vehicle

The vehicle system addresses polarization-induced SOC inaccuracies by controlling power distribution between batteries, using predicted idle times to depolarize and charge the high-voltage battery efficiently, ensuring accurate SOC estimation and energy utilization.

JP7833045B2Active Publication Date: 2026-03-18SUBARU CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-26
Publication Date
2026-03-18

AI Technical Summary

Technical Problem

The constant charging of a high-voltage battery with solar power generation in vehicles leads to polarization, reducing the accuracy of State of Charge (SOC) estimation, and interrupting this charging results in wasted energy.

Method used

A vehicle system with switches and converters controls power distribution between high-voltage and low-voltage batteries, using a control device to predict parking time and depolarize the high-voltage battery by transferring power to the low-voltage battery during predicted idle times.

Benefits of technology

This approach allows for the utilization of solar power without waste by depolarizing the high-voltage battery and charging the low-voltage battery during idle times, maintaining accurate SOC estimation and efficient energy use.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A processor of a control device in this vehicle performs a process in a state in which the host vehicle can travel, the process including: performing control to turn ON the first switch so that power generated by a photovoltaic power generating device is supplied to a high-voltage battery; deriving a predicted standing time period that indicates a predicted value of a time period in which the host vehicle is left in a parked state, in accordance with the state of the host vehicle being switched from the state in which the host vehicle can travel to the parked state; determining whether the predicted standing time period is longer than a specific time period that includes a depolarization time period that is a time period necessary to eliminate the polarization of the high-voltage battery; and, when it is determined that the predicted standing time period is longer than the specific time period, performing control to turn OFF the first switch and turn ON the second switch so that the power generated by the photovoltaic power generating device is supplied to a low-voltage battery.
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Description

Technical Field

[0001] The present invention relates to a vehicle.

Background Art

[0002] For example, Patent Document 1 discloses a vehicle equipped with a solar power generation device. In such a vehicle, if the SOC (State Of Charge) of the sub-battery is equal to or higher than the threshold value and the SOC of the main battery is lower than the threshold value, the electric power generated by the solar power generation device is supplied to the main battery.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] For example, if the high-voltage battery (main battery) is constantly charged with the electric power generated by the solar power generation device, polarization occurs inside the high-voltage battery. When polarization occurs, the derivation accuracy of the SOC of the high-voltage battery decreases. Therefore, it is preferable to temporarily interrupt the supply of electric power from the solar power generation device to the high-voltage battery to eliminate the polarization of the high-voltage battery. However, if the supply of electric power from the solar power generation device to the high-voltage battery is interrupted, the electric power generated by the solar power generation device will be wasted.

[0005] Therefore, an object of the present invention is to provide a vehicle capable of using the electric power generated by a solar power generation device without waste.

Means for Solving the Problems

[0006] In order to solve the above problems, a vehicle according to an embodiment of the present invention includes a solar power generation device, and High-voltage battery and Low-voltage battery and A first switch capable of turning the electrical connection between the solar power generation device and the high-voltage battery on and off, A second switch capable of turning the electrical connection between the solar power generation device and the low-voltage battery on and off, A control device that controls the on / off state of the first switch and the second switch, Equipped with, The control device is One or more processors, One or more memory connected to the processor, It has, The aforementioned processor, When the vehicle is in a drivable state, the first switch is turned ON and controlled so that the power generated by the solar power generation device is supplied to the high-voltage battery, The process involves deriving a predicted parking time, which indicates the estimated duration of time the vehicle will be left parked, as the vehicle transitions from a drivable state to a parked state. The determination of whether the predicted standing time is longer than a specific time including the depolarization time, which is the time required to depolarize the high-voltage battery, If it is determined that the predicted idle time is longer than the specified time, the first switch is turned off and the second switch is turned on so that the power generated by the solar power generation device is supplied to the low-voltage battery. Execute the process that includes this. [Effects of the Invention]

[0007] According to the present invention, it becomes possible to utilize the electricity generated by a solar power generation device without waste. [Brief explanation of the drawing]

[0008] [Figure 1] Figure 1 is a schematic diagram showing the configuration of the vehicle according to this embodiment. [Figure 2] Figure 2 illustrates the control performed by the charging control unit. [Figure 3] Figure 3 illustrates the first case of power transfer from a low-voltage battery to a high-voltage battery. [Figure 4] Figure 4 illustrates the second case concerning the transfer of power from a low-voltage battery to a high-voltage battery. [Figure 5] Figure 5 illustrates the third case concerning the transfer of power from a low-voltage battery to a high-voltage battery. [Figure 6] Figure 6 is a flowchart illustrating the operation flow of the charging control unit. [Figure 7] Figure 7 is a flowchart illustrating the operation flow of the charging control unit. [Figure 8] Figure 8 is a flowchart illustrating the operation flow of the charging control unit. [Figure 9] Figure 9 is a flowchart illustrating the operation flow of the charging control unit. [Modes for carrying out the invention]

[0009] Embodiments of the present invention will be described in detail below with reference to the attached drawings. The specific dimensions, materials, numerical values, etc., shown in these embodiments are merely examples to facilitate understanding of the invention and do not limit the present invention unless otherwise specified. In this specification and drawings, elements having substantially the same function and configuration are denoted by the same reference numerals to avoid redundant explanations, and elements not directly related to the present invention are omitted from the illustrations.

[0010] Figure 1 is a schematic diagram showing the configuration of vehicle 1 according to this embodiment. Vehicle 1 is, for example, an electric vehicle or a hybrid electric vehicle. Hereafter, vehicle 1 may be referred to as "the vehicle." Vehicle 1 includes a solar power generation device 10, a high-voltage battery 12, a low-voltage battery 14, a first switch 20, a second switch 22, a third switch 24, a first power converter 30, a second power converter 32, and a control device 40.

[0011] The photovoltaic power generation device 10 is, for example, a solar panel. The photovoltaic power generation device 10 is installed on the roof of the vehicle 1. The photovoltaic power generation device 10 converts the received solar energy into electrical energy to generate electric power. Note that the photovoltaic power generation device may be configured to convert the thermal energy of sunlight into electrical energy to generate electric power.

[0012] The high-voltage battery 12 is a secondary battery capable of charging and discharging. The voltage of the high-voltage battery 12 is, for example, a predetermined voltage of 100 V or more, and is higher than the voltage of the low-voltage battery 14 described later. The high-voltage battery 12 supplies electric power to each device connected to the high-voltage system in the vehicle 1, such as a motor generator which is a driving source for the vehicle 1 to run.

