New Insights Into Scavenging Effect of Aerosol Species During Summer Rainfall Process in Beijing
暂无分享,去创建一个
Zifa Wang | Yele Sun | Qingqing Wang | Xiaole Pan | Xiujuan Zhao | Congzheng Han | Y. Bi | Lu Lei | Jiaxing Sun | Zhijie Li | Yan Li | Aodong Du
[1] Zifa Wang,et al. Vertically Resolved Aerosol Chemistry in the Low Boundary Layer of Beijing in Summer. , 2022, Environmental science & technology.
[2] Y. Miyamoto,et al. PM2.5 decrease with precipitation as revealed by single‐point ground‐based observation , 2022, Atmospheric Science Letters.
[3] Yuanhang Zhang,et al. Multi-scale analysis of the impacts of meteorology and emissions on PM2.5 and O3 trends at various regions in China from 2013 to 2020 2. Key weather elements and emissions. , 2022, The Science of the total environment.
[4] Wei Zhou,et al. Unexpected Increases of Severe Haze Pollution During the Post COVID‐19 Period: Effects of Emissions, Meteorology, and Secondary Production , 2022, Journal of Geophysical Research: Atmospheres.
[5] Wei Zhou,et al. Supplementary material to "Measurement report: Long-term changes in black carbon and aerosol optical properties from 2012 to 2020 in Beijing, China" , 2021, Atmospheric Chemistry and Physics.
[6] Jianping Huang,et al. Long-term variation of boundary layer height and possible contribution factors: A global analysis. , 2021, The Science of the total environment.
[7] Guang J. Zhang,et al. What rainfall rates are most important to wet removal of different aerosol types? , 2021, Atmospheric Chemistry and Physics.
[8] Q. Xiao,et al. Separating emission and meteorological contributions to long-term PM2.5 trends over eastern China during 2000–2018 , 2021, Atmospheric Chemistry and Physics.
[9] Hailong Wang,et al. Aerosol responses to precipitation along North American air trajectories arriving at Bermuda , 2021, Atmospheric chemistry and physics.
[10] Zifa Wang,et al. Inter-annual variations of wet deposition in Beijing from 2014–2017: implications of below-cloud scavenging of inorganic aerosols , 2021, Atmospheric Chemistry and Physics.
[11] Haonan Chen,et al. Microphysical Characteristics of Rainfall Observed by a 2DVD Disdrometer during Different Seasons in Beijing, China , 2021, Remote. Sens..
[12] Baofeng Ji,et al. Characteristics of Rain-Induced Attenuation over Signal Links at Frequency Ranges of 25 and 38 GHz Observed in Beijing , 2021, Remote. Sens..
[13] Xiaohong Liu,et al. Disproportionate control on aerosol burden by light rain , 2021, Nature Geoscience.
[14] T. Zhao,et al. Importance of regional PM2.5 transport and precipitation washout in heavy air pollution in the Twain-Hu Basin over Central China: Observational analysis and WRF-Chem simulation. , 2020, The Science of the total environment.
[15] Chuanfeng Zhao,et al. Impact of Precipitation with Different Intensity on PM2.5 over Typical Regions of China , 2020, Atmosphere.
[16] D. Qin,et al. PM2.5 and O3 pollution during 2015-2019 over 367 Chinese cities: Spatiotemporal variations, meteorological and topographical impacts. , 2020, Environmental pollution.
[17] Zifa Wang,et al. Multi-method determination of the below-cloud wet scavenging coefficients of aerosols in Beijing, China , 2019 .
[18] Jiming Hao,et al. Drivers of improved PM2.5 air quality in China from 2013 to 2017 , 2019, Proceedings of the National Academy of Sciences.
[19] Z. Ma,et al. Distinct Impacts of Light and Heavy Precipitation on PM2.5 Mass Concentration in Beijing , 2019, Earth and Space Science.
[20] Lu Shen,et al. Fine particulate matter (PM2.5) trends in China, 2013–2018: separating contributions from anthropogenic emissions and meteorology , 2019, Atmospheric Chemistry and Physics.
[21] J. Fung,et al. To what extent can the below-cloud washout effect influence the PM2.5? A combined observational and modeling study. , 2019, Environmental pollution.
[22] D. Worsnop,et al. A Black Carbon‐Tracer Method for Estimating Cooking Organic Aerosol From Aerosol Mass Spectrometer Measurements , 2019, Geophysical Research Letters.
[23] Qiang Zhang,et al. Dominant role of emission reduction in PM2.5 air quality improvement in Beijing during 2013–2017: a model-based decomposition analysis , 2019, Atmospheric Chemistry and Physics.
[24] P. Rao,et al. Evidence of precedent wind role on controlling PM1 wet scavenging of aerosols during monsoon rain events , 2019, Atmospheric Environment.
[25] Yifang,et al. Distinctions in source regions and formation mechanisms of secondary aerosol in Beijing from summer to winter , 2019, Atmospheric Chemistry and Physics.
