In-vehicle device, information processing method, and program

The in-vehicle device adjusts semiconductor fuse protection based on power consumption, reducing power usage and enhancing safety by optimizing fuse operations according to the vehicle's state.

JP7838513B2Active Publication Date: 2026-04-01AUTONETWORKS TECH LTD +2
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-24
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing power supply control devices in vehicles do not adjust the cutoff characteristics of semiconductor fuses based on the vehicle's power consumption state, leading to inefficiencies and potential safety issues.

Method used

An in-vehicle device that controls the opening and closing of semiconductor fuses, including a main line and branch line fuses, adjusts their protection functions based on the vehicle's power consumption state, using a control unit to activate or deactivate these fuses accordingly.

Benefits of technology

This approach reduces power consumption, especially in standby modes, enhances safety by optimizing fuse protection, and extends the lifespan of mechanical relays by minimizing unnecessary operations.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an on-vehicle device etc. for changing cutoff characteristics of a semiconductor fuse according to a power consumption state of a vehicle.SOLUTION: An on-vehicle device that performs opening / closing control of a plurality of semiconductor fuses installed in a power supply line from a power supply device mounted in a vehicle, includes a control unit that performs processing related to the opening / closing control of the semiconductor fuses. The semiconductor fuses include a main-line semiconductor fuse disposed in a main line and a branch-line semiconductor fuse disposed in each of a plurality of branch lines branched from the main line. The control unit acquires information on a power consumption state of the vehicle, and according to the acquired information on the power consumption state of the vehicle, validates a protection function of the main-line semiconductor fuse, and invalidates the protection function of the branch-line semiconductor fuse.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] This technology relates to an in-vehicle device, an information processing method, and a program.

Background Art

[0002] Vehicles are equipped with a power supply control device (see, for example, Patent Document 1) that controls power supply from a battery to a load. In the power supply control device described in Patent Document 1, a downstream semiconductor fuse is provided in the current path of the current flowing from the battery to the load, and the power supply from the battery to the load is controlled by switching the downstream semiconductor fuse on or off.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, the power supply control device described in Patent Document 1 does not consider changing the cutoff characteristics of the semiconductor fuse according to the power consumption state of the vehicle.

[0005] The present disclosure has been made in view of such circumstances, and an object thereof is to provide an in-vehicle device or the like that can change the cutoff characteristics of a semiconductor fuse according to the power consumption state of a vehicle.

Means for Solving the Problems

[0006] An in-vehicle device according to one embodiment of the present disclosure is an in-vehicle device that controls the opening and closing of a plurality of semiconductor fuses provided in a power line from a power supply device mounted on a vehicle, and comprises a control unit that performs processing related to the opening and closing control of the semiconductor fuses, wherein the semiconductor fuses include a main line semiconductor fuse arranged on the main line and each branch line semiconductor fuse arranged on each of the branch lines branching off from the main line, and the control unit acquires information regarding the power consumption state of the vehicle, and activates the protection function of the main line semiconductor fuse and deactivates the protection function of the branch line semiconductor fuse according to the acquired information regarding the power consumption state of the vehicle. [Effects of the Invention]

[0007] According to one aspect of this disclosure, it is possible to provide an in-vehicle device, etc., that changes the interruption characteristics of a semiconductor fuse according to the power consumption state of the vehicle. [Brief explanation of the drawing]

[0008] [Figure 1] This is a schematic diagram illustrating the configuration of an in-vehicle system including an in-vehicle device according to Embodiment 1. [Figure 2] This is a block diagram illustrating the internal configuration of an in-vehicle device. [Figure 3] This is an explanatory diagram illustrating the setting of the interruption characteristics of semiconductor fuses for main lines. [Figure 4] This is a flowchart illustrating the processing steps of the control unit of an in-vehicle device. [Modes for carrying out the invention]

[0009] [Description of Embodiments of the Invention] First, embodiments of this disclosure will be listed and described. Furthermore, at least some of the embodiments described below may be combined in any way.

[0010] (1) An in-vehicle device according to one aspect of the present disclosure is an in-vehicle device that controls the opening and closing of a plurality of semiconductor fuses provided in a power line from a power supply device mounted on a vehicle, and comprises a control unit that performs processing related to the opening and closing control of the semiconductor fuses, wherein the semiconductor fuses include a main line semiconductor fuse arranged on the main line and each branch line semiconductor fuse arranged on each of the branch lines branched from the main line, and the control unit acquires information regarding the power consumption state of the vehicle, and activates the protection function of the main line semiconductor fuse and deactivates the protection function of the branch line semiconductor fuse according to the acquired information regarding the power consumption state of the vehicle.

