In-vehicle shutoff control device

The in-vehicle cutoff control device addresses surge voltage issues by using a transformer to insulate and boost/step down voltages, ensuring reliable cutoff operations and minimizing device size, thus preventing surge voltages from affecting low-voltage batteries.

JP7769893B2Active Publication Date: 2025-11-14AUTONETWORKS TECH LTD +2
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Patent Information

Application Number
JP2024530210
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-30
Publication Date
2025-11-14
Estimated Expiration
2042-06-30

AI Technical Summary

Technical Problem

Vehicle-mounted power supply systems face the risk of surge voltages generated during circuit breaker operations potentially flowing into low-voltage batteries, especially when short circuits are detected, which can cause malfunctions.

Method used

An in-vehicle cutoff control device with a high-voltage battery insulated from the low-voltage battery, a cutoff unit, current detection, and a drive unit that switches to a cutoff state upon detecting a short circuit, using a transformer to boost or step down voltage and insulate the low-voltage battery from surge voltages.

Benefits of technology

Effectively prevents surge voltages from entering the low-voltage battery side, maintaining the cutoff state reliably and minimizing the device's size while enhancing insulation between batteries.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An on-vehicle shutoff control device (10) has a conduction path (first conduction path (11)), a voltage generation unit (13), a short circuit detection unit (14), and a driving unit (15). The conduction path (first conduction path (11)) is insulated from a low voltage battery (3) and a voltage lower than an output voltage of a high voltage battery (5) is applied to the conduction path (first conduction path (11)). The voltage generation unit (13) generates a voltage to be applied to the conduction path (first conduction path (11)) on the basis of an output voltage of the low voltage battery (3) or the high voltage battery (5). The short circuit detection unit (14) is driven by receiving electric power from the conduction path (first conduction path (11)). The driving unit (15) operates by receiving electric power from the conduction path (first conduction path (11)) and outputs a shutoff signal for switching a shutoff unit (7) to a shutoff state. A detected signal is input to the short circuit detection unit (14) and the short circuit detection unit (14) detects a short circuit of an electric power path (6) on the basis of the detected signal. When the short circuit detection unit (14) detects the short circuit of the electric power path (6), the driving unit (15) switches the shutoff unit (7) to the shutoff state.
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Description

[Technical Field]

[0001] The present disclosure relates to an on-board cutoff control device. [Background technology]

[0002] Patent Document 1 discloses a drive circuit. This drive circuit includes a power MOSFET and is capable of causing the power MOSFET to perform a cutoff operation. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 62-21322 Summary of the Invention [Problem to be solved by the invention]

[0004] Some vehicle-mounted power supply systems include a low-voltage battery, a high-voltage battery, a power path to which power is supplied from the high-voltage battery, and a circuit breaker capable of interrupting the power path. For example, when a drive circuit such as that disclosed in Patent Document 1 is used to cause the circuit breaker to perform a circuit breaker operation, there is a concern that a surge voltage may be generated near the circuit breaker during the circuit breaker operation, and that voltage resulting from the surge voltage may flow into the low-voltage battery. Furthermore, when a short circuit in the power path is detected based on the value of current flowing through the power path and the drive circuit is operated, there is a concern that voltage resulting from the surge voltage may flow into the low-voltage battery via the short-circuit detection unit that detects the short circuit or the drive circuit.

[0005] An object of the present disclosure is to provide a technology that can easily prevent a surge voltage generated due to the interruption operation of a circuit breaker from entering the low-voltage battery side. [Means for solving the problem]

[0006] The in-vehicle cutoff control device according to the present disclosure includes: A low voltage battery; a high-voltage battery insulated from the low-voltage battery and having an output voltage higher than that of the low-voltage battery; a power path to which power based on the high-voltage battery is supplied; a cutoff unit that is provided in the power path and that switches from a conductive state that allows current to flow through the power path to a cutoff state that cuts off the current; a current detection unit that outputs a detection signal that can identify the value of a current flowing through the power path; An in-vehicle cut-off control device used in an in-vehicle system having a conductive path insulated from the low-voltage battery and having a voltage lower than the output voltage of the high-voltage battery applied thereto; a voltage generating unit that generates a voltage to be applied to the conductive path based on an output voltage of the low-voltage battery or the high-voltage battery; a short circuit detection unit that receives power from the conductive path and is driven; a drive unit that receives power from the conductive path, operates, and outputs a cutoff signal to switch the cutoff unit to the cutoff state; and the short circuit detection unit receives the detection signal and detects a short circuit in the power path based on the detection signal; The drive unit switches the cutoff unit to the cutoff state when the short-circuit detection unit detects a short circuit in the power path. [Effects of the Invention]

[0007] The technology disclosed herein makes it easy to prevent surge voltages generated due to the interruption operation of the interrupter from entering the low-voltage battery side. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a block diagram illustrating a schematic example of an in-vehicle system including an in-vehicle cutoff control device according to the first embodiment. [Figure 2] FIG. 2 is a block diagram illustrating a schematic example of an in-vehicle system including an in-vehicle cutoff control device according to the second embodiment. [Figure 3]FIG. 3 is a block diagram illustrating a schematic example of an in-vehicle system including an in-vehicle cutoff control device according to the third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] In the following, embodiments of the present disclosure are listed and illustrated.

