study aims to advance understanding of the atmospheric drivers of extreme warm days across the Antarctic Peninsula during summer. We find that these days are linked to a range of large-scale atmospheric circulation patterns. Using a statistical method, we grouped similar events and compared their wind, temperature and pressure features, showing clear differences spatially and temporally. Understanding these dynamics improves understanding of the processes that drive these extreme events.
Xavier J. Levine, Ryan S. Williams, Gareth Marshall, Andrew Orr, Lise Seland Graff, Dörthe Handorf, Alexey Karpechko, Raphael Köhler, René R. Wijngaard, Nadine Johnston, Hanna Lee, Lars Nieradzik, and Priscilla A. Mooney
Earth Syst. Dynam., 15, 1161–1177, https://doi.org/10.5194/esd-15-1161-2024, https://doi.org/10.5194/esd-15-1161-2024, 2024
Short summary
Short summary
While the most recent climate projections agree that the Arctic is warming, differences remain in how much and in other climate variables such as precipitation. This presents a challenge for stakeholders who need to develop mitigation and adaptation strategies. We tackle this problem by using the storyline approach to generate four plausible and actionable realisations of end-of-century climate change for the Arctic, spanning its most likely range of variability.
Ryan S. Williams, Michaela I. Hegglin, Patrick Jöckel, Hella Garny, and Keith P. Shine
Atmos. Chem. Phys., 24, 1389–1413, https://doi.org/10.5194/acp-24-1389-2024, https://doi.org/10.5194/acp-24-1389-2024, 2024
Short summary
Short summary
During winter, a brief but abrupt reversal of the mean stratospheric westerly flow (~30 km high) around the Arctic occurs ~6 times a decade. Using a chemistry–climate model, about half of these events are shown to induce large anomalies in Arctic ozone (>25 %) and water vapour (>±25 %) around ~8–12 km altitude for up to 2–3 months, important for weather forecasting. We also calculate a doubling to trebling of the risk in breaches of mid-latitude surface air quality (ozone) standards (~60 ppbv).
Lianet Hernández Pardo, Joachim Curtius, Patrick Jöckel, J. Moritz Menken, Christopher Pöhlker, Mira Pöhlker, and Anna Possner
Atmos. Chem. Phys., 26, 12275–12293, https://doi.org/10.5194/acp-26-12275-2026, https://doi.org/10.5194/acp-26-12275-2026, 2026
Short summary
Short summary
Many tiny particles are formed high in the tropical atmosphere, but their impact lower down is unclear. We studied how these particles move downward using long-term computer simulations. We found that particles can reach middle levels of the atmosphere within a week, carried by winds. These results help us understand how pollution and clouds might change as particles spread around the world.
Ewa M. Bednarz, Valentina Aquila, Amy H. Butler, Peter Colarco, Eric Fleming, Freja F. Østerstrøm, David Plummer, Ilaria Quaglia, William Randel, Michelle L. Santee, Takashi Sekiya, Simone Tilmes, Xinyue Wang, Shingo Watanabe, Wandi Yu, Jun Zhang, Yunqian Zhu, and Zhihong Zhuo
Atmos. Chem. Phys., 26, 11355–11370, https://doi.org/10.5194/acp-26-11355-2026, https://doi.org/10.5194/acp-26-11355-2026, 2026
Short summary
Short summary
The 2022 Hunga eruption injected unprecedented quantities of water vapor into the stratosphere, alongside modest amounts of aerosol precursors. We assess its impacts on stratospheric ozone layer using a multi-model ensemble of chemistry-climate simulations. The results confirm the eruption's role in modulating SH (Southern Hemisphere) mid and high latitudes ozone abundances in the short term, and discuss the different chemical and dynamical processes driving those changes as well as the role of natural variability.
Andrin Jörimann, Timofei Sukhodolov, Simone Tilmes, David Plummer, Shingo Watanabe, Hideharu Akiyoshi, Gabriel Chiodo, Daniele Visioni, Sandro Vattioni, Eugene Rozanov, Ewa Monika Bednarz, Béatrice Josse, Yousuke Yamashita, and Thomas Peter
Atmos. Chem. Phys., 26, 11207–11234, https://doi.org/10.5194/acp-26-11207-2026, https://doi.org/10.5194/acp-26-11207-2026, 2026
Short summary
Short summary
We study a future scenario where artificial stratospheric aerosol injections counter medium climate change, to understand possible negative side effects like ozone depletion. The injected aerosol layer is implemented uniformly in five climate models, which eliminates some uncertainty from model-specific aerosol evolution. The models agree well on where and how key thermodynamical (heating, circulation) and chemical processes change, however, the strength of the changes varies considerably.
Zhiting Wang, Yijie Zheng, Xinlong Hong, Plummer David, and Jun Zhang
EGUsphere, https://doi.org/10.5194/egusphere-2026-3817, https://doi.org/10.5194/egusphere-2026-3817, 2026
Short summary
Short summary
The tropospheric OH radical impacts air quality and greenhouse gas concentrations. Here it shown that stratospheric intrusion significantly influence tropospheric OH, particularly over subtropical oceans (20 %) and the Tibetan Plateau (12 %) in summer. This influence is expected to intensify in the future due to enhanced stratosphere-troposphere exchange and stratospheric ozone recovery, highlighting a growing coupling between upper-atmosphere processes and surface oxidation chemistry.
Matthias Kohl, Christoph Brühl, Holger Tost, Christos Xenofontos, Theodoros Christoudias, Sergey Gromov, Oliver Appel, Stephan Borrmann, Adam Bourassa, Pedro Campunzano-Jost, Yafang Cheng, Oliver Eppers, Karl D. Froyd, Bruna A. Holanda, Jose L. Jimenez, Patrick Jöckel, Philipp Joppe, Katharina Kaiser, Joseph M. Katich, Klaus Klingmüller, Franziska Köllner, Agnieszka Kupc, Anna Martin, Christopher Pöhlker, Mira L. Pöhlker, Ulrich Pöschl, Landon Rieger, Samuel Ruhl, Gregory P. Schill, Johannes Schneider, Christiane Schulz, Joshua P. Schwarz, Alexandra P. Tsimpidi, Ryan Vella, Christina J. Williamson, Yifan Yang, Daniel Zawada, Jos Lelieveld, and Andrea Pozzer
EGUsphere, https://doi.org/10.5194/egusphere-2026-3649, https://doi.org/10.5194/egusphere-2026-3649, 2026
Short summary
Short summary
Aerosols are crucial for Earth's climate, yet their vertical distribution remains poorly understood. We present first consistent global simulations of aerosol distributions and composition from the Earth's surface to the stratosphere, validated by extensive observations. Key findings include a global minimum in aerosol mass in the free troposphere, a significant contribution of organic aerosol in the lower stratosphere, and limited transport of primary particles to the stratosphere.
Ian Simpson, Edward Hanna, Ryan S. Williams, Linh Luu, Andrew Orr, Julie Jones, Xavier Fettweis, Jose Abraham Torres Alavez, Ole Bøssing Christensen, Ella Gilbert, Sid Gumber, Christoph Kittel, Sihan Li, Damien Maure, Ruth Mottram, Tony Phillips, Willem Jan van de Berg, and Kristiina Verro
EGUsphere, https://doi.org/10.5194/egusphere-2026-2270, https://doi.org/10.5194/egusphere-2026-2270, 2026
Short summary
Short summary
The warming trend in global temperatures has potential to result in accelerated break up of the Antarctic ice shelves, which would contribute to rising sea levels. Here we present a novel database of Antarctic extreme weather events over a selection of the Antarctic ice shelves. We examine air temperature, precipitation, wind and surface pressure. In addition, we examine trends in the frequency of extreme events and the links with weather patterns around Antarctica.
Benjamin Weyland, Simon Rosanka, Domenico Taraborrelli, Birger Bohn, Andreas Zahn, Florian Obersteiner, Eric Förster, Mariano Mertens, Patrick Jöckel, Helmut Ziereis, Katharina Kaiser, Horst Fischer, John N. Crowley, Nijing Wang, Achim Edtbauer, Jonathan Williams, Maria Dolores Andrés Hernández, John P. Burrows, Flora Kluge, Meike K. Rotermund, Andre Butz, and Klaus Pfeilsticker
Atmos. Chem. Phys., 26, 6825–6856, https://doi.org/10.5194/acp-26-6825-2026, https://doi.org/10.5194/acp-26-6825-2026, 2026
Short summary
Short summary
The destruction by sunlight of nitrous acid (HONO) produces the so-called detergent of the atmosphere. HONO has been measured in concentrations which exceed predictions based on known chemistry for decades. Several reactions have been proposed which may explain this excess HONO. This study reports on airborne measurements of HONO; the observations exceed predictions and form a C-shaped profile in the troposphere. Together with a host of other measurements, various reactions are investigated.
Christine Frömming, Volker Grewe, Sigrun Matthes, Simone Dietmüller, Patrick Peter, Katrin Dahlmann, and Patrick Jöckel
J. Env. Com. Air Transp. Sys. Discuss., https://doi.org/10.5194/jecats-2026-7, https://doi.org/10.5194/jecats-2026-7, 2026
Preprint under review for JECATS
Short summary
Short summary
Aviation non-CO2 climate effects could be reduced through rerouting using Climate Change Functions (CCFs) and its surrogate aCCFs. This study expands CCFs regionally and seasonally and enables a comparison with aCCFs. ACCFs simplify complex processes but reproduce magnitudes and most gradients, though they underestimate variability compared to detailed CCF simulations and limitations to certain altitudes were revealed. The present study promotes future development of refined and extended aCCFs.
Marta Abalos, Thomas Birner, Andreas Chrysanthou, Sean Davis, Alvaro de la Cámara, Sandip Dhomse, Hella Garny, Michaela I. Hegglin, Daan Hubert, Oksana Ivaniha, James Keeble, Marianna Linz, Daniele Minganti, Jessica Neu, David Plummer, Laura Saunders, Kasturi Shah, Gabriele Stiller, Kleareti Tourpali, Darryn Waugh, Nathan Luke Abraham, Hideharu Akiyoshi, Martyn P. Chipperfield, Patrick Jöckel, Béatrice Josse, Marion Marchand, Patrick Martineau, Olaf Morgenstern, Timofei Sukhodolov, Shingo Watanabe, and Yousuke Yamashita
Atmos. Chem. Phys., 26, 5249–5291, https://doi.org/10.5194/acp-26-5249-2026, https://doi.org/10.5194/acp-26-5249-2026, 2026
Short summary
Short summary
Accurate representation of stratospheric transport in Chemistry-Climate Models is essential for reliable climate projections. This study evaluates three generations of models using observational data and reanalyses, identifying persistent biases and their potential causes. Some biases persist or even worsen in newer models. These findings highlight key limitations and inform efforts to improve models and advance understanding through process-based studies and enhanced observations.
Jin Maruhashi, Mattia Righi, Monica Sharma, Johannes Hendricks, Patrick Jöckel, Volker Grewe, and Irene C. Dedoussi
Geosci. Model Dev., 19, 2747–2784, https://doi.org/10.5194/gmd-19-2747-2026, https://doi.org/10.5194/gmd-19-2747-2026, 2026
Short summary
Short summary
Aerosol-cloud interactions remain a major source of uncertainty in assessing aviation's net climate impact. We develop and evaluate a new Lagrangian tagging model that tracks aviation-emitted SO2 and H2SO4 as they are chemically transformed into SO4 aerosols and transported throughout the atmosphere. This development allows the identification of atmospheric regions with elevated potential for aerosol–cloud interactions driven by SO4 from aircraft.
William J. Dow, Amanda C. Maycock, Andrew N. Ross, Ryan S. Williams, and Thomas J. Bracegirdle
EGUsphere, https://doi.org/10.5194/egusphere-2026-1179, https://doi.org/10.5194/egusphere-2026-1179, 2026
Short summary
Short summary
This study aims to advance understanding of the atmospheric drivers of extreme warm days across the Antarctic Peninsula during summer. We find that these days are linked to a range of large-scale atmospheric circulation patterns. Using a statistical method, we grouped similar events and compared their wind, temperature and pressure features, showing clear differences spatially and temporally. Understanding these dynamics improves understanding of the processes that drive these extreme events.
Sean Davis, William Ball, Yue Jia, Gabriel Chiodo, Justin Alsing, James Keeble, Hideharu Akiyoshi, Carlo Arosio, Ewa Bednarz, Andreas Chrysanthou, Melanie Coldewey-Egbers, Robert Damadeo, Sandip Dhomse, Mohamadou Diallo, Simone Dietmuller, Roland Eichinger, Stacey Frith, Birgit Hassler, Michaela Hegglin, Daan Hubert, Patrick Jöckel, Béatrice Josse, Natalya Kramarova, Diego Loyola, Eliane Maillard Barras, Marion Marchand, Olaf Morgenstern, David Plummer, Robert Portmann, Karen Rosenlof, Alexei Rozanov, Viktoria Sofieva, Johannes Staehelin, Timofei Sukhodolov, Kleareti Tourpali, Ronald Van der A, H. J. Ray Wang, Krzysztof Wargan, Shingo Watanabe, Mark Weber, Jeannette Wild, Yousuke Yamashita, and Jerry Ziemke
EGUsphere, https://doi.org/10.5194/egusphere-2026-532, https://doi.org/10.5194/egusphere-2026-532, 2026
Short summary
Short summary
This study investigates how tropical ozone levels have changed since 2000 in chemistry climate models and satellite observations to determine how well they agree with one another, and to see if current trends can help predict future levels. At some, satellite records disagree significantly on the magnitude of ozone changes. The study shows a connection between recent ozone trends and future ozone levels, suggesting that satellite measurements could help constrain future ozone changes.
Ismail Makroum, Patrick Jöckel, Martin Dameris, Nicolas Theys, and Johannes De Leeuw
Geosci. Model Dev., 19, 447–476, https://doi.org/10.5194/gmd-19-447-2026, https://doi.org/10.5194/gmd-19-447-2026, 2026
Short summary
Short summary
We use a state-of-the-art numerical chemistry-climate model to study the atmospheric sulfur dioxide budget. We simulate the atmospheric concentration of sulfur dioxide (SO2) and corresponding sulfur deposition fluxes and compare the results with observational data from a satellite instrument and with ground-based in-situ measurements. For the evaluation of the simulated atmospheric lifetime of SO2, we also simulate the fate of SO2 emitted by two volcanic eruptions that happened in 2019.
Vinícius Ludwig-Barbosa, Johannes Kristoffer Nielsen, Kent Bækgaard Lauritsen, Brian Kerridge, Richard Siddans, and Tim Trent
EGUsphere, https://doi.org/10.5194/egusphere-2025-5578, https://doi.org/10.5194/egusphere-2025-5578, 2025
Short summary
Short summary
Water vapour data from microwave, infrared (RAL IMS), and radio occultation (GRAS-RO) instruments onboard Metop-A are compared during 9.5 years under a set of cloud scenarios, land and water coverage, and time of day, while accounting for differences in resolutions. RAL IMS is wetter and GRAS-RO is drier than ERA-Interim analysis and GRUAN (references) in the lower troposphere. Mid-troposphere statistics are similar, suggesting a potential synergy could be exploited in climate data records.
