vehicle

The vehicle system manages braking forces by using an electric supercharger to enable regenerative braking even at high SOC, addressing mechanical braking device deterioration during downhill driving.

JP7842646B2Active Publication Date: 2026-04-08SUBARU CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-08
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing vehicles face rapid deterioration of mechanical braking devices when braking for extended periods, particularly when going downhill, due to high battery state of charge (SOC) limiting regenerative braking, leading to increased mechanical braking force.

Method used

A vehicle system that includes a motor generator, battery, electric supercharger, navigation device, and control device to manage braking forces by turning on the electric supercharger when certain conditions are met, such as high SOC and downhill driving, to enable regenerative braking even at high SOC levels.

Benefits of technology

This system allows for appropriate braking by balancing braking forces, reducing mechanical braking stress and preventing device deterioration, even when the battery is nearly full.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a vehicle capable of properly performing braking when traveling on a downslope.SOLUTION: A vehicle 300 comprises a driving engine 12, a driving motor generator 10, a battery 14, an electric supercharger 60, a navigation device 310 for specifying a travel route of the own vehicle, and a control device 90. The control device 90 has one or more processors 92 and one or more memories 94 connected to the one or more processors 92. The one or more processors 92 execute: specifying a downslope section which is a down-grade section on the specified travel route; when traveling on the specified downslope section, on the basis of a present SOC of the battery 14, deriving an endpoint estimated SOC for indicating an estimated value of the SOC of the battery 14 at an endpoint of the downslope section; and when the endpoint estimated SOC is equal to or more than a reference value of a predetermined SOC, making the electric supercharger 60 turn on.SELECTED DRAWING: Figure 7
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Description

Technical Field

[0006] , ,

[0001] The present invention relates to a vehicle.

Background Art

[0002] For example, Patent Document 1 discloses an engine having a regenerative generator that is connected to a crankshaft and functions as a regenerative brake unit, and an electric supercharger that compresses air and supplies it to a cylinder. In such an engine, when the battery is fully charged, the regenerative power of the regenerative generator is supplied to the electric supercharger. <00,00010>

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] As braking force for braking a vehicle, there are mechanical braking force by a mechanical braking device, engine braking force by an engine, and regenerative braking force by a regenerative operation of a motor generator. For example, when the SOC of the battery is relatively high, the motor generator is not operated in a regenerative manner, and the vehicle is braked by the mechanical braking force and the engine braking force. Then, for example, in a situation where braking is performed for a relatively long time, such as when going downhill, the burden on the braking device due to the mechanical braking force increases, and there is a risk that the braking device will deteriorate quickly.

[0005] Therefore, an object of the present invention is to provide a vehicle capable of performing appropriate braking when going downhill.

Means for Solving the Problems

[0006] In order to solve the above problems, a vehicle according to an embodiment of the present invention is a driving engine, and A motor generator for driving, The motor generator and the battery are electrically connected, An electric supercharger that consumes power supplied from the battery to compress the air supplied to the engine and supply it to the engine, A navigation device that identifies the driving route of the vehicle, Memory device and Control device and Equipped with, The control device is One or more processors, One or more memory connected to the processor, It has, The aforementioned processor, Identifying the downhill section, which is the section with a downward gradient in the identified driving route, When the vehicle completes its journey down the downhill section, the actual value of the battery's SOC at the starting point of the downhill section is subtracted from the actual value of the battery's SOC at the end point of the downhill section to derive the SOC difference, and the SOC difference is divided by the distance of the downhill section to derive the SOC unit increase / decrease amount, which represents the increase / decrease amount of SOC per unit distance in the downhill section, and stored in the memory device. When traveling in the downhill section, the past SOC unit increase / decrease amounts stored in the memory device are read, and the read past SOC unit increase / decrease amounts are multiplied by the distance from the current position to the endpoint in the downhill section to derive an estimated SOC increase / decrease amount, which represents an estimated value of the SOC increase / decrease amount in the section from the current position to the endpoint. before When driving on the downhill section, the current SOC of the battery Adding the aforementioned estimated increase / decrease in SOC, To derive an estimated end-point SOC that shows the estimated value of the battery's SOC at the end of the downhill section, If the estimated SOC at the endpoint is equal to or greater than a predetermined SOC standard value, the electric supercharger is turned on. Execute the process that includes this. [Effects of the Invention]

[0009] According to the present invention, it becomes possible to perform appropriate braking when descending a slope. [Brief explanation of the drawing]

[0010] [Figure 1] Figure 1 is a schematic diagram showing the configuration of a vehicle according to the first embodiment. [Figure 2] Figure 2 illustrates the braking force when a vehicle is decelerating or descending a slope. [Figure 3] Figure 3 shows an example of the operation of the vehicle according to the first embodiment. [Figure 4] FIG. 4 is a flowchart for explaining the flow of operations of the braking control unit according to the first embodiment. [Figure 5] FIG. 5 is a schematic diagram showing the configuration of a vehicle according to the second embodiment. [Figure 6] FIG. 6 is a flowchart for explaining the flow of operations of the braking control unit according to the second embodiment. [Figure 7] FIG. 7 is a schematic diagram showing the configuration of a vehicle according to the third embodiment. [Figure 8] FIG. 8 is a diagram for explaining the outline of the processing that the braking control unit according to the third embodiment performs in advance. [Figure 9] FIG. 9 is a diagram for explaining the outline when the braking control unit according to the third embodiment controls braking. [Figure 10] FIG. 10 is a flowchart for explaining the flow of the processing that the braking control unit according to the third embodiment performs in advance. [Figure 11] FIG. 11 is a flowchart for explaining the flow of operations when the braking control unit according to the third embodiment controls braking. [Figure 12] FIG. 12 is a flowchart for explaining the flow of operations when the braking control unit according to the third embodiment controls braking. [Figure 13] FIG. 13 is a schematic diagram showing the configuration of a vehicle according to the fourth embodiment. [Figure 14] FIG. 14 is a flowchart for explaining the flow of operations of the braking control unit and the valve control unit according to the fourth embodiment. BEST MODE FOR CARRYING OUT THE INVENTION

[0011] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. The specific dimensions, materials, numerical values, etc. shown in such embodiments are merely examples for facilitating the understanding of the invention and do not limit the present invention unless otherwise specified. In this specification and the drawings, elements having substantially the same functions and configurations are denoted by the same reference numerals to omit redundant explanations, and elements not directly related to the present invention are omitted from the illustration.

