Changes between Version 60 and Version 61 of doc/tec/microphysics


Ignore:
Timestamp:
Feb 27, 2019 2:38:07 PM (6 years ago)
Author:
westbrink
Comment:

--

Legend:

Unmodified
Added
Removed
Modified
  • doc/tec/microphysics

    v60 v61  
    449449Figure 8: Snapshot of the cloud field from a PALM run for three continuous days of the HD(CP)^2^ Observational Prototype Experiment. Shown is the 3-D field of ''q'',,c,, (white to gray colors) as well as rain water (''q'',,r,,'' > 0'', blue) on 26 April 2013. The simulation had a grid-spacing of ''50 m'' on a ''50 x 50 km^2^'' domain. Large-scale advective tendencies for ''θ'',,l,, and ''q'' were taken from COSMOE-DE (regional model of German Meteorological Service, DWD) analyses. The copyright for the underlying satellite image is held by Cnes / Spot Image, Digitalglobe.
    450450
    451 == References ==
    452 
    453 * [=#arnason1971]'''Arnason G, Brown J.''' 1971. Growth of cloud droplets by condensation: A problem in computational stability. J. Atmos. Sci. 28: 72-77.
    454 
    455 * [=#emanuel1994]'''Emanuel KA.''' 1994. Atmospheric Convection. Oxford University Press.
    456 
    457 * [=#seifert2001]'''Seifert A, Beheng KD.''' 2001. A double-moment parameterization for simulating autoconversion, accretion and selfcollection. Atmos. Res. 59: 265–281.
    458 
    459 * [=#seifert2006]'''Seifert A, Beheng KD.''' 2006. A two-moment cloud microphysics parameterization for mixed-phase clouds. Part 1: Model description. Meteorol. Atmos. Phys. 92: 45–66.
    460 
    461 * [=#savic2008]'''Savic-Jovcic V, Stevens B.''' 2008. The structure and mesoscale organization of precipitating stratocumulus. J. Atmos. Sci. 65: 1587–1605. [http://dx.doi.org/10.1175/2007JAS2456.1 doi]
    462 
    463 * [=#heus2010]'''Heus T, van Heerwaarden CC, Jonker HJJ, Pier Siebesma A, Axelsen S, van den Dries K, Geoffroy O, Moene AF, Pino D, de Roode SR, Vilà-Guerau de Arellano J.''' 2010. Formulation of the Dutch Atmospheric Large-Eddy Simulation (DALES) and overview of its applications. Geosci. Model Dev. 3: 415–444. [http://dx.doi.org/10.5194/gmd-3-415-2010 doi]
    464 
    465 * [=#stevens2008]'''Stevens B, Seifert A.''' 2008. Understanding macrophysical outcomes of microphysical choices in simulations of shallow cumulus convection. J. Meteor. Soc. Jpn. 86: 143–162.
    466 
    467 * [=#bougeault1981]'''Bougeault, P.''' 1981. Modeling the trade-wind cumulus boundary layer. Part I: Testing the ensemble cloud relations against numerical data. J. Atmos. Sci. 38: 2414–2428.
    468 
    469 * [=#khairoutdinov2000]'''Khairoutdinov M, Kogan Y.''' 2000. A new cloud physics parameterization in a large-eddy simulation model of marine stratocumulus. Mon. Weat. Rev. 128: 229–243.
    470 
    471 * [=#sommeria1977]'''Sommeria G, Deardorff JW.''' 1977. Subgrid-scale condensation in models of nonprecipitating clouds. J. Atmos. Sci. 34: 344–355.
    472 
    473 * [=#kessler1969]'''Kessler E.''' 1969. On the Distribution and Continuity of Water Substance in Atmospheric Circulation. Meteor. Monogr: 1-84.
    474 
    475 * [=#pruppacher1997]'''Pruppacher HR, and Klett JD.''' 1997. Microphysics of Clouds and Precipitation. 2nd Edn. Kluwer Academic Publishers. Dordrecht.
    476 
    477 * [=#morrison2007]'''Morrison H.''' 2007. Comparison of bulk and bin warm-rain microphysics models using a kinematic framework. J. Atmos. Sci. 64: 2839-2681.
    478 
    479 * [=#seifert2010]'''Seifert A, Nuijens L, Stevens B.''' 2010. Turbulence effects on warm-rain autoconversion in precipitating shallow convection. Q. J. Roy. Meteor. Soc. 136: 1753–1762.
    480 
    481 * [=#seifert2008]'''Seifert A.''' 2008. On the parameterization of evaporation of raindrops as simulated by a one-dimensional rainshaft model. J. Atmos. Sci. 65: 3608–3619. [http://dx.doi.org/10.1175/2008JAS2586.1 doi].
    482 
    483 * [=#ackerman]'''Ackerman, AS, vanZanten MC, Stevens B, Savic-Jovcic V, Bretherton CS, Chlond A, Golaz J-C, Jiang H, Khairoutdinov M, Krueger SK, Lewellen DC, Lock A, Moeng C-H, Nakamura K, Petters MD, Snider JR, Weinbrecht S, Zuluaf M.''' 2009. Large-eddy simulations of a drizzling, stratocumulus-topped marine boundary layer, Mon. Weather Rev., 137: 1083–1110.
    484 
    485 * [=#geoffroy]'''Geoffroy O, Brenguier J-L, Burnet F.''' 2010. Parametric representation of the cloud droplet spectra for LES warm bulk microphysical schemes. Atmos. Chem. Phys. 10: 4835–4848. [http://dx.doi.org/10.5194/acp-10-4835-2010 doi].
    486 
    487 * [=#rogers1993]'''Rogers RR, Baumgardner D, Ethier SA, Carter DA, Ecklund WL.''' 1993. Comparison of raindrop size distributions measured by radar wind profiler and by airplane. J. Appl. Meteorol. 32: 694–699.
    488 
    489 * [=#cuijpers1993]'''Cuijpers JWM, Duynkerke PG.''' 1993. Large eddy simulation of trade wind cumulus clouds. J. Atmos. Sci. 50: 3894–3908.
    490 
    491 * [=#khvorostyanov2006]'''Khvorostyanov V,  Curry J.''' 2006. Aerosol size spectra and CCN activity spectra: Reconciling the lognormal, algebraic, and power laws. J. Geophys. Res. 111.
    492 
    493 * [=#dipankar2015]'''Dipankar A, Stevens B, Heinze R, Moseley C, Zängl G, Giorgetta M, Brdar D.''' 2015. Large eddy simulation using the general circulation model ICON. J. Adv. Mod. Earth Syst. 07. [http://dx.doi.org/10.1002/2015MS000431 doi].
    494 
    495 * [=#gronemeier2016]'''Gronemeier T, Kanani-Sühring F, Raasch S.''' 2016.  Do shallow cumulus clouds have the potential to trigger secondary circulations via shading? Boundary-Layer Meteorol. [http://dx.doi.org/10.1007/s10546-016-0180-7 doi].
    496 
     451
     452