Influence of grain shape on light penetration in snow
暂无分享,去创建一个
Laurent Arnaud | Ghislain Picard | Quentin Libois | Marie Dumont | Martin D. King | M. Dumont | G. Picard | L. Arnaud | M. King | Q. Libois | C. M. Carmagnola | C. Carmagnola
[1] K. Taylor,et al. Interpretation of Snow-Climate Feedback as Produced by 17 General Circulation Models , 1991, Science.
[2] R. Fovell,et al. Simulating cold season snowpack: Impacts of snow albedo and multi-layer snow physics , 2011 .
[3] E. P. Shettle,et al. The Transfer of Solar Irradiance Through Inhomogeneous Turbid Atmospheres Evaluated by Eddington's Approximation , 1970 .
[4] Teruo Aoki,et al. Effects of snow physical parameters on spectral albedo and bidirectional reflectance of snow surface , 2000 .
[5] S. Warren,et al. Optical constants of ice from the ultraviolet to the microwave: A revised compilation , 2008 .
[6] A. Hall. The role of surface albedo feedback in climate , 2004 .
[7] G. Koh. Radiative Transfer in Falling Snow: A Two-Stream Approximation , 1989 .
[8] C. Bohren. Applicability of Effective-Medium Theories to problems of Scattering and Absorption by Nonhomogeneous Atmospheric Particles , 1986 .
[9] J. Giddings,et al. Diffusion theory applied to radiant energy distribution and albedo of snow , 1961 .
[10] Laurent Arnaud,et al. Determining snow specific surface area from near-infrared reflectance measurements: Numerical study of the influence of grain shape , 2009 .
[11] Craig F. Bohren,et al. Colors of snow, frozen waterfalls, and icebergs , 1983 .
[12] E. Martin,et al. An Energy and Mass Model of Snow Cover Suitable for Operational Avalanche Forecasting , 1989, Journal of Glaciology.
[13] L. Arnaud,et al. Measurement of vertical profiles of snow specific surface area with a 1 cm resolution using infrared reflectance: instrument description and validation , 2011, Journal of Glaciology.
[14] Ghislain Picard,et al. Measurement of the specific surface area of snow using infrared reflectance in an integrating sphere at 1310 and 1550 nm , 2009 .
[15] M. King,et al. Decreased albedo, e-folding depth and photolytic OH radical and NO2 production with increasing black carbon content in Arctic snow , 2012 .
[16] A. MacArthur,et al. Hydroxyl radical and NOx production rates, black carbon concentrations and light‐absorbing impurities in snow from field measurements of light penetration and nadir reflectivity of onshore and offshore coastal Alaskan snow , 2012 .
[17] D. Perovich. Light reflection and transmission by a temperate snow cover , 2007, Journal of Glaciology.
[18] V. Vouk. Projected Area of Convex Bodies , 1948, Nature.
[19] K. Stamnes,et al. Numerically stable algorithm for discrete-ordinate-method radiative transfer in multiple scattering and emitting layered media. , 1988, Applied optics.
[20] Ping Yang,et al. Snow optical properties for different particle shapes with application to snow grain size retrieval and MODIS/CERES radiance comparison over Antarctica , 2008 .
[21] J. Varela,et al. Two stream approximation to radiative transfer equation: An alternative method of solution , 2005 .
[22] A. Kokhanovsky. Spectral reflectance of solar light from dirty snow: a simple theoretical model and its validation , 2013 .
[23] A. Kokhanovsky,et al. Retrieval of snow albedo and grain size using reflectance measurements in Himalayan basin , 2010 .
[24] V. Ramaswamy,et al. Albedo of soot‐contaminated snow , 1983 .
[25] C. Zender,et al. Snowpack radiative heating: Influence on Tibetan Plateau climate , 2005 .
[26] E. Brun,et al. A numerical model to simulate snow-cover stratigraphy for operational avalanche forecasting , 1992, Journal of Glaciology.
[27] J. King,et al. Near-surface climate and surface energy budget of Larsen C ice shelf, Antarctic Peninsula , 2011 .
[28] J. Wiscombe,et al. The Delta-Eddington Approximation for a Vertically Inhomogeneous Atmosphere , 1977 .