[0012] (First Embodiment) Figure 1 is a schematic diagram showing the configuration of vehicle 1 according to the first embodiment. Vehicle 1 is a hybrid vehicle equipped with a motor generator 10 for driving and an engine 12 for driving. Hereafter, vehicle 1 may be referred to as "the vehicle."

[0013] Vehicle 1 is also equipped with a battery 14 that supplies power to the motor generator 10. The battery 14 is, for example, a lithium-ion battery and is a rechargeable battery that can be discharged and recharged.

[0014] The motor generator 10 is electrically connected to the battery 14 via an inverter (not shown), as indicated by the dashed line in Figure 1. When power is supplied from the battery 14, the motor generator 10 functions as a motor and rotates according to the supplied power. The motor generator 10 is connected to the wheels 16. The vehicle 1 is configured to transmit the driving force from the rotation of the motor generator 10 to the wheels 16.

[0015] Furthermore, when the vehicle 1 is decelerating or going downhill, the motor generator 10 functions as a generator that generates electricity in accordance with the rotation of the wheels 16. The motor generator 10 can charge the battery 14 by supplying the generated electricity to the battery 14. In other words, the motor generator 10 is capable of regeneration, which converts the energy from the rotation of the wheels 16 into electrical energy and recovers it. As the motor generator 10 performs regenerative operation, a braking force is generated on the wheels 16 that decelerates the vehicle 1. Hereafter, the braking force due to the regenerative operation of the motor generator 10 may be referred to as regenerative braking force.

[0016] The engine 12 has a piston 20, a cylinder 22, an intake port 24, an exhaust port 26, an intake valve 28, and an exhaust valve 30. The piston 20 is slidably housed inside the cylinder 22. The intake port 24 and the exhaust port 26 communicate with the inside of the cylinder 22. The intake valve 28 opens and closes the intake port 24. The exhaust valve 30 opens and closes the exhaust port 26.

[0017] When the intake valve 28 is open, air is supplied into the cylinder 22 through the intake port 24. Fuel is also injected into the cylinder 22. The combustion of the air-fuel mixture inside the cylinder 22 causes the piston 20 to slide. As the piston 20 slides, the crankshaft 32 rotates. The crankshaft 32 is connected to the wheel 16. The vehicle 1 is configured to transmit the driving force from the sliding of the piston 20 to the wheel 16 via the crankshaft 32.

[0018] Furthermore, when the engine output becomes less than the load, a braking force is generated on the wheels 16 by the engine 12, which slows down the vehicle 1. Hereafter, the braking force generated by the engine 12 may be referred to as engine braking force.

[0019] When the exhaust valve 30 is open, the gas inside the cylinder 22 is discharged to the outside of the cylinder 22 through the exhaust port 26.

[0020] Vehicle 1 is equipped with an intake passage 40 and an exhaust passage 42. The intake passage 40 is connected to the intake port 24. Air supplied to the inside of the cylinder 22 through the intake port 24 flows through the intake passage 40. The exhaust passage 42 is connected to the exhaust port 26. Gas discharged to the outside of the cylinder 22 through the exhaust port 26 flows through the exhaust passage 42.

[0021] The intake passage 40 is equipped with an air cleaner 50, an intercooler 52, and a throttle valve 54 in the order of the direction of air flow. The air cleaner 50 removes foreign matter from the air taken into the intake passage 40. The intercooler 52 cools the air flowing through the intake passage 40. The throttle valve 54 adjusts the amount of air supplied to the inside of the cylinder 22 in accordance with the driver's acceleration operation.

[0022] A catalyst 56 is provided in the exhaust passage 42. The catalyst 56 is, for example, a three-way catalyst and purifies the gas discharged from the cylinder 22.

[0023] Vehicle 1 is equipped with an electric supercharger 60. The electric supercharger 60 has a compressor 62, an exhaust turbine 64, and a motor 66. The compressor 62 is located in the intake passage 40, between the air cleaner 50 and the intercooler 52 in the intake passage 40. The exhaust turbine 64 is located in the exhaust passage 42, between the exhaust port 26 and the catalyst 56 in the exhaust passage 42. The exhaust turbine 64 rotates as gas flows through the exhaust passage 42.

[0024] Motor 66 is connected to compressor 62. Exhaust turbine 64 is connected to compressor 62 through motor 66. Motor 66 is electrically connected to battery 14 via an inverter (not shown) as shown by the dashed line in Figure 1. Motor 66 consumes power supplied from battery 14 to drive compressor 62. In the electric supercharger 60, the compressor 62 can also be driven in accordance with the rotation of exhaust turbine 64.

[0025] The compressor 62 compresses the air taken into the intake passage 40 through the air cleaner 50 and sends the compressed air to the intercooler 52. The air supplied to the intercooler 52 is then sent into the cylinder 22 through the throttle valve 54 and the intake port 24. In other words, the electric supercharger 60 consumes power supplied from the battery 14 to compress the air supplied to the engine 12 and then supplies it to the engine 12.

[0026] In Figure 1, the electric supercharger 60 was configured to drive a compressor 62 with a motor 66 and to drive a compressor 62 with an exhaust turbine 64. However, the electric supercharger 60 only needs to include the configuration in which the compressor 62 is driven by the motor 66, and the configuration in which the compressor 62 is driven by the exhaust turbine 64 may be omitted. In addition, separate from the electric supercharger 60 that drives the compressor 62 with the motor 66, a mechanical supercharger consisting of another compressor 62 and an exhaust turbine that drives the other compressor may be provided in the vehicle 1.

