This application claims priority to and the benefit of Korean Patent Application No. 10-2020-0131092 filed in the Korean Intellectual Property Office on Oct. 12, 2020, the entire contents of which are incorporated herein by reference.
The described technology relates to a battery apparatus, a battery management system, and a method for diagnosing a connection status.
An electric vehicle or a hybrid vehicle is a vehicle that obtains power by driving a motor mainly using a battery as a power supply. The electric vehicles are being actively researched because they are alternatives that can solve pollution and energy problems of internal combustion vehicles. Rechargeable batteries are used in various external apparatuses other than the electric vehicles.
Recently, as a battery having a high output and a large charging capacity is required, a battery pack in which a plurality of battery modules are connected in series is used. Two adjacent battery modules in the battery pack are connected to each other via a bus-bar. An output terminal of the battery pack is connected via a wire to a switch that controls supply of a current to the battery pack.
Accordingly, when a problem occurs in the connection of the bus-bar or a problem occurs in the wire for connecting the battery pack and an external apparatus, power cannot be supplied through the battery pack.
Some embodiments may provide a battery apparatus, a battery management system, and a method for diagnosing a connection status, for diagnosing a problem related to a connection status of the battery apparatus.
According to an embodiment, a battery apparatus including a battery pack, a switch, a wire, a voltage measuring circuit, and a processor may be provided. The battery pack may include a plurality of battery modules and a bus-bar connecting two battery modules among the plurality of battery modules. The switch may control current supply of the battery pack, and the wire may connect the battery pack and the switch. The voltage measuring circuit may measure a voltage of the bus-bar, a voltage of the battery pack, and voltages of the plurality of battery modules. The processor may diagnose a connection status of the bus-bar and a connection status of the wire based on a current of the battery pack, the voltage of the bus-bar, the voltage of the battery pack, and the voltages of the plurality of battery modules.
In some embodiments, the processor may calculate a resistance of the bus-bar based on the voltage of the bus-bar and the current of the battery pack, and diagnose the connection status of the bus-bar based on the resistance of the bus-bar.
In some embodiments, in response to the resistance of the bus-bar being greater than a threshold, the processor may diagnose that an error has occurred in the connection status of the bus-bar.
In some embodiments, the processor may determine the voltage of the bus-bar based on a voltage between a node at which the bus-bar is connected to one of the two battery modules and a node at which the bus-bar is connected to the other one of the two battery modules.
In some embodiments, the processor may determine a voltage across the wire based on the voltage of the bus-bar, the voltage of the battery pack, and the voltages of the plurality of battery modules, calculate a resistance of the wire based on the voltage across the wire and the current of the battery pack, and diagnose the connection status of the wire based on the resistance of the wire.
In some embodiments, in response to the resistance of the wire being greater than a threshold, the processor may diagnose that an error has occurred in the connection status of the wire.
In some embodiments, the switch may include a first switch and a second switch, and the wire may include a first wire connecting a positive terminal of the battery pack and the first switch, and a second wire connecting a negative terminal of the battery pack and the second switch. In this case, the voltage across the wire may include a voltage across the first wire and a voltage across the second wire.
In some embodiments, the voltage measuring circuit may measure the voltage of the battery pack based on a voltage between a first node to which the first wire is connected to the first switch and a second node to which the second wire is connected to the second switch.
In some embodiments, the processor may determine the voltage across the wire based on a value obtained by subtracting a sum of the voltages of the plurality of battery modules and the voltage of the bus-bar from the voltage of the battery pack.
In some embodiments, the bus-bar may include a plurality of bus-bars, and each of the bus-bars may connect corresponding two battery modules among the plurality of battery modules. In this case, the processor may determine the voltage across the wire based on a value obtained by subtracting a sum of the voltages of the plurality of battery modules and a sum of voltages of the plurality of bus-bars from the voltage of the battery pack.
According to another embodiment, a method of diagnosing a connection status of a battery pack including a plurality of battery modules may be provided. The method may include measuring a current of the battery pack, measuring a voltage of the battery pack, measuring a voltage of each of the plurality of battery modules, measuring a voltage of a bus-bar connecting two battery modules among the plurality of battery modules, and diagnosing a connection status of the bus-bar and a connection status of a wire connected to the battery pack, based on the current of the battery pack, the voltage of the bus-bar, the voltage of the battery pack, and voltages of the plurality of battery modules.
