IP Library › Granted Patent US 12,494,588
Granted Patent B2
US 12,494,588 · App. 18/458,953 · Granted Dec 9, 2025

Ellipsoidal array antennas with modular unit cells

Inventor: Mark J. Lange (Malibu, CA)
Assignee: THE AEROSPACE CORPORATION
H01Q21/061H01Q1/36H01Q1/50
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Quick Facts
Patent No.
US 12,494,588
App. No.
18/458,953
Granted
Dec 9, 2025
Kind
B2
Abstract

Ellipsoidal array antennas that include repeated, modular unit cells are disclosed. The ellipsoidal array antennas may be wide band array antennas with bandwidths exceeding one octave that are capable of handling high radio frequency (RF) power with high polarization purity and low-cost manufacturing for arrays with high element counts. The number of unit cells is given by (Element_Rows+1)*Element_Columns for single polarized arrays. For dual polarized arrays, the number of unit cells is given by (Element_Rows+1)*(Element_Columns+1).

Claims (63)

1 . An ellipsoidal antenna unit cell, comprising:

an ellipsoidal radiator comprising a coaxial connector center conductor and a radio frequency (RF) conductor;

a cylinder located below and operably connected to the ellipsoidal radiator; and

a first connector that originates from between the ellipsoidal radiator and the cylinder, wherein

the first connector is operably connected to the coaxial connector center conductor and the RF conductor,

the first connector extends beyond a width of the ellipsoidal antenna unit cell, and

the first connector is configured to connect the ellipsoidal antenna unit cell to another ellipsoidal antenna unit cell.

2 . The ellipsoidal antenna unit cell of claim 1 , further comprising:

a unit cell ground plane operably connected to the cylinder.

3 . The ellipsoidal antenna unit cell of claim 2 , wherein the cylinder comprises further comprising:

a lower cylinder operably connected to the unit cell ground plane and supporting mounting of the RF connector; and

an upper cylinder operably connected to the lower cylinder and the ellipsoidal radiator.

4 . The ellipsoidal antenna unit cell of claim 2 , wherein the unit cell ground plane is shared by the ellipsoidal antenna unit cell and at least one other ellipsoidal antenna unit cell.

5 . The ellipsoidal antenna unit cell of claim 2 , wherein a difference between a width of the ellipsoidal radiator and the unit cell ground plane defines a smallest gap between the modular ellipsoidal antenna unit cell and an adjacent ellipsoidal antenna unit cell at a location of a feed point of the first connector.

6 . The ellipsoidal antenna unit cell of claim 2 , wherein the unit cell ground plane comprises a plurality of flanges with respective recesses that facilitate connection of the ellipsoidal antenna unit cell to one or more other ellipsoidal antenna unit cells.

7 . The ellipsoidal antenna unit cell of claim 1 , wherein the cylinder comprises through holes through which the coaxial connector center conductor and the RF conductor pass.

8 . The ellipsoidal antenna unit cell of claim 1 , wherein the cylinder is smaller in diameter than the ellipsoidal radiator, forming part of a cavity that is completed when multiple one or more additional ellipsoidal antenna unit cells are combined with the ellipsoidal antenna unit cell.

9 . The ellipsoidal antenna unit cell of claim 1 , wherein the first connector is a microstrip feed, a coaxial cable, or a strip line.

10 . The ellipsoidal antenna unit cell of claim 1 , wherein

the first connector is a microstrip, and

the microstrip comprises a microstrip line and a substrate.

11 . The ellipsoidal antenna unit cell of claim 10 , wherein a width of a portion of the microstrip line that exits a perimeter of the ellipsoidal radiator is larger than a width of a portion of the microstrip line that is within the ellipsoidal radiator to reduce residual parasitic inductance as the microstrip line crosses a gap to the another ellipsoidal antenna unit cell.

12 . The ellipsoidal antenna unit cell of claim 1 , further comprising:

a second connector that originates from between the ellipsoidal radiator and the cylinder, wherein

the ellipsoidal radiator comprises another RF conductor,

the second connector is operably connected to the coaxial connector center conductor and the another RF conductor, and

the second connector is configured to connect the ellipsoidal antenna unit cell to yet another ellipsoidal antenna unit cell.

13 . The ellipsoidal antenna unit cell of claim 1 , wherein the ellipsoidal antenna unit cell is a component of an array antenna with bandwidths exceeding one octave.

14 . The ellipsoidal antenna unit cell of claim 13 , wherein a power of the array antenna is greater than 200 watts and has a cross-polarization rejection of greater than 25 decibels.