[0013] The low-voltage battery 14 is a secondary battery capable of charging and discharging, and is provided independently of the high-voltage battery 12. The voltage of the low-voltage battery 14 is, for example, 12 V or 24 V, and is lower than the voltage of the high-voltage battery 12. The low-voltage battery 14 supplies electric power to each device connected to the low-voltage system in the vehicle 1, such as an electric power steering device and a vehicle dynamic control device. Note that the low-voltage battery 14 is also called an accessory battery.

[0014] The first switch 20 is, for example, a relay or a semiconductor switch. The first switch 20 has two contacts. The first contact of the two contacts of the first switch 20 is connected to the photovoltaic power generation device 10. The second contact of the two contacts of the first switch 20 is connected to the high-voltage battery 12 via the first power conversion device 30. The first switch 20 is configured to be able to turn on and off the electrical connection between the photovoltaic power generation device 10 and the high-voltage battery 12.

[0015] The second switch 22 is, for example, a relay or a semiconductor switch. The second switch 22 has two contacts. The first contact of the second switch 22 is connected to the solar power generation device 10. The second contact of the second switch 22 is connected to the low-voltage battery 14 via the second power converter 32. The second switch 22 is configured to switch the electrical connection between the solar power generation device 10 and the low-voltage battery 14 on and off.

[0016] The third switch 24 is, for example, a relay or a semiconductor switch. The third switch 24 has two contacts. Of the two contacts of the third switch 24, the first contact is connected to the high-voltage battery 12 via the first power converter 30. Of the two contacts of the third switch 24, the second contact is connected to the low-voltage battery 14 via the second power converter 32. The third switch 24 is configured to switch the electrical connection between the high-voltage battery 12 and the low-voltage battery 14 on and off.

[0017] The on / off control of the first switch 20, the second switch 22, and the third switch 24 is performed by the control device 40, which will be described later.

[0018] The first power converter 30 is, for example, a bidirectional DC-DC converter. The first power converter 30 has two ends that allow for electrical input and output. The first end of the first power converter 30 is connected to the high-voltage battery 12. The second end of the first power converter 30 is connected to the connection point 50 between the second contact of the first switch 20 and the first contact of the third switch 24. The first power converter 30 is controlled by a control device 40, which will be described later.

[0019] The first power converter 30 can convert the voltage of the DC power input to the first end on the high-voltage battery 12 side to another voltage, and output the DC power after the voltage conversion from the second end on the connection point 50 side. Furthermore, the first power converter 30 can convert the voltage of the DC power input to the second end on the connection point 50 side to another voltage, and output the DC power after the voltage conversion from the first end on the high-voltage battery 12 side.

[0020] For example, when the first switch 20 is ON and the third switch 24 is OFF, the power generated by the solar power generation device 10 is input to the first power converter 30 through the first switch 20. In this case, the first power converter 30 is controlled to convert the input power and supply it to the high-voltage battery 12.

[0021] Alternatively, for example, suppose the first switch 20 is in the off state and the third switch 24 is in the on state. In this case, the first power converter 30 may be controlled in cooperation with the second power converter 32 to convert the power of the high-voltage battery 12 and supply it to the low-voltage battery 14 through the third switch 24. Or, the first power converter 30 may be controlled in cooperation with the second power converter 32 to convert the power of the low-voltage battery 14 input through the third switch 24 and supply it to the high-voltage battery 12.

[0022] The second power converter 32 is, for example, a bidirectional DC-DC converter. The second power converter 32 has two ends that allow for electrical input and output. The first end of the second power converter 32 is connected to the low-voltage battery 14. The second end of the second power converter 32 is connected to the connection point 52 between the second contact of the second switch 22 and the second contact of the third switch 24. The second power converter 32 is controlled by the control device 40, which will be described later.

[0023] The second power converter 32 can convert the voltage of the DC power input to the first end on the low-voltage battery 14 side to another voltage, and output the DC power after the voltage conversion from the second end on the connection point 52 side.

[0024] For example, when the second switch 22 is ON and the third switch 24 is OFF, the power generated by the solar power generation device 10 is input to the second power converter 32 through the second switch 22. In this case, the second power converter 32 is controlled to convert the input power and supply it to the low-voltage battery 14.

[0025] Alternatively, for example, suppose the second switch 22 is in the off state and the third switch 24 is in the on state. In this case, the second power converter 32 may be controlled in cooperation with the first power converter 30 to convert the power of the low-voltage battery 14 and supply it to the high-voltage battery 12 through the third switch 24. Or, the second power converter 32 may be controlled in cooperation with the first power converter 30 to convert the power of the high-voltage battery 12 input through the third switch 24 and supply it to the low-voltage battery 14.

[0026] Vehicle 1 also further includes a communication device 60, a first voltage sensor 62, a second voltage sensor 64, a start switch 66, and a storage device 68.

[0027] The communication device 60 can communicate with a predetermined server device or the like outside the vehicle 1 via a communication network. For example, the communication device 60 can obtain predicted values ​​for solar radiation from a server device that provides weather forecasts.

[0028] The first voltage sensor 62 detects the voltage of the high-voltage battery 12. The detection result of the first voltage sensor 62 is used, for example, to derive the State of Charge (SOC) and charge capacity of the high-voltage battery 12. The SOC represents the charge rate, which is the current charge capacity expressed as a percentage of the battery's full charge capacity. The charge capacity is sometimes simply referred to as capacity.

[0029] The second voltage sensor 64 detects the voltage of the low-voltage battery 14. The detection result of the second voltage sensor 64 is used, for example, to derive the state of charge (SOC) and capacity of the low-voltage battery 14.

[0030] The start switch 66 accepts a READY-ON or READY-OFF operation from the occupant of vehicle 1. When the READY-ON operation is performed via the start switch 66, vehicle 1 starts up and enters the READY-ON state. The READY-ON state is when vehicle 1 is ready to drive. When the READY-OFF operation is performed via the start switch 66, vehicle 1 shuts down and enters the READY-OFF state. The READY-OFF state is when vehicle 1 is unable to drive and corresponds to the parked state.

[0031] The memory device 68 is composed of non-volatile memory elements. The non-volatile memory elements may include electrically readable and writable non-volatile memory elements such as flash memory.

[0032] The control device 40 includes one or more processors 70 and one or more memories 72 connected to the processors 70. The memories 72 include ROM, which stores programs, and RAM, which serves as a work area. The processors 70 of the control device 40 cooperate with the programs contained in the memories 72 to control the entire vehicle 1. The processors 70 also function as a charge control unit 80 by executing programs.

[0033] The charging control unit 80 controls the on / off state of the first switch 20, the second switch 22, and the third switch 24. The charging control unit 80 also controls the power conversion operation of the first power converter 30 and the second power converter 32.

