An optical attenuator for attenuating a collimated beam of light propagating along an optical path while preserving the composition of polarization of the collimated beam of light is disclosed. The optical attenuator comprises a beam attenuator for attenuating a portion of the collimated beam of light when a portion of the beam attenuator is disposed within the optical path. The beam attenuator has a cross section along a plane perpendicular to the direction of propagation of the collimated beam of light of the portion of the attenuator in the shape of a wedge. The attenuation is varied using a controller for moving the beam attenuator in order to vary a size of the portion of the wedge within the optical path.
|
0. 32. An optical attenuator for attenuating a beam of light comprising:
a body of light blocking material including at least one wedge-shaped opening at a leading edge thereof for attenuating the beam of light; and
a controller for varying the position of the body within the beam of light to control the attenuation thereof.
0. 21. An optical attenuator for attenuating a beam of light comprising:
a body of light blocking material including at least one wedge-shaped projection at a leading edge thereof for attenuating the beam of light; and
a controller for varying the position of the body within the beam of light to control the attenuation thereof;
wherein the body comprises a cylindrical shaft having a cone at a first end thereof.
0. 25. An optical attenuator for attenuating a beam of light comprising:
a body of light blocking material including at least one wedge-shaped projection at a leading edge thereof for attenuating the beam of light; and
a controller for varying the position of the body within the beam of light to control the attenuation thereof;
wherein the body includes two wedge shaped projections with a wedge-shaped opening therebetween.
0. 23. An optical attenuator for attenuating a beam of light comprising:
a body of light blocking material including at least one wedge-shaped projection at a leading edge thereof for attenuating the beam of light; and
a controller for varying the position of the body within the beam of light to control the attenuation thereof;
wherein each projection includes two substantially equal sides, which define an angle of 90° therebetween.
1. A method of attenuating a beam of light having a circular cross-section comprising the step of disposing a member having a substantially opaque beam attenuating portion within the beam of light, the intersection of the beam attenuating portion of the member and the beam of light defining a beam region that is smaller than the beam of the light and having two substantially equal sides defining an angle therebetween of other than 0 degrees and 180 degrees, the two sides having a central line of symmetry coincident with a line of symmetry through the centre of the circle, the angle moving along the line of symmetry.
3. An optical attenuator for attenuating a beam of light having a circular cross-section, the optical attenuator comprising:
a beam attenuator which is at least partially light blocking for attenuating a portion of the beam of light when a portion of the beam attenuator is disposed within the beam of light, the beam attenuator being disposed within the beam of light such that the intersection of the beam attenuator and the beam of light defining a beam region that is smaller than the beam of the light and having two substantially equal sides having an angle other than 0 degrees and 180 degrees therebetween, the two sides having a central line of symmetry coincident with a line of symmetry through the centre of the circle, the angle moving along the line of symmetry; and,
a controller for moving the beam attenuator in order to vary a size of the portion of the beam attenuator within the beam of light.
2. A method of attenuating a beam of light having a circular cross-section as defined in
4. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
5. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
6. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
7. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
8. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
9. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
10. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
11. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
12. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
13. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
14. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
15. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
16. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
17. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
18. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
19. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
20. An optical attenuator for attenuating a beam of light having a circular cross-section as defined in
0. 22. The optical attenuator according to
0. 24. The optical attenuator according to
0. 26. The optical attenuator according to
0. 27. The optical attenuator according to
0. 28. The optical attenuator according to
0. 29. The optical attenuator according to
0. 30. The optical attenuator according to
0. 31. The optical attenuator according to
0. 33. The optical attenuator according to
|
This invention relates to an optical attenuator for attenuating the intensity of a beam of light, and in particular to an optical attenuator that preserves the composition of polarization of a beam of light over a wide range of attenuation.
Between a transmitter and a detector of a fiber optic system, attenuation of the signal strength occurs. The system is designed for a normal amount of signal loss between transmitter and detector. At the detector, the signal strength must be maintained within an appropriate range. The minimum strength is determined by the need for an adequate signal-to-noise ratio. The maximum strength is determined by the need to avoid an overload of the detector.
In U.S. Pat. No. 5,325,459 issued to S. Schmidt in June, 1994 an optical attenuator is disclosed comprising a disk formed from two separate portions, a wedge shaped disk made of a light absorbing material affixed to a wedge shaped transparent disk. For adjusting different attenuations, the disk is rotated around an axis by a motor. The attenuator needs a complex setup to compensate for refraction and resulting beam deviations. The compensations ensure that the beam of light is coupled into the optical fiber at any angular orientation of the attenuator disk. As such, the device is expensive and prone to reliability problems.
