IP Library Granted Patent US 12695373
Granted Patent B2
US 12695373 · App. 18/441,537 · Granted Jul 28, 2026

Driver circuit with discharge control, corresponding electronic system and vehicle

Inventors: Vittorio D'Angelo (Nocera Superiore, IT); Salvatore Cannavacciuolo (Villaricca, IT)
Assignee: STMicroelectronics International N.V.
H02M1/088B60R16/03H03K17/6871H02P27/08H03K2217/0063H03K2217/0072
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Quick Facts
Patent No.
US 12695373
App. No.
18/441,537
Filed
Feb 14, 2024
Granted
Jul 28, 2026
Kind
B2
Art Unit
2837
USPC
318/504
Abstract

A driver circuit includes high- and low-side switches coupled to first and second output pins, respectively, that are couplable to a power switch control terminal. High- and low-side drive circuits supplied by programmable and fixed voltages, respectively, drive the high- and low-side switches, respectively. A voltage generator receives a programming signal and produces the programmable voltage. Control circuitry coupled to the high- and low-side drive circuits receives an input command signal indicating initiation of a discharge action, in response to which the control circuitry asserts a drive signal to activate the high-side drive circuit, turning on the high-side switch and clamping the first output pin at the programmable voltage. In response to expiration of a time interval, the control circuitry de-asserts the drive signal to activate the low-side drive circuit, turning on the low-side switch and tying the second output pin to the second supply voltage node.

Claims (98)

1 . A driver circuit, comprising:

a high-side switch coupled between a first supply voltage node and a first output pin of the driver circuit;

a low-side switch coupled between a second output pin of the driver circuit and a second supply voltage node, wherein the first and second output pins are configured to be coupled to a control terminal of a power switch to provide thereto a control signal;

a high-side drive circuit configured to drive the high-side switch, the high-side drive circuit being supplied by a programmable voltage;

a low-side drive circuit configured to drive the low-side switch, the low-side drive circuit being supplied by a fixed voltage;

a programmable voltage generator circuit configured to receive a programming signal and produce the programmable voltage as a function thereof; and

control circuitry coupled to the high-side and low-side drive circuits and configured to:

receive an input command signal;

in response to assertion of the input command signal, assert a drive signal to activate the high-side drive circuit, thereby turning on the high-side switch, clamping the first output pin at the programmable voltage minus a threshold voltage of the high-side switch, and turning off the low-side switch;

monitor a time interval starting from the assertion of the input command signal; and

in response to expiration of the time interval, de-assert the drive signal to activate the low-side drive circuit, thereby turning on the low-side switch, tying the second output pin to the second supply voltage node, and turning off the high-side switch;

whereby the control signal for the power switch is produced at the first and second output pins of the driver circuit.

2 . The driver circuit of claim 1 , wherein the high-side switch includes an n-type metal-oxide-semiconductor transistor having a drain terminal coupled to the first supply voltage node, a source terminal coupled to the first output pin of the driver circuit, and a gate terminal coupled to the high-side drive circuit.

3 . The driver circuit of claim 1 , wherein the programmable voltage is equal to an analog-converted value of the programming signal.

4 . The driver circuit of claim 1 , wherein the programmable voltage generator circuit comprises a low-dropout voltage regulator.

5 . The driver circuit of claim 1 , wherein the control circuitry comprises a logic circuit configured to receive the input command signal and an internal command signal, and produce the drive signal by:

applying AND logic processing to the input command signal and a complement of the internal command signal.

6 . The driver circuit of claim 1 , wherein the control circuitry comprises a logic circuit configured to receive the input command signal and an internal command signal, and produce the drive signal by:

asserting the drive signal in response to the drive signal having been de-asserted, the input command signal having a first rising edge, and the internal command signal being de-asserted; and

de-asserting the drive signal in response to the drive signal having been asserted, and the internal command signal having a second rising edge.

7 . The driver circuit of claim 6 , further comprising:

a delay circuit configured to delay propagation of the internal command signal of an amount equal to the time interval to produce a delayed internal command signal;

a logic gate configured to receive the delayed internal command signal and the input command signal, and de-assert a set signal in response to the delayed internal command signal and the input command signal being both asserted; and

a flip-flop circuit configured to:

receive the set signal at an asynchronous set input terminal;

receive a delayed replica of the input command signal at a clock terminal;

receive a logic low voltage at a data input terminal;

receive an enable signal at an enable input terminal; and

produce the internal command signal at a data output terminal.

8 . The driver circuit of claim 7 , wherein the time interval is between 0 nanoseconds and 70 nanoseconds.

9 . The driver circuit of claim 1 , wherein the low-side drive circuit comprises:

a current generator circuit controlled by the control circuitry to produce a programmable current; and

a diode-connected transistor coupled in series with the current generator circuit to receive the programmable current;

wherein a control terminal of the diode-connected transistor is connected to a control terminal of the low-side switch, whereby the programmable current is mirrored through the low-side switch.

10 . The driver circuit of claim 9 , wherein a value of the programmable current is selectable via a Serial Peripheral Interface (SPI) command.