[0011] In this embodiment, the control unit of the in-vehicle device controls the opening and closing of a semiconductor fuse provided on the power line from the power supply unit. When an overcurrent flows through the power line, the control unit turns off (opens) the semiconductor fuse according to the interruption characteristics defined for the semiconductor fuse, thereby interrupting the overcurrent. If an in-vehicle load such as an actuator is connected to the semiconductor fuse, the control unit of the in-vehicle device may control the semiconductor fuse on and off (open / close) in response to a drive request for the in-vehicle load. The semiconductor fuse includes a main line semiconductor fuse located on the main line and each of the branch line semiconductor fuses located on each of the branch lines branching off from the main line. In the direction of current flow from the power supply unit, the main line semiconductor fuse is located upstream, and each of the branch line semiconductor fuses is located downstream of the main line semiconductor fuse. The semiconductor fuse, including the main line semiconductor fuse and the branch line semiconductor fuses, is turned off (open) by the control unit when an overcurrent flows for a predetermined period of time or longer, according to the set interruption characteristics, thereby providing a protective function that interrupts the overcurrent. Furthermore, semiconductor fuses, including main line semiconductor fuses and branch line semiconductor fuses, may be controlled by a control unit to open and close (on / off control), thereby starting or stopping the power supply to the on-board load connected to the semiconductor fuse, and performing drive control of the on-board load (exhibiting a drive control function). The control unit of the on-board device may acquire information regarding the vehicle's power consumption status by acquiring signals from, for example, an IG switch or power switch that controls the starting and stopping of the vehicle. Alternatively, the control unit of the on-board device may acquire information regarding the vehicle's power consumption status by acquiring, for example, information regarding vehicle speed, information regarding the rotation of the engine or drive motor, etc., from an on-board ECU connected to an on-board network. Thus, the vehicle's power consumption status may indicate the state of power consumed in the vehicle, depending on whether the vehicle is in a driving state (started state) or a parked state (stopped state).The control unit of the in-vehicle device activates the protection function of the main semiconductor fuse and deactivates the protection function of each branch line semiconductor fuse located on each of the multiple branch lines, based on information regarding the vehicle's power consumption status. In other words, depending on the vehicle's power consumption status, the protection function of the main semiconductor fuse is used to protect the main line and the multiple branch lines branched from the main line, thus ensuring safety as an in-vehicle system. By deactivating each branch line semiconductor fuse, the dark current required for the branch line semiconductor fuse to perform its protection function can be reduced. This reduces the vehicle's power consumption, especially in standby states (low power consumption mode) such as when parked.

[0012] (2) In an in-vehicle device according to one aspect of the present disclosure, the control unit sets the interruption characteristics of the main semiconductor fuse such that, in order to enable the protection function of the main semiconductor fuse, the smoke emission characteristics corresponding to the plurality of branch lines are lower than the sum of the current values ​​flowing through the plurality of branch lines when the vehicle is in standby mode.

[0013] In this embodiment, the control unit of the in-vehicle device, in activating the protection function of the main semiconductor fuse, sets the interruption characteristics of the main semiconductor fuse to be lower than the smoke emission characteristics corresponding to the multiple branch lines, and higher than the sum of the current values ​​flowing through the multiple branch lines when the vehicle is in standby mode. The smoke emission characteristics corresponding to the multiple branch lines are, for example, the sum of the smoke emission characteristics of each of these branch lines. Alternatively, the smoke emission characteristics corresponding to the multiple branch lines may be the sum of the smoke emission characteristics of each of the in-vehicle loads (devices) such as sensors or actuators connected to each of these branch lines. The sum of the current values ​​flowing through the multiple branch lines when the vehicle is in standby mode may be a predetermined assumed value used as the maximum current value flowing through the main line in that standby state. If the interruption characteristics of the main semiconductor fuse are set to, for example, an initial value (initial setting) or to a normal state (normal current mode) where a relatively large current flows through the main line, the control unit of the on-board device may change the interruption characteristics from the initial setting so that they fall below the smoke emission characteristics and exceed the sum of the current values. When the vehicle is in standby mode, the lower limit of the current value determined according to the smoke emission characteristics for each branch line is assumed to be, for example, about 10 times the sum of the current values ​​flowing through each branch line. In such a case, the setting range of the interruption characteristics of the main semiconductor fuse can be made relatively wide by setting the smoke emission characteristics for each branch line as the upper limit and the sum of the current values ​​flowing through each branch line when the vehicle is in standby mode as the lower limit. In this case, the tripping characteristics of the main semiconductor fuse in standby mode (low current consumption mode) may be set to a value near the midpoint (midrange) between the smoke emission characteristics corresponding to multiple branch lines and the sum of the current values ​​flowing through multiple branch lines when the vehicle is in standby mode.Therefore, for example, by setting the interruption characteristics of the main semiconductor fuse to around the midrange, the influence of errors in on-resistance by the main semiconductor fuse or in current value detection when performing interruption control can be reduced, resulting in a relatively robust control method that efficiently ensures safety as an in-vehicle system.

[0014] (3) An in-vehicle device according to one aspect of the present disclosure, wherein the power consumption state of the vehicle includes a normal state and a standby state in which power consumption is less than that of the normal state, and the control unit activates the protection function of the main semiconductor fuse and deactivates the protection function of the branch line semiconductor fuse when the acquired information regarding the power consumption state of the vehicle indicates the standby state, and deactivates the protection function of the main semiconductor fuse and activates the protection function of the branch line semiconductor fuse when the acquired information regarding the power consumption state of the vehicle indicates the normal state.

[0015] In this embodiment, the vehicle's power consumption state includes a normal state and a standby state (low current consumption mode) in which power consumption is lower than that of the normal state (normal current mode). The normal state includes, for example, the state in which the vehicle is running (starting up), and may indicate a state in which the vehicle's power consumption is above a predetermined value (normal current mode). The standby state includes, for example, the state in which the vehicle is parked (stopped), and may indicate a state in which the vehicle's power consumption is below a predetermined value (low current consumption mode). When the acquired information regarding the vehicle's power consumption state indicates a normal state (the vehicle is in a normal state), the control unit disables the protection function of the main line semiconductor fuse and enables the protection function of the branch line semiconductor fuse. stand-by When indicating the status (when the vehicle is in standby mode), the protection function of the main circuit semiconductor fuse is activated. Yes Activates the protection function of the semiconductor fuse for branch lines. NothingActivate. Thus, by complementarily activating or deactivating the main-line semiconductor fuse and the branch-line semiconductor fuse according to the power consumption state of the vehicle (normal state or standby state), the power consumption required for controlling the deactivated semiconductor fuse (main-line semiconductor fuse or branch-line semiconductor fuse) can be reduced. By providing the main-line semiconductor fuse and the branch-line semiconductor fuse for which such complementary control is performed, the degree of freedom in design or implementation of a configuration for reducing dark current in a standby state (low consumption current mode) such as during parking can be improved.