Arno Keppens, Daan Hubert, José Granville, Oindrila Nath, Jean-Christopher Lambert, Catherine Wespes, Pierre-François Coheur, Cathy Clerbaux, Anne Boynard, Richard Siddans, Barry Latter, Brian Kerridge, Serena Di Pede, Pepijn Veefkind, Juan Cuesta, Gaelle Dufour, Klaus-Peter Heue, Melanie Coldewey-Egbers, Diego Loyola, Andrea Orfanoz-Cheuquelaf, Swathi Maratt Satheesan, Kai-Uwe Eichmann, Alexei Rozanov, Viktoria F. Sofieva, Jerald R. Ziemke, Antje Inness, Roeland Van Malderen, and Lars Hoffmann
Atmos. Meas. Tech., 18, 6893–6916, https://doi.org/10.5194/amt-18-6893-2025, https://doi.org/10.5194/amt-18-6893-2025, 2025
Short summary
Short summary
The first Tropospheric Ozone Assessment Report (TOAR) encountered discrepancies between several satellite sensors’ estimates of the distribution and change of ozone in the free troposphere. Therefore, contributing to the second TOAR, we harmonise as much as possible the observational perspective of sixteen tropospheric ozone products from satellites. This only partially accounts for the observed discrepancies, with a reduction of 10–40 % of the inter-product dispersion upon harmonisation.
Shihan Sun, Paul I. Palmer, Richard Siddans, Brian J. Kerridge, Lucy Ventress, Achim Edtbauer, Akima Ringsdorf, Eva Y. Pfannerstill, and Jonathan Williams
Atmos. Chem. Phys., 25, 15801–15818, https://doi.org/10.5194/acp-25-15801-2025, https://doi.org/10.5194/acp-25-15801-2025, 2025
Short summary
Short summary
Isoprene released by plants can impact atmospheric chemistry and climate. The Amazon rainforest is a major source of isoprene. We derived isoprene emissions using satellite retrievals of isoprene columns and a chemical transport model. We evaluated our isoprene emission estimates using ground-based isoprene observations and satellite retrievals of formaldehyde. We found that using satellite retrievals of isoprene can help us better understand isoprene emissions over the Amazon.
Matilda A. Pimlott, Richard J. Pope, Brian J. Kerridge, Richard Siddans, Barry G. Latter, Wuhu Feng, and Martyn P. Chipperfield
Atmos. Chem. Phys., 25, 15991–16007, https://doi.org/10.5194/acp-25-15991-2025, https://doi.org/10.5194/acp-25-15991-2025, 2025
Short summary
Short summary
Tropospheric ozone (O3) is a harmful secondary atmospheric pollutant and an important greenhouse gas. Here, we present an in-depth analysis of lower-tropospheric sub-column O3 (LTCO3, surface – 6 km) records from three satellite products produced by the Rutherford Appleton Laboratory (RAL) over Europe between 1996 and 2017. Overall, we detect moderate negative trends in the satellite records, but corresponding model simulations and ozonesonde measurements show negligible trends.
Johannes Degen, Bianca C. Baier, Patrick Jöckel, J. Moritz Menken, Tanja J. Schuck, Colm Sweeney, and Andreas Engel
Atmos. Chem. Phys., 25, 15741–15763, https://doi.org/10.5194/acp-25-15741-2025, https://doi.org/10.5194/acp-25-15741-2025, 2025
Short summary
Short summary
We investigate the distribution of CO2 in the upper troposphere and lower stratosphere using both, observations and an atmospheric model. Simulating an artificial tracer, we separate CO2 seasonality from long-term trend and transport variability. We found that patterns in the seasonal signal are attributable to large-scale transport features like the subtropical jet or the Brewer-Dobson circulation. Being a powerful diagnostic tool we recommend to use this tracer for model intercomparisons.
Catherine Acquah, Laura Stecher, Mariano Mertens, and Patrick Jöckel
Atmos. Chem. Phys., 25, 13665–13686, https://doi.org/10.5194/acp-25-13665-2025, https://doi.org/10.5194/acp-25-13665-2025, 2025
Short summary
Short summary
Short-lived ozone precursor species influence the formation of ozone and also the atmospheric lifetime of methane. Our study assesses the effect of two widely used emission inventories of these species on ozone and the methane lifetime. Our results indicate tropospheric ozone and methane lifetime differences of around 4 % even though both emission inventories aim at representing present-day conditions. We further attribute the differences to emissions of individual sectors, e.g. land traffic.
Zhihong Zhuo, Xinyue Wang, Yunqian Zhu, Wandi Yu, Ewa M. Bednarz, Eric Fleming, Peter R. Colarco, Shingo Watanabe, David Plummer, Georgiy Stenchikov, William Randel, Adam Bourassa, Valentina Aquila, Takashi Sekiya, Mark R. Schoeberl, Simone Tilmes, Jun Zhang, Paul J. Kushner, and Francesco S. R. Pausata
Atmos. Chem. Phys., 25, 13161–13176, https://doi.org/10.5194/acp-25-13161-2025, https://doi.org/10.5194/acp-25-13161-2025, 2025
Short summary
Short summary
The 2022 Hunga eruption caused unprecedented stratospheric water injection, triggering unique atmospheric impacts. This study combines observations and model simulations, projecting a stratospheric water vapor anomaly lasting 4–7 years, with significant temperature variations and ozone depletion in the upper atmosphere lasting 7–10 years. These findings offer critical insights into the role of stratospheric water vapor in shaping climate and atmospheric chemistry.
Melanie Coldewey-Egbers, Diego G. Loyola R., Barry Latter, Richard Siddans, Brian Kerridge, Daan Hubert, Michel van Roozendael, and Michael Eisinger
Atmos. Meas. Tech., 18, 5485–5505, https://doi.org/10.5194/amt-18-5485-2025, https://doi.org/10.5194/amt-18-5485-2025, 2025
Short summary
Short summary
The Global Ozone Monitoring Experiment (GOME)-type Ozone Profile Essential Climate Variable (GOP-ECV) data record provides monthly mean ozone profiles with global coverage from 1995 to 2021 at a spatial resolution of 5° × 5°. Measurements from five nadir-viewing satellite sensors are first harmonized and then merged into a coherent record. The long-term stability of the data record is further improved through scaling the profiles using the GOME-type Total Ozone Essential Climate Variable (GTO-ECV) data record as a reference.
Yunqian Zhu, Hideharu Akiyoshi, Valentina Aquila, Elizabeth Asher, Ewa M. Bednarz, Slimane Bekki, Christoph Brühl, Amy H. Butler, Parker Case, Simon Chabrillat, Gabriel Chiodo, Margot Clyne, Peter R. Colarco, Sandip Dhomse, Lola Falletti, Eric Fleming, Ben Johnson, Andrin Jörimann, Mahesh Kovilakam, Gerbrand Koren, Ales Kuchar, Nicolas Lebas, Qing Liang, Cheng-Cheng Liu, Graham Mann, Michael Manyin, Marion Marchand, Olaf Morgenstern, Paul Newman, Luke D. Oman, Freja F. Østerstrøm, Yifeng Peng, David Plummer, Ilaria Quaglia, William Randel, Samuel Rémy, Takashi Sekiya, Stephen Steenrod, Timofei Sukhodolov, Simone Tilmes, Kostas Tsigaridis, Rei Ueyama, Daniele Visioni, Xinyue Wang, Shingo Watanabe, Yousuke Yamashita, Pengfei Yu, Wandi Yu, Jun Zhang, and Zhihong Zhuo
Geosci. Model Dev., 18, 5487–5512, https://doi.org/10.5194/gmd-18-5487-2025, https://doi.org/10.5194/gmd-18-5487-2025, 2025
Short summary
Short summary
To understand the climate impact of the 2022 Hunga volcanic eruption, we developed a climate model–observation comparison project. The paper describes the protocols and models that participate in the experiments. We designed several experiments to achieve our goals of this activity: (1) to evaluate the climate model performance and (2) to understand the Earth system responses to this eruption.
William J. Collins, Fiona M. O'Connor, Rachael E. Byrom, Øivind Hodnebrog, Patrick Jöckel, Mariano Mertens, Gunnar Myhre, Matthias Nützel, Dirk Olivié, Ragnhild Bieltvedt Skeie, Laura Stecher, Larry W. Horowitz, Vaishali Naik, Gregory Faluvegi, Ulas Im, Lee T. Murray, Drew Shindell, Kostas Tsigaridis, Nathan Luke Abraham, and James Keeble
Atmos. Chem. Phys., 25, 9031–9060, https://doi.org/10.5194/acp-25-9031-2025, https://doi.org/10.5194/acp-25-9031-2025, 2025
Short summary
Short summary
We used 7 climate models that include atmospheric chemistry and find that in a scenario with weak controls on air quality, the warming effects (over 2015 to 2050) of decreases in ozone-depleting substances and increases in air quality pollutants are approximately equal and would make ozone the second highest contributor to warming over this period. We find that for stratospheric ozone recovery, the standard measure of climate effects underestimates a more comprehensive measure.
Matthias Kohl, Christoph Brühl, Jennifer Schallock, Holger Tost, Patrick Jöckel, Adrian Jost, Steffen Beirle, Michael Höpfner, and Andrea Pozzer
Geosci. Model Dev., 18, 3985–4007, https://doi.org/10.5194/gmd-18-3985-2025, https://doi.org/10.5194/gmd-18-3985-2025, 2025
Short summary
Short summary
SO2 from explosive volcanic eruptions reaching the stratosphere can oxidize and form sulfur aerosols, potentially persisting for several years. We developed a new submodel, Explosive Volcanic ERuptions (EVER), that seamlessly includes stratospheric volcanic SO2 emissions in global numerical simulations based on a novel standard historical model setup, successfully evaluated with satellite observations. Sensitivity studies on the Nabro eruption in 2011 evaluate different emission methods.
Simone Tilmes, Ewa M. Bednarz, Andrin Jörimann, Daniele Visioni, Douglas E. Kinnison, Gabriel Chiodo, and David Plummer
Atmos. Chem. Phys., 25, 6001–6023, https://doi.org/10.5194/acp-25-6001-2025, https://doi.org/10.5194/acp-25-6001-2025, 2025
Short summary
Short summary
In this paper, we describe the details of a new multi-model intercomparison experiment to assess the effects of Stratospheric Aerosol Intervention (SAI) on stratospheric chemistry and dynamics and, therefore, ozone. Second, we discuss the advantages and differences of the more constrained experiment compared to fully interactive model experiments. This way, we advance the process-level understanding of the drivers of SAI-induced atmospheric responses.
Patrick Peter, Sigrun Matthes, Christine Frömming, Patrick Jöckel, Luca Bugliaro, Andreas Giez, Martina Krämer, and Volker Grewe
Atmos. Chem. Phys., 25, 5911–5934, https://doi.org/10.5194/acp-25-5911-2025, https://doi.org/10.5194/acp-25-5911-2025, 2025
Short summary
Short summary
Our study examines how well the global climate model EMAC (ECHAM/MESSy Atmospheric Chemistry) predicts contrail formation by analysing temperature and humidity – two key factors for contrail development and persistence. The model underestimates temperature, leading to an overprediction of contrail formation and larger ice-supersaturated regions. Adjusting the model improves temperature accuracy but adds uncertainties. Better predictions of contrail formation areas can help optimise flight tracks to reduce aviation's climate effect.
Francisco J. Pérez-Invernón, Francisco J. Gordillo-Vázquez, Heidi Huntrieser, Patrick Jöckel, and Eric J. Bucsela
Atmos. Chem. Phys., 25, 5557–5575, https://doi.org/10.5194/acp-25-5557-2025, https://doi.org/10.5194/acp-25-5557-2025, 2025
Short summary
Short summary
Lightning plays a significant role in tropospheric chemistry by producing substantial amounts of nitrogen oxides. According to recent estimates, thunderstorms that produce a higher lightning frequency rate also produce less nitrogen oxide per flash. We implemented the dependency of nitrogen oxide production per flash on lightning flash frequency in a chemical atmospheric model.
Patrick E. Sheese, Kaley A. Walker, Chris D. Boone, and David A. Plummer
Atmos. Chem. Phys., 25, 5199–5213, https://doi.org/10.5194/acp-25-5199-2025, https://doi.org/10.5194/acp-25-5199-2025, 2025
Short summary
Short summary
Observations from Atmospheric Chemistry Experiment–Fourier Transform Spectrometer (ACE-FTS) are used to examine global stratospheric water vapour trends for 2004–2021. The satellite measurements are used to quantify trend contributions arising from changes in tropical tropopause temperatures, general circulation patterns, and methane concentrations. While most of the observed trends can be explained by these changes, there remains an unaccounted-for and increasing source of water vapour in the lower mid-stratosphere at mid-latitudes, which is discussed.
Laura Stecher, Franziska Winterstein, Patrick Jöckel, Michael Ponater, Mariano Mertens, and Martin Dameris
Atmos. Chem. Phys., 25, 5133–5158, https://doi.org/10.5194/acp-25-5133-2025, https://doi.org/10.5194/acp-25-5133-2025, 2025
Short summary
Short summary
Methane, the second most important anthropogenic greenhouse gas, is chemically decomposed in the atmosphere. The chemical sink of atmospheric methane is not constant but depends on the temperature and on the abundance of its reaction partners. In this study, we use a global chemistry–climate model to assess the feedback of atmospheric methane induced by changes in the chemical sink in a warming climate and its implications for the chemical composition and the surface air temperature change.
Matilda A. Pimlott, Richard J. Pope, Brian J. Kerridge, Richard Siddans, Barry G. Latter, Lucy J. Ventress, Wuhu Feng, and Martyn P. Chipperfield
Atmos. Chem. Phys., 25, 4391–4401, https://doi.org/10.5194/acp-25-4391-2025, https://doi.org/10.5194/acp-25-4391-2025, 2025
Short summary
Short summary
Globally, lockdowns were implemented to limit the spread of COVID-19, leading to a decrease in emissions of key air pollutants. Here, we use novel satellite data and a chemistry model to investigate the impact of the pandemic on tropospheric ozone (O3), a key pollutant, in 2020. Overall, we found substantial decreases of up to 20 %, two-thirds of which came from emission reductions, while one-third was due to a decrease in the stratospheric O3 flux into the troposphere.
Laura N. Saunders, Kaley A. Walker, Gabriele P. Stiller, Thomas von Clarmann, Florian Haenel, Hella Garny, Harald Bönisch, Chris D. Boone, Ariana E. Castillo, Andreas Engel, Johannes C. Laube, Marianna Linz, Felix Ploeger, David A. Plummer, Eric A. Ray, and Patrick E. Sheese
Atmos. Chem. Phys., 25, 4185–4209, https://doi.org/10.5194/acp-25-4185-2025, https://doi.org/10.5194/acp-25-4185-2025, 2025
Short summary
Short summary
We present a 17-year stratospheric age-of-air dataset derived from ACE-FTS satellite measurements of sulfur hexafluoride. This is the longest continuous, global, and vertically resolved age of air time series available to date. In this paper, we show that this dataset agrees well with age-of-air datasets based on measurements from other instruments. We also present trends in the midlatitude lower stratosphere that indicate changes in the global circulation that are predicted by climate models.
Astrid Kerkweg, Timo Kirfel, Duong H. Do, Sabine Griessbach, Patrick Jöckel, and Domenico Taraborrelli
Geosci. Model Dev., 18, 1265–1286, https://doi.org/10.5194/gmd-18-1265-2025, https://doi.org/10.5194/gmd-18-1265-2025, 2025
Short summary
Short summary
Normally, the Modular Earth Submodel System (MESSy) is linked to complete dynamic models to create chemical climate models. However, the modular concept of MESSy and the newly developed DWARF component presented here make it possible to create simplified models that contain only one or a few process descriptions. This is very useful for technical optimisation, such as porting to GPUs, and can be used to create less complex models, such as a chemical box model.