[0034] More specifically, the charging control unit 80 controls the first switch 20 to the ON state, the second switch 22 to the OFF state, and the third switch 24 to the OFF state when the vehicle 1 is in a drivable state. In this state, the charging control unit 80 controls the operation of the first power converter 30 so that the power generated by the solar power generation device 10 is supplied to the high-voltage battery 12. That is, when the vehicle 1 is in a drivable state, the charging control unit 80 controls the first switch 20 to the ON state so that the power generated by the solar power generation device 10 is supplied to the high-voltage battery 12.

[0035] Furthermore, if the State of Charge (SOC) of the high-voltage battery 12 reaches 100% while the vehicle 1 is in a drivable state, the charge control unit 80 may turn off the first switch 20 to temporarily interrupt the supply of power from the solar power generation device 10 to the high-voltage battery 12.

[0036] Thus, in vehicle 1, while it is in a drivable state, power is basically supplied from the solar power generation device 10 to the high-voltage battery 12 at all times, and the high-voltage battery 12 is charged.

[0037] When a battery is charged over a long period of time, polarization occurs inside the battery. Polarization is a phenomenon in which an imbalance of electrons occurs between the positive and negative electrodes of the battery, resulting in a pseudo-potential difference. When such polarization occurs, the battery voltage detected by the voltage sensor will be higher than the actual voltage by the amount of this pseudo-potential difference. As a result, the accuracy of the State of Charge (SOC) derived from the voltage sensor's detection results decreases. Consequently, it is possible for the SOC to show 100% even though the battery has not actually reached full charge.

[0038] Such polarization can be resolved by temporarily interrupting battery charging and waiting for a predetermined period of time without charging. The predetermined period may be, for example, 30 minutes, but it can be any time that is sufficient to resolve the polarization. Hereafter, this predetermined period, that is, the time required to resolve the polarization, may be referred to as the polarization resolution time.

[0039] As described above, in vehicle 1, the high-voltage battery 12 is constantly charged by the solar power generation device 10, making it prone to polarization. Therefore, it is preferable to temporarily interrupt the charging of the high-voltage battery 12 by the solar power generation device 10 at a predetermined timing in vehicle 1 to eliminate the polarization of the high-voltage battery 12. The predetermined timing may be any timing that can appropriately eliminate the polarization of the high-voltage battery 12, such as the timing when the state of vehicle 1 transitions from a drivable state to a parked state.

[0040] However, if the charging of the high-voltage battery 12 by the solar power generation device 10 is interrupted, the power generated by the solar power generation device 10 will be wasted during the period when the charging of the high-voltage battery 12 is interrupted.

[0041] Therefore, the charging control unit 80 of the vehicle 1 in this embodiment derives a predicted idle time, which is a predicted value of the time the vehicle 1 will be left in the parked state, in response to the transition of the state of the vehicle 1 from a drivable state to a parked state.

[0042] Hereafter, for the sake of clarity, the time during which Vehicle 1 is left parked may be referred to as "parking time." The moment when Vehicle 1 transitions from a drivable state to a parked state may be referred to as "parking start time." The moment when Vehicle 1 transitions from a parked state to a drivable state may be referred to as "start time." In other words, parking time refers to the time from the parking start time to the next start time.

[0043] The charging control unit 80 can store the history of parking start timing and startup timing in the storage device 68. Furthermore, when storing the history of startup timing, the charging control unit 80 can derive the idle time between the previous parking timing and the current startup timing from the previous parking timing and store this time in the storage device 68. Additionally, when storing parking timing, the charging control unit 80 may associate and store additional information such as season, date, day of the week, time of day, and the position of vehicle 1 with the parking timing. In other words, the charging control unit 80 can accumulate history data in the storage device 68, including parking start timing, idle time, and related data.

[0044] The charging control unit 80 can construct a predetermined learning model by learning from the history data stored in the storage device 68. The predetermined learning model is stored in the storage device 68. The predetermined learning model outputs a predicted idle time, which is a predicted value of the idle time, in response to inputs such as the parking start time, season, date, day of the week, time of day, and the position of vehicle 1. The predetermined learning model may also be updated periodically.

[0045] When the current time is the start of parking, the charging control unit 80 inputs the current season, date, day of the week, time of day, and the position of vehicle 1 into a predetermined learning model to obtain a predicted parking time if vehicle 1 were left unattended from the current time.

[0046] The charging control unit 80 determines whether the predicted waiting time is longer than a specific time including the polarization depolarization time. If the predicted waiting time is longer than the specific time, it is predicted that the vehicle 1 will be left parked for a sufficient amount of time to depolarize. The specific time will be described in detail later.

[0047] If the charging control unit 80 determines that the predicted waiting time is longer than a specific time, it turns off the first switch 20. When the first switch 20 is in the off state, the vehicle 1 is left parked, which allows the polarization of the high-voltage battery 12 to be sufficiently resolved.

[0048] In addition, if the charging control unit 80 determines that the predicted idle time is longer than a specific time, it turns on the second switch 22 to control the system so that the power generated by the solar power generation device 10 is supplied to the low-voltage battery 14. That is, while the polarization of the high-voltage battery 12 is being depolarized, the solar power generation device 10 charges the low-voltage battery 14. As a result, in the vehicle 1 of this embodiment, it is possible to depolarize the high-voltage battery 12 and prevent the power generated by the solar power generation device 10 from being wasted. The control by the charging control unit 80 will be described in detail below.

[0049] Figure 2 illustrates the control by the charging control unit 80. Figure 2 shows an example of the time progression of predicted future solar radiation values. In Figure 2, the present time is the point in time when the state of vehicle 1 transitions from a drivable state to a parked state and it is determined that the predicted waiting time is longer than a specific time. In Figure 2, the first time point is before the present time. The second time point is before the first time point. The third time point is before the second time point.

[0050] The charging control unit 80 can derive a predicted value for the amount of power generated per unit time by the photovoltaic power generation device 10 based on the predicted value for the amount of solar radiation per unit time. For example, the charging control unit 80 can derive the amount of power generated by the photovoltaic power generation device 10 from the present time to the first time point based on the predicted value for the amount of solar radiation from the present time to the first time point.

[0051] Here, the charging control unit 80 controls the third switch 24 to be turned ON before charging the low-voltage battery 14 with the solar power generation device 10, thereby transferring a predetermined amount of power from the low-voltage battery 14 to the high-voltage battery 12. In Figure 2, the time from the present moment to the first moment corresponds to the predicted power transfer time, which is the time it takes for power to be transferred from the low-voltage battery 14 to the high-voltage battery 12.

[0052] The power transfer time and the amount of power transferred are determined by considering, for example, the current capacity of the low-voltage battery 14 and the predicted amount of power generated by the solar power generation device 10 while polarization is being depolarized. The power transfer time and the amount of power transferred will be described in detail later.

