IP Library Granted Patent US 10,804,606
Granted Patent B2
US 10,804,606 · App. 15/639,808 · Granted Oct 13, 2020

Broadband low-beam-coupling dual-beam phased array

Inventor: Senglee Foo (Ottawa, CA)
Assignee: Huawei Technologies Co., Ltd.
H01Q5/22H01Q1/246H01Q3/28H01Q3/30H01Q5/40H01Q9/045H01Q9/0414H01Q9/0457H01Q19/10H01Q21/065H01Q21/24
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Quick Facts
Patent No.
US 10,804,606
App. No.
15/639,808
Granted
Oct 13, 2020
Kind
B2
Abstract

Broadband slot-coupled stacked patch antenna elements are capable of continuous broadband operation between 1.71 GHz and 2.69 GHz. The broadband slot-coupled stacked patch antenna element includes a mid-band radiating patch, a high-band radiating patch, and a low-band resonator with coupling slots capable of resonating at low, mid, and high band frequencies. Additionally, a low-profile probe-fed patch element is provided for pattern enhancement of antenna arrays at high-band frequencies. This low-profile patch element features fan-shaped probes that have three degrees of tune-ability, namely a length, a width, and a spreading angle. Further aspects include 3-column and 4-column offset arrays of the broadband patch radiators and an interleaved array of the low-profile high-band patch radiators and the broadband radiating elements. A new type of azimuth beam forming network (ABFN) is also introduced for the beam forming of the 3-column and 4-column dual-beam arrays.

Claims (38)

1. A probe-fed patch radiating element comprising:

a first printed circuit board (PCB), wherein a plurality of microstrip feed-lines are printed on the first PCB;

a second PCB, wherein a plurality of fan-shaped probes are printed on the second PCB;

an antenna reflector positioned in-between the first PCB and the second PCB;

a plurality of feed wires extending through the antenna reflector, the plurality of feed wires conductively coupling the microstrip feed-lines to the fan-shaped probes;

a radiating patch adapted to radiate during emission of a wireless signal; and

one or more non-conductive spacers positioned in-between the radiating patch and the second PCB such that the radiating patch is electromagnetically coupled to, but not in direct physical contact with, the fan-shaped probes, the fan-shaped probes adapted to electromagnetically feed a radio frequency (RF) signal to the radiating patch that causes the radiating patch to radiate during emission of the wireless signal.

2. The probe-fed patch radiating element of claim 1 , wherein the fan-shaped probes have a fixed length.

3. The probe-fed patch radiating element of claim 2 , wherein a width of each of the fan-shaped probes increases across the fixed length.

4. The probe-fed patch radiating element of claim 1 , wherein each of the fan-shaped probes have a substantially identical shape.

5. The probe-fed patch radiating element of claim 1 , wherein each of the fan-shaped probes have substantially identical dimensions.

6. The probe-fed patch radiating element of claim 1 , wherein the fan-shaped probes extend inwardly towards a center of the second PCB.

7. The probe-fed patch radiating element of claim 6 , and wherein a width of each of the fan-shaped probes gradually increases as the fan-shaped probe extends inwardly towards the center of the second PCB.

8. A probe-fed patch radiating element comprising:

a first printed circuit board (PCB), wherein a plurality of microstrip feed-lines are printed on the first PCB;

a second PCB, wherein a plurality of fan-shaped probes are printed on the second PCB;

an antenna reflector positioned in-between the first PCB and the second PCB;

a plurality of feed wires extending through the antenna reflector, the plurality of feed wires conductively coupling the microstrip feed-lines to the fan-shaped probes; and

a radiating patch adapted to radiate during emission of a wireless signal, the fan-shaped probes adapted to electromagnetically feed a radio frequency (RF) signal to the radiating patch that causes the radiating patch to radiate during emission of the wireless signal.

9. The probe-fed patch radiating element of claim 8 , wherein the fan-shaped probes have a fixed length.

10. The probe-fed patch radiating element of claim 9 , wherein a width of each of the fan-shaped probes increases across the fixed length.

11. The probe-fed patch radiating element of claim 8 , wherein each of the fan-shaped probes have a substantially identical shape.

12. The probe-fed patch radiating element of claim 8 , wherein each of the fan-shaped probes have substantially identical dimensions.

13. The probe-fed patch radiating element of claim 8 , wherein the fan-shaped probes extend inwardly towards a center of the second PCB.

14. The probe-fed patch radiating element of claim 13 , and wherein a width of each of the fan-shaped probes gradually increases as the fan-shaped probe extends inwardly towards the center of the second PCB.

15. A probe-fed patch radiating element comprising:

a first printed circuit board (PCB), wherein a plurality of microstrip feed-lines are printed on the first PCB;

a second PCB, wherein a plurality of fan-shaped probes are printed on the second PCB;

an antenna reflector positioned in-between the first PCB and the second PCB;

a plurality of feed wires extending through the antenna reflector, the plurality of feed wires conductively coupling the microstrip feed-lines to the fan-shaped probes;

a radiating patch adapted to radiate during emission of a wireless signal; and

one or more non-conductive spacers positioned in-between the radiating patch and the second PCB such that the radiating patch is electromagnetically coupled to, but not in direct physical contact with, the fan-shaped probes.

16. The probe-fed patch radiating element of claim 15 , wherein the fan-shaped probes have a fixed length.

17. The probe-fed patch radiating element of claim 16 , wherein a width of each of the fan-shaped probes increases across the fixed length.

18. The probe-fed patch radiating element of claim 15 , wherein each of the fan-shaped probes have a substantially identical shape.

19. The probe-fed patch radiating element of claim 15 , wherein each of the fan-shaped probes have substantially identical dimensions.

20. The probe-fed patch radiating element of claim 15 , wherein the fan-shaped probes extend inwardly towards a center of the second PCB.

21. The probe-fed patch radiating element of claim 20 , and wherein a width of each of the fan-shaped probes gradually increases as the fan-shaped probe extends inwardly towards the center of the second PCB.

Continuity (3)
Division 14041754 · Sep 30, 2013
Provisional Application 61863203 · Aug 7, 2013
Related Publication 20170324163A1 · Nov 9, 2017
Cited By (1)
US 12,519,248