IP Library Granted Patent US 8,693,831
Granted Patent B2
US 8,693,831 · App. 13/489,867 · Granted Apr 8, 2014

Fiber optic cables allowing fiber translation to reduce bend attenuation

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Quick Facts
Patent No.
US 8,693,831
App. No.
13/489,867
Granted
Apr 8, 2014
Kind
B2
Abstract

A cable includes a channel with an aspect ratio that houses optical fibers therein. The cable includes first and second stranded conductors on opposing sides of the channel. The channel is arranged with respect to the stranded conductors so that the fibers assume low strain positions in the channel when the cable is bent.

Claims (65)

1. A fiber optic cable configured for use in consumer electronics applications, including connecting computer peripherals, the fiber optic cable comprising:

(A) colored optical fibers, each of the optical fibers comprising a glass core and cladding, wherein the optical fibers are non-buffered optical fibers;

(B) a polymer jacket having an outer periphery and a channel periphery that defines a channel through which the optical fibers extend,

wherein the channel extends the entire length of the cable,

wherein the shape of the channel is selected to allow the optical fibers to translate therein when the cable is bent;

wherein the cable cross-section can be bisected by a first axis and by a second axis, the first and second axes being perpendicular to one another, wherein the channel has a height that is generally measured along the first axis and a width that is generally measured along the second axis, wherein the height of the channel is greater than the width of the channel, wherein the optical fibers may move along the first axis;

wherein the channel has an aspect ratio, obtained by dividing the height of the channel by the width of the channel, of at least 1.5;

wherein the outer periphery of the jacket constitutes the exterior of the fiber optic cable;

wherein the fiber optic cable is circular in cross-section;

wherein the fiber optic cable has a particularly small footprint such that the diameter of the circular cross-section is about 3 millimeters;

(C) first and second bend-control elements,

wherein the bend-control elements provide a preferential bend characteristic to the fiber optic cable such that the fiber optic cable is inclined to twist when subjected to bending stresses so that the fiber optic cable bends about the second axis and the optical fibers will tend to move in the channel to assume a state of lower strain;

wherein the bend control elements are arranged on opposite sides of the channel from one another and are aligned with the second axis,

wherein the bend-control elements are wholly embedded in the jacket,

wherein the bend control elements comprise electrically-conductive material and wherein the electrically-conductive material is metallic;

wherein the bend control elements are spaced apart from the interior of the channel by a distance of at least 0.15 millimeters, thereby providing sufficient separation to mitigate pinching or other direct- or indirect-interaction that may attenuate, damage, or otherwise influence the optical fibers when the cable is bent.

2. The fiber optic cable of claim 1 , wherein the electrically-conductive material is steel, and wherein the bend control elements are non-insulated in that the steel is embedded in the jacket without additional insulating material.

3. The fiber optic cable of claim 2 , wherein the steel of the bend control elements is stranded, thereby providing tensile strength to the cable while retaining good flexibility so that the fiber optic cable is relatively easy to bend.

4. The fiber optic cable of claim 3 , wherein the bend-control elements have a diameter that is in the range of about 0.3 millimeters or less, facilitating the particularly small footprint of the fiber optic cable.

5. The fiber optic cable of claim 1 , wherein the fiber optic cable not merely comprises, but consists essentially of elements (A), (B), and (C).

6. The fiber optic cable of claim 5 , wherein the diameter of the fiber optic cable is, more specifically, in the range of 2.9 to 3.5 millimeters.

7. The fiber optic cable of claim 6 , wherein the optical fibers are precisely four optical fibers.

8. A fiber optic cable configured for use in consumer electronics applications, including connecting computer peripherals, the fiber optic cable comprising:

(A) optical fibers, each of the optical fibers comprising a glass core and cladding, wherein the optical fibers are non-buffered optical fibers;

(B) a polymer jacket having an outer periphery and a channel periphery that defines a channel through which the optical fibers extend,

wherein the channel extends the entire length of the cable,

wherein the shape of the channel is selected to allow the optical fibers to translate therein when the cable is bent;

wherein the cable cross-section can be bisected by a first axis and by a second axis, the first and second axes being perpendicular to one another, wherein the channel has a height that is generally measured along the first axis and a width that is generally measured along the second axis, wherein the height of the channel is greater than the width of the channel, wherein the optical fibers may move along the first axis;

wherein the channel has an aspect ratio, obtained by dividing the height of the channel by the width of the channel, of at least 1.5;

wherein the outer periphery of the jacket constitutes the exterior of the fiber optic cable;

wherein the fiber optic cable is circular in cross-section;

wherein the fiber optic cable has a particularly small footprint such that the diameter of the circular cross-section is about 3 millimeters;

(C) first and second bend-control elements,

wherein the bend-control elements provide a preferential bend characteristic to the fiber optic cable such that the fiber optic cable is inclined to twist when subjected to bending stresses so that the fiber optic cable bends about the second axis and the optical fibers will tend to move in the channel to assume a state of lower strain;

wherein the bend control elements are arranged on opposite sides of the channel from one another and are aligned with the second axis,

wherein the bend-control elements are wholly embedded in the jacket,

wherein the bend control elements comprise electrically-conductive material and wherein the electrically-conductive material is metallic;

wherein the bend control elements are spaced apart from the interior of the channel by a distance of at least 0.15 millimeters, thereby providing sufficient separation to mitigate pinching or other direct- or indirect-interaction that may attenuate, damage, or otherwise influence the optical fibers when the cable is bent.