[0016] (4) The in-vehicle device according to one aspect of the present disclosure includes a mechanical relay connected in parallel to the main-line semiconductor fuse, and when the vehicle is in a standby state, the control unit maintains the mechanical relay in an open state.

[0017] In this aspect, the in-vehicle device includes a mechanical relay connected in parallel to the main-line semiconductor fuse. That is, for example, the main line that forms a part of the power supply line extending from a power supply device such as a lead battery includes the main line where the semiconductor fuse is disposed and the main line where the mechanical relay is disposed, and a parallel circuit is formed by the main line of the semiconductor fuse and the main line of the mechanical relay. A fuse (fuse-type fuse) may also be disposed on the main line where the mechanical relay is disposed. In this case, in the main line, the mechanical relay and the fuse (fuse-type fuse) are connected in series. When the vehicle is in a standby state (low consumption current mode) such as during parking, the control unit of the in-vehicle device maintains the mechanical relay in an open state (off), so that the opening and closing operation of the mechanical relay in the standby state can be made unnecessary, and thereby the durability count (usable period, component life) of the mechanical relay can be improved.

[0018] (5) The in-vehicle device according to one aspect of the present disclosure, the control unit acquires a current value flowing through the main line where the main-line semiconductor fuse is disposed, and based on the acquired current value, performs cutoff control on the main-line semiconductor fuse for which cutoff characteristics corresponding to the standby state are set.

[0019] In this embodiment, the control unit of the in-vehicle device acquires the current value flowing through the main line from a current detection unit that detects the current flowing through the main line on which a main line semiconductor fuse is located. The current detection unit is composed of, for example, a shunt resistor provided on the main line on which the main line semiconductor fuse is located. Alternatively, if the main line semiconductor fuse is composed of, for example, an IPD (Intelligent Power Device), the current detection unit built into the IPD may be used. Based on the current value detected by the current detection unit, the control unit of the in-vehicle device performs tripping control on the main line semiconductor fuse according to the tripping characteristics set according to the standby state. These tripping characteristics may be shown as a tripping characteristic curve in a characteristic graph with the vertical axis representing the current value (A) and the horizontal axis representing the elapsed time (S), and these tripping characteristic curves may be stored in a memory unit. The control unit of the in-vehicle device refers to the interruption characteristic curve stored in the memory unit and, according to the current value detected by the current detection unit and the elapsed time, opens (turns off) the main line semiconductor fuse to interrupt the current (overcurrent) flowing through the main line. Even if the protection functions of each branch line semiconductor fuse directly connected to individual in-vehicle devices such as actuators are disabled in standby mode (low current consumption mode) such as when parked, interruption control can be performed using the main line semiconductor fuse, which has an interruption characteristic set according to the standby mode. This makes it possible to efficiently ensure safety as an in-vehicle system while reducing dark current in standby mode (low current consumption mode).

[0020] (6) A program according to one aspect of the present disclosure is a program that causes a computer to perform processing to control the opening and closing of a plurality of semiconductor fuses provided in a power line from a power supply device mounted on a vehicle, wherein the semiconductor fuses include a main line semiconductor fuse provided in the main line and each branch line semiconductor fuse provided in each of the branch lines branched off from the main line, and the program acquires information regarding the power consumption state of the vehicle, and, in accordance with the acquired information regarding the power consumption state of the vehicle, performs processing to enable the protection function of the main line semiconductor fuse and disable the protection function of the branch line semiconductor fuse.

[0021] In this aspect, it is possible to provide a program that causes a computer to function as an in-vehicle device that changes the cutoff characteristics of a main-line semiconductor fuse according to the power consumption state of a vehicle.

[0022] (7) An information processing method according to an aspect of the present disclosure is an information processing method for causing a computer that performs opening / closing control of a plurality of semiconductor fuses provided on a power supply line from a power supply device mounted on a vehicle to execute processing. The semiconductor fuses include a main-line semiconductor fuse disposed on a main line and semiconductor fuses for branch lines respectively disposed on each of a plurality of branch lines branched from the main line. Information regarding the power consumption state of the vehicle is acquired, and according to the acquired information regarding the power consumption state of the vehicle, a process is executed to activate the protection function of the main-line semiconductor fuse and deactivate the protection function of the semiconductor fuses for branch lines.

[0023] In this aspect, it is possible to provide an information processing method that causes a computer to function as an in-vehicle device that changes the cutoff characteristics of a main-line semiconductor fuse according to the power consumption state of a vehicle.

[0024] [Details of Embodiments of the Present Disclosure] The present disclosure will be specifically described based on the drawings showing its embodiments. The in-vehicle device 1 according to an embodiment of the present disclosure will be described below with reference to the drawings. Note that the present disclosure is not limited to these examples, and is intended to be indicated by the claims and to include all modifications within the meaning and scope equivalent to the claims.

[0025] (Embodiment 1) The embodiments will be described below with reference to the drawings. Figure 1 is a schematic diagram illustrating the configuration of an in-vehicle system S including an in-vehicle device 1 according to Embodiment 1. Figure 2 is a block diagram illustrating the internal configuration of the in-vehicle device 1. The in-vehicle system S consists of an in-vehicle device 1 mounted on a vehicle C, an in-vehicle ECU 2, and an in-vehicle network 3 that connects them in a communicative manner. The in-vehicle network 3 consists of a plurality of communication lines 31. When communication in the in-vehicle network 3 is performed according to a communication protocol such as CAN (Controller Area Network) or CAN-FD, the communication lines 31 correspond to a CAN bus.

