Claims
- 1. A dual fiber collimator comprising:
an optical lens; and a ferrule means coaxially aligned with said lens and defining a pair of spaced pigtail optical fibers with a specific distance therebetween, wherein the lens and the ferrule means are retained in position relative to each other so that the signals transmitted by said pair of fibers may precisely travel through the lens in predetermined paths or angles thereof by controllably select the proper said specific distance.
- 2. The dual fiber collimator as described in claim 1, wherein a filter is positioned beside the lens opposite to the ferrule means, thus making a precisely controllable incident angle thereof, and a center wavelength of a bandpass filter can be made to coincide with a required standard one.
- 3. The dual fiber collimator as described in claim 2, wherein the ferrule means includes a first chip in which a pair of V-shaped grooves is formed around an upper surface thereof, and a second chip covering said fist chip and cooperating with said first chip to sandwich the fibers inside the V-shaped grooves therebetween .
- 4. The dual fiber collimator as described in claim 3, wherein a protective guiding sleeve surrounds the fist and second chips.
- 5. The dual fiber collimator as described in claim 4, wherein adhesive is applied to the ferrule means.
- 6. A method for making a dual fiber collimator, comprising steps of:
providing an optical lens; providing a ferrule means defining a pair of spaced pigtail optical fibers with a specific distance therebetween; coaxially aligned the ferrule means with said lens in position relative to each other so that the signals transmitted by said pair of fibers may precisely travel through the lens in predetermined paths or angles thereof by controllably select the proper said specific distance; and fixing the optical lens and the ferrule means together.
- 7. The method as described in claim 6, further comprising a step of providing the ferrule means with a first chip in which a pair of V-shaped grooves are formed, and a second chip covering said first chip for retainably holding the fibers inside the V-shaped grooves therebetween.
- 8. The method as described in claim 7, wherein a protective guiding sleeve encloses both the first and second chips.
- 9. The method as described in claim 6, further including providing a filter beside the lens opposite to the ferrule means so that the light coupled in from the pigtail fibers can have a precisely controllable incident angle thereof, and a center wavelength of a bandpass filter can be made to coincide with a required standard one.
- 10. A method for making a dual fiber collimator, comprising steps of:
providing an optical lens; providing a series of ferrule means respectively with pairs of spaced fibers with different distances therebetween from one another; selecting one of said ferrule means by referring to a focal length of said optical lens so as to provide a desired incident angle of a light beam when said light beam passes through a filter; and fixing the optical lens and the selected ferrule means so that the desired incident angle of the light beam collimated by the collimator, results in a center wavelength of the filter being coincident with a required standard one.
- 11. The method as described in claim 10, wherein each of said ferrule means defines a pair of V-grooves therein.
- 12. The method as described in claim 10, wherein the fibers are retainably embedded within the corresponding ferrule means by means of occupying material therebetween.
- 13. A system for making a collimator comprising:
an optical lens; a filter fixed on one side of the lens to form a lens-filter subassembly; and one of a dense series of modularized ferrule means selectively positioned on the other side of the lens, said modularized ferrule means respectively including pairs of built-in optical fibers with different distances therebetween from one another; wherein said selected one of the modularized ferrule means defines the distance between the corresponding pair of optical fibers to comply with the lens-filter so as to tune the center wavelength of the filter to coincident with a required standard one.
- 14. The system as described in claim 13, wherein each of said modularized ferrule means defines a pair of V-grooves therein to precisely position the corresponding pair of optical fibers in position.
- 15. The system as described in claim 13, wherein each of said modularized ferrule means retainably embeds the corresponding pair of optical fibers in position by means of occupying material thereabout.
- 16. A method of assembling an optical component assembly comprising:
providing a first subassembly and a second subassembly head to head positioned with each other; providing said first subassembly with a lens and a ferrule from a series of ferrule means respectively with pairs of spaced fibers having different distances therebetween from one another; providing said second subassembly with a lens and a ferrule from a series of ferrule means respectively with pairs of spaced fibers having different distances therebetween from one another; selecting the first and the second subassembly to match with each other according to the spacings of the pairs of fibers in their ferrule respectively for transmitting light therebetween.
- 17. The method as described in claim 16, wherein at least one filter is positioned in between the lenses of the first and the second subassembly.
- 18. A method of precisely obtaining a channel from a signal in a DWDM collimator, comprising the steps of:
(a) providing a lens with thereabouts a filter which inherently defines a center wavelength which is close to but with an offset from a desired standard center wavelength grid such as defined by ITU; (b) providing a dense series of dual-fiber ferrule means each with therein a pair of fibers defining a spacing different from one another; (c) selecting only a proper one in said dense series of dual-fiber ferrule means, in which the spacing between the pair of fibers precisely compensates said offset to tune the center wavelength of the filter substantially meet said desired standard center wavelength, and the channel at said center wavelength can be filtered out; (d) securing the lens and said specifically selected dual fiber ferrule means together.
- 19. The method as described in claim 18, wherein said filter is first substantially directly attached to a front surface of the lens.
- 20. The method as described in claim 18, wherein said filter is first directly attached to another lens of another collimator, and then successively sandwiched between the lens and said another lens when said collimator and said another collimator are assembled together.
- 21. An arrangement of two fibers for use in a dual fiber collimator comprising:
first and second fibers; ferrule means for holding said first and second fibers, said ferrule means including a base chip defining a pair of spaced V-shaped grooves therein with a parallel relation therebetween, and a cover chip positioned on said base chip; and a lens positioned in front of the ferrule means; wherein said base chip with V-shaped grooves is properly configured to cooperate with the cover chip for commonly defining a space in which the corresponding fibers are snugly received inside the parallel V-shaped grooves.
- 22. The arrangement as described in claim 21, wherein the first fiber and the second fiber are equidistantly spaced from and positioned by two sides of an optical axis of the lens in two opposite radial directions so that the collimated light beams on the other side of the lens cross with each other on said optical axis with substantially the same angle.
Parent Case Info
[0001] (This is a continuation-in-part of the copending application Ser. No. 09/255,047 filed Feb. 22, 1999, and a continuation-in-part of the copending application Ser. No. 09/488,937 filed Jan. 21, 2000.)
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09255047 |
Feb 1999 |
US |
Child |
09736002 |
Dec 2000 |
US |
Parent |
09488937 |
Jan 2000 |
US |
Child |
09736002 |
Dec 2000 |
US |