Two-damper passive gravity-gradient stabilization system
Design study of symmetrical, vertistat, passive gravity gradient stabilization system for communications satellites
SEARCH · Engineering Papers
Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Design study of symmetrical, vertistat, passive gravity gradient stabilization system for communications satellites
Gravity gradient stabilization and attitude sensing systems for applications technology satellite
The concept of a solar power satellite (SPS) is reviewed, and a design proposed for such a satellite taking advantage of solar radiation pressure and gravity gradient forces to eliminate much of the structure from the baseline configuration. The SPS design consists of a solar cell array lying in the orbital plane and a free floating mirror above to reflect sunlight down onto it. The structural modes of the solar cell array are analyzed and found to be well within control limitations. Preliminary calculations concerning the free floating mirror and its position-keeping propellant requirements are also performed. A numerical example is presented, which shows that, even in terms of mass only, this configuration is a competitive design when compared to the conventional Department of Energy reference design. Other advantages, such as easier assembly in orbit, lower position-keeping propellant requirements, possibilities for decreasing necessary solar cell area, and longer solar cell life, may make this design superior.
Radar reflectivity tests on gravity gradient stabilized lenticular passive communications satellite
Parameters selected by analysis of passive damping techniques to facilitate optimum performance for an inertially coupled gravity gradient stabilized satellite
Material elasticity effects on planar librational motion of rigid satellite under action of gravity gradients
Gravity gradient stabilizing boom and dampers and attitude sensor systems for applications technology satellite
Nonlinear resonance effect on attitude librations of undamped rigid gravity gradient stabilized satellite in circular Earth orbit
Gravity gradient stabilization system by rod retraction or extension for Applications Technology Satellite
Numerical methods of integration of the equations of motion of a controlled satellite under the influence of gravity-gradient torque are considered. The results of computer experimentation using a number of Runge-Kutta, multi-step, and extrapolation methods for the numerical integration of this differential system are presented, and particularly efficient methods are noted. A large bibliography of numerical methods for initial value problems for ordinary differential equations is presented, and a compilation of Runge-Kutta and multistep formulas is given. Less common numerical integration techniques from the literature are noted for further consideration.
The in-orbit dynamics of a large, flexible spacecraft has been modeled with a computer simulation, which was used for designing the control system, developing a deployment and gravity-gradient capture procedure, predicting the steady-state behavior, and designing a series of dynamics experiments for the Radio Astronomy Explorer (RAE) satellite. This flexible body dynamics simulator permits three-dimensional, large-angle rotation of the total spacecraft and includes effects of orbit eccentricity, thermal bending, solar pressure, gravitational accelerations, and the damper system. Flight results are consistent with the simulator predictions and are presented for the deployment and capture phases, the steady-state mission, and the dynamics experiments.
Solar sensor and damping coefficient measurements for gravity gradient stabilization of applications technology satellite
Systems analysis, flight and engineering evaluation, and ground testing of gravity gradient stabilization system for Applications Technology Satellite /ATS/
Data processing system and flight evaluation plan for gravity gradient stabilization system for Applications Technology Satellite /ATS/
Preliminary design of spacecraft configuration and performance analysis of passive attitude control subsystem for gravity gradient stabilized Nimbus satellite
Dynamical formalism for arbitrary number of interconnected rigid bodies analyzed with reference to passive attitude stabilization of satellites
Orbit test plan and simulator exercise, mathematical model, and critical interfaces for gravity gradient stabilization of advanced Applications Technology Satellite /ATS/
Gravity gradient boom stabilization system tests for ATS 5