COMET C/2011 W3 (LOVEJOY): ORBIT DETERMINATION, OUTBURSTS, DISINTEGRATION OF NUCLEUS, DUST-TAIL MORPHOLOGY, AND RELATIONSHIP TO NEW CLUSTER OF BRIGHT SUNGRAZERS
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[1] Z. Sekanina. Solar and Heliospheric Observatory Sungrazing Comets with Prominent Tails: Evidence on Dust-Production Peculiarities , 2000 .
[2] K. T. Ramesh,et al. The dynamic strength of an ordinary chondrite , 2011 .
[3] R. Probstein,et al. A theory of dust comets. I. Model and equations , 1968 .
[4] J. Kováčik. Correlation between Poisson's ratio and porosity in porous materials , 2006 .
[5] I. Hasegawa,et al. Possible Kreutz Sungrazing Comets Found in Historical Records , 2001 .
[6] Antoine Llebaria,et al. PHOTOMETRIC STUDY OF THE KREUTZ COMETS OBSERVED BY SOHO FROM 1996 TO 2005 , 2010 .
[7] R. Botet,et al. Appearance of layered structures in numerical simulations of polydisperse bodies accretion: Application to cometary nuclei , 2011 .
[8] B. G. Marsden,et al. The sungrazing comet group. II , 1989 .
[9] L. Jorda,et al. Properties of the nuclei and comae of 13 ecliptic comets from Hubble Space Telescope snapshot observations , 2009, Astronomy & Astrophysics.
[10] T. Matsui,et al. Physical properties of ordinary chondrites , 1983 .
[11] D. A. Biesecker,et al. Dust Grains in the Comae and Tails of Sungrazing Comets: Modeling of Their Mineralogical and Morphological Properties , 2002 .
[12] Y. Tatsumi,et al. Experimental determination of compressional wave velocities of olivine aggregate up to 1000°C at 1 GPa , 2001 .
[13] N. Warren. Elastic constants versus porosity for a highly porous ceramic, perlite , 1969 .
[14] Pascal Saint-Hilaire,et al. EXTREME-ULTRAVIOLET AND X-RAY OBSERVATIONS OF COMET LOVEJOY (C/2011 W3) IN THE LOWER CORONA , 2013, 1304.1544.
[15] W. Thompson,et al. 3D triangulation of a Sun-grazing comet , 2009 .
[16] C. Dominik,et al. The inner rim structures of protoplanetary discs , 2009, 0908.1692.
[17] D. Kohlstedt,et al. Grain boundaries as reservoirs of incompatible elements in the Earth's mantle , 2004, Nature.
[18] Zdenek Sekanina,et al. Statistical Investigation and Modeling of Sungrazing Comets Discovered with the Solar and Heliospheric Observatory , 2002 .
[19] K. Phani,et al. Critical reevaluation of the prediction of effective Poisson's ratio for porous materials , 2005 .
[20] C. J. Wolfson,et al. Sun Earth Connection Coronal and Heliospheric Investigation (SECCHI) , 2008 .
[21] Philippe Lamy,et al. Dust Near The Sun , 2004 .
[22] M. Wolff,et al. INFRARED SPECTROSCOPY OF COMET 73P/SCHWASSMANN-WACHMANN 3 USING THE SPITZER SPACE TELESCOPE , 2005, 1107.2071.
[23] J. Afonso,et al. Thermal expansivity and elastic properties of the lithospheric mantle: results from mineral physics of composites , 2005 .
[24] D. A. Biesecker,et al. Sungrazing Comets Discovered with the SOHO/LASCO Coronagraphs 1996–1998 , 1999 .
[25] M. Nolan,et al. RADAR OBSERVATIONS OF COMET 103P/HARTLEY 2 , 2011 .
[26] D. Brownlee,et al. Surface of Young Jupiter Family Comet 81P/Wild 2: View from the Stardust Spacecraft , 2004, Science.
[27] R. Haber,et al. Elastic Properties of Porous Silica Derived from Colloidal Gels , 1990 .
[28] Paul W. Chodas,et al. Fragmentation Hierarchy of Bright Sungrazing Comets and the Birth and Orbital Evolution of the Kreutz System. II. The Case for Cascading Fragmentation , 2007 .
[29] Z. Sekanina. Disappearance and disintegration of comets , 1984 .
