IP Library Granted Patent US 12,345,796
Granted Patent B2
US 12,345,796 · App. 17/970,889 · Granted Jul 1, 2025

Compact, high-efficiency radar assembly

Inventors: Evan Jackson Everett (Fort Collins, CO); James Nathaniel Knight (Fort Collins, CO); Andrew Scott Mank (Fort Collins, CO); Erik George Moore (Fort Collins, CO)
Assignee: Anduril Industries, Inc.
G01S13/26G01S13/48H01Q1/2258H01Q3/36G01S2013/0254
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Quick Facts
Patent No.
US 12,345,796
App. No.
17/970,889
Granted
Jul 1, 2025
Kind
B2
Abstract

Provided is an array antenna divided into a plurality of sub-arrays disposed along a first dimension, wherein each sub-array comprises: a plurality of frequency scannable elements disposed along the first dimension and a plurality of phase shifters or transmit/receive (T/R) modules disposed along a second spatial dimension, each phase shifter or T/R module connected to a plurality of frequency scannable elements disposed along the first spatial dimension; and one or more processors being configured to generate a recurring radar waveform having a transmit portion, the transmit portion having multiple successive pulses at different frequencies to generate transmit beams by the array antenna at different angles in the first dimension; control at least one of the plurality of phase shifters or T/R modules along the second dimension to cause the transmit beams to be generated by the array antenna at different angles in the second dimension; and process return signals received by the plurality of sub-arrays to estimate a target location.

Claims (64)

1. A radar assembly comprising:

a transmit antenna array comprising a plurality of transmit antenna sub-arrays arranged in a first direction, wherein:

the plurality of transmit antenna sub-arrays are configured to be controlled by a first active beam steering circuit to transmit an electromagnetic beam to scan, in the first direction, at least part of a volume of space,

each of at least some of the transmit antenna sub-arrays comprise a set of transmit antennas, and

the transmit antennas are configured to be controlled by a first passive beam steering circuit to transmit the electromagnetic beam to scan, in a second direction, the volume of space; and

a receive antenna array comprising a plurality of receive antenna sub-arrays arranged in a third direction, wherein:

the plurality of receive antennas sub-arrays are configured to be controlled by a second active beam steering circuit to scan, in the third direction, at least part of a second volume of space to receive reflected electromagnetic radiation of the transmitted electromagnetic beam,

each of at least some of the receive antenna sub-arrays comprise a set of receive antennas, and

the receive antennas are configured to be controlled by a second passive beam steering circuit to scan, in a fourth direction, the second volume of space to receive the reflected electromagnetic radiation of the transmitted electromagnetic beam.

2. The radar assembly of claim 1 , wherein:

the transmit antenna array is configured to be passively cooled;

the receive antenna array is configured to be passively cooled;

the first passive beam steering circuit further comprises a frequency-scanned array card configured to provide phase-controlled electromagnetic radiation to the transmit antennas; or

the second passive beam steering circuit further comprises a frequency-scanned array card configured to phase-shift received electromagnetic radiation from the receive antennas.

3. The radar assembly of claim 1 , wherein the first active beam steering circuit comprises a plurality of phase shifters configured to provide phase-controlled electromagnetic radiation to the plurality of transmit antenna sub-arrays, and wherein the second active beam steering circuit comprises a plurality of phase shifters configured to phase-shift the received electromagnetic radiation from the receive antenna sub-arrays.

4. The radar assembly of claim 1 , wherein:

the transmit antenna array is the receive antenna array;

the transmit antenna sub-arrays are the receive antenna sub-arrays;

the first active beam steering circuit is the second active beam steering circuit;

the first passive beam steering circuit is the second passive beam steering circuit;

the transmit antennas are the receive antennas;

the volume of space is the second volume of space;

the first direction is the third direction;

the second direction is the fourth direction; and

the first direction is orthogonal to the second direction.

5. The radar assembly of claim 4 , wherein each transmit antenna sub-array further comprises a transmit/receive (T/R) selector configured to select a transmit mode or receive mode for the transmit antenna sub-array.

6. The radar assembly of claim 5 , wherein the T/R selector further comprises a plurality of phase shifters configured to provide phase-controlled electromagnetic radiation to the plurality of transmit antenna sub-arrays.

