Vehicle battery heater fault diagnosis device

The battery heater fault diagnosis device accurately diagnoses faults by controlling the battery heater and other devices to isolate its impact, improving fault detection accuracy.

JP7722111B2Active Publication Date: 2025-08-13MAZDA MOTOR CORP
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Patent Information

Application Number
JP2021162919
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-01
Publication Date
2025-08-13
Estimated Expiration
2041-10-01

AI Technical Summary

Technical Problem

Existing battery heater fault diagnosis systems inaccurately diagnose failures due to errors in power consumption calculations from sensor readings, leading to unreliable fault detection.

Method used

A battery heater fault diagnosis device that controls the battery heater and other non-heater devices to isolate the battery heater's impact, allowing for accurate diagnosis by measuring battery output values before and after control changes.

Benefits of technology

Accurately diagnoses battery heater faults by isolating the heater's operation from other devices, reducing errors and ensuring precise fault detection.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a battery heater failure diagnostic device of a vehicle which can accurately diagnosis a failure of a battery heater.SOLUTION: A battery heater failure diagnostic device of a vehicle is provided with a battery output detection device which can detect a battery output value as a current value or voltage value of a battery, implements first control for stopping an actuation of a battery heater and a non-heater device and second control for actuating the battery heater while maintaining the stop of the actuation of the non-heater device after implementing the first control when a predetermined failure diagnostic condition is established, and diagnoses a failure of the battery heater on the basis of battery output values detected by the battery output detection device in implementation of the first control and in the implementation of the second control, respectively.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a battery heater fault diagnosis device provided in a vehicle equipped with a motor as a drive source, a battery that supplies power to the motor, and a battery heater that heats the battery. [Background technology]

[0002] As disclosed in Patent Document 1, conventionally, vehicles equipped with a motor as a drive source and a battery that supplies power to the motor have been equipped with a battery heater to heat the battery in order to suppress a drop in battery output. Also, the provision of a device for diagnosing failures in the battery heater has been considered.

[0003] For example, in Patent Document 1, the range of battery voltage when the battery heater is operating normally is set based on the power consumption of auxiliary equipment that operates on power from the battery separately from the battery heater and the range of possible battery voltage, and a diagnosis of battery heater failure is made based on whether the battery voltage is within the set range when the battery heater is operated. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent Publication No. 2021-97028 Summary of the Invention [Problem to be solved by the invention]

[0005] As described above, the device of Patent Document 1 diagnoses battery heater failures based on the power consumption of the auxiliary devices. Therefore, accurate values of the power consumption of each auxiliary device are required to accurately diagnose battery heater failures. However, obtaining such values is difficult. Specifically, the power consumption of each auxiliary device can be calculated based on the detected values of the current flowing through each auxiliary device detected by a sensor. However, in a configuration in which the power consumption values calculated based on the detected values of each sensor are summed, errors from each sensor may accumulate, resulting in a large error in the total value. Therefore, the device of Patent Document 1 leaves room for improvement in terms of accurately diagnosing battery heater failures.

[0006] The present invention has been made in view of the above circumstances, and has as its object to provide a battery heater fault diagnosis device for a vehicle that can accurately diagnose a fault in a battery heater. [Means for solving the problem]

[0007] In order to solve the above problem, the present invention provides a battery heater fault diagnosis device installed in a vehicle equipped with a motor as a drive source, a battery that supplies power to the motor, a battery heater that receives power from the battery to heat the battery, and a non-heater device that operates by receiving power from the battery and is different from the battery heater, the device comprising: a battery output detection device that can detect a battery output value that is a current value or voltage value of the battery; and a control device that controls various parts of the vehicle including the battery heater and the non-heater device, wherein when a predetermined fault diagnosis condition is met, the control device performs a first control that stops the operation of the battery heater and the non-heater device, and a second control that operates the battery heater while keeping the non-heater device stopped after performing the first control, and diagnoses a fault in the battery heater based on the battery output value detected by the battery output detection device when the first control is performed and when the second control is performed (Claim 1).

[0008] In this invention, the battery heater is turned on and off while the operation of all other electrical devices that operate on battery power, excluding the battery heater, is stopped. This allows for the detection of changes in the battery output value caused by the operation of the battery heater alone. Therefore, based on this detected value, it is possible to accurately diagnose whether the battery heater is malfunctioning.

[0009] In the above configuration, preferably, the battery has a plurality of battery modules, and the battery heater has a plurality of heater bodies connected in series to each other and raising the temperature of each of the battery modules, and a heater contactor that connects and disconnects a heater circuit including the plurality of heater bodies to the battery, and the control device stops operation of the battery heater by opening the heater contactor when executing the first control, and operates the battery heater by closing the heater contactor when executing the second control, and diagnoses a failure of the heater contactor based on the difference in the battery output values (Claim 2).

[0010] This configuration allows the heater to be turned on or off by opening or closing the heater contactor, simplifying the configuration for turning the heater on or off. Also, by diagnosing a failure in the heater contactor, it becomes possible to determine whether the battery heater can heat the battery.

[0011] In the above configuration, preferably, the vehicle includes a low-voltage battery having an output voltage lower than that of the battery, and the non-heater equipment includes an AC external charging device having an AC / DC converter that converts AC current to DC current and charges the battery with output power from an AC power source outside the vehicle, and a DC / DC converter that operates when the battery is being charged by the AC external charging device to step down the output power of the AC / DC converter and supply it to the low-voltage battery, and the control device determines that the fault diagnosis condition is met when charging of the battery by the AC external charging device is completed (claim 3).

[0012] This configuration allows for battery heater failure diagnosis to be performed when charging of the battery by the AC external charging device ends. Furthermore, by diagnosing battery heater failure while the DC / DC converter, a non-heater device, is stopped, it is possible to prevent the operating status of the DC / DC converter from affecting the difference in battery output values. Therefore, battery heater failure diagnosis can be performed accurately even in vehicles that have a DC / DC converter and that operate when the battery is being charged.

[0013] In the above configuration, preferably, the vehicle includes a low-voltage battery having an output voltage lower than that of the battery, and a DC external charging device that charges the battery with output power from an external DC power supply, the non-heater device includes a DC / DC converter that operates when the battery is being charged by the DC external charging device, and that reduces the output power of the DC external charging device and supplies the reduced power to the low-voltage battery, and the control device determines that the fault diagnosis condition is met when charging of the battery by the DC external charging device is completed (claim 4).

[0014] With this configuration, the timing at which charging of the battery by the DC external charging device ends can be used to diagnose a battery heater fault. As with the timing at which charging of the battery by the AC external charging device ends, the operating status of the DC / DC converter can be prevented from affecting the difference in battery output values, making it possible to accurately diagnose a battery heater fault even in a vehicle that has a DC / DC converter and that operates when the battery is being charged.

