IP Library Granted Patent US 12,220,992
Granted Patent B2
US 12,220,992 · App. 18/152,951 · Granted Feb 11, 2025

Systems and methods for adaptive gate driver for inverter for electric vehicle

Inventors: Seyed R. Zarabadi (Kokomo, IN); Mark Wendell Gose (Kokomo, IN); Peter Allan Laubenstein (Sharpsville, IN)
Assignee: BorgWarner US Technologies LLC
B60L50/60B60L3/003B60L15/007B60L15/08B60L50/40B60L50/51B60L50/64B60L53/20B60L53/22B60L53/62B60R16/02G01R15/20G06F1/08G06F13/4004H01L21/4882H01L23/15H01L23/3672H01L23/3675H01L23/3735H01L23/4006H01L23/467H01L23/473H01L23/49562H01L23/5383H01L24/32H01L24/33H01L25/072H01L25/50H01L29/66553H02J7/0063H02M1/0009H02M1/0054H02M1/08H02M1/084H02M1/088H02M1/123H02M1/32H02M1/322H02M1/327H02M1/4258H02M1/44H02M3/33523H02M7/003H02M7/537H02M7/5387H02M7/53871H02M7/53875H02M7/5395H02P27/06H02P27/08H02P27/085H02P29/024H02P29/027H02P29/68H05K1/145H05K1/181H05K1/182H05K5/0247H05K7/20154H05K7/2039H05K7/2049H05K7/20854H05K7/209H05K7/20927B60L15/20B60L2210/30B60L2210/40B60L2210/42B60L2210/44B60L2240/36G06F2213/40H01L2023/405H01L2023/4087H01L2224/32225H01L2224/32245H01L2224/33181H02J2207/20H02P2207/05H03K19/20H05K2201/042H05K2201/10166
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,220,992
App. No.
18/152,951
Granted
Feb 11, 2025
Kind
B2
Abstract

A system comprises: one or more point-of-use controllers configured to: assert a command-on signal to load a first turn-on gate driver profile; control, based on the loaded first turn-on gate driver profile, a gate driver to begin a first phase of a turn-on operation; receive a first power switch signal based on one or more of a detected voltage or a detected current; perform a comparison of the received first power switch signal to a first turn-on threshold value; load a second gate turn-on driver profile when the comparison indicates the first power switch signal is greater than the first turn-on threshold value; and control, based on the loaded second turn-on gate driver profile, the gate driver to end the first phase of the turn-on operation and begin a second phase of the turn-on operation.

Claims (98)

1. A system comprising:

one or more point-of-use controllers configured to:

assert a command-on signal to load a first turn-on gate driver profile;

control, based on the loaded first turn-on gate driver profile, a gate driver for a power switch for an inverter to begin a first phase of a turn-on operation of the power switch, wherein the first phase of the turn-on operation of the power switch increases a gate signal of the gate driver from a first turn-on value, the first turn-on value corresponding to a fully off state of the power switch, to a second turn-on value less than a full turn-on value, the full turn-on value corresponding to a fully on state of the power switch;

receive a first power switch signal based on one or more of a first detected voltage or a first detected current of the power switch;

perform a comparison of the received first power switch signal to a first turn-on threshold value;

load a second gate turn-on driver profile when the comparison indicates the first power switch signal is greater than the first turn-on threshold value;

control, based on the loaded second turn-on gate driver profile, the gate driver to end the first phase of the turn-on operation of the power switch and begin a second phase of the turn-on operation of the power switch, wherein the second phase of the turn-on operation of the power switch increases the gate signal of the gate driver from the second turn-on value to a third turn-on value greater than the second turn-on value and less than the full turn-on value;

receive a second power switch signal based on one or more of a second detected voltage or a second detected current of the power switch;

perform a comparison of the received second power switch signal to a second turn-on threshold value, wherein the second turn-on threshold value is greater than the first turn-on threshold value;

load a third gate turn-on driver profile when the comparison indicates the second power switch signal is greater than the second turn-on threshold value; and

control, based on the loaded third turn-on gate driver profile, the gate driver to end the second phase of the turn-on operation of the power switch and begin a third phase of the turn-on operation of the power switch.

2. The system of claim 1 , wherein the one or more point-of-use controllers is further configured to:

measure an elapsed time from the beginning of the second phase of the turn-on operation of the power switch until an end of the second phase of the turn-on operation; and

when the elapsed time is longer than a second turn-on gate driver profile time, assert a fault.

3. The system of claim 1 , wherein

the third phase of the turn-on operation of the power switch increases the gate signal of the gate driver from the third turn-on value to a fourth turn-on value greater than the third turn-on value and less than the full turn-on value.

4. The system of claim 3 , wherein the one or more point-of-use controllers is further configured to:

measure an elapsed time from the beginning of the third phase of the turn-on operation of the power switch until an end of the third phase of the turn-on operation; and

when the elapsed time is shorter or longer than a third turn-on gate driver profile time, assert a fault.