[0026] Vehicle C is equipped with a power supply unit 5 consisting of a lead-acid battery, alternator, or secondary battery. The power supply unit 5 and the on-board device 1 are connected by a power line 51. The power supply unit 5 and the on-board device 1 are not limited to being directly connected by the power line 51; they may also be indirectly connected through an electrical box (junction box) such as a relay box or fuse box 521 box between the power supply unit 5 and the on-board device 1.

[0027] The in-vehicle device 1 and the multiple in-vehicle loads 6 or in-vehicle ECUs 2 are connected by a power line 51 (branch line 512), and the in-vehicle device 1 distributes power to these multiple in-vehicle loads 6 or in-vehicle ECUs 2. In other words, the in-vehicle device 1 functions as a power distribution device that distributes the power supplied from the power supply device 5 via the power line 51 to the multiple in-vehicle loads 6 or in-vehicle ECUs 2 located downstream in the direction of current flow.

[0028] The power line 51 extending from the power supply unit 5 is connected to the main semiconductor fuse 531 provided in the on-board device 1. The power line 51 is located inside the on-board device 1 and includes a main line 511 to which the main semiconductor fuse 531 is connected, and a plurality of branch lines 512 to which the main line 511 branches off. The main line 511 includes the main line 511 to which the main semiconductor fuse 531 is connected, and the main line 511 to which the fuse 521 (fusible fuse) and the mechanical relay 52 are connected. The main line 511 of the main semiconductor fuse 531 and the main line 511 of the fuse 521 (fusible fuse), etc., constitute a parallel circuit. That is, the main semiconductor fuse 531, the fuse 521 (fusible fuse), and the mechanical relay 52 are connected in parallel.

[0029] A current detection unit 513 is positioned between the main semiconductor fuse 531 and the branching point where the main line 511 branches into multiple branch lines 512. The current detection unit 513 may be provided on the main line 511 where the main semiconductor fuse 531 is located. The current detection unit 513 periodically or continuously detects the value of the current flowing through the main semiconductor fuse 531 (current value). The current detection unit 513 is a current sensor, for example, composed of a shunt resistor, and outputs the detected current value to the control unit 11 of the in-vehicle device 1. Alternatively, the current detection unit 513 may be a current sensor (main line current sensor) built into the IPD (Intelligent Power Device) that constitutes the main semiconductor fuse 531.

[0030] Each of the multiple branch lines 512 is equipped with a branch line semiconductor fuse 532. The branch line semiconductor fuse 532 is made of, for example, an IPD (Intelligent Power Device). The branch line semiconductor fuse 532 equipped with each of these branch lines 512 is positioned downstream of the main line semiconductor fuse 531 in the direction of current flow from the power line 51. An in-vehicle load 6 or an in-vehicle ECU 2 is connected to the branch line 512 that is located downstream of the branch line semiconductor fuse 532 in the direction of current flow from the power line 51.

[0031] The vehicle load 6 is, for example, an actuator such as a car air conditioner, lamps, or drive motor. The vehicle ECU 2 includes a microcontroller with communication functions and performs predetermined calculation processing based on values ​​detected from sensors or output values ​​from various switches. These vehicle loads 6, etc., are started or stopped by starting or cutting off power supply in accordance with the opening and closing control (on / off control) of the semiconductor fuse 532 for branch lines located in the branch line 512. The vehicle device 1 functions as a power control device that controls the starting or stopping of the vehicle loads 6, etc. by performing the opening and closing control (on / off control) of these semiconductor fuses 532 for branch lines.

[0032] The on-board device 1 functions as a power control device that controls the starting or stopping of the on-board ECU 2, and may be a device with relay functions such as a CAN gateway. Alternatively, the on-board device 1 may be an integrated ECU (vehicle computer) that comprehensively controls the entire vehicle C and has relay functions. Alternatively, the on-board device 1 may be an individual ECU connected under the integrated ECU and located in each area of ​​the vehicle C. Alternatively, the on-board device 1 may be configured as a body ECU that controls the body system actuators of the vehicle C. Alternatively, the on-board device 1 may be a PLB (Power LAN Box) that, in addition to relaying communications, also functions as a power distribution device that distributes and relays power output from a power supply device 5 such as a secondary battery and supplies power to on-board equipment such as actuators. Various on-board devices such as switches, sensors, or actuators may be connected to the on-board device 1.

[0033] The in-vehicle device 1 includes a control unit 11, a storage unit 12, a communication unit 13, and an input / output interface 14. The control unit 11 is composed of a CPU (Central Processing Unit) or an MPU (Micro Processing Unit), and performs various control and calculation processes by reading and executing a control program P (program product) and data pre-stored in the storage unit 12.

[0034] The storage unit 12 is composed of volatile memory elements such as RAM (Random Access Memory), non-volatile memory elements such as ROM (Read Only Memory), EEPROM (Electrically Erasable Programmable ROM), or flash memory, or a combination of these storage devices, and stores in advance the control program P (program product) and data referenced during processing. The control program P (program product) stored in the storage unit 12 may be a control program P (program product) read from a recording medium M that the in-vehicle device 1 can read. Alternatively, the control program P (program product) may be downloaded from an external computer (not shown) connected to a communication network (not shown) and stored in the storage unit 12.

[0035] The communication unit 13 is an input / output interface using a communication protocol such as CAN, CAN-FD, or Ethernet (Ethernet / registered trademark), and the control unit 11 communicates with the in-vehicle ECU 2 connected to the in-vehicle network 3 via the communication unit 13. In the in-vehicle device 1, there may be multiple communication units 13.

