Global tropospheric effects of aromatic chemistry with the SAPRC-11 mechanism implemented in GEOS-Chem version 9-02
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Published:2019-01-04
Issue:1
Volume:12
Page:111-130
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ISSN:1991-9603
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Container-title:Geoscientific Model Development
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language:en
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Short-container-title:Geosci. Model Dev.
Author:
Yan YingyingORCID, Cabrera-Perez David, Lin JintaiORCID, Pozzer AndreaORCID, Hu Lu, Millet Dylan B.ORCID, Porter William C., Lelieveld JosORCID
Abstract
Abstract. The Goddard Earth Observing System with chemistry (GEOS-Chem) model has been
updated with the State-wide Air Pollution Research Center version 11 (SAPRC-11) aromatics chemical
mechanism, with the purpose of evaluating global and regional effects of the
most abundant aromatics (benzene, toluene, xylenes) on the chemical species
important for tropospheric oxidation capacity. The model evaluation based on
surface and aircraft observations indicates good agreement for aromatics and
ozone. A comparison between scenarios in GEOS-Chem with simplified aromatic
chemistry (as in the standard setup, with no ozone formation from related
peroxy radicals or recycling of NOx) and with the SAPRC-11 scheme
reveals relatively slight changes in ozone, the hydroxyl radical, and nitrogen
oxides on a global mean basis (1 %–4 %), although remarkable regional
differences (5 %–20 %) exist near the source regions. NOx decreases
over the source regions and increases in the remote troposphere, due mainly
to more efficient transport of peroxyacetyl nitrate (PAN), which is
increased with the SAPRC aromatic chemistry. Model ozone mixing ratios with
the updated aromatic chemistry increase by up to 5 ppb (more than 10 %),
especially in industrially polluted regions. The ozone change is partly due
to the direct influence of aromatic oxidation products on ozone production
rates, and in part to the altered spatial distribution of NOx that
enhances the tropospheric ozone production efficiency. Improved
representation of aromatics is important to simulate the tropospheric oxidation.
Publisher
Copernicus GmbH
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