Attitude Stabilization of Spacecraft in Very Low Earth Orbit by Center-Of-Mass Shifting
暂无分享,去创建一个
Marcello Romano | Josep Virgili-Llop | Halis C. Polat | M. Romano | Josep Virgili-Llop | H. C. Polat
[1] Stephan Theil,et al. PERFORMANCE ANALYSIS OF AN ATTITUDE CONTROL SYSTEM FOR SOLAR SAILS USING SLIDING MASSES , 2011 .
[2] Paul B. Hays,et al. An empirical model of the Earth's horizontal wind fields: HWM07 , 2008 .
[3] James R. Wertz,et al. Quantifying the Cost Reduction Potential for Earth Observation Satellites , 2017 .
[4] Bong Wie,et al. Solar Sail Attitude Control and Dynamics, Part 1 , 2004 .
[5] D. Drob,et al. Nrlmsise-00 Empirical Model of the Atmosphere: Statistical Comparisons and Scientific Issues , 2002 .
[6] M. H. Kaplan,et al. Optimal space station detumbling by internal mass motion , 1976, Autom..
[7] Miguel F. Larsen,et al. Accuracy issues of the existing thermospheric wind models: can we rely on them in seeking solutions to wind-driven problems? , 2009 .
[8] W. Steckelmacher. Molecular gas dynamics and the direct simulation of gas flows , 1996 .
[9] Carl Grubin,et al. Dynamics of a Vehicle Containing Moving Parts , 1962 .
[10] R. A. Challinor,et al. The apparent rotation of the upper atmosphere , 1968 .
[11] Peter Roberts,et al. Spacecraft drag modelling , 2014 .
[12] A. E. Roy. Satellite orbits in an atmosphere: Theory and applications ?. Blackie & Son Limited, Glasgow (1987). xi+291 pp. U.K. £49.00 , 1988 .
[13] Paul B. Hays,et al. Neutral winds in the polar thermosphere as measured from dynamics explorer , 1982 .
[14] Peter Roberts,et al. Atmospheric Interface Reentry Point Targeting Using Aerodynamic Drag Control , 2015 .
[15] Stephen Hobbs,et al. Descending Sun-Synchronous Orbits with Aerodynamic Inclination Correction , 2015 .
[16] D. M. Halsmer. Nutational stability and passive control of spinning rockets with internal mass motion , 1995 .
[17] An-Min Zou,et al. Attitude Control of Miniature Satellites Using Movable Masses , 2010 .
[18] Riccardo Bevilacqua,et al. Rendezvous Maneuvers of Multiple Spacecraft Using Differential Drag Under J2 Perturbation , 2008 .
[19] Doreen M.C. Walker,et al. Upper-atmosphere zonal winds from satellite orbit analysis: An update , 1988 .
[20] Bong Wie,et al. Quaternion feedback for spacecraft large angle maneuvers , 1985 .
[21] Susan K. Avery,et al. Empirical wind model for the middle and lower atmosphere. Part 1: Local time average , 1993 .
[22] John C. Gregory,et al. A measurement of the angular distribution of 5 eV atomic oxygen scattered off a solid surface in earth orbit , 1986 .
[23] Kenneth Moe,et al. Gas‐Surface Interactions in Low‐Earth Orbit , 2011 .
[24] Daniel D. Mazanek,et al. Simulation and Shuttle Hitchhiker Validation of Passive Satellite Aerostabilization , 1995 .
[25] G. Bird. Molecular Gas Dynamics and the Direct Simulation of Gas Flows , 1994 .
[26] James R. Wertz,et al. Moderately Elliptical Very Low Orbits (MEVLOs) as a Long-Term Solution to Orbital Debris , 2012 .
[27] Lee H. Sentman,et al. FREE MOLECULE FLOW THEORY AND ITS APPLICATION TO THE DETERMINATION OF AERODYNAMIC FORCES , 1961 .
[28] Kenneth Moe,et al. Improved Satellite Drag Coefficient Calculations from Orbital Measurements of Energy Accommodation , 1998 .
[29] Daniel D. Mazanek,et al. Parametric and classical resonance in passive satellite aerostabilization , 1996 .
[30] Mark L. Psiaki,et al. Nanosatellite Attitude Stabilization Using Passive Aerodynamics and Active Magnetic Torquing , 2004 .
[31] Haim Weiss,et al. Quarternion feedback regulator for spacecraft eigenaxis rotations , 1989 .
[32] James R. Wertz,et al. Quantifying the Cost Reduction Potential for Earth Observation Satellites , 2014 .
[33] Marcello Romano,et al. Aerodynamic Three-Axis Attitude Stabilization of a Spacecraft by Center-of-Mass Shifting , 2017 .
[34] Kenneth Moe,et al. Gas-surface interactions and satellite drag coefficients , 2005 .
[35] Josep Virgili Llop. Spacecraft flight in the atmosphere , 2014 .
[36] Young Tae Ahn. Attitude dynamics and control of a spacecraft using shifting mass distribution , 2012 .
[37] Zhou Hao,et al. Very Low Earth Orbit mission concepts for Earth Observation: Benefits and challenges. , 2014 .
[38] E. Doornbos. Thermospheric Density and Wind Determination from Satellite Dynamics , 2012 .
[39] David B. Guettler. Satellite Attitude Control Using Atmospheric Drag , 2007 .
[40] David Murphy,et al. Solar-Sail Attitude Control Design for a Flight Validation Mission , 2007 .
[41] Susan K. Avery,et al. Empirical wind model for the upper, middle and lower atmosphere , 1996 .
[42] H. Hamidi-Hashemi. Liapunov analysis of a two dimensional unconstrained particle motion in a rigid body spinning about the thrust axis , 1993, Proceedings of 36th Midwest Symposium on Circuits and Systems.
[43] Halis C Polat. Prototype design and mission analysis for a small satellite exploiting environmental disturbances for attitude stabilization , 2016 .
[44] Marshall H. Kaplan,et al. Automatic Spacecraft Detumbling by Internal Mass Motion , 1974 .
[45] Jozef C. van der Ha,et al. Stability of Spinning Satellite Under Axial Thrust, Internal Mass Motion, and Damping , 2015 .
[46] D. G. King-Hele,et al. The upper atmosphere as sensed by satellite orbits , 1992 .
[47] Mark J. Lewis,et al. Minimum drag power-law shapes for rarefied flow , 2002 .
[48] Carmen Pardini,et al. Thermospheric density model biases at the 23rd sunspot maximum , 2012 .
[49] Eric K. Sutton,et al. Normalized Force Coefficients for Satellites with Elongated Shapes , 2009 .
[50] Michael L Gargasz. Optimal Spacecraft Attitude Control Using Aerodynamic Torques , 2007 .