[30] H. Rauer,et al. Neutral Sodium from Comet Hale-Bopp: A Third Type of Tail , 1997 .
[31] K. T. Ramesh,et al. Dynamic strength and fragmentation of hot-pressed silicon carbide under uniaxial compression , 2004 .
[32] Peter H. Schultz,et al. The shape, topography, and geology of Tempel 1 from Deep Impact observations , 2007 .
[33] Zdenek Sekanina,et al. Runaway Fragmentation of Sungrazing Comets Observed with the Solar and Heliospheric Observatory , 2002 .
[34] R. Botet,et al. Cometary nuclei internal structure from early aggregation simulations , 2009 .
[35] U. Fink,et al. The spatial distribution of gaseous atomic sodium in the comae of comets: Evidence for direct nucleus and extended plasma sources , 1997 .
[36] Z. Sekanina. Erosion Model for the Sungrazing Comets Observed with the Solar and Heliospheric Observatory , 2003 .
[37] Kenneth E. Evans,et al. Poisson’s Ratio , 1999 .
[38] Dispersion of thermo-optic coefficient in porous silicon layers of different porosities , 2005 .
[39] B. G. Marsden,et al. The sungrazing comet group , 1967 .
[40] P. Lamy,et al. The Large Angle Spectroscopic Coronagraph (LASCO) , 1995 .
[41] W. Benz,et al. Density of comet Shoemaker–Levy 9 deduced by modelling breakup of the parent 'rubble pile' , 1994, Nature.
[42] Erik Asphaug,et al. Structure of Comet Shoemaker-Levy 9 Inferred from the Physics of Tidal Breakup , 1996 .
[43] S. Tait. SELECTIVE PRESERVATION OF MELT INCLUSIONS IN IGNEOUS PHENOCRYSTS , 1992 .
[44] Jean Sulem,et al. Stress dependent thermal pressurization of a fluid-saturated rock , 2008, 0808.3886.
[45] O. Hunter,et al. Thermal Expansion and Elastic Properties of Two‐Phase Ceramic Bodies , 1967 .
[46] D. Chung,et al. Effects of iron/magnesium ratio on P- and S-wave velocities in olivine , 1970 .
[47] W. Huebner,et al. Solar photo rates for planetary atmospheres and atmospheric pollutants , 1984 .
[48] S. Timoshenko,et al. Theory of Elasticity (3rd ed.) , 1970 .
[49] H. Rickman,et al. Physical properties of morphological units on Comet 9P/Tempel 1 derived from near-IR Deep Impact spectra , 2009 .
[50] Myron A. Jeppesen. Young's Modulus , 1955 .
[51] H. Kimura,et al. Dynamics of Dust near the Sun , 1998 .
[52] Brian Carcich,et al. A ballistics analysis of the Deep Impact ejecta plume: Determining Comet Tempel 1's gravity, mass, and density , 2007 .
[53] B. Mysen,et al. Evaporation of olivine: Low pressure phase relations of the olivine system and its implication for the origin of chondritic components in the solar nebula , 1994 .
[54] Isao Suzuki,et al. Elastic properties of a single-crystal forsterite Mg2SiO4, up to 1,200 K , 1983 .
[55] Paul W. Chodas,et al. Fragmentation Hierarchy of Bright Sungrazing Comets and the Birth and Orbital Evolution of the Kreutz System. I. Two-Superfragment Model , 2004 .
[56] Ho Peng Yoke,et al. Ancient and mediaeval observations of comets and novae in Chinese sources , 1962 .
[57] J. B. Austin. Thermal Expansion of Nonmetallic Crystals , 1952 .
[58] Paul W. Chodas,et al. A New Orbit Determination for Bright Sungrazing Comet of 1843 , 2008 .
[59] J. Solem. Density and size of comet Shoemaker–Levy 9 deduced from a tidal breakup model , 1994, Nature.
[60] Daniel Bellet,et al. X-ray diffraction investigation of the low temperature thermal expansion of porous silicon , 2000 .
[61] H. U. Keller,et al. A note on the survival of the sungrazing comet C/2011 W3 (Lovejoy) within the Roche limit , 2012, 1203.1808.
[62] Daniel T. Britt,et al. Stony meteorite porosities and densities: A review of the data through 2001 , 2003 .
[63] J. Kissel,et al. Attogram Dust Cloud a Million Kilometers from Comet Halley , 1990 .