[0015] In the above configuration, preferably, the vehicle further includes a switch that can be operated by an occupant to switch between starting and stopping the vehicle, the non-heater equipment includes a PTC heater for air conditioning and an electric compressor, and the control device determines that the fault diagnosis condition is met when an operation to stop the vehicle is performed on the switch (Claim 5).

[0016] This configuration allows for battery heater failure diagnosis to be performed when the vehicle is stopped. Furthermore, by diagnosing battery heater failure while the PTC heater for air conditioning and the electric compressor, which are non-heating devices, are stopped, it is possible to prevent the operating conditions of these relatively high-power-consumption devices from affecting the difference in the battery output values. Therefore, battery heater failure diagnosis can be performed accurately even in vehicles that have a PTC heater and an electric compressor and that operate when the vehicle is started.

[0017] In the above configuration, preferably, the control device performs the second control only when the battery output value when the first control is performed is equal to or greater than a predetermined first judgment value, and determines that the battery heater has failed when the battery output value when the second control is performed exceeds the battery output value when the first control is performed by less than a predetermined second judgment value (claim 6).

[0018] According to this configuration, it is possible to ensure the accuracy of the battery heater failure determination, while reducing the number of opportunities to perform the second control for operating the battery heater for the failure determination. [Effects of the Invention]

[0019] As described above, the vehicle battery heater failure diagnosis device of the present invention can accurately diagnose a battery heater failure. [Brief explanation of the drawings]

[0020] [Figure 1] 1 is a diagram showing a schematic configuration of a vehicle equipped with a battery heater fault diagnosis device according to an embodiment of the present invention; [Figure 2] FIG. 2 is a diagram illustrating a schematic configuration of a high-voltage battery and a battery heater. [Figure 3] FIG. 2 is a block diagram showing the relationship between the controllers. [Figure 4] FIG. 2 is a block diagram showing a control system for a battery heater. [Figure 5]10 is a flowchart showing a control flow when a battery heater is activated. [Figure 6] 10 is a flowchart showing a flow of a battery heater failure diagnosis. [Figure 7] 10 is a time chart showing the time changes of each parameter before and after the start switch is turned off. [Figure 8] 4 is a time chart showing changes over time in various parameters before and after the end of external charging; DETAILED DESCRIPTION OF THE INVENTION

[0021] (1) Overall vehicle configuration A battery heater fault diagnosis device for a vehicle according to an embodiment of the present invention will now be described. Fig. 1 is a diagram schematically showing the configuration of a vehicle 1 equipped with a battery heater fault diagnosis device 100 according to this embodiment. The vehicle 1 is, for example, a four-wheeled automobile.

[0022] Vehicle 1 has a high-voltage battery 2, a low-voltage battery 3 with a lower output voltage than high-voltage battery 2, an AC external charging device 40, a DC external charging device 50, and a plurality of high-voltage devices that operate by receiving power from high-voltage battery 2. Vehicle 1 also has a plurality of controllers that include microprocessors or the like and control various parts of vehicle 1. Note that high-voltage battery 2 corresponds to the "battery" in the claims.

[0023] The vehicle 1 is equipped with a battery heater 12 as high-voltage equipment for raising the temperature of the high-voltage battery 2. The vehicle 1 is also equipped with non-heater equipment 90, which is high-voltage equipment other than the battery heater 12, including a motor 4, a generator 5, an inverter 6, a converter 7, a DC / DC converter 8, a PTC heater 9, an electric compressor 10, and an AC / DC converter 43 included in an AC external charging device 40.

[0024] (Battery and Battery Heater) FIG. 2 is a diagram showing a schematic configuration of the high-voltage battery 2 and the battery heater 12. In this embodiment, a Li battery (lithium battery) is mounted on the vehicle 1 as the high-voltage battery 2. For example, the high-voltage battery 2 has a plurality of battery modules 2x (16 in the example of FIG. 2) each consisting of 12 battery cells connected in two parallel connections and six in series, and these battery modules 2x are connected in series. In this embodiment, a lead battery is mounted on the vehicle 1 as the low-voltage battery 3. For example, the nominal voltage of the high-voltage battery 2 is 24 V, and the nominal voltage of the low-voltage battery 3 is 12 V.

[0025] The high-voltage battery 2 is provided with a battery current sensor SN1 that detects the output current of the high-voltage battery 2, and a battery temperature sensor SN2 that measures the temperature of the high-voltage battery 2, specifically the temperature of a specific battery module 2x. In this embodiment, the battery current sensor SN1 corresponds to the "battery output detection device" in the claims. Also, the output current of the high-voltage battery 2, i.e., the current value of the high-voltage battery 2, corresponds to the "battery output value" in the claims.

[0026] The battery heater 12 includes a plurality of heater bodies 12x that generate heat when supplied with power, and a heater contactor 75 that electrically connects and disconnects a heater circuit 12c including the heater bodies 12x to and from the high-voltage battery 2. The battery heater 12 includes the same number of heater bodies 12x as the number of battery modules 2x (16 in the example of FIG. 2), and each heater body 12x is disposed so as to be in contact with each battery module 2x. The plurality of heater bodies 12x are connected in a series-parallel configuration. That is, a plurality of heater bodies 12x are connected in series and grouped, and these groups are connected in parallel. In the example of FIG. 2, 16 heater bodies 12x are connected in a 4-series-4-parallel configuration. In this embodiment, a fuse is connected in series to each heater body 12x. Note that reference numeral 76 in FIG. 2 denotes a fuse.

[0027] The heater contactor 75 is a contactor, i.e., an electromagnetic switch including an electromagnet, that makes and breaks the electrical connection between two contacts depending on the power supplied. When the contactor is closed (ON), the two contacts are electrically connected and energized, and when the contactor is opened (OFF), the two contacts are electrically cut off and no current is passed.

[0028] Only one heater contactor 75 is provided on one of the two lines 12a, 12b (the positive electrode side line 12a and the negative electrode side line 12b) that connect a group of multiple heater main bodies 12x in parallel. Thus, in this embodiment, opening and closing this one heater contactor 75 electrically connects and disconnects all of the heater main bodies 12x and the high-voltage battery 2.

[0029] Specifically, the two contacts of the heater contactor 75 are connected to the positive electrode line 12a and a later-described P-side high-voltage line 31a connected to the positive electrode terminal 2a of the high-voltage battery 2, respectively, and the heater contactor 75 connects and disconnects the P-side high-voltage line 31a and the heater main body 12x. The negative electrode line 12b is connected to a later-described N-side high-voltage line 31b connected to the negative electrode terminal 2b of the high-voltage battery 2 without passing through a contactor.