[0027] Vehicle 1 is equipped with a speed sensor 70, a braking sensor 72, a gradient sensor 74, a voltage sensor 76, and a current sensor 78. The speed sensor 70 detects the speed of vehicle 1. The braking sensor 72 is, for example, installed on the brake pedal and detects the braking force, which is the amount the driver operates the brake pedal. The gradient sensor 74 detects the gradient of the road surface on which vehicle 1 is traveling, via an inertial measurement unit (IMU) or the like. The voltage sensor 76 detects the voltage at the terminals of the battery 14. The current sensor 78 detects the current at the terminals of the battery 14.

[0028] Vehicle 1 is equipped with a braking system 80. The braking system 80 is, for example, a disc brake system or a drum brake system, and is configured to mechanically suppress the rotation of the wheels 16. The braking system 80 is driven, for example, by hydraulics. Hereafter, the braking force provided by the braking system 80 may be referred to as mechanical braking force.

[0029] Vehicle 1 is equipped with a control device 90. The control device 90 comprises one or more processors 92 and one or more memories 94 connected to the processors 92. The memories 94 include ROM, which stores programs, etc., and RAM as a work area. The processors 92 control the entire vehicle 1 by executing programs. For example, the processors 92 control the driving of the engine 12 and the driving of the motor generator 10.

[0030] The processor 92 also functions as a braking control unit 100 by executing a program. When the brake pedal is operated by the driver, the braking control unit 100 derives a requested braking force, which indicates the braking force requested by the driver, based on the amount of braking operation detected by the braking sensor 72. The braking control unit 100 controls the braking of the vehicle 1 according to the requested braking force, and decelerates the vehicle 1. The braking control unit 100 will be described in detail later.

[0031] Figure 2 illustrates the braking force of vehicle 1 during deceleration or downhill driving. Figure 2(a) shows an example where the State of Charge (SOC) of battery 14 is relatively low. Figure 2(b) shows an example where the SOC of battery 14 is relatively high, and a comparative example in which the electric supercharger 60 is not turned on during deceleration. Figure 2(c) shows an example of the first embodiment where the SOC of battery 14 is relatively high, and the electric supercharger 60 is turned on during deceleration.

[0032] The braking control unit 100 can derive the State of Charge (SOC) of the battery 14 based on the value detected by the voltage sensor 76 or the current sensor 78. The SOC is the current charge capacity expressed as a percentage of the full charge capacity, and indicates the charge level of the battery 14.

[0033] When the State of Charge (SOC) is relatively low, the battery 14 can accept power generated by the regenerative operation of the motor generator 10. In this case, as shown in Figure 2(a), the required braking force can be divided into engine braking force, mechanical braking force, and regenerative braking force. In other words, the braking force equivalent to the required braking force is achieved by the sum of the engine braking force, mechanical braking force, and regenerative braking force.

[0034] However, when the State of Charge (SOC) is close to 100%, even if power is supplied to the battery 14, the battery 14 can hardly accept any power. For this reason, in the comparative example shown in Figure 2(b), the motor generator 10 is not operated in regenerative mode, and the required braking force is divided into engine braking force and mechanical braking force.

[0035] As shown in Figure 2(b), when braking by regenerative braking force is not included, the proportion of mechanical braking force in the required braking force is higher compared to when braking by regenerative braking force is included. Consequently, in situations where braking is performed for a relatively long period of time, such as when descending a slope, the burden on the braking device 80 by mechanical braking force becomes greater, and there is a risk that the braking device 80 will deteriorate more quickly.

[0036] Therefore, in the vehicle 1 of the first embodiment, the braking control unit 100 turns on the electric supercharger 60 when predetermined conditions are met. The predetermined conditions are that a braking operation is detected by the braking sensor 72, the absolute value of the downhill gradient detected by the gradient sensor 74 is equal to or greater than a predetermined gradient standard, and the state of charge (SOC) of the battery 14 is equal to or greater than a predetermined SOC standard value.

[0037] The predetermined gradient reference value is set to, for example, 5°, but is not limited to this example and may be set to any value that can distinguish between a road surface with no gradient and a road surface with a downhill gradient. The predetermined SOC reference value is set to, for example, 75%, but is not limited to this example and may be set to any value that can distinguish between a relatively high SOC state. In other words, in the vehicle 1 of the first embodiment, if the driver requests braking, the vehicle is traveling on a downhill gradient, and the SOC state is relatively high, the electric supercharger 60 is turned on.

[0038] When the electric supercharger 60 is turned on, it consumes power from the battery 14. As a result, even when the State of Charge (SOC) is close to 100%, the electric supercharger 60 will still consume power, so the motor generator 10 can generate power equivalent to the amount consumed by the electric supercharger 60.

[0039] As a result, in the vehicle 1 of the first embodiment, regenerative braking force can be included in the required braking force even when the SOC is relatively high, as shown in Figure 2(c). Consequently, in the vehicle 1 of the first embodiment, the proportion of mechanical braking force in the required braking force can be suppressed compared to the comparative example in Figure 2(b), and deterioration of the braking device 80 can be suppressed.

[0040] Furthermore, when the electric supercharger 60 is ON, more air is supplied to the inside of the cylinder 22 by the electric supercharger 60. As a result, the resistance caused by the air inside the cylinder 22 when the piston 20 slides becomes greater compared to when the electric supercharger 60 is OFF.

[0041] As a result, as shown in Figure 2(c), when the electric supercharger 60 is ON, the engine braking force is greater than when the electric supercharger 60 is OFF. Consequently, in the vehicle 1 of the first embodiment, the ratio of mechanical braking force to the required braking force can be further suppressed, and the deterioration of the braking device 80 can be further suppressed.

[0042] Figure 3 shows an example of the operation of vehicle 1 in the first embodiment. Figure 3(a) shows an example of the time progression of the braking operation amount detected by the braking sensor 72. Figure 3(b) shows an example of the time progression of the speed of vehicle 1 detected by the speed sensor 70. Figure 3(c) shows an example of the time progression of the State of Charge (SOC). Figure 3(d) shows an example of the time progression of the power consumption of the electric supercharger 60. Figure 3(e) shows an example of the time progression of the regenerative power generated by the motor generator 10. The time axes of Figures 3(a) to 3(e) are assumed to be the same. Also, the examples in Figures 3(a) to 3(e) show the case where vehicle 1 is traveling downhill and stopping.

