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Secondary organic aerosol formation from straw burning using an oxidation flow reactor. | LitMetric

Secondary organic aerosol formation from straw burning using an oxidation flow reactor.

J Environ Sci (China)

Department of Chemistry and Molecular Biology, Atmospheric Science, University of Gothenburg, SE-412 96 Gothenburg, Sweden.

Published: April 2022

AI Article Synopsis

  • The study utilized a Go: PAM reactor to explore how burning wheat straw creates secondary organic aerosols (SOA) by simulating atmospheric oxidation over up to 2.55 days.
  • The research found that higher water content in wheat straw significantly increased primary particle emission factors during flaming stages, while the non-flaming stages showed little variation with water content.
  • Overall, the study indicated that the enhancement ratios of organic aerosols increased initially with hydroxyl radical exposure before declining, highlighting a significant gap in accurately estimating biomass burning SOA when only considering VOC oxidation.

Article Abstract

Herein, we use an oxidation flow reactor, Gothenburg: Potential Aerosol Mass (Go: PAM) reactor, to investigate the secondary organic aerosol (SOA) formation from wheat straw burning. Biomass burning emissions are exposed to high concentrations of hydroxyl radicals (OH) to simulate processes equivalent to atmospheric oxidation of 0-2.55 days. Primary volatile organic compounds (VOCs) were investigated, and particles were measured before and after the Go: PAM reactor. The influence of water content (i.e. 5% and 11%) in wheat straw was also explored. Two burning stages, the flaming stage, and non-flaming stages, were identified. Primary particle emission factors (EFs) at a water content of 11% (∼3.89 g/kg-fuel) are significantly higher than those at a water content of 5% (∼2.26 g/kg-fuel) during the flaming stage. However, the water content showed no significant influence at the non-flaming stage. EFs of aromatics at a non-flaming stage (321.8±46.2 mg/kg-fuel) are larger than that at a flaming stage (130.9±37.1 mg/kg-fuel). The OA enhancement ratios increased with the increase in OH exposure at first and decreased with the additional increment of OH exposure. The maximum OA enhancement ratio is ∼12 during the non-flaming stages, which is much higher than ∼ 1.7 during the flaming stages. The mass spectrum of the primary wheat burning organic aerosols closely resembles that of resolved biomass burning organic aerosols (BBOA) based on measurements in ambient air. Our results show that large gap (∼60%-90%) still remains to estimate biomass burning SOA if only the oxidation of VOCs were included.

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Source
http://dx.doi.org/10.1016/j.jes.2021.08.049DOI Listing

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