[0053] When this power transfer occurs, the State of Charge (SOC) of the low-voltage battery 14 decreases by the amount of power supplied to the high-voltage battery 12. On the other hand, the SOC of the high-voltage battery 12 increases by the amount of power received from the low-voltage battery 14.

[0054] After transferring power from the low-voltage battery 14 to the high-voltage battery 12, the charge control unit 80 electrically isolates the high-voltage battery 12 from the solar power generation device 10 and the low-voltage battery 14, thereby eliminating the polarization of the high-voltage battery 12. In Figure 2, the time from the first time point to the second time point corresponds to the polarization depolarization time.

[0055] As this depolarization time elapses, the voltage of the high-voltage battery 12 is corrected, and as a result, the SOC is corrected. Also, as mentioned above, while depolarization is taking place, the low-voltage battery 14 is charged by the solar power generation device 10, so the SOC of the low-voltage battery 14 increases.

[0056] After the depolarization time has elapsed, the charge control unit 80 terminates charging of the low-voltage battery 14 by the solar power generation device 10 and derives the State of Charge (SOC). In Figure 2, since the depolarization time has elapsed at the second time point, the SOC is derived at that second time point. Due to the depolarization, the SOC is corrected to an appropriate value.

[0057] After the depolarization time has elapsed and the State of Charge (SOC) has been determined, the charge control unit 80 charges the high-voltage battery 12 using the photovoltaic power generation device 10. In Figure 2, the time from the second time point to the third time point corresponds to the predicted charging time of the high-voltage battery 12. This charging of the high-voltage battery 12 causes the SOC of the high-voltage battery 12 to increase.

[0058] Thus, if it is determined that the predicted idle time is longer than a specific time, power will be transferred from the low-voltage battery 14 to the high-voltage battery 12, the polarization of the high-voltage battery 12 will be depolarized, and the high-voltage battery 12 will be charged in the future. In other words, the specific time is determined so that power can be transferred from the low-voltage battery 14 to the high-voltage battery 12, the polarization of the high-voltage battery 12 will be depolarized, and the high-voltage battery 12 will be charged appropriately during the predicted idle time from the present to the future. More specifically, the specific time is the sum of the predicted power transfer time, the preset depolarization time, and the predicted charging time of the high-voltage battery 12.

[0059] Furthermore, the specified time is not limited to the sum of the predicted power transfer time, the preset depolarization time, and the predicted charging time of the high-voltage battery 12. The specified time only needs to include at least the depolarization time. By making the specified time include at least the depolarization time, the polarization of the high-voltage battery 12 can be appropriately resolved.

[0060] For example, charging of the high-voltage battery 12 after depolarization may be omitted. In this case, the specified time may include the power transfer time and the depolarization time. More specifically, the specified time may be the sum of the predicted power transfer time and the depolarization time.

[0061] Furthermore, the transfer of power from the low-voltage battery 14 to the high-voltage battery 12 may be omitted. In this case, the specific time may be the sum of the depolarization time and the predicted charging time of the high-voltage battery 12.

[0062] Furthermore, both the transfer of power from the low-voltage battery 14 to the high-voltage battery 12 and the charging of the high-voltage battery 12 after polarization depolarization may be omitted. In this case, the polarization depolarization time may be set to a specific time.

[0063] Furthermore, charging of the high-voltage battery 12 after depolarization is carried out, for example, until the State of Charge (SOC) of the high-voltage battery 12 reaches 100%.

[0064] Furthermore, the method of charging the high-voltage battery 12 is not limited to charging the high-voltage battery 12 until its State of Charge (SOC) reaches 100% after depolarization. For example, the high-voltage battery 12 may be charged until its SOC reaches a predetermined target SOC lower than 100%. Alternatively, the high-voltage battery 12 may be charged so that its SOC increases by a predetermined percentage after depolarization. The predetermined target SOC and predetermined percentage may be set to any value that allows the occupant of the vehicle 1 to recognize that the high-voltage battery 12 has been charged.

[0065] The power to be charged in the charging of the high-voltage battery 12 after polarization has been resolved is the power corresponding to the SOC obtained by subtracting the predicted SOC of the high-voltage battery 12 at a second time point from the predicted SOC of the high-voltage battery 12 at the time the charging is completed. The predicted SOC of the high-voltage battery 12 at the time the charging is completed is, for example, 100%, as described above. The predicted SOC of the high-voltage battery 12 at a second time point is the current SOC of the high-voltage battery 12 plus the SOC of the power transferred from the low-voltage battery 14.

[0066] As described above, the charging control unit 80 can derive the predicted value of the amount of power generated per unit time by the photovoltaic power generation device 10 from the second time point onward, based on the predicted value of the amount of solar radiation per unit time from the second time point onward. Then, the charging control unit 80 can integrate the predicted value of the amount of power generated per unit time by the photovoltaic power generation device 10 from the second time point onward to derive the power that is predicted to be charged to the high-voltage battery 12 by the photovoltaic power generation device 10 from the second time point onward. The charging control unit 80 can determine the charging time by integrating the predicted value of the amount of power generated until the power derived in this way reaches the power that should be charged in the charging of the high-voltage battery 12 after polarization is resolved.

[0067] Next, the transfer of power from the low-voltage battery 14 to the high-voltage battery 12 will be described with reference to Figures 3 to 5. In this embodiment, there are three cases regarding the transfer of power from the low-voltage battery 14 to the high-voltage battery 12.

[0068] Figure 3 illustrates the first case of power transfer from the low-voltage battery 14 to the high-voltage battery 12. Figure 4 illustrates the second case of power transfer from the low-voltage battery 14 to the high-voltage battery 12. Figure 5 illustrates the third case of power transfer from the low-voltage battery 14 to the high-voltage battery 12. In Figures 3 to 5, the portion of the low-voltage battery 14's capacity where power is stored is indicated by hatching.

[0069] First, let's explain the first case. For the sake of explanation, the capacity that can be supplied to the low-voltage battery 14 with power generated by the photovoltaic power generation device 10 within the depolarization time is sometimes referred to as the "supplyable capacity." As described above, the charge control unit 80 can derive the amount of power generated by the photovoltaic power generation device 10 between the first and second time points in Figure 2, based on the predicted amount of solar radiation between the first and second time points. Since it is possible to supply the power generated between the first and second time points to the low-voltage battery 14, the charge control unit 80 can derive the supplyable capacity based on the amount of power generated by the photovoltaic power generation device 10 between the first and second time points.

[0070] Furthermore, for the sake of explanation, the value obtained by subtracting the lower limit capacity of the low-voltage battery 14 from the full charge capacity of the low-voltage battery 14 is sometimes referred to as the "maximum differential capacity." The lower limit capacity is the charge capacity that indicates the boundary below which it is prohibited for the charge capacity to fall. The lower limit capacity is predetermined according to the specifications of the low-voltage battery 14.

