IP Library Granted Patent US 11,670,867
Granted Patent B2
US 11,670,867 · App. 17/102,310 · Granted Jun 6, 2023

Phase diversity input for an array of traveling-wave antennas

Inventors: Michael Boyarsky (Durham, NC); Seyedmohammadreza Faghih Imani (Tempe, AZ); David R. Smith (Durham, NC)
Assignee: Duke University
H01Q21/0037H01Q13/20
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Quick Facts
Patent No.
US 11,670,867
App. No.
17/102,310
Granted
Jun 6, 2023
Kind
B2
Abstract

According to various embodiments, systems and methods for suppressing grating lobes in a traveling-wave antenna system are disclosed. An apparatus can include a traveling-wave antenna array comprising a plurality of adjacent traveling-wave antennas. The apparatus also can include a phase diversity feed coupled to the traveling-wave antenna array. The phase diversity feed can be configured to provide phase diverse input to two or more of the plurality of adjacent traveling-wave antennas.

Claims (46)

1. An apparatus comprising:

a traveling-wave antenna array comprising a plurality of adjacent traveling-wave antennas, wherein the plurality of adjacent traveling-wave antennas comprise a plurality of adjacent metamaterial radiating waveguide antennas, each adjacent metamaterial radiating waveguide antenna comprising an array of metamaterial radiators coupled to a waveguide, each metamaterial radiator comprising an individually addressable tunable component that can be tuned over a spectral bandwidth to generate different radiation patterns; and

a phase diversity feed coupled to the traveling-wave antenna array and configured to provide adjustable phase diverse input to two or more of the plurality of adjacent traveling-wave antennas, the phase diverse input comprising a first phase for a first traveling-wave antenna and a second phase for a second traveling-wave antenna, the first phase being different from the second phase, wherein the phase diverse input is selected to suppress grating lobes for a directed beam pattern selected for transmission.

2. The apparatus of claim 1 , wherein the phase diversity feed comprises a feed waveguide configured to provide input to the plurality of adjacent traveling-wave antennas including the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

3. The apparatus of claim 2 , wherein the feed waveguide is coupled to each of the plurality of adjacent traveling-wave antennas through a corresponding aperture and is configured to provide the input to the plurality of adjacent traveling-wave antennas through the corresponding aperture coupling the feed waveguide to each of the plurality of adjacent traveling-wave antennas.

4. The apparatus of claim 1 , wherein the phase diversity feed comprises an array of passive phase shifters configured to provide input to the plurality of adjacent traveling-wave antennas including the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

5. The apparatus of claim 4 , wherein each passive phase shifter in the array of passive phase shifters corresponds to a single traveling-wave antenna in the plurality of adjacent traveling-wave antennas and specific passive phase shifters in the array of passive phase shifters that correspond to the two or more of the plurality of adjacent traveling-wave antennas are configured to provide the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

6. The apparatus of claim 1 , wherein either or both the phase diverse input and the selected input are selected based on one or more characteristics of the traveling-wave antenna array.

7. A method comprising:

adjusting an input to provide to a traveling-wave antenna array comprising a plurality of adjacent traveling-wave antennas, the plurality of adjacent traveling-wave antennas comprising a plurality of adjacent metamaterial radiating waveguide antennas, each adjacent metamaterial radiating waveguide antenna comprising an array of metamaterial radiators coupled to a waveguide, each metamaterial radiator comprising an individually addressable tunable component that can be tuned over a spectral bandwidth to generate different radiation patterns, the adjusted input including a phase diverse input to provide to two or more of the plurality of adjacent traveling-wave antennas, the phase diverse input comprising a first phase for a first traveling-wave antenna and a second phase for a second traveling-wave antenna, the first phase being different from the second phase, wherein the phase diverse input is selected to suppress grating lobes for a directed beam pattern selected for transmission; and

providing the adjusted input to a phase diversity feed coupled to the traveling-wave antenna array to provide the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas through the phase diversity feed.

8. The method of claim 7 , wherein the phase diverse input is selected to provide a random or pseudo random phase offset between the two or more of the plurality of adjacent traveling-wave antennas.

9. The method of claim 7 , wherein the phase diverse input is selected to provide one of a 180°, 90°, or 45° phase offset between the two or more of the plurality of adjacent traveling-wave antennas.

10. The method of claim 7 , wherein either or both the phase diverse input and the input are selected based on one or more characteristics of the traveling-wave antenna array.

11. The method of claim 7 , wherein the plurality of adjacent traveling-wave antennas comprises either a plurality of adjacent metamaterial radiating waveguide antennas or a plurality of adjacent leaky wave antennas.

12. The method of claim 7 , wherein the phase diversity feed comprises a feed waveguide configured to provide the input to the plurality of adjacent traveling-wave antennas including the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

13. The method of claim 7 , wherein the phase diversity feed comprises an array of passive phase shifters configured to provide the input to the plurality of adjacent traveling-wave antennas including the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

14. The method of claim 13 , wherein each passive phase shifter in the array of passive phase shifters corresponds to a single traveling-wave antenna in the plurality of adjacent traveling-wave antennas and passive phase shifters in the array of passive phase shifters that correspond to the two or more of the plurality of adjacent traveling-wave antennas are configured to provide the phase diverse input to the two or more of the plurality of adjacent traveling-wave antennas.

15. The method of claim 7 , wherein the traveling-wave antenna array comprises at least four adjacent traveling-wave antennas, and wherein the phase diverse input is selected to provide:

a phase to the second traveling-wave antenna that is offset by 90 degrees from a phase provided to the first traveling-wave antenna;

a phase to a third traveling-wave antenna that is offset by 180 degrees from a phase provided to the first traveling-wave antenna; and

a phase to a fourth traveling-wave antenna that is offset by 270 degrees from a phase provided to the first traveling-wave antenna.

16. A method of manufacture comprising:

selecting an input to feed to a traveling-wave antenna array comprising a plurality of adjacent traveling-wave antennas through a phase diversity feed during operation of the traveling-wave antenna array, the plurality of adjacent traveling-wave antennas comprising a plurality of adjacent traveling-wave antenna waveguides, the input including a phase diverse input to feed to two or more of the plurality of adjacent traveling-wave antennas and the phase diverse input is at least part of selected input for the traveling-wave antenna array that is specifically selected to affect formation of grating lobes in one or more desired output radiation patterns of the traveling-wave antenna array, wherein the phase diversity feed comprises a feed waveguide configured to provide input to the plurality of adjacent traveling-wave antennas;

identifying one or more design characteristics of the phase diversity feed based on the phase diverse input; and

manufacturing the phase diversity feed based on the one or more design characteristics of the phase diversity feed identified based on the phase diverse input, wherein the design characteristics include a width of the waveguide feed (a f ), a width of the travelling-wave antenna waveguides (a r ), and a number of the travelling-wave antenna waveguides (M), such that

a

f

=

Ma

r

λ

2

M

2

a

r

2

-

λ

2

wherein λ is a free space wavelength.

17. The method of manufacture of claim 16 , wherein the input is selected based on one or more characteristics of the traveling-wave antenna array.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 11, 2021
From: BOYARSKY, MICHAEL; FAGHIH IMANI, SEYEDMOHAMMADREZA; SMITH, DAVID R.
To: DUKE UNIVERSITY
Reel/Frame 057151/0915 →
Continuity (2)
Provisional Application 62938703 · Nov 21, 2019
Related Publication 20210210866A1 · Jul 8, 2021
Cited By (1)
US 12,469,968