IP Library › Granted Patent US 12,742,853
Granted Patent B2
US 12,742,853 · App. 18/422,706 · Granted Sep 22, 2026

Cascaded radar system

Inventors: Martin Dechant (Graz, AT); Josef Kulmer (Graz, AT); George Efthivoulidis (Graz, AT)
Assignee: Infineon Technologies AG
G01S7/03G01S7/352
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Quick Facts
Patent No.
US 12,742,853
App. No.
18/422,706
Granted
Sep 22, 2026
Kind
B2
Abstract

The present disclosure relates to a cascaded radar system. The cascaded radar system includes a primary MMIC and a secondary MMIC coupled to the primary MMIC via a signal channel. The primary MMIC is configured to combine a LO signal with at least a second signal to generate a combined LO signal and to transmit the combined LO signal to the secondary MMIC via the signal channel. The secondary MMIC is configured to receive the combined LO signal via the signal channel, separate the LO signal and at least the second signal from the combined LO signal, and perform radar operations based on the LO signal and at least the second signal.

Claims (51)

1 . A cascaded radar system, comprising:

a primary monolithic microwave integrated circuit (MMIC);

a secondary MMIC coupled to the primary MMIC via a signal channel;

wherein the primary MMIC is configured to:

combine a local oscillator (LO) signal with at least a second signal to generate a combined LO signal, and

transmit the combined LO signal to the secondary MMIC via the signal channel; and

wherein the secondary MMIC is configured to:

receive the combined LO signal via the signal channel,

separate the LO signal and at least the second signal from the combined LO signal, wherein separating the LO signal from the combined LO signal comprises regenerating the LO signal from the combined LO signal, and wherein separating at least the second signal from the combined LO signal comprises demodulating, using the regenerated LO signal, at least the second signal from the combined LO signal; and

perform radar operations based on the LO signal and at least the second signal.

2 . The cascaded radar system of claim 1 , wherein the signal channel comprises a printed circuit board (PCB) trace, or a waveguide.

3 . The cascaded radar system of claim 1 , wherein the LO signal is a frequency modulated signal and the second signal is not frequency modulated.

4 . The cascaded radar system of claim 1 , wherein the second signal is a clock signal, and

wherein a number of oscillations of the LO signal within a clock period of the clock signal constantly increases or constantly decreases within a ramp time interval of a LO frequency modulation.

5 . The cascaded radar system of claim 1 , wherein the primary MMIC is configured to:

modulate the LO signal with at least the second signal to obtain a modulated LO signal, and

transmit the modulated LO signal to the secondary MMIC via the signal channel, and

wherein the secondary MMIC is configured to:

demodulate the modulated LO signal to obtain the LO signal and at least the second signal for performing the radar operations.

6 . The cascaded radar system of claim 5 , wherein the primary MMIC is configured to modulate the LO signal with at least the second signal in accordance with at least one of an amplitude-shift keying scheme, a frequency shift keying scheme, or a phase shift keying scheme.

7 . The cascaded radar system of claim 5 , wherein the primary MMIC is configured to:

modulate the LO signal with a binary clock signal and with a second binary signal, and

transmit the modulated LO signal to the secondary MMIC via the signal channel.

8 . The cascaded radar system of claim 7 , wherein the primary MMIC is configured to:

modulate the LO signal with the binary clock signal according to an amplitude-shift keying scheme, and

add the second binary signal as a DC offset.

9 . The cascaded radar system of claim 7 , wherein the secondary MMIC is configured to:

separate the second binary signal from the modulated LO signal,

re-generate the LO signal from the modulated LO signal to obtain a re-generated LO signal, and

demodulate the binary clock signal from the modulated LO signal using the re-generated LO signal.

10 . The cascaded radar system of claim 5 , wherein the primary MMIC is configured to:

modulate the second signal with a third signal to generate a modulated second signal, and

modulate the modulated second signal with the LO signal to generate the combined LO signal.

11 . A monolithic microwave integrated circuit (MMIC) for a cascaded radar system, the MMIC comprising:

a local oscillator (LO) circuit configured to generate a LO signal;

a combiner circuit configured to combine the LO signal with at least a second signal to obtain a combined LO signal; and

an interface configured to transmit the combined LO signal to a further MMIC, the further MMIC to regenerate the LO signal from the combined LO signal and demodulate, using the regenerated LO signal, at least the second signal from the combined LO signal.

12 . The MMIC of claim 11 , wherein the LO signal is a frequency-modulated continuous-wave (FMCW) signal.

13 . The MMIC of claim 11 , wherein the combiner circuit is configured to modulate the LO signal with a binary clock signal and with a second binary signal.

14 . The MMIC of claim 11 , wherein the combiner circuit is configured to modulate the LO signal with at least the second signal in accordance with at least one of an amplitude-shift keying scheme, a frequency shift keying scheme, or a phase shift keying scheme.

15 . The MMIC of claim 11 , wherein the MMIC is configured to activate an interface configured to receive, from a further MMIC, a combined LO signal comprising an LO signal combined with at least a second signal,

wherein the MMIC is configured to activate a separator circuit configured to separate the LO signal and at least one second signal from the combined LO signal, and

wherein the MMIC is configured to activate a radar processing circuit configured to perform radar processing based on the LO signal and at least the second signal.

16 . A monolithic microwave integrated circuit (MMIC) for a cascaded radar system, the MMIC comprising:

an interface configured to receive a combined local oscillator (LO) signal comprising an LO signal combined with at least a second signal;

a separator circuit configured to separate the LO signal and at least the second signal from the combined LO signal, wherein separating the LO signal from the combined LO signal comprises regenerating the LO signal from the combined LO signal, and wherein separating at least the second signal from the combined LO signal comprises demodulating, using the regenerated LO signal, at least the second signal from the combined LO signal; and

a radar processing circuit configured to perform radar processing based on the LO signal and at least the second signal.

17 . The MMIC of claim 16 , wherein the second signal comprises a clock signal for analog to digital converters (ADCs) of the radar processing circuit or for a frequency-modulated continuous-wave (FMCW) ramp start signal for triggering a start of an FMCW ramp.

18 . The MMIC of claim 16 , wherein the MMIC is configured to activate a local oscillator circuit to generate a LO signal,

wherein the MMIC is configured to activate a combiner circuit configured to combine the LO signal with at least a second signal to obtain a combined LO signal, and

wherein the MMIC is configured to activate an interface configured to transmit the combined LO signal to a further MMIC.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2024
From: DECHANT, MARTIN; KULMER, JOSEF; EFTHIVOULIDIS, GEORGE
To: INFINEON TECHNOLOGIES AG
Reel/Frame 066264/0768 →
Priority Claims (1)
DE 102023102699.2 · Feb 3, 2023 · national
Continuity (1)
Related Publication 20250020764A1 · Jan 16, 2025
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