Claims
- 1. An optical backplane for use in high-speed, parallel signal processing between a plurality of printed circuit boards comprising:
- a circularly shaped optical conductor for the transmission of optical data information, said optical conductor having concave sockets formed around the perimeter thereof;
- a plurality of optical transceivers, each optical transceiver being mounted in one of said sockets around the perimeter of said optical conductor, for converting data information received from the printed circuit boards into said optical data information, and for transmitting and receiving said optical data information directly to and from one another via said optical conductor; and
- means for electrically connecting each of said plurality of optical transceivers to one of the plurality of printed circuit boards.
- 2. An optical backplane as in claim 1 wherein said optical conductor is optically responsive only to the transmission of optical data information from said optical transceivers.
- 3. An optical backplane as in claim 2 further comprising a plurality of optical conductors.
- 4. An optical backplane as in claim 1 wherein each of said optical transceivers is within line of sight of one another.
- 5. An optical backplane for use in high-speed parallel signal processing between a plurality of printed circuit board comprising:
- a circularly shaped optical conductor for the transmission of optical data information, said optical conductor having concave sockets formed around the perimeter thereof and further having first and second planar surfaces impervious to light;
- a plurality of optical transceivers, each optical transceiver being mounted in one of said sockets around the perimeter of said optical conductor, for converting electrical data information received from said printed circuit boards into optical data information, and for transmitting and receiving said optical data information directly to and from one another via said optical conductor; and
- a plurality of circuit card connectors disposed about said perimeter of said optical conductor for electrically connecting said circuit boards to said transceivers.
- 6. An optical backplane as in claim 5 wherein said first and second planar surfaces are coated with an opaque paint.
- 7. An optical backplane as in claim 5 wherein said optical transceivers are single element light emitting diodes.
- 8. An optical backplane as in claim 5 wherein each of said optical transceivers comprises a separate emitter and detector.
- 9. An optical backplane as in claim 8 wherein said emitter is a light emitting diode.
- 10. An optical backplane as in claim 8 wherein said emitter and detector are frequency selective.
- 11. An optical backplane as in claim 8 wherein said emitter and detector are responsive to polarized light.
- 12. An optical backplane as in claim 5 wherein each of said optical transceivers is within line of sight of one another.
- 13. An optical backplane as in claim 5 further comprising a plurality of optical conductors.
- 14. An optical backplane for use in high-speed, parallel signal processing between a plurality of printed circuit boards comprising:
- a plurality of circularly shaped optical conductors for the transmission of optical data information, each of said optical conductors being optically isolated from one another and having concave sockets formed around the perimeter thereof;
- a plurality of optical transceivers, each optical transceiver being mounted in one of said sockets around the perimeter of each of said optical conductors, for converting electrical data information received from said printed circuit boards into said optical data information, and for transmitting and receiving said optical data information directly to and from others of said plurality of optical transceivers mounted around a common optical conductor; and
- a plurality of circuit card connectors disposed about said perimeter of said conductors for electrically connecting said circuit boards to said optical transceivers.
- 15. An optical backplane as in claim 14 wherein said optical conductors are formed from plexiglass.
- 16. An optical backplane as in claim 14 wherein said optical conductors are separated from each other by a material impervious to light whereby said optical conductors are optically isolated from one another.
- 17. An optical backplane as in claim 14 wherein said optical transceivers are light emitting diodes.
- 18. An optical backplane as in claim 14 wherein said optical transceivers are frequency selective.
- 19. An optical backplane as in claim 14 wherein said optical transceivers are sensitive to polarized light.
- 20. An optical backplane as in claim 14 wherein each of said optical transceivers has a separate emitter and detector.
ORIGIN OF THE INVENTION
The invention described herein was made in the performance of official duties by an employee of the Department Of the Navy and may be manufactured, used, licensed by or for the Government for any governmental purpose without payment of any royalties thereon.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
2201561 |
Sep 1988 |
GBX |