Claims
- 1. A method of assembling a retro-reflective multi-port fiber optic device, comprising the steps of:
providing a lens with a specific filter attached to one facet thereof; providing a series of triple-fiber ferrules respectively defining three-fiber assemblies with different fiber spacings; selecting one of said triple-fiber ferrules with precise spacing among three fibers disposed therein to match the filter for tuning a center wavelength to a pre-designated wavelength; and positioning said selected ferrule by the other facet of said lens opposite to said filter; wherein said three fibers includes one common input pigtail fiber, one transmission output pigtail fiber, and one reflection output pigtail fiber; positioning a mirror closely to one side of said filter opposite to said lens.
- 2. The method as defined in claim 1, wherein one end of said selected ferrule which faces the lens, is angled along a slope to reduce back reflection.
- 3. The method as defined in claim 2, wherein the common input pigtail fiber and the reflection output pigtail fiber are at the same level on said slope.
- 4. The method as defined in claim 2, wherein on the angled end of said ferrule, said transmission output pigtail fiber end extends a little bit longer than those of said common input pigtail fiber and said reflection output pigtail fiber along an axial direction of the said selected ferrule.
- 5. The method as defined in claim 3, wherein by applying a rectangular coordinate XYZ system to the device, an axial direction of the selected ferrule is represented by axis Z, the common input pigtail fiber and the reflection output pigtail fibers are arranged to be located in XOZ plane on the same level relative to axis Y, and the transmission output pigtail fiber is located on a different level relative to axis Y.
- 6. The method as defined in claim 5, wherein the transmission output pigtail fiber is closer to an acute angle point, defined on plane YOZ, on said end of the selected ferrule, than the common input pigtail fiber and the reflection output pigtail fiber.
- 7. The method as defined in claim 1, wherein a spacer is provided between the said lens and said selected ferrule.
- 8. The method as defined in claim 2, wherein spacer is provided between said lens and said selected ferrule, and said spacer is tilted.
- 9. A method of assembling a retro-reflective multi-port fiber optic device, comprising the steps of:
providing a lens with a specific filter attached to one facet thereof; providing a series of triple-fiber ferrules respectively defining three-fiber assemblies with different fiber spacings, wherein said triple-fiber ferrules comprising a common input pigtail fiber, a transmission output pigtail fiber and a reflection output pigtail fiber therein, the three pigtail fibers forming a virtual circle with the segment connecting the common input fiber and the reflection output fiber as its diameter; selecting one of said triple-fiber ferrules with precise spacing among three fibers disposed therein to match the filter for tuning a center wavelength to a pre-designated wavelength; and positioning said selected ferrule by the other facet of said lens opposite to said filter; wherein said three fibers includes one common input pigtail fiber, one transmission output pigtail fiber, and one reflection output pigtail fiber; positioning a mirror closely to one side of said filter opposite to said lens.
- 10. The method as defined in claim 9, wherein one end of said selected ferrule which faces the lens, is angled along a slope to reduce back reflection.
- 11. The method as defined in claim 10, wherein the common input pigtail fiber and the reflection output pigtail fiber are at the same level on said slope.
- 12. The method as defined in claim 10, wherein on the angled end of said ferrule, said transmission output pigtail fiber end extends a little bit longer than those of said common input pigtail fiber and said reflection output pigtail fiber along an axial direction of the said selected ferrule.
- 13. The method as defined in claim 11, wherein by applying a rectangular coordinate XYZ system to the device, an axial direction of the selected ferrule is represented by axis Z, the common input pigtail fiber and the reflection output pigtail fibers are arranged to be located in XOZ plane on the same level relative to axis Y, and the transmission output pigtail fiber is located on a different level relative to axis Y.
- 14. The method as defined in claim 13, wherein the transmission output pigtail fiber is closer to an acute angle point, defined on plane YOZ, on said end of the selected ferrule, than the common input pigtail fiber and the reflection output pigtail fiber.
- 15. The method as defined in claim 9, wherein a spacer is provided between the said lens and said selected ferrule.
- 16. The method as defined in claim 10, wherein spacer is provided between said lens and said selected ferrule, and said spacer is tilted.
- 17. A retro-reflective multi-port fiber optic device comprising:
a triple-fiber ferrule with a common input pigtail fiber, a transmission output pigtail fiber and a reflection output pigtail fiber therein, the three pigtail fibers forming a virtual circle with the segment connecting the common input fiber and the reflection output fiber as its diameter; a lens positioned by one side of said ferrule; a filter positioned on one side of said lens opposite said ferrule; and a mirror positioned on one side of said filter opposite to said lens; wherein the transmission output pigtail fiber is positioned in an asymmetrical manner with the common input pigtail fiber relative to a center axis of the ferrule.
- 18. The device as defined in claim 17, wherein one end of said ferrule which faces the lens, is angled along a slope, and the common input pigtail fiber and the reflection output pigtail fiber are at the same level on said slop.
- 19. The device as defined in claim 18, wherein on the angled end of said ferrule, said transmission output pigtail fiber end extends a little bit longer than those of said common input pigtail fiber and said reflection output pigtail fiber along an axial direction of the said ferrule.
- 20. The device as defined in claim 17, wherein by applying a rectangular coordinate XYZ system to the device, an axial direction of the selected ferrule is represented by axis Z, the common input pigtail fiber and the reflection output pigtail fibers are arranged to be located in XOZ plane on the same level relative to axis Y, and the transmission output pigtail fiber is located on a different level relative to axis Y.
- 21. The device as defined in claim 20, wherein the transmission output pigtail fiber is closer to an acute angle point, defined on plane YOZ, on said end of the selected ferrule, than the common input pigtail fiber and the reflection output pigtail fiber.
- 22. The device as defined in claim 17, wherein a spacer is provided between the said lens and said selected ferrule.
- 23. The method as defined in claim 22, wherein said spacer is tilted.
- 24. A retro-reflective multi-port fiber optic device comprising:
a triple-fiber ferrule with a common input pigtail fiber, a transmission output pigtail fiber and a reflection output pigtail fiber therein, the three pigtail fibers forming a virtual circle with the segment connecting the common input fiber and the reflection output fiber as its diameter; a lens positioned by one side of said ferrule; a filter positioned on one side of said lens opposite said ferrule; and a mirror positioned on one side of said filter opposite to said lens.
- 25. The device as defined in claim 24, wherein said mirror is tilted with thereof a normal line directs to both the common input pigtail fiber and the transmission output pigtail fiber rather than the reflection output pigtail fiber.
Parent Case Info
[0001] (This application is a CIP of the copending application Ser. No. 09/576,756 filed May 23, 2000, and a CIP of the copending application Ser. No. 09/255,047 filed Feb. 22, 1999)
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09576756 |
May 2000 |
US |
Child |
09817938 |
Mar 2001 |
US |