[0043] As shown in Figure 3(a), assume that at time T1, the braking force increases from 0, and then reaches Bmax.

[0044] As shown in Figure 3(b), the speed of vehicle 1, which was V1 at time T1, decreases in proportion to the amount of braking applied, and becomes 0 at time T4.

[0045] Furthermore, as shown in Figure 3(c), let's assume that the SOC at time point T1 was S1, which is higher than the SOC baseline value Th1.

[0046] Based on these conditions, at time T1, braking operation is detected, the road surface is on a downhill slope, and the SOC is above the SOC standard value. Therefore, as shown in Figure 3(d), the braking control unit 100 changes the electric supercharger 60 from the off state to the on state at time T1. Along with turning on the electric supercharger 60, the braking control unit 100 starts the regenerative operation of the motor generator 10, as shown in Figure 3(e).

[0047] More specifically, when the electric supercharger 60 is turned on, it consumes power according to the rotational speed of the motor 66. The braking control unit 100 operates the motor generator 10 in a regenerative manner so that the power consumption of the electric supercharger 60 and the regenerative power of the motor generator 10 are roughly the same. Because the regenerative power of the motor generator 10 and the power consumption of the electric supercharger 60 are roughly the same, as shown in Figure 3(c), it is possible to generate regenerative braking force while maintaining the SOC after time T1 at the SOC at time T1.

[0048] For example, suppose that after time T1, the power consumption of the electric supercharger 60 increases, and at time T2, the power consumption of the electric supercharger 60 becomes P1. The regenerative power of the motor generator 10 increases by approximately the same amount as the increase in the power consumption of the electric supercharger 60, and at time T2, it becomes R1, which is approximately the same as P1. Suppose that the power consumption of the electric supercharger 60 is maintained at P1 from time T2 to time T3. Since the power consumption of the electric supercharger 60 is constant from time T2 to time T3, the regenerative power of the motor generator 10 is maintained at R1.

[0049] Here, the power that the motor generator 10 can generate, i.e., the regenerative power, decreases as the speed of the vehicle 1 decreases. For example, as shown in Figure 3(e), after time point T3, the regenerative power of the motor generator 10 decreases from R1 and becomes zero at time point T4.

[0050] Based on this, the braking control unit 100 gradually reduces the power consumption of the electric supercharger 60, or in other words, the output of the electric supercharger 60, after time T3, as shown in Figure 3(d), based on the speed of the vehicle 1. This makes it possible to keep the power consumption of the electric supercharger 60 and the regenerative power of the motor generator 10 roughly the same, even between time T3 and time T4 when the speed of the vehicle 1 is low.

[0051] In this explanation, we described a control example in which the power consumption of the electric supercharger 60 and the regenerative power of the motor generator 10 are approximately the same. However, the braking control unit 100 may control the system so that the power consumption of the electric supercharger 60 and the regenerative power of the motor generator 10 are different. More specifically, the braking control unit 100 may determine the power consumption of the electric supercharger 60 when driving the electric supercharger 60, that is, the output of the electric supercharger 60, according to the current SOC.

[0052] For example, if the current SOC is relatively low while still above the SOC reference value, the braking control unit 100 may increase the output of the electric supercharger 60 to be greater than the regenerative power of the motor generator 10. This makes it possible to charge the battery 14 with the difference in power obtained by subtracting the power consumption of the electric supercharger 60 from the regenerative power of the motor generator 10 while simultaneously generating regenerative braking force.

[0053] Furthermore, if the current SOC is relatively high and above the SOC standard value, the braking control unit 100 may reduce the output of the electric supercharger 60 to less than the regenerative power of the motor generator 10. This allows the battery 14 to consume only the difference between the regenerative power of the motor generator 10 and the power consumed by the electric supercharger 60 from the power stored in the battery 14, thereby appropriately reducing the SOC of the battery 14 while generating regenerative braking force.

[0054] Figure 4 is a flowchart illustrating the operation flow of the braking control unit 100 in the first embodiment. The braking control unit 100 repeatedly executes the series of processes shown in Figure 4 each time a predetermined interrupt timing occurs, which occurs at a predetermined cycle.

[0055] When a predetermined interrupt timing arrives, the braking control unit 100 acquires the current braking operation amount from the braking sensor 72 (S10). The braking control unit 100 determines whether the acquired braking operation amount is greater than a predetermined braking reference value (S11). The predetermined braking reference value is set to an arbitrary value that can distinguish whether a braking operation has been input by the driver. If the braking operation amount is less than or equal to the braking reference value (NO in S11), the current series of processes is terminated.

[0056] If the amount of braking operation is greater than a predetermined braking reference value (YES in S11), it corresponds to the braking operation being detected by the braking sensor 72, and the braking control unit 100 derives the current state of charge (SOC) of the battery 14 (S12). For example, the braking control unit 100 obtains the voltage of the input / output terminals of the battery 14 from the voltage sensor 76 and derives the SOC based on the obtained voltage. Next, the braking control unit 100 obtains the current speed of the vehicle from the speed sensor 70 (S13).

[0057] Next, the braking control unit 100 derives the current required braking force based on the current braking operation amount and the current speed (S14).

[0058] Next, the braking control unit 100 determines whether the current SOC is equal to or greater than the SOC reference value (S15). If the current SOC is equal to or greater than the SOC reference value (YES in S15), the braking control unit 100 obtains the road surface gradient at the vehicle's current position from the gradient sensor (S17).

[0059] The braking control unit 100 determines whether the acquired current gradient indicates a downhill gradient and whether the absolute value of the current downhill gradient is equal to or greater than the gradient reference value (S17).