[0030] (High voltage circuit) Among the high-voltage devices, the motor 4, generator 5, inverter 6, converter 7, DC / DC converter 8, PTC heater 9, and electric compressor 10 are provided on the same circuit. Hereinafter, the circuit on which these devices are provided will be referred to as a high-voltage circuit 30 where appropriate.

[0031] The high-voltage circuit 30 has a positive-side high-voltage line 31a that is a positive-side line connected to the positive terminal 2a of the high-voltage battery 2, and an negative-side high-voltage line 31b that is a negative-side line connected to the negative terminal 2b of the high-voltage battery 2. Hereinafter, the positive-side high-voltage line 31a and the negative-side high-voltage line 31b will be collectively referred to as the high-voltage lines 31 where appropriate.

[0032] The inverter 6, the converter 7, the DC / DC converter 8, the PTC heater 9, and the electric compressor 10 are each connected to a high-voltage line 31. The motor 4 is connected to the high-voltage line 31 via the inverter 6. The generator 5 is connected to the high-voltage line 31 via the converter 7.

[0033] The motor 4 rotates by receiving a supply of electric power from the high-voltage battery 2. The motor 4 is mounted on the vehicle 1 as a driving source for the vehicle 1, and the output of the motor 4 is transmitted to wheels (not shown) via a driving force transmission device 20.

[0034] The generator 5 is a power generation device for charging the high-voltage battery 2. The vehicle 1 of this embodiment is a series hybrid vehicle, and is equipped with an engine 22 that drives the generator 5. That is, the generator 5 is rotated and driven by the engine 22 to generate electricity, and the electricity generated by the generator 5 is supplied to the high-voltage battery 2. The engine 22 is, for example, a rotary engine. The generator 5 is also connected to the wheels via a driving force transmission device 20, so that the vehicle 1 can regenerate energy during deceleration.

[0035] The inverter 6 is a device that converts DC current into AC current, and converts the DC current from the high-voltage battery 2 into AC current and supplies it to the motor 4. The converter 7 is a device that converts AC current into DC current, and converts the AC current generated by the generator 5 into DC current and supplies it to the high-voltage battery 2.

[0036] The DC / DC converter 8 is a device that steps down and boosts input power and outputs it, and steps down the output voltage of the high-voltage battery 2 and supplies it to the low-voltage battery 3. The DC / DC converter 8 is equipped with a microcomputer, and the activation and stopping of the DC / DC converter 8 is controlled by this microcomputer.

[0037] The PTC heater 9 and the electric compressor 10 are air conditioning devices and constitute a heating and cooling system 11 of the vehicle 1. Specifically, the PTC heater 9 (PTC: Positive Temperature Coefficient) is a device for heating the interior of the vehicle 1, and the electric compressor 10 is a device for cooling the interior of the vehicle 1. In this embodiment, a cooling plate (not shown) is provided for cooling the high-voltage battery 2, and the electric compressor 10 also cools this cooling plate.

[0038] The high-voltage circuit 30 and the high-voltage battery 2 are connected via a contactor. Specifically, the vehicle 1 is provided with a P-side main contactor 71 having two contacts connected to the positive terminal 2a of the high-voltage battery 2 (more specifically, the positive-side battery line 2d connected to the positive terminal 2a) and the P-side high-voltage line 31a, respectively, such that the P-side main contactor 71 electrically connects and disconnects the positive terminal 2a of the high-voltage battery 2 and the P-side high-voltage line 31a. The vehicle 1 is also provided with an N-side main contactor 72 having two contacts connected to the negative terminal 2b of the high-voltage battery 2 (more specifically, the negative-side battery line 2e connected to the negative terminal 2b) and the N-side high-voltage line 31b, respectively, such that the N-side main contactor 72 electrically connects and disconnects the negative terminal 2b of the high-voltage battery 2 and the N-side high-voltage line 31b.

[0039] Furthermore, in this embodiment, a pre-charge contactor 73 is provided as a contactor, arranged in parallel with the N-side main contactor 72, so that the electrical connection between the negative terminal 2b of the high-voltage battery 2 and the N-side high-voltage line 31b is also made and broken by the pre-charge contactor 73. However, a resistor 74 is provided in series with the line in which the pre-charge contactor 73 is provided, so that the electrical resistance between the terminal of the high-voltage battery 2 and the high-voltage line 31 via the pre-charge contactor 73 is greater than the electrical resistance between the terminal of the high-voltage battery 2 and the high-voltage line 31 via the pre-charge contactor 73 and the N-side main contactor 72. Therefore, when both the pre-charge contactor 73 and the N-side main contactor 72 are closed, electricity flows through the line on the N-side main contactor 72 side, which has lower electrical resistance, rather than through the line on the pre-charge contactor 73 side. In FIG. 2, the precharge contactor 73, the resistor 74, and the lines on which they are arranged are omitted from the illustration.

[0040] (AC external charging device 40) The AC external charging device 40 is a device for supplying output power from an AC power supply 300 outside the vehicle to the high-voltage battery 2 to charge the high-voltage battery 2. The AC external charging device 40 has an OBC (On Board Charger) 41 and an AC charging inlet 42.

[0041] The OBC 41 is a device for converting AC current supplied from outside the vehicle into a current that can properly charge the high-voltage battery 2, and has an AC / DC converter 43 that is a device for converting AC current into DC current.

[0042] AC charging inlet 42 is a device for electrically connecting a cable connected to AC power supply 300 outside the vehicle to OBC 41. AC charging inlet 42 is electrically connected to OBC 41, and is configured to receive and mate with a connector (hereinafter referred to as an AC connector, as appropriate) provided at the end of the cable.

[0043] The OBC 41 is electrically connected to the high-voltage line 31 via a contactor, and the OBC 41 and the high-voltage battery 2 are electrically connected via the contactor and the high-voltage line 31 .

[0044] Specifically, the vehicle 1 is provided with a P-side OBC contactor 81 having two contacts connected to the positive electrode side line 43a of the OBC 41 and the P-side high-voltage line 31a, respectively, such that the positive electrode side line 43a of the OBC 41 and the P-side high-voltage line 31a are electrically connected and disconnected by the P-side OBC contactor 81. The vehicle 1 is also provided with an N-side OBC contactor 82 having two contacts connected to the negative electrode side line 43b of the OBC 41 and the N-side high-voltage line 31b, respectively, such that the N-side OBC contactor 82 connects and disconnects the positive electrode side line 43a of the OBC 41 and the N-side high-voltage line 31b.

