Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region

<p>In order to identify the causes of overestimate of the surface-level O<span class="inline-formula"><sub>3</sub></span> mixing ratio simulated by three regional chemical-transport models, NAQPMS v.3 (abbreviated as NAQM in this paper), CMAQ v.5.0.2, and CMAQ...

Full description

Bibliographic Details
Main Authors: H. Akimoto, T. Nagashima, N. Kawano, L. Jie, J. S. Fu, Z. Wang
Format: Article
Language:English
Published: Copernicus Publications 2020-12-01
Series:Atmospheric Chemistry and Physics
Online Access:https://acp.copernicus.org/articles/20/15003/2020/acp-20-15003-2020.pdf
_version_ 1830485721768525824
author H. Akimoto
T. Nagashima
N. Kawano
L. Jie
L. Jie
L. Jie
J. S. Fu
J. S. Fu
Z. Wang
Z. Wang
Z. Wang
author_facet H. Akimoto
T. Nagashima
N. Kawano
L. Jie
L. Jie
L. Jie
J. S. Fu
J. S. Fu
Z. Wang
Z. Wang
Z. Wang
author_sort H. Akimoto
collection DOAJ
description <p>In order to identify the causes of overestimate of the surface-level O<span class="inline-formula"><sub>3</sub></span> mixing ratio simulated by three regional chemical-transport models, NAQPMS v.3 (abbreviated as NAQM in this paper), CMAQ v.5.0.2, and CMAQ v.4.7.1, compared to the EANET observational data at a marine remote site at Oki in July 2010, analyses of hourly O<span class="inline-formula"><sub>3</sub></span> mixing ratios and net ozone production were made in the context of MICS-Asia III. In addition to Oki, model-simulated and observational data for two other EANET marine sites, Hedo and Ogasawara, were also examined. Three factors, i.e., long-range transport from the continent, in situ photochemical formation, and dry deposition of O<span class="inline-formula"><sub>3</sub></span> on seawater, have been identified as contributing to the overestimate by these regional models at Oki. The calculated O<span class="inline-formula"><sub>3</sub></span> mixing ratios during long-range transport from the continent were much higher for all three models than those of the observation. In situ photochemical formation, demonstrated by a distinct diurnal variation which was not discerned in the observational data, was seen in the simulated data of all three models and ascribed to the virtual transport of NO<span class="inline-formula"><sub><i>x</i></sub></span> from the southern urban areas of the main island of Japan. The overestimate of the O<span class="inline-formula"><sub>3</sub></span> mixing ratio in the background oceanic air mass has been discussed referring to dry deposition velocity (<span class="inline-formula"><i>V</i><sub>d</sub></span>) of O<span class="inline-formula"><sub>3</sub></span> over oceanic water. Sensitivity analysis of the dry deposition velocity to the concentration of O<span class="inline-formula"><sub>3</sub></span> was made for Oki in July. An increase in <span class="inline-formula"><i>V</i><sub>d</sub></span> from 0.0005 to 0.001&thinsp;cm&thinsp;s<span class="inline-formula"><sup>−1</sup></span> used in the standard runs for CMAQ by a factor of 10 decreases the O<span class="inline-formula"><sub>3</sub></span> mixing ratio by more than 20&thinsp;ppbv on an event basis in certain periods of time and by ca. 4.9&thinsp;ppbv as a monthly mean in July. The dry deposition velocity of O<span class="inline-formula"><sub>3</sub></span> in Bohai Bay and the Yellow Sea has been assumed to be comparable to that of the open ocean in all three models, which could have resulted in the overestimate of O<span class="inline-formula"><sub>3</sub></span> mixing ratios in this area and also in the long-range transport of O<span class="inline-formula"><sub>3</sub></span> from the continent to Oki. A higher value of dry deposition velocity in this marine area is expected considering the higher content of organics in the surface sea layer brought by rivers and atmospheric wet deposition. Empirical measurements of the mixing ratios and dry deposition flux of O<span class="inline-formula"><sub>3</sub></span> in this area are highly recommended, since they would affect the simulated mixing ratios in the downwind region in the Pacific Rim region.</p>
first_indexed 2024-12-21T18:30:45Z
format Article
id doaj.art-8154d0e389fb4b129854d2b0a4961e01
institution Directory Open Access Journal
issn 1680-7316
1680-7324
language English
last_indexed 2024-12-21T18:30:45Z
publishDate 2020-12-01
publisher Copernicus Publications
record_format Article
series Atmospheric Chemistry and Physics
spelling doaj.art-8154d0e389fb4b129854d2b0a4961e012022-12-21T18:54:17ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242020-12-0120150031501410.5194/acp-20-15003-2020Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim regionH. Akimoto0T. Nagashima1N. Kawano2L. Jie3L. Jie4L. Jie5J. S. Fu6J. S. Fu7Z. Wang8Z. Wang9Z. Wang10National Institute for Environmental Studies, Onogawa, Tsukuba 305-8506, JapanNational Institute for Environmental Studies, Onogawa, Tsukuba 305-8506, JapanNational Institute for Environmental Studies, Onogawa, Tsukuba 305-8506, JapanThe State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry, Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, ChinaCenter for Excellence in Urban Atmospheric Environment, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, 361021, ChinaCollege of Earth Sciences, University of Chinese Academy of Sciences, Beijing, 100049, ChinaDepartment of Civil and Environmental Engineering, University