In some embodiments, the diagnosing the connection status may include calculating a resistance of the bus-bar based on the voltage of the bus-bar and the current of the battery pack, and diagnosing the connection status of the bus-bar based on the resistance of the bus-bar.
In some embodiments, the diagnosing the connection status may include determining a voltage across the wire based on the voltage of the bus-bar, the voltage of the battery pack, and the voltage of the plurality of battery modules, calculating a resistance of the wire based on the voltage across the wire and the current of the battery pack, and diagnosing the connection status of the wire based on the resistance of the wire.
In some embodiments, the wire may include a first wire connecting a positive terminal of the battery pack and a first switch for controlling current supply of the battery pack, and a second wire connecting a negative terminal of the battery pack and a second switch for controlling current supply of the battery pack. In this case, the measuring the voltage of the battery pack may include measuring the voltage of the battery pack based on a voltage between a first node to which the first wire is connected to the first switch and a second node to which the second wire is connected to the second switch.
According to yet another embodiment, a battery management system of a battery apparatus including a battery pack, a switch for controlling current supply of the battery pack, and a wire connecting the battery pack and the switch may be provided. The battery pack may include a plurality of battery modules and a bus-bar connecting two battery modules among the plurality of battery modules. The battery management system may include a voltage measuring circuit configured to measure a voltage of the bus-bar, a voltage of the battery pack, and voltages of the plurality of battery modules, and a processor configured to diagnose a connection status of the bus-bar and a connection status of the wire based on a current of the battery pack, the voltage of the bus-bar, the voltage of the battery pack, and the voltages of the plurality of battery modules.
According to some embodiments, a connection state of a bus-bar and a wire may be diagnosed in the battery apparatus.
In the following detailed description, only certain embodiments have been shown and described, simply by way of illustration. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. Accordingly, the drawings and description are to be regarded as illustrative in nature and not restrictive. Like reference numerals designate like elements throughout the specification.
When it is described that an element is “connected” to another element, it should be understood that the element may be directly connected to the other element or connected to the other element through a third element. On the other hand, when it is described that an element is “directly connected” to another element, it should be understood that the element is connected to the other element through no third element.
As used herein, a singular form may be intended to include a plural form as well, unless the explicit expression such as “one” or “single” is used.
In flowcharts described with reference to the drawings, the order of operations or steps may be changed, several operations or steps may be merged, a certain operation or step may be divided, and a specific operation or step may not be performed.
Referring to
The battery apparatus 100 includes a battery pack 110, a positive main switch 121, a negative main switch 122, a voltage measuring circuit 130, a current sensor 140, and a processor 150.
The battery pack 110 has a positive terminal PV(+) and a negative terminal PV(−). The battery pack includes a plurality of battery modules (not shown) connected in series between the positive terminal PV(+) and the negative terminal PV(−), and each battery module includes a plurality of battery cells (not shown) connected in series. In some embodiments, the battery cell may be a rechargeable cell. In this way, the plurality of battery modules may be connected in the battery pack 110 to supply desired power.
The positive main switch 121 is connected between the positive terminal PV(+) of the battery pack 110 and the positive link terminal DC(+) of the battery apparatus 100. The negative main switch 122 is connected between the negative terminal PV(−) of the battery pack 110 and the negative link terminal DC(−) of the battery apparatus 100. The switches 121 and 122 may be controlled by the processor 140 to control an electrical connection between the battery pack 110 and the external apparatus. That is, the switches 121 and 122 may control supply of a current of the battery pack 110. In one embodiment, each of the switches 121 and 122 may be a contactor implemented in a relay. In another embodiment, each of the switches 121 and 122 may be an electrical switch such as a transistor. In some embodiments, the battery apparatus 100 may further include driving circuits (not shown) for controlling the switches 121 and 122, respectively.
The voltage measuring circuit 130 measures a voltage at a predetermined point in the battery apparatus 100. The current sensor 140 measures the current of the battery pack 110. In some embodiments, the current sensor 140 may measure a discharge current of the battery pack 110 (e.g., a current flowing from the positive terminal PV(+) of the battery pack 110 to the positive link terminal DC(+)) or a charging current of the battery pack 110 (e.g., a current flowing from the positive link terminal DC(+) to the positive terminal PV(+) of the battery pack 110). Although the current sensor 140 is shown as being connected between the positive terminal PV(+) and the positive link terminal DC(+) of the battery pack in
The processor 150 diagnoses a connection status of the battery apparatus 100 based on the voltage measured by the voltage measuring circuit 130 and the current measured by the current sensor 140. In some embodiments, the processor 150 may control operations of the switches 121 and 122. The processor 150 may be, for example, a micro controller unit (MCU).