A well known alternative to the complex solution disclosed in U.S. Pat. No. 5,325,459 is the use of an opaque straight edge disposed within the optical path of a collimated beam of light. Unfortunately, using this device for attenuating a beam of light results in a change of the polarization composition of the beam of light. This is an undesirable effect when used in an optical fibre network. Since polarization components of light within the system are often not known it is a disadvantage to have polarization dependent attenuation.
It would be advantageous to provide an attenuator that maintains the polarization composition of a beam of light.
It is an object of the invention to provide an optical attenuator for attenuating the intensity of a beam of light that preserves the polarization composition of a beam of light over a wide range of attenuation.
It is further an object of the invention to provide an optical attenuator that is easily implemented in a fiber optic network.
According to the invention a method of attenuating a beam of light having a circular cross-section is provided. The method comprises the step of disposing a member within the beam of light, the intersection of the member and the beam of light defining a region having two substantially equal sides defining an angle other than 0 degrees and 180 degrees therebetween the two sides having a central line of symmetry coincident with a line of symmetry through the centre of the circle, the angle moving along the line of symmetry.
According to the invention an optical attenuator for attenuating a beam of light having a circular cross-section is provided. The optical attenuator comprises:
Exemplary embodiments of the invention will now be described in conjunction with the drawings, in which:
Referring to
Alternatively, the attenuator comprises an opaque cone within a transparent body. For example, such an attenuator is realised by immersing a cone made of laminated glass in a transparent fluid, the glass and the fluid having matching refractive indices. During a cooling process the fluid solidifies and retains the cone at a predetermined location within the solidified fluid.
Further alternatively, the attenuator comprises a transparent body having a conic indention, wherein the surface of the body defining the indention is covered with a layer of opaque or light absorbing material.
Preferably, the cone 18 comprises an angle of 90 degrees. In order to attenuate the light within the beam of light while maintaining the polarization composition the cone is moved into the beam of light such that the point of the cone moves along a diameter of a cross section of the beam of light and the side of the cone that is illuminated by the beam of light is substantially symmetrical about the diameter. In this way, approximately an equal amount of light of each orthogonal polarization is blocked or attenuated.
The attenuator according to the invention is advantageous compared with prior art devices such as a straight edge because the attenuated beam of light has substantially a same polarization composition as the collimated beam of light.
In another embodiment according to the invention the beam of light 16 is attenuated using a wedge shaped edge. Preferably, the edge comprises at least an outer layer of light absorbing material in order to prevent light reflected from the edge from interfering with the incoming beam of light 16. Preferably the wedge is substantially flat, thereby allowing it to be moved into and out of a narrow gap.
Optionally, the attenuator comprises a wedge shaped body of light absorbing material.
Alternatively, the attenuator comprises a body of light absorbing material having a wedge shaped opening.
Referring to
In another embodiment according to the invention the beam of light 16 is reflected by the reflective surface 25 onto an output lens 14, different from the input lens 12.
Optionally, the cone 18 is moved in another fashion such that the tip of the cone is within the optical path of the collimated beam of light 16 and the portion of the beam of light 16 blocked by the cone is altered. Referring to
Referring to
A beam attenuator according to the invention is defined herein and in the claims that follow to comprise an object or a portion of an object, the object or the portion of an object for attenuating light. For example, when a rectangular glass plate is provided with an opaque arrow head thereon, the beam attenuator refers to the opaque arrowhead.
Of course, numerous other embodiments may be envisaged without departing from the spirit and scope of the claimed invention.
Laflamme, Robert, Smiley, John O.