[26] L. Mickley,et al. Predicting the Impact of Climate Change on Severe Wintertime Particulate Pollution Events in Beijing Using Extreme Value Theory , 2019, Geophysical Research Letters.
[27] T. Luan,et al. Below-Cloud Aerosol Scavenging by Different-Intensity Rains in Beijing City , 2019, Journal of Meteorological Research.
[28] Dominick V. Spracklen,et al. Substantial changes in air pollution across China during 2015–2017 , 2018, Environmental Research Letters.
[29] Meng Li,et al. Trends in China's anthropogenic emissions since 2010 as the consequence of clean air actions , 2018, Atmospheric Chemistry and Physics.
[30] Qi Zhang,et al. Source apportionment of organic aerosol from 2-year highly time-resolved measurements by an aerosol chemical speciation monitor in Beijing, China , 2018, Atmospheric Chemistry and Physics.
[31] Zifa Wang,et al. Below-cloud wet scavenging of soluble inorganic ions by rain in Beijing during the summer of 2014. , 2017, Environmental pollution.
[32] Lu Shen,et al. Synoptic meteorological modes of variability for fine particulate matter (PM 2.5 ) air quality in major metropolitan regions of China , 2017 .
[33] Danlu Chen,et al. Understanding meteorological influences on PM 2.5 concentrations across China: a temporal and spatial perspective , 2017 .
[34] B. Marticorena,et al. Mineral dust over west and central Sahel: Seasonal patterns of dry and wet deposition fluxes from a pluriannual sampling (2006–2012) , 2017 .
[35] L. Murray,et al. Influence of 2000–2050 climate change on particulate matter in the United States: results from a new statistical model , 2016 .
[36] S. Pryor,et al. Empirical estimates of size-resolved precipitation scavenging coefficients for ultrafine particles , 2016 .
[37] Tao Liu,et al. The washout effects of rainfall on atmospheric particulate pollution in two Chinese cities. , 2016, Environmental pollution.
[38] Zhanqing Li,et al. Aerosol characterization over the North China Plain: Haze life cycle and biomass burning impacts in summer , 2016 .
[39] W. Ouyang,et al. The washing effect of precipitation on particulate matter and the pollution dynamics of rainwater in downtown Beijing. , 2015, The Science of the total environment.
[40] Xiaoling Zhang,et al. Distribution and diurnal variation of warm-season short-duration heavy rainfall in relation to the MCSs in China , 2013, Acta Meteorologica Sinica.
[41] U. Rohner,et al. The ToF-ACSM: a portable aerosol chemical speciation monitor with TOFMS detection , 2013 .
[42] Yele Sun,et al. Aerosol composition, sources and processes during wintertime in Beijing, China , 2013 .
[43] Julio Lumbreras,et al. Variation of PM2.5 concentrations in relation to street washing activities , 2012 .
[44] Daniel J. Jacob,et al. Meteorological modes of variability for fine particulate matter (PM 2.5 ) air quality in the United States: implications for PM 2.5 sensitivity to climate change , 2011 .
[45] Leiming Zhang,et al. Uncertainty assessment of current size-resolved parameterizations for below-cloud particle scavenging by rain , 2010 .
[46] J. B. Shukla,et al. Effect of rain on removal of a gaseous pollutant and two different particulate matters from the atmosphere of a city , 2008, Math. Comput. Model..
[47] R. Yu,et al. Diurnal variations of summer precipitation in Beijing , 2008 .
[48] J. Henzing,et al. A parameterization of size resolved below cloud scavenging of aerosols by rain , 2006 .
[49] J. Seinfeld,et al. Atmospheric Chemistry and Physics: From Air Pollution to Climate Change , 1998 .
[50] P. Paatero,et al. Positive matrix factorization: A non-negative factor model with optimal utilization of error estimates of data values† , 1994 .
[51] W. J. Jones,et al. Fine particulate matter , 1989 .
[52] T. Petäjä,et al. the manuscript “ The effect of clouds and precipitation on the aerosol concentrations and composition in a boreal forest environment ” , 2022 .
[53] A. Sorooshian,et al. Stubborn aerosol: Why particulate mass concentrations do not drop during the wet season in Metro Manila, Philippines , 2022, Environmental Science: Atmospheres.
[54] V. Singh,et al. Impact of urbanization on hourly precipitation in Beijing, China: Spatiotemporal patterns and causes , 2019, Global and Planetary Change.
[55] Qi Zhang,et al. Summertime aerosol volatility measurements in Beijing, China , 2019, Atmospheric Chemistry and Physics.
[56] Axel Lauer,et al. © Author(s) 2006. This work is licensed under a Creative Commons License. Atmospheric Chemistry and Physics Analysis and quantification of the diversities of aerosol life cycles , 2022 .
[57] C. Andronache. Estimated variability of below-cloud aerosol removal by rainfall for observed aerosol size distributions , 2003 .