[0060] If the absolute value of the current downhill gradient is greater than or equal to the gradient reference value (YES in S17), the braking control unit 100 determines the output of the electric supercharger 60 based on the current speed of the vehicle (S18). Then, the braking control unit 100 turns on the electric supercharger 60 (S19) and proceeds to step S21. As a result, the electric supercharger 60 is driven with the determined output. The braking control unit 100 may also determine the output of the electric supercharger 60 based on the current speed of the vehicle and the current SOC.

[0061] In step S15, if the current SOC is less than the SOC reference value (NO in S15), the braking control unit 100 turns off the electric supercharger 60 (S20) and proceeds to step S21. Also, in step S17, if the absolute value of the current downhill gradient is less than the gradient reference value (NO in S17), the braking control unit 100 turns off the electric supercharger 60 (S20) and proceeds to step S21.

[0062] The braking control unit 100 may also be configured to turn off the electric supercharger 60 when the braking operation amount decreases from a state greater than the braking reference value to a state less than or equal to the braking reference value.

[0063] In step S21, the braking control unit 100 determines the regenerative braking force based on the required braking force and the output of the electric supercharger 60 (S21). For example, when the electric supercharger 60 is ON, the braking control unit 100 determines the regenerative braking force so that it is less than or equal to the required braking force and the regenerative power of the motor generator 10 corresponds to the power of the electric supercharger 60. Also, for example, when the electric supercharger 60 is OFF, the braking control unit 100 determines the regenerative braking force so that it is less than or equal to the required braking force and the regenerative power of the motor generator 10 is maximized.

[0064] Next, the braking control unit 100 determines the engine braking force based on the rotational speed of the engine 12 and the output of the electric supercharger 60 (S22). For example, when the electric supercharger 60 is ON, the braking control unit 100 determines the engine braking force by adding the braking force according to the output of the electric supercharger 60 to the braking force according to the rotational speed of the engine 12. Also, for example, when the electric supercharger 60 is OFF, the braking control unit 100 uses the braking force according to the rotational speed of the engine 12 as the engine braking force.

[0065] Next, the braking control unit 100 determines the mechanical braking force by subtracting the engine braking force and the regenerative braking force from the requested braking force (S23).

[0066] Next, the braking control unit 100 causes the motor generator 10 to apply braking with the determined regenerative braking force, the engine 12 to apply braking with the determined engine braking force, and the braking device 80 to apply braking with the determined mechanical braking force (S24), thereby ending the series of processes.

[0067] As described above, in the vehicle 1 of the first embodiment, when a braking operation is detected, the absolute value of the downhill gradient is equal to or greater than a predetermined gradient reference value, and the SOC is equal to or greater than a predetermined SOC reference value, the electric supercharger 60 is turned on. When the electric supercharger 60 is turned on, the regenerative power from the motor generator 10 can be consumed by the electric supercharger 60, thereby generating regenerative braking force from the motor generator 10.

[0068] Therefore, in the vehicle 1 of the first embodiment, appropriate braking can be performed even when the SOC is relatively high when descending a slope.

[0069] (Second Embodiment) Figure 5 is a schematic diagram showing the configuration of the vehicle 200 according to the second embodiment. The vehicle 200 of the second embodiment differs from the vehicle 1 of the first embodiment in that it has a switch 210 and the specific control contents of the braking control unit 100. The other configurations of the vehicle 200 of the second embodiment are the same as those of the vehicle 1 of the first embodiment, so their explanation is omitted.

[0070] Switch 210 is, for example, a Hill Descent Switch, which can be turned on or off by the driver. Switch 210 is turned on by the driver when the vehicle is traveling downhill.

[0071] When the switch 210 is ON, the braking control unit 100 suppresses the vehicle's speed to a predetermined speed or less. This prevents the vehicle's speed from becoming excessively high when descending a slope by the driver turning on the switch 210.

[0072] The situation in which switch 210 is turned ON can be inferred to be when the vehicle is traveling downhill. Therefore, in the second embodiment, the braking control unit 100 turns ON the electric supercharger 60 when switch 210 is ON and the State of Charge (SOC) of the battery 14 is above a predetermined SOC reference value. In other words, in the second embodiment, the electric supercharger 60 is turned ON when it is inferred that the vehicle is traveling downhill and the SOC is relatively high.

[0073] Figure 6 is a flowchart illustrating the operation flow of the braking control unit 100 in the second embodiment. The flowchart in Figure 6 differs from the flowchart in Figure 4 of the first embodiment in that the processes enclosed by dashed lines are the same. The other processes in Figure 6 are the same as those in Figure 4, so their explanation is omitted.

[0074] As shown in Figure 6, after deriving the required driving force in step S14, the braking control unit 100 obtains the current state of switch 210 (S30). The braking control unit 100 determines whether or not switch 210 is in the ON state (S31).

[0075] If switch 210 is ON (YES in S31), the braking control unit 100 corrects the requested driving force based on the current speed of the vehicle 200 (S32) and proceeds to step S32. For example, if the current speed exceeds a predetermined upper speed limit, the braking control unit 100 corrects the requested braking force by increasing it so that the speed is below the predetermined upper speed limit. The predetermined upper speed limit is set to an appropriate speed that allows for safe driving downhill. Note that even if switch 210 is ON, the braking control unit 100 may omit correcting the requested braking force if the current speed is below the predetermined upper speed limit.

[0076] If switch 210 is in the OFF state (NO in S31), the braking control unit 100 does not correct the requested braking force and proceeds to the process in step S32.

[0077] In step S33, the braking control unit 100 determines whether the current SOC is below a predetermined SOC reference value (S33). The predetermined SOC reference value is the same as the predetermined SOC reference value described in the first embodiment.

[0078] If the current SOC is above a predetermined SOC standard value (YES in S33), the braking control unit 100 determines the output of the electric supercharger 60 based on the current speed of the vehicle (S34). Then, the braking control unit 100 turns on the electric supercharger 60 (S35) and proceeds to step S21. As a result, the electric supercharger 60 is driven at the determined output. The braking control unit 100 may also determine the output of the electric supercharger 60 based on the current speed of the vehicle and the current SOC.

