BATTERY DISCONNECT UNIT, BATTERY SYSTEM

20230238808 ยท 2023-07-27

    Inventors

    Cpc classification

    International classification

    Abstract

    A battery disconnect unit (100) for disconnecting a battery system (200) comprising at least one battery cell (5), from an electrical system (300). The battery disconnect unit (100) comprises a first terminal (2), a second terminal (4), a first switching element (S1), a second switching element (S2) and a current sensing resistor (6). A first connection of the first switching element (S1) is connected to a first connection of the current sensing resistor (6), and a second connection of the first switching element (S1) is connected to the first terminal (2). A first connection of the second switching element (S2) is connected to a second connection of the current sensing resistor (6), and a second connection of the second switching element (S2) is connected to the second terminal (4).

    Claims

    1. A battery disconnect unit (100) for disconnecting a battery system (200) having at least one battery cell (5) from an electrical system (300), the battery disconnect unit (100) comprising: a first terminal (2), a second terminal (4), a first switching element (S1), a second switching element (S2), and a current sensing resistor (6), wherein a first connection of the first switching element (S1) is connected to a first connection of the current sensing resistor (6), a second connection of the first switching element (S1) is connected to the first terminal (2), a first connection of the second switching element (S2) is connected to a second connection of the current sensing resistor (6), and a second connection of the second switching element (S2) is connected to the second terminal (4).

    2. The battery disconnect unit (100) according to claim 1, further comprising a driver module (20) for actuating the first and the second switching element (S1, S2).

    3. The battery disconnect unit (100) according to claim 1, further comprising a short circuit detection circuit (50) which, in the case of an overcurrent, is triggered and accesses the driver module (20).

    4. The battery disconnect unit (100) according to claim 1, further comprising a clamping circuit (60) configured to protect the first and the second switching element (S1, S2) from overvoltage.

    5. The battery disconnect unit (100) according to claim 1, further comprising an auxiliary current measuring instrument (40) for the plausibility check of the current measured by the current sensing resistor (6).

    6. The battery disconnect unit (100) according to claim 5, wherein the auxiliary current measuring instrument (40) includes a Hall sensor.

    7. The battery disconnect unit (100) according to claim 1, wherein the first and the second switching element (S1, S2) are respectively designed as semiconductor switches.

    8. The battery disconnect unit (100) according to claim 1, further comprising a monitoring module (80) which comprises outputs for actuating the driver module (20) and is configured to perform current, voltage, and/or temperature T measurements.

    9. The battery disconnect unit (100) according to claim 8, wherein the monitoring module (80) includes an application-specific integrated circuit.

    10. The battery disconnect unit (100) according to claim 8, wherein the monitoring module (80) is configured to perform diagnostics of the first and the second switching element (S1, S2).

    11. A battery system (200) comprising at least one battery cell (5) and a battery disconnect unit (100) according to claim 1.

    12. A vehicle comprising a battery disconnect unit (100) for disconnecting a battery system (200) having at least one battery cell (5) from an electrical system (300), the battery disconnect unit (100) comprising: a first terminal (2), a second terminal (4), a first switching element (S1), a second switching element (S2), and a current sensing resistor (6), wherein a first connection of the first switching element (Si) is connected to a first connection of the current sensing resistor (6), a second connection of the first switching element (Si) is connected to the first terminal (2), a first connection of the second switching element (S2) is connected to a second connection of the current sensing resistor (6), and a second connection of the second switching element (S2) is connected to the second terminal (4).

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0030] Embodiments of the invention are explained in more detail with reference to the drawings and the following description.

    [0031] Shown are:

    [0032] FIG. 1 a schematic representation of a battery disconnect unit according to a first embodiment,

    [0033] FIG. 2 a schematic representation of a battery disconnect unit according to a second embodiment, and

    [0034] FIG. 3 a schematic representation of an internal structure of the battery disconnect unit shown in FIG. 2.

    DETAILED DESCRIPTION

    [0035] In the following description of the embodiments of the invention, identical or similar elements are denoted by identical reference signs, wherein a repeated description of these elements is dispensed with in individual cases. The figures show the subject matter of the invention only schematically.

    [0036] FIG. 1 shows a schematic representation of a battery disconnect unit 100 according to a first embodiment.

