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Time-resolved characterization of primary particle emissions and secondary particle formation from a modern gasoline passenger car

Karjalainen, Panu; Timonen, Hilkka; Saukko, Erkka; Kuuluvainen, Heino; Saarikoski, Sanna; Aakko-Saksa, Päivi; Murtonen, Timo; Bloss, Matthew; Dal Maso, Miikka; Simonen, Pauli; Ahlberg, Erik; Svenningsson, Birgitta; Brune, William Henry; Hillamo, Risto; Keskinen, Jorma; Rönkkö, Topi (2016-07-14)

 
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Karjalainen, Panu
Timonen, Hilkka
Saukko, Erkka
Kuuluvainen, Heino
Saarikoski, Sanna
Aakko-Saksa, Päivi
Murtonen, Timo
Bloss, Matthew
Dal Maso, Miikka
Simonen, Pauli
Ahlberg, Erik
Svenningsson, Birgitta
Brune, William Henry
Hillamo, Risto
Keskinen, Jorma
Rönkkö, Topi
14.07.2016

Atmospheric Chemistry and Physics
doi:10.5194/acp-16-8559-2016
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi:tty-201608154411

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Peer reviewed
Tiivistelmä
<p>Changes in vehicle emission reduction technologies significantly affect traffic-related emissions in urban areas. In many densely populated areas the amount of traffic is increasing, keeping the emission level high or even increasing. To understand the health effects of traffic-related emissions, both primary (direct) particulate emission and secondary particle formation (from gaseous precursors in the exhaust emissions) need to be characterized. In this study, we used a comprehensive set of measurements to characterize both primary and secondary particulate emissions of a Euro 5 level gasoline passenger car. Our aerosol particle study covers the whole process chain in emission formation, from the tailpipe to the atmosphere, and also takes into account differences in driving patterns. We observed that, in mass terms, the amount of secondary particles was 13 times higher than the amount of primary particles. The formation, composition, number and mass of secondary particles was significantly affected by driving patterns and engine conditions. The highest gaseous and particulate emissions were observed at the beginning of the test cycle when the performance of the engine and the catalyst was below optimal. The key parameter for secondary particle formation was the amount of gaseous hydrocarbons in primary emissions; however, also the primary particle population had an influence.</p>
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