Processes that generate and deplete liquid water and snow in thin midlevel mixed-phase clouds

被引:23
|
作者
Smith, Adam J. [1 ]
Larson, Vincent E. [3 ]
Niu, Jianguo [2 ]
Kankiewicz, J. Adam [4 ]
Carey, Lawrence D. [5 ]
机构
[1] Univ Oklahoma, Sch Meteorol, Norman, OK 73072 USA
[2] NOAA, NESDIS, Ctr Satellite Applicat & Res, IMSG, Camp Springs, MD 20746 USA
[3] Univ Wisconsin, Dept Math Sci, Milwaukee, WI 53201 USA
[4] WindLogics Inc, St Paul, MN 55108 USA
[5] Univ Alabama, Natl Space Sci & Technol Ctr, Ctr Earth Syst Sci, Huntsville, AL 35899 USA
基金
美国国家科学基金会;
关键词
MARINE STRATOCUMULUS; MODEL EVALUATION; ARCTIC STRATUS; IN-SITU; PART I; RESOLVING SIMULATIONS; AIRCRAFT OBSERVATIONS; RADIATIVE PROPERTIES; OPTICAL-PROPERTIES; FRONTAL CLOUDS;
D O I
10.1029/2008JD011531
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
This paper uses a numerical model to investigate microphysical, radiative, and dynamical processes in mixed-phase altostratocumulus clouds. Three cloud cases are chosen for study, each of which was observed by aircraft during the fifth or ninth Complex Layered Cloud Experiment (CLEX). These three clouds are numerically modeled using large-eddy simulation (LES). The observed and modeled clouds consist of a mixed-phase layer with a quasi-adiabatic profile of liquid, and a virga layer below that consists of snow. A budget of cloud (liquid) water mixing ratio is constructed from the simulations. It shows that large-scale ascent/descent, radiative cooling/heating, turbulent transport, and microphysical processes are all significant. Liquid is depleted indirectly via depositional growth of snow (the Bergeron-Findeisen process). This process is more influential than depletion of liquid via accretional growth of snow. Also constructed is a budget of snow mixing ratio, which turns out to be somewhat simpler. It shows that snow grows by deposition in and below the liquid (mixed-phase) layer, and sublimates in the remainder of the virga region below. The deposition and sublimation are balanced primarily by sedimentation, which transports the snow from the growth region to the sublimation region below. In our three clouds, the vertical extent of the virga layer is influenced more by the profile of saturation ratio below the liquid (mixed-phase) layer than by the mixing ratio of snow at the top of the virga layer.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Liquid fraction in stratiform mixed-phase clouds from in situ observations
    Boudala, FS
    Isaac, GA
    Cober, SG
    Fu, Q
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2004, 130 (603) : 2919 - 2931
  • [22] In Situ Aircraft Measurements of the Vertical Distribution of Liquid and Ice Water Content in Midlatitude Mixed-Phase Clouds
    Noh, Yoo-Jeong
    Seaman, Curtis J.
    Vonder Haar, Thomas H.
    Liu, Guosheng
    JOURNAL OF APPLIED METEOROLOGY AND CLIMATOLOGY, 2013, 52 (01) : 269 - 279
  • [23] Understanding the Extratropical Liquid Water Path Feedback in Mixed-Phase Clouds with an Idealized Global Climate Model
    Frazer, Michelle E.
    Ming, Yi
    JOURNAL OF CLIMATE, 2022, 35 (08) : 2391 - 2406
  • [24] 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.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (15) : 8003 - 8015
  • [25] Detection of supercooled liquid in mixed-phase clouds using radar Doppler spectra
    Luke, Edward P.
    Kollias, Pavlos
    Shupe, Matthew D.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2010, 115
  • [26] Vapour density field of mixed-phase clouds
    Castellano, Nesvit E.
    Avila, Eldo E.
    Saunders, Clive P. R.
    ATMOSPHERIC RESEARCH, 2008, 88 (01) : 56 - 65
  • [27] Formation and Development of Orographic Mixed-Phase Clouds
    Henneberg, Olga
    Henneberger, Jan
    Lohmann, Ulrike
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2017, 74 (11) : 3703 - 3724
  • [28] Impact of Antarctic mixed-phase clouds on climate
    Lawson, R. Paul
    Gettelman, Andrew
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (51) : 18156 - 18161
  • [29] Resilience of persistent Arctic mixed-phase clouds
    Morrison, Hugh
    de Boer, Gijs
    Feingold, Graham
    Harrington, Jerry
    Shupe, Matthew D.
    Sulia, Kara
    NATURE GEOSCIENCE, 2012, 5 (01) : 11 - 17
  • [30] Anthropogenic Aerosol Influences on Mixed-Phase Clouds
    Ulrike Lohmann
    Current Climate Change Reports, 2017, 3 : 32 - 44