001     902274
005     20240712101010.0
024 7 _ |a 10.5194/egusphere-egu21-10203
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024 7 _ |a 2128/28921
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037 _ _ |a FZJ-2021-04137
100 1 _ |a Rosanka, Simon
|0 P:(DE-Juel1)173788
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|e Corresponding author
111 2 _ |a EGU General Assembly 2021
|c Online
|d 2021-04-19 - 2021-04-30
|w
245 _ _ |a Organic pollutants from Indonesian peatland fires: regional influences and its impact on lower the stratospheric composition
260 _ _ |c 2021
336 7 _ |a Conference Paper
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520 _ _ |a

In 2015, the particularly strong dry season in Indonesia, caused by an exceptional strong El Niño, led to severe peatland fires. Due to the high carbon content of peatland, these fires are characterised by high volatile organic compound (VOC) biomass burning emissions. The resulting primary and secondary pollutants are efficiently transported to the upper troposphere/lower stratosphere (UTLS) by the developing Asian monsoon anticyclone (ASMA) and the general upward transport in the intertropical convergence zone (ITCZ). In this study, we assess the importance of these VOC emissions for the composition of the lower troposphere and the UTLS by performing multiple chemistry simulations using the global atmospheric model ECHAM/MESSy (EMAC). In a first step, we find that EMAC properly captures the exceptional strength of the Indonesian fires based on the comparison of modelled columns of the biomass burning marker hydrogen cyanide (HCN) to spaceborne measurements from the Infrared Atmospheric Sounding Interferometer (IASI). In the lower troposphere, the increase in VOC levels is higher in Indonesia compared to other biomass burning regions. This directly impacts the oxidation capacity and leads to a high reduction in hydroxyl radicals (OH) and nitrogen oxides (NOx). In general, an increase in ozone (O3) is predicted close to the peatland fires. However, particular high concentrations of phenols lead to an O3 depletion in eastern Indonesia. By employing the detailed in-cloud OVOC oxidation scheme Jülich Aqueous-phase Mechanism of Organic Chemistry (JAMOC), we find that the predicted changes are dampened and that by ignoring these processes, global models tend to overestimate the impact of such extreme pollution events. The upward transport in the ASMA and the ITCZ leads to elevated VOC concentrations in the UTLS region. This also results in a depletion of lower stratospheric O3. We find that this is caused by a high destruction of O3 by phenoxy radicals and by the increased formation of NOx reservoir species, which dampen the chemical production of O3.


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700 1 _ |a Franco, Bruno
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700 1 _ |a Clarisse, Lieven
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700 1 _ |a Coheur, Pierre-François
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700 1 _ |a Wahner, Andreas
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700 1 _ |a Taraborrelli, Domenico
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773 _ _ |a 10.5194/egusphere-egu21-10203
856 4 _ |u https://juser.fz-juelich.de/record/902274/files/EGU21-10203-print.pdf
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913 1 _ |a DE-HGF
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|v Die Atmosphäre im globalen Wandel
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914 1 _ |y 2021
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