Surface PM2.5 mass concentrations during the dry season over northern Thailand: Sensitivity to model aerosol chemical schemes and the effects on regional meteorology

被引:17
作者
Bran, Sherin Hassan [1 ,2 ]
Macatangay, Ronald [2 ]
Surapipith, Vanisa [2 ]
Chotamonsak, Chakrit [1 ,4 ]
Chantara, Somporn [1 ]
Han, Zhiwei [3 ]
Li, Jiawei [3 ]
机构
[1] Chiang Mai Univ, Fac Sci, Environm Sci Res Ctr, Chiang Mai 50200, Thailand
[2] Natl Astron Res Inst Thailand, Atmospher Res Unit, Chiang Mai 50180, Thailand
[3] Chinese Acad Sci, Inst Atmospher Phys, RCE TEA, Beijing, Peoples R China
[4] Chiang Mai Univ, Fac Social Sci, Reg Ctr Climate, Dept Geog, Chiang Mai 50200, Thailand
基金
中国国家自然科学基金;
关键词
WRF-Chem; Biomass burning; Aerosols; Meteorology; POLYCYCLIC AROMATIC-HYDROCARBONS; PARTICULATE MATTER; SOUTHEAST-ASIA; ANTHROPOGENIC EMISSIONS; AIR-POLLUTION; CHIANG-MAI; BIOMASS; TRANSPORT; IMPACT; SATELLITE;
D O I
10.1016/j.atmosres.2022.106303
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Biomass burning emissions (agriculture and forest) are one of the major contributors to air pollution over Thailand during the hot-dry season (March-April) and aerosols from biomass burning can adversely affect the weather and produce health effects (respiratory disease, heart disease etc.). The present study investigated the sensitivity of aerosol chemistry schemes (Goddard Chemistry Aerosol Radiation and Transport, GOCART; Model for Simulating Aerosol Interactions and Chemistry, MOSAIC) on spatio-temporal distributions of simulated PM2.5 (particle sizes <2.5 mu m) mass concentrations. Also, the study looked into the impact of PM2.5 on meteorology during an intense biomass burning period (15 March - 15 April 2019) using an online regional chemical transport model, Weather Research and Forecasting model coupled with Chemistry (WRF-Chem). PM2.5 mass concentrations were observed over the northern regions of Thailand varying from 40 to 240 mu g m- 3. The simulations using GOCART and MOSAIC aerosol scheme were able to capture the spatio-temporal variations of PM2.5 mass concentrations in general. However, it underestimated the observation magnitudes by about 24% and 27%, respectively. In addition, the sensitivy of EDGAR-HTAP (Emission Database for Global Atmospheric Research collaboratively with the task force for Hemispheric Transport of Air Pollution) and CAMS-GLOB-ANT (Copernicus Atmosphere Monitoring Service Global) anthropogenic emission inventories on PM2.5 mass were investigated using the model. The simulated aerosol mass concentrations from EDGAR-HTAP found more realistic emissions when compared to CAMS-GLOB-ANT in most of the regions. The discrepancy in the simulation of aerosol mass concentrations could be attributed to uncertainties in the emission inventories, weak representation of secondary aerosol compositions, as well as the overestimation of wind speed and wet scavenging in the model. The study also investigated the influence of aerosols on meteorology by comparing a simulation with aerosolradiation-interaction to a simulation without aerosol-radiation-interaction in the atmosphere during the time period. Significant changes in meteorological parameters were observed over regions having higher aerosol mass concentrations with a reduction of about 26% in solar insolation, 3.9% in near surface temperature, 21% in planetary boundary layer height and an increase of 13% in relative humidity.
引用
收藏
页数:14
相关论文
共 82 条
[11]   Levels and major sources of PM2.5 and PM10 in Bangkok Metropolitan Region [J].
Chuersuwan, Nares ;
Nimrat, Subuntith ;
Lekphet, Sukanda ;
Kerdkumrai, Tida .
ENVIRONMENT INTERNATIONAL, 2008, 34 (05) :671-677
[12]   Gridded emissions of air pollutants for the period 1970-2012 within EDGAR v4.3.2 [J].