[0079] If the current SOC is below a predetermined SOC standard value (NO in S33), the braking control unit 100 turns off the electric supercharger 60 (S36) and proceeds to step S21.

[0080] From step S21 onward, as in Figure 4, the braking control unit 100 determines the regenerative braking force (S21), the engine braking force (S22), the mechanical braking force (S23), and then performs braking using each of the determined braking forces (S24).

[0081] As described above, in the vehicle 200 of the second embodiment, the electric supercharger 60 is turned on when the switch 210 is in the ON state and the State of Charge (SOC) of the battery 14 is above a predetermined SOC standard value. When the electric supercharger 60 is turned on, the regenerative power from the motor generator 10 can be consumed by the electric supercharger 60, thereby generating regenerative braking force from the motor generator 10. The switch 210 is also turned on by the driver when going downhill.

[0082] Therefore, in the vehicle 200 of the second embodiment, appropriate braking can be performed even when the SOC is relatively high during downhill driving.

[0083] (Third embodiment) Figure 7 is a schematic diagram showing the configuration of the vehicle 300 according to the third embodiment. The vehicle 300 of the third embodiment differs from the vehicle 1 of the first embodiment in that it has a navigation device 310 and a storage device 320, and the specific control contents of the braking control unit 100. The other configurations of the vehicle 300 of the third embodiment are the same as those of the vehicle 1 of the first embodiment, so their explanation is omitted.

[0084] The navigation system 310 has an input device that accepts input operations from the driver or other user. The navigation system 310 also has an output device that presents various types of information to the driver or other user, such as a display device that shows various types of information. Furthermore, map information is stored in the internal memory of the navigation system 310. The map information includes three-dimensional positional information such as latitude, longitude, and altitude at each point. In addition, the navigation system 310 can acquire the current position of its own vehicle using GPS or the like.

[0085] The navigation device 310 can identify the driving route that the vehicle will take. For example, when setting a driving route, the navigation device 310 uses the vehicle's current location as the starting point of the route. When a destination is entered through the input device during route setting, the navigation device 310 sets an appropriate driving route based on the starting point, destination, and map information.

[0086] The storage device 320 is, for example, a hard disk drive and 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.

[0087] Figure 8 is a diagram illustrating the outline of the processing performed in advance by the braking control unit 100 in the third embodiment. For example, suppose the driving route is identified by the navigation device 310. The braking control unit 100 identifies the downhill section, which is a section of the driving route with a downward slope, from the identified driving route and map information. For example, the braking control unit 100 identifies the downhill section based on the change in altitude along the driving route.

[0088] When vehicle 300 travels along the route and reaches the starting point of a downhill section, the braking control unit 100 obtains the starting SOC, which is the actual SOC value at the time the vehicle reaches the starting point. When vehicle 300 travels through the downhill section and reaches the end point of the downhill section, the braking control unit 100 obtains the ending SOC, which is the actual SOC value at the time the vehicle reaches the end point. The braking control unit 100 subtracts the starting SOC from the ending SOC to derive the SOC difference. The SOC difference indicates the increase or decrease in SOC when traveling through the entire downhill section.

[0089] The braking control unit 100 then divides the derived SOC difference by the downhill distance, which is the distance from the start to the end of the downhill section, to derive the SOC unit increase / decrease amount. The SOC unit increase / decrease amount indicates the increase or decrease in SOC per unit distance in the downhill section. The braking control unit 100 stores the SOC unit increase / decrease amount in the storage device 320 in association with the downhill section and the gradient of the downhill section. The gradient of the downhill section can be determined, for example, based on the altitude difference between the altitude of the start point and the altitude of the end point of the downhill section and the downhill distance. The SOC unit increase / decrease amount can be used, for example, when the vehicle travels through the same downhill section as this time in the future.

[0090] The braking control unit 100 may also store the SOC unit increase / decrease amount in the storage device 320 each time the vehicle travels downhill.

[0091] Figure 9 is a diagram illustrating the overview of how the braking control unit 100 of the third embodiment controls braking. As shown in Figure 9, the vehicle 300 is traveling downhill, and its current position is somewhere in the middle of the downhill section of the travel route.

[0092] Hereafter, the section between the current position within the downhill section and the end point of the downhill section may be referred to as the remaining section. Also, as shown by the hatching in Figure 9, the distance from the current position, which is the start point of the remaining section, to the end point, which is the end point of the remaining section, may be referred to as the remaining distance. The remaining section and remaining distance can be determined from the downhill section and the current position.

[0093] When traveling downhill, the braking control unit 100 reads from the memory device 320 the SOC unit increase / decrease amount stored when traveling down the same downhill section as the currently traveling downhill section in the past.

[0094] Furthermore, the SOC unit increase / decrease read out is not limited to the SOC unit increase / decrease when traveling on the same downhill section as the currently traveling section in the past. For example, the braking control unit 100 may read out the SOC unit increase / decrease when traveling on other downhill sections with the same gradient as the currently traveling section in the past. The gradient of the currently traveling downhill section can be determined, for example, based on the altitude difference between the altitude of the starting point and the altitude of the ending point of the currently traveling downhill section and the downhill distance.

[0095] The braking control unit 100 multiplies the previously read SOC unit increase / decrease by the remaining distance to derive the estimated SOC increase / decrease for the remaining section. The estimated SOC increase / decrease represents the estimated increase / decrease in SOC when the entire remaining section is traveled in the future.

[0096] The braking control unit 100 derives the estimated end-point SOC by adding the estimated increase or decrease in SOC for the remaining section to the current SOC. The estimated end-point SOC represents the estimated SOC when the vehicle travels the remaining section in the future and reaches the end point.

[0097] The braking control unit 100 turns on the electric supercharger 60 if the estimated SOC at the end point is equal to or greater than a predetermined SOC reference value. The predetermined SOC reference value is the same as the predetermined SOC reference value described in the first embodiment. In other words, in the vehicle 300 of the third embodiment, the electric supercharger 60 is turned on if it is estimated that the SOC when the vehicle reaches the end point of the downhill section in the future will be equal to or greater than the SOC reference value. This prevents the SOC in the vehicle 300 of the third embodiment from becoming excessively high when the vehicle completes its journey down the downhill section.