[0010] [1] A low-voltage battery, a high-voltage battery insulated from the low-voltage battery and having an output voltage higher than that of the low-voltage battery; a power path to which power based on the high-voltage battery is supplied; a cutoff unit that is provided in the power path and that switches from a conductive state that allows current to flow through the power path to a cutoff state that cuts off the current; a current detection unit that outputs a detection signal that can identify the value of a current flowing through the power path; An in-vehicle cut-off control device used in an in-vehicle system having a conductive path insulated from the low-voltage battery and having a voltage lower than the output voltage of the high-voltage battery applied thereto; a voltage generating unit that generates a voltage to be applied to the conductive path based on an output voltage of the low-voltage battery or the high-voltage battery; a short circuit detection unit that receives power from the conductive path and is driven; a drive unit that receives power from the conductive path, operates, and outputs a cutoff signal to switch the cutoff unit to the cutoff state; and the short circuit detection unit receives the detection signal and detects a short circuit in the power path based on the detection signal; The drive unit switches the cutoff unit to the cutoff state when the short-circuit detection unit detects a short circuit in the power path. On-board shutoff control device.

[0011] The above-mentioned on-board cutoff control device [1] is used in an on-board system in which a low-voltage battery and a high-voltage battery are insulated from each other. The above-mentioned on-board cutoff control device has a short-circuit detection unit that detects a short circuit in the power path to which power is supplied from the high-voltage battery. Furthermore, the above-mentioned on-board cutoff control device has a drive unit that switches the cutoff unit to a cutoff state when the short-circuit detection unit detects a short circuit in the power path. The short-circuit detection unit and drive unit are driven by power from a conductive path insulated from the low-voltage battery. Therefore, according to the above-mentioned on-board cutoff control device, even if a surge voltage generated due to the cutoff operation of the cutoff unit enters the short-circuit detection unit or drive unit, it is easy to prevent it from entering the low-voltage battery side.

[0012] [2] The voltage generating unit has a transformer that insulates the low-voltage battery from the high-voltage battery and the conductive path, and boosts the voltage based on the low-voltage battery and applies it to the conductive path. The vehicle-mounted cut-off control device described in [1].

[0013] The above [2] vehicle-mounted cutoff control According to the device, the transformer can improve the insulation between the low-voltage battery and the high-voltage battery and the conductive path. Moreover, the above-mentioned on-board cutoff control device can generate the voltage to be applied to the conductive path using the low-voltage battery.

[0014] [3] The transformer has a first winding section and a second winding section that are insulated from each other, the voltage generating unit further includes a switching unit that switches between an allowable state that allows current to flow from the low-voltage battery to the first winding unit and a release state that releases the allowable state, and a control unit that controls the switching unit; the conductive path is electrically connected to the second winding portion, the interrupter has a current input section insulated from the power path, the drive unit includes a capacitor that receives power from the conductive path, and a switch that is provided between the conductive path and the current input unit; a charging current is supplied to the capacitor via the second winding and the conductive path in response to the switching unit repeatedly switching between the permitting state and the releasing state, In response to the on-operation of the switch, the capacitor is discharged, and a drive current flows in the current input section. The vehicle-mounted cut-off control device described in [2].

[0015] The above [3] vehicle-mounted cutoff control The device can input the discharge current from the capacitor to the current input section, rather than inputting only the current directly supplied from the second winding section to the current input section. Therefore, the above-mentioned on-vehicle cutoff control device can achieve both a configuration that reduces the size of the transformer and a configuration that can input a certain amount of current to the current input section, making it easy to miniaturize the configuration that can drive the cutoff section while improving the insulation between the low-voltage battery and the high-voltage battery.

[0016] [4] The voltage generating unit has a step-down unit that steps down the voltage based on the high-voltage battery and applies the resulting voltage to the conductive path. The vehicle-mounted cut-off control device described in [1].

[0017] The above [4] vehicle-mounted cutoff control The device may utilize a high voltage battery to generate the voltage applied to the conductive path.

[0018] [5] The interruption unit has a current input unit insulated from the power path, and switches to the interruption state in response to the drive current supplied from the drive unit flowing into the current input unit, and maintains the interruption state even if the supply of the drive current is stopped after switching to the interruption state. An on-vehicle cut-off control device according to any one of [1] to [4].

[0019] The above [5] vehicle-mounted cutoff controlAccording to the device, even if, after the cutoff unit switches to the cutoff state, voltage caused by a surge voltage enters the drive unit, causing the drive unit to malfunction and causing the supply of drive current from the drive unit to stop, the cutoff state of the cutoff unit can be maintained more reliably.

[0020] [6] The interrupting unit is a pyrotechnic circuit breaker that interrupts the power path when the drive current flows through the current input unit. The vehicle-mounted cut-off control device described in [5].

[0021] Above [6] In-vehicle cutoff control According to the device, a drive current can be supplied to the current input section to cause the pyrotechnic circuit breaker to perform a circuit breaker operation. This type of pyrotechnic circuit breaker is prone to generating a surge voltage near the pyrotechnic circuit breaker when it breaks, but the above-mentioned on-board circuit breaker control device makes it difficult for the influence of such a surge voltage to reach the low-voltage battery side.

[0022] [7] A voltage detection unit that detects the voltage of the power path; a determination unit that outputs an abnormality signal when the voltage detected by the voltage detection unit becomes a predetermined abnormal value, The determination unit receives power from the conductive path to operate. [1] to [6], the vehicle-mounted cutoff control device described in any one of [1] to [6].

[0023] Above [7] In-vehicle cutoff control According to the device, a configuration for outputting an abnormality signal when the voltage of the power path reaches an abnormal value can be realized by utilizing power supplied from the conductive path.