[0036] The input / output interface 14 is, for example, a communication interface for serial communication. The input / output interface 14 includes multiple terminals (output terminals), and each terminal is connected to a signal line 140 that extends to the main semiconductor fuse 531, the current detection unit 513, the mechanical relay 52, and the branch line semiconductor fuse 532, respectively. The signal line 140 is composed of, for example, a serial cable, a wire harness, or a conductive cable (direct wire) that transmits only one signal.

[0037] The main semiconductor fuse 531 is composed of, for example, a FET (Field Effect Transistor). Alternatively, the main semiconductor fuse 531 may be composed of an IPD including the FET. The control unit 11 of the in-vehicle device 1 controls the tripping of the main semiconductor fuse 531 according to the tripping characteristics of the main semiconductor fuse 531, based on the current value output from the current detection unit 513. As will be described in detail later, the tripping characteristics of the main semiconductor fuse 531 are variably set according to the power consumption state of the vehicle C (normal state or standby state).

[0038] The semiconductor fuse 532 for the branch line is constructed, for example, using an FET (Field Effect Transistor). Or, Semiconductor fuse 532 for branch lines This may be composed of an IPD including the FET, etc. The control unit 11 of the in-vehicle device 1, for example, based on the current value output from a current sensor (branch line 512 current sensor) etc. built into the IPD constituting the semiconductor fuse 532 for the branch line, Semiconductor fuse 532 for branch lines Depending on the blocking characteristics, Semiconductor fuse 532 for branch lines It performs shutoff control.

[0039] Figure 3 is an explanatory diagram illustrating the setting of the interruption characteristics of the main line semiconductor fuse 531. The interruption characteristics of the main line semiconductor fuse 531 and the smoke emission characteristics of the branch line 512 are both shown on a characteristic graph with the vertical axis representing current value (A) and the horizontal axis representing elapsed time (S).

[0040] The interruption characteristic defines the time it takes for a semiconductor fuse, such as the main line semiconductor fuse 531 or the branch line semiconductor fuse 532, to interrupt the current (equivalent to the blowing time in fuse 521) when an overcurrent exceeding the rated current value flows through it. If the value of the current flowing through the semiconductor fuse is less than or equal to the rated current value, the semiconductor fuse will not interrupt and will continue to carry a current of that value or less.

[0041] The semiconductor fuse 531 for the main line is set to have tripping characteristics corresponding to the standby state (low current consumption mode). The semiconductor fuse 532 for the branch line is set to have tripping characteristics corresponding to the normal state (normal current mode). Details of these standby state (low current consumption mode) and normal state (normal current mode) will be described later.

[0042] The interruption characteristics of the main semiconductor fuse 531 may be set by the control unit 11 of the on-board device 1 as a variable characteristic value that allows the current value to be moved up or down in the vertical axis direction, i.e., for the same elapsed time. When the interruption characteristics of the main semiconductor fuse 531 are high, the rated current value is also high, and the time until interruption in the event of an overcurrent is also long. When the interruption characteristics of the main semiconductor fuse 531 are low, the rated current value is also low, and the time until interruption in the event of an overcurrent is shortened. In other words, the product of the current value (overcurrent value) and the time until interruption (integrated current value) goes up or down depending on whether the interruption characteristics are high or low.

[0043] The tripping characteristics of the main semiconductor fuse 531 in standby mode (fuse tripping characteristics in low current consumption mode) are set to be lower than the sum of the smoke emission characteristics (sum of the sum of the smoke emission characteristics (device characteristics) of the branch lines 512 into which the main line 511 branches or the smoke emission characteristics (device characteristics) of the vehicle load connected to the branch lines 512 (downstream smoke emission characteristics / device characteristics), by applying, for example, a predetermined offset value. Furthermore, the tripping characteristics of the main semiconductor fuse 531 in standby mode (fuse tripping characteristics in low current consumption mode) are set to be lower than the sum of the current values ​​flowing through each of the branch lines 512 into which the main line 511 branches in standby mode (for example, power consumption when parked). flow It is set to exceed the sum of the above values.

[0044] In other words, the tripping characteristics of the main semiconductor fuse 531 in standby mode (fuse tripping characteristics in low current consumption mode) are set to be lower than the smoke emission characteristics corresponding to the multiple branch lines 512, and higher than the sum of the current values ​​(aggregate value) flowing through the multiple branch lines 512 when vehicle C is in standby mode. As a result, in standby mode, tripping control can be performed according to the tripping characteristics of the main semiconductor fuse 531 without exceeding the allowable values ​​defined by the smoke emission characteristics or device characteristics of the multiple branch lines 512, etc., and the multiple branch lines 512, etc. can be reliably protected from overcurrent.

[0045] The interruption characteristics of the main semiconductor fuse 531 in the standby state (fuse interruption characteristics in low current consumption mode) are set to be lower than those of the fuse 521 (fusible fuse) in the normal state (fuse interruption characteristics in normal current mode (mechanical relay)). In the normal state, the interruption characteristics of the main semiconductor fuse 531 may be set (changed) to be the same as those of the fuse 521 (fusible fuse) (fuse interruption characteristics in normal current mode (mechanical relay)). In this case, the protection function of the main semiconductor fuse 531 is always enabled, and the interruption characteristics of the main semiconductor fuse 531 are changed to either the standby state interruption characteristics or the normal state interruption characteristics depending on the power consumption state of vehicle C. As a result, in the normal state, the fuse 521 (fusible fuse) and mechanical relay 52 and the main line semiconductor fuse 531 are connected in parallel and have the same interrupting characteristics, thus enabling redundancy through a parallel circuit of the fuse 521 (fusible fuse) and mechanical relay 52 and the main line semiconductor fuse 531. The interrupting characteristics of the main line semiconductor fuse 531 in the standby state (fuse interrupting characteristics in low current consumption mode) are further set to be lower than the interrupting characteristics of the branch line semiconductor fuse 532 in the normal state (interrupting characteristics of downstream semiconductor fuses).

