IP Library Granted Patent US 12,742,941
Granted Patent B2
US 12,742,941 · App. 19/428,882 · Granted Sep 22, 2026

Optical fiber cable

Inventors: Peter J. Johnston (Taylorsville, NC); Xiang-Dong Mi (Corning, NY); Christopher Mark Quinn (Hickory, NC); Michael Sauer (Corning, NY); David Alan Seddon (Advance, NC)
Assignee: CORNING RESEARCH & DEVELOPMENT CORPORATION
G02B6/443
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Quick Facts
Patent No.
US 12,742,941
App. No.
19/428,882
Granted
Sep 22, 2026
Kind
B2
Abstract

An optical fiber cable includes a hollow-core optical fiber. The cable is configured to have a low excess fiber length (EFL) of the hollow-core fiber. The cable is further configured to maintain a high minimum bending radius of the hollow-core fiber to prevent permanent damage to the hollow-core fiber during installation and operation of the cable.

Claims (39)

1 . An optical fiber cable, comprising:

a jacket comprising a polymer, wherein the jacket at least partially surrounds a passage extending lengthwise therethrough a distance of at least 50 centimeters;

strength members positioned in the passage and/or coupled to the jacket, wherein the strength members comprise an elastic modulus greater than the polymer of the jacket, whereby the strength members are configured to bear tensile loading of the optical fiber cable;

wherein the cable comprises a preferential bend axis around which bending of the optical fiber cable requires less force to accomplish than another axis of the optical fiber cable, and wherein at least two of the strength members are positioned along the preferential bend axis of the optical fiber cable:

an optical fiber positioned in the passage, wherein the optical fiber comprises a cladding surrounding capillary tubes, and wherein surfaces of at least some of the capillary tubes surround a hollow core of the optical fiber, the hollow core configured to guide optical signals transmitted therealong;

wherein the cladding of the optical fiber has interior and exterior surfaces, wherein a cross-section of cladding taken orthogonal to length of the optical fiber has a perimeter corresponding to the exterior surface, wherein area of the cross-section within the perimeter is greater than 50 μm 2 and less than 1 mm 2 ; and

a coating overlaying the cladding of the optical fiber;

wherein the passage has a cross-sectional area greater than ten times that of the cladding of the optical fiber and wherein the optical fiber is at least partially free to move around in the passage relative to the jacket,

wherein when the optical fiber cable bends to a radius of 200 mm, at least a portion of the optical fiber moves within the passage of the cable jacket to more closely align the hollow core of the optical fiber with a neutral axis of the optical fiber cable;

wherein when the optical fiber cable bends to the radius of 200 mm, at least a portion of the hollow core of the optical fiber overlays or intersects the neutral axis of the optical fiber cable;

whereby as the optical fiber cable bends the optical fiber cable is configured to facilitate reorientation of the optical fiber within the passage to a lower-stress position and/or orientation relative to another higher-stress position and/or orientation, and to thereby mitigate loss of signals communicated by the optical fiber.

2 . The optical fiber cable of claim 1 , wherein the optical fiber comprises a stronger axis and a weaker axis such that loading to bend the optical fiber around the stronger axis is greater than that to bend the optical fiber around the weaker axis.

3 . The optical fiber cable of claim 2 , wherein the capillary tubes of the optical fiber are connected to the interior surface of the cladding and spaced apart from one another around the interior surface thereof; and wherein the stronger axis of the optical fiber passes through the exterior surface of the cladding, a center of the optical fiber, at least one of the capillary tubes, and again through the exterior surface of the cladding.

4 . The optical fiber cable of claim 3 , wherein when the optical fiber cable bends to the radius of 200 mm around the preferential bend axis of the optical fiber cable, the optical fiber at least partially rotates within the passage of the optical fiber cable such that the weaker axis of the optical fiber moves closer to alignment with the preferential bend axis of the optical fiber cable.

5 . The optical fiber cable of claim 1 , wherein the optical fiber cable has a length of at least 10 meters, and wherein in a 10-meter-long section of the optical fiber cable lying straight and flat, at 20° C. and not under tension, the optical fiber in the passage thereof has a length greater than or equal to 10 meters and less than 10.05 meters.

6 . The optical fiber cable of claim 5 , wherein in the 10-meter-long section, the optical fiber has a length less than 10.02 meters.

