Claims
- 1. A telecentric lens comprising a configuration for inducing a simultaneous transformation to a number of distinctly propagating signal beams from a first beam propagating condition into a second propagating condition and vice versa, said first propagating condition including substantially parallel first beam axes of said signal beams at a front side of said lens and including beam widths increasing towards said front side, said second propagating condition including second beam axes dispersing in direction away from a back side of said lens and including second beam widths decreasing away from said back side and zeroing at a reference plane.
- 2. The lens of claim 1, wherein said reference plane is substantially perpendicular to a symmetry axis of said lens.
- 3. The lens of claim 1, wherein said lens has an assembly position in an optical cross connect and said simultaneous transformation is selected such that at least one of said first beam axes coincides with a fiber end of said optical cross connect.
- 4. The lens of claim 1, wherein said lens has an assembly position in an optical cross connect and said simultaneous transformation is selected such that at least one of said second beam axes coincides with an optical surface fiber of an optical cross connect.
- 5. The lens of claim 1, wherein said lens has an assembly position in an optical cross connect such that said reference plane coincides with a dichroic flat of an optical cross connect.
- 6. An optical system comprising:
a a telecentric lens having a configuration for inducing a simultaneous transformation to a number of distinctly propagating signal beams from a first beam propagating condition into a second propagating condition and vice versa, said first propagating condition including substantially parallel first beam axes of said signal beams at a front side of said lens and including beam widths increasing towards said front side, said second propagating condition including second beam axes dispersing in direction away from a back side of said lens and including second beam widths decreasing away from said back side; and b. an optical element having a number of distinct optical surfaces and being configured and positioned with respect to said lens such that at least one of said second beam axes coincides with at least one of said optical surfaces.
- 7. The system of claim 6, wherein at least one of said optical surfaces is oriented such that at least one of said second beam axes is redirected from a dispersing direction into a converging direction.
- 8. The system of claim 7, wherein said optical surfaces are planar.
- 9. The system of claim 8, wherein said optical surfaces are mirrors.
- 10. The system of claim 7, wherein said optical surfaces are positioned and oriented such that said second beam axes are redirected to coincide with moveable mirrors of an optical cross connect.
- 11. The system of claim 7, wherein said system has an assembly position in an optical cross connect and said simultaneous transformation is selected such that at least one of said first beam axes coincides with a fiber end of said optical cross connect.
- 12. The lens of claim 7, wherein said system has an assembly position in an optical cross connect such that a reference plane of said lens coincides with a dichroic flat of an optical cross connect, wherein said second beam widths reach zero at said reference plane.
- 13. An optical cross connect comprising:
a. a main path along which signal beams propagate between first fiber ends arrayed in a first fiber block and second fiber ends arrayed in a second fiber block; b a telecentric lens having a symmetry axis coinciding with said main path and a configuration for inducing a simultaneous transformation to a number of distinctly propagating signal beams from a first beam propagating condition into a second propagating condition and vice versa, said first propagating condition including first beam axes of said signal beams substantially parallel to said main path between one of said fiber blocks and a front side of said lens and including beam widths increasing towards said front side, said second propagating condition including second beam axes dispersing in direction away from a back side of said lens and including second beam widths decreasing away from said back side and zeroing at a reference plane; and c. an optical element having a number of distinct optical surfaces and being configured and positioned with respect to said lens such that at least one of said second beam axes coincides with at least one of said optical surfaces, and wherein at least one of said optical surfaces is orientated such that at least one of said second beam axes is redirected into a third beam axes towards one of a number of moveable mirrors arrayed on a mirror array of said optical cross connect.
- 14. The optical cross connect of claim 13, wherein said reference plane coincides with a dichroic flat of said optical cross connect.
- 15. The optical cross connect of claim 13, wherein said lens configuration is adjusted to:
a. a first pitch of said first and/or said second fiber ends are arrayed with a first pitch on said fiber blocks; b. a second pitch of said optical surfaces on said optical element; c. a distance of said optical element to said lens along said main path.
- 16. The optical cross connect of claim 15, wherein said first pitch is selected in combination with a standardized pitch of a vertical cavity surface emitting laser.
- 17. The optical cross connect of claim 16, wherein a second pitch of said optical surfaces arrayed on said optical element is adjusted to:
a. said dispersing direction of said second beam axes; and b. a distance of said optical element relative to said lens.
- 18. The optical cross connect of claim 16, wherein a third pitch of said moveable mirrors on said mirror array is adjusted to:
a. a second pitch of said optical surfaces arrayed on said optical element; b. said third beam axes; and c. a distance of said mirror array relative to said optical element.
CROSS REFERENCE
[0001] The present application cross-references the U.S. patent application Ser. No. ______ titled “Assembled Multi-surface Optical Component and Method for Fabricating” filed by inventor Alex Harwit on Jan. 29, 2003 with attorney docket No. TSP-114 US, which is hereby incorporated by reference.