[0046] Figure 4 is a flowchart illustrating the processing of the control unit 11 of the in-vehicle device 1. The control unit 11 of the in-vehicle device 1 routinely performs the following processing when the vehicle C is stopped or started.

[0047] The control unit 11 of the in-vehicle device 1 acquires information regarding the power consumption status of vehicle C (S101). The control unit 11 of the in-vehicle device 1 determines whether vehicle C is in an active state or a stopped state by acquiring signals from, for example, an IG switch or power switch that controls the starting and stopping of vehicle C. Alternatively, the control unit 11 of the in-vehicle device 1 may determine whether the vehicle speed is 0 by acquiring, for example, information regarding vehicle speed, information regarding the rotation of the engine or drive motor, etc., from an in-vehicle ECU 2 connected to the in-vehicle network 3. The control unit 11 of the in-vehicle device 1 may derive (acquire) information regarding the power consumption status of vehicle C depending on whether vehicle C is in a driving state (active state) or a parked state (stopped state). That is, the information regarding the power consumption status of vehicle C includes information indicating whether vehicle C is in an active state or a stopped state.

[0048] The power consumption state of vehicle C includes a normal state (normal current mode) and a standby state (low current consumption mode) in which power consumption is lower than that of the normal state. The normal state includes, for example, the state in which vehicle C is running (starting up) and indicates a state in which the power consumption of vehicle C is above a predetermined value (normal current mode). The standby state includes, for example, the state in which vehicle C is parked (stopped) and indicates a state in which the power consumption of vehicle C is below a predetermined value (low current consumption mode).

[0049] Alternatively, the normal state (normal current mode) may include the state in which vehicle C is in motion or the parked state with occupants, and may indicate a state in which the engine is running and any on-board load is being driven. The standby state (low current consumption mode) may include the parked state without occupants, and may indicate a state in which the engine is not running and none of the on-board loads are being driven. However, the on-board loads are not necessarily in a completely stopped state, but may be in a state where they can be driven immediately upon receiving, for example, a predetermined start signal. In other words, the standby state also includes the state in which there are on-board loads or on-board ECU2 that are in such a state where they can be driven immediately.

[0050] The storage unit 12 of the in-vehicle device 1 may store state definition information, for example in a table format (lookup table), which defines the correspondence between the state of the vehicle C or the in-vehicle load and the power consumption state (normal state or standby state). The control unit 11 of the in-vehicle device 1 may derive (acquire) the power consumption state of the vehicle C by referring to the state definition information (lookup table). The control unit 11 of the in-vehicle device 1 acquires information by deriving information related to the power consumption state of the vehicle C based on signals received from various switches or communication data such as messages received from the in-vehicle ECU 2 which is connected to the in-vehicle network 3 for communication.

[0051] The control unit 11 of the in-vehicle device 1 determines whether vehicle C is in a standby state or not based on information regarding the power consumption state of vehicle C (S102). The control unit 11 of the in-vehicle device 1 determines whether vehicle C is in a standby state (low current consumption mode) or a normal state (normal current mode) based on the acquired information regarding the power consumption state of vehicle C. The control unit 11 of the in-vehicle device 1 may store the determination result in the storage unit 12 in association with the time when the determination process was performed (determination time).

[0052] If vehicle C is in standby mode (S102: YES), the control unit 11 of the on-board device 1 sets the main semiconductor fuse 531 to an interruption characteristic corresponding to the standby mode and activates the protection function (S103). The control unit 11 of the on-board device 1 sets the main semiconductor fuse 531 to an interruption characteristic corresponding to the standby mode when vehicle C is in standby mode (low current consumption mode). The interruption characteristic of the main semiconductor fuse 531 according to the standby mode is shown, for example, as an interruption characteristic curve in a characteristic graph and stored in the storage unit 12.

[0053] The control unit 11 of the in-vehicle device 1 may enable the protection function of the main semiconductor fuse 531 by applying the tripping characteristics when executing an application or the like that corresponds to the protection function of the main semiconductor fuse 531. Alternatively, if the main semiconductor fuse 531 is configured as, for example, an IPD (Intelligent Power Device), the control unit 11 may enable the protection function of the main semiconductor fuse 531 by sending a signal to the IPD (main semiconductor fuse 531) to start (enable) the protection function by applying tripping characteristics corresponding to the standby state.

[0054] The control unit 11 of the in-vehicle device 1 may also maintain the mechanical relay 52 in the open state (off) (fixed off) when the vehicle C is in a standby state (low current consumption mode). By maintaining the mechanical relay 52 in the open state (off) (fixed off) when the vehicle C is in a standby state (low current consumption mode), the opening and closing operation of the mechanical relay 52 in the standby state becomes unnecessary, thereby improving the number of cycles (usable period, component life) of the mechanical relay 52.

[0055] The control unit 11 of the in-vehicle device 1 disables the protection function of the branch line semiconductor fuse 532 (S104). The control unit 11 of the in-vehicle device 1 may disable the protection function of the branch line semiconductor fuse 532 by, for example, stopping the application corresponding to the protection function of the branch line semiconductor fuse 532. Alternatively, if the branch line semiconductor fuse 532 is configured as, for example, an IPD (Intelligent Power Device), the control unit 11 may disable the protection function of the branch line semiconductor fuse 532 by sending a signal to the IPD (branch line semiconductor fuse 532) to stop (disable) the protection function.

