Claims
- 1. A cascadable optical cross-connect comprising:
a pair of opposed optical arrays, each optical array including a respective plurality of mirrors; and a plurality of optical bypasses, each optical bypass being disposed within a respective optical array and adapted to permit a light beam to pass through the respective optical array between a respective waveguide and a respective mirror of the opposite optical array; wherein the mirrors are moveable to selectively define a propagation path of a light beam between any two optical bypasses.
- 2. An optical cross-connect as claimed in claim 1, wherein at least one optical bypass is disposed within one optical array, and at least two optical bypasses are disposed within the opposite optical array.
- 3. An optical cross-connect as claimed in claim 2, wherein each optical bypass comprises any one of:
an optically transparent region of the respective optical array; and an opening defining a passage through the respective optical array.
- 4. An optical cross-connect as claimed in claim 3, wherein each optical bypass further comprises means for deflecting light beams propagating through the optical bypass.
- 5. An optical cross-connect as claimed in claim 4, wherein the deflecting means comprises any one or more of: a lens; a prism; and a mirror.
- 6. An optical cross-connect as claimed in claim 2, wherein each optical bypass is associated with a respective bundle of one or more waveguides.
- 7. An optical cross-connect as claimed in claim 6, wherein each optical bypass comprises means for directing each light beam of the associated bundle to converge within the optical bypass.
- 8. An optical cross-connect as claimed in claim 7, wherein the means for directing each light beam comprises either one of:
a respective relay lens disposed between the optical bypass and the associated bundle of waveguides, the relay lens having a focal point disposed within the optical bypass; and a radial orientation of the associated bundle of waveguides about the optical bypass.
- 9. An optical cross-connect as claimed in claim 6, wherein the propagation path comprises a selected one of:
a switching propagation path between a waveguide associated with one optical array and a selected waveguide associated with the opposite optical array; and an express optical path between a respective predetermined pair of waveguides associated with the same optical array, via a reflection from a mirror of the opposite optical array.
- 10. An optical cross-connect as claimed in claim 9, wherein each mirror lies in a propagation path of light beams from each one of a respective set of waveguides, the respective set of waveguides comprising a predetermined one waveguide of each bundle associated with the opposite optical array.
- 11. An optical cross-connect as claimed in claim 10, wherein at least one mirror is independently movable to one or more express positions, each express position being adapted to deflect a light beam into an express path between a selected pair of its respective set of waveguides.
- 12. An optical cross-connect as claimed in claim 11, wherein the mirror is adapted to automatically move to a selected one express position as a respective default position in an event of a failure of the optical cross-connect.
- 13. An optical cross-connect as claimed in claim 10, wherein each mirror is movable to deflect a light beam into a switching path between a selected one of its respective set of waveguides and a selected mirror of the opposite array.
- 14. An optical cross-connect as claimed in claim 13, further comprising a controller adapted to:
control the position of a first mirror of one optical array to deflect an incident light beam received from an input waveguide to a selected second mirror of the opposite optical array, the input waveguide being a selected one of the set of waveguides associated with the first mirror for conveying the light beam into the optical cross-connect; and control the position of the second mirror to deflect the light beam received from the first mirror to a selected output waveguide, the output waveguide being a selected one the set of waveguides associated with the second mirror for conducting the light beam out of the optical cross-connect.
- 15. An optical cross-connect as claimed in claim 14, wherein the second mirror is selected based on the desired output waveguide, and the position of the second mirror based on the bundle within which the desired output waveguide is located.
- 16. An optical cross-connect as claimed in claim 1, wherein each optical array further comprises an axis of symmetry, at least the respective plurality of mirrors being symmetrically disposed about the axis of symmetry.
- 17. An optical cross-connect as claimed in claim 16, wherein one of the optical bypasses disposed within each optical array is disposed on the respective axis of symmetry of the optical array.
- 18. An optical cross-connect as claimed in claim 16, wherein the axes of symmetry of each of the optical arrays are co-extensive.
- 19. An optical cross-connect as claimed in claim 1, further comprising a lens disposed between the pair of opposed optical arrays.
- 20. An optical cross-connect as claimed in claim 19, wherein the opposed optical arrays are oriented to lie in respective opposed focal planes of the lens.
- 21. An optical cross-connect as claimed in claim 19, wherein at least one optical bypass disposed within each optical array is disposed on an optical axis of the lens.
- 22. An optical cross-connect as claimed in claim 21, wherein the respective plurality of mirrors of each optical array are symmetrically disposed about an optical axis of the lens.
- 23. An optical switch for selectively switching a light beam between an input path and an output path, the optical switch comprising:
an cascadable optical cross-connect comprising:
a pair of opposed optical arrays, each optical array including a respective plurality of mirrors; and a plurality of optical bypasses, each optical bypass being disposed within a respective optical array and adapted to permit a light beam to pass through the respective optical array between a respective waveguide and a respective mirror of the opposite optical array; an input waveguide adapted to guide the light beam into the cascadable optical cross-connect via a first optical bypass; an output waveguide adapted to guide the light beam out of the cascadable optical cross-connect via a second optical bypass; a controller adapted to control a respective position of each mirror to selectively define a propagation path of the light beam between the first and second optical bypasses.
- 24. An optical switch as claimed in claim 23, wherein the first and second optical bypasses comprise respective optical bypasses of the same optical array, and the propagation path comprises an express optical path via a single reflection from a mirror of the opposite optical array.
- 25. An optical switch as claimed in claim 23, wherein the first and second optical bypasses comprise a respective one optical bypass of each optical array, and the propagation path comprises a switching propagation path via reflections from a respective one mirror of each optical array.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2,327,862 |
Dec 2000 |
CA |
|
2,326,362 |
Nov 2000 |
CA |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on, and claims priority of, Canadian Patent Applications Nos. 2,326,362 filed Nov. 20, 2000, and 2,327,862 filed Dec. 6, 2000.