7 . The optical fiber cable of claim 1 , wherein the optical fiber is a first optical fiber and the optical fiber cable further comprising a second optical fiber, wherein the second optical fiber comprises a cladding, capillary tubes, and a hollow core configured to guide optical signals transmitted along the second optical fiber; wherein the first and second optical fibers are at least partially bonded to one another; and wherein a preferential bending axis of the first and second optical fibers bonded to one another extends from the cladding of the first optical fiber, through the hollow core of the first optical fiber, again through the cladding of the first optical fiber, through the bond between the first and second optical fibers, through the cladding of the second optical fiber, through the hollow core of the second optical fiber, and again through the cladding of the second optical fiber.

8 . The optical fiber cable of claim 7 , wherein when the optical fiber cable bends to the radius of 200 mm around a preferential bending axis thereof, the first and second optical fibers at least partially rotate within the passage such that the preferential bending axis of the first and second optical fibers moves closer into alignment with the preferential bend axis of the optical fiber cable.

9 . The optical fiber cable of claim 7 , wherein when the optical fiber cable bends to the radius of 200 mm around the preferential bend axis thereof, the first and second optical fibers move within the passage toward a neutral axis of the optical fiber cable.

10 . The optical fiber cable of claim 1 , wherein the at least two of the strength members positioned along the preferential bend axis are embedded in the jacket, and wherein the at least two of the strength members comprise rods of glass-reinforced polymer, wherein the rods have a cross-sectional diameter greater than the cladding of the optical fiber, whereby the strength members mitigate effects on the optical fiber of crushing of the optical fiber cable.

11 . The optical fiber cable of claim 1 , wherein the strength members are positioned in the passage and comprising tensile-strength fibers.

12 . The optical fiber cable of claim 11 , comprising a length of the optical fiber cable of greater than 10 meters, wherein in a 10-meter-long section of the optical fiber cable lying straight and flat, at 20° C. and not under tension, the first and second optical fibers in the passage thereof each have a length greater than or equal to 10 meters and less than 10.05 meters.

13 . The optical fiber cable of claim 11 , wherein the optical fiber is a first optical fiber and the optical fiber cable further comprising a second optical fiber, wherein the second optical fiber comprises a cladding, capillary tubes, and a hollow core configured to guide optical signals transmitted along the second optical fiber; wherein the first and second optical fibers are at least partially bonded to one another; and wherein a preferential bending axis of the first and second optical fibers bonded to one another extends from the cladding of the first optical fiber, through the hollow core of the first optical fiber, again through the cladding of the first optical fiber, through the bond between the first and second optical fibers, through the cladding of the second optical fiber, through the hollow core of the second optical fiber, and again through the cladding of the second optical fiber.

14 . The optical fiber cable of claim 13 , wherein when the optical fiber cable bends to a radius of 200 mm around the preferential bend axis thereof, the first and second optical fibers move within the passage toward a neutral axis of the optical fiber cable.

15 . An optical fiber cable, comprising:

a jacket comprising a polymer, wherein the jacket at least partially surrounds a passage extending lengthwise therethrough a distance of at least 50 centimeters;

strength members positioned in the passage and/or coupled to the jacket, wherein the strength members comprise an elastic modulus greater than the polymer of the jacket, whereby the strength members are configured to bear tensile loading of the optical fiber cable;

wherein the cable comprises a preferential bend axis around which bending of the optical fiber cable requires less force to accomplish than another axis of the optical fiber cable, and wherein at least two of the strength members are positioned along the preferential bend axis of the optical fiber cable;

an optical fiber positioned in the passage, wherein the optical fiber comprises a cladding surrounding capillary tubes, and wherein surfaces of at least some of the capillary tubes surround a hollow core of the optical fiber, the hollow core configured to guide optical signals transmitted therealong;

wherein the cladding of the optical fiber has interior and exterior surfaces, wherein a cross-section of cladding taken orthogonal to length of the optical fiber has a perimeter corresponding to the exterior surface, wherein area of the cross-section within the perimeter is greater than 50 μm 2 and less than 1 mm 2 ; and

a coating overlaying the cladding of the optical fiber;

wherein the passage has a cross-sectional area greater than ten times that of the cladding of the optical fiber and wherein the optical fiber is at least partially free to move around in the passage relative to the jacket,

wherein when the optical fiber cable bends to a radius of 200 mm, at least a portion of the optical fiber moves within the passage of the cable jacket to more closely align the hollow core of the optical fiber with a neutral axis of the optical fiber cable;

whereby as the optical fiber cable bends the optical fiber cable is configured to facilitate reorientation of the optical fiber within the passage to a lower-stress position and/or orientation relative to another higher-stress position and/or orientation, and to thereby mitigate loss of signals communicated by the optical fiber.