Axel Lauer, Lisa Bock, Birgit Hassler, Patrick Jöckel, Lukas Ruhe, and Manuel Schlund
Geosci. Model Dev., 18, 1169–1188, https://doi.org/10.5194/gmd-18-1169-2025, https://doi.org/10.5194/gmd-18-1169-2025, 2025
Short summary
Short summary
Earth system models are important tools to improve our understanding of current climate and to project climate change. Thus, it is crucial to understand possible shortcomings in the models. New features of the ESMValTool software package allow one to compare and visualize a model's performance with respect to reproducing observations in the context of other climate models in an easy and user-friendly way. We aim to help model developers assess and monitor climate simulations more efficiently.
Kerstin Hartung, Bastian Kern, Nils-Arne Dreier, Jörn Geisbüsch, Mahnoosh Haghighatnasab, Patrick Jöckel, Astrid Kerkweg, Wilton Jaciel Loch, Florian Prill, and Daniel Rieger
Geosci. Model Dev., 18, 1001–1015, https://doi.org/10.5194/gmd-18-1001-2025, https://doi.org/10.5194/gmd-18-1001-2025, 2025
Short summary
Short summary
The ICOsahedral Non-hydrostatic (ICON) model system Community Interface (ComIn) library supports connecting third-party modules to the ICON model. Third-party modules can range from simple diagnostic Python scripts to full chemistry models. ComIn offers a low barrier for code extensions to ICON, provides multi-language support (Fortran, C/C++, and Python), and reduces the migration effort in response to new ICON releases. This paper presents the ComIn design principles and a range of use cases.
Hossein Maazallahi, Foteini Stavropoulou, Samuel Jonson Sutanto, Michael Steiner, Dominik Brunner, Mariano Mertens, Patrick Jöckel, Antoon Visschedijk, Hugo Denier van der Gon, Stijn Dellaert, Nataly Velandia Salinas, Stefan Schwietzke, Daniel Zavala-Araiza, Sorin Ghemulet, Alexandru Pana, Magdalena Ardelean, Marius Corbu, Andreea Calcan, Stephen A. Conley, Mackenzie L. Smith, and Thomas Röckmann
Atmos. Chem. Phys., 25, 1497–1511, https://doi.org/10.5194/acp-25-1497-2025, https://doi.org/10.5194/acp-25-1497-2025, 2025
Short summary
Short summary
This article presents insights from airborne in situ measurements collected during the ROmanian Methane Emissions from Oil and gas (ROMEO) campaign supported by two models. Results reveal Romania's oil and gas methane emissions were significantly under-reported to the United Nations Framework Convention on Climate Change (UNFCCC) in 2019. A large underestimation was also found in the Emissions Database for Global Atmospheric Research (EDGAR) v7.0 for the study domain in the same year.
Xiaodan Ma, Jianping Huang, Michaela I. Hegglin, Patrick Jöckel, and Tianliang Zhao
Atmos. Chem. Phys., 25, 943–958, https://doi.org/10.5194/acp-25-943-2025, https://doi.org/10.5194/acp-25-943-2025, 2025
Short summary
Short summary
Our research explored changes in ozone levels in the northwest Pacific region over 30 years, revealing a significant increase in the middle-to-upper troposphere, especially during spring and summer. This rise is influenced by both stratospheric and tropospheric sources, which affect climate and air quality in East Asia. This work underscores the need for continued study to understand underlying mechanisms.
Markus Kilian, Volker Grewe, Patrick Jöckel, Astrid Kerkweg, Mariano Mertens, Andreas Zahn, and Helmut Ziereis
Atmos. Chem. Phys., 24, 13503–13523, https://doi.org/10.5194/acp-24-13503-2024, https://doi.org/10.5194/acp-24-13503-2024, 2024
Short summary
Short summary
Anthropogenic emissions are a major source of precursors of tropospheric ozone. As ozone formation is highly non-linear, we apply a global–regional chemistry–climate model with a source attribution method (tagging) to quantify the contribution of anthropogenic emissions to ozone. Our analysis shows that the contribution of European anthropogenic emissions largely increases during large ozone periods, indicating that emissions from these sectors drive ozone values.
Mariano Mertens, Sabine Brinkop, Phoebe Graf, Volker Grewe, Johannes Hendricks, Patrick Jöckel, Anna Lanteri, Sigrun Matthes, Vanessa S. Rieger, Mattia Righi, and Robin N. Thor
Atmos. Chem. Phys., 24, 12079–12106, https://doi.org/10.5194/acp-24-12079-2024, https://doi.org/10.5194/acp-24-12079-2024, 2024
Short summary
Short summary
We quantified the contributions of land transport, shipping, and aviation emissions to tropospheric ozone; its radiative forcing; and the reductions of the methane lifetime using chemistry-climate model simulations. The contributions were analysed for the conditions of 2015 and for three projections for the year 2050. The results highlight the challenges of mitigating ozone formed by emissions of the transport sector, caused by the non-linearitiy of the ozone chemistry and the long lifetime.
Cynthia Whaley, Montana Etten-Bohm, Courtney Schumacher, Ayodeji Akingunola, Vivek Arora, Jason Cole, Michael Lazare, David Plummer, Knut von Salzen, and Barbara Winter
Geosci. Model Dev., 17, 7141–7155, https://doi.org/10.5194/gmd-17-7141-2024, https://doi.org/10.5194/gmd-17-7141-2024, 2024
Short summary
Short summary
This paper describes how lightning was added as a process in the Canadian Earth System Model in order to interactively respond to climate changes. As lightning is an important cause of global wildfires, this new model development allows for more realistic projections of how wildfires may change in the future, responding to a changing climate.
Chris Wilson, Brian J. Kerridge, Richard Siddans, David P. Moore, Lucy J. Ventress, Emily Dowd, Wuhu Feng, Martyn P. Chipperfield, and John J. Remedios
Atmos. Chem. Phys., 24, 10639–10653, https://doi.org/10.5194/acp-24-10639-2024, https://doi.org/10.5194/acp-24-10639-2024, 2024
Short summary
Short summary
The leaks from the Nord Stream gas pipelines in September 2022 released a large amount of methane (CH4) into the atmosphere. We provide observational data from a satellite instrument that shows a large CH4 plume over the North Sea off the coast of Scandinavia. We use this together with atmospheric models to quantify the CH4 leaked into the atmosphere from the pipelines. We find that 219–427 Gg CH4 was emitted, making this the largest individual fossil-fuel-related CH4 leak on record.
Bart Dils, Minqiang Zhou, Claude Camy-Peyret, Martine De Mazière, Yannick Kangah, Bavo Langerock, Pascal Prunet, Carmine Serio, Richard Siddans, and Brian Kerridge
Atmos. Meas. Tech., 17, 5491–5524, https://doi.org/10.5194/amt-17-5491-2024, https://doi.org/10.5194/amt-17-5491-2024, 2024
Short summary
Short summary
The paper discusses two very distinct methane products from the IASI instrument aboard the MetOp-A satellite. One (referred to as LMD NLISv8.3) uses a machine-learning approach, while the other (RALv2.0) uses a more conventional optimal estimation approach. We used a variety of model and independent reference measurement data to assess both products' overall quality, their differences, and specific aspects of each product that would benefit from further analysis by the product development teams.
Sergio Soler, Francisco J. Gordillo-Vázquez, Francisco J. Pérez-Invernón, Patrick Jöckel, Torsten Neubert, Olivier Chanrion, Victor Reglero, and Nikolai Østgaard
Atmos. Chem. Phys., 24, 10225–10243, https://doi.org/10.5194/acp-24-10225-2024, https://doi.org/10.5194/acp-24-10225-2024, 2024
Short summary
Short summary
Sudden local ozone (O3) enhancements have been reported in different regions of the world since the 1970s. While the hot channel of lightning strokes directly produce significant amounts of nitrogen oxide, no direct emission of O3 is expected. Corona discharges in convective active regions could explain local O3 increases, which remains unexplained. We present the first mathematical functions that relate the global annual frequency of in-cloud coronas with four sets of meteorological variables.
Xavier J. Levine, Ryan S. Williams, Gareth Marshall, Andrew Orr, Lise Seland Graff, Dörthe Handorf, Alexey Karpechko, Raphael Köhler, René R. Wijngaard, Nadine Johnston, Hanna Lee, Lars Nieradzik, and Priscilla A. Mooney
Earth Syst. Dynam., 15, 1161–1177, https://doi.org/10.5194/esd-15-1161-2024, https://doi.org/10.5194/esd-15-1161-2024, 2024
Short summary
Short summary
While the most recent climate projections agree that the Arctic is warming, differences remain in how much and in other climate variables such as precipitation. This presents a challenge for stakeholders who need to develop mitigation and adaptation strategies. We tackle this problem by using the storyline approach to generate four plausible and actionable realisations of end-of-century climate change for the Arctic, spanning its most likely range of variability.
Richard J. Pope, Fiona M. O'Connor, Mohit Dalvi, Brian J. Kerridge, Richard Siddans, Barry G. Latter, Brice Barret, Eric Le Flochmoen, Anne Boynard, Martyn P. Chipperfield, Wuhu Feng, Matilda A. Pimlott, Sandip S. Dhomse, Christian Retscher, Catherine Wespes, and Richard Rigby
Atmos. Chem. Phys., 24, 9177–9195, https://doi.org/10.5194/acp-24-9177-2024, https://doi.org/10.5194/acp-24-9177-2024, 2024
Short summary
Short summary
Ozone is a potent air pollutant in the lower troposphere, with adverse impacts on human health. Satellite records of tropospheric ozone currently show large-scale inconsistencies in long-term trends. Our detailed study of the potential factors (e.g. satellite errors, where the satellite can observe ozone) potentially driving these inconsistencies found that, in North America, Europe, and East Asia, the underlying trends are typically small with large uncertainties.
Matthias Nützel, Laura Stecher, Patrick Jöckel, Franziska Winterstein, Martin Dameris, Michael Ponater, Phoebe Graf, and Markus Kunze
Geosci. Model Dev., 17, 5821–5849, https://doi.org/10.5194/gmd-17-5821-2024, https://doi.org/10.5194/gmd-17-5821-2024, 2024
Short summary
Short summary
We extended the infrastructure of our modelling system to enable the use of an additional radiation scheme. After calibrating the model setups to the old and the new radiation scheme, we find that the simulation with the new scheme shows considerable improvements, e.g. concerning the cold-point temperature and stratospheric water vapour. Furthermore, perturbations of radiative fluxes associated with greenhouse gas changes, e.g. of methane, tend to be improved when the new scheme is employed.
Anna Martin, Veronika Gayler, Benedikt Steil, Klaus Klingmüller, Patrick Jöckel, Holger Tost, Jos Lelieveld, and Andrea Pozzer
Geosci. Model Dev., 17, 5705–5732, https://doi.org/10.5194/gmd-17-5705-2024, https://doi.org/10.5194/gmd-17-5705-2024, 2024
Short summary
Short summary
The study evaluates the land surface and vegetation model JSBACHv4 as a replacement for the simplified submodel SURFACE in EMAC. JSBACH mitigates earlier problems of soil dryness, which are critical for vegetation modelling. When analysed using different datasets, the coupled model shows strong correlations of key variables, such as land surface temperature, surface albedo and radiation flux. The versatility of the model increases significantly, while the overall performance does not degrade.
Felicia Kolonjari, Patrick E. Sheese, Kaley A. Walker, Chris D. Boone, David A. Plummer, Andreas Engel, Stephen A. Montzka, David E. Oram, Tanja Schuck, Gabriele P. Stiller, and Geoffrey C. Toon
Atmos. Meas. Tech., 17, 2429–2449, https://doi.org/10.5194/amt-17-2429-2024, https://doi.org/10.5194/amt-17-2429-2024, 2024
Short summary
Short summary
The Canadian Atmospheric Chemistry Experiment Fourier transform spectrometer (ACE-FTS) satellite instrument is currently providing the only vertically resolved chlorodifluoromethane (HCFC-22) measurements from space. This study assesses the most current ACE-FTS HCFC-22 data product in the upper troposphere and lower stratosphere, as well as modelled HCFC-22 from a 39-year run of the Canadian Middle Atmosphere Model (CMAM39) in the same region.
Simon Rosanka, Holger Tost, Rolf Sander, Patrick Jöckel, Astrid Kerkweg, and Domenico Taraborrelli
Geosci. Model Dev., 17, 2597–2615, https://doi.org/10.5194/gmd-17-2597-2024, https://doi.org/10.5194/gmd-17-2597-2024, 2024
Short summary
Short summary
The capabilities of the Modular Earth Submodel System (MESSy) are extended to account for non-equilibrium aqueous-phase chemistry in the representation of deliquescent aerosols. When applying the new development in a global simulation, we find that MESSy's bias in modelling routinely observed reduced inorganic aerosol mass concentrations, especially in the United States. Furthermore, the representation of fine-aerosol pH is particularly improved in the marine boundary layer.
Francisco J. Pérez-Invernón, Francisco J. Gordillo-Vázquez, Alejandro Malagón-Romero, and Patrick Jöckel
Atmos. Chem. Phys., 24, 3577–3592, https://doi.org/10.5194/acp-24-3577-2024, https://doi.org/10.5194/acp-24-3577-2024, 2024
Short summary
Short summary
Sprites are electrical discharges that occur in the upper atmosphere. Recent modelling and observational data suggest that they may have a measurable impact on atmospheric chemistry. We incorporate both the occurrence rate of sprites and their production of chemical species into a chemistry–climate model. While our results indicate that sprites have a minimal global influence on atmospheric chemistry, they underscore their noteworthy importance at a regional scale.
Richard J. Pope, Alexandru Rap, Matilda A. Pimlott, Brice Barret, Eric Le Flochmoen, Brian J. Kerridge, Richard Siddans, Barry G. Latter, Lucy J. Ventress, Anne Boynard, Christian Retscher, Wuhu Feng, Richard Rigby, Sandip S. Dhomse, Catherine Wespes, and Martyn P. Chipperfield
Atmos. Chem. Phys., 24, 3613–3626, https://doi.org/10.5194/acp-24-3613-2024, https://doi.org/10.5194/acp-24-3613-2024, 2024
Short summary
Short summary
Tropospheric ozone is an important short-lived climate forcer which influences the incoming solar short-wave radiation and the outgoing long-wave radiation in the atmosphere (8–15 km) where the balance between the two yields a net positive (i.e. warming) effect at the surface. Overall, we find that the tropospheric ozone radiative effect ranges between 1.21 and 1.26 W m−2 with a negligible trend (2008–2017), suggesting that tropospheric ozone influences on climate have remained stable with time.
Ryan S. Williams, Michaela I. Hegglin, Patrick Jöckel, Hella Garny, and Keith P. Shine
Atmos. Chem. Phys., 24, 1389–1413, https://doi.org/10.5194/acp-24-1389-2024, https://doi.org/10.5194/acp-24-1389-2024, 2024
Short summary
Short summary
During winter, a brief but abrupt reversal of the mean stratospheric westerly flow (~30 km high) around the Arctic occurs ~6 times a decade. Using a chemistry–climate model, about half of these events are shown to induce large anomalies in Arctic ozone (>25 %) and water vapour (>±25 %) around ~8–12 km altitude for up to 2–3 months, important for weather forecasting. We also calculate a doubling to trebling of the risk in breaches of mid-latitude surface air quality (ozone) standards (~60 ppbv).