[0056] By disabling the protective function of the semiconductor fuse 532 for branch lines in this way, the power consumption required to perform (execute) the protective function can be reduced. In other words, the more semiconductor fuses 532 for branch lines whose protective function is disabled in the standby state (low current consumption mode) (3 in this embodiment), the greater the power consumption reduction effect can be.

[0057] The control unit 11 of the in-vehicle device 1, when enabling or disabling the protection functions of the main line semiconductor fuse 531 and the branch line semiconductor fuse 532, enables the protection function of the main line semiconductor fuse 531 first, and then disables the protection function of the branch line semiconductor fuse 532. This ensures that when vehicle C transitions to a standby state, the protection function of the main line semiconductor fuse 531 is enabled first, thereby reliably preventing a period in which both the protection functions of the main line semiconductor fuse 531 and the branch line semiconductor fuse 532 are disabled.

[0058] The control unit 11 of the in-vehicle device 1 starts tripping control for the main semiconductor fuse 531, which has tripping characteristics set according to the standby state (S105). The tripping characteristics set for the main semiconductor fuse 531 according to the standby state are lower than the smoke emission characteristics corresponding to the multiple branch lines 512, and higher than the sum of the current values ​​(combined value) that flow through the multiple branch lines 512 when the vehicle C is in standby state (tripping characteristics). If the current value (overcurrent) determined by the smoke emission characteristics corresponding to the multiple branch lines 512 is set as the upper limit and the sum of the current values ​​(combined value) that flow through the multiple branch lines 512 when the vehicle C is in standby state is set as the lower limit, the range of current values ​​determined by these upper and lower limits is relatively wide. The tripping characteristics of the main semiconductor fuse 531 in standby state only need to be within the range of current values ​​determined by these upper and lower limits, and therefore, the degree of freedom when setting the tripping characteristics can be increased. This reduces the influence of errors in the on-resistance of the main semiconductor fuse 531 or in current value detection when controlling the interruption of the main semiconductor fuse 531 in standby mode, thereby enabling a relatively robust control method and efficiently ensuring safety as an in-vehicle system S.

[0059] The control unit 11 of the in-vehicle device 1 is connected in series with the main semiconductor fuse 531 and obtains the current value of the current flowing through the main line 511 from the current detection unit 513 (main current sensor) located on the main line 511. Alternatively, it may obtain the current value of the current flowing through the main line 511 from the main current sensor built into the IPD that constitutes the main semiconductor fuse 531. Based on the interruption characteristic curve (interruption characteristic according to the standby state) stored in the memory unit 12, the control unit 11 of the in-vehicle device 1 opens the main semiconductor fuse 531 (turns it off) and interrupts the current (overcurrent) flowing through the main line 511 if a current value corresponding to an overcurrent flows for a predetermined period of time or longer.

[0060] If vehicle C is not in standby mode (S102:NO), i.e., if vehicle C is in a normal state, the control unit 11 of the on-board device 1 activates the protection function of the branch line semiconductor fuse 532 (S1021). If vehicle C is not in standby mode, i.e., if vehicle C is in a normal state (normal current mode), the control unit 11 of the on-board device 1 may activate the protection function of the branch line semiconductor fuse 532 by executing an application or the like that corresponds to the protection function of the branch line semiconductor fuse 532. Alternatively, if the branch line semiconductor fuse 532 is configured as, for example, an IPD (Intelligent Power Device), the protection function of the branch line semiconductor fuse 532 may be activated by sending a signal to the IPD (branch line semiconductor fuse 532) to start (activate) the protection function.

[0061] The control unit 11 of the in-vehicle device 1 disables the protection function of the main semiconductor fuse 531 (S1022). The control unit 11 of the in-vehicle device 1 may disable the protection function of the main semiconductor fuse 531 by stopping the application or the like that corresponds to the protection function of the main semiconductor fuse 531. Alternatively, if the main semiconductor fuse 531 is configured as an IPD (Intelligent Power Device), the control unit 11 may disable the protection function of the main semiconductor fuse 531 by sending a signal to the IPD (main semiconductor fuse 531) to stop (disable) the protection function.

[0062] The control unit 11 of the in-vehicle device 1, when enabling or disabling the protection functions of the main line semiconductor fuse 531 and the branch line semiconductor fuse 532, enables the protection function of the branch line semiconductor fuse 532 first, and then disables the protection function of the main line semiconductor fuse 531. This ensures that when vehicle C transitions to a normal state, the protection function of the branch line semiconductor fuse 532 is enabled first, thereby reliably preventing a period in which both the protection functions of the main line semiconductor fuse 531 and the branch line semiconductor fuse 532 are disabled.

[0063] The control unit 11 of the on-board device 1 disables the protection function of the main semiconductor fuse 531 when the vehicle C is not in standby mode (in normal mode), but is not limited to this. The control unit 11 of the on-board device 1 may also change (set) the tripping characteristics of the main semiconductor fuse 531 to tripping characteristics corresponding to the normal state, i.e., the same tripping characteristics as the mechanical relay 52 and fuse 521 (fusible fuse) when the vehicle C is in normal mode. The main semiconductor fuse 531 and the mechanical relay 52 and fuse 521 (fusible fuse) are connected in parallel (forming a parallel circuit), so that even if a failure occurs in one of the circuits, the other circuit can continue to provide protection for the vehicle C in normal mode.

