Transformation of logwood combustion emissions in a smog chamber: formation of secondary organic aerosol and changes in the primary organic aerosol upon daytime and nighttime aging
Organic aerosols (OA) derived from small-scale wood combustion emissions are not well represented by current emissions inventories and models, although they contribute substantially to the atmospheric particulate matter (PM) levels. In this work, a 29 m<sup>3</sup> smog chamber in th...
| 发表在: | Atmospheric Chemistry and Physics |
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| Main Authors: | , , , , , , , , , , , , , , , , , , , , , |
| 格式: | 文件 |
| 语言: | 英语 |
| 出版: |
Copernicus Publications
2016-10-01
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| 在线阅读: | https://www.atmos-chem-phys.net/16/13251/2016/acp-16-13251-2016.pdf |
| 总结: | Organic aerosols (OA) derived from small-scale wood
combustion emissions are not well represented by current emissions
inventories and models, although they contribute substantially to the
atmospheric particulate matter (PM) levels. In this work, a 29 m<sup>3</sup> smog
chamber in the ILMARI facility of the University of Eastern Finland was
utilized to investigate the formation of secondary organic aerosol (SOA)
from a small-scale modern masonry heater commonly used in northern Europe.
Emissions were oxidatively aged in the smog chamber for a variety of dark
(i.e., O<sub>3</sub> and NO<sub>3</sub>) and UV (i.e., OH) conditions, with OH
concentration levels of (0.5–5) × 10<sup>6</sup> molecules cm<sup>−3</sup>,
achieving equivalent atmospheric aging of up to 18 h. An aerosol mass
spectrometer characterized the direct OA emissions and the SOA formed from
the combustion of three wood species (birch, beech and spruce) using two
ignition processes (fast ignition with a VOC-to-NO<sub><i>x</i></sub> ratio of 3 and slow
ignition with a ratio of 5).<br><br>Dark and UV aging increased the SOA mass fraction with average SOA
productions 2.0 times the initial OA mass loadings. SOA enhancement was
found to be higher for the slow ignition compared with fast ignition
conditions. Positive matrix factorization (PMF) was used to separate SOA,
primary organic aerosol (POA) and their subgroups from the total OA mass spectra. PMF analysis
identified two POA and three SOA factors that correlated with the three
major oxidizers: ozone, the nitrate radical and the OH radical.
Organonitrates (ONs) were observed to be emitted directly from the wood
combustion and additionally formed during oxidation via NO<sub>3</sub> radicals
(dark aging), suggesting small-scale wood combustion may be a significant ON
source. POA was oxidized after the ozone addition, forming aged POA, and
after 7 h of aging more than 75 % of the original POA was transformed.
This process may involve evaporation and homogeneous gas-phase oxidation as
well as heterogeneous oxidation of particulate organic matter. The results
generally prove that logwood burning emissions are the subject of intensive
chemical processing in the atmosphere, and the timescale for these
transformations is relatively short, i.e., hours. |
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| ISSN: | 1680-7316 1680-7324 |