[0071] Furthermore, for the sake of explanation, the capacity obtained by subtracting the lower limit capacity from the current capacity is sometimes referred to as the "current difference capacity." Note that the current capacity refers to the capacity of the low-voltage battery 14 at the present time in Figure 2, that is, at the time when it is determined that the predicted idle time is longer than a specific time.

[0072] As shown in Figure 3, the first case is when the first condition is met, which is that the "available capacity" is greater than the "maximum differential capacity".

[0073] In the first case, the power of the "current differential capacity" is determined to be the amount of power transferred from the low-voltage battery 14 to the high-voltage battery 12. That is, the charge control unit 80 derives the available capacity and determines whether the first condition, that the available capacity is greater than the maximum differential capacity, is met. If the charge control unit 80 determines that the first condition is met, it transfers the power of the current differential capacity in the process of transferring power from the low-voltage battery 14 to the high-voltage battery 12.

[0074] In the first case, the capacity of the low-voltage battery 14 decreases to its lower limit by transferring power equivalent to the current difference in capacity from the low-voltage battery 14 to the high-voltage battery 12. Then, during the depolarization time, the low-voltage battery 14 is charged by the solar power generation device 10, increasing its capacity. At this time, since the available capacity is greater than the maximum difference in capacity, the low-voltage battery 14 can be charged to its full capacity.

[0075] Based on these considerations, if the first condition is met, the power transfer time is determined to be the time it is possible to transfer the power of the "current difference capacity" from the low-voltage battery 14 to the high-voltage battery 12.

[0076] Next, we will explain the second case. Here, for the sake of explanation, the value obtained by subtracting the current capacity of the low-voltage battery 14 from the full charge capacity of the low-voltage battery 14 may be referred to as the "available capacity." Also, for the sake of explanation, the value obtained by subtracting the available capacity from the supplyable capacity may be referred to as the "differential charge capacity."

[0077] As shown in Figure 4, the second case is when the second condition is met, which is that the "available capacity" is less than or equal to the "maximum differential capacity" and the "available capacity" is greater than the "available capacity".

[0078] In the second case, the power of the "differential charging capacity" is determined to be the amount of power transferred from the low-voltage battery 14 to the high-voltage battery 12. That is, the charging control unit 80 derives the available capacity and determines whether the second condition is met, which is that the available capacity is less than or equal to the maximum differential capacity and the available capacity is greater than the available capacity. If the charging control unit 80 determines that the second condition is met, it transfers power of the differential charging capacity in the process of transferring power from the low-voltage battery 14 to the high-voltage battery 12.

[0079] In the second case, by transferring power equivalent to the differential charge capacity from the low-voltage battery 14 to the high-voltage battery 12, the capacity of the low-voltage battery 14 decreases by the differential charge capacity from its current capacity. Then, during the depolarization time, the solar power generation device 10 charges the low-voltage battery 14, increasing its capacity to exactly its full charge capacity. In other words, the low-voltage battery 14 can be charged to its full charge capacity.

[0080] Based on these considerations, if the second condition is met, the power transfer time is determined to be the time it is possible to transfer the power of the "differential charging capacity" from the low-voltage battery 14 to the high-voltage battery 12.

[0081] Next, let's discuss the third case. As shown in Figure 5, the third case is when the third condition is met: the "available capacity" is less than or equal to the "available capacity".

[0082] In the third case, no power is transferred from the low-voltage battery 14 to the high-voltage battery 12. That is, the charge control unit 80 derives the available capacity and determines whether the third condition, that the available capacity is less than or equal to the available capacity, is met. If the charge control unit 80 determines that the third condition is met, it controls the system to supply power from the solar power generation device 10 to the low-voltage battery 14 without transferring power from the low-voltage battery 14 to the high-voltage battery 12.

[0083] In the third case, without transferring power from the low-voltage battery 14 to the high-voltage battery 12, the solar power generation device 10 charges the low-voltage battery 14 during the dispersion resolution time, increasing the capacity of the low-voltage battery 14 by the amount of the available capacity from its current capacity. In this case, since the available capacity is less than or equal to the available capacity, even after the solar power generation device 10 has finished charging the low-voltage battery 14, the capacity of the low-voltage battery 14 does not reach its full charge capacity, leaving a margin of capacity in the low-voltage battery 14.

[0084] Based on these factors, if the third condition is met, no power is transferred from the low-voltage battery 14 to the high-voltage battery 12, and therefore the power transfer time is determined to be zero.

[0085] Figures 6, 7, 8, and 9 are flowcharts illustrating the operation flow of the charging control unit 80. "A" in Figure 6 connects to "A" in Figure 7. "B" in Figure 7 connects to "B" in Figure 6. "C" in Figure 7 connects to "C" in Figure 8. "D" in Figure 8 connects to "D" in Figure 7. "E" in Figure 8 connects to "E" in Figure 9. "F" in Figure 9 connects to "F" in Figure 6.

[0086] Here, we assume that vehicle 1 is in a drivable state. In this state, the first switch 20 is in the ON state, the second switch 22 is in the OFF state, and the third switch 24 is in the OFF state. When the Ready Off operation is detected by the Start Switch 66, vehicle 1 transitions from the drivable state to the parked state.

[0087] The charging control unit 80 waits until the vehicle 1 transitions from a drivable state to a parked state (NO in S10). If the vehicle 1 transitions from a drivable state to a parked state (YES in S10), the charging control unit 80 executes the processes from step S11 onwards.

[0088] In step S11, the charge control unit 80 derives the State of Charge (SOC) of the high-voltage battery 12 based on the detection result of the first voltage sensor 62 (S11). The charge control unit 80 determines whether the derived SOC has reached 100% (S12).

[0089] If the derived SOC reaches 100% (YES in S12), the charge control unit 80 turns off the first switch 20 (S13). As a result, the high-voltage battery 12 is electrically isolated from the solar power generation device 10 and the low-voltage battery 14, and the depolarization process begins.

[0090] Next, the charging control unit 80 determines whether the depolarization time has elapsed, based on the time when the first switch 20 was switched from the ON state to the OFF state (S14). If the depolarization time has not elapsed (NO in S14), the charging control unit 80 waits until the depolarization time has elapsed.

[0091] If the polarization depolarization time has elapsed (YES in S14), the polarization of the high-voltage battery 12 can be considered to have been depolarized, and the charge control unit 80 derives the state of charge (SOC) of the high-voltage battery 12 based on the detection result of the first voltage sensor 62 (S15). As a result of the polarization being depolarized, the detection result of the first voltage sensor 62 is corrected to the actual voltage of the high-voltage battery 12, and the SOC of the high-voltage battery 12 is corrected to the actual SOC. Therefore, even if the SOC derived before polarization depolarization was determined to be 100% (S11, S12), the corrected SOC after polarization depolarization (S15) may be less than 100%. Therefore, the charge control unit 80 determines whether the SOC derived after polarization depolarization (S15) has reached 100% (S16).