[0045] (DC external charging device 50) The DC external charging device 50 is a device for supplying the output power of a DC power source 301 outside the vehicle to the high-voltage battery 2 to charge the high-voltage battery 2. The DC external charging device 50 is electrically connected to the high-voltage battery 2 via contactors 51, 52 and the high-voltage line 31. The DC external charging device 50 is configured to receive and mate with a connector (hereinafter referred to as a DC connector as appropriate) provided at the end of a cable connected to the DC power source 301 outside the vehicle.

[0046] Here, in the AC external charging device 40, the AC charging inlet 42 and the AC connector are engaged, thereby enabling power supply from the external power source 300 to the AC external charging device 40. On the other hand, in the DC external charging device 50, power supply from the external power source 301 to the DC external charging device 50 is enabled only when a switch provided on the external power source 301 is turned ON while the DC external charging device 50 is engaged with the DC connector.

[0047] Furthermore, in this embodiment, when the high-voltage battery 2 is charged by the AC external charging device 40 and the DC external charging device 50, the low-voltage battery 3 is also charged in conjunction with the high-voltage battery 2. In other words, when the high-voltage battery 2 is charged by each of the external charging devices 40, 50 (hereinafter referred to as "external charging"), the DC / DC converter 8 is driven, and the power flowing through the high-voltage line 31 is stepped down by the DC / DC converter 8 and supplied to the low-voltage battery 3.

[0048] (controller) 3 is a block diagram showing the relationship between controllers mounted on vehicle 1. Vehicle 1 is equipped with the following controllers: C-BCM (Center-Body Control Module) 200, PCM (Power Control Module) 201, ECM (Engine Control Module) 202, DMCM (Driver Moor Control Module) 203, SGCM (Starter Generator Control Module) 204, BCCM (Battery Charger Control Module) 205, BECM (Battery Energy Control Module) 206, and ESU (Electric Supply Unit) 207. These controllers 200 to 207 are connected to a low-voltage battery 3 and operate by receiving power from the low-voltage battery 3.

[0049] Each controller 200-207 mainly performs the following controls: The C-BCM 200 controls doors, windows, etc. The PCM 201 controls the drivetrain devices of the vehicle 1. The ECM 202 controls the engine 22. The DMCM 203 controls the inverter 6. The SGCM 204 controls the converter 7. The BCCM 205 controls the OBC 41. The BECM 206 controls the high-voltage battery 2. The ESU 207 controls the air-conditioning device 11. These controllers 200-207 exchange signals with each other. For example, these controllers 200-207 communicate with each other via CAN (Controller Area Network).

[0050] 2 is a device that displays various types of information, and includes a display, etc. HMI is an abbreviation for Human Machine Interface.

[0051] (battery heater control) 4 is a block diagram showing the control configuration for the battery heater 12. Control of the battery heater 12, specifically, drive control of the battery heater 12 and fault diagnosis of the battery heater 12, is mainly performed by the BECM 206 and the PCM 201. The BECM 206 and the PCM 201 correspond to the "control device" in the claims.

[0052] 4, detection signals from a battery current sensor SN1 and a battery temperature sensor SN2 are input to the BECM 206. These detection signals are also input to the PCM 201 via the BECM 206.

[0053] The vehicle 1 is also provided with a start switch SW1 that allows the occupant to start and stop the vehicle 1, and an operation signal of this start switch SW1 is also input to the PCM 201. When the start switch SW1 is switched from OFF to ON, the PCM 201 determines that a start request for the vehicle 1 has been issued (a start request has been made to the vehicle 1), and after a predetermined time from the above switching, the PCM 201 electrically connects the high-voltage battery 2 and the motor 4 to make the motor 4 drivable. Furthermore, when the start switch SW1 is switched from ON to OFF, the PCM 201 cuts off the electrical connection between the high-voltage battery 2 and the motor 4 after a predetermined time.

[0054] Furthermore, PCM 201 receives signals from AC charging inlet 42 and DC external charging device 50 relating to the connection state between these devices and power sources 300, 301 outside the vehicle.

[0055] Specifically, when the AC connector and AC charging inlet 42 are mated, a predetermined signal is sent from AC charging inlet 42 to PCM 201, and when the mating is released, the transmission of this signal stops. Hereinafter, this signal will be referred to as the AC charging start signal, and when this signal is sent to PCM 201, the AC charging start signal will be referred to as being ON, and when this signal is not sent to PCM 201, the AC charging start signal will be referred to as being OFF.

[0056] Furthermore, when a switch provided on external power source 301 is turned ON while the DC connector is engaged with DC external charging device 50, a predetermined signal is sent from DC external charging device 50 to PCM 201, and the switch is turned OFF or the transmission of this signal is stopped when the engagement is released. Hereinafter, this signal will be referred to as a DC charging start signal, and when this signal is sent to PCM 201 it will be referred to as the DC charging start signal being ON, and when this signal is not sent to PCM 201 it will be referred to as the DC charging start signal being OFF.

[0057] The PCM 201 performs various calculations and judgments based on the above signals and issues commands to the various devices of the vehicle 1. With regard to driving the battery heater 12, the PCM 201 issues a command to the heater contactor 75 of the battery heater 12 via the BECM 206 to open or close it. With regard to fault diagnosis of the battery heater 12, the PCM 201 issues a command to the battery heater 12 (heater contactor 75) via the BECM 206, as well as to the non-heater devices 90. In detail, the PCM 201 issues commands to the controllers 202 to 207, and issues commands to the inverter 6, converter 7, PTC heater 9, electric compressor 10, and AC / DC converter 43, as well as to the DC / DC converter 8. The BECM 206 also makes judgments based on the signal from the battery temperature sensor SN2.

[0058] (Battery heater drive control) The control of driving the battery heater 12, which is performed by the BECM 206 and the PCM 201, will be described using the flowchart of Figure 5. In this embodiment, the battery heater 12 is driven when the start switch SW1 is OFF and the vehicle is stopped. Therefore, step S1 of the flowchart of Figure 5 is performed when the start switch SW1 is OFF. The flowchart of Figure 5 also starts from a state in which the heater contactor 75 is open (OFF) and driving of the battery heater 12 is stopped.

[0059] First, the BECM 206 determines whether the temperature of the high-voltage battery 2 detected by the battery temperature sensor SN2 is below a predetermined heater drive temperature (step S1). The heater drive temperature is preset and stored in the PCM 201. For example, the heater drive temperature is set to -10°C.

[0060] When the temperature of the high-voltage battery 2 drops below the heater driving temperature and the determination in step S1 becomes YES, the BECM 206 starts the PCM 201 (step S2). Specifically, when the start switch SW1 is switched from ON to OFF, the power supply to the PCM 201 is stopped after a predetermined time has passed, and when the determination in step S1 becomes YES, the BECM 206 resumes the power supply to the PCM 201.

