Diagnostic equipment for switching element and abnormality detection circuit

By designing diagnostic equipment for switching elements and abnormal detection circuits in redundant systems, the problem of difficulty in performing fault diagnosis under the guaranteed power supply state in the prior art is solved, and efficient diagnosis of switching elements and abnormal detection circuits and improved system reliability and availability.

JP2025071408AActive Publication Date: 2025-05-08YAZAKI CORP
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2023181539
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-10-23
Publication Date
2025-05-08
Estimated Expiration
2043-10-23

AI Technical Summary

Technical Problem

The prior art is difficult to troubleshoot the switching elements and abnormality detection circuits while ensuring the power supply state, especially when there is a redundant configuration between the load and the storage battery.

Method used

A diagnostic device is designed, which includes two storage batteries, a pair of switching elements and an abnormality detection circuit. Through these components, a redundant system is built to switch to the backup battery when the main battery fails, ensuring continuous power supply of the load, and troubleshooting of the switching elements and abnormality detection circuit.

Benefits of technology

It realizes fault diagnosis of switching components and abnormal detection circuits in redundant systems, while ensuring that the load is continuously powered from the backup battery, improving the reliability and availability of the system.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025071408000001_ABST
    Figure 2025071408000001_ABST
Patent Text Reader

Abstract

To perform fault diagnosis of switching elements and abnormality detection circuits in a redundant system with redundant loads and storage batteries, while supplying power to backup loads from backup storage batteries.SOLUTION: Diagnostic equipment 10 comprises a microcomputer 11 that outputs pseudo-signals to an overvoltage detection circuit 12 and an undervoltage detection circuit 13 to simulate abnormal conditions and a detection circuit 18 that detects that switching elements 61 and 62 are ON after the pseudo-signal is output by the microcomputer 11, and the microcomputer 11 judges a failure of switching elements 61 and 62 or a failure of the overvoltage detection circuit 12 and undervoltage detection circuit 13 when switching elements 61 and 62 are detected to be ON by the detection circuit 18.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to a diagnostic device for a switching element and an abnormality detection circuit. [Background technology]

[0002] A fault detection device that detects faults in switching elements while maintaining a conductive state is known (see, for example, Patent Document 1). In the fault detection device described in Patent Document 1, a plurality of FET circuit sections are connected in parallel, and in each FET circuit section, a pair of FETs are connected in series and arranged in opposite directions. In this fault detection device, while one pair of FETs in the plurality of FET circuit sections is controlled to be ON, a fault in the FETs in the other pair of FET circuit sections in the plurality of FET circuit sections is detected based on the ON / OFF control state of the other pair of FETs in the plurality of FET circuit sections and the voltage of the conductive path between the FETs. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2022-74827 Summary of the Invention [Problem to be solved by the invention]

[0004] In the fault detection device described in Patent Document 1, fault diagnosis of the FET is performed while maintaining a conductive state and supplying power to the load, but fault diagnosis of anomaly detection circuits such as an overvoltage detection circuit or an overcurrent detection circuit is not performed.

[0005] In view of the above circumstances, an object of the present invention is to provide a diagnostic device for a switching element and an abnormality detection circuit that can perform fault diagnosis of a switching element and an abnormality detection circuit while supplying power from a backup storage battery to a backup load in a redundant system in which the load and storage battery are redundant. [Means for solving the problem]

[0006] The diagnostic device for a switching element and an abnormality detection circuit of the present invention includes a first storage battery that supplies power to a first load, a second storage battery that supplies power to a second load when an abnormality occurs on the first storage battery side, a first power line that connects the second load and the first storage battery, a first switching element provided on the first power line, a second power line that connects a portion of the first power line between the first switching element and the second load and the second storage battery, a second switching element provided on the second power line, an abnormality detection circuit that detects an abnormal state occurring on the first power line or the second power line, and a driver that turns OFF the first switching element when the abnormal state is detected by a first signal output unit that outputs a pseudo signal to the abnormality detection circuit for simulating the abnormal state; a detection unit that detects that the first switching element is ON after the pseudo signal is output by the first signal output unit; and a determination unit that determines that there is a failure of the first switching element or a failure of the abnormality detection circuit when the detection unit detects that the first switching element is ON. Effect of the Invention