Victoria A. Flood, Kimberly Strong, Cynthia H. Whaley, Kaley A. Walker, Thomas Blumenstock, James W. Hannigan, Johan Mellqvist, Justus Notholt, Mathias Palm, Amelie N. Röhling, Stephen Arnold, Stephen Beagley, Rong-You Chien, Jesper Christensen, Makoto Deushi, Srdjan Dobricic, Xinyi Dong, Joshua S. Fu, Michael Gauss, Wanmin Gong, Joakim Langner, Kathy S. Law, Louis Marelle, Tatsuo Onishi, Naga Oshima, David A. Plummer, Luca Pozzoli, Jean-Christophe Raut, Manu A. Thomas, Svetlana Tsyro, and Steven Turnock
Atmos. Chem. Phys., 24, 1079–1118, https://doi.org/10.5194/acp-24-1079-2024, https://doi.org/10.5194/acp-24-1079-2024, 2024
Short summary
Short summary
It is important to understand the composition of the Arctic atmosphere and how it is changing. Atmospheric models provide simulations that can inform policy. This study examines simulations of CH4, CO, and O3 by 11 models. Model performance is assessed by comparing results matched in space and time to measurements from five high-latitude ground-based infrared spectrometers. This work finds that models generally underpredict the concentrations of these gases in the Arctic troposphere.
Richard J. Pope, Brian J. Kerridge, Richard Siddans, Barry G. Latter, Martyn P. Chipperfield, Wuhu Feng, Matilda A. Pimlott, Sandip S. Dhomse, Christian Retscher, and Richard Rigby
Atmos. Chem. Phys., 23, 14933–14947, https://doi.org/10.5194/acp-23-14933-2023, https://doi.org/10.5194/acp-23-14933-2023, 2023
Short summary
Short summary
Ozone is a potent air pollutant, and we present the first study to investigate long-term changes in lower tropospheric column ozone (LTCO3) from space. We have constructed a merged LTCO3 dataset from GOME-1, SCIAMACHY and OMI between 1996 and 2017. Comparing LTCO3 between the 1996–2000 and 2013–2017 5-year averages, we find significant positive increases in the tropics/sub-tropics, while in the northern mid-latitudes, we find small-scale differences.
Elisa Carboni, Gareth E. Thomas, Richard Siddans, and Brian Kerridge
Atmos. Meas. Tech. Discuss., https://doi.org/10.5194/amt-2023-232, https://doi.org/10.5194/amt-2023-232, 2023
Revised manuscript not accepted
Short summary
Short summary
We analyzed different satellite datasets of cloud properties with a new approach to quantify and interpret their interannual variability based on singular vector decomposition (SVD). The spatial pattern and its temporal evolution are strikingly similar for all the satellite datasets and follow the El Nino Southern Oscillation. The SVD approach reported here has potential for application to satellite data sets and to evaluate consistency between models and observations.
Richard J. Pope, Brian J. Kerridge, Martyn P. Chipperfield, Richard Siddans, Barry G. Latter, Lucy J. Ventress, Matilda A. Pimlott, Wuhu Feng, Edward Comyn-Platt, Garry D. Hayman, Stephen R. Arnold, and Ailish M. Graham
Atmos. Chem. Phys., 23, 13235–13253, https://doi.org/10.5194/acp-23-13235-2023, https://doi.org/10.5194/acp-23-13235-2023, 2023
Short summary
Short summary
In the summer of 2018, Europe experienced several persistent large-scale ozone (O3) pollution episodes. Satellite tropospheric O3 and surface O3 data recorded substantial enhancements in 2018 relative to other years. Targeted model simulations showed that meteorological processes and emissions controlled the elevated surface O3, while mid-tropospheric O3 enhancements were dominated by stratospheric O3 intrusion and advection of North Atlantic O3-rich air masses into Europe.
Roland Eichinger, Sebastian Rhode, Hella Garny, Peter Preusse, Petr Pisoft, Aleš Kuchař, Patrick Jöckel, Astrid Kerkweg, and Bastian Kern
Geosci. Model Dev., 16, 5561–5583, https://doi.org/10.5194/gmd-16-5561-2023, https://doi.org/10.5194/gmd-16-5561-2023, 2023
Short summary
Short summary
The columnar approach of gravity wave (GW) schemes results in dynamical model biases, but parallel decomposition makes horizontal GW propagation computationally unfeasible. In the global model EMAC, we approximate it by GW redistribution at one altitude using tailor-made redistribution maps generated with a ray tracer. More spread-out GW drag helps reconcile the model with observations and close the 60°S GW gap. Polar vortex dynamics are improved, enhancing climate model credibility.
Jason Neil Steven Cole, Knut von Salzen, Jiangnan Li, John Scinocca, David Plummer, Vivek Arora, Norman McFarlane, Michael Lazare, Murray MacKay, and Diana Verseghy
Geosci. Model Dev., 16, 5427–5448, https://doi.org/10.5194/gmd-16-5427-2023, https://doi.org/10.5194/gmd-16-5427-2023, 2023
Short summary
Short summary
The Canadian Atmospheric Model version 5 (CanAM5) is used to simulate on a global scale the climate of Earth's atmosphere, land, and lakes. We document changes to the physics in CanAM5 since the last major version of the model (CanAM4) and evaluate the climate simulated relative to observations and CanAM4. The climate simulated by CanAM5 is similar to CanAM4, but there are improvements, including better simulation of temperature and precipitation over the Amazon and better simulation of cloud.
Marina Friedel, Gabriel Chiodo, Timofei Sukhodolov, James Keeble, Thomas Peter, Svenja Seeber, Andrea Stenke, Hideharu Akiyoshi, Eugene Rozanov, David Plummer, Patrick Jöckel, Guang Zeng, Olaf Morgenstern, and Béatrice Josse
Atmos. Chem. Phys., 23, 10235–10254, https://doi.org/10.5194/acp-23-10235-2023, https://doi.org/10.5194/acp-23-10235-2023, 2023
Short summary
Short summary
Previously, it has been suggested that springtime Arctic ozone depletion might worsen in the coming decades due to climate change, which might counteract the effect of reduced ozone-depleting substances. Here, we show with different chemistry–climate models that springtime Arctic ozone depletion will likely decrease in the future. Further, we explain why models show a large spread in the projected development of Arctic ozone depletion and use the model spread to constrain future projections.
Luis F. Millán, Gloria L. Manney, Harald Boenisch, Michaela I. Hegglin, Peter Hoor, Daniel Kunkel, Thierry Leblanc, Irina Petropavlovskikh, Kaley Walker, Krzysztof Wargan, and Andreas Zahn
Atmos. Meas. Tech., 16, 2957–2988, https://doi.org/10.5194/amt-16-2957-2023, https://doi.org/10.5194/amt-16-2957-2023, 2023
Short summary
Short summary
The determination of atmospheric composition trends in the upper troposphere and lower stratosphere (UTLS) is still highly uncertain. We present the creation of dynamical diagnostics to map several ozone datasets (ozonesondes, lidars, aircraft, and satellite measurements) in geophysically based coordinate systems. The diagnostics can also be used to analyze other greenhouse gases relevant to surface climate and UTLS chemistry.
Maria Rosa Russo, Brian John Kerridge, Nathan Luke Abraham, James Keeble, Barry Graham Latter, Richard Siddans, James Weber, Paul Thomas Griffiths, John Adrian Pyle, and Alexander Thomas Archibald
Atmos. Chem. Phys., 23, 6169–6196, https://doi.org/10.5194/acp-23-6169-2023, https://doi.org/10.5194/acp-23-6169-2023, 2023
Short summary
Short summary
Tropospheric ozone is an important component of the Earth system as it can affect both climate and air quality. In this work we use observed tropospheric ozone derived from satellite observations and compare it to tropospheric ozone from model simulations. Our aim is to investigate recent changes (2005–2018) in tropospheric ozone in the North Atlantic region and to understand what factors are driving such changes.
Tim Trent, Richard Siddans, Brian Kerridge, Marc Schröder, Noëlle A. Scott, and John Remedios
Atmos. Meas. Tech., 16, 1503–1526, https://doi.org/10.5194/amt-16-1503-2023, https://doi.org/10.5194/amt-16-1503-2023, 2023
Short summary
Short summary
Modern weather satellites provide essential information on our lower atmosphere's moisture content and temperature structure. This measurement record will span over 40 years, making it a valuable resource for climate studies. This study characterizes atmospheric temperature and humidity profiles from a European Space Agency climate project. Using weather balloon measurements, we demonstrated the performance of this dataset was within the tolerances required for future climate studies.
Robin N. Thor, Mariano Mertens, Sigrun Matthes, Mattia Righi, Johannes Hendricks, Sabine Brinkop, Phoebe Graf, Volker Grewe, Patrick Jöckel, and Steven Smith
Geosci. Model Dev., 16, 1459–1466, https://doi.org/10.5194/gmd-16-1459-2023, https://doi.org/10.5194/gmd-16-1459-2023, 2023
Short summary
Short summary
We report on an inconsistency in the latitudinal distribution of aviation emissions between two versions of a data product which is widely used by researchers. From the available documentation, we do not expect such an inconsistency. We run a chemistry–climate model to compute the effect of the inconsistency in emissions on atmospheric chemistry and radiation and find that the radiative forcing associated with aviation ozone is 7.6 % higher when using the less recent version of the data.
Dominik Brunner, Gerrit Kuhlmann, Stephan Henne, Erik Koene, Bastian Kern, Sebastian Wolff, Christiane Voigt, Patrick Jöckel, Christoph Kiemle, Anke Roiger, Alina Fiehn, Sven Krautwurst, Konstantin Gerilowski, Heinrich Bovensmann, Jakob Borchardt, Michal Galkowski, Christoph Gerbig, Julia Marshall, Andrzej Klonecki, Pascal Prunet, Robert Hanfland, Margit Pattantyús-Ábrahám, Andrzej Wyszogrodzki, and Andreas Fix
Atmos. Chem. Phys., 23, 2699–2728, https://doi.org/10.5194/acp-23-2699-2023, https://doi.org/10.5194/acp-23-2699-2023, 2023
Short summary
Short summary
We evaluated six atmospheric transport models for their capability to simulate the CO2 plumes from two of the largest power plants in Europe by comparing the models against aircraft observations collected during the CoMet (Carbon Dioxide and Methane Mission) campaign in 2018. The study analyzed how realistically such plumes can be simulated at different model resolutions and how well the planned European satellite mission CO2M will be able to quantify emissions from power plants.
Yuanhong Zhao, Marielle Saunois, Philippe Bousquet, Xin Lin, Michaela I. Hegglin, Josep G. Canadell, Robert B. Jackson, and Bo Zheng
Atmos. Chem. Phys., 23, 789–807, https://doi.org/10.5194/acp-23-789-2023, https://doi.org/10.5194/acp-23-789-2023, 2023
Short summary
Short summary
The large uncertainties in OH simulated by atmospheric chemistry models hinder accurate estimates of CH4 chemical loss through the bottom-up method. This study presents a new approach based on OH precursor observations and a chemical box model to improve the tropospheric OH distributions simulated by atmospheric chemistry models. Through this approach, both the global OH burden and the corresponding methane chemical loss reach consistency with the top-down method based on MCF inversions.
Cynthia H. Whaley, Kathy S. Law, Jens Liengaard Hjorth, Henrik Skov, Stephen R. Arnold, Joakim Langner, Jakob Boyd Pernov, Garance Bergeron, Ilann Bourgeois, Jesper H. Christensen, Rong-You Chien, Makoto Deushi, Xinyi Dong, Peter Effertz, Gregory Faluvegi, Mark Flanner, Joshua S. Fu, Michael Gauss, Greg Huey, Ulas Im, Rigel Kivi, Louis Marelle, Tatsuo Onishi, Naga Oshima, Irina Petropavlovskikh, Jeff Peischl, David A. Plummer, Luca Pozzoli, Jean-Christophe Raut, Tom Ryerson, Ragnhild Skeie, Sverre Solberg, Manu A. Thomas, Chelsea Thompson, Kostas Tsigaridis, Svetlana Tsyro, Steven T. Turnock, Knut von Salzen, and David W. Tarasick
Atmos. Chem. Phys., 23, 637–661, https://doi.org/10.5194/acp-23-637-2023, https://doi.org/10.5194/acp-23-637-2023, 2023
Short summary
Short summary
This study summarizes recent research on ozone in the Arctic, a sensitive and rapidly warming region. We find that the seasonal cycles of near-surface atmospheric ozone are variable depending on whether they are near the coast, inland, or at high altitude. Several global model simulations were evaluated, and we found that because models lack some of the ozone chemistry that is important for the coastal Arctic locations, they do not accurately simulate ozone there.
Manuel Schlund, Birgit Hassler, Axel Lauer, Bouwe Andela, Patrick Jöckel, Rémi Kazeroni, Saskia Loosveldt Tomas, Brian Medeiros, Valeriu Predoi, Stéphane Sénési, Jérôme Servonnat, Tobias Stacke, Javier Vegas-Regidor, Klaus Zimmermann, and Veronika Eyring
Geosci. Model Dev., 16, 315–333, https://doi.org/10.5194/gmd-16-315-2023, https://doi.org/10.5194/gmd-16-315-2023, 2023
Short summary
Short summary
The Earth System Model Evaluation Tool (ESMValTool) is a community diagnostics and performance metrics tool for routine evaluation of Earth system models. Originally, ESMValTool was designed to process reformatted output provided by large model intercomparison projects like the Coupled Model Intercomparison Project (CMIP). Here, we describe a new extension of ESMValTool that allows for reading and processing native climate model output, i.e., data that have not been reformatted before.
Matthias Nützel, Sabine Brinkop, Martin Dameris, Hella Garny, Patrick Jöckel, Laura L. Pan, and Mijeong Park
Atmos. Chem. Phys., 22, 15659–15683, https://doi.org/10.5194/acp-22-15659-2022, https://doi.org/10.5194/acp-22-15659-2022, 2022
Short summary
Short summary
During the Asian summer monsoon season, a large high-pressure system is present at levels close to the tropopause above Asia. We analyse how air masses are transported from surface levels to this high-pressure system, which shows distinct features from the surrounding air masses. To this end, we employ multiannual data from two complementary models that allow us to analyse the climatology as well as the interannual and intraseasonal variability of these transport pathways.
Paul S. Jeffery, Kaley A. Walker, Chris E. Sioris, Chris D. Boone, Doug Degenstein, Gloria L. Manney, C. Thomas McElroy, Luis Millán, David A. Plummer, Niall J. Ryan, Patrick E. Sheese, and Jiansheng Zou
Atmos. Chem. Phys., 22, 14709–14734, https://doi.org/10.5194/acp-22-14709-2022, https://doi.org/10.5194/acp-22-14709-2022, 2022
Short summary
Short summary
The upper troposphere–lower stratosphere is one of the most variable regions in the atmosphere. To improve our understanding of water vapour and ozone concentrations in this region, climatologies have been developed from 14 years of measurements from three Canadian satellite instruments. Horizontal and vertical coordinates have been chosen to minimize the effects of variability. To aid in analysis, model simulations have been used to characterize differences between instrument climatologies.