[0061] The BECM 206 also starts the PCM 201 and outputs a command signal to the PCM 201 to drive the battery heater 12 (step S2).

[0062] Upon receiving the command signal from the BECM 206, the PCM 201 determines whether external charging is possible (step S3). Specifically, the PCM 201 determines that external charging is possible when the AC charging start signal or the DC charging start signal is ON.

[0063] If external charging is possible and the determination in step S3 is YES, the PCM 201 starts external charging (step S10). Here, as described above, in this embodiment, the low-voltage battery 3 is charged when external charging is performed. Thus, when step S10 is performed and external charging is started, driving of the DC / DC converter 8 also starts, and charging of the low-voltage battery 3 also starts. Furthermore, if external charging is started in step S10 because the AC charging start signal is ON, driving of the AC / DC converter 43 and the OBC 41 also starts.

[0064] After step S10, the process proceeds to step S5, where the PCM 201 switches the heater contactor 75 from an open state (OFF) to a closed state (ON) (step S5). Specifically, the PCM 201 issues a command to the BECM 206 to close the heater contactor 75. This starts driving the battery heater 12.

[0065] Specifically, as described above, when the heater contactor 75 is turned ON, electricity is conducted between the battery heater 12 (heater main body 12x) and the high-voltage line 31. In step S5, which follows step S10, external charging is being performed, and power is being supplied from a power source outside the vehicle to the high-voltage line 31. As a result, in step S5, which follows step S10, power is supplied from the power source outside the vehicle to the battery heater 12 (heater main body 12x), and the battery heater 12 (heater main body 12x) begins to generate heat.

[0066] After step S5, the process proceeds to step S6, where the BECM 206 determines whether the battery temperature has risen above a predetermined heater stop temperature. If the battery temperature is equal to or lower than the predetermined heater stop temperature (if the determination in step S6 is NO), the BECM 206 keeps the heater contactor 75 ON. On the other hand, if the battery temperature rises above the predetermined heater stop temperature (if the determination in step S6 is YES), the BECM 206 switches the heater contactor 75 from ON to OFF to stop driving the battery heater 12 (step S7). The heater stop temperature is preset and stored in the BECM 206. For example, the heater stop temperature is set to -5°C.

[0067] Returning to step S3, if the determination in step S3 is NO, indicating that external charging is not possible, the PCM 201 determines whether the battery SOC (State Of Charge) of the high-voltage battery 2 is higher than a predetermined determination SOC (step S4). Specifically, the PCM 201 calculates the battery SOC based on information such as the battery voltage and battery current sent from the BECM 206, and compares this calculated value with the determination SOC. The determination SOC is set in advance and stored in the PCM 201. For example, the determination SOC is set to about 35%.

[0068] If the determination in step S4 is NO and the battery SOC is equal to or lower than the determination SOC, the PCM 201 ends the process without driving the battery heater 12 (while maintaining the heater contactor 75 OFF).

[0069] On the other hand, if the determination in step S4 is YES and the battery SOC is higher than the determined SOC, the PCM 201 proceeds to step S5, where it turns on the heater contactor 75 as described above to start driving the battery heater 12 (heater main body 12x). After step S5, it performs steps S6 and S7 described above and ends the process.

[0070] In this embodiment, when external charging is possible, the battery heater 12 is driven and external charging is performed if the battery temperature is below the heater driving temperature regardless of the magnitude of the battery SOC. On the other hand, when external charging is not possible, the battery heater 12 is driven if the battery temperature is below the heater driving temperature and the battery SOC is higher than the determination SOC.

[0071] (Battery heater failure determination) 6, a procedure for determining whether or not the battery heater 12 has a failure will be described. The determination of whether or not the battery heater 12 has a failure is mainly performed by the PCM 201.

[0072] First, the PCM 201 determines whether a system shutdown request has been issued, which is a request to shut down the system of the vehicle 1 (step S21). In this embodiment, the condition that a system shutdown request has been issued matches the condition for starting a fault diagnosis for the battery heater 12 (fault diagnosis condition), and in step S21, it is determined whether the fault diagnosis condition is met.

[0073] Specifically, the PCM 201 determines that a system shutdown request has been issued when the start switch SW1 is switched from ON to OFF or when external charging has ended. The PCM 201 also determines that external charging (charging of the high-voltage battery 2 by the AC external charging device 40 or charging of the high-voltage battery 2 by the DC external charging device 50) has ended when the high-voltage battery 2 is fully charged or when the AC charging start signal or DC charging start signal is switched from ON to OFF.

[0074] When the PCM 201 determines that a system shutdown request has been issued and the determination in step S21 is YES (when the PCM 201 determines that the fault diagnosis conditions are met), it stops the operation of all high-voltage devices (step S22). That is, it stops the operation of the battery heater 12 and the non-heater devices 90, namely, the motor 4, generator 5, inverter 6, converter 7, DC / DC converter 8, PTC heater 9, electric compressor 10, and AC / DC converter 43. If the operation has already been stopped, it maintains the stopped state.

[0075] Next, the PCM 201 determines (step S23) whether the state in which the battery current, which is the output current of the high-voltage battery 2, is higher than a predetermined provisional judgment value has continued for a predetermined reference time since the operation of all high-voltage devices was stopped (since step S22 was performed). Specifically, this judgment is made based on the detection value of the battery current sensor SN1 transmitted from the BECM 206. The provisional judgment value is set in advance and stored in the PCM 201. The provisional judgment value is set in advance to a value greater than 0 based on the minimum current of the output current of the high-voltage battery 2 when only the battery heater 12 is operated by the high-voltage battery 2 (when power is supplied only to the battery heater 12) and the detection error of the battery current sensor SN1, and is stored in the PCM 201. The reference time is also set in advance and stored in the PCM 201.

[0076] If the determination in step S23 is NO, that is, if the battery current immediately after all high-voltage equipment has stopped operating is equal to or lower than the provisional determination value, or if the battery current on the charging side has not remained higher than the provisional determination value for the reference time (for example, if the battery current immediately after operation has stopped was higher than the provisional determination value but dropped to or below the provisional determination value before the reference time had elapsed), PCM201 turns off (keeps) heater contactor 75 in step S30, determines that battery heater 12 (heater contactor 75) is normal (step S31), and ends the processing.

[0077] On the other hand, if the determination in step S23 is YES, that is, if the battery current remains higher than the provisional determination value until the reference time has elapsed since the operation of all high-voltage equipment was stopped, the PCM201 provisionally determines that the battery heater 12 (heater contactor 75) is faulty (step S24).