15 . The ellipsoidal antenna unit cell of claim 1 , wherein the ellipsoidal antenna unit cell is one of a plurality of identical ellipsoidal antenna unit cells of a single polarized array antenna or a dual polarized array antenna.

16 . The ellipsoidal antenna unit cell of claim 1 , wherein a connection between the ellipsoidal antenna unit cell and an adjacent ellipsoidal antenna unit cell facilitated by the first connector is short circuited.

17 . The ellipsoidal antenna unit cell of claim 1 , wherein a connection between the ellipsoidal antenna unit cell and an adjacent ellipsoidal antenna unit cell facilitated by the first connector is open circuited.

18 . A modular ellipsoidal antenna unit cell, comprising:

an ellipsoidal radiator comprising a coaxial connector center conductor and a radio frequency (RF) conductor;

a cylinder located below and operably connected to the ellipsoidal radiator;

a unit cell ground plane operably connected to the cylinder; and

a first connector that originates from between the ellipsoidal radiator and the cylinder, wherein

the first connector is operably connected to the coaxial connector center conductor and the RF conductor,

the first connector extends beyond a width of the modular ellipsoidal antenna unit cell,

the first connector is configured to connect the modular ellipsoidal antenna unit cell to another modular ellipsoidal antenna unit cell, and

a difference between a width of the ellipsoidal radiator and the unit cell ground plane defines a smallest gap between the modular ellipsoidal antenna unit cell and an adjacent modular ellipsoidal antenna unit cell at a location of a feed point of the first connector.

19 . The modular ellipsoidal antenna unit cell of claim 18 , wherein the unit cell ground plane comprises a plurality of flanges with respective recesses that facilitate connection of the modular ellipsoidal antenna unit cell to one or more other modular ellipsoidal antenna unit cells.

20 . The modular ellipsoidal antenna unit cell of claim 18 , wherein the cylinder is smaller in diameter than the ellipsoidal radiator, forming part of a cavity that is completed when multiple one or more additional ellipsoidal antenna unit cells are combined with the ellipsoidal antenna unit cell.

21 . The modular ellipsoidal antenna unit cell of claim 18 , wherein the first connector is a microstrip feed, a coaxial cable, or a strip line.

22 . The modular ellipsoidal antenna unit cell of claim 18 , further comprising:

a second connector that originates from between the ellipsoidal radiator and the cylinder, wherein

the ellipsoidal radiator comprises another RF conductor,

the second connector is operably connected to the coaxial connector center conductor and the another RF conductor, and

the second connector is configured to connect the modular ellipsoidal antenna unit cell to yet another modular ellipsoidal antenna unit cell.

23 . An ellipsoidal antenna unit cell, comprising:

an ellipsoidal radiator comprising a coaxial connector center conductor, a first radio frequency (RF) conductor, and a second RF conductor;

a cylinder located below and operably connected to the ellipsoidal radiator; and

a first connector and a second connector, the first connector and the second connector originating from between the ellipsoidal radiator and the cylinder, wherein

the first connector and the second connector are operably connected to the coaxial connector center conductor and to the first RF conductor and the second RF conductor, respectively,

the first connector and the second connector extend beyond a width of the ellipsoidal antenna unit cell,

the first connector is configured to connect the ellipsoidal antenna unit cell to another ellipsoidal antenna unit cell, and

the second connector is configured to connect the ellipsoidal antenna unit cell to yet another ellipsoidal antenna unit cell.

24 . The ellipsoidal antenna unit cell of claim 23 , further comprising:

a unit cell ground plane operably connected to the cylinder.

25 . The ellipsoidal antenna unit cell of claim 24 , wherein a difference between a width of the ellipsoidal radiator and the unit cell ground plane defines a smallest gap between the modular ellipsoidal antenna unit cell and an adjacent ellipsoidal antenna unit cell at a location of a feed point of the first connector.

26 . The ellipsoidal antenna unit cell of claim 24 , wherein the unit cell ground plane comprises a plurality of flanges with respective recesses that facilitate connection of the ellipsoidal antenna unit cell to one or more other ellipsoidal antenna unit cells.

27 . The ellipsoidal antenna unit cell of claim 23 , wherein the cylinder is smaller in diameter than the ellipsoidal radiator, forming part of a cavity that is completed when multiple one or more additional ellipsoidal antenna unit cells are combined with the ellipsoidal antenna unit cell.

28 . The ellipsoidal antenna unit cell of claim 23 , wherein the first connector is a microstrip feed, a coaxial cable, or a strip line.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2023
From: LANGE, MARK J.
To: THE AEROSPACE CORPORATION
Reel/Frame 064758/0898 →
Continuity (1)
Related Publication 20250079719A1 · Mar 6, 2025
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