The Impact of Warm and Moist Airmass Perturbations on Arctic Mixed-Phase Stratocumulus
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[1] U. Lohmann,et al. Cloud Ice Processes Enhance Spatial Scales of Organization in Arctic Stratocumulus , 2019, Geophysical Research Letters.
[2] U. Lohmann,et al. Response of Arctic mixed-phase clouds to aerosol perturbations under different surface forcings , 2019, Atmospheric Chemistry and Physics.
[3] A. Macke,et al. Local and Remote Controls on Arctic Mixed‐Layer Evolution , 2019, Journal of Advances in Modeling Earth Systems.
[4] T. Storelvmo,et al. Evidence of Strong Contributions From Mixed‐Phase Clouds to Arctic Climate Change , 2019, Geophysical Research Letters.
[5] M. Shupe,et al. Arctic Summer Airmass Transformation, Surface Inversions, and the Surface Energy Budget , 2019, Journal of Climate.
[6] M. Wendisch,et al. Meteorological conditions during the ACLOUD/PASCAL field campaign near Svalbard in early summer 2017 , 2018, Atmospheric Chemistry and Physics.
[7] Maximilian Maahn,et al. The relative impact of cloud condensation nuclei and ice nucleating particle concentrations on phase partitioning in Arctic mixed-phase stratocumulus clouds , 2018, Atmospheric Chemistry and Physics.
[8] Cecilia M. Bitz,et al. Polar amplification dominated by local forcing and feedbacks , 2018, Nature Climate Change.
[9] Time Evolution of the Cloud Response to Moisture Intrusions into the Arctic during Winter , 2018, Journal of Climate.
[10] Manfred Wendisch,et al. Role of air-mass transformations in exchange between the Arctic and mid-latitudes , 2018, Nature Geoscience.
[11] I. Tan. Evidence of Strong Contributions from Mixed-Phase Clouds to Arctic Amplification , 2018 .
[12] J. Francis,et al. Summers with low Arctic sea ice linked to persistence of spring atmospheric circulation patterns , 2018, Climate Dynamics.
[13] C. Dearden,et al. Relating large-scale subsidence to convection development in Arctic mixed-phase marine stratocumulus , 2018 .
[14] H. Chepfer,et al. Isolating the Liquid Cloud Response to Recent Arctic Sea Ice Variability Using Spaceborne Lidar Observations , 2018 .
[15] U. Lohmann,et al. A model intercomparison of CCN-limited tenuous clouds in the high Arctic , 2017, Atmospheric Chemistry and Physics.
[16] U. Lohmann,et al. How important are future marine and shipping aerosol emissions in a warming Arctic summer and autumn? , 2017, Atmospheric Chemistry and Physics.
[17] G. Messori,et al. On the Drivers of Wintertime Temperature Extremes in the High Arctic , 2017 .
[18] Marion Maturilli,et al. Contribution of Atmospheric Advection to the Amplified Winter Warming in the Arctic North Atlantic Region , 2017 .
[19] O. Bock,et al. Comparison of total water vapour content in the Arctic derived from GNSS, AIRS, MODIS and SCIAMACHY , 2017 .
[20] G. Magnusdottir,et al. Springtime extreme moisture transport into the Arctic and its impact on sea ice concentration , 2017 .
[21] M. Shupe,et al. Cloud–Atmospheric Boundary Layer–Surface Interactions on the Greenland Ice Sheet during the July 2012 Extreme Melt Event , 2017 .
[22] O. Bulygina,et al. Climatology and Interannual Variability of Cloudiness in the Atlantic Arctic from Surface Observations since the Late Nineteenth Century , 2017 .
[23] U. Lohmann,et al. Cloud response and feedback processes in stratiform mixed‐phase clouds perturbed by ship exhaust , 2017 .
[24] Amy Solomon,et al. Linking atmospheric synoptic transport, cloud phase, surface energy fluxes, and sea-ice growth: observations of midwinter SHEBA conditions , 2017, Climate Dynamics.
