Freezing thresholds and cirrus cloud formation mechanisms inferred from in situ measurements of relative humidity

被引:112
作者
Haag, W [1 ]
Kärcher, B
Ström, J
Minikin, A
Lohmann, U
Ovarlez, J
Stohl, A
机构
[1] Deutsch Zentrum Luft & Raumfahrt, Inst Phys Atmosphare, Oberpfaffenhofen, Germany
[2] Stockholm Univ, Inst Appl Environm Res, S-10691 Stockholm, Sweden
[3] Dalhousie Univ, Dept Phys & Atmospher Sci, Halifax, NS, Canada
[4] Ecole Polytech, CNRS, IPSL, Meteorol Dynam Lab, F-91128 Palaiseau, France
[5] Tech Univ Munich, Lehrstuhl Bioklimatol & Immiss Forsch, D-8050 Freising Weihenstephan, Germany
来源
ATMOSPHERIC CHEMISTRY AND PHYSICS | 2003年 / 3卷
关键词
D O I
10.5194/acp-3-1791-2003
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Factors controlling the microphysical link between distributions of relative humidity above ice saturation in the upper troposphere and lowermost stratosphere and cirrus clouds are examined with the help of microphysical trajectory simulations. Our findings are related to results from aircraft measurements and global model studies. We suggest that the relative humidities at which ice crystals form in the atmosphere can be inferred from in situ measurements of water vapor and temperature close to, but outside of, cirrus clouds. The comparison with concomitant measurements performed inside cirrus clouds provides a clue to freezing mechanisms active in cirrus. The analysis of field data taken at northern and southern midlatitudes in fall 2000 reveals distinct differences in cirrus cloud freezing thresholds. Homogeneous freezing is found to be the most likely mechanism by which cirrus form at southern hemisphere midlatitudes. The results provide evidence for the existence of heterogeneous freezing in cirrus in parts of the polluted northern hemisphere, but do not suggest that cirrus clouds in this region form exclusively on heterogeneous ice nuclei, thereby emphasizing the crucial importance of homogeneous freezing. The key features of distributions of upper tropospheric relative humidity simulated by a global climate model are shown to be in general agreement with both, microphysical simulations and field observations, delineating a feasible method to include and validate ice supersaturation in other large-scale atmospheric models, in particular chemistry-transport and weather forecast models.
引用
收藏
页码:1791 / 1806
页数:16
相关论文
共 43 条
  • [1] The potential of cirrus clouds for heterogeneous chlorine activation
    Borrmann, S
    Solomon, S
    Dye, JE
    Luo, BP
    [J]. GEOPHYSICAL RESEARCH LETTERS, 1996, 23 (16) : 2133 - 2136
  • [2] BRAHAM RR, 1967, J ATMOS SCI, V24, P311, DOI 10.1175/1520-0469(1967)024<0311:CCSAAT>2.0.CO
  • [3] 2
  • [4] A DEHYDRATION MECHANISM FOR THE STRATOSPHERE
    DANIELSEN, EF
    [J]. GEOPHYSICAL RESEARCH LETTERS, 1982, 9 (06) : 605 - 608
  • [5] Ice formation by black carbon particles
    DeMott, PJ
    Chen, Y
    Kreidenweis, SM
    Rogers, DC
    Sherman, DE
    [J]. GEOPHYSICAL RESEARCH LETTERS, 1999, 26 (16) : 2429 - 2432
  • [6] The susceptibility of ice formation in upper tropospheric clouds to insoluble aerosol components
    DeMott, PJ
    Rogers, DC
    Kreidenweis, SM
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D16) : 19575 - 19584
  • [7] The effects of tropical cirrus clouds on the abundance of lower stratospheric ozone
    Dessler, AE
    Minschwaner, K
    Weinstock, EM
    Hintsa, EJ
    Anderson, JG
    Russell, JM
    [J]. JOURNAL OF ATMOSPHERIC CHEMISTRY, 1996, 23 (02) : 209 - 220
  • [8] GETTELMAN A, 2002, GEOPHYS RES LETT, V29
  • [9] A distribution law for relative humidity in the upper troposphere and lower stratosphere derived from three years of MOZAIC measurements
    Gierens, K
    Schumann, U
    Helten, M
    Smit, H
    Marenco, A
    [J]. ANNALES GEOPHYSICAE-ATMOSPHERES HYDROSPHERES AND SPACE SCIENCES, 1999, 17 (09): : 1218 - 1226
  • [10] Numerical simulations of homogeneous freezing processes in the aerosol chamber AIDA
    Haag, W
    Kärcher, B
    Schaefers, S
    Stetzer, O
    Möhler, O
    Schurath, U
    Krämer, M
    Schiller, C
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2003, 3 : 195 - 210