IP Library Granted Patent US 9,900,122
Granted Patent B2
US 9,900,122 · App. 15/652,548 · Granted Feb 20, 2018

Transmission device with mode division multiplexing and methods for use therewith

Inventors: Paul Shala Henry (Holmdel, NJ); Robert Bennett (Southold, NY); Irwin Gerszberg (Kendall Park, NJ); Farhad Barzegar (Branchurg, NJ); Donald J. Barnickel (Flemington, NJ); Thomas M. Willis, III (Tinton Falls, NJ)
Assignee: AT&T INTELLECTUAL PROPERTY I, L.P.
H04J14/04H01Q1/46H04B1/40H04B3/52H04B10/2581H04B10/40
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Quick Facts
Patent No.
US 9,900,122
App. No.
15/652,548
Granted
Feb 20, 2018
Kind
B2
Abstract

Aspects of the subject disclosure may include, for example, a transmission device that includes at least one transceiver configured to modulate data to generate a plurality of first electromagnetic waves. A plurality of couplers are configured to couple at least a portion of the plurality of first electromagnetic waves to a transmission medium, wherein the plurality of couplers generate a plurality of mode division multiplexed second electromagnetic waves that propagate along the outer surface of the transmission medium. Other embodiments are disclosed.

Claims (26)

1. A transmission device comprising:

at least one transceiver that generates a plurality of electromagnetic signals that conveys data; and

a plurality of couplers that facilitates coupling at least a portion of the plurality of electromagnetic signals to a transmission medium, wherein the transmission medium is a wire bundle, wherein the plurality of couplers generates a plurality of electromagnetic waves that is bound to at least one physical interface of the transmission medium via differing ones of a plurality of guided wave modes, to facilitate a propagation of the plurality of electromagnetic waves, wherein the plurality of guided wave modes includes a first non-fundamental mode and a second non-fundamental mode.

2. The transmission device of claim 1 , wherein the first non-fundamental mode has a first electromagnetic field pattern that includes a first lobe at a first azimuthal orientation to a longitudinal axis of the transmission medium.

3. The transmission device of claim 1 , wherein the wire bundle comprises a plurality of insulated conductors configured in a bundle, and wherein the plurality of electromagnetic waves is bound to at least one outer surface of the plurality of insulated conductors.

4. The transmission device of claim 2 , wherein the first azimuthal orientation corresponds to a local minimum of a second electromagnetic field pattern and wherein a second azimuthal orientation corresponds to a local minimum of the first electromagnetic field pattern.

5. The transmission device of claim 1 , wherein the differing ones of the plurality of guided wave modes further include a fundamental transverse magnetic mode.

6. The transmission device of claim 1 , wherein the plurality of electromagnetic signals is generated in a selected one of a plurality of multi-input multi-output (MIMO) modes.

7. The transmission device of claim 1 , wherein the propagation of the plurality of electromagnetic waves facilitates a mode division multiplexing of data conveyed by the plurality of electromagnetic waves.

8. A method, comprising:

generating, by at least one transceiver, a plurality of electromagnetic signals that conveys data; and

coupling, by a plurality of couplers, at least a portion of each of the plurality of electromagnetic signals onto at least one physical interface of a transmission medium to induce a plurality of electromagnetic waves that propagates, without requiring an electrical return path, along the at least one physical interface of the transmission medium, wherein the transmission medium is a wire bundle, wherein the plurality of electromagnetic waves propagates via differing ones of a plurality of guided wave modes, and wherein the plurality of guided wave modes includes a first non-fundamental mode and a second non-fundamental mode.

9. The method of claim 8 , wherein the first non-fundamental mode has an electromagnetic field strength that varies with an azimuthal orientation to a longitudinal axis of the transmission medium.

10. The method of claim 8 , wherein the wire bundle comprises a plurality of insulated conductors configured in a bundle, and wherein the plurality of electromagnetic waves is bound to at least one outer surface of the plurality of insulated conductors.

11. The method of claim 9 , wherein the first non-fundamental mode has a first electromagnetic field pattern that includes a first lobe at a first azimuthal orientation to the longitudinal axis of the transmission medium and the second non-fundamental mode has a second electromagnetic field pattern that includes a second lobe at a second azimuthal orientation to the longitudinal axis of the transmission medium, and wherein the first azimuthal orientation differs from the second azimuthal orientation.

12. The method of claim 11 , wherein the first azimuthal orientation corresponds to a local minimum of the second electromagnetic field pattern and wherein the second azimuthal orientation corresponds to a local minimum of the first electromagnetic field pattern.

13. The method of claim 8 , wherein the differing ones of the plurality of guided wave modes further include a fundamental transverse magnetic mode.

14. The method of claim 8 , wherein the plurality of electromagnetic signals is generated in a selected one of a plurality of multi-input multi-output (MIMO) modes.

15. A transmission device comprising:

transceiver means for modulating data to generate a plurality of electromagnetic signals that conveys data; and

coupling means for coupling at least a portion of the plurality of electromagnetic signals onto at least one physical interface of a transmission medium, wherein the coupling means generates a plurality of mode division multiplexed electromagnetic waves that propagates along the at least one physical interface of the transmission medium at non-optical frequencies without requiring an electrical return path, wherein the transmission medium is a wire bundle, and wherein the plurality of mode division multiplexed electromagnetic waves facilitates a mode division multiplexing of the data.

16. The transmission device of claim 15 , wherein one of the plurality of mode division multiplexed electromagnetic waves propagates along the at least one physical interface of the transmission medium via a first non-fundamental mode and another of the plurality of mode division multiplexed electromagnetic waves propagates along the at least one physical interface of the transmission medium via a second non-fundamental mode.

17. The transmission device of claim 16 , wherein the first non-fundamental mode has a first electromagnetic field strength that varies with an azimuthal orientation to a longitudinal axis of the transmission medium and the second non-fundamental mode has a second electromagnetic field strength that varies with the azimuthal orientation to the longitudinal axis of the transmission medium.

18. The transmission device of claim 16 , wherein the first non-fundamental mode has a first electromagnetic field pattern that includes a first lobe at a first azimuthal orientation to a longitudinal axis of the transmission medium and the second non-fundamental mode has a second electromagnetic field pattern that includes a second lobe at a second azimuthal orientation to the longitudinal axis of the transmission medium, and wherein the first azimuthal orientation differs from the second azimuthal orientation.

19. The transmission device of claim 18 , wherein the first azimuthal orientation corresponds to a local minimum of the second electromagnetic field pattern and wherein the second azimuthal orientation corresponds to a local minimum of the first electromagnetic field pattern.

20. The transmission device of claim 15 , wherein the plurality of electromagnetic signals is generated in a selected one of a plurality of multi-input multi-output (MIMO) modes.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2017
From: HENRY, PAUL SHALA; BENNETT, ROBERT; GERSZBERG, IRWIN; BARZEGAR, FARHAD; BARNICKEL, DONALD J; WILLIS, THOMAS M., III
To: AT&T INTELLECTUAL PROPERTY I, L.P.
Reel/Frame 043099/0321 →
Continuity (4)
Continuation 15350709 · Nov 14, 2016
Continuation 15070064 · Mar 15, 2016
Continuation 14548411 · Nov 20, 2014
Related Publication 20170317781A1 · Nov 2, 2017