[25] M. Tjernström,et al. Modelling micro- and macrophysical contributors to the dissipation of an Arctic mixed-phase cloud during the Arctic Summer Cloud Ocean Study (ASCOS) , 2016 .
[26] Gunilla Svensson,et al. Melt onset over Arctic sea ice controlled by atmospheric moisture transport , 2016 .
[27] R. Caballero,et al. The Role of Moist Intrusions in Winter Arctic Warming and Sea Ice Decline , 2016 .
[28] T. L’Ecuyer,et al. Response of the lower troposphere to moisture intrusions into the Arctic , 2016 .
[29] P. Brown,et al. Observed microphysical changes in Arctic mixed-phase clouds when transitioning from sea ice to open ocean , 2016 .
[30] Alexander V. Ryzhkov,et al. Use of X-Band Differential Reflectivity Measurements to Study Shallow Arctic Mixed-Phase Clouds , 2016 .
[31] T. Storelvmo,et al. Observational constraints on mixed-phase clouds imply higher climate sensitivity , 2015, Science.
[32] S. Serrar,et al. Fast atmospheric response to a sudden thinning of Arctic sea ice , 2016, Climate Dynamics.
[33] M. Shupe,et al. The role of ice nuclei recycling in the maintenance of cloud ice in Arctic mixed-phase stratocumulus , 2015 .
[34] John Prytherch,et al. Warm‐air advection, air mass transformation and fog causes rapid ice melt , 2015 .
[35] M. Gallagher,et al. Observations and comparisons of cloud microphysical properties in spring and summertime Arctic stratocumulus clouds during the ACCACIA campaign , 2014 .
[36] Dara Entekhabi,et al. Recent Arctic amplification and extreme mid-latitude weather , 2014 .
[37] M. Petters,et al. Integrating laboratory and field data to quantify the immersion freezing ice nucleation activity of mineral dust particles , 2014 .
[38] T. Mauritsen,et al. Arctic amplification dominated by temperature feedbacks in contemporary climate models , 2014 .
[39] M. Shupe,et al. The Sensitivity of Springtime Arctic Mixed-Phase Stratocumulus Clouds to Surface-Layer and Cloud-Top Inversion-Layer Moisture Sources , 2014 .
[40] Marie-Luise Kapsch,et al. Springtime atmospheric energy transport and the control of Arctic summer sea-ice extent , 2013 .
[41] C. Bretherton,et al. Mechanisms of marine low cloud sensitivity to idealized climate perturbations: A single‐LES exploration extending the CGILS cases , 2013 .
[42] Muyin Wang,et al. When will the summer Arctic be nearly sea ice free? , 2013 .
[43] K. Steffen,et al. July 2012 Greenland melt extent enhanced by low-level liquid clouds , 2013, Nature.
[44] Andrew Gettelman,et al. The Influence of Local Feedbacks and Northward Heat Transport on the Equilibrium Arctic Climate Response to Increased Greenhouse Gas Forcing , 2012 .
[45] Jeffrey R. Key,et al. A cloudier Arctic expected with diminishing sea ice , 2012 .
[46] W. Langhans,et al. A Smagorinsky-Lilly turbulence closure for COSMO-LES: Implementation and comparison to ARPS , 2012 .
[47] M. Shupe,et al. Resilience of persistent Arctic mixed-phase clouds , 2012 .
[48] M. Shupe,et al. Moisture and dynamical interactions maintaining decoupled Arctic mixed-phase stratocumulus in the presence of a humidity inversion , 2011 .
[49] Clara Deser,et al. Arctic Inversion Strength in Climate Models , 2011 .
[50] R. Barry,et al. Processes and impacts of Arctic amplification: A research synthesis , 2011 .
[51] Matthew D. Shupe,et al. Clouds at Arctic Atmospheric Observatories. Part II: Thermodynamic Phase Characteristics , 2011 .