[0078] Next, the PCM 201 keeps the heater contactor 75 OFF, i.e., open, for a predetermined first time period (step S25). The PCM 201 also calculates the average value of the battery current during this first time period and stores it as the OFF-time average current. Specifically, the PCM 201 issues a command to the BECM 206 to turn the heater contactor 75 OFF, and calculates the OFF-time average current based on the detection value of the battery current sensor SN1 sent from the BECM 206. The first time period is set in advance and stored in the PCM 201. For example, the first time period is set to one second.

[0079] Next, the PCM 201 keeps the heater contactor 75 ON, i.e., closes it, for a predetermined second time period (step S26). At this time, the PCM 201 turns on the heater contactor 75 while keeping the non-heater devices 90 inactive, and operates only the battery heater 12 among the high-voltage devices. The PCM 201 also calculates the average value of the battery current during this second time period and stores it as the ON-time average current. Specifically, the PCM 201 issues a command to the BECM 206 to switch the heater contactor 75 ON, and calculates the ON-time average current based on the detection value of the battery current sensor SN1 sent from the BECM 206. The second time period is set in advance and stored in the PCM 201. For example, the second time period is set to the same time period as the first time period (e.g., 1 second).

[0080] Next, the PCM 201 determines whether the value obtained by subtracting the OFF-state average current from the ON-state average current, i.e., the amount by which the ON-state average current exceeds the OFF-state average current, is less than a predetermined determination value (step S27). The determination value is set in advance and stored in the PCM 201. Like the provisional determination value, the determination value is set in advance based on the minimum current output from the high-voltage battery 2 when only the battery heater 12 is operating and the detection error of the battery current sensor SN1, and is stored in the PCM 201.

[0081] If the difference (excess amount) is less than the determination value and the determination in step S27 is YES, the PCM 201 issues a command to the heater contactor 75 to turn it OFF (step S28), determines that the battery heater 12 (heater contactor 75) has failed (step S29), and ends the process. Specifically, the PCM 201 determines that the heater contactor 75 is stuck ON. If the PCM 201 determines that the battery heater 12 (heater contactor 75) has failed, it causes the HMI device 208 to display an abnormality.

[0082] On the other hand, if the above difference (excess amount) is greater than or equal to the judgment value and the judgment in step S27 is NO, PCM201 proceeds to step S30, issues a command to the heater contactor 75 to turn it OFF, and in step S31 determines that the battery heater 12 (heater contactor 75) is normal and ends the processing.

[0083] Here, the above step S22 of stopping the operation of all high-voltage devices and the above step S25 of turning off the heater contactor 75 to stop the operation of the battery heater 12 correspond to the "first control" in the claims, and the above step S26 of turning on the heater contactor 75 thereafter corresponds to the "second control" in the claims. Also, the above tentative determination value corresponds to the "first determination value" in the claims, and the above determination value corresponds to the "second determination value" in the claims.

[0084] 7 and 8 show the changes over time of each parameter when the above-described failure determination is performed. FIG. 7 is a time chart when failure determination is performed when the start switch SW1 is switched from ON to OFF. FIG. 8 is a time chart when failure determination is performed when external charging is terminated. From top to bottom, FIG. 7 shows graphs of the operation state of the start switch SW, the operation state of the non-heater devices 90, the open / close command issued to the heater contactor 75, the battery current (the output current of the high-voltage battery 2), the temporary failure flag, and the failure flag. The temporary failure flag is set to 0 when failure determination begins, and is set to 1 when a failure of the battery heater 12 (heater contactor 75) is temporarily determined (when the determination in step S24 above is YES). The failure flag is set to 0 when failure determination begins, and is set to 1 when a failure of the battery heater 12 (heater contactor 75) is temporarily determined (when the determination in step S27 above is YES). 8 shows, from top to bottom, graphs of the external charging execution flag, the operating state of the non-heater device 90, the opening / closing command issued to the heater contactor 75, the battery current, the temporary fault flag, and the fault flag. The external charging execution flag is a flag that is set to 1 when external charging starts and to 0 when charging ends. In addition, in the battery current graphs of FIGS. 7 and 8, the battery current when the battery heater 12 is faulty is shown by a solid line, and the battery current when the battery heater 12 is not faulty is shown by a dashed line.

[0085] In the example of Figure 7, the start switch SW1 is turned from ON to OFF at time t1. When the start switch SW1 is turned OFF at time t1, the PCM 201 determines that a system shutdown request has been issued, as described above. Accordingly, at time t2, the operation of all high-voltage equipment is stopped, and after time t2, the battery current decreases.

[0086] Here, if the battery heater 12 is not faulty, that is, if the heater contactor 75 is normally OFF (open state), there is no power supply from the high-voltage battery 2 to the battery heater 12, and as shown by the dotted line, after time t2, the battery current drops to near 0.

[0087] On the other hand, if the battery heater 12 is faulty, that is, if the heater contactor 75 is stuck ON (failed in the closed state), power is supplied from the high-voltage battery 2 to the heater contactor 75. As a result, in this case, as shown by the solid line, after time t2, the battery current does not decrease to 0, but becomes a value higher than the provisional determination value.

[0088] Furthermore, if the battery heater 12 is faulty, as shown by the solid line, the battery current remains higher than the provisional determination value even after the battery current drops after time t2. As a result, if the battery heater 12 is faulty, the state in which the battery current is higher than the provisional determination value continues for a reference time from when all high-voltage devices are stopped operating, and at time t3, when the reference time has elapsed since time t2, it is provisionally determined that the battery heater 12 (heater contactor 75) is faulty (the provisional fault flag changes from 0 to 1).

[0089] If a failure of the battery heater 12 is provisionally determined, as shown by the solid line, the PCM 201 issues a command to the heater contactor 75 to turn OFF from time t3 to time t4, one hour later, and then issues a command to turn ON from time t4 to time t5, two hours later. Then, at time t5, it issues a command to switch OFF again. Although the PCM 201 switches ON / OFF commands in this way, if the battery heater 12 is faulty, the battery current does not fluctuate, as shown by the solid line. Therefore, the difference between the OFF average current, which is the average value of the battery current from time t3 to time t4, and the ON average current, which is the average value of the battery current from time t4 to time t5, is approximately zero, which is smaller than the determination value. Therefore, after time t5, it is determined that the battery heater 12 is faulty (the fault flag is switched from 0 to 1).

[0090] As shown by the chain line, if the battery heater 12 is not faulty, when a command to turn ON is issued to the heater contactor 75 at time t4, the supply of current from the high-voltage battery 2 to the battery heater 12 (heater main body 12x) begins, causing the battery current to rise, and the excess of the battery current when ON over the battery current when OFF becomes equal to or greater than the judgment value. Then, when a command to turn OFF is issued to the heater contactor 75 at time t5, the power supply stops, causing the battery current to drop to near zero.

