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Temporal Characteristics of Ozone (O3) in the Representative City of the Yangtze River Delta

Explanatory Factors and Sensitivity Analysis

Bibliographic Data

ID15499786
AuthorsYu Lu (0000-0002-5128-6868, Zhejiang University of Technology), Zhentao Wu (0000-0002-4934-8046, Zhejiang University of Technology), Xiaobing Pang (0000-0001-6974-6722, Zhejiang University of Technology, corresponding author), Hai Wu (0009-0000-8967-5933, National Institute of Metrology), Wu Hai (0000-0002-7057-7169, National Institute of Metrology, corresponding author), Bo Xing (0000-0003-2386-2570, Shaoxing Ecological and Environmental Monitoring Center of Zhejiang Province, Shaoxing 312000, China), Jingjing Li (0009-0006-0033-1522, Shaoxing Ecological and Environmental Monitoring Center of Zhejiang Province, Shaoxing 312000, China), Qiaoming Xiang (Shaoxing Ecological and Environmental Monitoring Center of Zhejiang Province, Shaoxing 312000, China), Jianmeng Chen (0000-0002-0186-9168, Zhejiang University of Technology), Dongfeng Shi (0000-0001-8728-5683, Hangzhou Xufu Detection Technology Co., Ltd., Hangzhou 310023, China)
Year2022
Volume20
Issue1
Pages168-168
Publication date2022-12-22
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueInternational Journal of Environmental Research and Public Health (JOURNAL)
Journal identifiersISSN: 1661-7827 • E-ISSN: 1660-4601
PublisherMultidisciplinary Digital Publishing Institute (PUBLISHER • CH)
DOI10.3390/ijerph20010168
PMID36612488
OpenAlexW4313414212
LanguageEN
References cited46

Ozone (O 3 ) has attracted considerable attention due to its harmful effects on the ecosystem and human health. The Yangtze River Delta (YRD), China in particular has experienced severe O 3 pollution in recent years. Here, we conducted a long-term observation of O 3 in YRD to reveal its characteristics. The O 3 concentration in autumn was the highest at 72.76 ppb due to photochemical contribution and local convection patterns, with its lowest value of 2.40 ppb in winter. O 3 exhibited strong diurnal variations, showing the highest values in the early afternoon (15:00-16:00) and the minimum in 07:00-08:00, specifically, peroxyacetyl nitrate (PAN) showed similar variations to O 3 but PAN peak usually occurred 1 h earlier than that of O 3 due to PAN photolysis. A generalized additive model indicated that the key factors to O 3 formation were NO 2 , PAN, and temperature. It was found that a certain temperature rise promoted O 3 formation, whereas temperatures above 27 °C inhibited O 3 formation. An observation-based model showed O 3 formation was VOCs-limited in spring and winter, was NO x -limited in summer, and even controlled by both VOCs and NO x in autumn. Thus, prevention and control strategies for O 3 in the YRD are strongly recommended to be variable for each season based on various formation mechanisms

Atmospheric sciences · Biology · China · Climatology · Delta · Geography · Meteorology · Nitrate · NOx · Ozone · Peroxyacetyl nitrate · Yangtze river · Air Quality and Health Impacts · Air Quality Monitoring and Forecasting · Atmospheric chemistry and aerosols · Chemistry · Environmental Science · Ecology · Environmental Chemistry · Pollution

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