[52] Mark C. Serreze,et al. Recent changes in tropospheric water vapor over the Arctic as assessed from radiosondes and atmospheric reanalyses , 2010 .
[53] Thorsten Markus,et al. Influence of Arctic sea ice extent on polar cloud fraction and vertical structure and implications for regional climate , 2010 .
[54] I. Simmonds,et al. Increasing fall‐winter energy loss from the Arctic Ocean and its role in Arctic temperature amplification , 2010 .
[55] J. Harrington,et al. Influence of parameterized ice habit on simulated mixed phase Arctic clouds , 2010 .
[56] Minghuai Wang,et al. Polar amplification in a coupled climate model with locked albedo , 2009 .
[57] David D. Turner,et al. A Focus on Mixed-Phase Clouds: The Status of Ground-Based Observational Methods , 2008 .
[58] Axel Schweiger,et al. Relationships between Arctic sea ice and clouds during autumn , 2008 .
[59] J. Curry,et al. Sensitivity of modeled arctic mixed‐phase stratocumulus to cloud condensation and ice nuclei over regionally varying surface conditions , 2008 .
[60] M. Shupe,et al. A FOCUS ON MIXED-PHASE CLOUDS , 2008 .
[61] K. D. Beheng,et al. A two-moment cloud microphysics parameterization for mixed-phase clouds. Part 1: Model description , 2006 .
[62] J. R. Bates,et al. Polar amplification of surface warming on an aquaplanet in “ghost forcing” experiments without sea ice feedbacks , 2005 .
[63] F. Martin Ralph,et al. Dropsonde Observations in Low-Level Jets over the Northeastern Pacific Ocean from CALJET-1998 and PACJET-2001: Mean Vertical-Profile and Atmospheric-River Characteristics , 2005 .
[64] M. Kirkpatrick,et al. The impact of humidity above stratiform clouds on indirect aerosol climate forcing , 2004, Nature.
[65] D. Hartmann,et al. Spatial variability of liquid water path in marine low cloud : Part II . Geographic distribution and dependence upon large-scale parameters , 2004 .
[66] J. Seinfeld,et al. Parameterization of cloud droplet formation in global climate models , 2003 .
[67] Ulrich Schättler,et al. Requirements and problems in parallel model development at DWD , 2000, Sci. Program..
[68] Judith A. Curry,et al. Overview of Arctic Cloud and Radiation Characteristics , 1996 .
[69] Judith A. Curry,et al. Sea Ice-Albedo Climate Feedback Mechanism , 1995 .
[70] S. Klein,et al. The Seasonal Cycle of Low Stratiform Clouds , 1993 .
[71] B. Ritter,et al. A comprehensive radiation scheme for numerical weather prediction models with potential applications in climate simulations , 1992 .
[72] T. Choularton,et al. A model of the orographic enhancement of snowfall by the seeder‐feeder mechanism , 1986 .
[73] S. Rutledge,et al. The Mesoscale and Microscale Structure and Organization of Clouds and Precipitation in Midlatitude Cyclones. VIII: A Model for the “Seeder-Feeder” Process in Warm-Frontal Rainbands , 1983 .
[74] William R. Cotton,et al. The Use of lce-Liquid Water Potential Temperature as a Thermodynamic Variable In Deep Atmospheric Models , 1981 .
[75] S. Rutledge,et al. The Mesoscale and Microscale Structure and Organization of Clouds and Precipitation in Midlatitude Cyclones. III: Air Motions and Precipitation Growth in a Warm-Frontal Rainband , 1981 .
[76] J. Wieringa,et al. Representativeness of Wind Observations at Airports. , 1980 .
[77] J. Hallett,et al. Production of secondary ice particles during the riming process , 1974, Nature.
[78] B. J. Mason,et al. Physics of Clouds and Precipitation , 1954, Nature.