Ice formation in Arctic mixed-phase clouds: Insights from a 3-D cloud-resolving model with size-resolved aerosol and cloud microphysics

被引:78
|
作者
Fan, Jiwen [1 ]
Ovtchinnikov, Mikhail [1 ]
Comstock, Jennifer M. [1 ]
McFarlane, Sally A. [1 ]
Khain, Alexander [2 ]
机构
[1] Pacific NW Natl Lab, Richland, WA 99352 USA
[2] Hebrew Univ Jerusalem, Dept Atmospher Sci, IL-91904 Jerusalem, Israel
基金
美国国家科学基金会; 以色列科学基金会;
关键词
SMALL CUMULIFORM CLOUDS; PART II; EXPLICIT MICROPHYSICS; SPECTRAL MICROPHYSICS; PRODUCTION MECHANISMS; CONVECTIVE CLOUDS; CLIMATE MODELS; 3D MODEL; NUCLEATION; SIMULATION;
D O I
10.1029/2008JD010782
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The single-layer mixed-phase clouds observed during the Atmospheric Radiation Measurement (ARM) program's Mixed-Phase Arctic Cloud Experiment (MPACE) are simulated with a three-dimensional cloud-resolving model, the System for Atmospheric Modeling (SAM), coupled with an explicit bin microphysics scheme and a radar simulator. By implementing an aerosol-dependent and a temperature- and supersaturation-dependent ice nucleation scheme and treating IN size distribution prognostically, the link between ice crystal and aerosol properties is established to study aerosol indirect effects. Two possible ice enhancement mechanisms, activation of droplet evaporation residues by condensation followed by freezing and droplet evaporation freezing by contact freezing inside out, are scrutinized by extensive comparisons with the in situ and remote sensing measurements. Simulations with either mechanism agree well with the in situ and remote sensing measurements of ice microphysical properties but liquid water content is slightly underpredicted. These two mechanisms give similar cloud properties, although ice nucleation occurs at very different rates and locations. Ice nucleation from activation of evaporation nuclei occurs mostly near cloud top areas, while ice nucleation from the drop freezing during evaporation has no significant location preference. Both ice enhancement mechanisms contribute dramatically to ice formation with ice particle concentration of 10-15 times higher relative to the simulation without either of them. Ice nuclei (IN) recycling from ice sublimation contributes significantly to maintaining concentrations of IN and ice particles in this case, implying an important role to maintain the observed long-term existence of mixed-phase clouds. Cloud can be very sensitive to IN initially but become much less sensitive as cloud evolves to a steady mixed-phase condition.
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页数:21
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共 47 条
  • [1] Arctic mixed-phase clouds simulated by a cloud-resolving model: Comparison with ARM observations and sensitivity to microphysics parameterizations
    Luo, Yali
    Xu, Kuan-Man
    Morrison, Hugh
    McFarquhar, Greg
    [J]. JOURNAL OF THE ATMOSPHERIC SCIENCES, 2008, 65 (04) : 1285 - 1303
  • [2] Observed aerosol suppression of cloud ice in low-level Arctic mixed-phase clouds
    Norgren, Matthew S.
    de Boer, Gijs
    Shupe, Matthew D.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2018, 18 (18) : 13345 - 13361
  • [3] Multi-layer arctic mixed-phase clouds simulated by a cloud-resolving model: Comparison with ARM observations and sensitivity experiments
    Luo, Yali
    Xu, Kuan-Man
    Morrison, Hugh
    McFarquhar, Greg M.
    Wang, Zhien
    Zhang, Gong
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D12)
  • [4] Cloud condensation nuclei as a modulator of ice processes in Arctic mixed-phase clouds
    Lance, S.
    Shupe, M. D.
    Feingold, G.
    Brock, C. A.
    Cozic, J.
    Holloway, J. S.
    Moore, R. H.
    Nenes, A.
    Schwarz, J. P.
    Spackman, J. R.
    Froyd, K. D.
    Murphy, D. M.
    Brioude, J.
    Cooper, O. R.
    Stohl, A.
    Burkhart, J. F.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (15) : 8003 - 8015
  • [5] Representation of Arctic mixed-phase clouds and the Wegener-Bergeron-Findeisen process in climate models: Perspectives from a cloud-resolving study
    Fan, Jiwen
    Ghan, Steven
    Ovchinnikov, Mikhail
    Liu, Xiaohong
    Rasch, Philip J.
    Korolev, Alexei
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2011, 116
  • [6] A 1D Model for Nucleation of Ice From Aerosol Particles: An Application to a Mixed-Phase Arctic Stratus Cloud Layer
    Knopf, Daniel A.
    Silber, Israel
    Riemer, Nicole
    Fridlind, Ann M.
    Ackerman, Andrew S.
    [J]. JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2023, 15 (10)
  • [7] Cloud-Resolving ICON Simulations of Secondary Ice Production in Arctic Mixed-Phase Stratocumuli Observed during M-PACE
    Possner, A.
    Pfannkuch, K.
    Ramadoss, V.
    [J]. JOURNAL OF THE ATMOSPHERIC SCIENCES, 2024, 81 (02) : 417 - 434
  • [8] Intercomparison of bulk cloud microphysics schemes in mesoscale simulations of springtime Arctic mixed-phase stratiform clouds
    Morrison, H.
    Pinto, J. O.
    [J]. MONTHLY WEATHER REVIEW, 2006, 134 (07) : 1880 - 1900
  • [9] Developing large-scale forcing data for single-column and cloud-resolving models from the Mixed-Phase Arctic Cloud Experiment
    Xie, Shaocheng
    Klein, Stephen A.
    Zhang, Minghua
    Yio, John J.
    Cederwall, Richard T.
    McCoy, Renata
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D19)
  • [10] Intercomparison of model simulations of mixed-phase clouds observed during the ARM Mixed-Phase Arctic Cloud Experiment. II: Multilayer cloud
    Morrison, Hugh
    McCoy, Renata B.
    Klein, Stephen A.
    Xie, Shaocheng
    Luo, Yali
    Avramov, Alexander
    Chen, Mingxuan
    Cole, Jason N. S.
    Falk, Michael
    Foster, Michael J.
    Del Genio, Anthony D.
    Harrington, Jerry Y.
    Hoose, Corinna
    Khairoutdinov, Marat F.
    Larson, Vincent E.
    Liu, Xiaohong
    McFarquhar, Greg M.
    Poellot, Michael R.
    von Salzen, Knut
    Shipway, Ben J.
    Shupe, Matthew D.
    Sud, Yogesh C.
    Turner, David D.
    Veron, Dana E.
    Walker, Gregory K.
    Wang, Zhien
    Wolf, Audrey B.
    Xu, Kuan-Man
    Yang, Fanglin
    Zhang, Gong
    [J]. QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2009, 135 (641) : 1003 - 1019