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Tytuł pozycji:

Tropospheric ozone production and chemical regime analysis during the COVID-19 lockdown over Europe

Tytuł:
Tropospheric ozone production and chemical regime analysis during the COVID-19 lockdown over Europe
Autorzy:
C. M. Nussbaumer
A. Pozzer
I. Tadic
L. Röder
F. Obersteiner
H. Harder
J. Lelieveld
H. Fischer
Temat:
Physics
QC1-999
Chemistry
QD1-999
Źródło:
Atmospheric Chemistry and Physics, Vol 22, Pp 6151-6165 (2022)
Wydawca:
Copernicus Publications, 2022.
Rok publikacji:
2022
Kolekcja:
LCC:Physics
LCC:Chemistry
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
English
ISSN:
1680-7316
1680-7324
Relacje:
https://acp.copernicus.org/articles/22/6151/2022/acp-22-6151-2022.pdf; https://doaj.org/toc/1680-7316; https://doaj.org/toc/1680-7324
DOI:
10.5194/acp-22-6151-2022
Dostęp URL:
https://doaj.org/article/dbbb06fff0b443e8a093247e7e77c0b9  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.bbb06fff0b443e8a093247e7e77c0b9
Czasopismo naukowe
The COVID-19 (coronavirus disease 2019) European lockdowns have led to a significant reduction in the emissions of primary pollutants such as NO (nitric oxide) and NO2 (nitrogen dioxide). As most photochemical processes are related to nitrogen oxide (NOx≡ NO + NO2) chemistry, this event has presented an exceptional opportunity to investigate its effects on air quality and secondary pollutants, such as tropospheric ozone (O3). In this study, we present the effects of the COVID-19 lockdown on atmospheric trace gas concentrations, net ozone production rates (NOPRs) and the dominant chemical regime throughout the troposphere based on three different research aircraft campaigns across Europe. These are the UTOPIHAN (Upper Tropospheric Ozone: Processes Involving HOx and NOx) campaigns in 2003 and 2004, the HOOVER (HOx over Europe) campaigns in 2006 and 2007, and the BLUESKY campaign in 2020, the latter performed during the COVID-19 lockdown. We present in situ observations and simulation results from the ECHAM5 (fifth-generation European Centre Hamburg general circulation model, version 5.3.02)/MESSy2 (second-generation Modular Earth Submodel System, version 2.54.0) Atmospheric Chemistry (EMAC), model which allows for scenario calculations with business-as-usual emissions during the BLUESKY campaign, referred to as the “no-lockdown scenario”. We show that the COVID-19 lockdown reduced NO and NO2 mixing ratios in the upper troposphere by around 55 % compared to the no-lockdown scenario due to reduced air traffic. O3 production and loss terms reflected this reduction with a deceleration in O3 cycling due to reduced mixing ratios of NOx, while NOPRs were largely unaffected. We also study the role of methyl peroxyradicals forming HCHO (αCH3O2) to show that the COVID-19 lockdown shifted the chemistry in the upper-troposphere–tropopause region to a NOx-limited regime during BLUESKY. In comparison, we find a volatile organic compound (VOC)-limited regime to be dominant during UTOPIHAN.

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