[0007] According to the present invention, in a redundant system having redundant loads and storage batteries, fault diagnosis of switching elements and anomaly detection circuits can be performed while power is being supplied from a backup storage battery to a backup load. [Brief description of the drawings]

[0008] [Figure 1] FIG. 1 is a circuit diagram showing a diagnostic device according to one embodiment of the present invention. [Diagram 2] FIG. 2 is a flowchart showing a process for performing a fault diagnosis on a switching element, an overvoltage detection circuit, and a low voltage detection circuit. [Diagram 3]FIG. 3 is a timing chart showing waveforms of various signals when performing failure diagnosis on the switching elements, the overvoltage detection circuit, and the low voltage detection circuit. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] The present invention will be described below along with preferred embodiments. Note that the present invention is not limited to the embodiments shown below, and the embodiments shown below can be modified as appropriate within the scope of the present invention. In addition, in the embodiments shown below, some configurations are omitted from illustration and description, but for the details of the omitted technologies, publicly known or well-known technologies are applied as appropriate within the scope of no contradiction with the contents described below.

[0010] Fig. 1 is a circuit diagram showing a diagnostic device 10 according to an embodiment of the present invention. The diagnostic device 10 shown in this figure is mounted on a vehicle having a redundant configuration of advanced driving systems (hereinafter referred to as ADAS (Advanced Driver Assistant Systems)) 1, 2, a main battery 3, and a backup battery 4. In this vehicle, a main ADAS 1 that is driven under normal conditions and a backup ADAS 2 that is driven when an abnormality occurs in the ADAS 1 are connected in parallel to a DC / DC converter 5. In addition, the main battery 3 and the backup battery 4 are connected in parallel to the DC / DC converter 5.

[0011] The main battery 3 is a secondary battery such as a lead storage battery, and is charged with power supplied from the DC / DC converter 5. The backup battery 4 is a secondary battery such as a lithium ion battery, and is charged with power supplied from the DC / DC converter 5 or the main battery 3. The DC / DC converter 5 steps down the output voltage of a high-voltage power supply (not shown) to the voltage of the main battery 3 and the backup battery 4.

[0012] A first switch 6 is provided on the power line PL1 connecting the backup ADAS 2 and the DC / DC converter 5. The first switch 6 includes a pair of switching elements 61 and 62. The switching elements 61 and 62 are field effect transistors (FETs (Field Effect Transistors)) such as MOSFETs (Metal-Oxide-Semiconductor Field Effect Transistors).

[0013] The source of the switching element 61 and the source of the switching element 62 are connected to each other. The drain of the switching element 61 is connected to the positive electrode of the main battery 3 and the DC / DC converter 5. In addition, the drain of the switching element 62 is connected to the backup ADAS 2 and a second switch 7 described later.

[0014] The FET driver D1 is connected to the gate of the switching element 61 and the gate of the switching element 62, and applies a high / low voltage between the gate and source of each of the switching elements 61, 62 with the source as a reference. When the FET driver D1 applies a high-level voltage equal to or greater than the operating threshold between the gate and source of the switching elements 61, 62, the switching elements 61, 62 are turned ON. On the other hand, when the FET driver D1 does not apply a high-level voltage equal to or greater than the operating threshold between the gate and source of the switching elements 61, 62, the switching elements 61, 62 are turned OFF. Here, with the current from the drain to the source of the switching elements 61, 62 being cut off, the first switch 6 cuts off the current in both directions.

[0015] A second switch 7 is provided on a power line PL2 that connects the backup ADAS 2 and the drain of the switching element 62 to the backup battery 4. The second switch 7 includes a pair of switching elements 71 and 72. The switching elements 71 and 72 are field effect transistors such as MOSFETs.

[0016] The source of the switching element 71 and the source of the switching element 72 are connected to each other. The drain of the switching element 71 is connected to the backup ADAS 2 and the drain of the switching element 62. In addition, the drain of the switching element 72 is connected to the positive electrode of the backup battery 4.