    [0037] FIG. 1 shows that the battery disconnect unit 100 comprises a first terminal 2, a second terminal 4, a first switching element S1, a second switching element S2 and a current sensing resistor 6, also referred to as a shunt. The switching elements S1, S2 each have three connections, wherein a switching path is formed between a first connection and a second connection and can be actuated by means of a third connection.

    [0038] The first switching element 51 and the second switching element S2 are in the present case designed as field effect transistors. The switching elements S1, S2 each comprise a SOURCE connection, a DRAIN connection and a GATE connection. The switching elements S1, S2 are connected such that in each case, the first connection is the SOURCE connection, the second connection is the DRAIN connection, and the third connection is the GATE connection.

    [0039] In the present case, the switching elements S1, S2 are n-channel enhancement-type MOSFETs. The switching elements S1, S2 each comprise a switching path as well as an inverse diode connected in parallel to the switching path. The inverse diode, also referred to as the body diode, is produced in each MOSFET due to the internal structure thereof and is not an explicit component.

    [0040] A first connection of the first switching element S1 is connected to a first connection of the current sensing resistor 6. A second connection of the first switching element S1 is connected to the first terminal 2. A first connection of the second switching element S2 is connected to a second connection of the current sensing resistor 6, and a second connection of the second switching element S2 is connected to the second terminal 4. The first and the second switching element S1, S2 are thus connected in anti-series via the current sensing resistor 6.

    [0041] FIG. 1 furthermore shows that the first and the second switching element S1, S2 and the current sensing resistor 6 are arranged very compactly in a housing 8.

    [0042] Advantageously, the switching elements S1, S2 can be located on a cooling carrier, and the integrated current sensing resistor 6 can thus also be cooled accordingly. Moreover, the current sensing resistor 6 can determine a reference potential for the measurements of high voltages, and an intelligent diagnostic network can thus be implemented.

    [0043] The battery disconnect unit 100 can be used in the positive pole path or negative pole path of the battery system 200 (cf. FIG. 3). The battery disconnect unit 100 may also comprise further sensors, such as temperature sensors and voltage sensors.

    [0044] FIG. 2 shows a schematic representation of a battery disconnect unit 100 according to a second embodiment.

    [0045] FIG. 2 shows that the battery disconnect unit 100 comprises a first terminal 2 and a second terminal 4, which are shown as a bus bar in the present case. The battery disconnect unit 100 further comprises a housing 8 on which a main plug 10 and an additional plug 12 are arranged. The main plug 10 comprises a supply interface 14 for the energy supply of the battery disconnect unit 100 and a communication interface 16 for the communication with other control devices, such as a battery control unit. For example, the supply interface 14 may be connected to the terminal 30 (T30). The supply voltage is converted by internal voltage transformers to the appropriate supply voltages for the respective electronic components. The additional plug 12 comprises a plurality of additional measuring channels 18 for measuring high voltages, such as a pack voltage of the battery system 200 and a voltage of an electrical system 300 connected to the battery system 200 (cf. FIG. 3), such as an on-board power supply or a charger.

    [0046] FIG. 2 further shows that the battery disconnect unit 100 can be offered in a very compact design.

    [0047] FIG. 3 shows a schematic representation of an example of an internal structure of the battery disconnect unit 100 shown in FIG. 2.

    [0048] As shown in FIG. 3, the battery disconnect unit 100 proposed according to the invention is used in a battery system 200. The battery system 200 comprises a plurality of battery cells 5, which in the present case are connected in series to one another. The plurality of battery cells 5 may also be connected in parallel to one another. Preferably, a certain number of battery cells 5 may be combined to form a battery module or a battery pack. A plurality of battery modules or a plurality of battery packs may in turn be connected in series and/or in parallel.

    [0049] The battery system 200 is connected to an electrical system 300, which can for example be designed as an on-board power supply of a vehicle or as a charger.

    [0050] The battery disconnect unit 100 serves to disconnect the battery system 200 from the electrical system 300. The battery disconnect unit 100 also serves to connect the battery system 200 to the electrical system 300.

    [0051] The battery disconnect unit 100 comprises a first terminal 2, a second terminal 4, a first switching element S1, a second switching element S2 and a current sensing resistor 6. The switching elements S1, S2 each have three connections, wherein a switching path is formed between a first connection and a second connection and can be actuated by means of a third connection.

