IP Library › Granted Patent US 10,840,602
Granted Patent B2
US 10,840,602 · App. 16/738,432 · Granted Nov 17, 2020

Multimode antenna system and methods for use therewith

Inventors: Paul Shala Henry (Holmdel, NJ); Giovanni Vannucci (Middletown, NJ); Thomas M. Willis, III (Tinton Falls, NJ)
Assignee: AT&T Intellectual Property I, L.P.
H01Q21/0006H01Q13/02H01Q21/205H04B1/38H04B3/52H04B7/0413
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Quick Facts
Patent No.
US 10,840,602
App. No.
16/738,432
Granted
Nov 17, 2020
Kind
B2
Abstract

In accordance with one or more embodiments, a communication device includes an antenna having a feed point and an aperture. A feedline is coupled to the feed point of the dielectric antenna. A multi-input multi-output (MIMO) transceiver is coupled to feedline, the MIMO transceiver facilitating a transmission of first electromagnetic waves to the feed point of the antenna, wherein the first electromagnetic waves are guided by the feedline, wherein the first electromagnetic waves propagate along the feedline via a plurality of guided wave modes without requiring an electrical return path, wherein the first electromagnetic waves convey first data in accordance with one or more MIMO techniques and wherein the first electromagnetic waves generate first free-space wireless signals at the aperture of the antenna in accordance with the one or more MIMO techniques.

Claims (35)

1. A communication device, comprising:

a dielectric antenna having a feed point, a body and an aperture; and

a feedline coupled to the feed point of the dielectric antenna, the feedline configured to guide first electromagnetic waves along the feedline to the feed point of the dielectric antenna, wherein the first electromagnetic waves propagate along the feedline via a plurality of guided wave modes at non-optical frequencies without requiring an electrical return path, wherein the first electromagnetic waves convey first data in accordance with one or more MIMO techniques and wherein the first electromagnetic waves traverse the body of the dielectric antenna and generate first free-space wireless signals at the aperture of the dielectric antenna in accordance with the one or more MIMO techniques.

2. The communication device of claim 1 , wherein the first electromagnetic waves are received by the dielectric antenna at the feed point, and the first electromagnetic waves propagate through a body of the dielectric antenna to the aperture.

3. The communication device of claim 2 , wherein the body of the dielectric antenna supports propagation of the plurality of guided wave modes from the feed point to the aperture.

4. The communication device of claim 1 , further comprising, a MIMO transceiver including a plurality of couplers configured to launch the first electromagnetic waves on the feedline.

5. The communication device of claim 4 , wherein the MIMO transceiver further includes a plurality of radio frequency front ends, coupled to the plurality of couplers, configured to generate first electromagnetic signals to facilitate launching of the first electromagnetic waves on the feedline via the plurality of couplers.

6. The communication device of claim 5 , wherein the MIMO transceiver further includes a MIMO processor configured to select the one or more MIMO techniques and controls the plurality of radio frequency front ends to generate the first electromagnetic signals in accordance with the one or more MIMO techniques.

7. The communication device of claim 6 , wherein the plurality of couplers is further configured to receive second electromagnetic waves from the feedline, wherein the second electromagnetic waves are launched on the feedline in response to second free space wireless signals received at the aperture of the dielectric antenna, wherein the plurality of radio frequency front ends receives second electromagnetic signals in response to the second electromagnetic waves, wherein the second free space wireless signals convey second data from a remote device that receives the first free-space wireless signals, and wherein the MIMO transceiver extracts the second data based on the second electromagnetic signals and in accordance with the one or more MIMO techniques.

8. The communication device of claim 7 , wherein the MIMO processor is configured to generate baseband signals conveying third data based on channel state feedback included in the second data, wherein the baseband signals are generated in accordance with the one or more MIMO techniques, wherein the plurality of radio frequency front ends is configured to generate third electromagnetic signals based on the baseband signals, wherein the plurality of couplers is configured to launch third electromagnetic waves on the feedline based on the third electromagnetic signals and wherein the third electromagnetic waves generate third free-space wireless signals at the aperture of the dielectric antenna in accordance with the one or more MIMO techniques.

9. The communication device of claim 6 , wherein the MIMO processor selects the one or more MIMO techniques from a plurality of MIMO techniques.

10. The communication device of claim 9 , wherein the plurality of MIMO techniques includes: a precoding, a spatial multiplexing, a mode division multiplexing, or a diversity coding or a combination thereof.

11. The communication device of claim 1 , wherein the feedline is a hollow conductive waveguide.

12. The communication device of claim 1 , wherein the feedline is a conductorless dielectric cable.

13. A method, comprising:

transmitting first electromagnetic waves along a feedline to a feed point of a dielectric antenna, the dielectric antenna also having a body and an aperture, wherein the first electromagnetic waves convey first data in accordance with one or more multi-input multi-output (MIMO) techniques and propagate at non-optical frequencies along the feedline via a plurality of guided wave modes without requiring an electrical return path, wherein the first electromagnetic waves traverse the body of the dielectric antenna to the aperture of the dielectric antenna; and

generating, via the dielectric antenna and in response to the first electromagnetic waves, first free-space wireless signals at the aperture of the dielectric antenna.

14. The method of claim 13 , further comprising:

launching second electromagnetic waves on the feedline in response to second free space wireless signals received at the aperture of the dielectric antenna, wherein the second free space wireless signals convey second data from a remote device that receives the first free-space wireless signals;

receiving the second electromagnetic waves from the feedline;

generating first electromagnetic signals in response to the second electromagnetic waves; and

extracting the second data based on the second electromagnetic signals and in accordance with the one or more MIMO techniques.

15. The method of claim 14 , further comprising:

generating baseband signals conveying third data based on channel state feedback included in the second data, wherein the baseband signals are generated in accordance with the one or more MIMO techniques;

generating second electromagnetic signals based on the baseband signals;

launching third electromagnetic waves on the feedline based on the third electromagnetic signals; and

generating third free-space wireless signals at the aperture of the dielectric antenna based on the third electromagnetic waves.

16. The method of claim 13 , further comprising:

selecting the one or more MIMO techniques from a plurality of MIMO techniques.

17. The method of claim 13 , wherein the one or more MIMO techniques include: a precoding, a spatial multiplexing, a mode division multiplexing, or a diversity coding or a combination thereof.

18. The method of claim 13 , wherein the feedline is one of: a hollow conductive waveguide or a conductorless dielectric cable.

19. The method of claim 13 , wherein the dielectric antenna supports propagation of the plurality of guided wave modes from the feed point to the aperture.

20. A communication device, comprising:

means for guiding electromagnetic waves, wherein the electromagnetic waves are at non-optical frequencies, wherein the electromagnetic waves propagate along the means for guiding via a corresponding plurality of guided wave modes without requiring an electrical return path, wherein the electromagnetic waves convey data in accordance with one or more multi-input multi-output (MIMO) techniques; and

means for radiating, responsive to the electromagnetic waves, free-space wireless signals from an aperture, the means for radiating coupled to the means for guiding at a feed point of the means for radiating, wherein the electromagnetic waves traverse the means radiating from the feed point to the aperture.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2020
From: HENRY, PAUL SHALA; VANNUCCI, GIOVANNI; WILLIS, THOMAS M., III
To: AT&T INTELLECTUAL PROPERTY I, L.P.
Reel/Frame 051478/0903 →
Continuity (4)
Continuation 16545389 · Aug 20, 2019
Continuation 16373816 · Apr 3, 2019
Continuation 15697133 · Sep 6, 2017
Related Publication 20200153109A1 · May 14, 2020
Cited By (2)
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