IP Library Granted Patent US 11,543,509
Granted Patent B2
US 11,543,509 · App. 16/863,944 · Granted Jan 3, 2023

Bi-static radar system

Inventors: James F. Searcy (Westfield, IN); Ryan K. Rossiter (Kokomo, IN); Stephen W. Alland (Newbury Park, CA)
Assignee: Aptiv Technologies Limited
G01S13/003G01S7/006G01S7/032
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Quick Facts
Patent No.
US 11,543,509
App. No.
16/863,944
Filed
Apr 30, 2020
Granted
Jan 3, 2023
Kind
B2
Art Unit
3648
USPC
342/125
Abstract

A bi-static radar system configured for coherent detection of a radar-signal includes a plurality of radar-transceivers, a controller, and a communications device. The plurality of radar-transceivers is characterized as physically spaced apart with respect to each other. The controller is in communication with the each of the radar-transceivers and is configured to coherently operate each of the radar-transceivers. The communications device communicates both a reference-clock signal and a frame-sync signal from the controller to each of the plurality of radar-transceivers whereby the plurality of radar-transceivers operate coherently. Alternatively, the system may include a reference-signal generator, a transmitter, and a plurality of receivers. The reference-signal generator generates a reference-signal characterized by a reference-frequency proportional to a fraction of a radar-frequency of a radar-signal transmitted. The transmitter generates the radar-signal at the radar-frequency based on the reference-signal. The plurality of receivers operates coherently to detect the radar-signal based on the reference-signal.

Claims (39)

1. A bi-static radar system configured for coherent detection of a radar-signal, said system comprising:

a plurality of receiver modules configured for coherent operation using a common frame sync signal and a common reference clock signal received at each receiver module for synchronizing down conversions for the system to a baseband of respective VCO frequencies at each of the receiver modules by causing divide-by-N divider values output from receiver module modulators to vary based on the common frame sync signal; and

at least one fractional-N PLL associated with each of the plurality of receiver modules, each fractional-N PLL being configured to generate a local clock signal, based on the common reference clock signal and the common frame sync signal, independently for a respective receiver module such that the bi-static radar system is operable to coherently detect a radar signal.

2. The system in accordance with claim 1 , wherein the plurality of receiver modules includes a first receiver module and a second receiver module spaced apart from the first receiver module.

3. The system in accordance with claim 2 , wherein the first receiver module is spaced apart from the second receiver module by more than five-hundred-millimeters (500 mm).

4. The system in accordance with claim 1 , wherein each fractional-N phase-lock-loop generates a local-oscillator signal at a radar-frequency based on the common reference clock signal.

5. The system in accordance with claim 4 , wherein the local-oscillator signal used to coherently detect the radar-signal by the plurality of receiver modules.

6. The system in accordance with claim 1 , wherein the system comprises:

a plurality of transmitters, each one of the plurality of transmitters is associated with one of the plurality of receiver modules to form a plurality of radar-transceivers.

7. The system in accordance with claim 6 , wherein each of the plurality of radar-transceivers includes a fractional-N phase-lock-loop.

8. The system in accordance with claim 7 , wherein each fractional-N phase-lock-loop generates the radar-signal at a radar-frequency based on the common reference clock signal.

9. The system in accordance with claim 7 , wherein each fractional-N phase-lock-loop generates a local-oscillator signal at a radar-frequency based on the common reference clock signal.

10. The system in accordance with claim 9 , wherein the local-oscillator signal is used to coherently detect the radar-signal.

11. The system in accordance with claim 7 , wherein each fractional-N phase-lock-loop:

generates a radar-signal at a radar-frequency based on the common reference clock signal; and

generates a local oscillator signal at the radar-frequency based on the common reference clock signal, the local oscillator signal used to coherently detect the radar-signal.

12. The system in accordance with claim 11 , wherein the system comprises a plurality of serializer/deserializer chipset pairs used to communicate the common reference clock signal to each of the plurality of radar-transceivers.

13. The system in accordance with claim 6 , wherein the common reference clock signal is output by one of the plurality of radar-transceivers and communicated to the remainder of the plurality of radar-transceivers.

14. The system in accordance with claim 1 , wherein:

a sweep control module of each of the receiver modules provides a modulation sequence to a modulator of that receiver module for varying the divide-by-N divider values output from that modulator.

15. The system in accordance with claim 14 , wherein the frame sync signal synchronizes the modulation sequence of each respective receive module to a common clock pulse of the common reference clock signal.

16. The system of claim 1 , wherein each of the plurality of receiver modules is a transceiver module that includes a transmitter.

17. The system of claim 16 , wherein each fractional-N PLL is configured to generate a clock signal independently for the transmitter of the respective transceiver module.

18. A method, comprising:

coherently detecting, using a plurality of receiver modules of a bi-static radar system each associated with at least one fractional-N PLL, a radar-signal based on a common reference clock signal and a common frame sync signal;

generating, with a reference clock generator in communication with the plurality of receiver modules, the common reference clock signal at a reference-frequency;

generating, with a frame sync generator in communication with the plurality of receiver modules, the common frame sync signal;

synchronizing down conversions for the system to a baseband of respective VCO frequencies at each of the receiver modules by causing divide-by-N divider values output from receiver module modulators to vary based on the common frame sync signal; and

independently generating, with each fractional-N PLL, a local clock signal for the respective receiver module based on the common reference clock signal and the common frame sync signal such that the bi-static radar system is operable to coherently detect a radar signal.

19. A bi-static radar system configured for coherent detection of a radar-signal, the system comprising:

a reference clock generator operable to generate a common reference clock signal at a reference-frequency that is proportional to a fraction of a radar-frequency of a radar-signal transmitted by the system;

a frame sync generator operable to generate a common frame sync signal; and

a plurality of transmit-receive modules, each comprising:

a transmitter operable to generate the radar-signal at the radar-frequency based on the reference clock signal;

a receiver operable to coherently detect the radar-signal based on the reference clock signal;

a modulator operable to synchronize down conversions for the system to a baseband of respective VCO frequencies at each of the receiver modules by causing divide-by-N divider values output from receiver module modulators to vary based on the common frame sync signal; and

an independent VCO controlled with a separate fractional-N PLL that uses the common reference clock signal and the modulator to enable the bi-static radar system to coherently detect a radar signal.

20. The system of claim 19 ,

wherein each fractional-N PLL uses the frame sync signal to trigger at least one modulation sequence.

Assignments (4)
MERGER Recorded Feb 11, 2024
From: APTIV TECHNOLOGIES (2) S.À R.L.
To: APTIV MANUFACTURING MANAGEMENT SERVICES S.À R.L.
Reel/Frame 066566/0173 →
ENTITY CONVERSION Recorded Feb 11, 2024
From: APTIV TECHNOLOGIES LIMITED
To: APTIV TECHNOLOGIES (2) S.À R.L.
Reel/Frame 066746/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2024
From: APTIV MANUFACTURING MANAGEMENT SERVICES S.À R.L.
To: APTIV TECHNOLOGIES AG
Reel/Frame 066551/0219 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2020
From: SEARCY, JAMES F.; ROSSITER, RYAN K.; ALLAND, STEPHEN W.
To: APTIV TECHNOLOGIES LIMITED
Reel/Frame 053700/0873 →
Continuity (4)
Continuation 15204056 · Jul 7, 2016
Provisional Application 62211114 · Aug 28, 2015
Related Publication 20200292685A1 · Sep 17, 2020
Related Publication 20210302557A9 · Sep 30, 2021
Cited By (1)
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