[0017] The FET driver D2 is connected to the gate of the switching element 71 and the gate of the switching element 72, and applies a high / low voltage between the gate and source of each of the switching elements 71 and 72 with the source as a reference. When the FET driver D2 applies a high-level voltage equal to or greater than the operating threshold between the gate and source of the switching elements 71 and 72, the switching elements 71 and 72 are turned ON. On the other hand, when the FET driver D2 does not apply a high-level voltage equal to or greater than the operating threshold between the gate and source of the switching elements 71 and 72, the switching elements 71 and 72 are turned OFF. Here, with the current from the drain to the source of the switching elements 71 and 72 being cut off, the second switch 7 cuts off the current in both directions.

[0018] The second switch 7 and the charging circuit 8 are connected in parallel to the power line PL2. While the first switch 6 is ON and the second switch 7 is OFF, the charging circuit 8 charges the backup battery 4 with a current supplied from the DC / DC converter 5 or the main battery 3.

[0019] The main ADAS1 is connected between a connection point of the power line PL1 to the main battery 3 and a connection point of the switching element 61. In addition, the power line PL2 is connected between a connection point of the power line PL1 to the switching element 62 and a connection point of the backup ADAS2.

[0020] A vehicle having a redundant configuration of ADAS1, 2, a main battery 3, and a backup battery 4 is equipped with an overvoltage detection circuit 12 and a low voltage detection circuit 13. The overvoltage detection circuit 12 detects an overvoltage state of the power line PL1 or the power line PL2. The low voltage detection circuit 13 detects an abnormally low voltage state of the power line PL1 or the power line PL2.

[0021] The overvoltage detection circuit 12 includes an input circuit 121, a comparator 122, and a reference voltage unit 123. An input terminal of the input circuit 121 is connected between a connection point of the power line PL1 to the main battery 3 and a connection point of the switching element 61 via a current cut switch 14 described later. An output terminal of the input circuit 121 is connected to an input terminal (+IN) of the comparator 122. An input terminal (-IN) of the comparator 122 is connected to the reference voltage unit 123, and an output terminal of the comparator 122 is connected to an input terminal of the inversion circuit 16 and an input terminal of the delay circuit 17. A positive power supply terminal of the comparator 122 is connected to the main battery 3, etc., and a negative power supply terminal of the comparator 122 is grounded.

[0022] Input circuit 121 is a voltage divider circuit that divides the voltage of power line PL1 or power line PL2 and outputs the divided voltage to an input terminal (+IN) of comparator 122. When the voltage between main battery 3 and first switch 6 on power line PL1 is an overvoltage, the voltage value indicated by the output signal of input circuit 121 becomes higher than the voltage value indicated by the output signal of reference voltage unit 123. In contrast, when the voltage of power line PL1 or power line PL2 is normal, the voltage value indicated by the output signal of input circuit 121 becomes lower than the voltage value indicated by the output signal of reference voltage unit 123.

[0023] When the voltage value indicated by the input signal at the input terminal (+IN) is higher than the voltage value indicated by the input signal at the input terminal (-IN), the comparator 122 outputs a high-level signal from the output terminal to the inversion circuit 16 and the delay circuit 17. In other words, when the voltage of the power line PL1 or the power line PL2 is an overvoltage, a high-level signal is output from the comparator 122 to the inversion circuit 16 and the delay circuit 17.

[0024] On the other hand, when the voltage value indicated by the input signal at the input terminal (-IN) is higher than the voltage value indicated by the input signal at the input terminal (+IN), the comparator 122 outputs a low-level signal from the output terminal to the inversion circuit 16 and the delay circuit 17. In other words, when the voltage of the power line PL1 or the power line PL2 is normal, the comparator 122 outputs a low-level signal to the inversion circuit 16 and the delay circuit 17.

