Claims
- 1. An array of satellites, comprising:
a plurality of satellites, forming at least one common and repeating ground track that orbits the earth an integer number of times each day, said plurality of satellites each communicating with points on the earth, and each of the plurality of satellites in the repeating ground track being in an elliptical orbit having an apogee over a specified point on the earth to communicate with communication equipment at said respective points on the earth, said satellites having active portions of their elliptical orbit when they are near apogee, and inactive portions of their elliptical orbit when they are distant from apogee, and a specified number of satellites always being in said active portions, said orbit being constructed such that as one satellite enters said active portion of said orbit, another satellite leaves said active portion of said orbit.
- 2. An array in claim 1, wherein said integer number of orbits per day is three orbits per day.
- 3. An array as in claim 2, wherein each satellite is active for substantially 4.8 hours of each 8-hour orbit, there being three such orbital revolutions in a 24 hour period, thus defining a repeating common ground track.
- 4. An array as in claim 2, wherein said orbit has an inclination of approximately 63.4 degrees.
- 5. An array as in claim 1, wherein said plurality of satellites form a virtual space having at least 40 degrees of spacing from the existing geosynchronous satellite ring.
- 6. An array as in claim 1, wherein the satellites form a first set of ground tracks two different of ground tracks, including a first ground track which forms gaps in earth coverage, and a second ground track located to cover saidgaps in said first ground track.
- 7. An array as in claim 6, further comprising another set of ground tracks, having apogees in an opposite Hemisphere from the first set of ground tracks.
- 8. An array as in claim 1, wherein there are a number of satellites in each ground track which causes the same integer number of said satellites to be in said active arc at each time.
- 9. An array as in claim 8, wherein there are substantially 70 satellites in each ground track.
- 10. An array as in claim 1, wherein the apogees peak at 63.4 degrees latitude.
- 11. An array as in claim 1, wherein at least a plurality of said satellites have apogees in the Northern Hemisphere.
- 12. An array as in claim 1, wherein at least a plurality of said satellites have apogees in the Southern Hemisphere.
- 13. An array as in claim 11, wherein a plurality of satellites also have apogees in the Southern Hemisphere.
- 14. An array as in claim 6, wherein the satellites orbit using three different sets of ground tracks.
- 15. An array as in claim 6, wherein the satellites orbit using four different sets of ground tracks.
- 16. A method, comprising:
causing a plurality of satellites to orbit the earth in an elliptical orbit in one of n common ground tracks that causes an integer number of orbits of the earth per each day and each of which orbit has an apogee over a specified point on the earth; and causing said plurality of satellites to communicate with communication equipment on the earth only during the time when they are within an active arc near apogee, and causing each of said plurality of satellites to be inactive during times other then when they are in said active arc.
- 17. A method as in claim 16, further comprising causing satellite in a first ground track to communicate with a first ground system on the earth, and causing a second satellite, in said first around track to communicate with a different second system on the earth.
- 18. A method as in claim 16, wherein said causing comprises forming ground tracks such that the same number of satellites is always within said active arcs.
- 19. A method as in 18, wherein said number of satellites is an integer number of satellites.
- 20. A method as in claim 16, wherein said communicating comprises communicating only with each satellite for a specified time of the orbit, within 30 to 80% of its time in orbit.
- 21. A method as in claim 16, wherein said communicating comprises communicating only with each satellite for substantially 60 percent of its time in orbit.
- 22. A method as in claim 18, further comprising maintaining a specified degree of separation of satellites at a position of said satellites which has minimum separation.
- 23. A method as in claim 22, wherein said position of said minimum degree of separation is at apogee.
- 24. A method as in claim 22, wherein said minimum degree of separation is substantially two degrees of separation.
- 25. A method as in claim 16, wherein said communicating comprises avoiding communicating with said satellites during a position of said satellites that is within a specified interval near other satellites.
- 26. A method as in claim 25, wherein said other satellites are geosynchronous satellites.
- 27. A method as in claim 25, wherein said specified interval is substantially 40 degrees.
- 28. A method, comprising:
causing a plurality of satellites to orbit the earth in elliptical orbits, forming repeating ground tracks, with a plurality of satellites in each ground track; defining an active arc within each ground track, which has a specified number of satellites within the active arc at any time; and communicating with said satellites only during the time when said satellites are within said active arc.
