IP Library Granted Patent US 10,998,633
Granted Patent B2
US 10,998,633 · App. 16/499,460 · Granted May 4, 2021

Compact wideband high gain circularly polarized antenna

Inventors: Nasimuddin (Singapore, SG); Xianming Qing (Singapore, SG)
Assignee: Agency for Science, Technology and Research
H01Q9/0428H01Q9/045H01Q21/065
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Quick Facts
Patent No.
US 10,998,633
App. No.
16/499,460
Granted
May 4, 2021
Kind
B2
Abstract

A compact wideband single feed circularly polarized antenna is provided. The circularly polarized antenna may include a ground plane. The circularly polarized antenna may include a radiating patch with an embedded ring-shaped slot. The circularly polarized antenna may include a via that shorts a round section of the radiating patch surrounded by the ring-shaped slot to the ground plane. The circularly polarized antenna may include a coaxial feed. The inner conductive material of the coaxial feed may be connected to the radiating patch and the outer conductive material of the coaxial feed may touch the ground plane. The circularly polarized antenna may include a slit-slotted parasitic square patch.

Claims (48)

1. A circularly polarized antenna, comprising:

a ground plane;

a radiating patch with an embedded ring-shaped slot;

a via that shorts a round section of the radiating patch surrounded by the ring-shaped slot to the ground plane;

a coaxial feed, wherein an inner conductive material of the coaxial feed is connected to the radiating patch and an outer conductive material of the coaxial feed touches the ground plane; and

a slit-slotted parasitic square patch.

2. The circularly polarized antenna of claim 1 , further comprising:

a first substrate; and

a second substrate substantially parallel to the first substrate.

3. The circularly polarized antenna of claim 2 , wherein the first substrate and the second substrate have the same relative permittivity and dielectric loss.

4. The circularly polarized antenna of claim 2 , wherein the radiating patch is positioned on a first surface of the first substrate, wherein the ground plane is positioned on a second surface of the first substrate, wherein the slit-slotted parasitic square patch is positioned on a first surface of the second substrate.

5. The circularly polarized antenna of claim 1 , wherein the ring-shaped slot is positioned at a corner of the radiating patch.

6. The circularly polarized antenna of claim 1 , wherein the coaxial feed connects to the radiating patch on a microstrip stub extended from a central section of an edge of the radiating patch.

7. The circularly polarized antenna of claim 1 , wherein the slit-slotted parasitic square patch comprises:

a plurality of slots formed at or edged from each side of the slit-slotted parasitic square patch; and

a round-shaped slot that substantially overlays the ring-shaped slot on the radiating patch.

8. An antenna array, comprising:

a plurality of circularly polarized antennas, each of the plurality of circularly polarized antennas comprises:

a ground plane;

a radiating patch with an embedded ring-shaped slot;

a via that shorts a round section of the radiating patch surrounded by the ring-shaped slot to the ground plane;

a coaxial feed, wherein an inner conductive material of the coaxial feed is connected to the radiating patch and an outer conductive material of the coaxial feed touches the ground plane; and

a slit-slotted parasitic square patch; and

a feeding network that connects the coaxial feeds of the plurality of circularly polarized antennas.

9. The antenna array of claim 8 , wherein each of the plurality of circularly polarized antennas further comprises:

a first substrate; and

a second substrate substantially parallel to the first substrate.

10. The antenna array of claim 9 , wherein the first substrate and the second substrate have the same relative permittivity and dielectric loss.

11. The antenna array of claim 9 , wherein the radiating patch is positioned on a first surface of the first substrate, wherein the ground plane is positioned on a second surface of the first substrate, wherein the slit-slotted parasitic square patch is positioned on a first surface of the second substrate.

12. The antenna array of claim 8 , wherein the ring-shaped slot is positioned at a corner of the radiating patch.

13. The antenna array of claim 8 , wherein the coaxial feed connects to the radiating patch on a microstrip stub extended from a central section of an edge of the radiating patch.

14. The antenna array of claim 8 , wherein the slit-slotted parasitic square patch comprises:

a plurality of slots formed at or edged from each side of the slit-slotted parasitic square patch; and

a round-shaped slot that substantially overlays the ring-shaped slot on the radiating patch.

15. The antenna array of claim 8 , wherein the plurality of circularly polarized antennas are arranged as a two dimensional array of antennas.

16. A method of manufacturing a circularly polarized antenna, comprising:

placing a ground plane;

placing a radiating patch;

etching a ring-shaped slot on the radiating patch;

placing a via that shorts a round section of the radiating patch surrounded by the ring-shaped slot to the ground plane;

placing a coaxial feed, wherein an inner conductive material of the coaxial feed is connected to the radiating patch and an outer conductive material of the coaxial feed touches the ground plane; and

placing a slit-slotted parasitic square patch.

17. The method of claim 16 , further comprising:

placing a first substrate; and

placing a second substrate substantially parallel to the first substrate.

18. The method of claim 17 , wherein the first substrate and the second substrate have the same relative permittivity and dielectric loss.

19. The method of claim 17 , wherein the radiating patch is positioned on a first surface of the first substrate, wherein the ground plane is positioned on a second surface of the first substrate, wherein the slit-slotted parasitic square patch is positioned on a first surface of the second substrate.

20. The method of claim 16 , wherein the ring-shaped slot is positioned at a corner of the radiating patch.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2020
From: NASIMUDDIN, -; QING, XIANMING
To: AGENCY FOR SCIENCE, TECHNOLOGY AND RESEARCH
Reel/Frame 051493/0676 →
Priority Claims (1)
SG 10201702690U · Mar 31, 2017 · national
Continuity (1)
Related Publication 20200076082A1 · Mar 5, 2020
Cited By (2)
US 12,244,080 US 12,531,345