[29] S. Colbeck,et al. An overview of seasonal snow metamorphism , 1982 .
[30] Thomas C. Grenfell,et al. Representation Of A Nonspherical Ice Particle By A Collection Of Independent Spheres For Scattering And Absorption Of Radiation : 2 . Hexagonal Columns And Plates , 2003 .
[31] Konrad Steffen,et al. The role of radiation penetration in the energy budget of the snowpack at Summit, Greenland , 2009 .
[32] Jennie L. Thomas,et al. The influence of snow grain size and impurities on the vertical profiles of actinic flux and associated NO x emissions on the Antarctic and Greenland ice sheets , 2012 .
[33] S. Warren,et al. A Model for the Spectral Albedo of Snow. I: Pure Snow , 1980 .
[34] John Hallett,et al. Light-scattering properties of plate and column ice crystals generated in a laboratory cold chamber. , 2002, Applied optics.
[35] S. Colbeck,et al. Snow-crystal Growth with Varying Surface Temperatures and Radiation Penetration , 1989, Journal of Glaciology.
[36] C. Veen,et al. Partitioning of melt energy and meltwater fluxes in the ablation zone of the west Greenland ice sheet , 2008 .
[37] Stephen G. Warren,et al. Solar-heating rates and temperature profiles in Antarctic snow and ice , 1993, Journal of Glaciology.
[38] Alexander A. Kokhanovsky,et al. Light Scattering Media Optics: Problems and Solutions , 2010 .
[39] B. Choudhury. Radiative properties of snow for clear sky solar radiation , 1981 .
[40] K. Liou,et al. Solar Radiative Transfer in Cirrus Clouds. Part I: Single-Scattering and Optical Properties of Hexagonal Ice Crystals , 1989 .
[41] Hsueh-Chia Chang,et al. Determination of the wavelength dependence of refractive indices of flame soot , 1990, Proceedings of the Royal Society of London. Series A: Mathematical and Physical Sciences.
[42] Ingo Meirold-Mautner,et al. Measurements and model calculations of the solar shortwave fluxes in snow on Summit, Greenland , 2004, Annals of Glaciology.
[43] Sophia Haussener,et al. Determination of the macroscopic optical properties of snow based on exact morphology and direct pore‐level heat transfer modeling , 2012 .
[44] Ice. The international classification for seasonal snow on the ground , 1990 .
[45] W. Simpson,et al. Extinction of UV radiation in Arctic snow at Alert, Canada (82°N) , 2001 .
[46] D. Beaglehole,et al. The UV to IR transmittance of Antarctic snow , 1998 .
[47] E. Martin,et al. The detailed snowpack scheme Crocus and its implementation in SURFEX v 7 . 2 , 2011 .
[48] T. Schlatter. The Local Surface Energy Balance and Subsurface Temperature Regime in Antarctica , 1972 .
[49] Y. Arnaud,et al. High-accuracy measurements of snow Bidirectional Reflectance Distribution Function at visible and NIR wavelengths - comparison with modelling results , 2009 .
[50] A. Kokhanovsky,et al. Integral light-scattering and absorption characteristics of large, nonspherical particles. , 1997, Applied optics.
[51] P. Chevrand,et al. CARACTERISATION OPTIQUE DE DIFFERENTS TYPES DE NEIGE. EXTINCTION DE LA LUMIERE DANS LA NEIGE , 1987 .
[52] M. Frey,et al. Snow optical properties at Dome C (Concordia), Antarctica; implications for snow emissions and snow chemistry of reactive nitrogen , 2011 .
[53] E. Zege,et al. New algorithm to retrieve the effective snow grain size and pollution amount from satellite data , 2008, Annals of Glaciology.
[54] S. Warren,et al. Reflection of solar radiation by the Antarctic snow surface at ultraviolet, visible, and near‐infrared wavelengths , 1994 .
[55] S. Warren,et al. Spectral Bidirectional Reflectance of Antarctic Snow: Measurements and Parameterization , 2006 .
[56] S. Madronich,et al. Calculation of actinic fluxes with a coupled atmosphere-snow radiative transfer model , 2002 .
[57] Bruce R. Barkstrom,et al. Theory of the optical properties of snow , 1974 .