- 29. A method as in claim 28, wherein said defining comprises defining an active arc which has a specified degree of separation from a line of communication to geosynchronous satellites.
- 30. A method as in claim 29, wherein said specified degree of separation is substantially 40 degrees.
- 31. A method as in claim 28, wherein the specified number of satellites is greater than one.
- 32. A method as in claim 28, wherein there are satellites in ground tracks having apogees in the Northern Hemisphere, and separate satellites in ground tracks having apogees in the Southern Hemisphere.
- 33. A method as in claim 28, wherein said specified number of satellites within the active arc is at all times, the same integer number of satellites.
- 34. A method as in claim 33, said causing comprises causing each of the plurality of satellites to orbit in a specified orbit whereby as a first satellite leaves the active arc, another satellite enters the active arc.
- 35. A method as in claim 28, wherein said causing comprises establishing a predetermined minimum degree of separation between satellites.
- 36. A method as in claim 35, wherein said minimum degree of separation is substantially two degrees of separation.
- 37. A method as in claim 28, wherein said ground tracks are placed in a way that is effective is to avoid outages in coverage on the earth.
- 38. A method as in claim 28, wherein said satellite orbits at all points are below 22,300 miles of altitude.
- 39. A method as in claim 28, wherein said satellites orbit in an inclined elliptical orbit.
- 40. A method as in claim 39, wherein said inclined elliptical orbit is inclined substantially at 63.4 degrees.
- 41. A method, comprising:
causing a plurality of satellites to orbit the earth in an inclined elliptical orbit with apogees below 22,300 miles and to pass into a first area where the satellites may interfere with communication with geosynchronous satellites, and a second area where the satellites could not interfere with communication with geosynchronous satellites, said plurality of satellites including a first plurality of satellites orbiting in a first common ground track that repeats an integer number of times per day, and a second plurality of satellites orbiting in a second common ground track, different from said first common ground track, and which also repeats an integer number of times per day; and communicating with said plurality of satellites only during a time when they are not in said first area.
- 42. A method as in claim 41, wherein said second area is defined as an area with a specified degree of separation from possible interference.
- 43. A method as in claim 42, wherein said specified degree of separation is substantially 40 degrees.
- 44. A method as in claim 41, wherein said communicating comprises communicating with said satellites during substantially 60 percent of their time within their orbit.
- 45. A array, comprising:
a plurality of satellites orbiting the earth in a 63.4 degree inclined elliptical orbit having a daily repeating ground track, mean motion of an integer number of solar days which integer number is at least three solar days, and argument of perigee so as to place an orbital apogee over a specified hemisphere; having portions of the ground track which are designated as active and during which the satellite communicates with communication equipment on the earth, and other portions of said ground track which are designated as inactive; each of said satellites placed in orbits to follows the same ground track at different times of passage so as to maintain a satellite in the active arc at all desired times to maintain a minimum angular separation between satellites in the active arc as seen from any position on the ground.
- 46. An array as in claim 45, wherein said specified hemisphere is the Nortbern Hemisphere.
- 47. An array as in claim 45, wherein said specified hemisphere is the Nortbern Hemisphere.
- 48. An array as in claim 45, wherein said specified hemisphere is the Nortbern Hemisphere.
- 49. A method, comprising:
causing a first satellite to orbit the earth in a 63.4 degree inclined elliptical orbit having a daily repeating ground track, mean motion of an integer number of solar days which integer number is at least three solar days, and argument of perigee so as to place the orbital apogee over a specified hemisphere;
communicating with said first satellite only during portions of its ground track which are designated as active, which portions are straddled around an apogee of said inclined elliptical orbit, and not communicating with said first satellite during other portions of said ground track which are designated as inactive; adding additional satellites placed in additional different orbits which follow said daily repeating ground track, but at different times of passage so as to maintain a specified number of satellites in said active portion at all desired times; continuing said adding, while maintaining a minimum angular separation between satellites in the active arc as seen from any position on the ground.
- 50. An array as in claim 49, wherein said specified hemisphere is the Northern Hemisphere.
- 51. An array as in claim 49, wherein said specified hemisphere is the Nortbern Hemisphere.
- 52. An array as in claim 49, wherein said specified hemisphere is the Nortbern Hemisphere.
Parent Case Info
[0001] This invention claims priority under 35 U.S.C.119/120 from provisional application Ser. No. 60/180,025 filed Feb. 3, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60180025 |
Feb 2000 |
US |