5. The system of claim 3 , wherein the one or more point-of-use controllers is further configured to:

receive a third power switch signal based on one or more of a detected voltage or a detected current of the power switch;

perform a comparison of the received third power switch signal to a third turn-on threshold value, wherein the third turn-on threshold value is greater than the second turn-on threshold value;

load a fourth gate turn-on driver profile when the comparison indicates the third power switch signal is greater than the third turn-on threshold value; and

control, based on the loaded fourth turn-on gate driver profile, the gate driver to end the third phase of the turn-on operation of the power switch and begin a fourth phase of the turn-on operation of the power switch, the full turn-on value, wherein the fourth phase of the turn-on operation of the power switch increases the gate signal of the gate driver from the fourth turn-on value to the full turn-on value corresponding to the fully on state of the power switch.

6. A system comprising:

one or more point-of-use controllers configured to:

assert a command-off signal to load a first turn-off gate driver profile;

control, based on the loaded first turn-off gate driver profile, a gate driver for a power switch for an inverter to begin a first phase of a turn-off operation of the power switch, wherein the first phase of the turn-off operation of the power switch decreases a gate signal of the gate driver from a first turn-off value, corresponding to a fully on state of the power switch, to a second turn-off value greater than a full turn-off value, corresponding to a fully off state of the power switch;

receive a first power switch signal based on one or more of a detected voltage or a detected current of the power switch;

perform a comparison of the received first power switch signal to a first turn-off threshold value;

load a second gate turn-off driver profile when the comparison indicates the first power switch signal is less than the first turn-off threshold value; and

control, based on the loaded second turn-off gate driver profile, the gate driver to end the first phase of the turn-off operation of the power switch and begin a second phase of the turn-off operation of the power switch, wherein the second phase of the turn-off operation of the power switch decreases the gate signal of the gate driver from the second turn-off value to a third turn-off value less than the second turn-off value and greater than the full turn-off value.

7. The system of claim 6 , wherein the one or more point-of-use controllers is further configured to:

measure an elapsed time from the beginning of the second phase of the turn-off operation of the power switch until an end of the second phase of the turn-off operation; and

when the elapsed time is shorter or longer than a second turn-off gate driver profile time, assert a fault.

8. The system of claim 6 , wherein the one or more point-of-use controllers is further configured to:

receive a second power switch signal based on one or more of a detected voltage or a detected current of the power switch;

perform a comparison of the received second power switch signal to a second turn-off threshold value, wherein the second turn-off threshold value is less than the first turn-off threshold value;

load a third gate turn-off driver profile when the comparison indicates the second power switch signal is less than the second turn-off threshold value; and

control, based on the loaded third turn-off gate driver profile, the gate driver to end the second phase of the turn-off operation of the power switch and begin a third phase of the turn-off operation of the power switch, wherein the third phase of the turn-off operation of the power switch decreases the gate signal of the gate driver from the third turn-off value to a fourth turn-off value less than the third turn-off value and greater than the full turn-off value.

9. The system of claim 8 , wherein the one or more point-of-use controllers is further configured to:

measure an elapsed time from the beginning of the third phase of the turn-off operation of the power switch until an end of the third phase of the turn-off operation; and

when the elapsed time is shorter or longer than a third turn-off gate driver profile time, assert a fault.

10. The system of claim 8 , wherein the one or more point-of-use controllers is further configured to:

receive a third power switch signal based on one or more of a detected voltage or a detected current of the power switch;

perform a comparison of the received third power switch signal to a third turn-off threshold value, wherein the third turn-off threshold value is less than the second turn-off threshold value;

load a fourth gate turn-off driver profile when the comparison indicates the third power switch signal is less than the third turn-off threshold value; and

control, based on the loaded fourth turn-off gate driver profile, the gate driver to end the third phase of the turn-off operation of the power switch and begin a fourth phase of the turn-off operation of the power switch, the full turn-off value, wherein the fourth phase of the turn-off operation of the power switch decreases the gate signal of the gate driver from the fourth turn-off value to the full turn-off value corresponding to the fully off state of the power switch.

11. A system including one or more point-of-use controllers, the one or more point-of-use controllers comprising:

a gate-to-source amplifier configured to be connected to a power switch to measure a gate-to-source voltage of the power switch;

a digital-to-analog converter configured to receive a digital threshold value and output an analog threshold signal corresponding to the digital threshold value;

a threshold amplifier configured to receive the gate-to-source voltage and the analog threshold signal, and assert a comparison signal to a high state when the gate-to-source voltage is higher than the analog threshold signal;

a logic AND gate configured to receive the comparison signal and an enable signal, and assert a load signal to a high state when the comparison signal and the enable signal are both in a high state; and

a load register configured to load a gate driver profile when the load signal is asserted to a high state,

wherein an operation of the power switch is based on the gate driver profile in the load register.

