IP Library Granted Patent US 11,967,776
Granted Patent B2
US 11,967,776 · App. 18/496,626 · Granted Apr 23, 2024

Lens antenna system

Inventors: Clinton P. Scarborough (Darlington, MD); Jeremiah P. Turpin (Linthicum, MD); Daniel F. DiFonzo (Rockville, MD); John Finney (London, GB)
Assignee: All.Space Networks Limited
H01Q3/46H01Q1/288H01Q3/14H01Q3/245H01Q3/30H01Q19/062H01Q21/0025H01Q21/061H01Q21/22H01Q25/007H01Q1/241
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Quick Facts
Patent No.
US 11,967,776
App. No.
18/496,626
Granted
Apr 23, 2024
Kind
B2
Abstract

An antenna system that includes a plurality of lens sets. Each lens set includes a lens and at least one feed element. At least one feed element is aligned with the lens and configured to direct a signal through the lens at a desired direction.

Claims (27)

1. A satellite communication terminal, comprising:

a substantially flat support;

a plurality of feed clusters disposed in a two-dimensional arrangement on the substantially flat support; and

a plurality of lenses disposed on the substantially flat support over respective feed clusters of the plurality of feed clusters,

wherein each lens of the plurality of lenses has a phase center, and wherein the phase centers of the plurality of lenses form an aperiodic arrangement,

wherein the substantially flat support is a substantially flat printed circuit board, and wherein each feed cluster of the plurality of feed clusters includes a plurality of feeds arranged in a two-dimensional layout on the substantially flat printed circuit board, and

wherein the two-dimensional layout of the plurality of feeds occupies between 25% and 50% of an area behind the respective lens.

2. The satellite communication terminal of claim 1 , wherein the aperiodic arrangement is a random arrangement such that the phase centers of the plurality of lenses form the random arrangement.

3. The satellite communication terminal of claim 1 , wherein the plurality of feeds of the two-dimensional layout are sparsely spaced.

4. The satellite communication terminal of claim 3 , wherein the lenses of the plurality of lenses are electrically large.

5. The satellite communication terminal of claim 4 , wherein the lenses have a substantially flat surface proximate the respective feed cluster and a curved surface distal the respective feed cluster.

6. The satellite communication terminal of claim 1 , wherein the lenses of the plurality of lenses are electrically large and the plurality of feed clusters include feed elements that are sparsely spaced.

7. The satellite communication terminal of claim 1 , further comprising a housing enclosing the substantially flat support, the plurality of feed clusters, and the plurality of lenses.

8. The satellite communication terminal of claim 7 , wherein the housing has a substantially circular contour and comprises a substantially planar or slightly curved top surface adjacent the plurality of lenses.

9. The satellite communication terminal of claim 8 , wherein the two-dimensional arrangement is a non-square arrangement.

10. The satellite communication terminal of claim 9 , further comprising control circuitry coupled to the plurality of feed clusters and configured to control individual feeds within the plurality of feed clusters.

11. The satellite communication terminal of claim 10 , wherein the control circuitry is disposed on the substantially flat support and configured to control the plurality of feed clusters to generate at least two distinct beams substantially simultaneously.

12. A satellite communication terminal, comprising:

a substantially flat support;

at least twelve feed clusters disposed in a two-dimensional arrangement on the substantially flat support; and

a respective lens disposed over each of the at least twelve feed clusters such that the at least twelve feed clusters are between the substantially flat support and the respective lenses,

wherein each respective lens has a phase center, and wherein the phase centers of the respective lenses form an aperiodic arrangement, wherein at least one of the at least twelve feed clusters comprises a feed layout occupying between 25% and 50% of an area behind the respective lens.

13. The satellite communication terminal of claim 12 , wherein the respective lenses are electrically large and wherein feeds of respective feed clusters of the at least twelve feed clusters are sparsely spaced.

14. The satellite communication terminal of claim 13 , wherein the feeds are arranged in a hexagonal or rectilinear grid.

15. The satellite communication terminal of claim 14 , wherein the respective lenses form at least part of a circular pattern.

16. The satellite communication terminal of claim 12 , further comprising control circuitry coupled to the at least twelve feed clusters and configured to control individual feeds within the at least twelve feed clusters.

17. The satellite communication terminal of claim 12 , wherein feeds of each of the at least twelve feed clusters are individually addressable.

Assignments (3)
SECURITY INTEREST Recorded Oct 21, 2025
From: ALL.SPACE NETWORKS LIMITED
To: ACQUIOM AGENCY SERVICES LLC
Reel/Frame 072615/0927 →
CHANGE OF NAME Recorded Nov 20, 2023
From: ISOTROPIC SYSTEMS LTD
To: ALL.SPACE NETWORKS LIMITED
Reel/Frame 065630/0543 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2023
From: SCARBOROUGH, CLINTON P.; TURPIN, JEREMIAH P.; DIFONZO, DANIEL F.; FINNEY, JOHN
To: ISOTROPIC SYSTEMS LTD
Reel/Frame 065580/0127 →
Continuity (5)
Continuation 16726342 · Dec 24, 2019
Continuation 16173985 · Oct 29, 2018
Continuation 15722561 · Oct 2, 2017
Provisional Application 62472991 · Mar 17, 2017
Related Publication 20240063541A1 · Feb 22, 2024
Cited By (1)
US 12,706,390