Crippa, Monica ;
Guizzardi, Diego ;
Muntean, Marilena ;
Schaaf, Edwin ;
Dentener, Frank ;
van Aardenne, John A. ;
Monni, Suvi ;
Doering, Ulrike ;
Olivier, Jos G. J. ;
Pagliari, Valerio ;
Janssens-Maenhout, Greet .
EARTH SYSTEM SCIENCE DATA, 2018, 10 (04) :1987-2013
[13]   Enhanced haze pollution by black carbon in megacities in China [J].
Ding, A. J. ;
Huang, X. ;
Nie, W. ;
Sun, J. N. ;
Kerminen, V. -M. ;
Petaja, T. ;
Su, H. ;
Cheng, Y. F. ;
Yang, X. -Q. ;
Wang, M. H. ;
Chi, X. G. ;
Wang, J. P. ;
Virkkula, A. ;
Guo, W. D. ;
Yuan, J. ;
Wang, S. Y. ;
Zhang, R. J. ;
Wu, Y. F. ;
Song, Y. ;
Zhu, T. ;
Zilitinkevich, S. ;
Kulmala, M. ;
Fu, C. B. .
GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (06) :2873-2879
[14]   Description and evaluation of the Model for Ozone and Related chemical Tracers, version 4 (MOZART-4) [J].
Emmons, L. K. ;
Walters, S. ;
Hess, P. G. ;
Lamarque, J. -F. ;
Pfister, G. G. ;
Fillmore, D. ;
Granier, C. ;
Guenther, A. ;
Kinnison, D. ;
Laepple, T. ;
Orlando, J. ;
Tie, X. ;
Tyndall, G. ;
Wiedinmyer, C. ;
Baughcum, S. L. ;
Kloster, S. .
GEOSCIENTIFIC MODEL DEVELOPMENT, 2010, 3 (01) :43-67
[15]   Characterization and sources of aerosol particles over the southeastern Tibetan Plateau during the Southeast Asia biomass-burning season [J].
Engling, Guenter ;
Zhang, Yi-Nan ;
Chan, Chuen-Yu ;
Sang, Xue-Fang ;
Lin, Mang ;
Ho, Kin-Fai ;
Li, Yok-Sheung ;
Lin, Chuan-Yao ;
Lee, James J. .
TELLUS SERIES B-CHEMICAL AND PHYSICAL METEOROLOGY, 2011, 63 (01) :117-128
[16]   Optimizing model performance: variable size resolution in cloud chemistry modeling [J].
Fahey, KM ;
Pandis, SN .
ATMOSPHERIC ENVIRONMENT, 2001, 35 (26) :4471-4478
[17]   Evolution of ozone, particulates, and aerosol direct radiative forcing in the vicinity of Houston using a fully coupled meteorology-chemistry-aerosol model [J].
Fast, Jerome D. ;
Gustafson, William I., Jr. ;
Easter, Richard C. ;
Zaveri, Rahul A. ;
Barnard, James C. ;
Chapman, Elaine G. ;
Grell, Georg A. ;
Peckham, Steven E. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D21)
[18]   Analysis of the WRF-Chem contributions to AQMEII phase2 with respect to aerosol radiative feedbacks on meteorology and pollutant distributions [J].
Forkel, Renate ;
Balzarini, Alessandra ;
Baro, Rocio ;
Bianconi, Roberto ;
Curci, Gabriele ;
Jimenez-Guerrero, Pedro ;
Hirtl, Marcus ;
Honzak, Luka ;
Lorenz, Christof ;
Im, Ulas ;
Perez, Juan L. ;
Pirovano, Guido ;
San Jose, Roberto ;
Tuccella, Paolo ;
Werhahn, Johannes ;
Zabkar, Rahela .
ATMOSPHERIC ENVIRONMENT, 2015, 115 :630-645
[19]  
Granier Claire., 2019, The Copernicus atmosphere monitoring service global and regional emissions, DOI DOI 10.24380/D0BN-KX16
[20]   Inclusion of biomass burning in WRF-Chem: impact of wildfires on weather forecasts [J].
Grell, G. ;
Freitas, S. R. ;
Stuefer, M. ;
Fast, J. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (11) :5289-5303