[0025] The low voltage detection circuit 13 includes an input circuit 131, a comparator 132, and a reference voltage unit 133. An input terminal of the input circuit 131 is connected between a connection point of the power line PL1 to the main battery 3 and a connection point of the switching element 61 via the current cut switch 14. An output terminal of the input circuit 131 is connected to an input terminal (-IN) of the comparator 132. An input terminal (+IN) of the comparator 132 is connected to the reference voltage unit 133, and an output terminal of the comparator 132 is connected to an input terminal of the inversion circuit 16 and an input terminal of the delay circuit 17. A positive power supply terminal of the comparator 132 is connected to the main battery 3, etc., and a negative power supply terminal of the comparator 132 is grounded.

[0026] Input circuit 131 is a voltage divider circuit that divides the voltage of power line PL1 or power line PL2 and outputs the divided voltage to an input terminal (-IN) of comparator 132. When the voltage of power line PL1 or power line PL2 is abnormally low, the voltage value indicated by the output signal of input circuit 131 becomes lower than the voltage value indicated by the output signal of reference voltage unit 133. In contrast, when the voltage of power line PL1 or power line PL2 is normal, the voltage value indicated by the output signal of input circuit 131 becomes higher than the voltage value indicated by the output signal of reference voltage unit 133.

[0027] When the voltage value indicated by the input signal at the input terminal (-IN) is lower than the voltage value indicated by the input signal at the input terminal (+IN), the comparator 132 outputs a high-level signal from the output terminal to the inversion circuit 16 and the delay circuit 17. In other words, when the voltage of the power line PL1 or the power line PL2 is an abnormally low voltage, a high-level signal is output from the comparator 132 to the inversion circuit 16 and the delay circuit 17.

[0028] On the other hand, when the voltage value indicated by the input signal at the input terminal (-IN) is higher than the voltage value indicated by the input signal at the input terminal (+IN), the comparator 132 outputs a low-level signal from the output terminal to the inversion circuit 16 and the delay circuit 17. In other words, when the voltage of the power line PL1 or the power line PL2 is normal, the comparator 132 outputs a low-level signal to the inversion circuit 16 and the delay circuit 17.

[0029] The inversion circuit 16 is a circuit that inverts the polarity of the output signals of the comparators 122, 132 and outputs the inverted signal to the FET driver D1. When the voltage of the power line PL1 or the power line PL2 is an overvoltage, the inversion circuit 16 inverts the high-level signal output from the comparator 122 and outputs a low-level signal to the FET driver D1. The FET driver D1 sets the voltage applied to the gates of the switching elements 61, 62 to a low-level voltage that is less than the operating threshold value, and turns off the first switch 6.

[0030] On the other hand, when the voltage of the power line PL1 or the power line PL2 is normal, the inversion circuit 16 inverts the low-level signal output from the comparator 122 and outputs a high-level signal to the FET driver D1. The FET driver D1 sets the voltage applied to the gates of the switching elements 61, 62 to a high-level voltage equal to or higher than the operation threshold value, and turns on the first switch 6.

[0031] Furthermore, when the voltage of the power line PL1 or the power line PL2 is abnormally low, the inversion circuit 16 inverts the high-level signal output from the comparator 132 and outputs a low-level signal to the FET driver D1. The FET driver D1 sets the voltage applied to the gates of the switching elements 61, 62 to a low-level voltage that is less than the operating threshold value, and turns off the first switch 6.

[0032] On the other hand, when the voltage of the power line PL1 or the power line PL2 is normal, the inversion circuit 16 inverts the low-level signal output from the comparator 132 and outputs a high-level signal to the FET driver D1. The FET driver D1 sets the voltage applied to the gates of the switching elements 61, 62 to a high-level voltage equal to or higher than the operation threshold value, and turns on the first switch 6.

[0033] The delay circuit 17 is a circuit that delays the signals output to the FET driver D2 from the comparators 122 and 132. The delay circuit 17 prevents the first switch 6 and the second switch 7 from being turned ON at the same time.

[0034] The diagnostic device 10 includes a microcomputer 11, current cut switches 14 and 15, a detection circuit 18, and an inversion circuit 19. The microcomputer 11 is a control device that controls the overvoltage detection circuit 12, the low voltage detection circuit 13, the current cut switches 14 and 15, and the FET drivers D1 and D2. A positive terminal of the microcomputer 11 is connected to a power source such as the main battery 3, and a negative terminal of the microcomputer 11 is grounded.