[0064] The control unit 11 of the in-vehicle device 1 starts tripping control for the semiconductor fuse 532 for branch lines, which has tripping characteristics set according to the normal state (S1023). The tripping characteristics for each semiconductor fuse 532 for branch lines, which is located in each of the multiple branch lines 512, are stored in the storage unit 12 as, for example, a tripping characteristic curve. The control unit 11 of the in-vehicle device 1 starts tripping control for the semiconductor fuse 532 for branch lines according to the tripping characteristic curve stored in the storage unit 12.

[0065] The control unit 11 of the in-vehicle device 1 acquires the current value of the branch line 512 from a branch line current sensor located on the branch line 512, or from a current sensor built into the IPD that constitutes the branch line semiconductor fuse 532. Based on the interruption characteristic curve stored in the memory unit 12, the control unit 11 of the in-vehicle device 1 opens (turns off) the branch line semiconductor fuse 532 if a current value corresponding to an overcurrent flows for a predetermined period of time or longer, thereby interrupting the current (overcurrent) flowing through the branch line 512.

[0066] The control unit 11 of the in-vehicle device 1 is SAfter the execution of 105 or S1023, a loop process is performed to repeat the process from S101. As a result, the control unit 11 of the in-vehicle device 1 can continue the process of acquiring (deriving) information regarding the power consumption state of vehicle C periodically or on a steady basis, and can continuously perform the process of determining whether the current state of vehicle C is a standby state (low current consumption mode) or a normal state (normal current mode).

[0067] The embodiments disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of the present invention is indicated by the claims, not in the sense described above, and all modifications within the sense and scope equivalent to the claims are intended.

[0068] With respect to the multiple claims described in the claims, they can be combined with each other regardless of the form of reference. Multiple dependent claims that depend on multiple claims may be described in the claims. Multiple dependent claims that depend on multiple dependent claims may also be described. Even if multiple dependent claims that depend on multiple dependent claims are not described, this does not limit the description of multiple dependent claims that depend on multiple dependent claims. [Explanation of symbols]

[0069] C Vehicle S In-vehicle system 1 On-vehicle device 11 Control Unit 12 Storage section M recording medium P Control Program (Program Product) 13 Communications Department 14 Input / Output Interfaces 140 signal line 2 In-vehicle ECU 3. In-vehicle network 31 Communication lines 5 Power supply 51 Power line 511 Main line 512 Branch Line 513 Current detection unit (main line current sensor) 52 Mechanical relays 521 Fuse (Fused type fuse) 531 Main line semiconductor fuse 532 Semiconductor fuse for branch lines 6 On-vehicle load

Claims

1. An in-vehicle device that controls the opening and closing of multiple semiconductor fuses provided in the power lines from a power supply unit mounted on a vehicle, The system includes a control unit that performs processing related to the switching control of the semiconductor fuse, The semiconductor fuse includes a main line semiconductor fuse placed on the main line and each of the branch line semiconductor fuses placed on each of the branch lines branching off from the main line. The control unit, Information regarding the power consumption status of the vehicle is obtained, In accordance with the acquired information regarding the vehicle's power consumption status, the protection function of the main line semiconductor fuse is activated, and the protection function of the branch line semiconductor fuse is deactivated. In-vehicle device.

2. In activating the protection function of the main line semiconductor fuse, the control unit sets the interruption characteristics of the main line semiconductor fuse such that they are below the smoke emission characteristics corresponding to the multiple branch lines, and above the sum of the current values ​​flowing through the multiple branch lines when the vehicle is in standby mode. The in-vehicle device according to claim 1.

3. The power consumption state of the vehicle includes a normal state and a standby state in which power consumption is lower than that of the normal state. The control unit, If the acquired information regarding the vehicle's power consumption status indicates the standby state, the protection function of the main line semiconductor fuse is activated, and the protection function of the branch line semiconductor fuse is deactivated. If the acquired information regarding the vehicle's power consumption status indicates the normal state, the protection function of the main line semiconductor fuse is disabled, and the protection function of the branch line semiconductor fuse is enabled. The in-vehicle device according to claim 2.

4. A mechanical relay is connected in parallel to the aforementioned semiconductor fuse for the main line, The control unit maintains the mechanical relay in the open state when the vehicle is in standby mode. The in-vehicle device according to claim 2.

5. The control unit, The current value flowing through the main line where the main line semiconductor fuse is located is obtained, Based on the acquired current value, the main semiconductor fuse is subjected to tripping control, with tripping characteristics set according to the standby state. The in-vehicle device according to claim 2.

6. A program that causes a computer to perform processing to control the opening and closing of multiple semiconductor fuses installed in the power lines from a power supply unit mounted on a vehicle, The semiconductor fuse includes a main line semiconductor fuse placed on the main line and each of the branch line semiconductor fuses placed on each of the branch lines branching off from the main line. Information regarding the power consumption status of the vehicle is obtained, In accordance with the acquired information regarding the vehicle's power consumption status, the protection function of the main line semiconductor fuse is activated, and the protection function of the branch line semiconductor fuse is deactivated. A program that executes a process.

7. An information processing method that causes a computer to perform processing to control the opening and closing of multiple semiconductor fuses provided in the power lines from a power supply unit installed in a vehicle, The semiconductor fuse includes a main line semiconductor fuse placed on the main line and each of the branch line semiconductor fuses placed on each of the branch lines branching off from the main line. Information regarding the power consumption status of the vehicle is obtained, In accordance with the acquired information regarding the vehicle's power consumption status, the protection function of the main line semiconductor fuse is activated, and the protection function of the branch line semiconductor fuse is deactivated. An information processing method that executes a process.

Citation Information

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