IP Library › Granted Patent US 12,744,306
Granted Patent B2
US 12,744,306 · App. 18/912,674 · Granted Sep 22, 2026

Base station antenna

Inventors: Cheng Xue (Suzhou, CN); Fangwen Wan (Suzhou, CN); Changfu Chen (Suzhou, CN); Pengfei Guo (Suzhou, CN); Bin Sun (Suzhou, CN); Jian Zhang (Suzhou, CN)
Assignee: Outdoor Wireless Networks LLC
H01Q1/246H01Q19/108H01Q21/22H01Q21/26
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Quick Facts
Patent No.
US 12,744,306
App. No.
18/912,674
Filed
Oct 11, 2024
Granted
Sep 22, 2026
Kind
B2
Examiner
LEE, SEUNG H
Art Unit
2876
USPC
343/798
Abstract

A base station antenna comprises first and second RF ports, first and second columns of radiating elements that each extend in a longitudinal direction, and a power coupling circuit. A first radiating element in the second column is coupled to the first RF port via the power coupling circuit, and the phase of the RF signal fed to the first radiating element in the second column is not advanced as compared to the phase of the RF signal fed to the first radiating element in the first column. A second radiating element in the first column is coupled to the second RF port via the power coupling circuit, and the phase of the RF signal fed to the second radiating element in the first column is not advanced as compared to the phase of the RF signal fed to the second radiating element in the second column.

Claims (74)

1 . A base station antenna, comprising:

a first RF port,

a second RF port,

a first column of radiating elements that extends in a longitudinal direction, the first column of radiating elements coupled to the first RF port;

a second column of radiating elements that extends in the longitudinal direction, the second column of radiating elements coupled to the second RF port; and

a power coupling circuit,

wherein a first radiating element in the second column of radiating elements is coupled to the first RF port via the power coupling circuit, and the phase of the RF signal fed to the first radiating element in the second column of radiating elements is not advanced as compared to the phase of the RF signal fed to the first radiating element in the first column of radiating elements; and

wherein a second radiating element in the first column of radiating elements is coupled to the second RF port via the power coupling circuit, and the phase of the RF signal fed to the second radiating element in the first column of radiating elements is not advanced as compared to the phase of the RF signal fed to the second radiating element in the second column of radiating elements.

2 . The base station antenna according to claim 1 , wherein the RF signal output by the power coupling circuit that is fed to the first radiating element in the second column of radiating elements is phase-delayed by 90 degrees compared to the RF signal fed to the first radiating element in the first column of radiating elements, so that the phase of the RF signal fed to the first radiating element in the second column of radiating elements is not advanced as compared to the phase of the RF signal fed to the first radiating element in the first column of radiating elements.

3 . The base station antenna according to claim 1 , wherein the RF signal output by the power coupling circuit that is fed to the second radiating element in the first column of radiating elements is phase-delayed by 90 degrees compared to the RF signal fed to the second radiating element in the second column of radiating elements, so that the phase of the RF signal fed to the second radiating element in the first column of radiating elements is not advanced as compared to the phase of the RF signal fed to the second radiating element in the second column of radiating elements.

4 . The base station antenna according to claim 1 , wherein the power coupling circuit comprises:

a first port coupled to the first RF port to receive a first RF signal;

a second port operable to output a first component of the first RF signal, and is coupled to a first radiating element in the first column of radiating elements to feed the first component of the first RF signal thereto; and

a third port operable to output a second component of the first RF signal, and is coupled to the first radiating element in the second column of radiating elements to feed the second component of the first RF signal thereto;

wherein the power coupling circuit is configured such that the phase of the second component of the first RF signal at the third port is not advanced compared to the phase of the first component of the first RF signal at the second port.

5 . The base station antenna according to claim 4 , wherein the power coupling circuit further comprises:

a fourth port coupled to the second RF port to receive a second RF signal;

the third port further operable to output a first component of a second RF signal, and is further coupled to the second radiating element in the first column of radiating elements to feed the first component of the second RF signal thereto;

the second port further operable to output a second component of the second RF signal, and is further coupled to the second radiating element in the first column of radiating elements to feed the second component of the second RF signal thereto;

wherein the power coupling circuit is further configured such that the phase of the second component of the second RF signal at the second port is not advanced compared to the phase of the first component of the second RF signal at the third port.

6 . The base station antenna according to claim 5 , wherein:

the amplitude of the first component of the first RF signal is not less than the amplitude of the second component of the first RF signal, and

the amplitude of the first component of the second RF signal is not less than the amplitude of the second component of the second RF signal.

7 . The base station antenna according to claim 5 , wherein the power coupling circuit further comprises:

a first delay circuit configured such that the phase advance of the signal passing therethrough is not less than 90 degrees;

a second delay circuit configured such that the phase delay of the signal passing therethrough equals the phase advance brought about by the first delay circuit; and

a directional coupler, wherein

the input port of the directional coupler is used as the first port;

the output port of the directional coupler is used the second port;

the coupled port of the directional coupler is coupled to the third port via the first delay circuit; and

the isolated port of the directional coupler is coupled to the fourth port via the second delay circuit.