[0024] First Embodiment 1-1. Overview of In-Vehicle System 1 1 shows an in-vehicle system 1 having an in-vehicle cutoff control device 10 according to a first embodiment. The in-vehicle system 1 is a system mounted on a vehicle and capable of supplying power to various loads. The vehicle on which the in-vehicle system 1 is mounted may be, for example, an electric vehicle, a plug-in hybrid vehicle, a hybrid vehicle, or any other type of vehicle.

[0025] As shown in Figure 1, the vehicle system 1 has a low-voltage battery 3, a low-voltage power path 4, a high-voltage battery 5, a power path 6, a circuit breaker 7, a current detection unit 8, an on-board circuit breaker control device 10, and a start switch 90.

[0026] For example, if the vehicle is a plug-in hybrid vehicle or a hybrid vehicle, the start switch 90 corresponds to an ignition switch that starts the engine, or if the vehicle is an electric vehicle, it corresponds to a power switch that starts the EV system.

[0027] The low-voltage battery 3 is an in-vehicle storage battery, and may be a secondary battery such as a lead-acid battery or a lithium-ion battery, or may be any other type of storage battery. When fully charged, the low-voltage battery 3 applies a DC voltage to the low-voltage power path 4. When fully charged, the output voltage of the low-voltage battery 3 is greater than 0 V, for example, 12 V.

[0028] The low-voltage side power path 4 is an electrical path through which power is transmitted from the low-voltage battery 3. The use of the low-voltage side power path 4 is not limited, but for example, it can be configured as an electrical path that supplies power to a power supply target (not shown) (e.g., an ECU (Electronic Control Unit), a low-voltage load, etc.). The low-voltage side power path 4 has a first low-voltage side power path 4A electrically connected to the positive electrode of the low-voltage battery 3, and a second low-voltage side power path 4B electrically connected to the negative electrode of the low-voltage battery 3. The output voltage of the low-voltage battery 3 is applied between the first low-voltage side power path 4A and the second low-voltage side power path 4B.

[0029] The high-voltage battery 5 is an in-vehicle storage battery, and may be a secondary battery such as a lithium-ion battery, or may be another type of storage battery. The high-voltage battery 5 is insulated from the low-voltage battery 3. When fully charged, the high-voltage battery 5 applies a DC voltage to the power path 6. When fully charged, the output voltage of the high-voltage battery 5 is greater than 0 V and greater than the output voltage of the low-voltage battery 3 when fully charged, for example, 400 V.

[0030] The power path 6 is an electrical path through which power is transmitted from the high-voltage battery 5. The power path 6 may be used for any purpose, including, for example, as an electrical path for supplying power to an in-vehicle high-voltage load (such as an inverter). The power path 6 includes a first power path 6A and a second power path 6B. One end of the first power path 6A is electrically connected to the positive electrode of the high-voltage battery 5, and the other end is electrically connected to one side of the circuit breaker 7. One end of the second power path 6B is electrically connected to the negative electrode of the high-voltage battery 5, and the other end is electrically connected to the other side of the circuit breaker 7. The second power path 6B is electrically connected to ground. The output voltage of the high-voltage battery 5 is applied between the first power path 6A and the second power path 6B. A voltage higher than the voltage applied to the low-voltage power path 4 is applied to the power path 6. The first power path 6A and the second power path 6B are short-circuited to each other when the circuit breaker 7 is in a conductive state, and are insulated from each other when the circuit breaker 7 is in a cut-off state.

[0031] In the example of FIG. 1 , the interrupter 7 is provided in the power path 6 and performs an interruption operation by switching from a conductive state that allows current to flow through the power path 6 to a cutoff state that cuts off the current. The interrupter 7 has a current input unit 71, conductor units 72, 73, and 74, an igniter 75, and a displacement unit (not shown). The interrupter 7 is, for example, a pyrotechnic circuit breaker that cuts off the power path 6 when a drive current flows through the current input unit 71. As the pyrotechnic circuit breaker, a well-known explosive fuse such as pyrofuse (registered trademark) can be suitably used.

[0032] The current input unit 71 has a first terminal unit 76 and a second terminal unit 77. The current input unit 71 is a part through which a current flows from the first terminal unit 76 to the second terminal unit 77 when a drive unit 15 described below outputs a disconnection signal (more specifically, when a drive unit 15 described below supplies a drive current). The current input unit 71 is insulated from the power path 6.

[0033] Conductor portion 72 is a terminal that is connected to first power path 6A and short-circuits to first power path 6A. Conductor portion 73 is a terminal that is connected to second power path 6B and short-circuits to second power path 6B. Conductor portion 74 is a conductor that short-circuits between conductor portion 72 and conductor portion 73.

[0034] Igniter 75 is a part that functions to generate a small explosion when a current flows from first terminal portion 76 to second terminal portion 77, and to move a displacement portion due to this explosion. Before an explosion occurs in igniter 75 (when conductor portions 72, 73, 74 are short-circuited to each other), the displacement portion is held in a predetermined position, and when an explosion occurs in igniter 75, the explosion causes the displacement portion to move toward conductor portion 74, cutting and interrupting conductor portion 74.

[0035] When a drive current supplied from a drive unit 15 described below flows to the current input unit 71 (specifically, when the drive current flows from the first terminal unit 76 to the second terminal unit 77 via the igniter 75), the breaker unit 7 operates to break the power path 6. In other words, when a drive current flows to the current input unit 71, the breaker unit 7 switches from a conductive state to a cut-off state. After switching to the cut-off state, the breaker unit 7 maintains the cut-off state even if the supply of the drive current is stopped.

