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Decrease in Ambient Volatile Organic Compounds During the COVID-19 Lockdown Period in the Pearl River Delta Region, South China

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Date 2022 Feb 12
PMID 35149077
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Abstract

During the COVID-19 lockdown, ambient ozone levels are widely reported to show much smaller decreases or even dramatical increases under substantially reduced precursor NOx levels, yet changes in ambient precursor volatile organic compounds (VOCs) have been scarcely reported during the COVID-19 lockdown, which is an opportunity to examine the impacts of dramatically changing anthropogenic emissions on ambient VOC levels in megacities where ozone formation is largely VOC-limited. In this study, ambient VOCs were monitored online at an urban site in Guangzhou in the Pearl River Delta region before, during, and after the COVID-19 lockdown. The average total mixing ratios of VOCs became 19.1% lower during the lockdown than before, and those of alkanes, alkenes and aromatics decreased by 19.0%, 24.8% and 38.2%, respectively. The levels of light alkanes (C < 6) decreased by only 13.0%, while those of higher alkanes (C ≥ 6) decreased by 67.8% during the lockdown. Disappeared peak VOC levels in morning rush hours and the drop in toluene to benzene ratios during the lockdown suggested significant reductions in vehicle exhaust and industrial solvent emissions. Source apportioning by positive matrix factorization model revealed that reductions in industrial emissions, diesel exhaust (on-road diesel vehicles and off-road diesel engines) and gasoline-related emissions could account for 48.9%, 42.2% and 8.8%, respectively, of the decreased VOC levels during the lockdown. Moreover, the reduction in industrial emissions could explain 56.0% and 70.0% of the reductions in ambient levels of reactive alkenes and aromatics, respectively. An average increase in O-1 h by 17% and a decrease in the daily maximum 8-h average ozone by 11% under an average decrease in NOx by 57.0% and a decrease in VOCs by 19.1% during the lockdown demonstrated that controlling emissions of precursors VOCs and NOx to prevent ambient O pollution in megacities such as Guangzhou remains a highly challenging task.

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References
1.
Li L, Li Q, Huang L, Wang Q, Zhu A, Xu J . Air quality changes during the COVID-19 lockdown over the Yangtze River Delta Region: An insight into the impact of human activity pattern changes on air pollution variation. Sci Total Environ. 2020; 732:139282. PMC: 7211667. DOI: 10.1016/j.scitotenv.2020.139282. View

2.
Chen K, Wang M, Huang C, Kinney P, Anastas P . Air pollution reduction and mortality benefit during the COVID-19 outbreak in China. Lancet Planet Health. 2020; 4(6):e210-e212. PMC: 7220178. DOI: 10.1016/S2542-5196(20)30107-8. View

3.
Zhang Z, Wang X, Zhang Y, Lu S, Huang Z, Huang X . Ambient air benzene at background sites in China's most developed coastal regions: exposure levels, source implications and health risks. Sci Total Environ. 2015; 511:792-800. DOI: 10.1016/j.scitotenv.2015.01.003. View

4.
Xu R, Tang G, Wang Y, Tie X . Analysis of a long-term measurement of air pollutants (2007-2011) in North China Plain (NCP); Impact of emission reduction during the Beijing Olympic Games. Chemosphere. 2016; 159:647-658. DOI: 10.1016/j.chemosphere.2016.06.025. View

5.
Odum J, Jungkamp T, Griffin R, Flagan R, Seinfeld J . The atmospheric aerosol-forming potential of whole gasoline vapor. Science. 1997; 276(5309):96-9. DOI: 10.1126/science.276.5309.96. View