IP Library › Granted Patent US 10,505,248
Granted Patent B2
US 10,505,248 · App. 15/802,948 · Granted Dec 10, 2019

Communication cable having a plurality of uninsulated conductors forming interstitial areas for propagating electromagnetic waves therein and method of use

Inventors: Paul Shala Henry (Holmdel, NJ); Giovanni Vannucci (Middletown, NJ); Thomas M. Willis, III (Tinton Falls, NJ); Robert Bennett (Southold, NY); Irwin Gerszberg (Kendall Park, NJ); Farhad Barzegar (Branchburg, NJ); Donald J. Barnickel (Flemington, NJ); Martin Birk (Holmdel, NJ); Shikik Johnson (Tinton Falls, NJ)
Assignee: AT&T Intellectual Property I, L.P.
H01P3/12H01P3/06H01P3/16H01P5/087H02J13/0027H04B3/02H04B3/03H04B3/52H04B3/56H04L12/2878H01Q3/26H01Q13/02H02J13/00H04B3/54H04B2203/5483Y02E60/7892Y04S40/146
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Quick Facts
Patent No.
US 10,505,248
App. No.
15/802,948
Granted
Dec 10, 2019
Kind
B2
Abstract

In accordance with one or more embodiments, a method includes: receiving, at a stranded cable, a communication signal and a medium voltage power signal; propagating, by the stranded cable, the medium voltage power signal as an electrical signal utilizing an electrical return path; and propagating, by the stranded cable and responsive to the communication signal, guided electromagnetic waves, wherein the guided electromagnetic waves are guided by an interstice between uninsulated strands of the stranded cable and propagate within the stranded cable without requiring the electrical return path.

Claims (32)

1. A cable, comprising:

a plurality of first uninsulated conductors; and

at least one second uninsulated conductor;

wherein the plurality of first uninsulated conductors and the at least one second uninsulated conductor are stranded together, wherein the plurality of first uninsulated conductors and the at least one second uninsulated conductor form a plurality of interstitial areas that are bounded by conductive surfaces of at least two of the plurality of first uninsulated conductors and the at least one second uninsulated conductor, and wherein at least one of the plurality of interstitial areas is configured to support a propagation of first guided electromagnetic waves within the cable without requiring any electrical return path.

2. The cable of claim 1 , wherein the cable is a medium voltage transmission line.

3. The cable of claim 1 , further comprising an insulating jacket that surrounds an exterior region of the cable.

4. The cable of claim 1 , wherein the at least one of the plurality of interstitial areas is configured to support the propagation of the first guided electromagnetic waves within the cable via total internal reflection.

5. The cable of claim 1 , wherein the first guided electromagnetic waves are within a millimeter wave frequency band.

6. The cable of claim 1 , wherein the plurality of first uninsulated conductors are stranded together by being helically wound around the at least one second uninsulated conductor.

7. The cable of claim 1 , wherein the plurality of first uninsulated conductors have a first metallic content and the at least one second uninsulated conductor has a second metallic content, and wherein the first metallic content differs from the second metallic content.

8. The cable of claim 1 , wherein at least one other of the plurality of interstitial areas that is different from the at least one of the plurality of interstitial areas is configured to support propagation of second guided electromagnetic waves within the cable without requiring any electrical return path.

9. The cable of claim 8 , wherein the first guided electromagnetic waves and the second guided electromagnetic waves are generated in accordance with at least one of a plurality of multi-input multi-output (MIMO) techniques.

10. A method, comprising:

receiving, at a cable, a first communication signal and a power signal;

propagating, by the cable, the power signal as an electrical signal utilizing an electrical return path; and

propagating, by the cable and responsive to the first communication signal, first guided electromagnetic waves, wherein the first guided electromagnetic waves are guided by a first hollow structure within the cable and propagate within the cable without requiring the electrical return path and wherein the first guided electromagnetic waves are within a millimeter wave frequency band.

11. The method of claim 10 , wherein the first communication signal is supplied to the cable by a transmission source, and wherein the power signal is supplied to the cable by a power source of an electrical power utility.

12. The method of claim 10 , wherein the cable is a medium voltage transmission line.

13. The method of claim 10 , wherein the cable includes a plurality of uninsulated conductors that is stranded together, wherein the plurality of uninsulated conductors forms a plurality of interstitial areas that are bounded by conductive surfaces of at least three of the plurality of uninsulated conductors, and wherein the first hollow structure within the cable comprises at least one of the plurality of interstitial areas.

14. The method of claim 13 , further comprising:

receiving, at the cable, a second communication signal; and

propagating, by the cable and responsive to the second communication signal, second guided electromagnetic waves, wherein the second guided electromagnetic waves are guided by a second hollow structure within the cable and propagate within the cable without requiring any electrical return path.

15. The method of claim 14 , wherein the second hollow structure within the cable comprises at least one other of the plurality of interstitial areas that is different from the at least one of the plurality of interstitial areas.

16. The method of claim 15 , wherein the first guided electromagnetic waves and the second guided electromagnetic waves are generated in accordance with at least one of a plurality of multi-input multi-output (MIMO) techniques.

17. The method of claim 10 , wherein the first hollow structure is configured to support the propagation of the first guided electromagnetic waves within the cable via total internal reflection.

18. The method of claim 10 , further comprising:

receiving, from the cable, the first guided electromagnetic waves.

19. A method, comprising:

receiving, at a stranded cable, a communication signal and a medium voltage power signal;

propagating, by the stranded cable, the medium voltage power signal as an electrical signal utilizing an electrical return path; and

propagating, by the stranded cable and responsive to the communication signal, guided electromagnetic waves, wherein the guided electromagnetic waves are guided by an interstice between uninsulated strands of the stranded cable and propagate within the stranded cable without requiring the electrical return path.

20. The method of claim 19 , wherein the stranded cable is a medium voltage transmission line.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 7, 2017
From: HENRY, PAUL SHALA; VANNUCCI, GIOVANNI; WILLIS, THOMAS M., III; BENNETT, ROBERT; GERSZBERG, IRWIN; BARZEGAR, FARHAD; BARNICKEL, DONALD J.; BIRK, MARTIN; JOHNSON, SHIKIK
To: AT&T INTELLECTUAL PROPERTY I, L.P.
Reel/Frame 044048/0825 →
Continuity (18)
Continuation In Part 14734073 · Jun 9, 2015
Continuation In Part 15652535 · Jul 18, 2017
Continuation 14734063 · Jun 9, 2015
Continuation In Part 14560215 · Dec 4, 2014
Continuation In Part 15802948 · Nov 3, 2017
Continuation In Part 15334427 · Oct 26, 2016
Continuation In Part 15652548 · Jul 18, 2017
Continuation 15350709 · Nov 14, 2016
Continuation 15070064 · Mar 15, 2016
Continuation 14548411 · Nov 20, 2014
Continuation 15802948 · Nov 3, 2017
Continuation In Part 15665632 · Aug 1, 2017
Continuation 15250345 · Aug 29, 2016
Continuation 14815019 · Jul 31, 2015
Continuation 15802948
Continuation In Part 15588254 · May 5, 2017
Continuation 14548429 · Nov 20, 2014
Related Publication 20180054232A1 · Feb 22, 2018
Cited By (1)
US 12,381,595