IP Library Granted Patent US 9,871,296
Granted Patent B2
US 9,871,296 · App. 13/926,990 · Granted Jan 16, 2018

Mixed structure dual-band dual-beam three-column phased array antenna

Inventor: Senglee Foo (Ottawa, CA)
Assignee: Huawei Technologies Co., Ltd.
H01Q9/0414H01Q3/34H01Q5/40H01Q15/14H01Q19/10H01Q21/30
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Quick Facts
Patent No.
US 9,871,296
App. No.
13/926,990
Granted
Jan 16, 2018
Kind
B2
Abstract

Dual-band antenna elements can be used to construct a dual-beam three-column antenna array. The dual-band antenna elements include both a high-band and a low-band radiating element, which allows the dual-band antenna elements to radiate signals in two frequency bands. The dual-band antenna elements also include a resonating box to isolate the co-located radiating elements from one another, as well as to mitigate inter-band distortion. The dual-band antenna elements may be interleaved with single-band elements to achieve a dual-beam three-column antenna array. Individual elements in the dual-beam three-column antenna array may be separated by non-uniform offsets/spacings to achieve improved performance.

Claims (42)

1. A dual-band radiating antenna comprising:

an antenna reflector;

a first dual-band radiating element comprising:

a low-band radiating portion comprising a low-band radiating patch mounted to the antenna reflector; and

a high-band radiating portion positioned above the low-band radiating portion, the high-band radiating portion being fed through a first set of coupling slots, and the high-band radiating portion comprising:

a high-band radiating patch; and

a high-band back cavity positioned below the high-band radiating patch for housing components;

a second dual-band radiating element horizontally aligned with the first dual-band radiating element;

a first high-band radiating element horizontally aligned with and located between the first and the second dual-band radiating elements;

a second high-band radiating element, a third dual-band radiating element, and a fourth dual-band radiating element horizontally aligned with each other, wherein the third and the fourth dual-band radiating elements are out of vertical alignment with each of the first and the second dual-band radiating elements; and

a third high-band radiating element, a fourth high-band radiating element, and a fifth dual-band radiating element horizontally aligned with each other, wherein the third and the fourth high-band radiating elements are out of vertical alignment with each of the first and the second dual-band radiating elements, and are separated by a smaller spacing than the first and the second dual-band radiating elements, and wherein the fifth dual-band radiating element is located between the third and the fourth high-band radiating elements, and between the first and the second high-band radiating elements.

2. The dual-band radiating antenna of claim 1 , wherein the low-band radiating portion further comprises a low-band back cavity affixed to the antenna reflector, the low-band back cavity housing components for driving the low-band radiating patch, wherein the antenna reflector is positioned in-between the low-band radiating patch and the low-band back cavity.

3. The dual-band radiating antenna of claim 1 , wherein the first set of coupling slots produces two orthogonal linearly-polarized fields.

4. The dual-band radiating antenna of claim 3 , wherein the first set of coupling slots comprises two coupling slots positioned perpendicular to each other.

5. The dual-band radiating antenna of claim 4 , wherein the first set of coupling slots is fed by four microstrip feed lines.

6. The dual-band radiating antenna of claim 3 , wherein the first set of coupling slots is fed utilizing a microstrip power divider.

7. The dual-band radiating antenna of claim 1 , wherein the first set of coupling slots is positioned on the top surface of the high-band back cavity.

8. The dual-band radiating antenna of claim 1 , further comprising a resonating box positioned in-between the high-band radiating patch and the high-band back cavity, the resonating box configured to resonate with the high-band radiating patch and to reflect signals emitted from the high-band radiating patch and the first set of coupling slots.

9. The dual-band radiating antenna of claim 8 , further comprising:

a mid-plane affixed to the resonating box, wherein the mid-plane is positioned in-between the high-band back cavity and the resonating box.

10. The dual-band radiating antenna of claim 1 , wherein the high-band radiating patch is configured to radiate at a higher frequency than the low-band radiating patch.

11. The dual-band radiating antenna of claim 1 , further comprising:

a central feed extending through the low-band radiating portion, the central feed configured to provide feeding of radio frequency signals for the first set of coupling slots.

12. The dual-band radiating antenna of claim 11 , further comprising:

a low-band feed configured to provide feeding of radio frequency signals to the low-band radiating portion, wherein the low-band feed is separate from the central feed.

13. The dual-band radiating antenna of claim 12 , wherein the low-band feed provides feeding of radio frequency signals to the low-band radiating portion through a second set of coupling slots in the low-band radiating portion.

14. A method, comprising:

mounting a first dual-band radiating element to an antenna reflector, wherein the first dual-band radiating element comprises:

a low-band radiating portion comprising a low-band radiating patch mounted to the antenna reflector; and

a high-band radiating portion positioned above the low-band radiating portion, the high-band radiating portion being fed through a first set of coupling slots, and the high-band radiating portion comprising:

a high-band radiating patch; and

a high-band back cavity positioned below the high-band radiating patch for housing components;

mounting a second dual-band radiating element to the antenna reflector, the second dual-band radiating element being horizontally aligned with the first dual-band radiating element;

mounting a first high-band radiating element to the antenna reflector, the first high-band radiating element being horizontally aligned with and being located between the first and the second dual-band radiating elements;

mounting a second high-band radiating element, a third dual-band radiating element, and a fourth dual-band radiating element to the antenna reflector, the second high-band radiating element, the third dual-band radiating element, and the fourth dual-band radiating element being horizontally aligned with each other, wherein the third and the fourth dual-band radiating elements are out of vertical alignment with each of the first and the second dual-band radiating elements; and

mounting a third high-band radiating element, a fourth high-band radiating element, and a fifth dual-band radiating element to the antenna reflector, the third high-band radiating element, the fourth high-band radiating element, and the fifth dual-band radiating element being horizontally aligned with each other, wherein the third and the fourth high-band radiating elements are out of vertical alignment with each of the first and the second dual-band radiating elements, and are separated by a smaller spacing than the first and the second dual-band radiating elements, and wherein the fifth dual-band radiating element is located between the third and the fourth high-band radiating elements, and between the first and the second high-band radiating elements.

15. The method of claim 14 , wherein the low-band radiating portion further comprises a low-band back cavity affixed to the antenna reflector, the low-band back cavity housing components for driving the low-band radiating patch, wherein the antenna reflector is positioned in-between the low-band radiating patch and the low-band back cavity.

16. The method of claim 14 , wherein the first set of coupling slots produces two orthogonal linearly-polarized fields.

17. The method of claim 14 , wherein the first set of coupling slots is positioned on the top surface of the high-band back cavity.

18. The method of claim 14 , further comprising positioning a resonating box in-between the high-band radiating patch and the high-band back cavity, the resonating box configured to resonate with the high-band radiating patch and to reflect signals emitted from the high-band radiating patch and the first set of coupling slots.

19. The method of claim 14 , further comprising providing a central feed extending through the low-band radiating portion, the central feed configured to provide feeding of radio frequency signals for the first set of coupling slots.

20. The method of claim 19 , further comprising providing a low-band feed configured to provide feeding of radio frequency signals to the low-band radiating portion, wherein the low-band feed is separate from the central feed.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 5, 2015
From: FUTUREWEI TECHNOLOGIES, INC.
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 036754/0760 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2013
From: FOO, SENGLEE
To: FUTUREWEI TECHNOLOGIES, INC.
Reel/Frame 030684/0964 →
Continuity (1)
Related Publication 20140375502A1 · Dec 25, 2014