[0092] If the derived SOC has not reached 100% (NO in S16), the charge control unit turns on the first switch 20 to charge the high-voltage battery 12 with the solar power generation device 10 (S17). The charge control unit 80 then derives the SOC of the high-voltage battery 12 again (S15) and determines whether the SOC has reached 100% (S16). In this way, the charge control unit 80 continues to charge the high-voltage battery 12 with the solar power generation device 10 until the SOC reaches 100%. When the SOC reaches 100% (YES in S16), the charge control unit 80 terminates the series of processes. At this time, the charge control unit 80 may turn off the first switch 20 to interrupt the charging of the high-voltage battery 12 with the solar power generation device 10. Steps S16 and S17 may be omitted, and the series of processes may be terminated after the SOC is derived in step S15.

[0093] Furthermore, in step S12, if the SOC derived in step S11 has not reached 100% (NO in S12), the charge control unit 80 moves from "A" in Figure 6 to "A" in Figure 7 and performs the processing from step S20 onward.

[0094] As shown in Figure 7, in step S20, the charging control unit 80 determines whether the prediction of the idle time is valid (S20). As described above, the charging control unit 80 can derive the predicted idle time using a predetermined learning model based on the history data stored in the storage device 68. Whether the prediction of the idle time is valid corresponds to whether the predetermined learning model is valid enough to appropriately derive the predicted idle time. For example, if the storage device 68 does not have history data for a predetermined number of days or more, it may not be possible to construct an appropriate learning model. For example, if the charging control unit 80 has history data for a predetermined number of days or more, it may determine that the prediction of the idle time is valid because it can construct an appropriate learning model. The predetermined number of days may be set to any value that makes it possible to construct an appropriate learning model.

[0095] If it is determined that the prediction of the idle time is not valid (NO in S20), it is not appropriate to decide whether or not to perform a process to depolarize the high-voltage battery 12 according to the length of the predicted idle time. In this case, the charge control unit 80 and the first switch 20 are turned ON (S21). As a result, the high-voltage battery 12 is charged by the solar power generation device 10.

[0096] Next, the charging control unit 80 derives the State of Charge (SOC) of the high-voltage battery 12 based on the detection result of the first voltage sensor 62 (S22). The charging control unit 80 determines whether the derived SOC has reached 100% (S23). If the derived SOC has not reached 100% (NO in S23), the charging control unit 80 keeps the first switch 20 in the ON state (S21) and continues charging the high-voltage battery 12 by the solar power generation device 10. In this way, the charging control unit 80 continues charging the high-voltage battery 12 by the solar power generation device 10 until the SOC of the high-voltage battery 12 reaches 100%.

[0097] If the derived SOC reaches 100% (YES in S23), the charge control unit 80 turns off the first switch 20 (S24). This interrupts the charging of the high-voltage battery 12 by the solar power generation device 10.

[0098] Subsequently, the charging control unit 80 determines whether the depolarization time has elapsed, based on the time when the first switch 20 was switched from the ON state to the OFF state (S25). If the depolarization time has not elapsed (NO in S25), the charging control unit 80 waits until the depolarization time has elapsed.

[0099] If the polarization depolarization time has elapsed (YES in S25), the polarization of the high-voltage battery 12 can be considered to have been depolarized, and the charge control unit 80 moves from "B" in Figure 7 to "B" in Figure 6 and performs the processing described above from step S15 onwards.

[0100] Furthermore, if it is determined in step S20 that the prediction of the idle time is valid (YES in S20), the charging control unit 80 derives the predicted idle time using a predetermined learning model (S30).

[0101] The charging control unit 80 obtains predicted solar radiation values ​​from a server device that provides weather forecasts via the communication device 60 (S31). Based on the obtained predicted solar radiation values ​​and a preset depolarization time, the charging control unit 80 derives the available capacity of the low-voltage battery 14 supplied by the photovoltaic power generation device 10 (S32).

[0102] The charging control unit 80 derives the maximum differential capacity by subtracting the lower limit capacity of the low-voltage battery 14 from the full charge capacity of the low-voltage battery 14 (S33). The charging control unit 80 derives the current capacity of the low-voltage battery 14 based on the detection result of the second voltage sensor 64 (S34). The charging control unit 80 derives the available capacity of the low-voltage battery 14 by subtracting the current capacity of the low-voltage battery 14 from the full charge capacity of the low-voltage battery 14 (S35). The charging control unit 80 moves from "C" in Figure 7 to "C" in Figure 8 and performs the processing from step S40 onwards.

[0103] As shown in Figure 8, in step S40, the charging control unit 80 determines whether the available capacity is greater than the maximum differential capacity (S40).

[0104] If it is determined that the available capacity is greater than the maximum differential capacity (YES in S40), it is the same as determining that the first condition is met. In this case, the charge control unit 80 subtracts the lower limit capacity of the low-voltage battery 14 from the current capacity of the low-voltage battery 14 to derive the current differential capacity. Then, the charge control unit 80 takes the amount of power transferred from the low-voltage battery 14 to the high-voltage battery 12 as the derived current differential capacity (S41) and proceeds to the process in step S45.

[0105] Furthermore, if in step S40 it is determined that the available capacity is less than or equal to the maximum differential capacity (NO in S40), the charging control unit 80 determines whether the available capacity is greater than the available capacity (S42).

[0106] If it is determined that the available capacity is greater than the available capacity (YES in S42), it is the same as determining that the second condition is met. In this case, the charge control unit 80 subtracts the available capacity from the available capacity to derive the differential charge capacity. Then, the charge control unit 80 takes the amount of power transferred from the low-voltage battery 14 to the high-voltage battery 12 as the derived differential charge capacity (S43) and proceeds to the process in step S45.

[0107] If it is determined that the available capacity is less than or equal to the available capacity (NO in S42), it is the same as determining that the third condition is met. In this case, the charge control unit 80 decides not to transfer power from the low-voltage battery 14 to the high-voltage battery 12 (S44) and proceeds to step S45.

[0108] In step S45, the charge control unit 80 derives a predicted power transfer time for transferring the determined amount of power from the low-voltage battery 14 to the high-voltage battery 12 (S45). For example, if the amount to be transferred is the current differential capacity, the charge control unit 80 derives a predicted power transfer time for transferring the current differential amount of power. If the amount to be transferred is the differential charging capacity, the charge control unit 80 derives a predicted power transfer time for transferring the differential charging capacity of power. If it is determined that no power transfer will occur, the charge control unit 80 sets the power transfer time to zero.