12. The system of claim 11 , further comprising:

a gate driver configured to be connected to the power switch to operate the power switch; and

one or more controllers configured to operate the gate driver based on the gate driver profile in the load register.

13. The system of claim 12 ,

wherein the gate driver includes:

a first turn-on resistor in series with a first turn-on resistor switch,

a second turn-on resistor in series with a second turn-on resistor switch, wherein the first turn-on resistor and the first turn-on resistor switch are in parallel with the second turn-on resistor and the second turn-on resistor switch,

a first turn-off resistor in series with a first turn-off resistor switch,

a second turn-off resistor in series with a second turn-off resistor switch, wherein the first turn-off resistor and the first turn-off resistor switch are in parallel with the second turn-off resistor and the second turn-off resistor switch,

a first clamp turn-on switch, and

a first clamp turn-off switch; and

wherein the one or more controllers are configured to operate each of the first turn-on resistor switch, second turn-on resistor switch, first turn-off resistor switch, second turn-off resistor switch, first clamp turn-on switch, and first clamp turn-off switch of the gate driver to vary a voltage applied by the gate driver to a gate terminal of the power switch based on the gate driver profile in the load register.

14. The system of claim 13 ,

wherein a resistance value of the first turn-on resistor is different from a resistance value of the second turn-on resistor, and

wherein a resistance value of the first turn-off resistor is different from a resistance value of the second turn-off resistor.

15. The system of claim 12 ,

wherein the gate driver includes:

a first turn-on current source in series with a first turn-on current switch,

a second turn-on current source in series with a second turn-on current switch, wherein the first turn-on current source and the first turn-on current switch are in parallel with the second turn-on current source and the second turn-on current switch,

a first turn-off current sink in series with a first turn-off current switch, and

a second turn-off current sink in series with a second turn-off current switch, wherein the first turn-off current sink and the first turn-off current switch are in parallel with the second turn-off current sink and the second turn-off current switch; and

wherein the one or more controllers are configured to operate each of the first turn-on current switch, second turn-on current switch, first turn-off current switch, and second turn-off current switch of the gate driver to vary a voltage applied by the gate driver to a gate terminal of the power switch based on the gate driver profile in the load register.

16. The system of claim 15 ,

wherein a current value of the first turn-on current source is different from a current value of the second turn-on current source, and

wherein a current value of the first turn-off current sink is different from a current value of the second turn-off current sink.

17. The system of claim 12 ,

wherein the gate driver includes:

a first turn-on resistor in series with a first turn-on resistor switch,

a second turn-on resistor in series with a second turn-on resistor switch, wherein the first turn-on resistor and the first turn-on resistor switch are in parallel with the second turn-on resistor and the second turn-on resistor switch,

a first turn-off resistor in series with a first turn-off resistor switch,

a second turn-off resistor in series with a second turn-off resistor switch, wherein the first turn-off resistor and the first turn-off resistor switch are in parallel with the second turn-off resistor and the second turn-off resistor switch,

a first turn-on current source in series with a first turn-on current switch and in parallel with the second turn-on resistor and the second turn-on resistor switch,

a second turn-on current source in series with a second turn-on current switch, wherein the first turn-on current source and the first turn-on current switch are in parallel with the second turn-on current source and the second turn-on current switch,

a first turn-off current sink in series with a first turn-off current switch and in parallel with the second turn-off resistor and the second turn-off resistor switch, and

a second turn-off current sink in series with a second turn-off current switch, wherein the first turn-off current sink and the first turn-off current switch are in parallel with the second turn-off current sink and the second turn-off current switch; and

wherein the one or more controllers are configured to operate each of the first turn-on resistor switch, second turn-on resistor switch, first turn-off resistor switch, second turn-off resistor switch, first turn-on current switch, second turn-on current switch, first turn-off current switch, and second turn-off current switch of the gate driver to vary a voltage applied by the gate driver to a gate terminal of the power switch based on the gate driver profile in the load register.

18. The system of claim 11 , wherein the gate driver profile is determined based on one or more of an intrinsic characteristic of the power switch, load-current slope and amplitude value, high-voltage battery amplitude, or operating temperature of the power switch.

19. The system of claim 11 , further comprising:

an inverter configured to convert DC power from a battery to AC power to drive a motor, wherein the inverter includes the one or more point-of-use controllers.

20. The system of claim 19 , further comprising:

the battery configured to supply the DC power to the inverter; and

the motor configured to receive the AC power from the inverter to drive the motor.

Assignments (2)
CHANGE OF NAME Recorded Sep 18, 2024
From: DELPHI TECHNOLOGIES IP LIMITED
To: BORGWARNER US TECHNOLOGIES LLC
Reel/Frame 068987/0367 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2023
From: ZARABADI, SEYED R.; GOSE, MARK WENDELL; LAUBENSTEIN, PETER ALLAN
To: DELPHI TECHNOLOGIES IP LIMITED
Reel/Frame 062344/0151 →