作者
L Xu, JD Crounse, KT Vasquez, H Allen, PO Wennberg, I Bourgeois, SS Brown, P Campuzano-Jost, MM Coggon, JH Crawford, JP DiGangi, GS Diskin, A Fried, EM Gargulinski, JB Gilman, GI Gkatzelis, H Guo, JW Hair, SR Hall, HA Halliday, TF Hanisco, RA Hannun, CD Holmes, LG Huey, JL Jimenez, A Lamplugh, YR Lee, J Liao, J Lindaas, JA Neuman, JB Nowak, J Peischl, DA Peterson, F Piel, D Richter, PS Rickly, MA Robinson, AW Rollins, TB Ryerson, K Sekimoto, V Selimovic, T Shingler, AJ Soja, JMS Clair, DJ Tanner, K Ullmann, PR Veres, J Walega, C Warneke, RA Washenfelder, P Weibring, A Wisthaler, GM Wolfe, CC Womack, RJ Yokelson
发表日期
2021
简介
Wildfires are a substantial but poorly quantified source of tropospheric ozone (O3). Here, to investigate the highly variable O3 chemistry in wildfire plumes, we exploit the in situ chemical characterization of western wildfires during the FIREX-AQ flight campaign and show that O3 production can be predicted as a function of experimentally constrained OH exposure, volatile organic compound (VOC) reactivity, and the fate of peroxy radicals. The O3 chemistry exhibits rapid transition in chemical regimes. Within a few daylight hours, the O3 formation substantially slows and is largely limited by the abundance of nitrogen oxides (NOx). This finding supports previous observations that O3 formation is enhanced when VOC-rich wildfire smoke mixes into NOx-rich urban plumes, thereby deteriorating urban air quality. Last, we relate O3 chemistry to the underlying fire characteristics, enabling a more accurate representation of …
引用总数
学术搜索中的文章
L Xu, JD Crounse, KT Vasquez, H Allen, PO Wennberg… - Science Advances, 2021