7. The radar assembly of claim 1 , further comprising:

a heat sink thermally coupled to at least of portion of the first active beam steering circuit, the second active beam steering circuit, or both, the heat sink being configured to dissipate heat to an external environment;

a radome, the radome being configured to protect at least a portion of the transmit antenna array, the receive antenna array, or both from at least one of water or particulates;

means for electromagnetically isolating the transmit antenna array from the receive antenna array;

means for amplifying input to the transmit antennas; and

means for amplifying output from the receive antennas.

8. The radar assembly of claim 1 , wherein the transmit antenna array and the receive antenna array are configured to operate concurrently.

9. The radar assembly of claim 1 , wherein the transmit antenna array and the receive antenna array are configured to operate substantially simultaneously.

10. The radar assembly of claim 1 , wherein the transmit antenna array and the receive antenna array are configured to operate sequentially.

11. The radar assembly of claim 1 , wherein:

the transmit antenna array has no active cooling;

the transmit antenna array has no switches to control the scanning to transmit the electromagnetic beam; and

the receive antenna array has no switches to control the scanning to receive the reflected electromagnetic radiation.

12. The radar assembly of claim 1 , wherein:

each and every of the transmit antenna sub-arrays comprise a set of transmit antennas; and

each and every of the receive antenna sub-arrays comprise a set of receive antennas.

13. The radar assembly of claim 1 , further comprising:

the first active beam steering circuit;

the first passive beam steering circuit;

the second active beam steering circuit; and the second passive beam steering circuit.

14. The radar assembly of claim 1 , further comprising a computing system, the computing system being configured to determine, based on the received reflected radiation, a location of an object in the volume of space.

15. The radar assembly of claim 14 , wherein the computer system is further configured to generate an input signal to the transmit antenna array, and wherein the input signal is configured to cause the first active beam steering circuit to scan the volume of space in the first direction.

16. The radar assembly of claim 15 , the input signal further comprising a phase shift, wherein the phase shift is configured to cause the first passive steering circuit to scan the volume of space in the second direction.

17. The radar assembly of claim 14 , wherein the computer system is further configured to determine a speed or direction of the object in the volume of space.

18. The radar assembly of claim 14 , wherein the computer system further configured to track the object in the volume of space.

19. The radar assembly of claim 1 , wherein the radar assembly is substantially portable.

20. The radar assembly of claim 19 , wherein the radar assembly is 16″ by 22″ by 6.5″ or smaller in size.

21. The radar assembly of claim 19 , wherein the radar assembly is operable during transport.

22. A method, comprising:

transmitting, by a plurality of transmit antenna sub-arrays, an electromagnetic beam into a volume of space, the electromagnetic beam scanned in a first direction in the volume of space by a first active beam steering circuit;

transmitting, by a set of transmit antennas of the plurality of transmit antenna sub-arrays, the electromagnetic beam into the volume of space, the electromagnetic beam scanned in a second direction in the volume of space by a first passive beam steering circuit;

receiving, by a plurality of receive antenna sub-arrays, reflected electromagnetic radiation from the electromagnetic beam from the volume of space, the plurality of receive antenna sub-arrays configured to scan in a third direction in the volume of space by a second active beam steering circuit; and

receiving, by a set of receive antennas of the plurality of receive antenna sub-arrays, the reflected electromagnetic radiation from the electromagnetic beam from the volume of space, the set of receive antennas configured to scan in a fourth direction in the volume of space by a second passive beam steering circuit.

23. The method of claim 22 , further comprising:

processing, by a computer system, the received reflected electromagnetic radiation to estimate a target location in at least one of the first direction and the second direction.

24. The method of claim of claim 23 , further comprising:

determining, by the computer system, a speed or direction of the target in at least one of the first direction and the second direction.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2025
From: NUMERICA CORPORATION
To: ANDURIL INDUSTRIES, INC.
Reel/Frame 069879/0897 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2022
From: EVERETT, EVAN JACKSON; KNIGHT, JAMES NATHANIEL; MANK, ANDREW SCOTT; MOORE, ERIK GEORGE
To: NUMERICA CORPORATION
Reel/Frame 061497/0524 →
Continuity (2)
Continuation 17751593 · May 23, 2022
Related Publication 20230375687A1 · Nov 23, 2023
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