IP Library › Granted Patent US 12,392,866
Granted Patent B2
US 12,392,866 · App. 18/317,618 · Granted Aug 19, 2025

Hybrid radar jamming and communication apparatus

Inventor: David A. Mouille (Bethlehem, PA)
Assignee: BAE Systems Information and Electronic Systems Integration Inc.
G01S7/38G01S7/021H04K3/45H04K3/46H04K2203/22H04K2203/32
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Quick Facts
Patent No.
US 12,392,866
App. No.
18/317,618
Granted
Aug 19, 2025
Kind
B2
Abstract

A hybrid electronic warfare and communications system (EW/COMM) eliminates the space, power, weight, and cost of a dedicated communication system by exchanging messages with other nodes in a network as phase modulations of radar jamming signals. Some embodiments impose message phase modulations onto CW jamming signals, while other embodiments interleave message phase modulations with pseudorandom phase modulations of the jamming signals. Message chip rates can be matched to pseudorandom phase modulation chip rates. Messages are thereby obfuscated as either phase noise or random phase modulation of the jamming signals. Messages can be encoded as BPSK or QPSK modulations. Messages can be preceded by pre-established headers known to other nodes, and distinguished thereby from random noise modulations. Some embodiments include a dedicated COMMS module and/or antenna, while other embodiments implement the communications function mostly or entirely in software. Messages can be encrypted before transmission and decrypted after reception.

Claims (34)

1. A hybrid radar jamming system and message communication system, the system being operable as a node in a communication network, the system comprising:

an RF receiving system configured to receive RF energy transmitted from a hostile radar;

an Electronic Warfare (EW) control module configured to determine an operating frequency of the hostile radar according to the received RF energy, and to output a responsive jamming phase control signal;

a communications module configured to encode a first message as a series of symbols representative of a series of message RF phase shifts, and to output the series of message RF phase shifts at a communication chip rate as a message phase control signal;

a selector configured to select, as a carrier wave phase control signal, either the jamming phase control signal or the message phase control signal;

a carrier wave modulator configured to impose phase modulations onto a jamming RF carrier wave according to the carrier wave phase control signal; and

an RF transmitting system configured to transmit RF energy according to the jamming RF carrier wave that is operable as a hostile radar jamming signal, the transmitted RF energy being further operable as a message communication signal having the first message encoded therein when the selector selects the message phase control signal, said message communication signal being detectable by at least one other node in the communication network;

the communications module being further configured to detect and extract a second message encoded in a jamming RF carrier wave transmitted by another node within the communication network.

2. The system of claim 1 , wherein the first message includes a header that is recognizable to other nodes in the network, the header being selected from among a group containing at least one pre-established header, and wherein detecting the second message includes recognizing that the second message is preceded by one of the pre-established headers.

3. The system of claim 1 , wherein the EW control module is able to output a series of pseudorandom jamming RF phase shifts at a jamming chip rate as the jamming phase control signal.

4. The system of claim 3 , wherein when the jamming phase control signal is a series of pseudorandom jamming RF phase shifts, the communication chip rate is equal to the jamming chip rate.

5. The system of claim 1 , wherein the communications module is further able to encrypt the first message before it is encoded as a series of symbols, and to decrypt the second message.

6. The system of claim 1 , wherein the system comprises a plurality of antennae.

7. The system of claim 6 , wherein the plurality of antennae are optimized for directing the transmitted RF energy toward the hostile radar, while also ensuring that other nodes in the communication network are able to detect the transmitted RF energy.

8. The system of claim 6 , wherein at least one of the antennae is a directional antenna.

9. The system of claim 6 , wherein at least one of the antennae is a flat panel element array.

10. The system of claim 1 , wherein the communications module is configured to generate and to receive at least one of binary phase shift encoded and quadrature phase shift encoded communication signals.

11. A computer program product including one or more non-transitory machine-readable mediums having instructions encoded thereon that, when executed by one or more processors, are configured to cause the system of claim 1 to transmit and receive messages while also concurrently jamming a hostile radar by executing the steps of:

causing the RF receiving system to receive RF energy transmitted from the hostile radar;

causing the EW control module to determine an operating frequency of the hostile radar according to the received RF energy, and to output a responsive jamming phase control signal;

causing the communications module to encode a first message as a series of symbols representative of a series of message RF phase shifts, and to output the series of message RF phase shifts at a communication chip rate as a message phase control signal;

causing the selector to select, as a carrier wave phase control signal, either the jamming phase control signal or the message phase control signal;

causing the carrier wave modulator to impose phase modulations onto a jamming RF carrier wave according to the carrier wave phase control signal;

causing the RF transmitting system to transmit RF energy according to the jamming RF carrier wave that is operable as a hostile radar jamming signal, the transmitted RF energy being further operable as a message communication signal having the first message encoded therein when the selector selects the message phase control signal, said message communication signal being detectable by at least one other node in the communication network; and

causing the communications module to detect and extract a second message encoded in a jamming RF carrier wave transmitted by another node within the communication network.

12. The computer program product of claim 11 , wherein the instructions, when executed by the system, are further configured to cause the communication module to include at a beginning of the first message a header that is recognizable to other nodes in the network, the header being selected from among a group of at least one pre-established header, and to cause the communication module when detecting the second message to recognize that the second message is preceded by one of the pre-established headers.

13. The computer program product of claim 11 , wherein the instructions, when executed by the system, are further configured to cause the EW control module to output a series of pseudorandom jamming RF phase shifts at a jamming chip rate as the jamming phase control signal.

14. The computer program product of claim 13 , wherein the instructions, when executed by the system, are configured, when the jamming phase control signal is a series of pseudorandom jamming RF phase shifts, to cause the communication chip rate to be equal to the jamming chip rate.

15. The computer program product of claim 11 , wherein the instructions, when executed by the system, are further configured to cause the communications module to encrypt the first message before it is encoded as a series of symbols, and to decrypt the second message.

16. The computer program product of claim 11 , wherein the system comprises a plurality of antennae.

17. The computer program product of claim 16 , wherein the plurality of antennae are optimized for directing the transmitted RF energy toward the hostile radar, while also ensuring that other nodes in the communication network are able to detect the transmitted RF energy.

18. The computer program product of claim 16 , wherein at least one of the antennae is a directional antenna.

19. The computer program product of claim 16 , wherein at least one of the antennae is flat panel element array.

20. The computer program product of claim 11 , wherein the instructions, when executed by the system, are configured to cause the communications module to generate and to receive at least one of binary phase shift encoded and quadrature phase shift encoded communication signals.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2023
From: MOUILLE, DAVID A.
To: BAE SYSTEMS INFORMATION AND ELECTRONIC SYSTEMS INTEGRATION INC.
Reel/Frame 063726/0505 →
Continuity (2)
Continuation In Part 17752925 · May 25, 2022
Related Publication 20240369680A1 · Nov 7, 2024
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