Inclination vector control with continuous or quasi-continuous maneuvers
View Patent ↗A satellite inclination control method is provided. The method includes tracking optimal inclination vector control cycles for a satellite in near geosynchronous orbit, using control rates disposed to counter inclination growth of the satellite, where the control rates include continuously or quasi-continuously firings of a thruster, and where the control rates are disposed to provide convergence to the optimal inclination vector control cycles in the presence of variances in orbit determination, maneuver implementation and orbit propagation modeling errors.
1. A satellite inclination control method comprising:
tracking inclination vector cycles for a satellite in near geosynchronous orbit; and
performing a plurality of thruster firings of quasi-continuous inclination deltas each day over several days to counter growth of the inclination vector cycles;
wherein the quasi-continuous inclination deltas ensure that an osculating inclination vector of the satellite is centered on an ideal continuously controlled osculating trajectory between episodic inclination maneuver deltas;
the quasi-continuous inclination deltas from each thruster firing providing an approximation to a continuous inclination vector control rate; and
wherein the quasi-continuous inclination deltas provide a closed loop feedback control in which a maneuvering delta is determined over a first interval, and only a solution over a sub-interval of the first interval is retained for a quasi-continuous intra-maneuvering trajectory.
2. The method of claim 1 , wherein the plurality of thruster firings comprises ΔV firings of ion thrusters.
3. The method of claim 1 , wherein performing a plurality of thruster firings of quasi-continuous inclination deltas comprises
applying only the inclination deltas which counter a secular perturbation of inclination.
4. A satellite inclination control method comprising:
tracking inclination vector cycles for a satellite in near geosynchronous orbit; and
performing a plurality of thruster firings of quasi-continuous inclination deltas each day over several days to counter growth of the inclination vector cycles according to a control function having a predetermined minimum fuel target;
the control function controlling only secular Saros perturbations while leaving a biannual solar cycle uncontrolled to minimize fuel use.
5. The method of claim 4 , wherein the minimum fuel target locus which minimizes the fuel use is a circle of radius 22.5 mdeg.
6. The method of claim 1 , wherein the continuous inclination vector control rate is applied to control the osculating inclination vector to converge in mean to a desired inclination vector target locus.