Roles of Regional Transport and Vertical Mixing in Aerosol Pollution in Shanghai Over the COVID‐19 Lockdown Period Observed Above Urban Canopy

Author:

Song Zhen1,Gao Wei2,Shen Hongru1ORCID,Jin Yali1ORCID,Zhang Chenqi1,Luo Hao1,Pan Liang2,Yao Bo1,Zhang Yijun13ORCID,Huo Juntao4,Sun Yele5ORCID,Yu Dajiang6ORCID,Chen Hui7ORCID,Chen Jianmin1ORCID,Duan Yusen4,Zhao Defeng189ORCID,Xu Jianming2

Affiliation:

1. Department of Atmospheric and Oceanic Sciences & Institute of Atmospheric Sciences Fudan University Shanghai China

2. Yangtze River Delta Center for Environmental Meteorology Prediction and Warning Shanghai China

3. Shanghai Institute of Pollution Control and Ecological Security Shanghai China

4. Shanghai Environmental Monitoring Center Shanghai China

5. State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry Institute of Atmospheric Physics Chinese Academy of Sciences Beijing China

6. Longfengshan Regional Background Station China Meteorological Administration (CMA) Harbin China

7. Key Laboratory of Organic Compound Pollution Control Engineering School of Environmental and Chemical Engineering Shanghai University Shanghai China

8. Shanghai Frontiers Science Center of Atmosphere‐Ocean Interaction Fudan University Shanghai China

9. Institute of Eco‐Chongming (IEC) Shanghai China

Abstract

AbstractRegional transport and vertical mixing are important for aerosol pollution of megacities, but their roles are often challenging to assess via ground observations. In this study, we measured aerosol chemical composition simultaneously above urban canopy (Shanghai Tower, 609 m), a site representative of aerosols from regional scale, and a nearby ground site and investigated the roles of regional transport and vertical mixing over 2020 COVID‐19 lockdown period (1 January to 18 April), when local emissions were first drastically reduced and then recovered. During the lockdown period, regional transport was the major source of most aerosol species (organics, NO3, SO42−, and NH4+) at both heights according to the high correlation coefficients (R = 0.81–0.87) between both heights. Correlation coefficients and vertical ratios (609 m/ground) of most aerosol components showed similar diurnal variations with the evolution of planetary boundary layer height, indicating the role of vertical mixing in aerosol pollution. Moreover, the concentrations of aerosol components at 609 m generally preceded those at ground level by 1–2 hr, indicating that aerosols were first transported at upper boundary layer, and then were mixed downwards to ground level. At 609 m, highly oxidized oxygenated organic aerosol (OOA; a surrogate of secondary organic aerosol (SOA)) dominated in organic aerosol (≥75%). The high correlations (R = 0.96) between OOA and hydrocarbon‐like organic aerosol (HOA; a surrogate of primary organic aerosol (POA)) at 609 m indicated that they originated similarly from regional transport. This study highlights the importance of regional joint prevention and control of pollutant emissions and observation above urban canopy.

Funder

Science and Technology Commission of Shanghai Municipality

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geophysics

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