System and method for managing battery
Disclosed is a system for managing a battery, the system comprising a first processor, a second processor, an isolator, a sensor unit, a switch unit, etc. The isolator can be disposed between the first processor and the second processor, and the first processor and the second processor can transmit and receive information through the isolator. The first processor can transmit monitoring request signals for a plurality of nodes to the second processor through the isolator, and the second processor can transmit voltage values for the plurality of nodes to the first processor.
1 . A battery management system comprising:
a first processor disposed on a first substrate;
a second processor disposed on a second substrate;
a first isolator disposed between the first substrate and the second substrate;
a sensor unit configured to sense voltages for a plurality of nodes; and
a switch unit disposed between the sensor unit and the second processor and configured to control a current applied to the sensor unit,
wherein the first isolator is configured to transmit information between the first substrate and the second substrate,
wherein the switch unit comprises a plurality of switches connected to the sensor unit and the second processor, and
wherein the sensor unit comprises a plurality of sensors corresponding to the plurality of switches, the plurality of switches configured to control a current applied to each of the plurality of sensors.
2 . The battery management system according to claim 1 , wherein the first processor transmits a monitoring request signal for the plurality of nodes to the second processor through the first isolator,
wherein the second processor controls the switch unit according to the monitoring request signal to obtain voltage values for the plurality of nodes, and
wherein the second processor transmits the voltage values to the first processor through the first isolator.
3 . The battery management system according to claim 1 ,
wherein the plurality of switches are configured to control the current applied to each of the plurality of sensors simultaneously.
4 . The battery management system according to claim 1 , wherein the switch unit is controlled by the second processor,
wherein when the switch unit is turned on, current is connected to the sensor unit, and
wherein when the switch unit is turned off, current connected to the sensor unit is cutoff.
5 . The battery management system according to claim 1 , wherein the plurality of nodes includes at least one of nodes among both ends of a relay and both ends of a fuse.
6 . The battery management system according to claim 5 , wherein the relay transfers high voltage power applied from the battery to at least one of a motor, an output terminal, and a display.
7 . The battery management system according to claim 1 , wherein the first processor operates in a low voltage region and the second processor operates in a high voltage region.
8 . The battery management system according to claim 7 , wherein a ground level of the low voltage region and a ground level of the high voltage region are different from each other, and
wherein voltage used in the low voltage region is 12V or less, and voltage used in the high voltage region is 500V or less.
9 . The battery management system according to claim 1 , wherein the first processor provides information on charging and discharging states of the battery.
10 . A method for managing a battery using the battery management system according to claim 1 , the method comprising:
transmitting a monitoring request signal for the plurality of nodes to the second processor operating in the high voltage region through the first isolator, by the first processor operating in the low voltage region;
obtaining voltage values for the plurality of nodes according to the monitoring request signal by the second processor; and
transmitting the voltage values to the first processor through the first isolator by the second processor.
11 . The battery management system according to claim 1 , wherein the switches of the plurality of switches are metal-oxide-semiconductor field effect transistors (MOSFETs).
12 . The battery management system according to claim 11 , wherein the plurality of switches comprise 13 MOSFETs.
13 . The battery management system according to claim 11 , wherein the battery management system is free from any additional isolators between the first substrate and the second substrate, other than the first isolator.
14 . The battery management system according to claim 1 , wherein the battery management system is free from any additional isolators between the first substrate and the second substrate, other than the first isolator.