Battery heating system, electric vehicle, and in-vehicle system
View Patent ↗A battery heating system includes: a temperature monitoring circuit configured to output a temperature monitoring signal; a voltage conversion circuit configured to receive a first voltage that is input by a power supply or a second voltage that is input by a to-be-heated battery; and a control circuit configured to receive the temperature monitoring signal and output a control signal. The voltage conversion circuit is configured to perform boosting processing or bucking processing on the first voltage based on the control signal or perform boosting processing or bucking processing on the second voltage based on the control signal to enable the to-be-heated battery to receive a charging current from the power supply in a first time segment using the voltage conversion circuit and the to-be-heated battery to output a discharging current to the power supply in a second time segment using the voltage conversion circuit.
1 . A battery heating system comprising:
a temperature monitor configured to:
monitor a temperature of a to-be-heated battery; and
output a temperature monitoring signal indicating the temperature;
an impedance monitor configured to:
monitor an impedance of the to-be-heated battery; and
output an impedance monitoring signal indicating the impedance;
a controller coupled to the temperature monitor and the impedance monitor and configured to:
receive the temperature monitoring signal;
output a control signal based on the temperature monitoring signal;
receive the impedance monitoring signal; and
determine, based on the impedance monitoring signal, a first current value of a maximum charging current or a maximum discharging current; and
a voltage converter coupled to the controller and configured to:
couple to a power supply and the to-be-heated battery;
receive the control signal from the controller;
receive a first voltage from the power supply or a second voltage from the to-be-heated battery; and
perform, based on the control signal, boosting processing or bucking processing on the first voltage or the second voltage to:
enable the power supply to output a positive/negative pulse signal to the to-be-heated battery and to enable the power supply and the to-be-heated battery to alternately charge each other and discharge each other based on the positive/negative pulse signal; and
make a charging current of the to-be-heated battery in a first time interval be less than the maximum charging current or make a discharging current of the to-be-heated battery in a second time interval be less than the maximum discharging current,
wherein the first time interval is for charging the to-be-heated battery in a charging and discharging time period, and
wherein the second time interval is for discharging the to-be-heated battery in the charging and discharging time period.
2 . The battery heating system of claim 1 , wherein the power supply comprises a first part of batteries in a battery pack, and wherein the to-be-heated battery comprises a second part of the batteries.
3 . The battery heating system of claim 1 , wherein the controller is further configured to:
output the control signal when the temperature monitoring signal indicates that the temperature is lower than a preset threshold; and
stop outputting the control signal when the temperature monitoring signal indicates that the temperature is higher than or equal to the preset threshold.
4 . The battery heating system of claim 1 , wherein the voltage converter is further configured to adjust, using the control signal, a first amplitude of the positive/negative pulse signal by adjusting a second amplitude of a relative voltage between the first voltage and the second voltage.
5 . The battery heating system of claim 1 , wherein the voltage converter is further configured to adjust, using the control signal, a frequency of charging/discharging between the power supply and the to-be-heated battery by adjusting a speed of switching a relative voltage between the first voltage and the second voltage.
6 . The battery heating system of claim 1 , wherein the voltage converter is further configured to control, using the control signal, a frequency of charging/discharging between the power supply and the to-be-heated battery to obtain a charging/discharging frequency of the to-be-heated battery that falls within a first frequency range of a dynamic control area.
7 . The battery heating system of claim 6 , wherein the controller is further configured to:
determine, based on the temperature and a preset correspondence between a battery temperature and the first frequency range, a second frequency range of the dynamic control area corresponding to the temperature; and
determine the charging/discharging frequency based on the second frequency range.
8 . The battery heating system of claim 6 , wherein the controller is further configured to:
determine, based on the impedance monitoring signal, a second frequency range of the dynamic control area corresponding to the to-be-heated battery in a current status; and
determine, based on the second frequency range, the charging/discharging frequency.
9 . The battery heating system of claim 1 , wherein the controller is further configured to determine, based on a state of charge and the temperature, a second current value of a current maximum charging current of the to-be-heated battery.
10 . The battery heating system of claim 1 , wherein the controller is further configured to determine, based on the temperature and a state of charge, a second current value of a current maximum discharging current of the to-be-heated battery.