of Tennessee, Knoxville, TN 37996, USAComputational Earth Sciences Group, Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USAThe State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry, Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, ChinaCenter for Excellence in Urban Atmospheric Environment, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, 361021, ChinaCollege of Earth Sciences, University of Chinese Academy of Sciences, Beijing, 100049, China<p>In order to identify the causes of overestimate of the surface-level O<span class="inline-formula"><sub>3</sub></span> mixing ratio simulated by three regional chemical-transport models, NAQPMS v.3 (abbreviated as NAQM in this paper), CMAQ v.5.0.2, and CMAQ v.4.7.1, compared to the EANET observational data at a marine remote site at Oki in July 2010, analyses of hourly O<span class="inline-formula"><sub>3</sub></span> mixing ratios and net ozone production were made in the context of MICS-Asia III. In addition to Oki, model-simulated and observational data for two other EANET marine sites, Hedo and Ogasawara, were also examined. Three factors, i.e., long-range transport from the continent, in situ photochemical formation, and dry deposition of O<span class="inline-formula"><sub>3</sub></span> on seawater, have been identified as contributing to the overestimate by these regional models at Oki. The calculated O<span class="inline-formula"><sub>3</sub></span> mixing ratios during long-range transport from the continent were much higher for all three models than those of the observation. In situ photochemical formation, demonstrated by a distinct diurnal variation which was not discerned in the observational data, was seen in the simulated data of all three models and ascribed to the virtual transport of NO<span class="inline-formula"><sub><i>x</i></sub></span> from the southern urban areas of the main island of Japan. The overestimate of the O<span class="inline-formula"><sub>3</sub></span> mixing ratio in the background oceanic air mass has been discussed referring to dry deposition velocity (<span class="inline-formula"><i>V</i><sub>d</sub></span>) of O<span class="inline-formula"><sub>3</sub></span> over oceanic water. Sensitivity analysis of the dry deposition velocity to the concentration of O<span class="inline-formula"><sub>3</sub></span> was made for Oki in July. An increase in <span class="inline-formula"><i>V</i><sub>d</sub></span> from 0.0005 to 0.001&thinsp;cm&thinsp;s<span class="inline-formula"><sup>−1</sup></span> used in the standard runs for CMAQ by a factor of 10 decreases the O<span class="inline-formula"><sub>3</sub></span> mixing ratio by more than 20&thinsp;ppbv on an event basis in certain periods of time and by ca. 4.9&thinsp;ppbv as a monthly mean in July. The dry deposition velocity of O<span class="inline-formula"><sub>3</sub></span> in Bohai Bay and the Yellow Sea has been assumed to be comparable to that of the open ocean in all three models, which could have resulted in the overestimate of O<span class="inline-formula"><sub>3</sub></span> mixing ratios in this area and also in the long-range transport of O<span class="inline-formula"><sub>3</sub></span> from the continent to Oki. A higher value of dry deposition velocity in this marine area is expected considering the higher content of organics in the surface sea layer brought by rivers and atmospheric wet deposition. Empirical measurements of the mixing ratios and dry deposition flux of O<span class="inline-formula"><sub>3</sub></span> in this area are highly recommended, since they would affect the simulated mixing ratios in the downwind region in the Pacific Rim region.</p>https://acp.copernicus.org/articles/20/15003/2020/acp-20-15003-2020.pdf
spellingShingle H. Akimoto
T. Nagashima
N. Kawano
L. Jie
L. Jie
L. Jie
J. S. Fu
J. S. Fu
Z. Wang
Z. Wang
Z. Wang
Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
Atmospheric Chemistry and Physics
title Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
title_full Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
title_fullStr Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
title_full_unstemmed Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
title_short Discrepancies between MICS-Asia III simulation and observation for surface ozone in the marine atmosphere over the northwestern Pacific Asian Rim region
title_sort discrepancies between mics asia iii simulation and observation for surface ozone in the marine atmosphere over the northwestern pacific asian rim region
url https://acp.copernicus.org/articles/20/15003/2020/acp-20-15003-2020.pdf
work_keys_str_mv AT hakimoto discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT tnagashima discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT nkawano discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT ljie discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT ljie discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT ljie discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT jsfu discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT jsfu discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT zwang discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT zwang discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion
AT zwang discrepanciesbetweenmicsasiaiiisimulationandobservationforsurfaceozoneinthemarineatmosphereoverthenorthwesternpacificasianrimregion