11 . An electronic system, comprising:

a first high-voltage rail;

a second high-voltage rail;

a stabilization capacitor coupled between the first and second high-voltage rails;

a half-bridge circuit coupled between the first and second high-voltage rails, the half-bridge circuit comprising:

a high-side power switch arranged between the first high-voltage rail and a switching node; and

a low-side power switch arranged between the switching node and the second high-voltage rail; and

a driver circuit comprising:

a high-side switch coupled between a first supply voltage node and a first output pin of the driver circuit;

a low-side switch coupled between a second output pin of the driver circuit and a second supply voltage node;

a high-side drive circuit configured to drive the high-side switch, the high-side drive circuit being supplied by a programmable voltage;

a low-side drive circuit configured to drive the low-side switch, the low-side drive circuit being supplied by a fixed voltage;

a programmable voltage generator circuit configured to receive a programming signal and produce the programmable voltage as a function thereof; and

control circuitry coupled to the high-side and low-side drive circuits and configured to:

receive an input command signal;

in response to assertion of the input command signal, assert a drive signal to activate the high-side drive circuit, thereby turning on the high-side switch, clamping the first output pin at the programmable voltage minus a threshold voltage of the high-side switch, and turning off the low-side switch;

monitor a time interval starting from the assertion of the input command signal; and

in response to expiration of the time interval, de-assert the drive signal to activate the low-side drive circuit, thereby turning on the low-side switch, tying the second output pin to the second supply voltage node, and turning off the high-side switch;

wherein the first and second output pins of the driver circuit are coupled to a control terminal of a first one of the high-side and low-side power switches to provide thereto a control signal; and

wherein during a discharge phase of the stabilization capacitor, one of the high-side and low-side power switches is forced to a steady conductive state and the other of the high-side and low-side power switches receives the control signal from the driver circuit to discharge the stabilization capacitor.

12 . The electronic system of claim 11 , wherein the power switch that is forced to the steady conductive state is the high-side power switch and the power switch that is coupled to the driver circuit is the low-side power switch, and wherein the low-side power switch has a ground terminal coupled to a ground pin of the driver circuit.

13 . The electronic system of claim 11 , further comprising a low-voltage domain and a high-voltage domain, wherein the driver circuit is included together with the half-bridge circuit in the high-voltage domain.

14 . The electronic system of claim 11 , wherein the high-side switch includes an n-type metal-oxide-semiconductor transistor having a drain terminal coupled to the first supply voltage node, a source terminal coupled to the first output pin of the driver circuit, and a gate terminal coupled to the high-side drive circuit.

15 . The electronic system of claim 11 , wherein the programmable voltage is equal to an analog-converted value of the programming signal.

16 . The electronic system of claim 11 , wherein the programmable voltage generator circuit comprises a low-dropout voltage regulator.

17 . The electronic system of claim 11 , wherein the control circuitry comprises a logic circuit configured to receive the input command signal and an internal command signal, and produce the drive signal by:

asserting the drive signal in response to the drive signal having been de-asserted, the input command signal having a first rising edge, and the internal command signal being de-asserted; and

de-asserting the drive signal in response to the drive signal having been asserted, and the internal command signal having a second rising edge.

18 . The electronic system of claim 17 , wherein the driver circuit further comprises:

a delay circuit configured to delay propagation of the internal command signal of an amount equal to the time interval to produce a delayed internal command signal;

a logic gate configured to receive the delayed internal command signal and the input command signal, and de-assert a set signal in response to the delayed internal command signal and the input command signal being both asserted; and

a flip-flop circuit configured to:

receive the set signal at an asynchronous set input terminal;

receive a delayed replica of the input command signal at a clock terminal;

receive a logic low voltage at a data input terminal;

receive an enable signal at an enable input terminal; and

produce the internal command signal at a data output terminal.

19 . The electronic system of claim 11 , wherein the low-side drive circuit comprises:

a current generator circuit controlled by the control circuitry to produce a programmable current; and

a diode-connected transistor coupled in series with the current generator circuit to receive the programmable current;

wherein a control terminal of the diode-connected transistor is connected to a control terminal of the low-side switch, whereby the programmable current is mirrored through the low-side switch.

20 . A vehicle comprising:

an electronic system comprising:

a first high-voltage rail;

a second high-voltage rail;

a stabilization capacitor coupled between the first and second high-voltage rails;

a half-bridge circuit coupled between the first and second high-voltage rails, the half-bridge circuit comprising:

a high-side power switch arranged between the first high-voltage rail and a switching node; and

a low-side power switch arranged between the switching node and the second high-voltage rail; and

a driver circuit comprising:

a high-side switch coupled between a first supply voltage node and a first output pin of the driver circuit;

a low-side switch coupled between a second output pin of the driver circuit and a second supply voltage node;

a high-side drive circuit configured to drive the high-side switch, the high-side drive circuit being supplied by a programmable voltage;

a low-side drive circuit configured to drive the low-side switch, the low-side drive circuit being supplied by a fixed voltage;

a programmable voltage generator circuit configured to receive a programming signal and produce the programmable voltage as a function thereof; and

control circuitry coupled to the high-side and low-side drive circuits and configured to:

receive an input command signal;

in response to assertion of the input command signal, assert a drive signal to activate the high-side drive circuit, thereby turning on the high-side switch, clamping the first output pin at the programmable voltage minus a threshold voltage of the high-side switch, and turning off the low-side switch;

monitor a time interval starting from the assertion of the input command signal; and

in response to expiration of the time interval, de-assert the drive signal to activate the low-side drive circuit, thereby turning on the low-side switch, tying the second output pin to the second supply voltage node, and turning off the high-side switch;

wherein the first and second output pins of the driver circuit are coupled to a control terminal of a first one of the high-side and low-side power switches to provide thereto a control signal; and

wherein during a discharge phase of the stabilization capacitor, one of the high-side and low-side power switches is forced to a steady conductive state and the other of the high-side and low-side power switches receives the control signal from the driver circuit to discharge the stabilization capacitor; and

an electric motor having at least one winding configured to be driven by the half-bridge circuit.