[0036] The current detection unit 8 is configured as, for example, a known current sensor. The current detection unit 8 detects the value of the current flowing through the power path 6 and outputs a detection signal that can identify the detected current value.

[0037] 1-2. Configuration of the on-board shutoff control device 10 The on-board cutoff control device 10 is a device used in the on-board system 1. The on-board cutoff control device 10 has a first conductive path 11, a second conductive path 12, a voltage generating unit 13, a short circuit detecting unit 14, a driving unit 15, and a resistance unit 16.

[0038] The voltage generating unit 13 generates a voltage to be applied to the first conductive path 11 based on the output voltage of the low-voltage battery 3. The voltage generating unit 13 includes a transformer 20, a switching unit 21, and a control unit 22.

[0039] The transformer 20 insulates the low-voltage battery 3 from the high-voltage battery 5 and insulates the low-voltage battery 3 from the first conductive path 11. The transformer 20 boosts the voltage based on the low-voltage battery 3 and applies it to the first conductive path 11. The transformer 20 has a first winding portion 23 and a second winding portion 24. The first winding portion 23 and the second winding portion 24 are insulated from each other. The first winding portion 23 and the second winding portion 24 are both configured as coils. When a current change occurs in the first winding portion 23, the transformer 20 generates a voltage in the second winding portion 24 that corresponds to the current change in the first winding portion 23.

[0040] The switching unit 21 is provided on the low-voltage side power path 4. The switching unit 21 is provided between the low-voltage battery 3 and the first winding unit 23. The switching unit 21 switches between an allowable state that allows current to flow from the low-voltage battery 3 to the first winding unit 23 and a release state that releases the allowable state. The switching unit 21 has a changeover switch 21A. When the changeover switch 21A is turned on, the switching unit 21 switches to an allowable state that allows current to flow from the low-voltage battery 3 to the first winding unit 23. When the changeover switch 21A is turned off, the switching unit 21 switches to a release state that releases the allowable state. The changeover switch 21A is configured, for example, by a switching element, and more specifically, by a semiconductor switch element such as a field effect transistor (FET). The changeover switch 21A may be a switching element other than a FET (for example, a bipolar transistor).

[0041] The control unit 22 has a control device. This control device is an information processing device having a calculation function and an information processing function, and has, for example, a CPU and a storage unit. The control unit 22 outputs an ON signal for turning on the selector switch 21A, and an OFF signal for turning off the selector switch 21A. One of the ON signal and the OFF signal is, for example, a high-level signal, and the other is, for example, a low-level signal.

[0042] The changeover switch 21A is turned on when an on signal is given from the control unit 22. This switches the changeover unit 21 to the permitted state. The changeover switch 21A is turned off when an off signal is given from the control unit 22. This switches the changeover unit 21 to the released state.

[0043] When the switching unit 21 is in the permissive state, an input voltage Vin equivalent to the output voltage of the low-voltage battery 3 is applied across the first winding unit 23. If the voltage across the second winding unit 24 is the output voltage Vout, then Vin / Vout=N1 / N2. In other words, when the changeover switch 21A switches from the released state to the permissive state, an output voltage Vout=Vin×N2 / N1 is generated across the second winding unit 24. In this embodiment, the number of turns N1 of the first winding unit 23 is equal to the number of turns N2 of the second winding unit 24. Volume Therefore, a voltage that is a boosted version of the output voltage of the low-voltage battery 3 is generated in the second winding portion 24. The voltage generated in the second winding portion 24 is applied to the first conductive path 11.

[0044] In this way, the voltage generating unit 13 boosts the voltage based on the low-voltage battery 3 and applies it to the first conductive path 11.

[0045] The first conductive path 11 corresponds to an example of a "conductive path." The first conductive path 11 is insulated from the low-voltage battery 3. 1 is , is electrically connected to the second winding portion 24, and a voltage generated by the voltage generating portion 13 is applied to the first conductive path 11. A voltage smaller than the output voltage of the high-voltage battery 5 is applied to the first conductive path 11. The first conductive path 11 is an electrical path provided between one end of the second winding portion 24 and the driving portion 15. The second conductive path 12 is an electrical path provided between the other end of the second winding portion 24 and the driving portion 15. The second conductive path 12 is electrically connected to the ground. The second conductive path 12 is electrically connected to the second power path 6B via the ground, and is short-circuited to the second power path 6B.

[0046] The short-circuit detection unit 14 is provided between the first conductive path 11 and the second conductive path 12, and is connected to the first conductive path 11 and the second conductive path 12. The short-circuit detection unit 14 is driven by receiving power from the first conductive path 11. The detection signal output from the current detection unit 8 is input to the short-circuit detection unit 14. The short-circuit detection unit 14 detects a short circuit in the power path 6 based on the detection signal. For example, the short-circuit detection unit 14 determines whether the value of the current flowing through the power path 6 exceeds a threshold current based on the detection signal, and if it determines that it has exceeded the threshold current, it determines that the power path 6 has been short-circuited. The short-circuit detection unit 14 outputs a non-short-circuit signal (off signal) before detecting a short circuit in the power path 6, and outputs a short-circuit signal (on signal) if it detects a short circuit in the power path 6.

[0047] The drive unit 15 is provided between the first conductive path 11 and the second conductive path 12, and is connected to the first conductive path 11 and the second conductive path 12. The drive unit 15 receives power from the first conductive path 11 and operates to output a disconnection signal for switching the circuit breaker 7 to a disconnection state. The drive unit 15 switches the circuit breaker 7 to a disconnection state when the short-circuit detection unit 14 detects a short circuit in the power path 6. The drive unit 15 has a capacitor 30 and a switch 31.