[0098] Figure 10 is a flowchart illustrating the process performed in advance by the braking control unit 100 in the third embodiment. The braking control unit 100 repeatedly executes the series of processes shown in Figure 10 each time a predetermined interrupt timing occurs, which occurs at predetermined intervals.

[0099] When a predetermined interrupt timing arrives, the braking control unit 100 obtains the current driving route identified by the navigation device 310 from the navigation device 310 (S40). Based on the current driving route, the braking control unit 100 identifies the downhill section present in the current driving route (S41).

[0100] Next, the braking control unit 100 determines whether the current interrupt timing is the timing when the vehicle has passed the starting point of the specified downhill section (S42). For example, if the vehicle's position in the previous instance was before the starting point on the travel route, and the vehicle's position in the current instance is ahead of the starting point on the travel route, the braking control unit 100 determines that the current interrupt timing is the timing when the vehicle has passed the starting point.

[0101] If the current interrupt timing is determined to be the timing when the starting point has been passed (YES in S42), the braking control unit 100 derives the current SOC as the SOC at the starting point (S43). Then, the braking control unit 100 stores the derived SOC at the starting point in the storage device 320 in association with the downhill section (S44), and proceeds to the processing in step S45.

[0102] Furthermore, if it is determined that the interrupt timing in this case is not the timing when the starting point has been passed (NO in S42), the braking control unit 100 proceeds directly to the processing in step S45.

[0103] In step S45, the braking control unit 100 determines whether the current interrupt timing is the timing when the vehicle has passed the end of the downhill section (S45). For example, if the vehicle's position in the previous instance was before the end of the route, and the vehicle's position in the current instance is ahead of the end of the route, the braking control unit 100 determines that the current interrupt timing is the timing when the vehicle has passed the end of the route.

[0104] If the interrupt timing is determined to be the timing when the endpoint has been passed (YES in S45), the braking control unit 100 derives the current SOC as the SOC at the endpoint (S46).

[0105] Next, the braking control unit 100 subtracts the starting point SOC, which is stored at the time the starting point of the downhill section is passed, from the derived endpoint SOC to derive the SOC difference (S47). Next, the braking control unit 100 divides the SOC difference by the downhill distance to derive the SOC unit increase / decrease amount for the downhill section (S48). The braking control unit 100 stores the endpoint SOC, SOC difference, and SOC unit increase / decrease amount in the storage device 320 in relation to the downhill section and the gradient of the downhill section, and ends this series of processes. That is, when the journey through the downhill section is completed, the SOC unit increase / decrease amount is stored in the storage device 320.

[0106] Furthermore, if the braking control unit 100 determines that the interrupt timing is not the timing when the endpoint has been passed (NO in S45), it terminates the current series of processes.

[0107] Figures 11 and 12 are flowcharts illustrating the operation flow when the braking control unit 100 of the third embodiment controls braking. "A" in Figure 11 is connected to "A" in Figure 12. The flowcharts in Figures 11 and 12 differ from the flowchart in Figure 4 of the first embodiment in that the processes enclosed by dashed lines are different. The other processes in Figures 11 and 12 are the same as those in Figure 4, so their explanation is omitted.

[0108] As shown in Figure 11, after deriving the required driving force in step S14, the braking control unit 100 obtains the current driving route of the vehicle from the navigation device 310 (S50). Based on the obtained driving route, the braking control unit 100 identifies the downhill sections present in the driving route (S51). The braking control unit 100 obtains the current position of the vehicle from the navigation device 310 (S52) and proceeds to the process in step S53 in Figure 12.

[0109] In step S53, the braking control unit 100 determines whether the vehicle's current position is within the downhill section (S53).

[0110] If the system determines that the vehicle's current position is within a downhill section (YES in S53), the braking control unit 100 reads past SOC unit increases and decreases from the storage device 320 (S54). For example, the braking control unit 100 reads past SOC unit increases and decreases in the same downhill section to which the current position belongs. If past SOC unit increases and decreases in the downhill section to which the current position belongs are not stored in the storage device 320, the braking control unit 100 may read past SOC unit increases and decreases in another downhill section with the same gradient as the downhill section to which the current position belongs.

[0111] Next, the braking control unit 100 identifies the remaining section from the current position and the downhill section, and derives the estimated SOC increase / decrease amount for the remaining section by multiplying the read SOC unit increase / decrease amount by the remaining distance of the remaining section (S55). The braking control unit 100 adds the derived estimated SOC increase / decrease amount to the current SOC to derive the estimated SOC at the end point (S56).

[0112] Next, the braking control unit 100 determines whether the estimated SOC at the endpoint is equal to or greater than the SOC reference value (S57).

[0113] If the estimated SOC at the endpoint is equal to or greater than the SOC reference value (YES in S57), the braking control unit 100 determines the output of the electric supercharger 60 based on the current speed of the vehicle (S34). Then, the braking control unit 100 turns on the electric supercharger 60 (S59) and proceeds to step S21. As a result, the electric supercharger 60 is driven with the determined output. The braking control unit 100 may also determine the output of the electric supercharger 60 based on the current speed of the vehicle and the current SOC.

[0114] Furthermore, if the estimated SOC at the endpoint is less than the SOC reference value (NO in S57), the braking control unit 100 turns off the electric supercharger 60 (S60) and proceeds to step S21.

[0115] From step S21 onward, as in Figure 4, the braking control unit 100 determines the regenerative braking force (S21), the engine braking force (S22), the mechanical braking force (S23), and then performs braking using each of the determined braking forces (S24).

[0116] As described above, in the vehicle 300 of the third embodiment, when traveling downhill, the estimated SOC at the end point is derived based on the current SOC, and if the estimated SOC at the end point is equal to or greater than a predetermined SOC reference value, the electric supercharger 60 is turned on. When the electric supercharger 60 is turned on, the regenerative power from the motor generator 10 can be consumed by the electric supercharger 60, thereby enabling the generation of regenerative braking force by the motor generator 10.

