Systems and methods for overcurrent detection for inverter for electric vehicle
A system comprises: an inverter configured to convert DC power from a battery to AC power to drive a motor, wherein the inverter includes: a power switch including a drain terminal, a source terminal, and a gate terminal; and a controller configured to detect a change in current at the source terminal of the power switch using a complex impedance of a metal trace connected to the source terminal of the power switch, and control a gate control signal to the gate terminal based on the detected change in current.
1 . A system comprising:
an inverter configured to convert DC power from a battery to AC power to drive a motor, wherein the inverter includes:
a power switch including a drain terminal, a source terminal, and a gate terminal; and
a controller configured to detect a change in current at the source terminal of the power switch using a complex impedance of a metal trace connected to the source terminal of the power switch, and control a gate control signal to the gate terminal based on the detected change in current, wherein the complex impedance of the metal trace includes:
an inductive component;
a resistive component in series with the inductive component; and
a shunting capacitive component parallel to the inductive component and in series with the resistive component.
2 . The system of claim 1 , wherein the controller is a point-of-use controller on a power module with the power switch.
3 . The system of claim 1 , wherein the drain terminal of the power switch is configured to be connected to a positive terminal of the battery, and the source terminal of the power switch is configured to be connected to a phase terminal of the motor.
4 . The system of claim 1 , wherein the source terminal of the power switch is configured to be connected to a negative terminal of the battery, and the drain terminal of the power switch is configured to be connected to a phase terminal of the motor.
5 . The system of claim 1 , wherein the controller includes:
a current change rate detector connected to the metal trace connected to the source terminal of the power switch, the current change rate detector configured to detect the change in current.
6 . The system of claim 5 , wherein the controller further includes:
an Integrated Gate Driver Computing Engine (IGDCE) connected to the gate terminal, the IGDCE configured to provide the gate control signal to the gate terminal based on the detected change in current.
7 . The system of claim 6 , wherein the IGDCE is configured to receive respective instantaneous, short duration, and long duration current information based on the detected change in current, and provide the gate control signal to the gate terminal based on the respective instantaneous, short duration, and long duration current information.
8 . The system of claim 6 , wherein the current change rate detector is configured to provide a current change rate overcurrent signal to the IGDCE, and the IGDCE is configured to immediately initiate shutting off the power switch using a turn-off gate-drive profile to provide the gate control signal.
9 . The system of claim 6 , wherein the controller further includes:
an M-bit flash thermometer analog-to-digital converter configured to receive an analog signal from the current change rate detector and provide a digital signal to the IGDCE.
10 . The system of claim 6 , wherein the controller further includes:
a low-pass analog filter and sample-and-hold circuit configured to receive an analog signal from the current change rate detector and provide an analog output signal, and
a programmable gain controller and N-bit analog-to-digital converter configured to receive the analog output signal from the low-pass analog filter and sample-and-hold circuit and provide a digital signal to the IGDCE.
11 . The system of claim 1 , 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.
12 . A method comprising:
receiving, by one or more controllers, a sensing signal, including one or more of a voltage signal or a current signal (Is), of a metal trace connected to a source terminal of a power switch, wherein the complex impedance of the metal trace includes:
an inductive component;
a resistive component in series with the inductive component; and
a shunting capacitive component parallel to the inductive component and in series with the resistive component;
determining, by the one or more controllers, a change in current at the source terminal of the power switch based on the received sensing signal;
determining, by the one or more controllers, a gate control signal to a gate terminal of the power switch based on the determined change in current; and
sending, by the one or more controllers, the determined gate control signal to the gate terminal of the power switch.
13 . The method of claim 12 , wherein the one or more controllers is a point-of-use controller on a power module with the power switch.
14 . The method of claim 12 , wherein the determining, by the one or more controllers, the gate control signal includes:
determining, by the one or more controllers, instantaneous current information based on the determined change in current;
determining, by the one or more controllers, short duration current information based on the determined change in current;
determining, by the one or more controllers, long duration current information based on the determined change in current; and
determining, by the one or more controllers, the gate control signal based on one or more of the determined instantaneous, short duration, and long duration current information.
15 . The method of claim 14 ,
wherein the determining, by the one or more controllers, the instantaneous current information includes determining, by the one or more controllers, a current change rate overcurrent signal based on the determined change in current; and
wherein the determining, by the one or more controllers, the gate control signal is based on the determined instantaneous current information, and includes immediately initiating shutting off the power switch using a uniquely computed turn-off gate-drive profile.
16 . The method of claim 14 ,
wherein the determining, by the one or more controllers, the short duration current information includes determining, by the one or more controllers, a fast-responding digital signal based on an analog to digital conversion of the determined change in current; and
wherein the determining, by the one or more controllers, the gate control signal is based on the determined short duration current information, and includes adjusting an operation of the power switch based on the short duration current information.
17 . The method of claim 14 ,
wherein the determining, by the one or more controllers, the long duration current information includes determining, by the one or more controllers, a slow-responding digital signal based on a low-pass filtration and an analog to digital conversion of the determined change in current; and
wherein the determining, by the one or more controllers, the gate control signal is based on the determined long duration current information, and includes adjusting an operation of the power switch based on the long duration current information.
18 . A system comprising:
a power module for an inverter for an electric vehicle, the power module comprising:
a power switch including a drain terminal, a source terminal, and a gate terminal; and
a point-of-use controller configured to detect a change in current at the source terminal of the power switch using a complex impedance of a metal trace connected to the source terminal of the power switch, and control a gate control signal to the gate terminal based on the detected change in current, wherein the complex impedance of the metal trace includes:
an inductive component;
a resistive component in series with the inductive component; and
a shunting capacitive component parallel to the inductive component and in series with the resistive component.
19 . The system of claim 18 , wherein the point-of-use controller includes:
a current change rate detector connected to the metal trace connected to the source terminal of the power switch, the current change rate detector configured to detect the change in current;
an Integrated Gate Driver Computing Engine (IGDCE) connected to the gate terminal, the IGDCE configured to provide the gate control signal to the gate terminal based on the detected change in current, wherein the IGDCE is configured to receive respective instantaneous, short duration, and long duration current information based on the detected change in current, and provide the gate control signal to the gate terminal based on the respective instantaneous, short duration, and long duration current information.
20 . The system of claim 19 , wherein the current change rate detector is configured to provide a current change rate overcurrent signal to the IGDCE, and the IGDCE is configured to immediately initiate shutting off the power switch using a turn-off gate-drive profile to provide the gate control signal, and
wherein the point-of-use controller further includes:
an M-bit flash thermometer analog-to-digital converter configured to receive an analog signal from the current change rate detector and provide a digital signal to the IGDCE,
a low-pass analog filter and sample-and-hold circuit configured to receive an analog signal from the current change rate detector and provide an analog output signal, and
a programmable gain controller and N-bit analog-to-digital converter configured to receive the analog output signal from the low-pass analog filter and sample-and-hold circuit and provide a digital signal to the IGDCE.