IP Library Granted Patent US 12,412,996
Granted Patent B2
US 12,412,996 · App. 17/670,268 · Granted Sep 9, 2025

Dual wideband orthogonally polarized antenna

Inventors: Ahmed A. Sakr (Cairo, EG); Mohamed Alaaeldin Moharram Hassan (Al Jizah, EG)
Assignee: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
H01Q21/065H01Q9/0414H01Q21/30
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Quick Facts
Patent No.
US 12,412,996
App. No.
17/670,268
Granted
Sep 9, 2025
Kind
B2
Abstract

Systems, devices, and methods related to dual wideband antennas with arbitrary frequency ranges are provided. An example antenna structure includes a high-band patch antenna to wirelessly communicate a first signal in a first frequency band; a low-band patch antenna to wirelessly communicate a second signal in a second frequency band lower than the first frequency band, wherein the low-band patch antenna is stacked vertically below the high-band patch antenna and spaced apart from the high-band patch antenna by a dielectric substrate; a high-band excitation via electrically coupled to the high-band patch antenna; and a low-band excitation via electrically coupled to the low-band patch antenna, wherein the high-band excitation via is separate from the low-band excitation via.

Claims (61)

1. A dual band antenna structure, comprising:

a first patch antenna disposed on a first layer of the dual band antenna structure;

a second patch antenna disposed on a second layer of the dual band antenna structure, wherein the second layer is vertically below the first layer and spaced apart by a dielectric substrate, and wherein the second patch antenna has a larger size than the first patch antenna and at least partially overlaps with the first patch antenna, with the second patch antenna having a conductive plane defining an opening at a side of the conductive plane;

a first excitation conductor electrically coupled to the first patch antenna through the opening; and

a second excitation conductor electrically coupled to the second patch antenna, wherein the second excitation conductor is separate from the first excitation conductor.

2. The dual band antenna structure of claim 1 , wherein the first patch antenna has a first resonant frequency within a first frequency band, and wherein the second patch antenna has a second resonant frequency within a second frequency band separate from the first frequency band.

3. The dual band antenna structure of claim 2 , wherein a ratio between the first resonant frequency of the first patch antenna and the second resonant frequency of the second patch antenna is greater than 1 and less than 2.

4. The dual band antenna structure of claim 1 , wherein the first patch antenna is associated with a first polarization, and wherein the second patch antenna is associated with a second polarization different from the first polarization.

5. The dual band antenna structure of claim 1 , further comprising:

a third excitation conductor disposed on a third layer of the dual band antenna structure, wherein the third layer is vertically below the second layer,

wherein the first excitation conductor has a first end coupled to the first patch antenna and a second end coupled to the third excitation conductor.

6. The dual band antenna structure of claim 5 , wherein the first excitation conductor extends vertically from the third layer to the first layer through the second patch antenna.

7. The dual band antenna structure of claim 5 , wherein the first excitation conductor extends vertically from the third layer to the first layer through a short circuit line of the second patch antenna.

8. The dual band antenna structure of claim 5 , further comprising:

a fourth excitation conductor disposed on the third layer, wherein the fourth excitation conductor is separate from the third excitation conductor,

wherein the second excitation conductor has a first end coupled to the second patch antenna and a second end coupled to the fourth excitation conductor.

9. The dual band antenna structure of claim 5 , further comprising:

a frequency selective coupling element disposed on the third layer of the dual band antenna structure and coupled between the first excitation conductor and the third excitation conductor.

10. A dual band antenna structure, comprising:

a high-band patch antenna to wirelessly communicate a first signal in a first frequency band;

a low-band patch antenna to wirelessly communicate a second signal in a second frequency band lower than the first frequency band, wherein the low-band patch antenna is stacked vertically below the high-band patch antenna and spaced apart from the high-band patch antenna by a dielectric substrate, with the low-band patch antenna having a conductive plane defining an opening at a side of the conductive plane;

a high-band excitation via electrically coupled to the high-band patch antenna through the opening; and

a low-band excitation via electrically coupled to the low-band patch antenna, wherein the high-band excitation via is separate from the low-band excitation via.

