The shape, topography, and geology of Tempel 1 from Deep Impact observations

[1]  H. J. Moore,et al.  Standard techniques for presentation and analysis of crater size-frequency data , 1978 .

[2]  D. K. Yeomans,et al.  Orbital motion, nucleus precession, and splitting of periodic Comet Brooks 2 , 1985 .

[3]  Paul R. Weissman,et al.  Are cometary nuclei primordial rubble piles? , 1986, Nature.

[4]  Harold F. Levison,et al.  The Long-Term Dynamical Behavior of Short-Period Comets , 1993 .

[5]  Peter C. Thomas,et al.  Gravity, Tides, and Topography on Small Satellites and Asteroids: Application to Surface Features of the Martian Satellites , 1993 .

[6]  A. McEwen,et al.  The Geology of Gaspra , 1994 .

[7]  S. Weidenschilling,et al.  The Origin of Comets in the Solar Nebula: A Unified Model , 1997 .

[8]  P. Thomas,et al.  Impact History of Eros: Craters and Boulders , 2002 .

[9]  Karen J. Meech,et al.  The nucleus of Deep Impact target Comet 9P/Tempel 1 , 2003 .

[10]  D. Brownlee,et al.  Surface of Young Jupiter Family Comet 81P/Wild 2: View from the Stardust Spacecraft , 2004, Science.

[11]  Daniel C. Boice,et al.  The morphology and surface processes of Comet 19/P Borrelly , 2004 .

[12]  D. Brownlee,et al.  Comet 81P/Wild 2 size, shape, and orientation , 2004 .

[13]  Nicolas Thomas,et al.  Imaging borrelly : DS1/Comet Borrelly , 2004 .

[14]  D. Brownlee,et al.  Topography of the 81/P Wild 2 Nucleus Derived from Stardust Stereoimages , 2005 .

[15]  M. Belton,et al.  Deep Impact: Working Properties for the Target Nucleus – Comet 9P/Tempel 1 , 2005 .

[16]  P. K. Seidelmann,et al.  Report of the IAU/IAG Working Group on Cartographic Coordinates and Rotational Elements: 2003 , 2005 .

[17]  M. Belton,et al.  Natural Outbursts by Comet Tempel 1 , 2005 .

[18]  James W. Baer,et al.  An Overview of the Instrument Suite for the Deep Impact Mission , 2005 .

[19]  C. Russell Deep impact mission : looking beneath the surface of a cometary nucleus , 2005 .

[20]  Deep Impact: excavating comet Tempel 1 , 2006, Proceedings of the International Astronomical Union.

[21]  K. P. Klaasen,et al.  Exposed Water Ice Deposits on the Surface of Comet 9P/Tempel 1 , 2006, Science.

[22]  M. Belton A Deep Impact Mission Contribution to the Internal Structure of Jupiter Family Cometary Nuclei: The TALPS or , 2006 .

[23]  J. E. Richardson,et al.  Modeling the Ballistic Behavior of Solid Ejecta from the Deep Impact Cratering Event , 2006 .

[24]  Karen J. Meech,et al.  Deep Impact photometry of Comet 9p/Tempel 1 , 2007 .

[25]  Brian Carcich,et al.  A ballistics analysis of the Deep Impact ejecta plume: Determining Comet Tempel 1's gravity, mass, and density , 2007 .

[26]  W. Delamere,et al.  The internal structure of Jupiter family cometary nuclei from Deep Impact observations: The “talps” or “layered pile” model , 2007 .

[27]  M. Belton,et al.  Dust coma morphology in the Deep Impact images of Comet 9P/Tempel 1 , 2007 .

[28]  Kenneth Seidelmann Working Group on Cartographic Coordinates and Rotational Elements , 2007 .