[0091] In the example of FIG. 8, external charging is performed until time t12 (at time t12 the external charging execution flag changes from 1 to 0). From this point on, power is supplied to the high-voltage battery 2 from the outside until time t12. In the example of FIG. 8, the battery heater 12 is driven while external charging is being performed. From this point on, the command to the heater contactor 75 is kept ON until time t11 when the battery temperature becomes higher than the heater stop temperature, and this command is turned OFF at time t11.

[0092] When external charging ends at time t12, power is supplied from the high-voltage battery 2 to the high-voltage devices, causing the output current (current on the discharge side) from the high-voltage battery 2 to increase. However, when external charging ends at time t12, the PCM 201 determines that a system shutdown request has been issued, as described above. Accordingly, at time t13, operation of all high-voltage devices is stopped, and after time t13, the battery current decreases.

[0093] If the battery heater 12 is not faulty, that is, if the heater contactor 75 is not stuck ON, the heater contactor 75 is switched OFF at time t11 to stop the operation of the battery heater 12, and the battery current (current on the charging side) increases as shown by the chain line in Fig. 8. Furthermore, if the battery heater 12 is not faulty, the power supply from the high-voltage battery 2 to all high-voltage devices, including the battery heater 12, is stopped after time t13, and the battery current drops to near zero after time t13, as shown by the chain line.

[0094] In contrast, if the battery heater 12 is faulty, the high-voltage battery 2 continues to supply power to the battery heater 12 even after time t11. Therefore, as shown by the solid line, there is no change in the battery current before and after time t11. In this case, the high-voltage battery 2 continues to supply power to the battery heater 12 after time t13, so the battery current does not decrease to 0, but remains higher than the provisional determination value, as shown by the solid line. The battery current remains higher than the provisional determination value even after time t13. As a result, the battery current remains higher than the provisional determination value for the reference time after the operation of all high-voltage devices has stopped. At time t14, when the reference time has elapsed since time t13, it is provisionally determined that the battery heater 12 (heater contactor 75) has failed (the provisional failure flag changes from 0 to 1).

[0095] If it is provisionally determined that the battery heater 12 has failed, as shown by the solid line, the PCM 201 issues a command to the heater contactor 75 to turn OFF from time t14 to time t15, one hour later, and then issues a command to turn ON from time t15 to time t16, two hours later. Then, at time t16, it issues a command to switch OFF again. Although the PCM 201 switches ON / OFF commands in this way, if the battery heater 12 has failed, as shown by the solid line, the battery current does not fluctuate. Therefore, the difference between the OFF average current, which is the average value of the battery current from time t14 to time t15, and the ON average current, which is the average value of the battery current from time t15 to time t16, is approximately zero, which is smaller than the determination value. Therefore, after time t16, it is determined that the battery heater 12 has failed (the failure flag is switched from 0 to 1).

[0096] (effect, etc.) As described above, in this embodiment, when a system shutdown request is issued, that is, when the fault diagnosis conditions are met, the operation of both the battery heater 12 and the non-heater devices 90, i.e., all high-voltage devices that receive power from the high-voltage battery 2, is stopped (steps S22 and S25). Then, the heater contactor 75 is turned ON, and only the battery heater 12 is operated (step S26). Therefore, the amount of change in battery current that occurs with the operation of only the battery heater 12 can be reliably detected. Then, based on this amount of change, it can be accurately determined whether or not the battery heater 12 has failed.

[0097] In particular, in the above embodiment, when external charging ends, it is determined that a system shutdown request has been issued (the failure diagnosis condition is met), and a failure determination is made for the battery heater 12. Therefore, a failure of the battery heater 12 (specifically, the heater contactor 75 being stuck ON) can be more reliably detected.

[0098] Specifically, the heater contactor 75 is likely to stick after being switched from OFF to ON. In the above embodiment, when external charging is started (when the determination in step S3 is YES), the heater contactor 75 is switched from OFF to ON regardless of whether the battery SOC is high (without performing step S4). Therefore, when external charging is performed, the heater contactor 75 is switched from OFF to ON relatively frequently, and the probability that the heater contactor 75 will be stuck in ON also increases. Therefore, by determining whether the battery heater 12 has a fault after external charging is completed, it is possible to more reliably detect whether the heater contactor 75 is stuck in ON.

[0099] Furthermore, in the above embodiment, when external charging starts, the DC / DC converter 8 operates to charge the low-voltage battery 3 in addition to the high-voltage battery 2. Therefore, as described above, if the operation of the non-heater devices 90 including the DC / DC converter 8 is stopped in the failure determination of the battery heater 12 after the end of external charging, the accuracy of the failure determination of the battery heater 12 can be effectively improved.

[0100] Specifically, if the DC / DC converter 8 is left operating even after external charging is completed, power is supplied from the high-voltage battery 2 to the low-voltage battery 3 via the DC / DC converter 8. The power supplied from the high-voltage battery 2 to the low-voltage battery 3 varies relatively greatly depending on the charge level of the low-voltage battery 3, etc. Therefore, if the DC / DC converter 8 is left operating even after external charging is completed, the battery current will fluctuate greatly, making it particularly difficult to calculate the amount of change in battery current caused by operation of the battery heater 12 alone. In contrast, in the above embodiment, the operation of the DC / DC converter 8 is stopped after external charging is completed, so the amount of change in battery current caused by operation of the battery heater 12 alone can be accurately determined, and the accuracy of fault determination for the battery heater 12 can be improved.

[0101] In the above embodiment, when the start switch SW1 is switched from ON to OFF, it is determined that a system shutdown request has been issued (the failure diagnosis condition has been met). Therefore, the timing when the start switch SW1 is switched OFF can be used to determine whether or not there is a failure in the battery heater 12, ensuring an opportunity to determine whether or not there is a failure in the battery heater 12.

[0102] The PTC heater 9 and the electric compressor 10 consume relatively large amounts of power. Therefore, if the battery heater 12 is operated while these are in operation, it becomes particularly difficult to calculate, from the battery current, the amount of change in battery current that occurs as a result of the operation of the battery heater 12 alone. In contrast, in the above embodiment, the operation of the PTC heater 9 and the electric compressor 10 is also stopped when the start switch SW1 is switched from ON to OFF. This makes it possible to accurately determine the amount of change in battery current that occurs as a result of the operation of the battery heater 12 alone, thereby improving the accuracy of determining a fault in the battery heater 12.

[0103] In the above embodiment, after a system shutdown request is issued and a command to stop operation of all high-voltage equipment is issued (after step S22), if the battery current remains higher than the provisional determination value for a predetermined reference time (the determination in step S23 is YES), it is provisionally determined that the battery heater 12 (heater contactor 75) has a malfunction (step S24). Then, only after this provisional determination is made, the heater contactor 75 is switched from OFF to ON (step S26). It is also determined whether the difference between the ON-state average current and the OFF-state average current is less than the determination value (step S27), and if the determination is YES, it is determined that the battery heater 12 has a malfunction (step S29).

