Hyun-Young Jo , Hyo-Jung Lee , Gookyoung Heo , Cheol-Hee Kim
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引用次数: 0
Abstract
Heterogeneous dinitrogen pentoxide (N2O5) is an important reactive intermediate in the atmospheric nighttime oxidization of nitrogen oxides and in the formation of nitrate (NO3−) aerosols. However, vertical profiles of N2O5-related chemical species over Seoul Metropolitan Area (SMA) are currently lacking. In this study, the Weather Research and Forecasting-Community Multiscale Air Quality (WRF-CMAQ) model was employed and simulated vertical profiles of nighttime N2O5-related chemical species to facilitate aircraft-based campaigns over the SMA. The vertical structures of the NO3 radical (NO3•) and N2O5 were assessed during the meteorologically stagnant period (March 16–17, 2016), which was a typical period of nighttime N2O5-driven NO3− formation in the study region. The results showed that nighttime vertical structures exhibiting higher concentrations of N2O5-related chemical species were strongly associated with the nocturnal residual layer (RL), which was decoupled from the ground. Our model showed diminished nighttime NO3• at the ground but active NO3• aloft, as it was retained in the RL. We also carried out the same analysis for the stagnant period (May 16–22, 2016) during the KORUS-AQ campaign, and confirmed the similar profiles of high concentration of NO3• near the altitude of RL. To sum up the cases from this study and KORUS-AQ campaign study, maximum nighttime NO3• and N2O5 concentrations occurred at heights of 78 ± 11% of RL height and 54 ± 15% of RL height, respectively. Although further research on nighttime N2O5 chemistry is needed to resolve outstanding uncertainties, the vertical structures of nighttime N2O5-related chemical species obtained in this study offer useful reference data for future aircraft campaigns.
期刊介绍:
Atmospheric Environment has an open access mirror journal Atmospheric Environment: X, sharing the same aims and scope, editorial team, submission system and rigorous peer review.
Atmospheric Environment is the international journal for scientists in different disciplines related to atmospheric composition and its impacts. The journal publishes scientific articles with atmospheric relevance of emissions and depositions of gaseous and particulate compounds, chemical processes and physical effects in the atmosphere, as well as impacts of the changing atmospheric composition on human health, air quality, climate change, and ecosystems.