11. The dual band antenna structure of claim 10 , wherein the high-band patch antenna further communicates the first signal in one of a horizontal polarization or a vertical polarization, and wherein the low-band patch antenna further communicates the second signal in the other one of the horizontal polarization or the vertical polarization.

12. The dual band antenna structure of claim 10 , further comprising:

a first excitation stripline coupled to at least one of the high-band excitation via or the low-band excitation via.

13. The dual band antenna structure of claim 12 , wherein:

the first excitation stripline is coupled to the high-band excitation via; and

the dual band antenna structure further comprises:

a second excitation stripline coupled to the low-band excitation via, wherein the second excitation stripline is separate from the first excitation stripline.

14. The dual band antenna structure of claim 12 , wherein:

the first excitation stripline is coupled to the high-band excitation via and the low-band excitation via; and

the dual band antenna structure further comprises:

a frequency selective coupling element having a first terminal connected to the high-band excitation via and a second terminal connected to the low-band excitation via.

15. The dual band antenna structure of claim 10 , wherein at least one of:

the high-band patch antenna has a conductive plane with a U-shaped opening; or

the conductive plane of the low-band patch antenna defines a U-shaped opening.

16. A dual band antenna array apparatus, comprising:

a plurality of dual band antenna elements, wherein a first dual band antenna element of the plurality of dual band antenna elements comprises:

a high-band patch antenna to wirelessly communicate a first signal in a first frequency band;

a low-band patch antenna to wirelessly communicate a second signal in a second frequency band lower than the first frequency band, wherein the low-band patch antenna is stacked below the high-band patch antenna and spaced apart from the high-band patch antenna by a dielectric substrate, with the low-band patch antenna having a conductive plane defining an opening at a side of the conductive plane;

a high-band excitation conductor electrically coupled to the high-band patch antenna through the opening; and

a low-band excitation conductor electrically coupled to the low-band patch antenna, wherein the low-band excitation conductor is separate from the high-band excitation conductor; and

beamformer circuitry coupled to one or more of the plurality of dual band antenna elements, wherein the beamformer circuitry comprises a plurality of beamformer channels.

17. The dual band antenna array apparatus of claim 16 , wherein the beamformer circuitry comprises:

a first beamformer integrated circuit comprising a first subset of the plurality of beamformer channels associated with the first frequency band; and

a second beamformer integrated circuit comprising a second subset of the plurality of beamformer channels associated with the second frequency band.

18. The dual band antenna array apparatus of claim 16 , further comprising:

a beamformer integrated circuit comprising the plurality of beamformer channels, wherein a first subset of the plurality of beamformer channels associated with the first frequency band are spaced apart from each other by a second subset of the plurality of beamformer channels associated with the second frequency band in the beamformer integrated circuit.

19. The dual band antenna array apparatus of claim 16 , wherein:

a first subset of the plurality of beamformer channels are associated with the first frequency band;

a second subset of the plurality of beamformer channels are associated with the second frequency band; and

the first dual band antenna element is coupled to:

a first beamformer channel in the first subset of the plurality of beamformer channels by the high-band excitation conductor; and

a second beamformer channel in the second subset of the plurality of beamformer channels by the low-band excitation conductor.

20. The dual band antenna array apparatus of claim 16 , wherein:

the beamformer channels in the beamformer circuitry are dual band beamformer channels;

the first dual band antenna element further comprises:

a frequency selective coupling element; and

a common excitation conductor coupled to one of the high-band excitation conductor or the low-band excitation conductor directly and coupled to the other one of the high-band excitation conductor or the low-band excitation conductor via the common excitation conductor; and

the first dual band antenna element is further coupled to one of the dual band beamformer channels by the common excitation conductor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2022
From: SAKR, AHMED A.; HASSAN, MOHAMED ALAAELDIN MOHARRAM
To: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
Reel/Frame 058994/0267 →
Continuity (1)
Related Publication 20230261392A1 · Aug 17, 2023
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