[0104] Therefore, it is possible to accurately determine whether the battery heater 12 has failed, while minimizing the number of times the heater contactor 75 is switched from OFF to ON to operate the battery heater 12 for failure determination.

[0105] Specifically, if the heater contactor 75 is stuck ON, current continues to flow from the high-voltage battery 2 to the battery heater 12 even after a system shutdown request is issued and a command to stop operation of all high-voltage devices, including the battery heater 12, is issued (after step S22). Therefore, the battery current is higher than the provisional determination value, which is greater than zero. However, even if the battery heater 12 is not malfunctioning, noise in the signal from the battery current sensor SN1 may cause the battery current recognized by the PCM 201 to momentarily increase. In contrast, in the above embodiment, the heater contactor 75 is switched from OFF to ON only when the battery current remains higher than the provisional determination value for a predetermined reference time and there is a strong possibility that the heater contactor 75 is stuck ON. This prevents the heater contactor 75 from being switched ON / OFF even when the heater contactor 75 is not malfunctioning. Furthermore, the battery current also increases when a high-voltage device other than the battery heater 12 malfunctions. Therefore, if it is determined that the battery heater 12 has a malfunction based solely on the battery current remaining higher than the provisional determination value for a reference time, an erroneous determination may occur. In contrast, in the above embodiment, it is determined that the battery current has remained higher than the provisional determination value for a reference time, and further, if the difference between the average ON-state current and the average OFF-state current is less than the determination value, it is determined that the battery heater 12 has a malfunction, so that a malfunction of the battery heater 12 can be accurately determined.

[0106] Furthermore, in this embodiment, the electrical connection between the multiple heater main bodies 12x and the high-voltage battery 2 is made and broken by a single heater contactor 75. Therefore, the battery heater 12 can be switched on and off simply by opening and closing this heater contactor 75, simplifying the configuration for the switching. Furthermore, by determining whether this single heater contactor 75 has failed, it can be determined whether the battery heater 12 can increase the temperature of the high-voltage battery 2, simplifying the configuration for failure determination.

[0107] (Variation) In the above embodiment, the battery current, which is the output current of the high-voltage battery 2, is used as the battery output value used in determining a failure of the battery heater 12. However, a voltage value, which is the output voltage of the high-voltage battery 2, may be used instead of the output current of the high-voltage battery 2. Specifically, instead of determining whether the battery current is higher than a predetermined provisional determination value in step S23, a determination may be made whether the output voltage of the high-voltage battery 2 is higher than a predetermined provisional determination value in step S23. Alternatively, a configuration may be adopted in which an average value of the output voltage of the high-voltage battery 2 during a first time period is calculated in step S25, an average value of the output voltage of the high-voltage battery 2 during a second time period is calculated in step S26, and a determination is made in step S27 as to whether the difference therebetween (the average value of the output voltage during the second time period minus the average value of the output voltage during the first time period) is less than a predetermined determination value. [Explanation of symbols]

[0108] 2 High voltage battery (battery) 2x Battery Modules 3 Low voltage battery 4 motors 8 DC / DC converters 9 PTC heater 10 Electric Compressor 12 Battery heater 12c Heater Circuit 12x heater body 40 AC external charging device 50 DC external charging device 75 Heater Contactor 90 Non-heating equipment 201 PCM (controller) 206 BECM (controller) SN1 Battery Current Sensor (Battery Output Detection Device) SW1 Start switch (switch)

Claims

1. A battery heater fault diagnosis device is provided in a vehicle equipped with a motor as a drive source, a battery that supplies power to the motor, a battery heater that receives power from the battery to heat the battery, and a non-heater device that operates by receiving power from the battery but is different from the battery heater, a battery output detection device capable of detecting a battery output value, which is a current value or a voltage value of the battery; a control device that controls each part of the vehicle including the battery heater and the non-heater device, The control device performs a first control to stop operation of the battery heater and the non-heater devices when a predetermined fault diagnosis condition is met, and a second control to operate the battery heater while keeping the non-heater devices stopped after the first control is performed, and diagnoses a fault in the battery heater based on the battery output value detected by the battery output detection device when the first control and the second control are performed, respectively.

2. 2. The vehicle battery heater fault diagnosis device according to claim 1, the battery includes a plurality of battery modules; the battery heater includes a plurality of heater bodies connected in series to each other to raise the temperature of each of the battery modules, and a heater contactor that connects and disconnects a heater circuit including the plurality of heater bodies to and from the battery; The control device stops operation of the battery heater by opening the heater contactor when the first control is executed, and operates the battery heater by closing the heater contactor when the second control is executed, and diagnoses a failure of the heater contactor based on a difference in the battery output value.

3. 3. The vehicle battery heater fault diagnosis device according to claim 1, the vehicle includes a low-voltage battery having an output voltage lower than that of the battery; The non-heater device is an AC external charging device that has an AC / DC converter that converts AC current into DC current and charges the battery with output power from an AC power source outside the vehicle; a DC / DC converter that operates when the battery is being charged by the AC external charging device, and that reduces the output power of the AC / DC converter and supplies the reduced power to the low-voltage battery; a control device that determines that the failure diagnosis condition is met when charging of the battery by the AC external charging device is completed;

4. The vehicle battery heater fault diagnosis device according to any one of claims 1 to 3, the vehicle includes a low-voltage battery having an output voltage lower than that of the battery, and a DC external charging device that charges the battery with output power from an external DC power supply; the non-heater device includes a DC / DC converter that operates when the battery is being charged by the DC external charging device, and that reduces the output power of the DC external charging device and supplies the reduced power to the low-voltage battery; a control device that determines that the failure diagnosis condition is met when charging of the battery by the DC external charging device is completed;

5. The vehicle battery heater fault diagnosis device according to any one of claims 1 to 4, The vehicle further includes a switch that can be operated by an occupant to switch between starting and stopping the vehicle, the non-heater device includes a PTC heater and an electric compressor for air conditioning; The vehicle battery heater fault diagnosis device, wherein the control device determines that the fault diagnosis condition is met when an operation to stop the vehicle is performed on the switch.

6. The vehicle battery heater fault diagnosis device according to any one of claims 1 to 5, The control device performs the second control only when the output value of the battery when the first control is performed is equal to or greater than a predetermined first judgment value, and determines that the battery heater is faulty when the battery output value when the second control is performed exceeds the battery output value when the first control is performed by less than a predetermined second judgment value.

Citation Information

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