环境科学
北京
下沉
大气科学
海风
气候学
臭氧
气候变化
空气质量指数
白天
风速
空气污染
海底管道
污染
全球变暖
中国
空气温度
大气不稳定性
气象学
海面温度
大气(单位)
对流层臭氧
风向
行星边界层
构造盆地
城市热岛
作者
Wei Zhu,Zhihao Xu,Zhifeng Yang
标识
DOI:10.1016/j.jclepro.2025.147453
摘要
Different meteorological conditions, particularly wind patterns, between inland and coastal urban environments significantly influence surface ozone (O 3 ) pollution responses to temperature changes, yet comparative studies on ozone-temperature relationships under these distinct meteorological regimes remain limited. This study investigates how these meteorological differences affect ozone-temperature relationships by comparing decade-long monitoring data (2014–2023) from representative inland (Beijing) and coastal (Shanghai) cities using integrated spatiotemporal and three-dimensional wind field analysis. Both inland and coastal cities exhibit positive ozone-temperature correlations during daytime (10:00–17:00) periods (Beijing: R 2 = 0.966, slope = 0.066; Shanghai: R 2 = 0.701, slope = 0.051). However, their nighttime (22:00–05:00) responses differ fundamentally: Beijing maintains positive correlations (R 2 = 0.896, slope = 0.055), while Shanghai exhibits negative correlations (R 2 = 0.557, slope = −0.060). Three-dimensional wind field analysis reveals distinct physical mechanisms underlying these contrasting nighttime responses. In Beijing, rising temperatures induce atmospheric subsidence that suppresses vertical dispersion and enhances surface O 3 accumulation, while in Shanghai, higher temperatures strengthen onshore sea breezes that advect marine air masses with lower O 3 concentrations inland. These findings demonstrate that uniform ozone control policies may be ineffective across different urban types, necessitating geographically-tailored strategies. Under climate warming scenarios, Beijing may experience exacerbated nighttime ozone accumulation, while Shanghai could benefit from enhanced marine air dilution effects, highlighting the critical importance of incorporating local meteorological dynamics into regional air quality management and climate adaptation policies.
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