A Study of Aerosol Impacts on Clouds and Precipitation Development in a Large Winter Cyclone
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[1] H. Morrison,et al. A Novel Scheme for Parameterizing Aerosol Processing in Warm Clouds , 2013 .
[2] H. Morrison,et al. Response of Tropical Deep Convection to Localized Heating Perturbations: Implications for Aerosol-Induced Convective Invigoration , 2013 .
[3] J. Comstock,et al. The common occurrence of highly supercooled drizzle and rain near the coastal regions of the western United States , 2013 .
[4] C. Naud,et al. Sensitivity of warm-frontal processes to cloud-nucleating aerosol concentrations , 2013 .
[5] P. Chuang,et al. Effect of Aerosol on Cloud–Environment Interactions in Trade Cumulus , 2012 .
[6] B. Murray,et al. Ice nucleation by particles immersed in supercooled cloud droplets. , 2012, Chemical Society reviews.
[7] B. Colle,et al. Comparisons of Single- and Double-Moment Microphysics Schemes in the Simulation of a Synoptic-Scale Snowfall Event , 2012 .
[8] Evgeny A. Podolskiy,et al. Study of unusual atmospheric icing at Mount Zao, Japan, using the Weather Research and Forecasting model , 2012 .
[9] John Kochendorfer,et al. How Well Are We Measuring Snow: The NOAA/FAA/NCAR Winter Precipitation Test Bed , 2012 .
[10] Zhanqing Li,et al. Impact of aerosols on convective clouds and precipitation , 2012, Reviews of Geophysics.
[11] George A. Isaac,et al. Characterization of Aircraft Icing Environments with Supercooled Large Drops for Application to Commercial Aircraft Certification , 2012 .
[12] Lasse Makkonen,et al. Prediction of In-Cloud Icing Conditions at Ground Level Using the WRF Model , 2011 .
[13] Zhanqing Li,et al. Long-term impacts of aerosols on the vertical development of clouds and precipitation , 2011 .
[14] J. Dudhia,et al. High-Resolution Simulations of Wintertime Precipitation in the Colorado Headwaters Region: Sensitivity to Physics Parameterizations , 2011 .
[15] H. Morrison,et al. Cloud-system resolving model simulations of aerosol indirect effects on tropical deep convection and its thermodynamic environment , 2011 .
[16] R. Mathur,et al. WRF-CMAQ two-way coupled system with aerosol feedback: software development and preliminary results , 2011 .
[17] K. D. Beheng,et al. Aerosol-cloud-precipitation effects over Germany as simulated by a convective-scale numerical weather prediction model , 2011 .
[18] J. Dudhia,et al. High resolution coupled climate-runoff simulations of seasonal snowfall over Colorado: A process study of current and warmer climate , 2011 .
[19] Mikhail Ovchinnikov,et al. Droplet nucleation: Physically‐based parameterizations and comparative evaluation , 2011 .
[20] G. Stephens,et al. Aerosol Indirect Effects on Tropical Convection Characteristics under Conditions of Radiative-Convective Equilibrium , 2011 .
[21] J. Dudhia,et al. Noah land surface model modifications to improve snowpack prediction in the Colorado Rocky Mountains , 2010 .
[22] A. Blyth,et al. The response of precipitation to aerosol through riming and melting in deep convective clouds , 2010 .
[23] A. Nenes,et al. Characteristic updrafts for computing distribution‐averaged cloud droplet number and stratocumulus cloud properties , 2010 .
[24] M. Lebsock,et al. Deconstructing the precipitation susceptibility construct: Improving methodology for aerosol-cloud precipitation studies , 2010 .
[25] J. Dudhia,et al. Simulation of seasonal snowfall over Colorado , 2010 .
[26] M. Chin,et al. Online simulations of global aerosol distributions in the NASA GEOS‐4 model and comparisons to satellite and ground‐based aerosol optical depth , 2010 .
[27] Leiming Zhang,et al. Uncertainty assessment of current size-resolved parameterizations for below-cloud particle scavenging by rain , 2010 .
[28] S. Burrows,et al. How important is biological ice nucleation in clouds on a global scale? , 2010 .
[29] D. S. Ward,et al. The role of the particle size distribution in assessing aerosol composition effects on simulated droplet activation , 2010 .
[30] M. D. Petters,et al. Predicting global atmospheric ice nuclei distributions and their impacts on climate , 2010, Proceedings of the National Academy of Sciences.
[31] S. Ghan,et al. Effects of aerosols on the dynamics and microphysics of squall lines simulated by spectral bin and bulk parameterization schemes , 2009 .
[32] J. Comstock,et al. Dominant role by vertical wind shear in regulating aerosol effects on deep convective clouds , 2009 .
[33] W. Cotton,et al. Influence of Cloud Condensation Nuclei on Orographic Snowfall , 2009 .
[34] L. Ruby Leung,et al. Heavy pollution suppresses light rain in China: Observations and modeling , 2009 .
[35] S. Kreidenweis,et al. A comparison of heterogeneous ice nucleation parameterizations using a parcel model framework , 2009 .
[36] W. Cotton,et al. Aerosol Pollution Impact on Precipitation , 2009 .
[37] W. Cotton,et al. Aerosol pollution impact on precipitation : a scientific review , 2009 .
