IP Library Granted Patent US 12,731,897
Granted Patent B2
US 12,731,897 · App. 18/926,136 · Granted Sep 8, 2026

Compact dual polarity radiator for a dense array

Inventors: Juan Segador Alvarez (Munich, DE); Zhi Gong (Dongguan, CN); Dmitrij Semilovsky (Munich, DE); Bruno Biscontini (Munich, DE); Alejandro Murillo Barrera (Munich, DE)
Assignee: Huawei Technologies Co., Ltd.
H01Q5/378H01Q1/48H01Q9/16H01Q13/106H01Q19/10
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Quick Facts
Patent No.
US 12,731,897
App. No.
18/926,136
Granted
Sep 8, 2026
Kind
B2
Abstract

A dual polarity antenna including: a first radiator for radiating or for receiving a first radio-frequency (RF) wave having a first linear polarisation, and a second radiator for radiating or for receiving a second RF wave having a second linear polarisation orthogonal to the first linear polarisation. The first radiator includes one or more electrically conductive parts and the second radiator is provided by one or more slots in the one or more electrically conductive parts. An antenna column array may be densified and the size of the array columns may be reduced by locating and/or embedding the second radiator in the first radiator.

Claims (31)

1 . A dual polarity antenna, the dual polarity antenna comprising:

a first radiator for radiating or for receiving a first radio-frequency (RF) wave having a first linear polarisation;

a second radiator for radiating or for receiving a second RF wave having a second linear polarisation orthogonal to the first linear polarisation;

a first feeding network for exciting the first radiator with a first RF signal; and

a second feeding network for exciting the second radiator with a second RF signal,

wherein the first radiator comprises one or more electrically conductive parts and the second radiator is provided by one or more slots in the one or more electrically conductive parts, and

wherein the second feeding network is configured to excite each respective slot of the one or more slots at a central region of the respective slot.

2 . The dual polarity antenna of claim 1 , wherein the first RF wave and the second RF wave have a same frequency.

3 . The dual polarity antenna of claim 1 , wherein each of the one or more slots has a closed end and an open end.

4 . The dual polarity antenna of claim 1 , wherein the first radiator is a dipole antenna, the dipole antenna comprising a first dipole arm and a second dipole arm.

5 . The dual polarity antenna of claim 4 , wherein the one or more slots comprise a first slot formed in the first dipole arm and a second slot formed in the second dipole arm.

6 . The dual polarity antenna of claim 5 , wherein the first slot and the second slot extend along a common axis of the first dipole arm and the second dipole arm.

7 . The dual polarity antenna of claim 5 , wherein the first slot has an open end at an outer end of the first dipole arm, and the second slot has an open end at an outer end of the second dipole arm.

8 . The dual polarity antenna of claim 5 , wherein the first slot has a closed end near an inner end of the first dipole arm, and the second slot has a closed end near an inner end of the second dipole arm.

9 . The dual polarity antenna of claim 1 , wherein the one or more slots are two or more slots, and wherein the second feeding network is further configured to excite the two or more slots in phase.

10 . The dual polarity antenna of claim 1 , wherein the first radiator comprises two dipole arms and a first feeding point located between the two dipole arms, the first feeding network being coupled to the first radiator at the first feeding point.

11 . The dual polarity antenna of claim 1 , further comprising a reflector, the first radiator and the second radiator being arranged on one side of the reflector.

12 . The dual polarity antenna of claim 1 , wherein the one or more electrically conductive parts of the first radiator are arranged in a substantially planar structure.

13 . The dual polarity antenna of claim 12 , further comprising a reflector that is substantially parallel to the substantially planar structure.

14 . The dual polarity antenna of claim 12 , wherein the first radiator further comprises one or more electrically conductive flaps extending in a direction substantially normal to the substantially planar structure.

15 . The dual polarity antenna of claim 14 , wherein one or more electrically conductive flaps extend from an edge of the substantially planar structure.

16 . The dual polarity antenna of claim 12 , wherein the first radiator further comprises two dipole arms, a first feeding point located between the two dipole arms, one or more vertical flaps, and one or more horizontal flaps.

17 . The dual polarity antenna of claim 16 , wherein the one or more vertical flaps are located on two adjacent edges to the first feeding point, and wherein the one or more horizontal flaps are located side by side on an opposite edge to the first feeding point.

18 . A printed circuit board, the printed circuit board comprising:

a dual polarity antenna, the dual polarity antenna comprising:

a first radiator for radiating or for receiving a first radio-frequency (RF) wave having a first linear polarisation;

a second radiator for radiating or for receiving a second RF wave having a second linear polarisation orthogonal to the first linear polarisation;

a first feeding network for exciting the first radiator with a first RF signal; and

a second feeding network for exciting the second radiator with a second RF signal,

wherein the first radiator comprises one or more electrically conductive parts and the second radiator is provided by one or more slots in the one or more electrically conductive parts, and

wherein the second feeding network is configured to excite each respective slot of the one or more slots at a central region of the respective slot.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2026
From: SEGADOR ALVAREZ, JUAN; GONG, ZHI; SEMILOVSKY, DMITRIJ; BISCONTINI, BRUNO
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 075501/0016 →
Continuity (2)
Continuation PCTEP2022061052 · Apr 26, 2022
Related Publication 20250055189A1 · Feb 13, 2025
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