[0035] When performing a fault diagnosis of the first switch 6 and the overvoltage detection circuit 12, the microcomputer 11 outputs a pseudo signal to the input terminal (+IN) of the comparator 122. The pseudo signal is a signal indicating a voltage value higher than the voltage value indicated by the output signal of the reference voltage unit 123. Therefore, when the overvoltage detection circuit 12 operates normally, the voltage value indicated by the input signal of the input terminal (+IN) of the comparator 122 becomes higher than the voltage value indicated by the input signal of the input terminal (-IN) of the comparator 122, and a high-level signal is output from the comparator 122 to the inversion circuit 16 and the delay circuit 17. In this case, the inversion circuit 16 inverts the high-level signal output from the comparator 122 and outputs a low-level signal to the FET driver D1. The FET driver D1 sets the voltage applied to the gates of the switching elements 61 and 62 to a low-level voltage lower than the operation threshold value, and turns off the first switch 6.

[0036] When the microcomputer 11 executes a fault diagnosis of the low voltage detection circuit 13, it outputs a pseudo signal to the input terminal (-IN) of the comparator 132. The pseudo signal is a high-level signal indicating a voltage value higher than the voltage value indicated by the output signal of the reference voltage unit 133. The pseudo signal is inverted by the inversion circuit 19 to a low-level signal indicating a voltage value lower than the voltage value indicated by the output signal of the reference voltage unit 133, and is input to the input terminal (-IN) of the comparator 132. Therefore, when the low voltage detection circuit 13 operates normally, the voltage value indicated by the input signal of the input terminal (-IN) of the comparator 132 becomes lower than the voltage value indicated by the input signal of the input terminal (+IN) of the comparator 122, and a high-level signal is output from the comparator 132 to the inversion circuit 16 and the delay circuit 17. In this case, the inversion circuit 16 inverts the high-level signal output from the comparator 132 and outputs a low-level signal to the FET driver D1. The FET driver D1 applies a low-level voltage that is lower than the operating threshold to the gates of the switching elements 61 and 62, thereby turning the first switch 6 off.

[0037] Current cut switch 14 is provided on power line PL3 connecting input circuits 121, 131 to power line PL1. Current cut switch 14 cuts off power line PL3 except when overvoltage detection circuit 12 and low voltage detection circuit 13 are operating, such as when performing failure diagnosis of switching elements 61, 62, overvoltage detection circuit 12, and low voltage detection circuit 13, or when the vehicle is running. In contrast, except when the vehicle is parked, microcomputer 11 outputs a current cut release signal to current cut switch 14 to release the cut-off of power line PL3 by current cut switch 14.

[0038] Current cut switch 15 is provided on power line PL4 that connects detection circuit 18 and the common source of first switch 6. When the vehicle is parked, current cut switch 15 cuts off power line PL4. When the vehicle is not parked, microcomputer 11 outputs a current cut release signal to current cut switch 15, and releases the cut-off of power line PL4 by current cut switch 15.

[0039] The detection circuit 18 is a circuit that detects ON of the first switch 6 according to the voltage of the common source of the switching elements 61, 62 of the first switch 6. This detection circuit 18 outputs a high-level detection signal to the microcomputer 11 when the voltage of the common source of the switching elements 61, 62 is equal to or higher than a threshold value. In contrast, the detection circuit 18 outputs a low-level detection signal to the microcomputer 11 when the voltage of the common source of the switching elements 61, 62 is lower than the threshold value. The threshold value is set to a low value higher than 0V but close to 0V in order to determine whether the switching elements 61, 62 are ON or not.