[0117] Therefore, in the vehicle 300 of the third embodiment, appropriate braking can be performed even when the SOC is relatively high during downhill driving.

[0118] Furthermore, in the vehicle 300 of the third embodiment, the electric supercharger 60 is turned on when the estimated SOC at the end point is equal to or greater than a predetermined SOC standard value, thus preventing the SOC from becoming excessively high when the downhill section is completed.

[0119] (Fourth Embodiment) Figure 13 is a schematic diagram showing the configuration of a vehicle 400 according to the fourth embodiment. The vehicle 400 of the fourth embodiment differs from the vehicle 1 of the first embodiment in that it has a variable valve timing mechanism 410 and the processor 92 also functions as a valve control unit 420. The other configurations of the vehicle 400 of the fourth embodiment are the same as those of the vehicle 1 of the first embodiment, so a description is omitted.

[0120] The variable valve timing mechanism 410 is connected to the intake valve 28 and exhaust valve 30 of the engine 12. The variable valve timing mechanism 410 is configured to allow the opening and closing timing of the intake valve 28 and the exhaust valve 30 to be changed.

[0121] When the electric supercharger 60 is ON, the valve control unit 420 closes the intake valve 28 earlier and opens the exhaust valve 30 later compared to when the electric supercharger 60 is OFF.

[0122] This increases the time that the air supplied into the cylinder 22 by the electric supercharger 60 is retained inside the cylinder 22. As a result, the piston 20 experiences resistance from the air inside the cylinder 22 for a longer period compared to before the opening and closing timing of the intake valve 28 and exhaust valve 30 was changed. In other words, by changing the opening and closing timing of the intake valve 28 and exhaust valve 30, the engine braking force becomes greater compared to before the opening and closing timing of the intake valve 28 and exhaust valve 30 was changed. Consequently, it becomes possible to relatively suppress the mechanical braking force more.

[0123] Figure 14 is a flowchart illustrating the operation flow of the braking control unit 100 and valve control unit 420 in the fourth embodiment. The flowchart in Figure 14 differs from the flowchart in Figure 4 of the first embodiment in that the processes enclosed by dashed lines are the same. The other processes in Figure 14 are the same as those in Figure 4, so their explanation is omitted.

[0124] As shown in Figure 14, after the electric supercharger 60 is turned ON in step S19, the valve control unit 420 performs variable valve timing control (S70). More specifically, the valve control unit 420 controls the variable valve timing mechanism 410 so that the timing of closing the intake valve 28 is earlier and the timing of opening the exhaust valve 30 is later compared to when the electric supercharger 60 is OFF.

[0125] In the fourth embodiment, if the electric supercharger 60 is ON, variable valve timing control is performed, so in step S22, the engine driving force is determined taking into account the increase in engine braking force due to the variable valve timing control.

[0126] As described above, in the vehicle 400 of the fourth embodiment, when the electric supercharger 60 is ON, the timing of closing the intake valve 28 is earlier and the timing of opening the exhaust valve 30 is later compared to when the electric supercharger 60 is OFF. As a result, in the vehicle 400 of the fourth embodiment, the engine braking force can be increased and the mechanical braking force can be suppressed relatively more.

[0127] Therefore, in the vehicle 400 of the fourth embodiment, more appropriate braking can be performed even when the SOC is relatively high during downhill driving.

[0128] In the fourth embodiment, the vehicle 400 was configured by applying a variable valve timing mechanism 410 and a valve control unit 420 to the vehicle 1 of the first embodiment. However, the variable valve timing mechanism 410 and valve control unit 420 may also be applied to the vehicle 200 of the second embodiment, or to the vehicle 300 of the third embodiment.

[0129] 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]

[0130] 1, 200, 300, 400 vehicles 12 Engines 10 Motor Generator 14 batteries 28 Intake valve 30 Exhaust valve 60 Electric Supercharger 72 Brake Sensor 74 Gradient Sensor 90 Control device 92 processors 94 memory 320 storage device 210 switches 310 Navigation System 410 Variable valve timing mechanism

Claims

1. The engine for propulsion, A motor generator for driving, The motor generator and the battery are electrically connected, An electric supercharger that consumes power supplied from the battery to compress the air supplied to the engine and supply it to the engine, A navigation device that identifies the driving route of the vehicle, Memory device and Control device and Equipped with, The control device is One or more processors, One or more memories connected to the processor, It has, The aforementioned processor, Identifying the downhill section, which is the section with a downward gradient in the identified driving route, When the vehicle completes its journey down the downhill section, the actual SOC value of the battery at the starting point of the downhill section is subtracted from the actual SOC value of the battery at the end point of the downhill section to derive the SOC difference, and the SOC difference is divided by the distance of the downhill section to derive the SOC unit increase / decrease amount, which indicates the increase / decrease amount of SOC per unit distance in the downhill section, and this amount is stored in the storage device. When traveling in the downhill section, the system reads the past SOC unit increase / decrease amounts stored in the memory device, multiplies the read past SOC unit increase / decrease amounts by the distance from the current position to the endpoint in the downhill section, and derives an estimated SOC increase / decrease amount that represents an estimated value of the SOC increase / decrease amount in the section from the current position to the endpoint. When traveling through the downhill section, the estimated SOC increase / decrease is added to the current SOC of the battery to derive an estimated SOC at the end of the downhill section, and If the estimated SOC at the endpoint is equal to or greater than a predetermined SOC standard value, the electric supercharger is turned on. A vehicle that performs a process that includes the following.

2. The engine further comprises a variable valve timing mechanism capable of changing the opening and closing timing of the intake and exhaust valves, The aforementioned processor, When the electric supercharger is ON, the timing of closing the intake valve is made earlier and the timing of opening the exhaust valve is made later compared to when the electric supercharger is OFF. The vehicle according to claim 1, which performs a process including the following.

Citation Information

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