A Comparative Investigation of the Characteristics of Nocturnal Ozone Enhancement Events and Their Effects on Ground-Level Ozone and PM2.5 in the Central City of the Yellow River Delta, China, in 2022 and 2023
Abstract
:1. Introduction
2. Materials and Methods
2.1. Observation Period and Location
2.2. Relevant Definitions
2.3. Data Processing
2.3.1. Annual Frequency of NOE Events
2.3.2. Transformation Rate of Nitrates and Sulfates
2.3.3. Calculation of Secondary Organic Carbon
3. Results and Discussion
3.1. Characteristics of Nocturnal Ozone Concentration in Dongying
3.1.1. Inter-Annual and Inter-Monthly Variations
3.1.2. Diurnal Variation
3.2. Characteristics of Nocturnal Ozone Enhancement Events in Dongying
3.2.1. Frequency Characteristics
3.2.2. Characteristics of Nocturnal Ozone Peak and Ozone Increase Magnitude
3.3. Effects of Nocturnal Ozone Enhancement Events on Ozone and PM2.5 Concentrations in Dongying
3.3.1. Diurnal Variations in Ozone and Other Air Pollutants during Different Seasons
3.3.2. Effects on Ozone and Atmospheric Oxidation at Night and the Next Day
3.3.3. Effects on PM2.5 Concentration and Secondary Components at Night and the Next Day
4. Conclusions
- (1)
- From 2022 to 2023, the annual average nocturnal ozone concentration in Dongying increased from 51 μg/m3 to 59 μg/m3. The different percentile values of the nocturnal ozone concentrations also showed an increase in these two years, with the most notable increases observed in the high and middle percentiles. The nocturnal ozone concentrations were higher during the ozone pollution seasons and lower during the non-ozone pollution seasons. Compared with 2022, the nocturnal ozone concentration increased most apparently in the spring and summer of 2023.
- (2)
- For 2022 and 2023, the annual average frequencies of NOE events in Dongying were 44% and 43%, respectively. The frequency of NOE events was higher in the spring, summer, and autumn and lower in the winter. The diurnal variation characteristics of the frequency of NOE events were generally similar in both 2022 and 2023, featuring a higher frequency from 2:00 to 4:00 and a lower frequency from 21:00 to 1:00 the next day.
- (3)
- The NOE events exhibited an obvious promoting effect on nocturnal O3, Ox, and MDA8-O3 on the same day in Dongying from 2022 to 2023, with a more noticeable increase observed during the summer and autumn. The NOE events also had a distinct effect on the O3, Ox, and MDA8-O3 of the next day, with the most conspicuous effect observed in summer. In terms of government control, it is essential to assess the ozone pollution status of the next day based on the characteristics of nocturnal ozone changes. Moreover, the NOE events had evident effects on the nocturnal concentrations of PM2.5 and PM2.5-bounded NO3− and SO42−, with the impact being most apparent in the winter. However, the NOE events had no conspicuous impact on the concentrations of PM2.5, PM2.5-bounded NO3−, PM2.5-bounded SO42−, and SOC on the next day.
- (4)
- NOE events have distinct effects on the concentrations of O3, Ox, MDA8-O3, PM2.5, and PM2.5-bounded NO3− and SO42−. This implies that NOE events can improve atmospheric oxidation capacity and promote the formation of PM2.5 and its secondary components, which have a certain impact on air quality. Consequently, increased attention should be given to the occurrence of NOE events and the challenges brought by NOE to the coordinated control of PM2.5 and O3. More sophisticated methods should be employed to investigate the impact of NOE on atmospheric oxidation capacity and PM2.5, along with its secondary components in the future. Additionally, given the increasing prevalence of human nocturnal activities, it is imperative to delve into the repercussions of NOE on human health and biological growth.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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2022 | 2023 | |
---|---|---|
January | 29% | 32% |
February | 46% | 36% |
March | 58% | 55% |
April | 43% | 47% |
May | 55% | 42% |
June | 47% | 53% |
July | 32% | 23% |
August | 39% | 58% |
September | 63% | 47% |
October | 42% | 61% |
November | 47% | 33% |
December | 23% | 32% |
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An, C.; Yan, Y.; Gao, X.; Yan, X.; Ji, Y.; Shang, F.; Li, J.; Tan, L.; Gao, R.; Bi, F.; et al. A Comparative Investigation of the Characteristics of Nocturnal Ozone Enhancement Events and Their Effects on Ground-Level Ozone and PM2.5 in the Central City of the Yellow River Delta, China, in 2022 and 2023. Atmosphere 2024, 15, 475. https://doi.org/10.3390/atmos15040475
An C, Yan Y, Gao X, Yan X, Ji Y, Shang F, Li J, Tan L, Gao R, Bi F, et al. A Comparative Investigation of the Characteristics of Nocturnal Ozone Enhancement Events and Their Effects on Ground-Level Ozone and PM2.5 in the Central City of the Yellow River Delta, China, in 2022 and 2023. Atmosphere. 2024; 15(4):475. https://doi.org/10.3390/atmos15040475
Chicago/Turabian StyleAn, Cong, Yongxin Yan, Xiaoshuai Gao, Xiaoyu Yan, Yuanyuan Ji, Fanyi Shang, Jidong Li, Luyao Tan, Rui Gao, Fang Bi, and et al. 2024. "A Comparative Investigation of the Characteristics of Nocturnal Ozone Enhancement Events and Their Effects on Ground-Level Ozone and PM2.5 in the Central City of the Yellow River Delta, China, in 2022 and 2023" Atmosphere 15, no. 4: 475. https://doi.org/10.3390/atmos15040475
APA StyleAn, C., Yan, Y., Gao, X., Yan, X., Ji, Y., Shang, F., Li, J., Tan, L., Gao, R., Bi, F., & Li, H. (2024). A Comparative Investigation of the Characteristics of Nocturnal Ozone Enhancement Events and Their Effects on Ground-Level Ozone and PM2.5 in the Central City of the Yellow River Delta, China, in 2022 and 2023. Atmosphere, 15(4), 475. https://doi.org/10.3390/atmos15040475