题名 | A New Coupling Method for PM2.5 Concentration Estimation by the Satellite-Based Semiempirical Model and Numerical Model |
作者 | |
通讯作者 | Li,Ying |
发表日期 | 2022-05-01
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DOI | |
发表期刊 | |
EISSN | 2072-4292
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卷号 | 14期号:10 |
摘要 | Aerosol optical and chemical properties play a major role in the retrieval of PM concentrations based on aerosol optical depth (AOD) data from satellites in the conventional semiempirical model (SEM). However, limited observation information hinders the high-resolution estimation of PM . Therefore, a new method for evaluating near-surface PM at high spatial resolution is developed by coupling the SEM and the chemical transport model (CTM)-based numerical (CSEN) model. The numerical model can provide large-scale information for aerosol properties with high spatial resolution at a large scale based on emissions and meteorology, though it can still be biased in simulating absolute PM concentrations. Therefore, the two crucial aerosol characteristic parameters, including the coefficient integrated humidity effect (γ) and the comprehensive reference value of aerosol properties (K) in SEM, have been redefined using the WRF-Chem numerical model. Improved model performance was observed for these results compared with the original SEM results. The monthly averaged correlation coefficients (R) by CSEN were 0.92, 0.82, 0.84, and 0.83 in January, April, July, and October, respectively, whereas those of the SEM were 0.80, 0.77, 0.72, and 0.72, respectively. All the statistical metrics of the model validation showed significant improvements in all seasons. The reduced biases of estimated PM by CSEN indicated the effect of hygroscopic growth and aerosol properties affected by the meteorology on the relationship between AOD and estimated PM concentrations, especially in winter and summer. The better performance of the CSEN model provides insight for air quality monitoring at different scales, which supplies important information for air pollution control policies and health impact analysis. |
关键词 | |
相关链接 | [Scopus记录] |
收录类别 | |
语种 | 英语
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学校署名 | 通讯
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资助项目 | National Natural Science Foundation of China[41575106];National Natural Science Foundation of China[41961160728];National Natural Science Foundation of China[42105124];National Natural Science Foundation of China[42105124];
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WOS研究方向 | Environmental Sciences & Ecology
; Geology
; Remote Sensing
; Imaging Science & Photographic Technology
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WOS类目 | Environmental Sciences
; Geosciences, Multidisciplinary
; Remote Sensing
; Imaging Science & Photographic Technology
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WOS记录号 | WOS:000803447800001
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出版者 | |
EI入藏号 | 20222112159851
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EI主题词 | Aerosols
; Air quality
; Atmospheric movements
; Image resolution
; Meteorology
; Numerical methods
; Quality control
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EI分类号 | Atmospheric Properties:443.1
; Air Pollution Control:451.2
; Quality Assurance and Control:913.3
; Mathematics:921
; Numerical Methods:921.6
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Scopus记录号 | 2-s2.0-85130569377
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来源库 | Scopus
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引用统计 |
被引频次[WOS]:4
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成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/335481 |
专题 | 工学院_海洋科学与工程系 |
作者单位 | 1.School of Environment,Harbin Institute of Technology,Harbin,150059,China 2.Center for Oceanic and Atmospheric Science at SUSTech (COAST),Department of Ocean Sciences and Engineering,Southern University of Science and Technology,Shenzhen,518055,China 3.Southern Marine Science and Engineering Guangdong Laboratory,Guangzhou,510000,China 4.Plateau Atmosphere and Environment Key Laboratory of Sichuan Province,School of Atmospheric Sciences,Chengdu University of Information Technology,Chengdu,610225,China |
第一作者单位 | 海洋科学与工程系 |
通讯作者单位 | 海洋科学与工程系 |
推荐引用方式 GB/T 7714 |
Yuan,Shuyun,Li,Ying,Gao,Jinhui,et al. A New Coupling Method for PM2.5 Concentration Estimation by the Satellite-Based Semiempirical Model and Numerical Model[J]. Remote Sensing,2022,14(10).
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APA |
Yuan,Shuyun,Li,Ying,Gao,Jinhui,&Bao,Fangwen.(2022).A New Coupling Method for PM2.5 Concentration Estimation by the Satellite-Based Semiempirical Model and Numerical Model.Remote Sensing,14(10).
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MLA |
Yuan,Shuyun,et al."A New Coupling Method for PM2.5 Concentration Estimation by the Satellite-Based Semiempirical Model and Numerical Model".Remote Sensing 14.10(2022).
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