Low ozone dry deposition rates to sea ice during the MOSAiC field campaign: Implications for the Arctic boundary layer ozone budget
Author:
Barten Johannes G.M.1, Ganzeveld Laurens N.1, Steeneveld Gert-Jan1, Blomquist Byron W.23, Angot Hélène45, Archer Stephen D.6, Bariteau Ludovic23, Beck Ivo4, Boyer Matthew7, von der Gathen Peter8, Helmig Detlev59, Howard Dean35, Hueber Jacques510, Jacobi Hans-Werner11, Jokinen Tuija712, Laurila Tiia7, Posman Kevin M.6, Quéléver Lauriane7, Schmale Julia4, Shupe Matthew D.23, Krol Maarten C.113
Affiliation:
1. 1Meteorology and Air Quality Section, Wageningen University, Wageningen, the Netherlands 2. 2NOAA Physical Sciences Laboratory, Boulder, CO, USA 3. 3Cooperative Institute for Research in Environmental Sciences, University of Colorado, Boulder, CO, USA 4. 4Extreme Environments Research Laboratory, École Polytechnique Fédérale de Lausanne Valais Wallis, Sion, Switzerland 5. 5Institute for Arctic and Alpine Research, University of Colorado, Boulder, CO, USA 6. 6Bigelow Laboratory for Ocean Sciences, East Boothbay, ME, USA 7. 7Institute for Atmospheric and Earth System Research, INAR/Physics, University of Helsinki, Helsinki, Finland 8. 8Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Potsdam, Germany 9. 9Boulder AIR, Boulder, CO, USA 10. 10JH Atmospheric Instrument Design, Boulder, CO, USA 11. 11Institute for Geosciences and Environmental Research, CNRS/Université Grenoble Alpes/IRD/G-INP, Grenoble, France 12. 12Climate & Atmosphere Research Centre (CARE-C), The Cyprus Institute, Nicosia, Cyprus 13. 13Institute for Marine and Atmospheric Research Utrecht, Utrecht University, Utrecht, the Netherlands
Abstract
Dry deposition to the surface is one of the main removal pathways of tropospheric ozone (O3). We quantified for the first time the impact of O3 deposition to the Arctic sea ice on the planetary boundary layer (PBL) O3 concentration and budget using year-round flux and concentration observations from the Multidisciplinary drifting Observatory for the Study of Arctic Climate (MOSAiC) campaign and simulations with a single-column atmospheric chemistry and meteorological model (SCM). Based on eddy-covariance O3 surface flux observations, we find a median surface resistance on the order of 20,000 s m−1, resulting in a dry deposition velocity of approximately 0.005 cm s−1. This surface resistance is up to an order of magnitude larger than traditionally used values in many atmospheric chemistry and transport models. The SCM is able to accurately represent the yearly cycle, with maxima above 40 ppb in the winter and minima around 15 ppb at the end of summer. However, the observed springtime ozone depletion events are not captured by the SCM. In winter, the modelled PBL O3 budget is governed by dry deposition at the surface mostly compensated by downward turbulent transport of O3 towards the surface. Advection, which is accounted for implicitly by nudging to reanalysis data, poses a substantial, mostly negative, contribution to the simulated PBL O3 budget in summer. During episodes with low wind speed (<5 m s−1) and shallow PBL (<50 m), the 7-day mean dry deposition removal rate can reach up to 1.0 ppb h−1. Our study highlights the importance of an accurate description of dry deposition to Arctic sea ice in models to quantify the current and future O3 sink in the Arctic, impacting the tropospheric O3 budget, which has been modified in the last century largely due to anthropogenic activities.
Publisher
University of California Press
Subject
Atmospheric Science,Geology,Geotechnical Engineering and Engineering Geology,Ecology,Environmental Engineering,Oceanography
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