[0048] The capacitor 30 is an element electrically connected to the first conductive path 11 and the second conductive path 12, and receives power from the first conductive path 11. One electrode of the capacitor 30 is electrically connected to the first conductive path 11, and the other electrode is electrically connected to the second conductive path 12. The capacitor 30 receives power from the first conductive path 11 and is charged.

[0049] The switch 31 is provided between the first conductive path 11 and the current input unit 71. The switch 31 is configured by a semiconductor switch such as a field effect transistor (FET) or a mechanical relay. When the switch 31 is in an on state, it allows current to flow from the capacitor 30 side to the first terminal unit 76 side, and when the switch 31 is in an off state, it blocks current from flowing from the capacitor 30 side to the first terminal unit 76 side. Specifically, the switch 31 is in an on state when the short-circuit detection unit 14 outputs a short-circuit signal (on signal), and is in an off state when the short-circuit detection unit 14 outputs a non-short-circuit signal (off signal). When the switch 31 is in an off state, current flow through the switch 31 is blocked in both directions, and when the switch 31 is in an on state, current flow through the switch 31 is allowed in both directions.

[0050] In this way, when a non-short circuit signal is input from the short circuit detection unit 14, the drive unit 15 turns the switch 31 off and cuts off the flow of current from the capacitor 30 to the first terminal 76. Then, when a short circuit signal is input from the short circuit detection unit 14, the drive unit 15 outputs a cutoff signal to switch the circuit breaker 7 to the cutoff state. Specifically, when a short circuit signal is input from the short circuit detection unit 14, the drive unit 15 switches the switch 31 on. In response to the operation of the switch 31, the capacitor 30 is discharged and a drive current flows to the current input unit 71. In other words, when the short circuit detection unit 14 detects a short circuit in the power path 6, the drive unit 15 supplies a drive current to the current input unit 71 and switches the circuit breaker 7 to the cutoff state.

[0051] The resistor unit 16 has a function of discharging the capacitor 30. The resistor unit 16 is connected in parallel to the capacitor 30 between the first conductive path 11 and the second conductive path 12, and is connected in parallel to the interrupter unit 7.

[0052] 1-3. Operation of the on-board shutoff control device 10 The voltage generator 13 performs a generating operation to generate a voltage to be applied to the first conductive path 11 based on the output voltage of the low-voltage battery 3. When the controller 22 performs the generating operation, it supplies an on / off signal, which alternates between an on signal and an off signal, to the selector switch 21A, thereby turning the selector switch 21A on and off. When the selector switch 21A switches from an off state to an on state, an input voltage Vin equivalent to the output voltage of the low-voltage battery 3 is applied across the first winding 23. When the selector switch 21A switches from an on state to an off state, the application of the voltage from the low-voltage battery 3 to the first winding 23 is released. This on / off operation alternates between a state in which the output voltage V1 is applied across the first winding 23 and a state in which the application of the output voltage V1 to the first winding 23 is released. This on / off operation generates an output voltage of approximately V1×N2 / N1 at most across the second winding 24. In this way, as switching unit 21 alternately switches between the permitting state and the releasing state, power is supplied from second winding unit 24 to first conductive path 11, and power is supplied to short-circuit detection unit 14 and drive unit 15 via first conductive path 11. In other words, a charging current is supplied to capacitor 30. In this state, a small amount of current may flow through resistor unit 16.

[0053] The voltage generating unit 13 may start the voltage generating operation in response to a start switch 90 that starts the vehicle being switched from an off state to an on state. When the start switch 90 is in the on state, the voltage generating unit 13 may continue the voltage generating operation until the start switch 90 is switched to an off state. The voltage generating unit 13 may stop the voltage generating operation when the start switch 90 is switched from an on state to an off state. In this example, when the start switch 90 is switched from an on state to an off state and maintained in the off state, the switching unit 21 maintains the release state. Therefore, if the switch 31 is in the off state, the current flow from the capacitor 30 to the current input unit 71 is interrupted and the capacitor 30 is discharged by the resistor unit 16. On the other hand, when the start switch 90 is switched from an off state to an on state and maintained in the on state, the voltage generating unit 13 performs the voltage generating operation. Therefore, if the switch 31 is in the off state, a charging current is supplied to the capacitor 30 from the second winding unit 24 and a current flows through the resistor unit 16.

[0054] The short-circuit detection unit 14 detects a short circuit in the power path 6 based on a detection signal that can identify the value of the current flowing through the power path 6. When the short-circuit detection unit 14 detects a short circuit in the power path 6, it outputs a short-circuit signal. When the short-circuit signal is input, the drive unit 15 switches the switch 31 to the on state. When the switch 31 switches from the off state to the on state while the capacitor 30 is charged, the capacitor 30 is discharged in response to the on operation of the switch 31, and a drive current flows to the current input unit 71. When a drive current is supplied from the capacitor 30 to the current input unit 71, a small explosion occurs in the igniter 75, and the breaker unit 7 cuts off the power path 6. After switching to the cut-off state, the breaker unit 7 maintains the cut-off state even if the supply of drive current is stopped.

[0055] In this embodiment, it is desirable that the maximum value of the drive current supplied to the current input unit 71 in response to the ON operation of the switch 31 is greater than the maximum value of the charging current supplied to the capacitor 30 when the capacitor 30 is being charged. The control unit 22 adjusts the duty so as to achieve this relationship, and supplies a PWM signal to the changeover switch 21A.

