Claims
- 1. A free space laser communication system comprising at least two transceivers at least one of said at least two transceivers defining a first transceiver and a second transceiver, said first transceiver comprising:
A) a beacon laser for transmitting a beacon laser beam at a first nominal wavelength to said second transceiver, B) a telescope, C) a steering mirror, D) a signal laser configured to transmit via said steering mirror a signal laser beam at a second nominal wavelength through said telescope to said second transceiver, E) an imaging detector, F) a signal detector, and G) a beam splitter, said steering mirror and said beam splitter being configured to direct to said imaging detector, beacon laser beams collected by said telescope from said second transceiver and to direct to said signal detector, signal laser beams collected by said telescope from said second transceiver, said steering mirror being dynamically positioned in response to feedback signals from said imaging detector.
- 2. A system as in claim 1 wherein said telescope is a Schmidt-Cassegrain telescope.
- 3. A system as in claim 1 wherein said beacon laser is a diode laser operating at a wavelength of about 785 nm.
- 4. A system as in claim 1 wherein said signal laser is a diode laser operating at a wavelength of about 850 nm.
- 5. A system as in claim 1 and further comprising optics to relay a pupil of said telescope to a relayed pupil position and said steering mirror is positioned at said relayed pupil position.
- 6. A system as in claim 1 wherein said steering mirror is configured to tilt and tip.
- 7. A system as in claim 1 wherein said steering mirror comprises a voice coil driver unit.
- 8. A system as in claim 1 wherein said imaging detector is a CCD detector.
- 9. A system as in claim 1 wherein said signal detector is an avalanche photodiode.
- 10. A system as in claim 9 wherein a pinhole aperture is located between said beam splitter and said signal detector.
- 11. A system as in claim 10 wherein said pinhole aperture is chosen and positioned to limit the object-space field of view of said signal detector to less than a milliradian.
- 12. A system as in claim 10 wherein said pinhole aperture is chosen and positioned to limit the object-space field of view of said signal detector to about 200 microradians.
- 13. A system as in claim 10 and further comprising optics to provide said imaging detector with a field of view of about 1 degree.
- 14. A system as in claim 11 and further comprising optics to provide said imaging detector with a field of view of about 1 degree.
Parent Case Info
[0001] This invention relates to free space communication systems and in particular to free space laser communication systems. This Application claims priority of a Provisional Application, Serial No. ______ filed ______.