[0109] After deriving the power transfer time, the charge control unit 80 derives a predicted value for the charging time of the high-voltage battery after polarization depolarization based on the predicted value of solar radiation (S46).

[0110] The charging control unit 80 derives a specific time by summing the predicted power transfer time, the depolarization time, and the predicted charging time of the high-voltage battery 12 (S47). Alternatively, the charging control unit 80 may derive the specific time by summing the power transfer time and the depolarization time.

[0111] Next, the charging control unit 80 determines whether the predicted waiting time is longer than the specified time (S48). If it determines that the predicted waiting time is less than or equal to the specified time (NO in S48), the charging control unit 80 moves from "D" in Figure 8 to "D" in Figure 7 and performs the processing described above from step S21 onwards.

[0112] Furthermore, if the predicted waiting time is determined to be longer than a specific time (YES in S48), the charging control unit 80 moves from "E" in Figure 8 to "E" in Figure 9 and performs the processing from step S50 onwards.

[0113] As shown in Figure 9, in step S50, the charge control unit 80 determines whether the available capacity is greater than the maximum differential capacity (S50).

[0114] If it is determined that the charge difference capacity is greater than the maximum charge difference capacity (YES in S50), this is equivalent to determining that the first condition is met, and the charge control unit 80 turns off the first switch 20 (S51) and turns on the third switch (S52). As a result, charging of the high-voltage battery 12 by the solar power generation device 10 is interrupted, and power is transferred from the low-voltage battery 14 to the high-voltage battery 12.

[0115] The charging control unit 80 waits until the power transfer of the current differential capacity is complete (NO in S53). When the power transfer of the current differential capacity is complete (YES in S53), the charging control unit 80 turns off the third switch 24 (S54) and turns on the second switch 22 (S55). As a result, the high-voltage battery 12 is isolated from the solar power generation device 10 and the low-voltage battery 14, which acts to eliminate the polarization of the high-voltage battery 12, and the solar power generation device 10 charges the low-voltage battery 14.

[0116] The charging control unit 80 determines whether the depolarization time has elapsed, based on the time when the high-voltage battery 12 is disconnected from the solar power generation device 10 and the low-voltage battery 14 (for example, step S54) (S56). If the depolarization time has not elapsed (NO in S56), the charging control unit 80 waits until the depolarization time has elapsed. If the depolarization time has elapsed (YES in S56), it can be considered that the polarization of the high-voltage battery 12 has been resolved, and the charging control unit 80 turns off the second switch 22 (S57) and terminates the charging of the low-voltage battery 14 by the solar power generation device 10. Then, the charging control unit 80 moves from "F" in Figure 9 to "F" in Figure 6 and performs the processing from step S15 onwards described above. That is, the high-voltage battery 12 is charged by the solar power generation device 10.

[0117] Furthermore, if it is determined in step S50 that the available capacity is less than or equal to the maximum differential capacity (NO in S50), the charging control unit 80 determines whether the available capacity is greater than the available capacity (S60).

[0118] If it is determined that the available capacity is greater than the available capacity (YES in S60), this is equivalent to determining that the second condition is met, and the charge control unit 80 turns off the first switch 20 (S61) and turns on the third switch 24 (S62). As a result, charging of the high-voltage battery 12 by the solar power generation device 10 is interrupted, and power is transferred from the low-voltage battery 14 to the high-voltage battery 12.

[0119] The charging control unit 80 waits until the power transfer of the differential charging capacity is complete (NO in S63). When the power transfer of the differential charging capacity is complete (YES in S63), the charging control unit 80 turns off the third switch 24 (S54) and turns on the second switch 22 (S55). As a result, the high-voltage battery 12 is isolated from the solar power generation device 10 and the low-voltage battery 14, which acts to eliminate the polarization of the high-voltage battery 12, and the solar power generation device 10 charges the low-voltage battery 14.

[0120] As described above, the charge control unit 80 determines whether the depolarization time has elapsed based on the time when the high-voltage battery 12 is disconnected from the solar power generation device 10 and the low-voltage battery 14 (for example, step S54) (S56). Then, as described above, if the depolarization time has elapsed (YES in S56), the charge control unit 80 turns off the second switch 22 (S57) and proceeds with the processing from step S15 onward. That is, the high-voltage battery 12 is charged by the solar power generation device 10.

[0121] Furthermore, if it is determined in step S60 that the available capacity is less than or equal to the available capacity (NO in S60), this is equivalent to determining that the third condition is met, and the charge control unit 80 does not transfer power from the low-voltage battery 14 to the high-voltage battery 12. In this case, the charge control unit 80 turns off the first switch 20 (S64) and turns on the second switch 22 (S55). As a result, the high-voltage battery 12 is isolated from the solar power generation device 10 and the low-voltage battery 14, which acts to eliminate the polarization of the high-voltage battery 12, and the low-voltage battery 14 is charged by the solar power generation device 10.

[0122] As described above, the charging control unit 80 determines whether the depolarization time has elapsed based on the time when the high-voltage battery 12 is disconnected from the solar power generation device 10 and the low-voltage battery 14 (for example, step S64) (S56). Then, as described above, if the depolarization time has elapsed (YES in S56), the charging control unit 80 turns off the second switch 22 (S57) and proceeds with the processing from step S15 onward. That is, the high-voltage battery 12 is charged by the solar power generation device 10.

[0123] Furthermore, if a ready-on operation is detected by the start switch 66 during the series of processes shown in Figures 6 to 9, the charging control unit 80 may cancel the series of processes and transition the vehicle 1 to a state where it can be driven. In this case, the charging control unit 80 may, for example, turn on the first switch 20, turn off the second switch 22, and turn off the third switch 24.

[0124] As described above, the charging control unit 80 of the vehicle 1 in this embodiment derives a predicted idle time in accordance with the transition of the vehicle 1's state from a drivable state to a parked state. The charging control unit 80 determines whether the predicted idle time is longer than a specific time including the depolarization time of the high-voltage battery 12. If the charging control unit 80 determines that the predicted idle time is longer than the specific time, it turns off the first switch 20 and turns on the second switch 22 to control the system so that the power generated by the solar power generation device 10 is supplied to the low-voltage battery 14.

[0125] As a result, in the vehicle 1 of this embodiment, the polarization of the high-voltage battery 12 can be properly resolved, and the low-voltage battery 14 is charged by the power of the solar power generation device 10 while the polarization is being resolved. In other words, in the vehicle 1 of this embodiment, it is possible to suppress the waste of power from the solar power generation device 10 while the polarization is being resolved.

[0126] Therefore, according to the vehicle 1 of this embodiment, it is possible to utilize the electricity generated by the solar power generation device 10 without waste.