[0056] 1-4.Examples of effects The in-vehicle cutoff control device 10 is used in an in-vehicle system 1 in which the low-voltage battery 3 and the high-voltage battery 5 are insulated from each other. The in-vehicle cutoff control device 10 has a short-circuit detection unit 14 that detects a short circuit in the power path 6 to which power is supplied from the high-voltage battery 5. The in-vehicle cutoff control device 10 also has a drive unit 15 that switches the cutoff unit 7 to a cutoff state when the short-circuit detection unit 14 detects a short circuit in the power path 6. The short-circuit detection unit 14 and the drive unit 15 are driven by power from a first conduction path 11 that is insulated from the low-voltage battery 3. Therefore, the in-vehicle cutoff control device 10 makes it easy to prevent a surge voltage generated due to the cutoff operation of the cutoff unit 7 from entering the short-circuit detection unit 14 or the drive unit 15, from entering the low-voltage battery 3.

[0057] Furthermore, the voltage generating unit 13 has a transformer 20 that insulates the low-voltage battery 3 from the high-voltage battery 5 and the first conductive path 11, and boosts the voltage based on the low-voltage battery 3 and applies it to the first conductive path 11. With this configuration, the transformer 20 can improve the insulation between the low-voltage battery 3 and the high-voltage battery 5 and the first conductive path 11. Moreover, with this configuration, the low-voltage battery 3 can be used to generate the voltage to be applied to the first conductive path 11.

[0058] Furthermore, the in-vehicle cutoff control device 10 does not input only the current directly supplied from the second winding portion 24 to the current input portion 71, but can also input the discharge current from the capacitor 30 to the current input portion 71. Therefore, the in-vehicle cutoff control device 10 can achieve both a configuration that reduces the size of the transformer 20 and a configuration that can input a certain amount of current to the current input portion 71, making it easy to miniaturize the configuration that can drive the cutoff portion 7 while improving the insulation between the low-voltage battery 3 and the high-voltage battery 5.

[0059] Furthermore, the cutoff unit 7 switches to the cutoff state in response to the drive current supplied from the drive unit 15 flowing to the current input unit 71, and maintains the cutoff state even if the supply of drive current is stopped after switching to the cutoff state. With this configuration, even if a voltage caused by a surge voltage enters the drive unit 15 after the cutoff unit 7 switches to the cutoff state, causing the drive unit 15 to malfunction and causing the supply of drive current from the drive unit 15 to stop, the cutoff state of the cutoff unit 7 can be maintained more reliably.

[0060] Furthermore, the circuit breaker 7 is a pyrotechnic circuit breaker that cuts off the power line 6 when a drive current flows through the current input unit 71. With this configuration, a drive current can be supplied to the current input unit 71 to cause the pyrotechnic circuit breaker to perform a circuit breaker operation. This type of pyrotechnic circuit breaker is prone to generating a surge voltage near the pyrotechnic circuit breaker when it performs a circuit breaker operation, but the in-vehicle circuit breaker control device 10 is less susceptible to the effects of such a surge voltage reaching the low-voltage battery 3 side.

[0061] Second Embodiment In the first embodiment, the voltage generating unit is configured to boost the voltage based on the low-voltage battery 3 and apply it to the first conduction path 11, but this configuration is not limited to this. In the second embodiment, an example will be described in which the voltage generating unit is configured to lower the voltage based on the high-voltage battery 5 and apply it to the first conduction path 11. In the description of the second embodiment, the same components as in the first embodiment are denoted by the same reference numerals, and detailed description thereof will be omitted.

[0062] 2-1. Configuration of the in-vehicle system 201 2 shows an in-vehicle system 201 having an in-vehicle cutoff control device 210 of the second embodiment. The in-vehicle system 201 is a system mounted on a vehicle and capable of supplying power to various loads. The vehicle on which the in-vehicle system 201 is mounted may be, for example, an electric vehicle, a plug-in hybrid vehicle, a hybrid vehicle, or any other type of vehicle.

[0063] As shown in Figure 2, the vehicle system 201 has a low-voltage battery 3, a low-voltage power path 4, a high-voltage battery 5, a power path 6, a circuit breaker 7, a current detection unit 8, an on-board circuit breaker control device 210, a start switch 90, and a power supply target 91.

[0064] The power supply target 91 is, for example, an ECU (Electronic Control Unit), a low-voltage load, etc. The power supply target 91 is provided between a first low-voltage side power path 4A and a second low-voltage side power path 4B. The power supply target 91 is supplied with power from the low-voltage battery 3 via the low-voltage side power path 4.

[0065] The on-board cutoff control device 210 is a device used in the on-board system 201. The on-board cutoff control device 210 has a first conductive path 11, a second conductive path 12, a voltage step-down unit 213, a short-circuit detection unit 14, a drive unit 15, and a resistance unit 16.

[0066] The step-down unit 213 corresponds to an example of a "voltage generation unit." The step-down unit 213 is configured as, for example, a step-down regulator. The step-down unit 213 performs a generation operation of stepping down the voltage based on the high-voltage battery 5 and applying the voltage to the first conductive path 11. The step-down unit 213 is connected to the first power path 6A, the second power path 6B, the first conductive path 11, and the second conductive path 12. The step-down unit 213 steps down the voltage between the first power path 6A and the second power path 6B and applies the voltage between the first conductive path 11 and the second conductive path 12.

