IP Library Granted Patent US 12699162
Granted Patent B2
US 12699162 · App. 18/519,182 · Granted Aug 4, 2026

Dynamic power management system for low power and high-performance radar applications

Inventors: Cristian Pavao Moreira (Frouzins, FR); Koteswararao Nannapaneni (Yelahanka, IN)
Assignee: NXP B.V.
G01S7/03H03F3/45475
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Quick Facts
Patent No.
US 12699162
App. No.
18/519,182
Granted
Aug 4, 2026
Kind
B2
Abstract

A radar device including a radar function, a driver configured to control a pass device, and a radar controller. The radar function is configured for generating radar frames in a first mode for generating high isolation frames and in a second mode for generating low isolation frames. The radar function has a supply voltage input and is configured to operate with the supply voltage input at a radar supply voltage level. The radar controller configures the driver for controlling the pass device to regulate voltage provided to the supply voltage input of the radar function at the radar supply voltage level with high power supply rejection ratio to minimize ripple voltage when the radar function is in the first mode, and configures the driver to force the pass device into a bypass mode to reduce power dissipation when the radar function is in the second mode.

Claims (41)

1 . A radar device comprising:

a radar function including a supply voltage input and configured to operate with the supply voltage input at a radar supply voltage level, and including a first mode for generating high isolation frames and a second mode for generating low isolation frames;

a driver configured to control a pass device; and

a radar controller to configure the driver for controlling the pass device to regulate a radar supply voltage to provide a regulated supply voltage to the supply voltage input of the radar function at the radar supply voltage level when in the first mode, and to configure the driver to force the pass device into a bypass mode to provide the radar supply voltage to the radar function without regulating the radar supply voltage when in the second mode.

2 . The radar device of claim 1 , wherein the driver is configured to control the pass device in the first mode to regulate supply voltage provided to the radar function with a high power supply rejection ratio, and wherein the driver is configured to force the pass device in the second mode to have zero voltage drop.

3 . The radar device of claim 1 , wherein the radar controller is configured to instruct an external voltage converter to output a voltage at the radar supply voltage level to the pass device in the second mode or at an upper voltage level that is greater than the radar supply voltage level to the pass device in the first mode.

4 . The radar device of claim 1 , wherein the driver comprises a low dropout regulator controller that is configured to regulate voltage in the first mode and to force the pass device in the second mode.

5 . The radar device of claim 1 , wherein the driver is configured to control a bipolar junction transistor as the pass device.

6 . The radar device of claim 1 , wherein the radar function operates according to a received radar profile for generating a total number of radar frames comprising at least one frame set in which each frame set comprises a first number of high isolation frames followed by a second number of low isolation frames.

7 . The radar device of claim 6 , wherein the total number and the first and second numbers are determined according to a use case.

8 . The radar device of claim 6 , wherein one or more of the high isolation frames are used as reference information for spur mitigation applied to the low isolation frames.

9 . The radar device of claim 1 , wherein the driver comprises:

an operational amplifier having a first input receiving a reference voltage, a second input coupled to a control node, and an output for coupling to a control terminal of the pass device;

a first resistor having a first end coupled to the supply voltage input of the radar function and having a second end coupled to the control node;

a second resistor having a first end coupled to the control node and having a second end coupled to a supply reference node; and

a switch controlled by the radar controller for selectively coupling the output of the operational amplifier to the supply reference node.

10 . A radar sensor comprising:

a radar device configured to generate radar frames, wherein the radar device has a first mode for generating high isolation frames and has a second mode for generating low isolation frames, and wherein the radar device comprises a radar function having a supply voltage input and is configured to operate with the supply voltage input at a radar supply voltage level;

a converter including a programmable voltage output, wherein the converter is instructed to output a radar supply voltage at the radar supply voltage level or at an upper voltage level that is greater than the radar supply voltage level;

a voltage control system comprising a driver coupled to a pass device, wherein the pass device includes current terminals coupled between the voltage output of the converter and the supply voltage input of the radar function and wherein the driver has a control output coupled to a control terminal of the pass device; and

a radar controller configured to instruct the converter to output a voltage at the upper voltage level and to configure the driver to control the pass device to regulate the voltage to provide a regulated supply voltage to the supply voltage input of the radar function at the radar supply voltage level to configure the radar device in the first mode, the radar controller to instruct the converter to output a second voltage at the radar supply voltage level and to configure the driver to force the pass device in bypass mode to provide the second voltage to the radar function without regulating the second voltage to configure the radar device in the second mode.

11 . The radar sensor of claim 10 , wherein the driver of the voltage control system controls the pass device in the first mode to regulate supply voltage provided to the radar function with a power supply rejection ratio sufficient to minimize ripple voltage at the voltage output of the converter, and wherein the driver forces the pass device in the second mode to have zero voltage drop between the pass device current terminals.

12 . The radar sensor of claim 10 , wherein the converter comprises a DC-DC buck converter that outputs voltage with ripple voltage indicative of DC-DC switching.

13 . The radar sensor of claim 10 , wherein the driver comprises a low-dropout regulator controller and wherein the pass device comprises a bipolar junction transistor.

14 . The radar sensor of claim 10 , wherein the radar device operates according to a received radar profile to generate a plurality of radar frames comprising at least one frame set in which each frame set comprises a first number of high isolation frames followed by a second number of low isolation frames.

15 . A method of generating radar frames, the method comprising:

configuring a radar sensor to generate high isolation frames by:

instructing a supply voltage to be provided at an upper voltage level that is greater than a radar supply voltage level suitable for a radar function of the radar sensor; and

driving a pass device receiving the supply voltage to regulate the supply voltage to provide a regulated supply voltage to the radar function at the upper voltage level; and

configuring the radar sensor to generate low isolation frames by:

instructing the supply voltage to be provided at the radar supply voltage level; and

forcing the pass device in bypass mode to pass the supply voltage at the radar supply voltage level to the radar function without regulating the supply voltage.

16 . The method of claim 15 , wherein said driving a pass device comprises driving the pass device to regulate voltage at the supply voltage input of the radar function with a power supply rejection ratio sufficient to minimize ripple voltage of the supply voltage for the high isolation frames.

17 . The method of claim 15 , wherein said forcing the pass device comprises forcing the pass device to have zero voltage drop for the low isolation frames.

18 . The method of claim 15 , further comprising:

receiving a profile indicating a total number of radar frames to be generated for a radar session, a first number of high isolation frames per frame set and a second number of low isolation frames per frame set of the radar session;

first configuring the radar sensor for generating high isolation frames and generating the first number of high isolation frames;

second configuring the radar sensor for generating low isolation frames and generating the second number of low isolation frames; and

repeating the first and second configuring and generating until the total number of radar frames have been generated.

19 . The method of claim 18 , further comprising determining the total number, the first number and the second number according to a use case.

20 . The method of claim 18 , further comprising using one or more of the high isolation frames as reference information for spurt mitigation applied to the low isolation frames.