[0127] Furthermore, if the charging control unit 80 of the vehicle 1 in this embodiment determines that the predicted idle time is longer than a specific time, it controls the third switch 24 to turn on and transfer a predetermined amount of power from the low-voltage battery 14 to the high-voltage battery 12. After the power transfer from the low-voltage battery 14 to the high-voltage battery 12 is completed, the charging control unit 80 turns off the third switch 24 and turns on the second switch 22 to control the power generated by the solar power generation device 10 to be supplied to the low-voltage battery 14.

[0128] As a result, in the vehicle 1 of this embodiment, it is possible to maximize the charging of the low-voltage battery 14 by the solar power generation device 10 during the depolarization time of the high-voltage battery 12. Consequently, in the vehicle 1 of this embodiment, it is possible to utilize the power generated by the solar power generation device 10 more efficiently.

[0129] Furthermore, the charging control unit 80 of the vehicle 1 in this embodiment determines whether the first condition, that the supplyable capacity is greater than the maximum differential capacity, is met. If the charging control unit 80 determines that the first condition is met, it transfers power equal to the current differential capacity in the process of transferring power from the low-voltage battery 14 to the high-voltage battery 12. As a result, in the vehicle 1 of this embodiment, the low-voltage battery 14 can be charged to its maximum capacity by the solar power generation device 10, and the capacity of the low-voltage battery 14 can be made to its full charge capacity when the charging is completed.

[0130] Furthermore, the charging control unit 80 of the vehicle 1 in this embodiment determines whether the second condition is met, which is that the available capacity is less than or equal to the maximum differential capacity and the available capacity is greater than the available capacity. If the charging control unit 80 determines that the second condition is met, it transfers power equal to the differential charging capacity in the process of transferring power from the low-voltage battery 14 to the high-voltage battery 12. As a result, in the vehicle 1 of this embodiment, the low-voltage battery 14 can be charged to the maximum extent by the solar power generation device 10, and the capacity of the low-voltage battery 14 can be made to its full charge capacity when the charging is completed.

[0131] Furthermore, the charging control unit 80 of the vehicle 1 in this embodiment determines whether the third condition, that the available capacity is less than or equal to the available capacity, is met. If the charging control unit 80 determines that the third condition is met, it controls the supply of power from the solar power generation device 10 to the low-voltage battery 14 without transferring power from the low-voltage battery 14 to the high-voltage battery 12. In the vehicle 1 of this embodiment, by not transferring power from the low-voltage battery 14 to the high-voltage battery 12, it is possible to prevent a situation in which the capacity of the low-voltage battery 14 actually decreases when the charging of the low-voltage battery 14 by the solar power generation device 10 is completed compared to before the charging.

[0132] Embodiments of the present invention have been described above with reference to the attached drawings, but it goes without saying that the present invention is not limited to these embodiments. It is clear to those skilled in the art that various modifications or alterations can be conceived within the scope of the claims, and these will naturally also fall within the technical scope of the present invention. [Explanation of symbols]

[0133] 1 vehicle 10. Solar power generation equipment 12 High-voltage batteries 14 Low-voltage batteries 20. Switch 1 22 Second switch 24. Third switch 40 Control device 70 processors 72 memory

Claims

1. Solar power generation equipment, High-voltage battery and Low-voltage battery and A first switch capable of turning the electrical connection between the solar power generation device and the high-voltage battery on and off, A second switch capable of turning the electrical connection between the solar power generation device and the low-voltage battery on and off, A control device that controls the on / off state of the first switch and the second switch, Equipped with, The control device is One or more processors, One or more memories connected to the processor, It has, The aforementioned processor, When the vehicle is in a drivable state, the first switch is turned ON and controlled so that the power generated by the solar power generation device is supplied to the high-voltage battery, The process involves deriving a predicted parking time, which indicates the estimated duration of time the vehicle will be left parked, as the vehicle transitions from a drivable state to a parked state. The determination of whether the predicted standing time is longer than a specific time including the depolarization time, which is the time required to depolarize the high-voltage battery, If it is determined that the predicted idle time is longer than the specified time, the first switch is turned off and the second switch is turned on so that the power generated by the solar power generation device is supplied to the low-voltage battery. A vehicle that performs a process that includes the following.

2. The system further includes a third switch capable of switching the electrical connection between the high-voltage battery and the low-voltage battery on and off. The control device controls the on / off state of the first switch, the second switch, and the third switch. The aforementioned processor, In the process when it is determined that the predicted waiting time is longer than the specified time, To turn off the first switch, Controlling the third switch to be turned ON to transfer a predetermined amount of power from the low-voltage battery to the high-voltage battery, After the transfer of power from the low-voltage battery to the high-voltage battery is complete, the third switch is turned off and the second switch is turned on to control the system so that the power generated by the solar power generation device is supplied to the low-voltage battery. The vehicle according to claim 1, which performs a process including the following.

3. The aforementioned processor, To derive the supplyable capacity, which is the capacity that can supply the power generated by the solar power generation device to the low-voltage battery within the aforementioned depolarization time, The first condition is to determine whether the available capacity is greater than the maximum difference capacity, which is the value obtained by subtracting the lower limit capacity of the low-voltage battery from the fully charged capacity of the low-voltage battery. If it is determined that the first condition is met, in the process of transferring power from the low-voltage battery to the high-voltage battery, the power transferred is the current difference capacity, which is the value obtained by subtracting the lower limit capacity of the low-voltage battery from the current capacity of the low-voltage battery. The vehicle according to claim 2, which performs a process including the following.

4. The aforementioned processor, To derive the supplyable capacity, which is the capacity that can supply the power generated by the solar power generation device to the low-voltage battery within the aforementioned depolarization time, The second condition is to determine whether the supplyable capacity is less than or equal to the maximum difference capacity, which is the value obtained by subtracting the lower limit capacity of the low-voltage battery from the full charge capacity of the low-voltage battery, and whether the supplyable capacity is greater than the available capacity, which is the value obtained by subtracting the current capacity of the low-voltage battery from the full charge capacity of the low-voltage battery. If it is determined that the second condition is met, in the process of transferring power from the low-voltage battery to the high-voltage battery, the power transferred is the differential charge capacity, which is the value obtained by subtracting the available capacity from the available capacity. The vehicle according to claim 2, which performs a process including the following.

5. The aforementioned processor, To derive the supplyable capacity, which is the capacity that can supply the power generated by the solar power generation device to the low-voltage battery within the aforementioned depolarization time, The third condition is to determine whether the available capacity is less than or equal to the available capacity, which is the value obtained by subtracting the current capacity of the low-voltage battery from the full charge capacity of the low-voltage battery. If it is determined that the third condition is met, control is performed to supply power from the solar power generation device to the low-voltage battery without transferring power from the low-voltage battery to the high-voltage battery, The vehicle according to claim 2, which performs a process including the following.

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