[0040] When performing a fault diagnosis of the switching elements 61, 62 and the overvoltage detection circuit 12, the microcomputer 11 outputs a current cut release signal to the current cut switches 14, 15 and outputs a pseudo signal to the overvoltage detection circuit 12. When the switching elements 61, 62 and the overvoltage detection circuit 12 operate normally, the switching elements 61, 62 are turned OFF and a low-level detection signal is output from the detection circuit 18. On the other hand, when at least one of the switching elements 61, 62 and the overvoltage detection circuit 12 is faulty, the switching elements 61, 62 are maintained ON and a high-level detection signal is output from the detection circuit 18. When a high-level detection signal is output from the detection circuit 18, the microcomputer 11 determines that an ON fault of the switching elements 61, 62 or a fault of the overvoltage detection circuit 12 has occurred.

[0041] When performing a fault diagnosis of the switching elements 61, 62 and the low voltage detection circuit 13, the microcomputer 11 outputs a current cut release signal to the current cut switches 14, 15 and outputs a pseudo signal to the low voltage detection circuit 13. When the switching elements 61, 62 and the low voltage detection circuit 13 operate normally, the switching elements 61, 62 are turned OFF and a low level detection signal is output from the detection circuit 18. On the other hand, when at least one of the switching elements 61, 62 and the low voltage detection circuit 13 is faulty, the switching elements 61, 62 are maintained ON and a high level detection signal is output from the detection circuit 18. When a high level detection signal is output from the detection circuit 18, the microcomputer 11 determines that the switching elements 61, 62 have an ON fault or that the low voltage detection circuit 13 has a fault.

[0042] Fig. 2 is a flowchart showing a process for performing fault diagnosis (hereinafter, fault diagnosis) of the switching elements 61 and 62, the overvoltage detection circuit 12, and the low voltage detection circuit 13. Fig. 3 is a timing chart showing waveforms of various signals when the fault diagnosis is performed.

[0043] When performing a fault diagnosis, first, microcomputer 11 turns ON the current cut release signal output to current cut switches 14 and 15 (step S1 in FIG. 2, T1 in FIG. 3). This releases the cut-off of power line PL3 by current cut switch 14 and the cut-off of power line PL4 by current cut switch 15, connects overvoltage detection circuit 12 and low voltage detection circuit 13 to power line PL1, and connects detection circuit 18 to the common source of switching elements 61 and 62.

[0044] Next, the microcomputer 11 turns on (high level) the switch control signal of the second switch 7 output to the FET driver D2 (step S2 in FIG. 2, T2 in FIG. 3). This turns on the second switch 7, and connects the backup battery 4 to the backup ADAS 2.

[0045] Next, the microcomputer 11 turns ON the pseudo signal output to the input terminal (+IN) of the comparator 122 of the overvoltage detection circuit 12 (step S3 in FIG. 2, T3 in FIG. 3). Next, the microcomputer 11 judges whether or not the detection signal output from the detection circuit 18 is at a low level (step S4 in FIG. 2). If the detection signal output from the detection circuit 18 is at a high level (NO in step S4 in FIG. 2), the microcomputer 11 judges that there is a short-circuit failure (ON failure) of the switching elements 61, 62 or a failure of the overvoltage detection circuit 12 (step S5 in FIG. 2). On the other hand, if the detection signal output from the detection circuit 18 is at a low level (YES in step S4 in FIG. 2), the microcomputer 11 turns OFF the pseudo signal (step S6 in FIG. 2, T4 in FIG. 3).

[0046] Next, the microcomputer 11 turns ON the pseudo signal output to the input terminal (-IN) of the comparator 132 of the low voltage detection circuit 13 (step S7 in FIG. 2, T5 in FIG. 3). Next, the microcomputer 11 judges whether or not the detection signal output from the detection circuit 18 is at a low level (step S8 in FIG. 2). If the detection signal output from the detection circuit 18 is at a high level (NO in step S8 in FIG. 2), the microcomputer 11 judges that there is a short-circuit failure of the switching elements 61, 62 or a failure of the low voltage detection circuit 13 (step S9 in FIG. 2). On the other hand, if the detection signal output from the detection circuit 18 is at a low level (YES in step S8 in FIG. 2), the microcomputer 11 turns OFF the pseudo signal (step S10 in FIG. 2, T6 in FIG. 3).