[0067] 2-2. Operation of the in-vehicle cutoff control device 210 The step-down unit 213 performs the above-described generating operation. The step-down unit 213 may start the above-described generating operation in response to a switch 90 for starting the vehicle being switched from an off state to an on state. When the start switch 90 is in the on state, the step-down unit 213 may continue the above-described generating operation until the start switch 90 is switched to the off state. When the start switch 90 is switched from the on state to the off state, the step-down unit 213 may stop the above-described generating operation when the start switch 90 is switched from the on state to the off state. In this example, when the start switch 90 is switched from the on state to the off state and maintained in the off state, if the switch 31 is in the off state, the current flow from the capacitor 30 to the current input unit 71 is interrupted and the capacitor 30 is discharged by the resistor unit 16. On the other hand, when the start switch 90 is switched from the off state to the on state and maintained in the on state, the step-down unit 213 performs the above-described generating operation. Therefore, if the switch 31 is in the off state, a charging current is supplied to the capacitor 30 from the second winding unit 24 and a current flows through the resistor unit 16.

[0068] The short-circuit detection unit 14 detects a short circuit in the power path 6 based on a detection signal that can identify the value of the current flowing through the power path 6. When the short-circuit detection unit 14 detects a short circuit in the power path 6, it outputs a short-circuit signal. When the short-circuit signal is input, the drive unit 15 switches the switch 31 to the on state. When the switch 31 switches from the off state to the on state while the capacitor 30 is charged, the capacitor 30 is discharged in response to the on operation of the switch 31, and a drive current flows to the current input unit 71. When a drive current is supplied from the capacitor 30 to the current input unit 71, a small explosion occurs in the igniter 75, and the breaker unit 7 cuts off the power path 6. After switching to the cut-off state, the breaker unit 7 maintains the cut-off state even if the supply of drive current is stopped.

[0069] 2-3.Examples of effects The on-board cutoff control device 210 can generate the voltage to be applied to the first conductive path 11 using the high-voltage battery 5. Moreover, the on-board cutoff control device 210 can configure the low-voltage battery 3 side and the high-voltage battery 5 side as separate circuits, so the low-voltage battery 3 side and the high-voltage battery 5 side can be insulated from each other without providing any insulating members.

[0070] <Third embodiment> In the first or second embodiment, a configuration may be added that monitors whether the voltage of the high-voltage battery 5 has reached an abnormal value by using the power supplied from the first conduction path 11. In the third embodiment, an example will be described in which, based on the configuration of the first embodiment, a configuration is added that monitors whether the voltage of the high-voltage battery 5 has reached an abnormal value by using the power supplied from the first conduction path 11. In the description of the third embodiment, the same components as those in the first embodiment are denoted by the same reference numerals, and detailed description thereof will be omitted.

[0071] 3-1. Configuration of the in-vehicle system 301 3 shows an on-vehicle system 301 having an on-vehicle cutoff control device 310 according to the third embodiment. The on-vehicle system 301 is a system mounted on a vehicle and capable of supplying power to various loads. The vehicle on which the on-vehicle system 301 is mounted may be, for example, an electric vehicle, a plug-in hybrid vehicle, a hybrid vehicle, or any other type of vehicle.

[0072] As shown in Figure 3, the vehicle system 301 has a low-voltage battery 3, a low-voltage power path 4, a high-voltage battery 5, a power path 6, a circuit breaker 7, a current detection unit 8, an on-board circuit breaker control device 310, and a start switch 90.

[0073] The on-board cutoff control device 310 is a device used in the on-board system 301. The on-board cutoff control device 310 has a first conductive path 11, a second conductive path 12, a voltage generating unit 13, a short circuit detecting unit 14, a driving unit 15, a resistance unit 16, a voltage detecting unit 40, and a determining unit 50.

[0074] The voltage detection unit 40 detects the voltage of the power path 6 (more specifically, the voltage between the first power path 6A and the second power path 6B). The voltage detection unit 40 is configured as, for example, a known voltage detection circuit (more specifically, a voltage divider circuit). The voltage detection unit 40 has a first voltage dividing resistor 41 and a second voltage dividing resistor 42. One end of the first voltage dividing resistor 41 is electrically connected to the power path 6 (more specifically, the first power path 6A). The other end of the first voltage dividing resistor 41 is connected to one end of the second voltage dividing resistor 42. The other end of the second voltage dividing resistor 42 is connected to the second conductive path 12. The voltage detection unit 40 outputs a voltage signal that can identify the voltage of the power path 6. More specifically, the voltage detection unit 40 outputs a voltage obtained by dividing the voltage of the power path 6 by the first voltage dividing resistor 41 and the second voltage dividing resistor 42.

[0075] The determination unit 50 outputs an abnormality signal when the voltage detected by the voltage detection unit 40 reaches a predetermined abnormal value. The abnormal value may be a fixed value or a value set according to the SOC of the high-voltage battery 5, etc. The determination unit 50 is electrically connected to the first conductive path 11 and the second conductive path 12 and operates by receiving power from the first conductive path 11. The determination unit 50 is configured as, for example, a comparator. A voltage signal capable of identifying the voltage of the power path 6 is input to the determination unit 50. The determination unit 50 determines whether the voltage of the power path 6 is an abnormal value based on the voltage signal. The determination unit 50 outputs an abnormality signal when it determines that the voltage of the power path 6 is an abnormal value. This allows the on-board cutoff control device 310 to notify a device external to the on-board cutoff control device 310 that the voltage of the power path 6 is abnormal.