The processor 150 may form a battery management system. In some embodiments, the battery management system may further include the voltage measuring circuit 130 or the current sensor 140.
Referring to
Two adjacent battery modules are connected via a bus-bar. A bus-bar 221 connects the battery module 211 and the battery module 212, a bus-bar 222 connects the battery module 212 and the battery module 213, and a bus-bar 223 connects the battery module 213 and the battery module 214. A first terminal of the bus-bar 221 may be connected to a node BBP1 corresponding to a negative terminal of the battery module 211, and a second terminal of the bus-bar 221 may be connected to a node BBN1 corresponding to a positive terminal of the battery module 212. Further, a first terminal of the bus-bar 222 may be connected to a node BBP2 corresponding to a negative terminal of the battery module 212, and a second terminal of the bus-bar 222 may be connected to a node BBN2 corresponding to a positive terminal of the battery module 213. Furthermore, a first terminal of the bus-bar 223 may be connected to a node BBP3 corresponding to a negative terminal of the battery module 213, and a second terminal of the bus-bar 223 may be connected to a node BBN3 corresponding to a positive terminal of the battery module 214. In some embodiments, the positive terminal of each battery module may be connected to a positive electrode of the first battery cell among a plurality of battery cells, which are included in the corresponding battery module and are connected in series, and the negative terminal of each battery module may be connected to a negative electrode of the last battery cell among the plurality of battery cells, which are included in the corresponding battery module and are connected in series.
In some embodiments, the bus-bars 221, 222, and 223 may be formed of a material having electrical conductivity. The bus-bars 221, 222, and 223 may be formed in various shapes according to a structure of the battery pack 210 or the battery modules 211, 212, 213 and 214. For example, as shown in
The positive terminal PV(+) of the battery pack 210 is connected to a positive main switch 241 through a wire 231, and the negative terminal PV(−) of the battery pack 210 is connected to a negative main switch 242 through a wire 232. In this case, the wire 231 may be connected to the positive main switch 241 at a node W1, and the wire 232 may be connected to the negative main switch 242 at a node W2. In some embodiments, the positive terminal PV(+) of the battery pack 210 may correspond to a positive terminal of the first battery module 211 among the plurality of battery modules 211, 212, 213, and 214 included in the battery pack 210, and the negative terminal PV(−) of the battery pack 210 may correspond to a negative terminal of the last battery module 214 among the plurality of battery modules 211, 212, 213 and 214 included in the battery pack 210. In some embodiments, the wires 231 and 232 may be provided as a wire harness.
When the positive main switch 241 and the negative main switch 242 are closed, a current Ipack flows through the battery pack 210. That is, the current Ipack flows through the plurality of battery modules 211, 212, 213, and 214. In this case, a voltage measuring circuit 250 measures voltages of the bus-bars 221, 222, and 223. The voltage measuring circuit 250 may measure a voltage between the first terminal and the second terminal of each bus-bar as the voltage of the corresponding bus-bar. That is, the voltage measuring circuit 250 may measure a voltage between the both terminals of the bus-bar 221, i.e., a voltage between the two nodes BBP1 and BBN1, as a voltage of the bus-bar 221, measure a voltage between the both terminals of the bus-bar 222, i.e., a voltage between the two nodes BBP2 and BBN2, as a voltage of the bus-bar 222, and measure a voltage between the both terminals of the bus-bar 223, i.e., a voltage between the two nodes BBP3 and BBN3, as a voltage of the bus-bar 223.
In some embodiments, the voltage measuring circuit 250 may include a cell voltage monitoring integrated circuit (IC). In some embodiments, a plurality of cell voltage monitoring ICs respectively corresponding to a plurality of battery modules may be provided. In some embodiments, one cell voltage monitoring IC may correspond to at least two battery modules among the plurality of battery modules. In some embodiments, one of the plurality of battery modules may correspond to two cell voltage monitoring ICs. In this case, one of the cell voltage monitoring ICs may correspond to some battery cells of the corresponding battery module, and the other one of the cell voltage monitoring ICs may correspond to the remaining battery cells of the corresponding battery module.