8 . The base station antenna according to claim 7 , wherein the first delay circuit is configured to introduce a phase advance of 180 degrees to the signal passing therethrough, and the second delay circuit is configured to introduce a phase delay of 180 degrees to the signal passing therethrough.

9 . The base station antenna according to claim 7 , wherein the first delay circuit or the second delay circuit includes two cross-connected transmission lines.

10 . The base station antenna according to claim 9 , wherein the two cross-connected transmission lines includes feed stalks with a crossover connection.

11 . The base station antenna according to claim 5 , wherein the power coupling circuit further comprises:

a first delay circuit configured such that the phase delay of the signal passing therethrough is not less than 90 degrees;

a second delay circuit configured such that the phase advance of the signal passing therethrough equals the phase advance brought about by the first delay circuit; and

a directional coupler, wherein

the input port of the directional coupler is used as the first port;

the output port of the directional coupler is used the second port;

the coupled port of the directional coupler is coupled to the third port via the first delay circuit; and

the isolated port of the directional coupler is coupled to the fourth port via the second delay circuit.

12 . The base station antenna according to claim 11 , wherein the first delay circuit is configured to introduce a phase delay of 180 degrees to the signal passing therethrough, and the second delay circuit is configured to introduce a phase advance of 180 degrees to the signal passing therethrough.

13 . The base station antenna according to claim 5 , wherein the power coupling circuit further comprises:

a first delay circuit configured such that the phase advance of the signal passing therethrough is 180 degrees;

a second delay circuit configured such that the phase advance of the signal passing therethrough is 180 degrees; and

a directional coupler, wherein

the input port of the directional coupler is used as the first port;

the output port of the directional coupler is used the second port;

the coupled port of the directional coupler is coupled to the third port via the first delay circuit; and

the isolated port of the directional coupler is coupled to the fourth port via the second delay circuit.

14 . The base station antenna according to claim 5 , wherein the power coupling circuit further comprises:

a first delay circuit configured such that the phase delay of the signal passing therethrough is 180 degrees;

a second delay circuit configured such that the phase delay of the signal passing therethrough is 180 degrees; and

a directional coupler, wherein

the input port of the directional coupler is used as the first port;

the output port of the directional coupler is used the second port;

the coupled port of the directional coupler is coupled to the third port via the first delay circuit; and

the isolated port of the directional coupler is coupled to the fourth port via the second delay circuit.

15 . The base station antenna according to claim 5 , wherein the power coupling circuit further comprises a directional coupler, wherein:

the input port of the directional coupler is used as the first port;

the coupled port of the directional coupler is used as the second port;

the output port of the directional coupler is used as the third port; and

the isolated port of the directional coupler is used as the fourth port.

16 . The base station antenna according to claim 15 , wherein the directional coupler comprises a 3 dB hybrid coupler.

17 . A base station antenna, comprising:

a reflecting plane extending in a longitudinal direction; and

an array positioned in front of the reflecting plane, the array comprising:

a column formed by a plurality of first radiating elements arranged in the longitudinal direction, where the column is a first distance from a first side edge of the reflecting plane and a second distance from a second side edge of the reflecting plane, where the first distance is not equal to the second distance so that a first radiation beam generated by the column has a first squint angle in the azimuth plane; and

a second radiating element positioned on one side of the column, where the second radiating element is configured such that there is a phase difference between the RF signal fed thereto and the RF signal fed to a corresponding first radiating element in the column, so that a second radiation beam generated by the array has a second squint angle in the azimuth plane that is less than the first squint angle.

18 . The base station antenna according to claim 17 , wherein the first distance is less than the second distance such that the radiation beam generated by the column squints towards a first side in the azimuth plane, and the second radiating element is positioned on a second side of the column and is configured such that the RF signal fed thereto is phase-delayed compared to the RF signal fed to the corresponding first radiating element in the column.

19 . The base station antenna according to claim 17 , wherein the first distance is less than the second distance such that the radiation beam generated by the column squints towards a first side in the azimuth plane, and the second radiating element is positioned on a first side of the column and is configured such that the RF signal fed thereto is phase-advanced compared to the RF signal fed to the corresponding first radiating element in the column.

20 . The base station antenna according to claim 17 , further comprising:

a power coupling circuit configured to couple the second radiating element to the corresponding first radiating element in the column, thereby introducing a phase difference between the RF signal fed to the second radiating element and the RF signal fed to the corresponding first radiating element in the column.

Assignments (2)
SECURITY INTEREST Recorded Dec 17, 2024
From: ARRIS ENTERPRISES LLC; COMMSCOPE TECHNOLOGIES LLC; COMMSCOPE INC., OF NORTH CAROLINA; OUTDOOR WIRELESS NETWORKS LLC; RUCKUS IP HOLDINGS LLC
To: APOLLO ADMINISTRATIVE AGENCY LLC
Reel/Frame 069889/0114 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 11, 2024
From: XUE, CHENG; WAN, FANGWEN; CHEN, CHANGFU; GUO, PENGFEI; SUN, BIN; ZHANG, JIAN
To: OUTDOOR WIRELESS NETWORKS LLC
Reel/Frame 068871/0266 →
Priority Claims (1)
CN 202311418046.0 · Oct 30, 2023 · national
Continuity (1)
Related Publication 20250141092A1 · May 1, 2025
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