[0076] 3-2.Examples of effects According to the on-board cutoff control device 310, the configuration for outputting an abnormality signal when the voltage of the power line 6 reaches an abnormal value can be realized by using the power supplied from the first electrical conduction line 11.

[0077] <Other embodiments> The present disclosure is not limited to the embodiments described above and in the drawings. For example, any combination of features of the above-described or following embodiments is possible within a range that does not contradict. Furthermore, any feature of the above-described or following embodiments may be omitted unless explicitly stated as essential. Furthermore, the above-described embodiment may be modified as follows.

[0078] In each of the above embodiments, the cutoff unit and the current detection unit are not included in the on-board cutoff control device, but the cutoff unit and the current detection unit may be partly or entirely included in the on-board cutoff control device.

[0079] It should be noted that the embodiments disclosed herein should be considered to be illustrative in all respects and not restrictive. The scope of the present invention is not limited to the embodiments disclosed herein, and is intended to include all modifications within the scope indicated by the claims or within the scope equivalent to the claims. [Explanation of symbols]

[0080] 1: In-vehicle systems 3: Low voltage battery 4: Low voltage power line 4A: First low-voltage power line 4B: Second low-voltage power line 5: High voltage battery 6: Power line 6A: 1st power path 6B: 2nd power path 7: Breaking section 8: Current detection section 10: On-board shutoff control device 11: First conductive path (conductive path) 12: Second conductive path 13: Voltage generation unit 14: Short circuit detection unit 15: Drive unit 16:Resistance part 20: Trans 21: Switching section 21A: Changeover switch 22: Control section 23: First winding section 24: Second winding section 30: Capacitor 31: Switch 40: Voltage detection section 41: 1st voltage dividing resistor 42: Second voltage dividing resistor 50: Judgment section 71: Current input section 72: Conductor 73: Conductor 74: Conductor 75:Igniter 76: 1st terminal section 77: 2nd terminal section 90: Start switch 91: Electricity supply target 201: In-vehicle systems 210: Vehicle shutoff control device 213: Step-down section 301: In-vehicle systems 310: Vehicle shutoff control device

Claims

1. A low voltage battery; a high-voltage battery insulated from the low-voltage battery and having an output voltage higher than that of the low-voltage battery; a power path to which power based on the high-voltage battery is supplied; a cutoff unit that is provided in the power path and that switches from a conductive state that allows current to flow through the power path to a cutoff state that cuts off the current; a current detection unit that outputs a detection signal that can identify the value of a current flowing through the power path; An in-vehicle cut-off control device used in an in-vehicle system having a conductive path insulated from the low-voltage battery and having a voltage lower than the output voltage of the high-voltage battery applied thereto; a voltage generating unit that generates a voltage to be applied to the conductive path based on an output voltage of the low-voltage battery or the high-voltage battery; a short circuit detection unit that receives power from the conductive path and is driven; a drive unit that receives power from the conductive path, operates, and outputs a cutoff signal to switch the cutoff unit to the cutoff state; and the short circuit detection unit receives the detection signal and detects a short circuit in the power path based on the detection signal; The drive unit switches the cutoff unit to the cutoff state when the short-circuit detection unit detects a short circuit in the power path. On-board shutoff control device.

2. The voltage generating unit has a transformer that insulates the low-voltage battery from the high-voltage battery and the conductive path, and boosts the voltage based on the low-voltage battery and applies the boosted voltage to the conductive path. The vehicle-mounted cutoff control device according to claim 1.

3. the transformer has a first winding portion and a second winding portion that are insulated from each other, the voltage generating unit further includes a switching unit that switches between an allowable state that allows current to flow from the low-voltage battery to the first winding unit and a release state that releases the allowable state, and a control unit that controls the switching unit; the conductive path is electrically connected to the second winding portion, the interrupter has a current input section insulated from the power path, the drive unit includes a capacitor that receives power from the conductive path, and a switch that is provided between the conductive path and the current input unit; a charging current is supplied to the capacitor via the second winding and the conductive path in response to the switching unit repeatedly switching between the permitting state and the releasing state, In response to the on-operation of the switch, the capacitor is discharged, and a drive current flows in the current input section. The vehicle-mounted cutoff control device according to claim 2.

4. The voltage generating unit has a step-down unit that steps down the voltage based on the high-voltage battery and applies the resulting voltage to the conductive path. The vehicle-mounted cutoff control device according to claim 1.

5. The cutoff unit has a current input unit insulated from the power path, and switches to the cutoff state in response to a drive current supplied from the drive unit flowing into the current input unit, and maintains the cutoff state even if the supply of the drive current is stopped after switching to the cutoff state. The vehicle-mounted cutoff control device according to claim 1 or 2.

6. The interrupter is a pyrotechnic circuit breaker that interrupts the power path when the drive current flows through the current input unit. The vehicle-mounted cutoff control device according to claim 5.

7. a voltage detection unit that detects the voltage of the power line; a determination unit that outputs an abnormality signal when the voltage detected by the voltage detection unit becomes a predetermined abnormal value, The determination unit receives power from the conductive path to operate. The vehicle-mounted cutoff control device according to claim 1 or 2.

Citation Information

Patent Citations

  • Drive circuit for power mos field effect transistor using pulse transformer

    JP1987021322A

  • Power source unit for hybrid electric automobile

    JP2000050402A

  • Power supply device for vehicle

    JP2001037070A

  • Power supply device and method for vehicle

    JP2004338577A

  • DC-DC converter and battery system

    JP2015192525A