Johannes Pletzer, Didier Hauglustaine, Yann Cohen, Patrick Jöckel, and Volker Grewe
Atmos. Chem. Phys., 22, 14323–14354, https://doi.org/10.5194/acp-22-14323-2022, https://doi.org/10.5194/acp-22-14323-2022, 2022
Short summary
Short summary
Very fast aircraft can travel long distances in extremely short times and can fly at high altitudes (15 to 35 km). These aircraft emit water vapour, nitrogen oxides, and hydrogen. Water vapour emissions remain for months to several years at these altitudes and have an important impact on temperature. We investigate two aircraft fleets flying at 26 and 35 km. Ozone is depleted more, and the water vapour perturbation and temperature change are larger for the aircraft flying at 35 km.
Jin Maruhashi, Volker Grewe, Christine Frömming, Patrick Jöckel, and Irene C. Dedoussi
Atmos. Chem. Phys., 22, 14253–14282, https://doi.org/10.5194/acp-22-14253-2022, https://doi.org/10.5194/acp-22-14253-2022, 2022
Short summary
Short summary
Aviation NOx emissions lead to the formation of ozone in the atmosphere in the short term, which has a climate warming effect. This study uses global-scale simulations to characterize the transport patterns between NOx emissions at an altitude of ~ 10.4 km and the resulting ozone. Results show a strong spatial and temporal dependence of NOx in disturbing atmospheric O3 concentrations, with the location that is most impacted in terms of warming not necessarily coinciding with the emission region.
Kostas Eleftheratos, John Kapsomenakis, Ilias Fountoulakis, Christos S. Zerefos, Patrick Jöckel, Martin Dameris, Alkiviadis F. Bais, Germar Bernhard, Dimitra Kouklaki, Kleareti Tourpali, Scott Stierle, J. Ben Liley, Colette Brogniez, Frédérique Auriol, Henri Diémoz, Stana Simic, Irina Petropavlovskikh, Kaisa Lakkala, and Kostas Douvis
Atmos. Chem. Phys., 22, 12827–12855, https://doi.org/10.5194/acp-22-12827-2022, https://doi.org/10.5194/acp-22-12827-2022, 2022
Short summary
Short summary
We present the future evolution of DNA-active ultraviolet (UV) radiation in view of increasing greenhouse gases (GHGs) and decreasing ozone depleting substances (ODSs). It is shown that DNA-active UV radiation might increase after 2050 between 50° N–50° S due to GHG-induced reductions in clouds and ozone, something that is likely not to happen at high latitudes, where DNA-active UV radiation will continue its downward trend mainly due to stratospheric ozone recovery from the reduction in ODSs.
Simon F. Reifenberg, Anna Martin, Matthias Kohl, Sara Bacer, Zaneta Hamryszczak, Ivan Tadic, Lenard Röder, Daniel J. Crowley, Horst Fischer, Katharina Kaiser, Johannes Schneider, Raphael Dörich, John N. Crowley, Laura Tomsche, Andreas Marsing, Christiane Voigt, Andreas Zahn, Christopher Pöhlker, Bruna A. Holanda, Ovid Krüger, Ulrich Pöschl, Mira Pöhlker, Patrick Jöckel, Marcel Dorf, Ulrich Schumann, Jonathan Williams, Birger Bohn, Joachim Curtius, Hardwig Harder, Hans Schlager, Jos Lelieveld, and Andrea Pozzer
Atmos. Chem. Phys., 22, 10901–10917, https://doi.org/10.5194/acp-22-10901-2022, https://doi.org/10.5194/acp-22-10901-2022, 2022
Short summary
Short summary
In this work we use a combination of observational data from an aircraft campaign and model results to investigate the effect of the European lockdown due to COVID-19 in spring 2020. Using model results, we show that the largest relative changes to the atmospheric composition caused by the reduced emissions are located in the upper troposphere around aircraft cruise altitude, while the largest absolute changes are present at the surface.
Matilda A. Pimlott, Richard J. Pope, Brian J. Kerridge, Barry G. Latter, Diane S. Knappett, Dwayne E. Heard, Lucy J. Ventress, Richard Siddans, Wuhu Feng, and Martyn P. Chipperfield
Atmos. Chem. Phys., 22, 10467–10488, https://doi.org/10.5194/acp-22-10467-2022, https://doi.org/10.5194/acp-22-10467-2022, 2022
Short summary
Short summary
We present a new method to derive global information of the hydroxyl radical (OH), an important atmospheric oxidant. OH controls the lifetime of trace gases important to air quality and climate. We use satellite observations of ozone, carbon monoxide, methane and water vapour in a simple expression to derive OH around 3–4 km altitude. The derived OH compares well to model and aircraft OH data. We then apply the method to 10 years of satellite data to study the inter-annual variability of OH.
Liubov Poshyvailo-Strube, Rolf Müller, Stephan Fueglistaler, Michaela I. Hegglin, Johannes C. Laube, C. Michael Volk, and Felix Ploeger
Atmos. Chem. Phys., 22, 9895–9914, https://doi.org/10.5194/acp-22-9895-2022, https://doi.org/10.5194/acp-22-9895-2022, 2022
Short summary
Short summary
Brewer–Dobson circulation (BDC) controls the composition of the stratosphere, which in turn affects radiation and climate. As the BDC cannot be measured directly, it is necessary to infer its strength and trends indirectly. In this study, we test in the
model worlddifferent methods for estimating the mean age of air trends based on a combination of stratospheric water vapour and methane data. We also provide simple practical advice of a more reliable estimation of the mean age of air trends.
Francisco J. Pérez-Invernón, Heidi Huntrieser, Thilo Erbertseder, Diego Loyola, Pieter Valks, Song Liu, Dale J. Allen, Kenneth E. Pickering, Eric J. Bucsela, Patrick Jöckel, Jos van Geffen, Henk Eskes, Sergio Soler, Francisco J. Gordillo-Vázquez, and Jeff Lapierre
Atmos. Meas. Tech., 15, 3329–3351, https://doi.org/10.5194/amt-15-3329-2022, https://doi.org/10.5194/amt-15-3329-2022, 2022
Short summary
Short summary
Lightning, one of the major sources of nitrogen oxides in the atmosphere, contributes to the tropospheric concentration of ozone and to the oxidizing capacity of the atmosphere. In this work, we contribute to improving the estimation of lightning-produced nitrogen oxides in the Ebro Valley and the Pyrenees by using two different TROPOMI products and comparing the results.
M. Dolores Andrés Hernández, Andreas Hilboll, Helmut Ziereis, Eric Förster, Ovid O. Krüger, Katharina Kaiser, Johannes Schneider, Francesca Barnaba, Mihalis Vrekoussis, Jörg Schmidt, Heidi Huntrieser, Anne-Marlene Blechschmidt, Midhun George, Vladyslav Nenakhov, Theresa Harlass, Bruna A. Holanda, Jennifer Wolf, Lisa Eirenschmalz, Marc Krebsbach, Mira L. Pöhlker, Anna B. Kalisz Hedegaard, Linlu Mei, Klaus Pfeilsticker, Yangzhuoran Liu, Ralf Koppmann, Hans Schlager, Birger Bohn, Ulrich Schumann, Andreas Richter, Benjamin Schreiner, Daniel Sauer, Robert Baumann, Mariano Mertens, Patrick Jöckel, Markus Kilian, Greta Stratmann, Christopher Pöhlker, Monica Campanelli, Marco Pandolfi, Michael Sicard, José L. Gómez-Amo, Manuel Pujadas, Katja Bigge, Flora Kluge, Anja Schwarz, Nikos Daskalakis, David Walter, Andreas Zahn, Ulrich Pöschl, Harald Bönisch, Stephan Borrmann, Ulrich Platt, and John P. Burrows
Atmos. Chem. Phys., 22, 5877–5924, https://doi.org/10.5194/acp-22-5877-2022, https://doi.org/10.5194/acp-22-5877-2022, 2022
Short summary
Short summary
EMeRGe provides a unique set of in situ and remote sensing airborne measurements of trace gases and aerosol particles along selected flight routes in the lower troposphere over Europe. The interpretation uses also complementary collocated ground-based and satellite measurements. The collected data help to improve the current understanding of the complex spatial distribution of trace gases and aerosol particles resulting from mixing, transport, and transformation of pollution plumes over Europe.
Cynthia H. Whaley, Rashed Mahmood, Knut von Salzen, Barbara Winter, Sabine Eckhardt, Stephen Arnold, Stephen Beagley, Silvia Becagli, Rong-You Chien, Jesper Christensen, Sujay Manish Damani, Xinyi Dong, Konstantinos Eleftheriadis, Nikolaos Evangeliou, Gregory Faluvegi, Mark Flanner, Joshua S. Fu, Michael Gauss, Fabio Giardi, Wanmin Gong, Jens Liengaard Hjorth, Lin Huang, Ulas Im, Yugo Kanaya, Srinath Krishnan, Zbigniew Klimont, Thomas Kühn, Joakim Langner, Kathy S. Law, Louis Marelle, Andreas Massling, Dirk Olivié, Tatsuo Onishi, Naga Oshima, Yiran Peng, David A. Plummer, Olga Popovicheva, Luca Pozzoli, Jean-Christophe Raut, Maria Sand, Laura N. Saunders, Julia Schmale, Sangeeta Sharma, Ragnhild Bieltvedt Skeie, Henrik Skov, Fumikazu Taketani, Manu A. Thomas, Rita Traversi, Kostas Tsigaridis, Svetlana Tsyro, Steven Turnock, Vito Vitale, Kaley A. Walker, Minqi Wang, Duncan Watson-Parris, and Tahya Weiss-Gibbons
Atmos. Chem. Phys., 22, 5775–5828, https://doi.org/10.5194/acp-22-5775-2022, https://doi.org/10.5194/acp-22-5775-2022, 2022
Short summary
Short summary
Air pollutants, like ozone and soot, play a role in both global warming and air quality. Atmospheric models are often used to provide information to policy makers about current and future conditions under different emissions scenarios. In order to have confidence in those simulations, in this study we compare simulated air pollution from 18 state-of-the-art atmospheric models to measured air pollution in order to assess how well the models perform.
Andrea Pozzer, Simon F. Reifenberg, Vinod Kumar, Bruno Franco, Matthias Kohl, Domenico Taraborrelli, Sergey Gromov, Sebastian Ehrhart, Patrick Jöckel, Rolf Sander, Veronica Fall, Simon Rosanka, Vlassis Karydis, Dimitris Akritidis, Tamara Emmerichs, Monica Crippa, Diego Guizzardi, Johannes W. Kaiser, Lieven Clarisse, Astrid Kiendler-Scharr, Holger Tost, and Alexandra Tsimpidi
Geosci. Model Dev., 15, 2673–2710, https://doi.org/10.5194/gmd-15-2673-2022, https://doi.org/10.5194/gmd-15-2673-2022, 2022
Short summary
Short summary
A newly developed setup of the chemistry general circulation model EMAC (ECHAM5/MESSy for Atmospheric Chemistry) is evaluated here. A comprehensive organic degradation mechanism is used and coupled with a volatility base model.
The results show that the model reproduces most of the tracers and aerosols satisfactorily but shows discrepancies for oxygenated organic gases. It is also shown that this model configuration can be used for further research in atmospheric chemistry.
Francisco J. Pérez-Invernón, Heidi Huntrieser, Patrick Jöckel, and Francisco J. Gordillo-Vázquez
Geosci. Model Dev., 15, 1545–1565, https://doi.org/10.5194/gmd-15-1545-2022, https://doi.org/10.5194/gmd-15-1545-2022, 2022
Short summary
Short summary
This study reports the first parameterization of long-continuing-current lightning in a climate model. Long-continuing-current lightning is proposed to be the main precursor of lightning-ignited wildfires and sprites, a type of transient luminous event taking place in the mesosphere. This parameterization can significantly contribute to improving the implementation of wildfires in climate models.
Cited articles
Akritidis, D., Pozzer, A., Zanis, P., Tyrlis, E., Škerlak, B., Sprenger,
M., and Lelieveld, J.: On the role of tropopause folds in summertime
tropospheric ozone over the eastern Mediterranean and the Middle East, Atmos.
Chem. Phys., 16, 14025–14039, https://doi.org/10.5194/acp-16-14025-2016,
2016.
Allen, D. J. and Pickering, K. E.: Evaluation of lightning flash rate
parameterizations for use in a global chemical transport model, J. Geophys.
Res.-Atmos., 107, 4711, https://doi.org/10.1029/2002JD002066, 2002.
Banerjee, A., Maycock, A. C., Archibald, A. T., Abraham, N. L., Telford, P.,
Braesicke, P., and Pyle, J. A.: Drivers of changes in stratospheric and
tropospheric ozone between year 2000 and 2100, Atmos. Chem. Phys., 16,
2727–2746, https://doi.org/10.5194/acp-16-2727-2016, 2016.
Beekmann, M., Ancellet, G., Megie, G., Smit, H. G. J., and Kley, D.:
Intercomparison campaign of vertical ozone profiles including electrochemical
sondes of ECC and Brewer-Mast type and a ground based UV-differential
absorption lidar, J. Atmos. Chem., 19, 259–288, https://doi.org/10.1007/BF00694614,
1994.
Bolin, B.: On the Influence of the Earth's Orography on the General
Character of the Westerlies, Tellus, 2, 184–195,
https://doi.org/10.3402/tellusa.v2i3.8547, 1950.
Bönisch, H., Engel, A., Birner, Th., Hoor, P., Tarasick, D. W., and Ray, E.
A.: On the structural changes in the Brewer-Dobson circulation after 2000,
Atmos. Chem. Phys., 11, 3937–3948, https://doi.org/10.5194/acp-11-3937-2011,
2011.
Brinkop, S., Dameris, M., Jöckel, P., Garny, H., Lossow, S., and Stiller,
G.: The millennium water vapour drop in chemistry–climate model simulations,
Atmos. Chem. Phys., 16, 8125–8140, https://doi.org/10.5194/acp-16-8125-2016,
2016.
Butchart, N.: The Brewer-Dobson circulation, Rev. Geophys., 52, 157–184,
https://doi.org/10.1002/2013RG000448, 2014.
Butchart, N., Cionni, I., Eyring, V., Shepherd, T. G., Waugh, D. W.,
Akiyoshi, H., Austin, J., Brühl, C., Chipperfield, M. P., Cordero, E.,
Dameris, M., Deckert, R., Dhomse, S., Frith, S. M., Garcia, R. R., Gettelman,
A., Giorgetta, M. A., Kinnison, D. E., Li, F., Mancini, E., McLandress, C.,
Pawson, S., Pitari, G.,
Plummer, D. A., Rozanov, E., Sassi, F., Scinocca, J. F., Shibata, K., Steil, B., and Tian, W.:
Chemistry–Climate Model Simulations of Twenty-First Century Stratospheric
Climate and Circulation Changes, J. Climate, 23, 5349–5374,
https://doi.org/10.1175/2010JCLI3404.1, 2010.
Charney, J. G. and Eliassen, A.: A Numerical Method for Predicting the
Perturbations of the Middle Latitude Westerlies, Tellus, 1, 38–54,
https://doi.org/10.3402/tellusa.v1i2.8500, 1949.
Colette, A. and Ancellet, G.: Impact of vertical transport processes on the
tropospheric ozone layering above Europe: Part II: climatological analysis of
the past 30 years, Atmos. Environ, 39, 5423–5435,
https://doi.org/10.1016/j.atmosenv.2005.06.015, 2005.
