Claims
- 1. An optical component configured to minimize reflectance, comprising:
an optical housing having a bore formed therethrough, the bore having a central component receiving area; a glass block positioned in the central component receiving area in abutment with a terminating end of a fiber receiving bore; and a fuzzy mount secured in the central component receiving area, the fuzzy mount being secured via a plurality of deformable teeth extending from an outer surface thereof, the teeth being configured to engage an inner surface of the central component receiving portion to secure the fuzzy mount therein.
- 2. The component of claim 1, wherein the fuzzy mount is secured into the central component receiving area such that the glass block is positioned between the fuzzy mount and the fiber receiving bore.
- 3. The component of claim 1, wherein the fuzzy mount comprises an annular base portion having a hollow interior portion and a cylindrical wall extending therefrom, an outer surface of the cylindrical wall having the deformable teeth extending therefrom.
- 4. The component of claim 1, wherein the deformable teeth are configured to deform at a predetermined pressure to secure the fuzzy mount into the component receiving area.
- 5. The component of claim 4, wherein the cylindrical wall has a height that is less than a thickness of the glass block and is positioned such that the cylindrical wall surrounds the glass block in the component receiving area.
- 6. The component of claim 4, wherein the fuzzy mount is positioned in the component receiving area with the cylindrical wall extending away from the fiber receiving bore.
- 7. An optical component, comprising:
an optical housing having bore formed therethrough, the housing having a first end, second end, and an intermediate portion positioned between the first and second ends, the first end being configured to receive an optical device therein and the second end being configured to receive an optical fiber; an optical mounting device positioned in the intermediate portion, the optical mounting device comprising a base having a signal transmission aperture formed therethrough and an upstanding wall circumscribing the base portion, the upstanding wall having a plurality of teeth extending from an outer surface thereof; and a reflectance reducing block positioned between the base and the second end.
- 8. The optical component of claim 7, wherein the teeth are configured to engage an inner wall of the intermediate portion to secure the optical mounting device in the intermediate portion.
- 9. The optical component of claim 7, wherein the optical component is at least one of a TOSA and a ROSA.
- 10. The optical component of claim 7, wherein the mounting device is positioned in the intermediate portion such that the upstanding wall extends away from the second end.
- 11. The optical component of claim 7, wherein the reflectance reducing block comprises a glass block.
- 12. The optical component of claim 11, wherein the upstanding wall has a height that is less than a thickness of the glass block.
- 13. The optical component of claim 12, wherein the upstanding wall is positioned in the intermediate portion such that the upstanding wall is extending toward the second end.
- 14. An optical component, comprising:
a component body having a component receiving end and a fiber receiving end, the component body having a substantially hollow interior portion and a signal transmission bore longitudinally formed therethrough; a glass block positioned across the signal transmission bore on the fiber receiving end; and a fiber receiving ferrule releasably attached to the fiber receiving end.
- 15. The optical component of claim 14, wherein the glass block is glued at a position across the signal transmission bore.
- 16. The optical component of claim 14, wherein the fiber receiving ferrule comprises a split sleeve.
- 17. The optical component of claim 16, wherein the split sleeve is sized to be press fitted into the fiber receiving end.
- 18. The optical component of claim 17, wherein the glass block is sized to be received within the split sleeve.
- 19. A method for assembling an antireflective optical component, comprising:
positioning an antireflective block over a signal transmission bore longitudinally formed through optical component; and securing the antireflective block in an optical path of the signal transmission bore, the securing process comprising pressing a fuzzy mount into a receiving bore of the optical component.
- 20. The method of claim 19, wherein pressing comprises engaging an inner surface of the receiving bore with a plurality of deformable teeth extending from an outer surface of the fuzzy mount.
- 21. The method of claim 20, wherein a diameter of the fuzzy mount including the deformable teeth is greater than a diameter of the receiving bore before the pressing operation.
- 22. The method of claim 20, wherein the inner surface is a textured surface.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of U.S. provisional patent application serial No. 60/422,675, filed Oct. 31, 2002, which is herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60422675 |
Oct 2002 |
US |