[38] G. Thompson,et al. Explicit Forecasts of Winter Precipitation Using an Improved Bulk Microphysics Scheme. Part II: Implementation of a New Snow Parameterization , 2008 .
[39] Paul J. DeMott,et al. An Empirical Parameterization of Heterogeneous Ice Nucleation for Multiple Chemical Species of Aerosol , 2008 .
[40] Andrew Gettelman,et al. A new two-moment bulk stratiform cloud microphysics scheme in the Community Atmosphere Model, version 3 (CAM3). Part I: Description and numerical tests , 2008 .
[41] A. Pokrovsky,et al. Factors Determining the Impact of Aerosols on Surface Precipitation from Clouds: An Attempt at Classification , 2008 .
[42] William C. Skamarock,et al. A time-split nonhydrostatic atmospheric model for weather research and forecasting applications , 2008, J. Comput. Phys..
[43] William R. Cotton,et al. A Binned Approach to Cloud-Droplet Riming Implemented in a Bulk Microphysics Model , 2008 .
[44] S. Kreidenweis,et al. Measurements of heterogeneous ice nuclei in the western United States in springtime and their relation to aerosol characteristics , 2007 .
[45] M. Petters,et al. A single parameter representation of hygroscopic growth and cloud condensation nucleus activity , 2006 .
[46] J. Dudhia,et al. A New Vertical Diffusion Package with an Explicit Treatment of Entrainment Processes , 2006 .
[47] W. Grabowski. Indirect impact of atmospheric aerosols in idealized simulations of convective-radiative quasi-equilibrium , 2006 .
[48] M. Andreae,et al. Size Matters More Than Chemistry for Cloud-Nucleating Ability of Aerosol Particles , 2006, Science.
[49] James O. Pinto,et al. Mesoscale modeling of springtime Arctic mixed-phase stratiform clouds using a new two-moment bulk microphysics scheme , 2005 .
[50] Z. Levin,et al. The effects of aerosols on precipitation and dimensions of subtropical clouds: a sensitivity study using a numerical cloud model , 2005 .
[51] Georg A. Grell,et al. Fully coupled “online” chemistry within the WRF model , 2005 .
[52] Kevin W. Manning,et al. Explicit Forecasts of Winter Precipitation Using an Improved Bulk Microphysics Scheme. Part I: Description and Sensitivity Analysis , 2004 .
[53] William R. Cotton,et al. A Large-Droplet Mode and Prognostic Number Concentration of Cloud Droplets in the Colorado State University Regional Atmospheric Modeling System (RAMS). Part I: Module Descriptions and Supercell Test Simulations , 2004 .
[54] D. M. Murphy,et al. Single Particle Measurements of the Chemical Composition of Cirrus Ice Residue , 2004 .
[55] Sonia M. Kreidenweis,et al. African dust aerosols as atmospheric ice nuclei , 2003 .
[56] T. A. Bernstein,et al. Aircraft Icing Conditions in Northeast Colorado , 2002 .
[57] Teruyuki Nakajima,et al. Tropospheric aerosol optical thickness from the GOCART model and comparisons with satellite and sun photometer measurements , 2002 .
[58] Richard K. Jeck. HISTORY AND INTERPRETATION OF AIRCRAFT ICING INTENSITY DEFINITIONS AND FAA RULES FOR OPERATING ICING CONDITIONS , 2001 .
[59] M. Chin,et al. Sources and distributions of dust aerosols simulated with the GOCART model , 2001 .
[60] Lasse Makkonen,et al. Models for the growth of rime, glaze, icicles and wet snow on structures , 2000, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[61] Shepard A. Clough,et al. Impact of an improved longwave radiation model, RRTM, on the energy budget and thermodynamic properties of the NCAR community climate model, CCM3 , 2000 .
[62] L. Ruby Leung,et al. Prediction of cloud droplet number in a general , 1997 .
[63] P. Sikivie. Sources and distributions of dark matter , 1995, hep-ph/9503292.
[64] A. Heymsfield,et al. Parameterizations of Condensational Growth of Droplets for Use in General Circulation Models , 1992 .
[65] D. Mitchell,et al. Collecting Supercooled Cloud Droplets as a Function of Droplet Size , 1992 .
[66] Paul W. Stackhouse,et al. The Relevance of the Microphysical and Radiative Properties of Cirrus Clouds to Climate and Climatic Feedback , 1990 .
[67] B. Albrecht. Aerosols, Cloud Microphysics, and Fractional Cloudiness , 1989, Science.
[68] A. Slingo. A GCM Parameterization for the Shortwave Radiative Properties of Water Clouds , 1989 .
[69] Edward P. Lozowski,et al. A Computational Investigation of Water Droplet Trajectories , 1988 .
[70] W. Cooper,et al. Ice Initiation in Natural Clouds , 1986 .
[71] Wayne Sand,et al. Icing Conditions Encountered by a Research Aircraft , 1984 .
[72] S. Twomey. Pollution and the Planetary Albedo , 1974 .
[73] E. Bigg. The supercooling of water , 1953 .
[74] D. Arenberg. Determination of icing‐conditions for airplanes , 1943 .
[75] B. Luo,et al. Water activity as the determinant for homogeneous ice nucleation in aqueous solutions , 2000, Nature.