9. The fiber optic cable of claim 8 , wherein the electrically-conductive material is steel, and wherein the bend control elements are non-insulated in that the steel is embedded in the jacket without additional insulating material.

10. The fiber optic cable of claim 9 , wherein the steel of the bend control elements is stranded, thereby providing tensile strength to the cable while retaining good flexibility so that the fiber optic cable is relatively easy to bend.

11. The fiber optic cable of claim 10 , wherein the bend-control elements have a diameter that is in the range of about 0.3 millimeters or less, facilitating the particularly small footprint of the fiber optic cable.

12. The fiber optic cable of claim 8 , wherein the fiber optic cable not merely comprises, but consists essentially of elements (A), (B), and (C).

13. The fiber optic cable of claim 12 , wherein the diameter of the fiber optic cable is, more specifically, in the range of 2.9 to 3.5 millimeters.

14. The fiber optic cable of claim 13 , wherein the optical fibers are precisely four optical fibers.

15. A fiber optic cable configured for use in consumer electronics applications, including connecting computer peripherals, the fiber optic cable comprising:

(A) colored optical fibers, each of the optical fibers comprising a glass core and cladding;

(B) a polymer jacket having an outer periphery and a channel periphery that defines a channel through which the optical fibers extend,

wherein the channel extends the entire length of the cable,

wherein the shape of the channel is selected to allow the optical fibers to translate therein when the cable is bent;

wherein the cable cross-section can be bisected by a first axis and by a second axis, the first and second axes being perpendicular to one another, wherein the channel has a height that is generally measured along the first axis and a width that is generally measured along the second axis, wherein the height of the channel is greater than the width of the channel, wherein the optical fibers may move along the first axis;

wherein the channel has an aspect ratio, obtained by dividing the height of the channel by the width of the channel, of at least 1.5;

wherein the outer periphery of the jacket constitutes the exterior of the fiber optic cable;

wherein the fiber optic cable is circular in cross-section;

wherein the fiber optic cable has a particularly small footprint such that the diameter of the circular cross-section is in the range of 2.9 to 3.5 millimeters;

(C) first and second bend-control elements,

wherein the bend-control elements provide a preferential bend characteristic to the fiber optic cable such that the fiber optic cable is inclined to twist when subjected to bending stresses so that the fiber optic cable bends about the second axis and the optical fibers will tend to move in the channel to assume a state of lower strain;

wherein the bend control elements are arranged on opposite sides of the channel from one another and are aligned with the second axis,

wherein the bend-control elements are wholly embedded in the jacket,

wherein the bend control elements comprise electrically-conductive material and wherein the electrically-conductive material is metallic;

wherein the bend control elements are spaced apart from the interior of the channel by a distance of at least 0.15 millimeters, thereby providing sufficient separation to mitigate pinching or other direct- or indirect-interaction that may attenuate, damage, or otherwise influence the optical fibers when the cable is bent.

16. The fiber optic cable of claim 15 , wherein the electrically-conductive material is steel, and wherein the bend control elements are non-insulated in that the steel is embedded in the jacket without additional insulating material.

17. The fiber optic cable of claim 16 , wherein the steel of the bend control elements is stranded, thereby providing tensile strength to the cable while retaining good flexibility so that the fiber optic cable is relatively easy to bend.

18. The fiber optic cable of claim 17 , wherein the bend-control elements have a diameter that is in the range of about 0.3 millimeters or less, facilitating the particularly small footprint of the fiber optic cable.

19. The fiber optic cable of claim 15 , wherein the fiber optic cable not merely comprises, but consists essentially of elements (A), (B), and (C).

20. The fiber optic cable of claim 19 , wherein the optical fibers are precisely four optical fibers.

Assignments (4)
MERGER Recorded Aug 18, 2017
From: CCS TECHNOLOGY, INC.; CORNING OPTICAL COMMUNICATIONS BRANDS, INC.
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 043601/0427 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 22, 2016
From: CORNING OPTICAL COMMUNICATIONS LLC
To: CCS TECHNOLOGY, INC.
Reel/Frame 040663/0047 →
CHANGE OF NAME Recorded Sep 23, 2016
From: CORNING CABLE SYSTEMS LLC
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 040126/0818 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2012
From: REGISTER III, JAMES A.; ROBERTS, REGINALD; TUTTLE, RANDALL D.
To: CORNING CABLE SYSTEMS LLC
Reel/Frame 028721/0420 →