Cooper, O. R., Parrish, D. D., Stohl, A., Trainer, M., Nédélec, P.,
Thouret, V., Cammas, J. P., Oltmans, S. J., Johnson, B. J., Tarasick, D.,
Leblanc, T., McDermid, I. S., Jaffe, D., Gao, R., Stith, J., Ryerson, T.,
Aikin, K., Campos, T., Weinheimer, A., and Avery, M. A.: Increasing
springtime ozone mixing ratios in the free troposphere over western North
America, Nature, 463, 344–348, https://doi.org/10.1038/nature08708, 2010.
Cooper, O. R., Parrish, D. D., Ziemke, J., Balashov, N. V., Cupeiro, M.,
Galbally, I. E., Gilge, S., Horowitz, L., Jensen, N. R., Lamarque, J.-F.,
Naik, V., Oltmans, S. J., Schwab, J., Shindell, D. T., Thompson, A. M.,
Thouret, V., Wang, Y., and Zbinden, R. M.: Global distribution and trends of
tropospheric ozone: An observation-based review, Elem. Sci. Anth. 2, p. 29,
https://doi.org/10.12952/journal.elementa.000029, 2014.
Cristofanelli, P., Bracci, A., Sprenger, M., Marinoni, A., Bonaf`e, U.,
Calzolari, F., Duchi, R., Laj, P., Pichon, J. M., Roccato, F., Venzac, H.,
Vuillermoz, E., and Bonasoni, P.: Tropospheric ozone variations at the Nepal
Climate Observatory-Pyramid (Himalayas, 5079 m a.s.l.) and influence of
deep stratospheric intrusion events, Atmos. Chem. Phys., 10, 6537–6549,
https://doi.org/10.5194/acp-10-6537-2010, 2010.
Dibb, J. E., Meeker, L. D., Finkel, R. C., Southon, J. R., Caffee, M. W., and Barrie, L.
A.: Estimation of stratospheric input to the Arctic troposphere:
7Be and 10Be in aerosols at Alert, Canada, J. Geophys.
Res., 99, 12855–12864, https://doi.org/10.1029/94JD00742, 1994.
Eichinger, R., Dietmüller, S., Garny, H., Šácha, P., Birner, T.,
Bönisch, H., Pitari, G., Visioni, D., Stenke, A., Rozanov, E., Revell, L.,
Plummer, D. A., Jöckel, P., Oman, L., Deushi, M., Kinnison, D. E., Garcia,
R., Morgenstern, O., Zeng, G., Stone, K. A., and Schofield, R.: The influence
of mixing on the stratospheric age of air changes in the 21st century, Atmos.
Chem. Phys., 19, 921–940, https://doi.org/10.5194/acp-19-921-2019, 2019.
Eyring, V., Lamarque, J-F., Hess, P., Arfeuille, F., Bowman, K.,
Chipperfield, M. P., Duncan, B., Fiore, A., Gettelman, A., Giorgetta, M. A.,
Granier, C., Hegglin, M., Kinnison, D., Kunze, M., Langematz, U., Luo, B.,
Martin, R., Matthes, K., Newman, P. A., Peter, T., Robock, A., Ryerson, T.,
Saiz-Lopez, A., Salawitch, R., Schultz, M., Shepherd, T. G., Shindell, D.,
Staehelin, J., Tegtmeier, S., Thomason, L., Tilmes, S., Vernier, J.-P.,
Waugh, D., and Young, P.: Overview of IGAC/SPARC Chemistry-Climate Model
Initiative (CCMI) community simulations in support of upcoming ozone and
climate assessments, SPARC Newsletter, 40 (January), 48–66, available at:
http://oceanrep.geomar.de/20227/ (last access: 1 March 2019), 2013.
Fiore, A. M., Jacob, D. J., Field, B. D., Streets, D. G.,
Fernandes, S. D., and Jang, C.: Linking ozone pollution and climate change:
The case for controlling methane, Geophys. Res. Lett., 29, 1919,
https://doi.org/10.1029/2002GL015601, 2002a.
Fiore, A. M., Jacob, D. J., Bey, I., Yantosca, R. M., Field, B. D., Fusco, A.
C. and, Wilkinson, J. G.: Background ozone over the United States in summer:
Origin, trend, and contribution to pollution episodes, J. Geophys.
Res.-Atmos., 107, 4275, https://doi.org/10.1029/2001JD000982, 2002b.
Foret, G., Eremenko, M., Cuesta, J., Sellitto, P., Barré, J., Gaubert, B.,
Coman, A., Dufour, G., Liu, X., Joly, M., Doche, C., and Beekmann, M.: Ozone
pollution: What can we see from space? A case study, J. Geophys. Res.-Atmos.,
119, 8476–8499, https://doi.org/10.1002/2013JD021340, 2014.
Gaudel, A., Cooper, O. R., Ancellet, G., Barret, B., Boynard, A., Burrows, J.
P., Clerbaux, C., Coheur, P.-F., Cuesta, J., Cuevas, E., Doniki, S., Dufour,
G., Ebojie, F., Foret, G., Garcia, O., Granados-Muñoz, M. J., Hannigan, J.
W., Hase, F., Hassler, B., Huang, G., Hurtmans, D., Jaffe, D., Jones, N.,
Kalabokas, P., Kerridge. B., Kulawik S., Latter, B., Leblanc, T., Le
Flochmoën, E., Lin, W., Liu, J., Liu, X., Mahieu, E., McClure-Begley, A.,
Neu, J. L., Osman, M., Palm, M., Petetin, H., Petropavlovskikh, I., Querel,
R., Rahpoe, N., Rozanov, A., Schultz, M. G., Schwab, J., Siddans, R., Smale,
D., Steinbacher, M., Tanimoto, H., Tarasick, D. W., Thouret, V., Thompson, A.
M., Trickl, T., Weatherhead, E., Wespes, C., Worden, H. M., Vigouroux, C.,
Xu, X., Zeng, G., and Ziemke, J.: Tropospheric Ozone Assessment Report:
Present-day distribution and trends of tropospheric ozone relevant to climate
and global atmospheric chemistry model evaluation, Elementa, 6, 1–58,
https://doi.org/10.1525/elementa.291, 2018.
Greenslade, J. W., Alexander, S. P., Schofield, R., Fisher, J. A., and
Klekociuk, A. K.: Stratospheric ozone intrusion events and their impacts on
tropospheric ozone in the Southern Hemisphere, Atmos. Chem. Phys., 17,
10269–10290, https://doi.org/10.5194/acp-17-10269-2017, 2017.
Guenther, A., Hewitt, C. N., Erickson, D., Fall, R., Geron, C., Graedel, T.,
Harley, P., Klinger, L., Lerdau, M., Mckay, W. A., Pierce, T., Scholes, B.,
Steinbrecher, R., Tallamraju, R., Taylor, J., and Zimmerman, P.: A global
model of natural volatile organic compound emissions, J. Geophys. Res., 100,
8873–8892, https://doi.org/10.1029/94JD02950, 1995.
Haenel, F. J., Stiller, G. P., von Clarmann, T., Funke, B., Eckert, E.,
Glatthor, N., Grabowski, U., Kellmann, S., Kiefer, M., Linden, A., and
Reddmann, T.: Reassessment of MIPAS age of air trends and variability, Atmos.
Chem. Phys., 15, 13161–13176, https://doi.org/10.5194/acp-15-13161-2015,
2015.
Hegglin, M. I. and Lamarque, J.-F.: The IGAC/SPARC Chemistry-Climate Model
Initiative Phase-1 (CCMI-1) model data output, NCAS British Atmospheric Data
Centre, 24 September 2018, available at:
http://catalogue.ceda.ac.uk/uuid/9cc6b94df0f4469d8066d69b5df879d5 (last
access: 24 September 2018), 2015.
Hegglin, M. I. and Shepherd, T. G.: Large climate-induced changes in
ultraviolet index and stratosphere-to-troposphere ozone flux, Nat. Geosci.,
2, 687–691, https://doi.org/10.1038/NGEO604, 2009.
Hegglin, M. I., Brunner, D., Peter, T., Hoor, P., Fischer, H., Staehelin, J.,
Krebsbach, M., Schiller, C., Parchatka, U., and Weers, U.: Measurements of
NO, NOy, N2O, and O3 during SPURT: implications for
transport and chemistry in the lowermost stratosphere, Atmos. Chem. Phys., 6,
1331–1350, https://doi.org/10.5194/acp-6-1331-2006, 2006.
Hegglin, M. I., Gettelman, A., Hoor, P., Krichevsky, R., Manney, G. L., Pan,
L. L., Son, S.-W., Stiller, G., Tilmes, S., Walker, K. A., Eyring, V.,
Shepherd, T. G., Waugh, D., Akiyoshi, H., Añel, J. A., Austin, J.,
Baumgaertner, A., Bekki, S., Braesicke, P., Brühl, C., Butchart, N.,
Chipperfield, M., Dameris, M., Dhomse, S., Frith, S., Garny, H., Hardiman, S.
C., Jöckel,P., Kinnison, D. E., Lamarque, J. F., Mancini, E., Michou, M.,
Morgenstern, O., Nakamura, T., Olivié, D., Pawson, S., Pitari, G., Plummer,
D. A., Pyle, J. A., Rozanov, E., Scinocca, J. F., Shibata, K., Smale, D.,
Teyssèdre, H., Tian, W., and Yamashita, Y.: Multimodel assessment of the
upper troposphere and lower stratosphere: Extratropics, J. Geophys.
Res.-Atmos., 115, D00M09, https://doi.org/10.1029/2009JD013638, 2010.
Hegglin, M. I., Plummer, D. A., Shepherd, T. G., Scinocca, J. F., Anderson,
J., Froidevaux, L., Funke, B., Hurst, D., Rozanov, A., Urban, J., von
Clarmann, T., Walker, K. A., Wang, H. J., Tegtmeier, S., and Weigel, K.:
Vertical structure of stratospheric water vapour trends derived from merged
satellite data, Nat. Geosci., 7, 768–776, https://doi.org/10.1038/NGEO2236, 2014.
Hess, P. G. and Zbinden, R.: Stratospheric impact on tropospheric ozone
variability and trends: 1990–2009, Atmos. Chem. Phys., 13, 649–674,
https://doi.org/10.5194/acp-13-649-2013, 2013.
Hoesly, R. M., Smith, S. J., Feng, L., Klimont, Z., Janssens-Maenhout, G.,
Pitkanen, T., Seibert, J. J., Vu, L., Andres, R. J., Bolt, R. M., Bond, T.
C., Dawidowski, L., Kholod, N., Kurokawa, J.-I., Li, M., Liu, L., Lu, Z.,
Moura, M. C. P., O'Rourke, P. R., and Zhang, Q.: Historical (1750–2014)
anthropogenic emissions of reactive gases and aerosols from the Community
Emissions Data System (CEDS), Geosci. Model Dev., 11, 369–408,
https://doi.org/10.5194/gmd-11-369-2018, 2018.
Holton, J. R. and Lelieveld, J.: Stratosphere-troposphere exchange and its
role in the budget of tropospheric ozone, in: Clouds, chemistry and climate
Springer, Berlin, Heidelberg, 173–190, 1996.
Holton, J. R., Haynes, P. H., McIntyre, M. E., Douglass, A. R.,
Rood, R. B., and Pfister, L.: Stratosphere-troposphere exchange, Rev.
Geophys., 33, 403–439, https://doi.org/10.1029/95RG02097, 1995.
HTAP (Hemispheric Transport of Air Pollution): Hemispheric Transport of Air Pollution 2010 Part A: Ozone And
Particulate Matter, Air Pollution Studies No. 17, available at: http://www.htap.org/publications/2010_report/2010_Final_Report/HTAP
%20
2010
%20
Part
%20
A
%2
0110407.pdf (last access: 5 March 2019), 2010.
Hudman, R. C., Jacob, D. J., Cooper, O. R., Evans, M. J., Heald, C. L., Park, R. J., Fehsenfeld, F., Flocke, F., Holloway,
J., Hübler, G., Kita, K., Koike, M., Kondo, Y., Neuman, A., Nowack, J., Oltmans, S., Parrish, D., Roberts, J. M., and Ryerson, T.: Ozone production in
transpacific Asian pollution plumes and implications for ozone air quality in
California, J. Geophys. Res.-Atmos., 109, D23S10,
https://doi.org/10.1029/2004JD004974,
2004.
IPCC: Climate Change 2013: The Physical Science Basis. Contribution of
Working Group I to the Fifth Assessment Report of the Intergovernmental Panel
on Climate Change, edited by: Stocker, T. F., Qin, D., Plattner, G.-K.,
Tignor, M., Allen, S. K., Boschung, J., Nauels, A., Xia, Y., Bex, V., and
Midgley, P. M., Cambridge University Press, Cambridge, United Kingdom
and New York, NY, USA, 1535 pp., https://doi.org/10.1017/CBO9781107415324, 2013.
Jöckel, P., Tost, H., Pozzer, A., Brühl, C., Buchholz, J., Ganzeveld, L.,
Hoor, P., Kerkweg, A., Lawrence, M. G., Sander, R., Steil, B., Stiller, G.,
Tanarhte, M., Taraborrelli, D., van Aardenne, J., and Lelieveld, J.: The
atmospheric chemistry general circulation model ECHAM5/MESSy1: consistent
simulation of ozone from the surface to the mesosphere, Atmos. Chem. Phys.,
6, 5067–5104, https://doi.org/10.5194/acp-6-5067-2006, 2006.
Jöckel, P., Tost, H., Pozzer, A., Kunze, M., Kirner, O., Brenninkmeijer, C.
A. M., Brinkop, S., Cai, D. S., Dyroff, C., Eckstein, J., Frank, F., Garny,
H., Gottschaldt, K.-D., Graf, P., Grewe, V., Kerkweg, A., Kern, B., Matthes,
S., Mertens, M., Meul, S., Neumaier, M., Nützel, M., Oberländer-Hayn, S.,
Ruhnke, R., Runde, T., Sander, R., Scharffe, D., and Zahn, A.: Earth System
Chemistry integrated Modelling (ESCiMo) with the Modular Earth Submodel
System (MESSy) version 2.51, Geosci. Model Dev., 9, 1153–1200,
https://doi.org/10.5194/gmd-9-1153-2016, 2016.
Kerkweg, A., Sander, R., Tost, H., and Jöckel, P.: Technical note:
Implementation of prescribed (OFFLEM), calculated (ONLEM), and
pseudo-emissions (TNUDGE) of chemical species in the Modular Earth Submodel
System (MESSy), Atmos. Chem. Phys., 6, 3603–3609,
https://doi.org/10.5194/acp-6-3603-2006, 2006.
Kolonjari, F., Plummer, D. A., Walker, K. A., Boone, C. D., Elkins, J. W.,
Hegglin, M. I., Manney, G. L., Moore, F. L., Pendlebury, D., Ray, E. A.,
Rosenlof, K. H., and Stiller, G. P.: Assessing stratospheric transport in the
CMAM30 simulations using ACE-FTS measurements, Atmos. Chem. Phys., 18,
6801–6828, https://doi.org/10.5194/acp-18-6801-2018, 2018.
Krebsbach, M., Schiller, C., Brunner, D., Günther, G., Hegglin, M. I.,
Mottaghy, D., Riese, M., Spelten, N., and Wernli, H.: Seasonal cycles and
variability of O3 and H2O in the UT/LMS during SPURT, Atmos.
Chem. Phys., 6, 109–125, https://doi.org/10.5194/acp-6-109-2006, 2006.
Kunze, M., Godolt, M., Langematz, U., Grenfell, J. L., Hamann-Reinus, A., and
Rauer, H.: Investigating the early Earth faint young Sun problem with a
general circulation model, Planet. Space Sci., 98, 77–92,
https://doi.org/10.1016/j.pss.2013.09.011, 2014.