16 . The optical fiber cable of claim 15 , wherein the optical fiber cable has a length of at least 10 meters, and wherein in a 10-meter-long section of the optical fiber cable lying straight and flat, at 20° C. and not under tension, the optical fiber in the passage thereof has a length greater than or equal to 10 meters and less than 10.05 meters.

17 . The optical fiber cable of claim 16 , wherein in the 10-meter-long section, the optical fiber has a length less than 10.02 meters.

18 . The optical fiber cable of claim 15 , wherein the optical fiber is a first optical fiber and the optical fiber cable further comprising a second optical fiber, wherein the second optical fiber comprises a cladding, capillary tubes, and a hollow core configured to guide optical signals transmitted along the second optical fiber; wherein the first and second optical fibers are at least partially bonded to one another; and wherein a preferential bending axis of the first and second optical fibers bonded to one another extends from the cladding of the first optical fiber, through the hollow core of the first optical fiber, again through the cladding of the first optical fiber, through the bond between the first and second optical fibers, through the cladding of the second optical fiber, through the hollow core of the second optical fiber, and again through the cladding of the second optical fiber.

19 . The optical fiber cable of claim 18 , wherein when the optical fiber cable bends to the radius of 200 mm around a preferential bending axis thereof, the first and second optical fibers at least partially rotate within the passage such that the preferential bending axis of the first and second optical fibers moves closer into alignment with the preferential bend axis of the optical fiber cable.

20 . The optical fiber cable of claim 18 , wherein when the optical fiber cable bends to the radius of 200 mm around the preferential bend axis thereof, the first and second optical fibers move within the passage toward a neutral axis of the optical fiber cable.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2026
From: JOHNSTON, PETER J.; MI, XIANG-DONG; QUINN, CHRISTOPHER MARK; SAUER, MICHAEL; SEDDON, DAVID ALAN
To: CORNING RESEARCH & DEVELOPMENT CORPORATION
Reel/Frame 073957/0149 →
Continuity (4)
Continuation In Part 19273996 · Jul 18, 2025
Provisional Application 63846498 · Jul 18, 2025
Provisional Application 63673367 · Jul 19, 2024
Related Publication 20260110864A1 · Apr 23, 2026
References Cited (21)
US 6895155B2 · Gasca · 2005 [cited by examiner]
US 9658393B2 · Digiovanni · 2017 [cited by examiner]
US 11156768B2 · Digiovanni et al. · 2021 [cited by applicant]
US 11747552B1 · Cataletto · 2023 [cited by examiner]
US 11835755B2 · Harker et al. · 2023 [cited by applicant]
US 20020136511A1 · Cecchi et al. · 2002 [cited by applicant]
US 20030174977A1 · Mayer · 2003 [cited by examiner]
US 20050103518A1 · Glew · 2005 [cited by examiner]
US 20070047885A1 · Mayer · 2007 [cited by examiner]
US 20070237460A1 · Fan · 2007 [cited by examiner]
US 20090059966A1 · Mayer · 2009 [cited by examiner]
US 20210396927A1 · Harker · 2021 [cited by examiner]
US 20220187532A1 · Unnimadhava Kurup Soudamini Amma et al. · 2022 [cited by applicant]
US 20230014659A1 · Corrado et al. · 2023 [cited by applicant]
US 20240036252A1 · Dainese et al. · 2024 [cited by applicant]
US 20240176088A1 · Blazer et al. · 2024 [cited by applicant]
US 20240288654A1 · Lang · 2024 [cited by examiner]
WO 2020070488A1 · 2020 [cited by applicant]
WO 2023234355A1 · 2023 [cited by applicant]
WO 2024015049A1 · 2024 [cited by applicant]
WO 2024035511A1 · 2024 [cited by applicant]