The SCITEAS experiment: Optical characterizations of sublimating icy planetary analogues
暂无分享,去创建一个
Nicolas Thomas | Olivier Poch | Antoine Pommerol | N. Thomas | A. Pommerol | O. Poch | M. R. Elmaarry | B. Jost | Bernhard Jost | Mohamed Ramy El-Maarry | B. Vuitel | B. Vuitel
[1] W. Hartmann,et al. Solid CN bearing material on outer solar system bodies , 1991 .
[2] B. Schmitt,et al. Strength of the H2O near-infrared absorption bands in hydrated minerals: Effects of particle size and correlation with albedo , 2008 .
[3] B. Schmitt,et al. Near-Infrared Spectroscopy of Simple Hydrocarbons and Carbon Oxides Diluted in Solid N2and as Pure Ices: Implications for Triton and Pluto , 1997 .
[4] N. Thomas,et al. Photometry of meteorites , 2012 .
[5] Richard Ulrich,et al. Sublimation rate of ice under simulated Mars conditions and the effect of layers of mock regolith JSC Mars‐1 , 2007 .
[6] J. Bell,et al. Distribution of hydrated minerals in the north polar region of Mars , 2009 .
[7] E. Cloutis,et al. Spectral reflectance properties of minerals exposed to simulated Mars surface conditions , 2008 .
[8] N. Thomas,et al. Micrometer-sized ice particles for planetary-science experiments - II. Bidirectional reflectance , 2013 .
[9] D. Wooden. Cometary Refractory Grains: Interstellar and Nebular Sources , 2008 .
[10] A. Bar-Nun,et al. An experimental study of the formation of an ice crust and migration of water vapor in a comet's upper layers , 2009 .
[11] T. Owen,et al. Trapping of N2, CO and Ar in amorphous ice—Application to comets , 2007 .
[12] G. Kargl,et al. Laboratory Investigation of the Evolution of Cometary Analogs: Results and Interpretation , 1997 .
[13] K. Seidensticker,et al. Energy analysis of porous water ice under space-simulated conditions: results from the KOSI-8 experiment , 1995 .
[14] O. Aharonson,et al. Laboratory experiments and models of diffusive emplacement of ground ice on Mars , 2009 .
[15] D. Sears,et al. Laboratory simulation of the physical processes occurring on and near the surfaces of comet nuclei , 1999 .
[16] D. Sears,et al. Experimental study of the sublimation of ice through an unconsolidated clay layer: Implications for the stability of ice on Mars and the possible diurnal variations in atmospheric water , 2008 .
[17] N. Thomas,et al. Experimental characterization of the opposition surge in fine-grained water–ice and high albedo ice analogs , 2016 .
[18] Nicolas Thomas,et al. The Colour and Stereo Surface Imaging System (CaSSIS) for ESA's Trace Gas Orbiter , 2014 .
[19] Nicolas Thomas,et al. Numerical thermal mathematical model correlation to thermal balance test using adaptive particle swarm optimization (APSO) , 2012 .
[20] J. Blum,et al. Micrometer-sized ice particles for planetary-science experiments - I. Preparation, critical rolling friction force, and specific surface energy , 2011, 1102.0430.
[21] S. Warren. Optical constants of carbon dioxide ice. , 1986, Applied optics.
[22] D. Sears,et al. Stability of ice on Mars and the water vapor diurnal cycle: Experimental study of the sublimation of ice through a fine-grained basaltic regolith , 2008 .
[23] A. Bar-Nun,et al. First experimental studies of large samples of gas-laden amorphous “cometary” ices , 2003 .
[24] G. Kargl,et al. Laboratory simulation experiments on the solid-state greenhouse effect in planetary ices , 2006 .
[25] N. Thomas,et al. Photometry and bulk physical properties of Solar System surfaces icy analogs: The Planetary Ice Laboratory at University of Bern , 2011 .
[26] M. Fomenkova,et al. Carbonaceous components in the comet Halley dust. , 1994, Geochimica et cosmochimica acta.
[27] E. Grün,et al. Laboratory simulation, A tool for comet research , 1991 .
[28] N. Thomas,et al. Observations of the northern seasonal polar cap on Mars III: CRISM/HiRISE observations of spring sublimation , 2013 .
[29] S. Guggenheim,et al. Baseline studies of the clay minerals society source clays: Introduction , 2001 .
[30] B. Schmitt,et al. Water sorption on martian regolith analogs: Thermodynamics and near-infrared reflectance spectroscopy , 2009 .
[31] J. Blum,et al. Outgassing of icy bodies in the Solar System – I. The sublimation of hexagonal water ice through dust layers , 2011, 1101.2518.
[32] M. Moore,et al. Ammonia–water ice laboratory studies relevant to outer Solar System surfaces , 2007 .
[33] A. McEwen,et al. Photometric properties of Mars soils analogs , 2013 .
[34] C. Pieters,et al. Low-temperature and low atmospheric pressure infrared reflectance spectroscopy of Mars soil analog materials , 1995 .
[35] G. Neukum,et al. Visible and near IR albedo measurements of ice/dust mixtures , 1991 .
[36] B. Schmitt,et al. Kinetics of water adsorption on minerals and the breathing of the Martian regolith , 2010 .
[37] M D Betterton,et al. Theory of structure formation in snowfields motivated by penitentes, suncups, and dirt cones. , 2001, Physical review. E, Statistical, nonlinear, and soft matter physics.
[38] S. Sandford,et al. Near-infrared spectra of laboratory H2O–CH4 ice mixtures , 2006 .
[39] A. Bar-Nun,et al. Experimental studies of ice grain ejection by massive gas flow from ice and implications to Comets, Triton and Mars , 2013 .
[40] Experiments with cometary analogues at the DLR , 1992 .
[41] N. Thomas,et al. Desiccation of phyllosilicate-bearing samples as analog for desiccation cracks on Mars: Experimental setup and initial results , 2015 .
[42] Steven B. Charnley,et al. The Chemical Composition of Comets—Emerging Taxonomies and Natal Heritage , 2011 .
[43] W. Markiewicz,et al. Sublimation coefficient of water ice under simulated cometary-like conditions , 1999 .
[44] C. B. Farmer,et al. Water vapor diffusion in Mars subsurface environments , 2007 .
[45] O. Aharonson,et al. Diffusion barriers at Mars surface conditions: Salt crusts, particle size mixtures, and dust , 2008 .
[46] P. Wurz,et al. Optimization of mass spectrometers using the adaptive particle swarm algorithm. , 2011, Journal of mass spectrometry : JMS.