Lacis, A. A., Wuebbles, D. J., and Logan, J. A.: Radiative forcing of
climate by changes in the vertical distribution of ozone, J. Geophys. Res.,
95, 9971–9981, https://doi.org/10.1029/JD095iD07p09971, 1990.
Lamarque, J. F. and Hess, P. G.: Local Processes, Encyclopedia of
Atmospheric Sciences, 4, 262–268, 2003.
Lamarque, J. F., Hess, P. G., and Tie, X. X.: Three-dimensional model study
of the influence of stratosphere-troposphere exchange and its distribution on
tropospheric chemistry, J. Geophys. Res.-Atmos., 104, 26363–26372,
https://doi.org/10.1029/1999JD900762, 1999.
Lamarque, J.-F., Bond, T. C., Eyring, V., Granier, C., Heil, A., Klimont, Z.,
Lee, D., Liousse, C., Mieville, A., Owen, B., Schultz, M. G., Shindell, D.,
Smith, S. J., Stehfest, E., Van Aardenne, J., Cooper, O. R., Kainuma, M.,
Mahowald, N., McConnell, J. R., Naik, V., Riahi, K., and van Vuuren, D. P.:
Historical (1850–2000) gridded anthropogenic and biomass burning emissions
of reactive gases and aerosols: methodology and application, Atmos. Chem.
Phys., 10, 7017–7039, https://doi.org/10.5194/acp-10-7017-2010, 2010.
Langford, A. O.: Stratosphere-troposphere exchange at the subtropical jet:
Contribution to the tropospheric ozone budget at midlatitudes, Geophys. Res.
Lett., 26, 2449–2452, https://doi.org/10.1029/1999GL900556, 1999.
Lee, S., Shelow, D. M., Thompson, A. M., and Miller, S. K.: QBO and ENSO
variability in temperature and ozone from SHADOZ, 1998–2005, J. Geophys.
Res., 115, D18105, https://doi.org/10.1029/2009JD013320, 2010.
Lelieveld, J. and Dentener, F. J.: What controls tropospheric ozone?, J.
Geophys. Res.-Atmos., 105, 3531–3551, https://doi.org/10.1029/1999JD901011,
2000.
Lelieveld, J., Hoor, P., Jöckel, P., Pozzer, A., Hadjinicolaou, P., Cammas,
J.-P., and Beirle, S.: Severe ozone air pollution in the Persian Gulf region,
Atmos. Chem. Phys., 9, 1393–1406, https://doi.org/10.5194/acp-9-1393-2009,
2009.
Levelt, P. F., van den Oord, G. H., Dobber, M. R., Malkki, A., Visser, H., de
Vries, J., Stammes, P., Lundell, J. O. V., and Saari, H.: The ozone
monitoring instrument, IEEE T. Geosci. Remote., 44, 1093–1101,
https://doi.org/10.1109/TGRS.2006.872333, 2006.
Levelt, P. F., Joiner, J., Tamminen, J., Veefkind, J. P., Bhartia, P. K.,
Stein Zweers, D. C., Duncan, B. N., Streets, D. G., Eskes, H., van der A, R.,
McLinden, C., Fioletov, V., Carn, S., de Laat, J., DeLand, M., Marchenko, S.,
McPeters, R., Ziemke, J., Fu, D., Liu, X., Pickering, K., Apituley, A.,
González Abad, G., Arola, A., Boersma, F., Chan Miller, C., Chance, K., de
Graaf, M., Hakkarainen, J., Hassinen, S., Ialongo, I., Kleipool, Q., Krotkov,
N., Li, C., Lamsal, L., Newman, P., Nowlan, C., Suleiman, R., Tilstra, L. G.,
Torres, O., Wang, H., and Wargan, K.: The Ozone Monitoring Instrument:
overview of 14 years in space, Atmos. Chem. Phys., 18, 5699–5745,
https://doi.org/10.5194/acp-18-5699-2018, 2018.
Li, W., Li, L., Fu, R., Deng, Y., and Wang, H.: Changes to the North Atlantic
Subtropical High and Its Role in the Intensification of Summer Rainfall
Variability in the Southeastern United States, J. Climate, 24, 1499–1506,
https://doi.org/10.1175/2010JCLI3829.1, 2011.
Li, W., Li, L., Ting, M., and Liu, Y: Intensification of Northern Hemisphere
subtropical highs in a warming climate, Nat. Geosci., 5, 830–834,
https://doi.org/10.1038/NGEO1590, 2012.
Lin, M., Fiore, A. M., Cooper, O. R., Horowitz, L. W., Langford, A. O., Levy
II, H., Johnson, B. J., Naik, V., Oltmans, S. J. and Senff, C. J.: Springtime
high surface ozone events over the western United States: Quantifying the
role of stratospheric intrusions, J. Geophys. Res.-Atmos., 117, D00V22,
https://doi.org/10.1029/2012JD018151, 2012.
Lin, M., Horowitz, L. W., Oltmans, S. J., Fiore, A. M., and Fan, S.:
Tropospheric ozone trends at Mauna Loa Observatory tied to decadal climate
variability, Nat. Geosci., 7, 136–143, https://doi.org/10.1038/NGEO2066, 2014.
Lin, M., Fiore, A. M., Horowitz, L. W., Langford, A. O., Oltmans, S. J.,
Tarasick, D., and Reider, E. H.: Climate variability modulates western US
ozone air quality in spring via deep stratospheric intrusions, Nat. Commun.,
6, 7105, https://doi.org/10.1038/ncomms8105, 2015.
Lin, S. and Rood, R. B.: Multidimensional Flux-Form Semi-Lagrangian Transport
Schemes, Mon. Weather Rev., 124, 2046–2070,
https://doi.org/10.1175/1520-0493(1996)124<2046:MFFSLT>2.0.CO;2, 1996.
Liu, X., Bhartia, P. K., Chance, K., Froidevaux, L., Spurr, R. J. D., and
Kurosu, T. P.: Validation of Ozone Monitoring Instrument (OMI) ozone profiles
and stratospheric ozone columns with Microwave Limb Sounder (MLS)
measurements, Atmos. Chem. Phys., 10, 2539–2549,
https://doi.org/10.5194/acp-10-2539-2010, 2010.
Liu, J., Tarasick, D. W., Fioletov, V. E., McLinden, C., Zhao, T., Gong, S.,
Sioris, C., Jin, J. J., Liu, G., and Moeini, O.: A global ozone climatology
from ozone soundings via trajectory mapping: a stratospheric perspective,
Atmos. Chem. Phys., 13, 11441–11464,
https://doi.org/10.5194/acp-13-11441-2013, 2013.
Logan, J. A.: Tropospheric ozone: Seasonal behavior, trends, and
anthropogenic influence, J. Geophys. Res., 90, 10463–10482,
https://doi.org/10.1029/JD090iD06p10463, 1985.
Manney, G. L. and Hegglin, M. I.: Seasonal and Regional Variations of
Long-Term Changes in Upper-Tropospheric Jets from Reanalyses, J. Climate, 31,
423–448, https://doi.org/10.1175/JCLI-D-17-0303.1, 2018.
Mauzerall, D. L., Logan, J. A., Jacob, D. J., Anderson, B. E., Blake, D. R.,
Bradshaw, J. D., Heikes, B., Sachse, G. W., Singh, H., and Talbot, B.:
Photochemistry in biomass burning plumes and implications for tropospheric
ozone over the tropical South Atlantic, J. Geophys. Res.-Atmos., 103,
8401–8423, https://doi.org/10.1029/97JD02612, 1998.
McLandress, C., Shepherd, T. G., Polavarapu, S., and Beagley, S. R.: Is
missing orographic gravity wave drag near 60∘ S the cause of the
stratospheric zonal wind biases in chemistry–climate models?, J. Atmos.
Sci., 69, 802–818, https://doi.org/10.1175/JAS-D-11-0159.1, 2012.
McLandress, C., Scinocca, J. F., Shepherd, T. G., Reader, M. C., and
Manney, G. L.: Dynamical Control of the Mesosphere by Orographic and
Nonorographic Gravity Wave Drag during the Extended Northern Winters of 2006
and 2009, J. Atmos. Sci., 70, 2152–2169, https://doi.org/10.1175/JAS-D-12-0297.1,
2013.
Merryfield, W. J., McFarlane, N., and Lazare, M.: A generalised hybrid
transformation for tracer advection, Research Activity in Atmospheric and
Oceanic Modelling, CAS/JSC WGNE Blue Book, Report, report No. 33, WMO/TD
1161, World Meteorological Organization, Geneva, 13–14, 2003.
Mielonen, T., de Haan, J. F., van Peet, J. C. A., Eremenko, M., and Veefkind,
J. P.: Towards the retrieval of tropospheric ozone with the Ozone Monitoring
Instrument (OMI), Atmos. Meas. Tech., 8, 671–687,
https://doi.org/10.5194/amt-8-671-2015, 2015.
Miles, G. M., Siddans, R., Kerridge, B. J., Latter, B. G., and Richards, N.
A. D.: Tropospheric ozone and ozone profiles retrieved from GOME-2 and their
validation, Atmos. Meas. Tech., 8, 385–398,
https://doi.org/10.5194/amt-8-385-2015, 2015.
Morgenstern, O., Hegglin, M. I., Rozanov, E., O'Connor, F. M., Abraham, N.
L., Akiyoshi, H., Archibald, A. T., Bekki, S., Butchart, N., Chipperfield, M.
P., Deushi, M., Dhomse, S. S., Garcia, R. R., Hardiman, S. C., Horowitz, L.
W., Jöckel, P., Josse, B., Kinnison, D., Lin, M., Mancini, E., Manyin, M.
E., Marchand, M., Marécal, V., Michou, M., Oman, L. D., Pitari, G.,
Plummer, D. A., Revell, L. E., Saint-Martin, D., Schofield, R., Stenke, A.,
Stone, K., Sudo, K., Tanaka, T. Y., Tilmes, S., Yamashita, Y., Yoshida, K.,
and Zeng, G.: Review of the global models used within phase 1 of the
Chemistry–Climate Model Initiative (CCMI), Geosci. Model Dev., 10, 639–671,
https://doi.org/10.5194/gmd-10-639-2017, 2017.
Myhre, G., Shindell, D., Bréon, F.-M., Collins, W., Fuglestvedt, J., and
Huang, J.: Anthropogenic and Natural Radiative Forcing, in: Climate Change
2013: The Physical Science Basis. Contribution of Working Group I to the
Fifth Assessment Report of the Intergovernmental Panel on Climate Change,
edited by: Stocker, T. F., Qin, D., Plattner, G.-K., Tignor, M., Allen, S.
K., Boschung, J., Nauels, A., Xia, Y., Bex, V., and Midgley, P. M., Cambridge
University Press, Cambridge, United Kingdom and New York, NY, USA, 659–740,
https://doi.org/10.1017/CBO9781107415324.018, 2013.
Nassar, R., Logan, J. A., Worden, H. M., Megretskaia, I. A., Bowman, K. W.,
Osterman, G. B., Thompson, A. M., Tarasick, D. W., Austin, S., Claude, H.,
Dubey, M. K., Hocking, W. K., Johnson, B. J., Joseph, E., Merrill, J.,
Morris, G. A., Newchurch, M., Oltmans, S. J., Posny, F., Schmidlin, F. J.,
Vömel, H., Whiteman, D. N., and Witte, J. C.: Validation of Tropospheric
Emission Spectrometer (TES) nadir ozone profiles using ozonesonde
measurements, J. Geophys. Res.-Atmos., 113, D15S17,
https://doi.org/10.1029/2007JD008819, 2008.
Neu, J. L., Flury, T., Manney, G. L., Santee, M. L., Livesey, N. J., and
Worden, J.: Tropospheric ozone variations governed by changes in
stratospheric circulation, Nat. Geosci., 7, 340–344, https://doi.org/10.1038/NGEO2138,
2014.
Paoletti, E., De Marco, A., Beddows, D. C. S., Harrison, R. M., and Manning,
W. J.: Ozone levels in European and USA cities are increasing more than at
rural sites, while peak values are decreasing, Environ. Pollut., 192,
295–299, https://doi.org/10.1016/j.envpol.2014.04.040,
2014.
Parrish, D. D., Lamarque, J.-F., Naik, V., Horowitz, L., Shindell, D. T.,
Staehelin, J., Derwent, R., Cooper, O. R., Tanimoto, H., Volz-Thomas, A.,
Gilge, S. Scheel, H.-E., Steinbacher, M., and Fröhlich, M.: Long-term
changes in lower tropospheric baseline ozone concentrations: Comparing
chemistry-climate models and observations at northern midlatitudes, J.
Geophys. Res.-Atmos., 119, 5719–5736, https://doi.org/10.1002/2013JD021435, 2014.
Pendlebury, D., Plummer, D., Scinocca, J., Sheese, P., Strong, K., Walker,
K., and Degenstein, D.: Comparison of the CMAM30 data set with ACE-FTS and
OSIRIS: polar regions, Atmos. Chem. Phys., 15, 12465–12485,
https://doi.org/10.5194/acp-15-12465-2015, 2015.
Plummer, D., Lamarque, J.-F., and Hegglin, M.: Chemistry-Climate Model Initiative (CCMI) Model Output Requirements and Data Reference Syntax, available at: http://www.met.reading.ac.uk/~qr903932/CCMI-website/Wordpress_PDFs/CCMI1_DRS_20140422.pdf (last access: 7 March 2019), 2014.
Prather, M. J., Zhu, X., Tang, Q., Hsu, J., and Neu, J. L.: An atmospheric
chemist in search of the tropopause, J. Geophys. Res.-Atmos., 116, D04306,
https://doi.org/10.1029/2010JD014939, 2011.
Rayner, N. A., Parker, D. E., Horton, E. B., Folland, C. K., Alexander, L.
V., Rowell, D. P., Kent, E. C., and Kaplan, A.: Global analyses of sea
surface temperature, sea ice, and night marine air temperature since the late
nineteenth century, J. Geophys. Res.-Atmos., 108, 4407,
https://doi.org/10.1029/2002JD002670, 2003.
Revell, L. E., Stenke, A., Tummon, F., Feinberg, A., Rozanov, E., Peter, T.,
Abraham, N. L., Akiyoshi, H., Archibald, A. T., Butchart, N., Deushi, M.,
Jöckel, P., Kinnison, D., Michou, M., Morgenstern, O., O'Connor, F. M.,
Oman, L. D., Pitari, G., Plummer, D. A., Schofield, R., Stone, K., Tilmes,
S., Visioni, D., Yamashita, Y., and Zeng, G.: Tropospheric ozone in CCMI
models and Gaussian process emulation to understand biases in the SOCOLv3
chemistry–climate model, Atmos. Chem. Phys., 18, 16155–16172,
https://doi.org/10.5194/acp-18-16155-2018, 2018.
Richards, N. A. D., Arnold, S. R., Chipperfield, M. P., Miles, G., Rap, A.,
Siddans, R., Monks, S. A., and Hollaway, M. J.: The Mediterranean summertime
ozone maximum: global emission sensitivities and radiative impacts, Atmos.
Chem. Phys., 13, 2331–2345, https://doi.org/10.5194/acp-13-2331-2013, 2013.
Roelofs, G. J. and Lelieveld, J. O. S.: Model study of the influence of
cross-tropopause O3 transports on tropospheric O3 levels,
Tellus B, 49, 38–55, https://doi.org/10.3402/tellusb.v49i1.15949, 1997.
