Global observations of aerosol-cloud-precipitation-climate interactions

被引:323
|
作者
Rosenfeld, Daniel [1 ]
Andreae, Meinrat O. [2 ]
Asmi, Ari [3 ]
Chin, Mian [4 ]
de Leeuw, Gerrit [3 ,5 ]
Donovan, David P. [6 ]
Kahn, Ralph [4 ]
Kinne, Stefan [7 ]
Kivekas, Niku [5 ,8 ]
Kulmala, Markku [3 ]
Lau, William [4 ]
Schmidt, K. Sebastian [9 ,10 ]
Suni, Tanja [3 ]
Wagner, Thomas [11 ]
Wild, Martin [12 ]
Quaas, Johannes [13 ]
机构
[1] Hebrew Univ Jerusalem, Inst Earth Sci, IL-91905 Jerusalem, Israel
[2] Max Planck Inst Chem, Biogeochem Dept, D-55128 Mainz, Germany
[3] Univ Helsinki, Dept Phys, Helsinki, Finland
[4] NASA Goddard Space Flight Ctr, Earth Sci Div, Greenbelt, MD USA
[5] Finnish Meteorol Inst, Atmospher Composit Res Unit, FIN-00101 Helsinki, Finland
[6] Royal Netherlands Meteorol Inst KNMI, Ae De Bilt, Netherlands
[7] Max Planck Inst Meteorol, D-20146 Hamburg, Germany
[8] Lund Univ, Dept Phys, Div Nucl Phys, S-22362 Lund, Sweden
[9] Univ Colorado Boulder, Lab Atmospher & Space Phys, Boulder, CO USA
[10] Univ Colorado Boulder, Dept Atmospher & Ocean Sci, Boulder, CO USA
[11] Max Planck Inst Chem, Satellite Remote Sensing Grp, D-55128 Mainz, Germany
[12] Swiss Fed Inst Technol, Inst Atmospher & Climate Sci, Zurich, Switzerland
[13] Univ Leipzig, Inst Meteorol, D-04109 Leipzig, Germany
关键词
cloud aerosol interactions; remote sensing; climate change; CONDENSATION NUCLEI CONCENTRATION; MESOSCALE CELLULAR STRUCTURES; SPECTRAL-RESOLUTION LIDAR; DROPLET EFFECTIVE RADIUS; DEEP CONVECTIVE CLOUDS; BOUNDARY-LAYER CLOUDS; BIOMASS BURNING SMOKE; OPTICAL DEPTH; SATELLITE DATA; BLACK CARBON;
D O I
10.1002/2013RG000441
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Cloud drop condensation nuclei (CCN) and ice nuclei (IN) particles determine to a large extent cloud microstructure and, consequently, cloud albedo and the dynamic response of clouds to aerosol-induced changes to precipitation. This can modify the reflected solar radiation and the thermal radiation emitted to space. Measurements of tropospheric CCN and IN over large areas have not been possible and can be only roughly approximated from satellite-sensor-based estimates of optical properties of aerosols. Our lack of ability to measure both CCN and cloud updrafts precludes disentangling the effects of meteorology from those of aerosols and represents the largest component in our uncertainty in anthropogenic climate forcing. Ways to improve the retrieval accuracy include multiangle and multipolarimetric passive measurements of the optical signal and multispectral lidar polarimetric measurements. Indirect methods include proxies of trace gases, as retrieved by hyperspectral sensors. Perhaps the most promising emerging direction is retrieving the CCN properties by simultaneously retrieving convective cloud drop number concentrations and updraft speeds, which amounts to using clouds as natural CCN chambers. These satellite observations have to be constrained by in situ observations of aerosol-cloud-precipitation-climate (ACPC) interactions, which in turn constrain a hierarchy of model simulations of ACPC. Since the essence of a general circulation model is an accurate quantification of the energy and mass fluxes in all forms between the surface, atmosphere and outer space, a route to progress is proposed here in the form of a series of box flux closure experiments in the various climate regimes. A roadmap is provided for quantifying the ACPC interactions and thereby reducing the uncertainty in anthropogenic climate forcing.
引用
收藏
页码:750 / 808
页数:59
相关论文
共 50 条
  • [1] Aerosol-cloud-precipitation relationships from satellite observations and global climate model simulations
    Yi, Bingqi
    Yang, Ping
    Bowman, Kenneth P.
    Liu, Xiaodong
    [J]. JOURNAL OF APPLIED REMOTE SENSING, 2012, 6
  • [2] Sensitivity of remote aerosol distributions to representation of cloud-aerosol interactions in a global climate model
    Wang, H.
    Easter, R. C.
    Rasch, P. J.
    Wang, M.
    Liu, X.
    Ghan, S. J.
    Qian, Y.
    Yoon, J-H
    Ma, P-L
    Vinoj, V.
    [J]. GEOSCIENTIFIC MODEL DEVELOPMENT, 2013, 6 (03) : 765 - 782
  • [3] Aerosol-Cloud interactions effect on Precipitation
    Takle, Jasmine
    Maheskumar, R.
    [J]. REMOTE SENSING AND MODELING OF THE ATMOSPHERE, OCEANS, AND INTERACTIONS VI, 2016, 9882
  • [4] Aerosol-cloud-precipitation interactions: A challenging problem in regional environment and climate research
    Devara, P. C. S.
    Manoj, M. G.
    [J]. PARTICUOLOGY, 2013, 11 (01) : 25 - 33
  • [5] Aerosol-cloud-precipitation interactions:A challenging problem in regional environment and climate research
    P.C.S.Devara
    M.G.Manoj
    [J]. Particuology, 2013, 11 (01) : 25 - 33
  • [6] Precipitation response to aerosol-radiation and aerosol-cloud interactions in regional climate simulations over Europe
    Maria Lopez-Romero, Jose
    Pedro Montavez, Juan
    Jerez, Sonia
    Lorente-Plazas, Raquel
    Palacios-Pena, Laura
    Jimenez-Guerrero, Pedro
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2021, 21 (01) : 415 - 430
  • [7] Climate Effects of Aerosol-Cloud Interactions
    Rosenfeld, Daniel
    Sherwood, Steven
    Wood, Robert
    Donner, Leo
    [J]. SCIENCE, 2014, 343 (6169) : 379 - 380
  • [8] AEROSOL CLOUD CLIMATE INTERACTIONS - HOBBS,PV
    SOMERVILLE, RCJ
    [J]. SCIENCE, 1994, 264 (5155) : 115 - 115
  • [9] CHALLENGES FOR CLOUD MODELING IN THE CONTEXT OF AEROSOL-CLOUD-PRECIPITATION INTERACTIONS
    Lebo, Zachary J.
    Shipway, Ben J.
    Fan, Jiwen
    Geresdi, Istvan
    Hill, Adrian
    Miltenberger, Annette
    Morrison, Hugh
    Rosenberg, Phil
    Varble, Adam
    Xue, Lulin
    [J]. BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2017, 98 (08) : 1749 - 1752
  • [10] Understanding of Aerosol–Climate Interactions in China: Aerosol Impacts on Solar Radiation, Temperature, Cloud, and Precipitation and Its Changes Under Future Climate and Emission Scenarios
    Song Liu
    Jia Xing
    Bin Zhao
    Jiandong Wang
    Shuxiao Wang
    Xiaoye Zhang
    Aijun Ding
    [J]. Current Pollution Reports, 2019, 5 : 36 - 51