IP Library Granted Patent US 11,605,899
Granted Patent B2
US 11,605,899 · App. 16/857,912 · Granted Mar 14, 2023

Conformal/omni-directional differential segmented aperture

Inventors: Raphael Joseph Welsh (Powell, OH); Douglas A. Thornton (Upper Arlington, OH)
Assignee: BATTELLE MEMORIAL INSTITUTE
H01Q17/008H01Q21/061
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Quick Facts
Patent No.
US 11,605,899
App. No.
16/857,912
Granted
Mar 14, 2023
Kind
B2
Abstract

A radio frequency (RF) aperture includes an array of electrically conductive tapered projections arranged to define a curved aperture surface, such as a semi-cylinder aperture surface, or a cylinder aperture surface (which may be constructed as two semi-circular aperture surfaces mutually arranged to define the cylinder aperture surface). The RF aperture may further include a top array of electrically conductive tapered projections arranged to define a top aperture surface. The top aperture surface may be planar, and a cylinder axis of cylinder aperture surface may be perpendicular to the plane of the planar top aperture surface. The RF aperture may further include baluns mounted on at least one printed circuit board, each having a balanced port electrically connected with two neighboring electrically conductive tapered projections of the array and further having an unbalanced port.

Claims (41)

1. A radio frequency (RF) aperture comprising:

an array of electrically conductive tapered projections arranged to define a curved aperture surface;

at least one printed circuit board;

RF circuitry disposed on the at least one printed circuit board and electrically connected with the electrically conductive tapered projections to receive and/or apply differential RF signals between neighboring pairs of electrically conductive tapered projections; and

baluns mounted on the at least one printed circuit board wherein each balun has a balanced port electrically connected with two neighboring electrically conductive tapered projections of the array of electrically conductive tapered projections and further has an unbalanced port;

wherein the RF circuitry disposed on the at least one printed circuit board is electrically connected with the unbalanced ports of the baluns.

2. The RF aperture of claim 1 wherein the array of electrically conductive tapered projections are arranged to define a semi-cylinder aperture surface.

3. The RF aperture of claim 1 wherein the array of electrically conductive tapered projections are arranged to define a cylinder aperture surface.

4. The RF aperture of claim 3 wherein the array of electrically conductive tapered projections includes:

a first array of electrically conductive tapered projections arranged to define a first semi-cylinder aperture surface; and

a second array of electrically conductive tapered projections arranged to define a second semi-cylinder aperture surface;

wherein the first and second semi-cylinder aperture surfaces are mutually arranged to define the cylinder aperture surface.

5. The RF aperture of claim 1 , wherein the array of electrically conductive tapered projections are arranged to define a curved aperture surface that is conformal with a curved surface of a fuselage of an aircraft or unmanned aerial vehicle (UAV) or with a curved surface of a hull of a ship or submarine or with a curved surface of a satellite.

6. The RF aperture of claim 4 wherein the at least one printed circuit board includes:

a first at least one printed circuit board carrying a first subset of the baluns whose balanced ports are electrically connected with the first array of electrically conductive tapered projections; and

a second at least one printed circuit board carrying a second subset of the baluns whose balanced ports are electrically connected with the second array of electrically conductive tapered projections.

7. The RF aperture of claim 6 wherein:

the first at least one printed circuit board is planar, and the balanced ports of the first subset of the baluns are electrically connected with the first array of electrically conductive tapered projections by coaxial cables; and

the second at least one printed circuit board is planar, and the balanced ports of the second subset of the baluns are electrically connected with the second array of electrically conductive tapered projections by coaxial cables.

8. The RF aperture of claim 1 wherein the array of electrically conductive tapered projections comprise:

dielectric tapered projections; and

an electrically conductive layer disposed on a surface of the dielectric tapered projections.

9. The RF aperture of claim 1 wherein the electrically conductive tapered projections are hollow.

10. The RF aperture of claim 1 wherein the electrically conductive tapered projections are solid.

11. A radio frequency (RF) aperture comprising:

an array of electrically conductive tapered projections arranged to define a cylinder aperture surface; and

a top array of electrically conductive tapered projections arranged to define a planar top aperture surface;

wherein a cylinder axis of cylinder aperture surface is perpendicular to the a plane of the planar top aperture surface.

12. A radio frequency (RF) aperture comprising:

an array of electrically conductive tapered projections arranged to define a cylinder aperture surface;

a cylindrical support supporting the array of electrically conductive tapered projections arranged to define the cylinder aperture surface;

a plurality of printed circuit boards disposed inside the cylindrical support; and

RF circuitry disposed on the plurality of printed circuit boards and electrically connected with the electrically conductive tapered projections.

13. The RF aperture of claim 12 wherein the plurality of printed circuit boards comprise perpendicular printed circuit boards each having an edge proximate to an inside surface of the cylindrical support and each being perpendicular to the cylindrical support at the edge proximate to the cylindrical support.

14. The RF aperture of claim 13 wherein the perpendicular printed circuit boards are radially oriented perpendicular printed circuit boards.

15. The RF aperture of claim 14 wherein the edge of each radially oriented perpendicular printed circuit board that is proximate to the inside surface of the cylindrical support is secured with the inside surface of the cylindrical support.

16. The RF aperture of claim 14 wherein the edge of each radially oriented perpendicular printed circuit board that is proximate to the cylindrical support is positioned between two adjacent rows of adjacent electrically conductive tapered projections.

17. The RF aperture of claim 12 wherein the plurality of printed circuit boards comprise circular printed circuit boards disposed concentrically inside the cylindrical support and having circular perimeters that are proximate to an inside surface of the cylindrical support.

18. The RF aperture of claim 17 wherein a cylinder axis of the cylindrical support is perpendicular to the circular printed circuit boards.

19. The RF aperture of claim 17 wherein the circular perimeters of the circular printed circuit boards are secured with the inside surface of the cylindrical support.

20. The RF aperture of claim 17 wherein the circular printed circuit boards are positioned between adjacent rings of electrically conductive tapered projections.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2021
From: WELSH, RAPHAEL JOSEPH; THORNTON, DOUGLAS A.
To: BATTELLE MEMORIAL INSTITUTE
Reel/Frame 055954/0406 →
Continuity (2)
Provisional Application 62839122 · Apr 26, 2019
Related Publication 20200343646A1 · Oct 29, 2020
Cited By (1)
US 12,224,495