Roscoe, H. K.: The Brewer–Dobson circulation in the stratosphere and
mesosphere – Is there a trend?, Adv. Space. Res., 38, 2446–2245,
https://doi.org/10.1016/j.asr.2006.02.078, 2006.
Sander, R., Baumgaertner, A., Gromov, S., Harder, H., Jöckel, P., Kerkweg,
A., Kubistin, D., Regelin, E., Riede, H., Sandu, A., Taraborrelli, D., Tost,
H., and Xie, Z.-Q.: The atmospheric chemistry box model CAABA/MECCA-3.0,
Geosci. Model Dev., 4, 373–380, https://doi.org/10.5194/gmd-4-373-2011,
2011.
Sander, R., Jöckel, P., Kirner, O., Kunert, A. T., Landgraf, J., and
Pozzer, A.: The photolysis module JVAL-14, compatible with the MESSy
standard, and the JVal PreProcessor (JVPP), Geosci. Model Dev., 7,
2653–2662, https://doi.org/10.5194/gmd-7-2653-2014, 2014.
Schenkeveld, V. M. E., Jaross, G., Marchenko, S., Haffner, D., Kleipool, Q.
L., Rozemeijer, N. C., Veefkind, J. P., and Levelt, P. F.: In-flight
performance of the Ozone Monitoring Instrument, Atmos. Meas. Tech., 10,
1957–1986, https://doi.org/10.5194/amt-10-1957-2017, 2017.
Scinocca, J. F., McFarlane, N. A., Lazare, M., Li, J., and Plummer, D.:
Technical Note: The CCCma third generation AGCM and its extension into the
middle atmosphere, Atmos. Chem. Phys., 8, 7055–7074,
https://doi.org/10.5194/acp-8-7055-2008, 2008.
Seinfeld, J. H. and Pandis, S. N. Atmospheric chemistry and physics: from
air pollution to climate change, John Wiley & Sons, 2006.
Sellitto, P., Bojkov, B. R., Liu, X., Chance, K., and Del Frate, F.:
Tropospheric ozone column retrieval at northern mid-latitudes from the Ozone
Monitoring Instrument by means of a neural network algorithm, Atmos. Meas.
Tech., 4, 2375–2388, https://doi.org/10.5194/amt-4-2375-2011, 2011.
Shepherd, T. G.: Transport in the middle atmosphere, J. Meteorol. Soc. Jpn.,
85B, 165–191, https://doi.org/10.2151/jmsj.85B.165, 2007.
Shepherd, T. G., Plummer, D. A., Scinocca, J. F., Hegglin, M. I., Fioletov,
V. E., Reader, M. C., Remsburg, E., von Clarmann, T., and Wang, H. J.:
Reconciliation of halogen-induced ozone loss with the total-column ozone
record, Nat. Geosci., 7, 443–449, https://doi.org/10.1038/NGEO2155, 2014.
Škerlak, B., Sprenger, M., and Wernli, H.: A global climatology of
stratosphere–troposphere exchange using the ERA-Interim data set from 1979
to 2011, Atmos. Chem. Phys., 14, 913–937,
https://doi.org/10.5194/acp-14-913-2014, 2014.
Smit, H. G. J. and Kley, D.: JOSIE: The 1996 WMO International
intercomparison of ozonesondes under quasi flight conditions in the
environmental simulation chamber at Jülich, WMO Global Atmosphere Watch
report series, No. 130 (Technical Document No. 926), World Meteorological
Organization, Geneva, 1998.
Smit, H. G. J. and Straeter, W.: JOSIE-1998, Performance of ECC Ozone Sondes
of SPC-6A and ENSCI-Z Type, WMO Global Atmosphere Watch report series, No.
157 (Technical Document No. 1218), World Meteorological Organization, Geneva,
2004a.
Smit, H. G. J. and Straeter, W.: JOSIE-2000, Jülich Ozone Sonde
Intercomparison Experiment 2000, The 2000 WMO international intercomparison
of operating procedures for ECC-ozonesondes at the environmental simulation
facility at Jülich, WMO Global Atmosphere Watch report series, No. 158
(Technical Document No. 1225), World Meteorological Organization, Geneva,
2004b.
Son, S. W., Han, B. R., Garfinkel, C. I., Kim, S. Y., Park, R., Abraham, N.
L., Akiyoshi, H., Archibald, A. T., Butchart, N., Chipperfield, M. P.,
Dameris, M., Deuschi, M., Dhomse, S. S., Hardiman. S. C., Jöckel, P.,
Kinnison, D., Michou, M., Morgenstern, O., O'Connor, F. M., Oman, L. D.,
Plummer, D. A., Pozzer, A., Revell, L. E., Rozanov, E., Stenke, A., Stone,
K., Tilmes, S., Yamashita, Y., and Zeng, G.: Tropospheric jet response to
Antarctic ozone depletion: An update with Chemistry-Climate Model Initiative
(CCMI) models, Environ. Res. Lett., 13, 054024,
https://doi.org/10.1088/1748-9326/aabf21, 2018.
SPARC: SPARC/IOC/GAW Assessment of Trends in the Vertical Distribution of
Ozone, edited by: Harris, N., Hudson, R., and Phillips, C., SPARC Report No.
1, WMO Ozone Research and Monitoring Project Report No. 43, available at:
https://www.sparc-climate.org/publications/sparc-reports/ (last access:
4 March 2019), 1998.
Staley, D. O.: On the mechanism of mass and radioactivity transport from
stratosphere to troposphere, J. Atmos. Sci., 19, 450–467,
https://doi.org/10.1175/1520-0469(1962)019<0450:OTMOMA>2.0.CO;2, 1962.
Stevenson, D. S., Young, P. J., Naik, V., Lamarque, J.-F., Shindell, D. T.,
Voulgarakis, A., Skeie, R. B., Dalsoren, S. B., Myhre, G., Berntsen, T. K.,
Folberth, G. A., Rumbold, S. T., Collins, W. J., MacKenzie, I. A., Doherty,
R. M., Zeng, G., van Noije, T. P. C., Strunk, A., Bergmann, D.,
Cameron-Smith, P., Plummer, D. A., Strode, S. A., Horowitz, L., Lee, Y. H.,
Szopa, S., Sudo, K., Nagashima, T., Josse, B., Cionni, I., Righi, M., Eyring,
V., Conley, A., Bowman, K. W., Wild, O., and Archibald, A.: Tropospheric
ozone changes, radiative forcing and attribution to emissions in the
Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP),
Atmos. Chem. Phys., 13, 3063–3085, https://doi.org/10.5194/acp-13-3063-2013,
2013.
Stohl, A., Spichtinger-Rakowsky, N., Bonasoni, P., Feldmann, H.,
Memmesheimer, M., Scheel, H. E., Trickl, T., Hübener, S., Ringer, W., and
Mandl, M.: The influence of stratospheric intrusions on alpine ozone
concentrations, Atmos. Environ., 34, 1323–1354,
https://doi.org/10.1016/S1352-2310(99)00320-9, 2000.
Tarasick, D. W., Carey-Smith, T. K., Hocking, W. K., Moeini, O., He, H., Liu,
J., Osman, M. K., Thompson, A. M., Johnson, B. J., Oltmans, S. J., and
Merrill, J. T.: Quantifying stratosphere-troposphere transport of ozone using
balloon-borne ozonesondes, radar windprofilers and trajectory models, Atmos.
Environ., 198, 496–509, https://doi.org/10.1016/j.atmosenv.2018.10.040, 2019.
Thompson, A. M., Stone, J. B., Witte, J. C., Miller, S. K., Pierce, R. B.,
Chatfield, R. B., Oltmans, S. J., Cooper, O. R., Loucks, A. L., Taubman, B.
F., Johnson, B. J., Joseph, E., Kucsera, T. L., Merrill, J. T., Morris, G.
A., Hersey, S., Forbes, G., Newchurch, M. J., Schmidlin, F. J., Tarasick, D.
W., Thouret, V., and Cammas, J.-P.: Intercontinental Chemical Transport
Experiment Ozonesonde Network Study (IONS) 2004: 1. Summertime upper
troposphere/lower stratosphere ozone over northeastern North America, J.
Geophys. Res.-Atmos., 112, D12S12, https://doi.org/10.1029/2006JD007441, 2007a.
Thompson, A. M., Stone, J. B., Witte, J. C., Miller, S. K., Oltmans, S. J.
Kucsera, T. L., Ross, K. L., Pickering, K. E., Merrill, J. T., Forbes, G.,
Tarasick, D. W., Joseph, E., Schmidlin, F. J., McMillan, W. W., Warner, J.,
Hintsa, E. J., and Johnson, J. E.: Intercontinental chemical transport
experiment ozonesonde network study (IONS) 2004: 2. Tropospheric ozone
budgets and variability over northeastern North America, J. Geophys.
Res.-Atmos., 112, D12S13, https://doi.org/10.1029/2006JD007670, 2007b.
Thompson, A. M., Miller, S. K., Tilmes, S., Kollonige, D. W., Witte, J. C.
Oltmans, S. J., Johnson, B. J., Fujiwara, M., Schmidlin, F. J., Coetzee, G.
J. R., Komala, N., Maata, M., bt Mohamed, M., Nguyo, J., Mutai, C., Ogino,
S.-Y., Da Silva, F. R., Paes Leme, N. M., Posny, F., Scheele, R., Selkirk, H.
B., Shiotani, M., Stübi, R., Levrat, G., Calpini, B., Thouret, V., Tsurata,
H., Canossa, J. V., Vömel, H., Yonemura, S., Diaz, J. A., Tan Thanh, N. T.,
and Thuy Ha, H. T.: Southern Hemisphere Additional Ozonesondes (SHADOZ) ozone
climatology (2005–2009): Tropospheric and tropical tropopause layer (TTL)
profiles with comparisons to OMI-based ozone products, J. Geophys.
Res.-Atmos., 117, D23301, https://doi.org/10.1029/2011JD016911, 2012.
Tost, H., Jöckel, P., Kerkweg, A., Sander, R., and Lelieveld, J.: Technical
note: A new comprehensive SCAVenging submodel for global atmospheric
chemistry modelling, Atmos. Chem. Phys., 6, 565–574,
https://doi.org/10.5194/acp-6-565-2006, 2006.
Wasserstein, R. L. and Lazar, N. A.: The ASA's statement on p-values:
context, process, and purpose, Am. Stat., 70, 129–133,
https://doi.org/10.1080/00031305.2016.1154108, 2016.
WMO/GAW Ozone Monitoring Community: World Meteorological Organization-Global
Atmosphere Watch Program (WMO-GAW)/World Ozone and Ultraviolet Radiation Data
Centre (WOUDC) [Data], available at: https://woudc.org (last access: 20
January 2018), https://doi.org/10.14287/10000008, 2015.
Worden, H. M., Logan, J. A., Worden, J. R., Beer, R., Bowman, K., Clough, S.
A., Eldering, A., Fisher, B. M. Gunson, M. R., Herman, R. L., Kulawik, S. S.,
Lampel, M. C. Luo, M. Megretskaia, I. A., Osterman, G. B., and Shephard, M.
W.: Comparisons of Tropospheric Emission Spectrometer (TES) ozone profiles to
ozonesondes: Methods and initial results, J. Geophys. Res.-Atmos., 112,
D03309, https://doi.org/10.1029/2006JD007258, 2007.
Yang, H., Chen, G., Tang, Q., and Hess, P.: Quantifying isentropic
stratosphere-troposphere exchange of ozone, J. Geophys. Res.-Atmos., 121,
3372–3387, https://doi.org/10.1002/2015JD024180, 2016.
Young, P. J., Archibald, A. T., Bowman, K. W., Lamarque, J.-F., Naik, V.,
Stevenson, D. S., Tilmes, S., Voulgarakis, A., Wild, O., Bergmann, D.,
Cameron-Smith, P., Cionni, I., Collins, W. J., Dalsøren, S. B., Doherty,
R. M., Eyring, V., Faluvegi, G., Horowitz, L. W., Josse, B., Lee, Y. H.,
MacKenzie, I. A., Nagashima, T., Plummer, D. A., Righi, M., Rumbold, S. T.,
Skeie, R. B., Shindell, D. T., Strode, S. A., Sudo, K., Szopa, S., and Zeng,
G.: Pre-industrial to end 21st century projections of tropospheric ozone from
the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP),
Atmos. Chem. Phys., 13, 2063–2090, https://doi.org/10.5194/acp-13-2063-2013,
2013.
Zanis, P., Gerasopoulos, E., Priller, A., Schnabel, C., Stohl, A.,
Zerefos, C., Gäggeler, H. W., Tobler, L., Kubik, P. W., Kanter, H. J., Scheel, H. E., Luterbacher, J., and Berger, M.: An estimate of the
impact of stratosphere-to-troposphere transport (STT) on the lower free
tropospheric ozone over the Alps using 10Be and 7Be
measurements, J. Geophys. Res., 108, 8520, https://doi.org/10.1029/2002JD002604, 2003.
Zanis, P., Hadjinicolaou, P., Pozzer, A., Tyrlis, E., Dafka, S.,
Mihalopoulos, N., and Lelieveld, J.: Summertime free-tropospheric ozone pool
over the eastern Mediterranean/Middle East, Atmos. Chem. Phys., 14, 115–132,
https://doi.org/10.5194/acp-14-115-2014, 2014.
Zeng, G., Morgenstern, O., Braesicke, P., and Pyle, J. A.: Impact of
stratospheric ozone recovery on tropospheric ozone and its budget, Geophys.
Res. Lett., 37, L09805, https://doi.org/10.1029/2010GL042812, 2010.
Zhang, L., Jacob, D. J., Boersma, K. F., Jaffe, D. A., Olson, J. R., Bowman,
K. W., Worden, J. R., Thompson, A. M., Avery, M. A., Cohen, R. C., Dibb, J.
E., Flock, F. M., Fuelberg, H. E., Huey, L. G., McMillan, W. W., Singh, H.
B., and Weinheimer, A. J.: Transpacific transport of ozone pollution and the
effect of recent Asian emission increases on air quality in North America: an
integrated analysis using satellite, aircraft, ozonesonde, and surface
observations, Atmos. Chem. Phys., 8, 6117–6136,
https://doi.org/10.5194/acp-8-6117-2008, 2008.
Ziemke, J. R., Chandra, S., Labow, G. J., Bhartia, P. K., Froidevaux, L., and
Witte, J. C.: A global climatology of tropospheric and stratospheric ozone
derived from Aura OMI and MLS measurements, Atmos. Chem. Phys., 11,
9237–9251, https://doi.org/10.5194/acp-11-9237-2011, 2011.
Ziemke, J. R. and Chandra, S.: Development of a climate record of
tropospheric and stratospheric column ozone from satellite remote sensing:
evidence of an early recovery of global stratospheric ozone, Atmos. Chem.
Phys., 12, 5737–5753, https://doi.org/10.5194/acp-12-5737-2012, 2012.
Short summary
Tropospheric ozone has important implications for air quality and climate change but is poorly understood at a regional and seasonal level. Analysis of model simulations indicates that downward transport of ozone from the stratosphere has a larger influence than previously thought (as much as ~50 % even near the surface). Recent estimated changes in tropospheric ozone (1980–89 to 2001–10) are generally positive, with substantial attribution from the stratosphere identified over some regions.
Tropospheric ozone has important implications for air quality and climate change but is poorly...
Altmetrics
Final-revised paper
Preprint