In some embodiments, the cell voltage monitoring IC may include a plurality of pins respectively connected to a plurality of battery cells of the battery module and two pins respectively connected to both terminals of the bus-bar. In this case, the cell voltage monitoring IC may measure the voltage of the bus-bar through the two pins respectively connected to both terminals of the bus-bar. Further, the cell voltage monitoring IC may measure a voltage of the battery cell through pins connected to the positive and negative electrodes of the battery cell.
The processor (e.g., 150 in
Next, a method of diagnosing a connection status in a battery apparatus according to various embodiments is described with reference to
Referring to
Further, a voltage measuring circuit 250 measures a voltage of a bus-bar (e.g., 221, 222, or 223 in
Next, the processor 150 calculates a resistance of each of the bus-bars 221, 222, and 223 based on the current of the battery pack 210 and the voltage of each of the bus-bars 221, 222, and 223 at S430. In some embodiments, as shown in
In Equation 1, Rbusbar denotes the resistance of the busbar, Vbusbar denotes the voltage of the busbar, and Ipack denotes the current of the battery pack.
The processor 150 diagnoses a connection status of the battery apparatus based on the resistance of each bus-bar and a resistance of a wire at S440. In some embodiments, the processor 150 may determine whether the resistance of each bus-bar is greater than a threshold, and if there is a bus-bar having the resistance greater than the threshold, the processor 150 may diagnose that an error has occurred in the connection status of the corresponding bus-bar. In some embodiments, when diagnosing that the error has occurred in the connection status of the bus-bar, the processor 150 may transmit an error signal to an external apparatus (e.g., a vehicle). Accordingly, a user (e.g., a driver) of the external apparatus may check the error and perform an action corresponding to the error.
On the other hand, as shown in
Referring to
Further, a voltage measuring circuit (e.g., 250 in
Furthermore, the voltage measuring circuit 250 measures a voltage of the battery pack 210 and voltages of battery modules (e.g., 211, 212, 213, and 214 in
The processor 150 calculates a resistance of each of the bus-bars 221, 222, and 223 based on the current of the battery pack 210 and the voltage of each of the bus-bars 221, 222, and 223 at S530. In some embodiments, the processor 150 may calculate the resistance of each of the bus-bars 221, 222, and 223 as described with reference to S430 of
Further, the processor 150 calculates a voltage across the wires 231 and 232 based on the current of the battery pack 210, the voltage of the battery pack 210, and the voltages of the battery modules 211, 212, 213 and 214 at S540. In some embodiments, the voltage measuring circuit 250 may measure the voltage of the battery pack 210 by measuring a voltage of a node (e.g., W1 in
In Equation 2, Vwire denotes the voltage across the two wires, Vpack denotes the voltage of the battery pack, Vmodule(i) denotes the voltage of the i-th battery module, N denotes the number of battery modules included in the battery pack, Vbusbar(i) denotes the voltage of the i-th bus-bar, and M denotes the number of bus-bars included in the battery pack. In some embodiments, M may be equal to (N−1).
Furthermore, the processor 150 calculates a resistance of the wires 231 and 232 based on the current of the battery pack 210 and the voltage across the wires 231 and 232 at S550. In some embodiments, since the current of the battery pack 210 flows through the wires 231 and 232 as shown in
In Equation 3, Rwire denotes the resistance of the two wires, Vwire denotes the voltage across the two wires, and Ipack denotes the current of the battery pack.
The processor 150 diagnoses a connection status of the battery apparatus based on the resistance of each bus-bar and the resistance of the wires at S560. In some embodiments, the processor 150 may determine whether the resistance of each bus-bar is greater than a threshold, and if there is a bus-bar having the resistance greater than the threshold, the processor 150 may diagnose that an error has occurred in the connection status of the corresponding bus-bar. Further, the processor 150 may determine whether the resistance of the wires is greater than a threshold, and if the resistance of the wires is greater than the threshold value, the processor 150 may diagnose that an error has occurred in the connection status of the wires. In some embodiments, when diagnosing that the error has occurred in the connection status of the bus-bar or wires, the processor 150 may transmit an error signal to an external apparatus (e.g., a vehicle). Accordingly, a user (e.g., a driver) of the external apparatus may check the error and perform an action corresponding to the error.
According to the above-described embodiments, not only the connection status of the bus-bar but also the connection status of the wires connecting the battery pack to the main switches can be diagnosed, so that the connection status of the battery apparatus can be accurately diagnosed.
While this invention has been described in connection with what is presently considered to be practical embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Number | Date | Country | Kind |
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10-2020-0131092 | Oct 2020 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2021/012928 | 9/23/2021 | WO |