MASS DISTRIBUTIONS OF STARS AND CORES IN YOUNG GROUPS AND CLUSTERS
暂无分享,去创建一个
Cambridge | France. | Usa | H. F. Astrophysics | París | M. Michel | H. Kirk | Philip C. Myers 'Ecole Normale Sup'erieure de Paris | P. Myers
[1] E. Salpeter. The Luminosity function and stellar evolution , 1955 .
[2] W. Bonnar,et al. Boyle's Law and gravitational instability , 1956 .
[3] R. Larson. A Simple Probabilistic Theory of Fragmentation , 1973 .
[4] H. Zinnecker. Star formation from hierarchical cloud fragmentation - A statistical theory of the log-normal Initial Mass Function , 1984 .
[5] J. Barrow,et al. Minimal spanning trees, filaments and galaxy clustering , 1985 .
[6] C. D. Kemp,et al. Density Estimation for Statistics and Data Analysis , 1987 .
[7] J. Stutzki,et al. High spatial resolution isotopic CO and CS observations of M17 SW - The clumpy structure of the molecular cloud core , 1989 .
[8] G. Fuller,et al. Density Structure and Star Formation in Dense Cores with Thermal and Nonthermal Motions , 1992 .
[9] P. Andre',et al. A submillimetre continuum survey of pre-protostellar cores , 1994 .
[10] Leo Blitz,et al. DETERMINING STRUCTURE IN MOLECULAR CLOUDS , 1994 .
[11] A Theory of the IMF for Star Formation in Molecular Clouds , 1996, astro-ph/9601139.
[12] C. Clarke,et al. Accretion and the stellar mass spectrum in small clusters , 1997 .
[13] An Analytic Approximation to the Isothermal Sphere , 1996, astro-ph/9604084.
[14] Leonardo Testi,et al. Star Formation in Clusters: A Survey of Compact Millimeter-Wave Sources in the Serpens Core , 1998, astro-ph/9809323.
[15] Francesco Palla,et al. Star Formation in the Orion Nebula Cluster , 1999 .
[16] Christine D. Wilson,et al. Large-Area Mapping at 850 Microns. II. Analysis of the Clump Distribution in the ρ Ophiuchi Molecular Cloud , 2000 .
[17] F. Allard,et al. Evolutionary Models for Very Low-Mass Stars and Brown Dwarfs with Dusty Atmospheres , 2000 .
[18] D. Johnstone,et al. Large Area Mapping at 850 Microns. III. Analysis of the Clump Distribution in the Orion B Molecular Cloud , 2001 .
[19] A SCUBA survey of the NGC 2068/2071 protoclusters , 2001, astro-ph/0105019.
[20] Pavel Kroupa. The Initial Mass Function of Stars: Evidence for Uniformity in Variable Systems , 2002, Science.
[21] M. Kenworthy,et al. The Structure and Evolution of the Lagoon Nebula. I. Submillimeter Continuum and CO Line Mapping , 2002 .
[22] G. Chabrier. Galactic Stellar and Substellar Initial Mass Function , 2003, astro-ph/0304382.
[23] C. McKee,et al. The Formation of Massive Stars from Turbulent Cores , 2002, astro-ph/0206037.
[24] A Census of the Young Cluster IC 348 , 2003, astro-ph/0304409.
[25] G. Rieke,et al. Spitzer Observations of IC 348: The Disk Population at 2-3 Million Years , 2005, astro-ph/0511638.
[26] E. Rosolowsky,et al. The Mass Spectra of Giant Molecular Clouds in the Local Group , 2005, astro-ph/0508679.
[27] The initial conditions of isolated star formation — VI. SCUBA mapping of pre-stellar cores , 2005, astro-ph/0505190.
[28] D. Johnstone,et al. The Large- and Small-Scale Structures of Dust in the Star-forming Perseus Molecular Cloud , 2006, astro-ph/0602089.
[29] 2MASS wide field extinction maps. I. The Pipe nebula , 2006, astro-ph/0606670.
[30] J. Alves,et al. The mass function of dense molecular cores and the origin of the IMF , 2007 .
[31] S. Bontemps,et al. Massive Clumps in the NGC 6334 Star-forming Region , 2007, 0706.3035.
[32] N. Peretto,et al. The initial conditions of star formation in the Ophiuchus main cloud: Kinematics of the protocluster condensations , , 2007, 0706.1535.
[33] K. Luhman. The Stellar Population of the Chamaeleon I Star-forming Region , 2007, 0710.3037.
[34] E. Young,et al. A Spitzer Census of the IC 348 Nebula , 2007, 0704.0203.
[35] D. Li,et al. Massive Quiescent Cores in Orion. II. Core Mass Function , 2006, astro-ph/0610634.
[36] D. Ward-Thompson,et al. A SCUBA survey of Orion -the low-mass end of the core mass function , 2006, astro-ph/0611164.
[37] Bonn,et al. The relationship between the prestellar core mass function and the stellar initial mass function , 2007, 0711.1749.
[38] G. Fuller,et al. Star formation in Perseus. IV. Mass-dependent evolution of dense cores , 2008, 0803.1064.
[39] Jonathan P. Williams,et al. Accepted for Publication in the Astrophysical Journal on the Evolution of the Dense Core Mass Function , 1998 .
[40] G. Fazio,et al. A SPITZER SURVEY OF YOUNG STELLAR CLUSTERS WITHIN ONE KILOPARSEC OF THE SUN: CLUSTER CORE EXTRACTION AND BASIC STRUCTURAL ANALYSIS , 2009, 0906.0201.
[41] M. Lombardi,et al. DENSE CORES IN THE PIPE NEBULA: AN IMPROVED CORE MASS FUNCTION , 2009, 0904.4169.
[42] Mark E. J. Newman,et al. Power-Law Distributions in Empirical Data , 2007, SIAM Rev..
[43] S. Longmore,et al. The simultaneous formation of massive stars and stellar clusters , 2009, 0908.3910.
[44] Alyssa A. Goodman,et al. THE PERILS OF CLUMPFIND: THE MASS SPECTRUM OF SUBSTRUCTURES IN MOLECULAR CLOUDS , 2009, 0906.0331.
[45] J. M. Rathborne,et al. On the fidelity of the core mass functions derived from dust column density data , 2009 .
[46] Stellar Kinematics of Young Clusters in Turbulent Hydrodynamic Simulations , 2009, 0909.4304.
[47] P. Myers. STAR-FORMING GAS IN YOUNG CLUSTERS , 2010, 1003.4900.
[48] Young Stellar Groups and Their Most Massive Stars , 2010, 1011.1416.
[49] L. Hartmann,et al. THE DISK POPULATION OF THE TAURUS STAR-FORMING REGION , 2009, 0911.5457.
[50] J. Wadsley,et al. MEASURING THE CLUMP MASS FUNCTION IN THE AGE OF SCUBA2, HERSCHEL, AND ALMA , 2010, 1006.4320.