How do aerosols above the residual layer affect the planetary boundary layer height?

被引:39
|
作者
Ma, Yongjing [1 ]
Xin, Jinyuan [1 ,2 ]
Wang, Zifa [1 ]
Tian, Yongli [3 ]
Wu, Lin [1 ]
Tang, Guiqian [1 ]
Zhang, Wenyu [4 ]
de Arellano, Jordi Vila-Guerau [5 ]
Zhao, Dandan [1 ,2 ]
Jia, Danjie [1 ,2 ]
Ren, Yuanzhe [3 ]
Gao, Zhongming [6 ]
Shen, Pengke [7 ]
Ye, Jianhuai [8 ]
Martin, Scot T. [8 ]
机构
[1] Chinese Acad Sci, Inst Atmospher Phys, State Key Lab Atmospher Boundary Layer Phys & Atm, Beijing 100029, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Inner Mongolia Autonomous Reg Environm Monitoring, Hohhot 010090, Peoples R China
[4] Zhengzhou Univ, Sch Geosci & Technol, Zhengzhou 450001, Peoples R China
[5] Wageningen Univ, Meteorol & Air Qual, Wageningen, Netherlands
[6] Sun Yat Sen Univ, Sch Atmospher Sci, Zhuhai 519000, Peoples R China
[7] Peking Univ, Coll Urban & Environm Sci, Key Lab Earth Surface Proc, Minist Educ, Beijing 100871, Peoples R China
[8] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
基金
中国国家自然科学基金;
关键词
Large-eddy simulation; Planetary boundary layer; Virtual dome effect; Aloft umbrella effect; Dome effective height; BLACK CARBON; POLLUTION; CHINA; HAZE; ABSORPTION;
D O I
10.1016/j.scitotenv.2021.151953
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We revealed that the absorption aerosol lying below or above the morning residual layer (MRL) promotes (stove effect, heating the MRL layer) or strongly inhibits (dome effect, heating the temperature inversion layer) the development of planetary boundary layer (PBL) after sunrise, while scattering aerosol exhibits similar suppression (surface or aloft umbrella effect) on the PBL regardless of its vertical location. However, the role of different type of aerosols (i.e., strong absorption aerosol and purely scattering aerosol) present from MRL to upper atmosphere remains lacking and therefore, needs to be further explored. Utilizing a large-eddy simulation model constrained by the in-situ observations in urban Beijing, we observed that the dome inhibition of absorption aerosols on PBL development becomes weaker as elevating the aerosol layer, and the effect (virtual dome effect) remains no change beyond a certain height, which is defined as the dome effective height z. This height z is highly related to the surface sensible heat flux. By comparison, the altitude of light-scattering aerosols relative to the MRL was less important. The scattering aerosols exhibit similar inhibition from MRL to upper atmosphere (aloft umbrella effect), but to a weaker extent than the virtual dome effect. The virtual dome effect and aloft umbrella effect play a leading role during some extremely polluted scenarios with deep aerosol layer, such as sandstorms and volcanic eruptions. Aerosol dome, virtual dome, and aloft umbrella effects, together with aerosol stove and surface umbrella effects, further advance the understanding on aerosol-PBL interactions, which is, more broadly, applied to interpret the impact of aerosol on PBL over other ecosystems as well as exoplanet atmospheres.
引用
收藏
页数:9
相关论文
共 50 条
  • [11] Comparison of the WRF and Sodar derived planetary boundary layer height
    Kryza, Maciej
    Drzeniecka-Osiadacz, Anetta
    Werner, Malgorzata
    Netzel, Pawel
    Dore, Anthony J.
    INTERNATIONAL JOURNAL OF ENVIRONMENT AND POLLUTION, 2015, 58 (1-2) : 3 - 14
  • [12] Climatological characteristics of planetary boundary layer height over Japan
    Zhang, Yehui
    Li, Siyuan
    INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2019, 39 (10) : 4015 - 4028
  • [13] Characteristics of the planetary boundary layer above Wuhan, China based on CALIPSO
    Zhu, Zhongmin
    Zhang, Miao
    Huang, Yusi
    Zhu, Bo
    Han, Ge
    Zhang, Tianhao
    Liu, Boming
    ATMOSPHERIC RESEARCH, 2018, 214 : 204 - 212
  • [14] Lidar observations of the Planetary Boundary Layer above the city of Thessaloniki, Greece
    Santacesaria, V
    Marenco, F
    Balis, D
    Papayannis, A
    Zerefos, C
    NUOVO CIMENTO DELLA SOCIETA ITALIANA DI FISICA C-GEOPHYSICS AND SPACE PHYSICS, 1998, 21 (06): : 585 - 596
  • [15] Occurrence and transport of microplastics sampled within and above the planetary boundary layer
    Gonzalez-Pleiter, Miguel
    Edo, Carlos
    Aguilera, Angeles
    Viudez-Moreiras, Daniel
    Pulido-Reyes, Gerardo
    Gonzalez-Toril, Elena
    Osuna, Susana
    De Diego-Castilla, Graciela
    Leganes, Francisco
    Fernandez-Pinas, Francisca
    Rosal, Roberto
    SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 761
  • [16] Active and passive remote sensing for monitoring the planetary boundary layer height
    Corredor-Ardoy, J. L.
    Bravo-Aranda, J. A.
    Granados-Munoz, M. J.
    Guerrero-Rascado, J. L.
    Fernandez-Galvez, J.
    Cazorla, A.
    Alados-Arboledas, L.
    OPTICA PURA Y APLICADA, 2014, 47 (02): : 83 - 90
  • [17] Global Radar Wind Profiler Planetary Boundary Layer Height Data
    Salmun, Haydee
    Josephs, Holly
    Molod, Andrea
    BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2023, 104 (05) : E1044 - E1057
  • [18] HEIGHT-INTEGRATED FLOW IN THE CONVECTIVE PLANETARY BOUNDARY-LAYER
    MELAS, D
    BOUNDARY-LAYER METEOROLOGY, 1993, 63 (04) : 381 - 396
  • [19] General diagnostic equations and regime analysis for the height of the planetary boundary layer
    Syrakov, Evgeni
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2015, 141 (692) : 2869 - 2879
  • [20] Using scanning backscatter lidar to determine planetary boundary layer height
    Huseyinoglu, M.F.
    Lasers in Engineering, 2018, 39 (3-6): : 153 - 161