    [0052] The first switching element Si and the second switching element S2 are in the present case designed as field effect transistors. The switching elements S1, S2 each comprise a SOURCE connection, a DRAIN connection and a GATE connection. The switching elements S1, S2 are connected such that in each case, the first connection is the SOURCE connection, the second connection is the DRAIN connection, and the third connection is the GATE connection.

    [0053] In the present case, the switching elements S1, S2 are n-channel enhancement-type MOSFETs. The switching elements S1, S2 each comprise a switching path as well as an inverse diode connected in parallel to the switching path. The inverse diode, also referred to as the body diode, is produced in each MOSFET due to the internal structure thereof and is not an explicit component.

    [0054] A first connection of the first switching element Si is connected to a first connection of the current sensing resistor 6. A second connection of the first switching element S1 is connected to the first terminal 2. A first connection of the second switching element S2 is connected to a second connection of the current sensing resistor 6, and a second connection of the second switching element S2 is connected to the second terminal 4. The first and the second switching element S1, S2 are thus connected in anti-series via the current sensing resistor 6.

    [0055] The battery disconnect unit 100 further comprises a driver module 20 for actuating the first and the second switching element S1, S2.

    [0056] The battery disconnect unit 100 further comprises a current measuring module 30 coupled to the current sensing resistor 6. For example, the current measuring module 30 may comprise an analog front end (AFE) and an analog-digital converter (ADC). For example, the AFE is designed as an operational amplifier and is configured to convert the small differential voltage that drops at the current sensing resistor 6 into a voltage usable by the ADC.

    [0057] Advantageously, the battery disconnect unit 100 further comprises an auxiliary current measuring instrument 40 for the plausibility check of the current measured by the current sensing resistor 6. This auxiliary current measuring instrument 40 may also be a redundancy to the current sensing resistor 6 and may only be used in case of doubt. Preferably, the auxiliary current measuring instrument 40 is designed as a Hall sensor.

    [0058] The battery disconnect unit 100 further comprises a short circuit detection circuit 50, which is coupled to the current measuring module 30 and, in the case of an overcurrent, is triggered and accesses the driver module 20.

    [0059] Furthermore, the battery disconnect unit 100 comprises a clamping circuit 60 configured to protect the first and the second switching element S1, S2 from overvoltage. In the present case in FIG. 3, the clamping circuit 60 is connected to the second connection of the first switching element S1, to the second connection of the second switching element S2 and to the second connection of the current sensing resistor 6 or the first connection of the second switching element S2.

    [0060] The battery disconnect unit 100 according to FIG. 3 and proposed according to the invention further comprises a monitoring module 80 which comprises outputs for actuating the driver module 20 and is configured to perform current, voltage and/or temperature measurements. In the present case, the monitoring module 80 is a finite state machine. In the present case, this monitoring module 80 is controlled by a battery control unit (not shown) via daisy chain communication 90. Preferably, the monitoring module 80 is designed as an application-specific integrated circuit.

    [0061] The overkeeping module 80 is configured to perform diagnostics of the first and the second switching element S1, S2. In comparison to the voltage at the second connections of the respective switching elements S1, S2, a negative voltage V.sup.CS is in this case generated at the first connection of the second switching element S2 during the diagnostics. Alternatively, the negative voltage V.sub.CS may also be generated at the first connection of the first switching element S1. The voltage V1 at the second connection of the first switching element S1, the voltage V2 at the second connection of the second switching element S2, the voltage V.sub.CS at the first connection of the second switching element S2, and the voltage V.sub.clamp at the clamping circuit 60 are sensed and then transmitted via the monitoring module 80 by means of a communication interface 16 (cf. FIG. 2) to, for example, a battery management system and evaluated in order to make a statement about the state of the first and the second switching element S1, S2. The temperature T of, for example, the switching elements S1, S2, the environment, or the battery packs or battery cells 5 are also sensed.

    [0062] FIG. 3 also shows that the monitoring module 80 is also connected to the auxiliary current measuring instrument 40 and the current measuring module 30.

    [0063] The invention is not limited to the exemplary embodiments described herein and the aspects highlighted therein. Rather, a variety of modifications, which are within the scope of activities of the person skilled in the art, is possible within the range specified by the claims.