[0047] Next, the microcomputer 11 turns off (low level) the switch control signal of the second switch 7 output to the FET driver D2 (step S11 in FIG. 2, T7 in FIG. 3). This turns off the second switch 7, and disconnects the backup battery 4 from the backup ADAS 2.

[0048] Finally, microcomputer 11 turns OFF the current cut release signal output to current cut switches 14, 15 (step S12 in FIG. 2, T8 in FIG. 3). As a result, current cut switch 14 cuts off power line PL3, and current cut switch 15 cuts off power line PL4. Therefore, overvoltage detection circuit 12 and low voltage detection circuit 13 are cut off from power line PL1, and detection circuit 18 is cut off from first switch 6. This ends the fault diagnosis process.

[0049] As described above, the diagnostic device 10 of this embodiment performs fault diagnosis on the switching elements 61, 62, the overvoltage detection circuit 12, and the low voltage detection circuit 13 of the redundant system. This redundant system includes the main battery 3, the backup battery 4, the power line PL1, the switching elements 61, 62, the power line PL2, the switching elements 71, 72, the overvoltage detection circuit 12, the low voltage detection circuit 13, and the FET driver D1.

[0050] The main battery 3 supplies power to the main ADAS 1, and the backup battery 4 supplies power to the backup ADAS 2. A power line PL1 connects the backup ADAS 2 and the main battery 3, and a first switch 6 consisting of switching elements 61 and 62 is provided on the power line PL1. A power line PL2 connects the first switch 6 and the backup ADAS 2 on the power line PL1 with the backup battery 4, and a second switch 7 consisting of switching elements 71 and 72 is provided on the power line PL2.

[0051] The overvoltage detection circuit 12 detects an overvoltage state occurring on the power line PL1 or the power line PL2, and the low voltage detection circuit 13 detects a low voltage state occurring on the power line PL1 or the power line PL2. In addition, the FET driver D1 turns off the first switch 6 when the overvoltage detection circuit 12 detects an overvoltage state or the low voltage detection circuit 13 detects a low voltage state.

[0052] The diagnostic device 10 includes a microcomputer 11 and a detection circuit 18. The microcomputer 11 outputs a pseudo signal for simulating an abnormal state such as an overvoltage or low voltage occurring on the power line PL1 or the power line PL2 to the overvoltage detection circuit 12 and the low voltage detection circuit 13. After the pseudo signal is output by the microcomputer 11, the detection circuit 18 detects that the switching elements 61, 62 of the first switch 6 are ON. When the detection circuit 18 detects that the switching elements 61, 62 of the first switch 6 are ON, the microcomputer 11 determines that the switching elements 61, 62 of the first switch 6 are faulty, or that the overvoltage detection circuit 12 and the low voltage detection circuit 13 are faulty.

[0053] This makes it possible to connect the backup battery 4 to the backup ADAS 2 to ensure redundancy between the ADAS 1, 2 and the main battery 3 and backup battery 4, and to perform fault diagnosis on the switching elements 61, 62 of the first switch 6 and abnormality detection circuits such as the overvoltage detection circuit 12 and the low voltage detection circuit 13.

[0054] Furthermore, in the diagnostic device 10 of this embodiment, a current cut switch 14 is provided on the power line PL3 that connects the power line PL1 to abnormality detection circuits such as the overvoltage detection circuit 12 and the low voltage detection circuit 13. The microcomputer 11 outputs a current cut release signal that releases the current cut by the current cut switch 14 to the current cut switch 14 before the pseudo signal is output. This makes it possible to cut off the dark current supplied from the main battery 3 to the abnormality detection circuit except when a fault diagnosis is being performed, thereby reducing power consumption.

[0055] Furthermore, in the diagnostic device 10 of this embodiment, a current cut switch 15 is provided on the power line PL4 connecting the switching elements 61, 62 of the first switch 6 and the detection circuit 18. The microcomputer 11 outputs a current cut release signal for releasing the current cut by the current cut switch 15 to the current cut switch 15 before the pseudo signal is output. This makes it possible to cut off the dark current supplied from the main battery 3 to the detection circuit 18, except when a fault diagnosis is being performed or when the overvoltage detection circuit 12 and the low voltage detection circuit 13 are operating, such as while the vehicle is running, and thus makes it possible to reduce power consumption.

