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Formation of secondary aerosol from emissions of a Euro 6d-compliant gasoline vehicle with a particle filterElectronic supplementary information (ESI) available. See DOI: https://doi.org/10.1039/d3ea00165b

Authors :
Paul, Andreas
Fang, Zheng
Martens, Patrick
Mukherjee, Arya
Jakobi, Gert
Ihalainen, Mika
Kortelainen, Miika
Somero, Markus
Yli-Pirilä, Pasi
Hohaus, Thorsten
Czech, Hendryk
Kalberer, Markus
Sippula, Olli
Rudich, Yinon
Zimmermann, Ralf
Kiendler-Scharr, Astrid
Source :
Environmental Science: Atmospheres; 2024, Vol. 4 Issue: 7 p802-812, 11p
Publication Year :
2024

Abstract

The most recent European regulation, the Euro 6d emission standard, requires all gasoline direct injection (GDI) vehicles to use both a three-way catalyst (TWC) and a gasoline particle filter (GPF) as exhaust aftertreatment. These aftertreatment methods are aimed at reducing NOxand primary particle emissions. However, the formation of secondary organic aerosols (SOAs) from the volatile organic compound (VOC) emissions of a Euro 6d compliant GDI vehicle, factory equipped with a GPF is not yet investigated. Therefore, to explore the SOA formation and effects of the GPF, the exhaust of a Euro 6d compliant GDI vehicle was characterized at 4 different steady state speeds, idling (0 km h−1), 50, 80 and 100 km h−1. The exhaust was oxidised in a photochemical emission aging flow tube reactor (PEAR) by reactions with OH radicals equivalent of 2.2 days of atmospheric day time oxidation. It was found that the GPF completely removes primary particles larger than 10 nm, at all investigated vehicle speeds. However, significant SOA was formed after oxidation, with the highest SOA formation potential per kg fuel consumed at 50 km h−1. The main SOA precursors were determined to be toluene, xylene and trimethyl-benzene which were found to account for at least 50% of SOA formed at all driving speeds. Furthermore, high emissions of ammonia (NH3) could be observed in the exhaust under all driving conditions which resulted in the subsequent formation of ammonium nitrate (NH4NO3) after aging. The formation of NH4NO3additionally facilitated the co-condensation of organic gas phase products after OH oxidation enhancing SOA mass even further.

Details

Language :
English
ISSN :
26343606
Volume :
4
Issue :
7
Database :
Supplemental Index
Journal :
Environmental Science: Atmospheres
Publication Type :
Periodical
Accession number :
ejs66884674
Full Text :
https://doi.org/10.1039/d3ea00165b