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
3843267, | |||
4591231, | Jun 26 1982 | ALCATEL N V , DE LAIRESSESTRAAT 153, 1075 HK AMSTERDAM, THE NETHERLANDS, A CORP OF THE NETHERLANDS | Variable optical attenuator |
5087122, | Aug 13 1990 | NETTEST NORTH AMERICA, INC AN OREGON CORPORATION | Adjustable attenuator for optical transmission system |
5136681, | Jul 09 1991 | Seikoh Giken Co., Ltd. | Optical powder attenuator of variable attenuation type |
5325459, | Feb 25 1992 | Agilent Technologies Inc | Optical attenuator used with optical fibers and compensation means |
5481631, | Feb 25 1994 | Perkin Elmer LLC | Optical switching apparatus with retroreflector |
5652818, | Jun 20 1995 | Nortel Networks Limited | Bragg gratings in waveguides and method of making same |
5900983, | Aug 22 1997 | AVAGO TECHNOLOGIES GENERAL IP SINGAPORE PTE LTD | Level-setting optical attenuator |
6088151, | Nov 16 1998 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Optical modulator with variable prism |
6167185, | Nov 24 1998 | JDS UNIPHASE INC | Adjustable optical attenuator |
6222656, | Mar 18 1998 | Axon Photonics, Inc. | Fiber optics signal attenuator |
CA2202308, | |||
JP4317009, | |||
JP5573002, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Dec 20 2002 | JDS Uniphase, Inc. | (assignment on the face of the patent) | / | |||
Jun 26 2015 | JDS UNIPHASE INC | JDS Uniphase Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 036087 | /0320 | |
Jul 31 2015 | JDS Uniphase Corporation | Lumentum Operations LLC | CORRECTIVE ASSIGNMENT TO CORRECT INCORRECT PATENTS 7,868,247 AND 6,476,312 ON PAGE A-A33 PREVIOUSLY RECORDED ON REEL 036420 FRAME 0340 ASSIGNOR S HEREBY CONFIRMS THE ASSIGNMENT | 037562 | /0513 | |
Jul 31 2015 | JDS Uniphase Corporation | Lumentum Operations LLC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 036420 | /0340 | |
Jul 31 2015 | JDS Uniphase Corporation | Lumentum Operations LLC | CORRECTIVE ASSIGNMENT TO CORRECT PATENTS 7,868,247 AND 6,476,312 LISTED ON PAGE A-A33 PREVIOUSLY RECORDED ON REEL 036420 FRAME 0340 ASSIGNOR S HEREBY CONFIRMS THE ASSIGNMENT | 037627 | /0641 | |
Dec 10 2018 | OCLARO FIBER OPTICS, INC | DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT | PATENT SECURITY AGREEMENT | 047788 | /0511 | |
Dec 10 2018 | OCLARO, INC | DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT | PATENT SECURITY AGREEMENT | 047788 | /0511 | |
Dec 10 2018 | Lumentum Operations LLC | DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT | PATENT SECURITY AGREEMENT | 047788 | /0511 | |
Dec 12 2019 | DEUTSCHE AG NEW YORK BRANCH | Lumentum Operations LLC | RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS | 051287 | /0556 | |
Dec 12 2019 | DEUTSCHE AG NEW YORK BRANCH | OCLARO FIBER OPTICS, INC | RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS | 051287 | /0556 | |
Dec 12 2019 | DEUTSCHE AG NEW YORK BRANCH | OCLARO, INC | RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS | 051287 | /0556 |
Date | Maintenance Fee Events |
Jun 26 2008 | M1552: Payment of Maintenance Fee, 8th Year, Large Entity. |
Jul 07 2008 | REM: Maintenance Fee Reminder Mailed. |
Jul 08 2008 | ASPN: Payor Number Assigned. |
Jun 26 2012 | M1553: Payment of Maintenance Fee, 12th Year, Large Entity. |
Jul 15 2016 | ASPN: Payor Number Assigned. |
Jul 15 2016 | RMPN: Payer Number De-assigned. |
Apr 24 2017 | ASPN: Payor Number Assigned. |
Apr 24 2017 | RMPN: Payer Number De-assigned. |
Date | Maintenance Schedule |
Dec 04 2010 | 4 years fee payment window open |
Jun 04 2011 | 6 months grace period start (w surcharge) |
Dec 04 2011 | patent expiry (for year 4) |
Dec 04 2013 | 2 years to revive unintentionally abandoned end. (for year 4) |
Dec 04 2014 | 8 years fee payment window open |
Jun 04 2015 | 6 months grace period start (w surcharge) |
Dec 04 2015 | patent expiry (for year 8) |
Dec 04 2017 | 2 years to revive unintentionally abandoned end. (for year 8) |
Dec 04 2018 | 12 years fee payment window open |
Jun 04 2019 | 6 months grace period start (w surcharge) |
Dec 04 2019 | patent expiry (for year 12) |
Dec 04 2021 | 2 years to revive unintentionally abandoned end. (for year 12) |