IP Library › Granted Patent US 11,688,948
Granted Patent B2
US 11,688,948 · App. 17/225,458 · Granted Jun 27, 2023

Low-band UWB conformal antenna

Inventors: Alexander B. Kozyrev (Iowa City, IA); James B. West (Cedar Rapids, IA); Jiwon L Moran (Marion, IA)
Assignee: Rockwell Collins, Inc.
H01Q11/10H01Q3/34H04B1/18
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,688,948
App. No.
17/225,458
Granted
Jun 27, 2023
Kind
B2
Abstract

A log periodic antenna system with conformal radiating elements includes a feed layer with phase shifters and filters associated with each radiating element. The filters may be low-pass or band-pass filters. The log periodic conformal radiating elements produce superior gain and bandwidth, and reduce directionality of the antenna at least along a radial axis of the antenna. Sets of conformal radiating elements are disposed on opposing sides of the antenna, or periodically around the surface of the antenna, to further reduce directionality.

Claims (41)

1. A feed array for a conformal antenna comprising:

a plurality of phase shifters, each phase shifter associated with a radiating element; and

a plurality of filters, each filter associated with a radiating element,

wherein:

each of the plurality of filters operates in an operating frequency corresponding to a radiating element in a log periodic array of radiating elements to select a desired mode of excitation and suppress undesired modes of excitation;

a first set of phase shifters, filters, and corresponding radiating elements are operated with a first sub-channel isolated polarization; and

a second set of phase shifters, filters, and corresponding radiating elements are operated with a second sub-channel isolated polarization distinct from the first sub-channel isolated polarization.

2. The feed array of claim 1 , wherein each of the plurality of filters comprises a bandpass filter.

3. The feed array of claim 2 , wherein a pass band of each bandpass filter is defined by an operating frequency of the corresponding radiating element.

4. The feed array of claim 1 , wherein each of the plurality of filters comprises a low-pass filter.

5. The feed array of claim 4 , wherein a cut off frequency of each low-pass filter is defined by an operating frequency of the corresponding radiating element.

6. The feed array of claim 4 , wherein the low-pass filters taper an amplitude of a signal from the corresponding radiating element.

7. A conformal antenna comprising:

a plurality of conformal log periodic radiating elements, each conformal log periodic radiating element being curved to conform to a non-planar surface; and

a feed array comprising:

a plurality of phase shifters, each phase shifter associated with a radiating element in the plurality of log periodic radiating elements; and

a plurality of filters, each filter associated with a radiating element in the plurality of log periodic radiating elements,

wherein:

each of the plurality of filters operates in an operating frequency corresponding to the associated radiating element to select a desired mode of excitation and suppress undesired modes of excitation;

a first set of phase shifters, filters, and corresponding conformal log periodic radiating elements are operated with a first sub-channel isolated polarization; and

a second set of phase shifters, filters, and corresponding conformal log periodic radiating elements are operated with a second sub-channel isolated polarization distinct from the first sub-channel isolated polarization.

8. The conformal antenna of claim 7 , wherein each of the plurality of filters comprises a bandpass filter.

9. The conformal antenna of claim 8 , wherein a pass band of each bandpass filter is defined loan operating frequency of the corresponding radiating element.

10. The conformal antenna of claim 7 , wherein each of the plurality of filters comprises a low-pass filter.

11. The conformal antenna of claim 10 , wherein a cut off frequency of each low-pass filter is defined by an operating frequency of the corresponding radiating element.

12. The conformal antenna of claim 10 , wherein the low-pass filters taper an amplitude of a signal from the corresponding radiating element according to a disposition of the corresponding radiating element with respect to other radiating elements.

13. A mobile platform comprising:

a conformal antenna comprising:

a plurality of conformal log periodic radiating elements, each conformal log periodic radiating element being curved to conform to a non-planar surface; and

a feed array comprising:

a plurality of phase shifters, each phase shifter associated with a radiating element in the plurality of log periodic radiating elements; and

a plurality of filters, each filter associated with a radiating element in the plurality of log periodic radiating elements,

wherein:

each of the plurality of filters operates in an operating frequency corresponding to the associated radiating element to select a desired mode of excitation and suppress undesired modes of excitation;

a first set of phase shifters, filters, and corresponding conformal log periodic radiating elements are operated with a first sub-channel isolated polarization; and

a second set of phase shifters, filters, and corresponding conformal log periodic radiating elements are operated with a second sub-channel isolated polarization distinct from the first sub-channel isolated polarization.

14. The mobile platform of claim 13 , wherein each of the plurality of filters comprises a bandpass filter.

15. The mobile platform of claim 14 , wherein a pass band of each bandpass filter is defined by an operating frequency of the corresponding radiating element.

16. The mobile platform of claim 13 , wherein each of the plurality of filters comprises a low-pass filter.

17. The mobile platform of claim 16 , wherein a cut off frequency of each low-pass filter is defined by to an operating frequency of the corresponding radiating element.

18. The mobile platform of claim 16 , wherein the low-pass filters taper an amplitude of a signal from the corresponding radiating element according to a disposition of the corresponding radiating element with respect to other radiating elements.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2021
From: KOZYREV, ALEXANDER B.; WEST, JAMES B.; MORAN, JIWON L.
To: ROCKWELL COLLINS, INC.
Reel/Frame 055865/0477 →
Continuity (1)
Related Publication 20220328970A1 · Oct 13, 2022
Cited By (1)
US 12,700,668