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Vertical Profiling of PM1 and PM2.5 Dynamics: UAV-Based Observations in Seasonal Urban Atmosphere

文献类型: 外文期刊

作者: Zhao, Zhen 1 ; Pang, Yuting 2 ; Qi, Bing 3 ; Zhang, Chi 4 ; Yang, Ming 4 ; Ye, Xuezhu 1 ;

作者机构: 1.Zhejiang Acad Agr Sci, Inst Environm Resources, State Key Lab Qual & Safety Agroprod, Key Lab Soil Remediat & Qual Improvement Zhejiang, Hangzhou 310021, Peoples R China

2.Zhejiang Inst Meteorol Sci, Zhejiang Linan Atmospher Background Natl Observat, Hangzhou 311300, Peoples R China

3.Hangzhou Meteorol Bur, Hangzhou 310051, Peoples R China

4.Zhejiang Meteorol Informat Network Ctr, Hangzhou 310052, Peoples R China

关键词: PM1 and PM2.5; seasonal and diurnal distribution; vertical profiling; transport and formation mechanisms; unmanned aerial vehicle

期刊名称:ATMOSPHERE ( 影响因子:2.3; 五年影响因子:2.5 )

ISSN:

年卷期: 2025 年 16 卷 8 期

页码:

收录情况: SCI

摘要: Urban particulate matter (PM) pollution critically impacts public health and climate. However, traditional ground-based monitoring fails to resolve vertical PM distribution, limiting understanding of transport and stratification-coupled mechanisms. Vertical profiles collected by an unmanned aerial vehicle (UAV) over Hangzhou, a core megacity in China's Yangtze River Delta, reveal the spatiotemporal heterogeneity and multi-scale drivers of regional PM pollution during two intensive ten-day campaigns capturing peak pollution scenarios (winter: 17-26 January 2019; summer: 21-30 August 2019). Results show stark seasonal differences: winter PM1 and PM2.5 averages were 2.6- and 2.7-fold higher (p < 0.0001) than summer. Diurnal patterns were bimodal in winter and unimodal (single valley) in summer. Vertically consistent PM1 and PM2.5 distributions featured sharp morning (08:00) concentration increases within specific layers (winter: 250-325 m; summer: 350-425 m). Analysis demonstrates multi-scale coupling of synoptic systems, boundary layer processes, and vertical wind structure governing pollution. Key mechanisms include a winter "Transport-Accumulation-Reactivation" cycle driven by cold air, and summer typhoon circulation influences. We identify hygroscopic growth triggered by inversion-high humidity coupling and sea-breeze-driven secondary aerosol formation. Leveraging UAV-based vertical profiling over Hangzhou, this study pioneers a three-dimensional dissection of layer-coupled PM dynamics in the Yangtze River Delta, offering a scalable paradigm for aerial-ground networks to achieve precision stratified control strategies in megacities.

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