11 . An electric vehicle comprising:
a first battery configured to output a first voltage;
a second battery configured to output a second voltage;
a temperature monitor coupled to the second battery and configured to:
monitor a temperature of the second battery; and
output a temperature monitoring signal indicating the temperature;
an impedance monitor configured to:
monitor an impedance of the first battery or the second battery; and
output an impedance monitoring signal indicating the impedance;
a controller coupled to the temperature monitor and the impedance monitor and configured to:
receive the temperature monitoring signal;
output a control signal based on the temperature monitoring signal;
receive the impedance monitoring signal; and
determine, based on the impedance monitoring signal, a current value of a maximum charging current or a maximum discharging current; and
a voltage converter coupled to the first battery and the second battery and configured to:
receive the first voltage or the second voltage;
receive the control signal from the controller; and
perform, based on the control signal, boosting processing or bucking processing on the first voltage or the second voltage to:
enable the first battery to output a positive/negative pulse signal to the second battery and the first battery and the second battery to alternately charge each other and discharge each other based on the positive/negative pulse signal; and
make a charging current of the second battery in a first time interval be less than the maximum charging current or make a discharging current of the second battery in a second time interval be less than the maximum discharging current,
wherein the first time interval is for charging the second battery in a charging and discharging time period, and
wherein the second time interval is for discharging the second battery in the charging and discharging time period.
12 . The electric vehicle of claim 11 , wherein the controller is further configured to:
output the control signal when the temperature monitoring signal indicates that the temperature is lower than a preset threshold; and
stop outputting the control signal when the temperature monitoring signal indicates that the temperature is higher than or equal to the preset threshold.
13 . The electric vehicle of claim 11 , wherein the voltage converter is further configured to adjust, using the control signal, a first amplitude of the positive/negative pulse signal by adjusting a second amplitude of a relative voltage between the first voltage and the second voltage.
14 . The electric vehicle of claim 11 , wherein the voltage converter is further configured to adjust, using the control signal, a frequency of charging/discharging between the first battery and the second battery by adjusting a speed of switching a relative voltage between the first voltage and the second voltage.
15 . A power supply system comprising:
a power supply configured to output a first voltage;
a to-be-heated battery configured to output a second voltage; and
a battery heating system comprising:
a temperature monitor coupled to the to-be-heated battery and configured to:
monitor a temperature of the to-be-heated battery; and
output a temperature monitoring signal indicating the temperature;
an impedance monitor configured to:
monitor an impedance of the to-be-heated battery; and
output an impedance monitoring signal indicating the impedance;
a controller coupled to the temperature monitor and configured to:
receive the temperature monitoring signal;
output a control signal based on the temperature monitoring signal;
receive the impedance monitoring signal; and
determine, based on the impedance monitoring signal, a current value of a maximum charging current or a maximum discharging current; and
a voltage converter coupled to the power supply, the to-be-heated battery, and the controller and configured to:
receive the first voltage or the second voltage;
receive the control signal from the controller; and
perform, based on the control signal, boosting processing or bucking processing on the first voltage or the second voltage to:
enable the power supply to output a positive/negative pulse signal to the to-be-heated battery and the power supply and the to-be-heated battery to alternately charge each other and discharge each other based on the positive/negative pulse signal; and
make a charging current of the to-be-heated battery in a first time interval be less than the maximum charging current or make a discharging current of the to-be-heated battery in a second time interval be less than the maximum discharging current,
wherein the first time interval is for charging the to-be-heated battery in a charging and discharging time period, and
wherein the second time interval is for discharging the to-be-heated battery in the charging and discharging time period.
16 . The power supply system of claim 15 , wherein the power supply comprises a first part of batteries in a battery pack, and wherein the to-be-heated battery comprises a second part of the batteries.
17 . The power supply system of claim 15 , wherein the controller is further configured to:
output the control signal when the temperature monitoring signal indicates that the temperature is lower than a preset threshold; and
stop outputting the control signal when the temperature monitoring signal indicates that the temperature is higher than or equal to the preset threshold.
18 . The power supply system of claim 15 , wherein the voltage converter is further configured to adjust, using the control signal, a first amplitude of the positive/negative pulse signal by adjusting a second amplitude of a relative voltage between the first voltage and the second voltage.
19 . The power supply system of claim 15 , wherein the voltage converter is further configured to adjust, using the control signal, a frequency of charging/discharging between the power supply and the to-be-heated battery by adjusting a speed of switching a relative voltage between the first voltage and the second voltage.
20 . The power supply system of claim 15 , wherein the voltage converter is further configured to control, using the control signal, a frequency of charging/discharging between the power supply and the to-be-heated battery to obtain a charging/discharging frequency of the to-be-heated battery that falls within a first frequency range of a dynamic control area.