[58] Benoit Montpetit,et al. On the relationship between snow grain morphology and in-situ near infrared calibrated reflectance photographs , 2010 .
[59] F. Dominé,et al. Specific surface area of snow samples determined by CH4 adsorption at 77 K and estimated by optical microscopy and scanning electron microscopy. , 2001, Environmental science & technology.
[60] A. Macke,et al. Single Scattering Properties of Atmospheric Ice Crystals , 1996 .
[61] R. V. Dunkle,et al. AN APPROXIMATE ANALYSIS OF THE SOLAR REFLECTANCE AND TRANSMITTANCE OF A SNOW COVER , 1956 .
[62] C. McKay,et al. Rapid calculation of radiative heating rates and photodissociation rates in inhomogeneous multiple scattering atmospheres , 1989 .
[63] E. Pougatch,et al. Experimental investigation of optical snow properties , 1993, Annals of Glaciology.
[64] M. Mishchenko,et al. Scattering of light by polydisperse, randomly oriented, finite circular cylinders. , 1996, Applied optics.
[65] Thomas C. Grenfell,et al. The Optical Properties of Ice and Snow in the Arctic Basin , 1977, Journal of Glaciology.
[66] Cécile Coléou,et al. Three-dimensional geometric measurements of snow microstructural evolution under isothermal conditions , 2004, Annals of Glaciology.
[67] J. Penner,et al. Enhanced Solar Energy Absorption by Internally-Mixed Black Carbon in Snow Grains , 2012 .
[68] C. Leroux,et al. Hemispherical–directional reflectance measurements of natural snow in the 0.9–1.45 μm spectral range: comparison with adding–doubling modelling , 1998, Annals of Glaciology.
[69] Bo-Cai Gao,et al. Effect of ice crystal shape and effective size on snow bidirectional reflectance , 2006 .
[70] Eleonora P Zege,et al. Scattering optics of snow. , 2004, Applied optics.
[71] Roberto Salzano,et al. Correlation between the specific surface area and the short wave infrared (SWIR) reflectance of snow , 2006 .
[72] Stephen G. Warren,et al. Optical Properties of Snow , 1982 .
[73] W. Wiscombe. Improved Mie scattering algorithms. , 1980, Applied optics.
[74] B. Barkstrom. Some Effects of Multiple Scattering on the Distribution of Solar Radiation in Snow and Ice , 1972 .
[75] T. Bond,et al. Light Absorption by Carbonaceous Particles: An Investigative Review , 2006 .
[76] H. Gerber,et al. Shortwave, single‐scattering properties of arctic ice clouds , 2001 .
[77] S. Warren,et al. A Model for the Spectral Albedo of Snow. II: Snow Containing Atmospheric Aerosols , 1980 .
[78] A. Kokhanovsky. Scaling constant and its determination from simultaneous measurements of light reflection and methane adsorption by snow samples. , 2006, Optics letters.
[79] A. Hall,et al. Using the current seasonal cycle to constrain snow albedo feedback in future climate change , 2006 .
[80] M. King. The effect of measurement geometry on recording solar radiation attenuation in snowpack (e-folding depth) using fibre-optic probes , 2012 .
[81] A. MacArthur,et al. Calculations of in‐snow NO2 and OH radical photochemical production and photolysis rates: A field and radiative‐transfer study of the optical properties of Arctic (Ny‐Ålesund, Svalbard) snow , 2011 .
[82] S. Warren,et al. Visible and near-ultraviolet absorption spectrum of ice from transmission of solar radiation into snow. , 2006, Applied optics.
[83] Meinrat O. Andreae,et al. Optical properties of humic-like substances (HULIS) in biomass-burning aerosols , 2005 .
[84] Michael Lehning,et al. Snow physics as relevant to snow photochemistry , 2007 .
[85] Jan-Gunnar Winther,et al. Antarctic Surface and Subsurface Snow and Ice Melt Fluxes , 2005 .
[86] Laurent Arnaud,et al. Inhibition of the positive snow-albedo feedback by precipitation in interior Antarctica , 2012 .
[87] H. V. Hulst. Light Scattering by Small Particles , 1957 .
[88] T. Painter,et al. Impact of disturbed desert soils on duration of mountain snow cover , 2007 .