[0056] The present invention has been described above based on the above embodiment, but the present invention is not limited to the above embodiment, and modifications may be made to the above embodiment without departing from the spirit of the present invention, and publicly known or well-known technologies may be combined as appropriate.

[0057] For example, in the above embodiment, the loads to be provided with redundancy are the ADAS1 and 2, but the load to be provided with redundancy may be other loads such as power steering, etc. Also, in the above embodiment, the abnormality detection circuits are the overvoltage detection circuit 12 and the low voltage detection circuit 13, but the abnormality detection circuit may be other circuits such as an overcurrent detection circuit that detects an overcurrent in the power line PL1 or an overheat detection circuit that detects overheating of the power line PL1. [Explanation of symbols]

[0058] 1: ADAS (first load) 2: ADAS (second load) 3: Main battery (first storage battery) 4: Backup battery (second storage battery) 5: DC / DC converter 10: Diagnostic device (diagnostic device for switching elements and abnormality detection circuits) 11: Microcomputer (first to third signal output units, judgment unit) 12: Overvoltage detection circuit (abnormality detection circuit) 13: Low voltage detection circuit (abnormality detection circuit) 14: Current cut switch (first current cut switch) 15: Current cut switch (second current cut switch) 18: Detection circuit (detection section) 61: Switching element (first switching element) 62: Switching element (first switching element) 71: Switching element (second switching element) 72: Switching element (second switching element) D1: FET driver (driver) PL1: Power line (first power line) PL2: Power line (second power line) PL3: Power line (third power line) PL4: Power line (fourth power line)

Claims

1. a first storage battery that supplies power to a first load, a second storage battery that supplies power to a second load when an abnormality occurs on the first storage battery side, a first power line that connects the second load and the first storage battery, a first switching element provided on the first power line, a second power line that connects a portion of the first power line between the first switching element and the second load and the second storage battery, a second switching element provided on the second power line, an abnormality detection circuit that detects an abnormal state occurring on the first power line or the second power line, and a driver that turns off the first switching element when the abnormality detection circuit detects the abnormal state, a first signal output unit that outputs a pseudo signal for simulating the abnormal state to the abnormality detection circuit; a detection unit that detects that the first switching element is ON after the first signal output unit outputs the pseudo signal; a determination unit that determines, when the detection unit detects that the first switching element is ON, that a failure has occurred in the first switching element or in the abnormality detection circuit; A diagnostic device for a switching element and an abnormality detection circuit comprising the same.

2. a first current cut switch provided on a third power line connecting the first power line and the abnormality detection circuit; a second signal output unit that outputs a first release signal for releasing the current cut-off by the first current cut switch to the first current cut switch before the first signal output unit outputs the pseudo signal; The diagnostic device for a switching element and an abnormality detection circuit according to claim 1 ,

3. a second current cut switch provided on a fourth power line connecting the first switching element and the detection unit; a third signal output unit that outputs a second release signal for releasing the current cut-off by the second current cut switch to the second current cut switch before the first signal output unit outputs the pseudo signal; 3. The diagnostic device for a switching element and an abnormality detection circuit according to claim 1, further comprising:

4. The abnormality detection circuit includes: an overvoltage detection circuit that detects an overvoltage state as the abnormal state; a low voltage detection circuit that detects a low voltage state as the abnormal state; Equipped with 3. The diagnostic device for a switching element and an abnormality detection circuit as described in claim 1 or 2, wherein the driver turns off the first switching element when the overvoltage state is detected by the overvoltage detection circuit and when the low voltage state is detected by the low voltage detection circuit.

Citation Information

Patent Citations

  • Input interface circuit and semiconductor device

    JP2003243978A

  • Electronic device

    JP2015089328A

  • Control device

    JP2016032308A

  • Power supply device

    JP2018042343A

  • Backup power supply system, failure diagnosis method for backup power supply system, and program

    JP2022072398A