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Time-resolved analysis of particle emissions from residential biomass combustion Emissions of refractory black carbon, PAHs and organic tracers
- Source :
- Nielsen, I E, Eriksson, A C, Lindgren, R, Martinsson, J, Nystrom, R, Nordin, E Z, Sadiktsis, I, Boman, C, Nojgaard, J K & Pagels, J 2017, ' Time-resolved analysis of particle emissions from residential biomass combustion Emissions of refractory black carbon, PAHs and organic tracers ', Atmospheric Environment, vol. 165, pp. 179-190 . https://doi.org/10.1016/j.atmosenv.2017.06.033, Atmospheric Environment; 165, pp 179-190 (2017)
- Publication Year :
- 2017
-
Abstract
- Time-resolved particle emissions from a conventional wood stove were investigated with aerosol mass spectrometry to provide links between combustion conditions, emission factors, mixing state of refractory black carbon and implications for organic tracer methods. The addition of a new batch of fuel results in low temperature pyrolysis as the fuel heats up, resulting in strong, short-lived, variable emission peaks of organic aerosol-containing markers of anhydrous sugars, such as levoglucosan (fragment at m/z 60). Flaming combustion results in emissions dominated by refractory black carbon co-emitted with minor fractions of organic aerosol and markers of anhydrous sugars. Full cycle emissions are an external mixture of larger organic aerosol-dominated and smaller thinly coated refractory black carbon particles. A very high burn rate results in increased full cycle mass emission factors of 66, 2.7, 2.8 and 1.3 for particulate polycyclic aromatic hydrocarbons, refractory black carbon, total organic aerosol and m/z 60, respectively, compared to nominal burn rate. Polycyclic aromatic hydrocarbons are primarily associated with refractory black carbon-containing particles. We hypothesize that at very high burn rates, the central parts of the combustion zone become air starved, leading to a locally reduced combustion temperature that reduces the conversion rates from polycyclic aromatic hydrocarbons to refractory black carbon. This facilitates a strong increase of polycyclic aromatic hydrocarbons emissions. At nominal burn rates, full cycle emissions based on m/z 60 correlate well with organic aerosol, refractory black carbon and particulate matter. However, at higher burn rates, m/z 60 does not correlate with increased emissions of polycyclic aromatic hydrocarbons, refractory black carbon and organic aerosol in the flaming phase. The new knowledge can be used to advance source apportionment studies, reduce emissions of genotoxic compounds and model the climate impacts of refractory black carbon, such as absorption enhancement by lensing. (C) 2017 The Authors. Published by Elsevier Ltd.
- Subjects :
- Atmospheric Science
010504 meteorology & atmospheric sciences
WOOD COMBUSTION
Meteorologi och atmosfärforskning
Levoglucosan
UNITED-STATES
Residential biomass combustion
010501 environmental sciences
Combustion
01 natural sciences
chemistry.chemical_compound
Black carbon
PAHs
Bioenergy
CHEMICAL-CHARACTERIZATION
Energy Systems
0105 earth and related environmental sciences
General Environmental Science
Waste management
Chemistry
Bioenergi
AEROSOL MASS-SPECTROMETER
Carbon black
Particulates
FINE-PARTICLE
Aerosol
BURNING EMISSIONS
SOURCE APPORTIONMENT
Meteorology and Atmospheric Sciences
Environmental chemistry
SP-AMS
SOOT AEROSOLS
Aerosol mass spectrometry
Pyrolysis
Burn rate
HIGH-RESOLUTION
Subjects
Details
- Language :
- English
- ISSN :
- 13522310
- Database :
- OpenAIRE
- Journal :
- Nielsen, I E, Eriksson, A C, Lindgren, R, Martinsson, J, Nystrom, R, Nordin, E Z, Sadiktsis, I, Boman, C, Nojgaard, J K & Pagels, J 2017, ' Time-resolved analysis of particle emissions from residential biomass combustion Emissions of refractory black carbon, PAHs and organic tracers ', Atmospheric Environment, vol. 165, pp. 179-190 . https://doi.org/10.1016/j.atmosenv.2017.06.033, Atmospheric Environment; 165, pp 179-190 (2017)
- Accession number :
- edsair.doi.dedup.....bb415bee7112676b561aa31bb1f337e2