Vehicle control device
The vehicle control device enhances engine startability by stopping vibration damping control after a predetermined time during engine start-up, leveraging both electric motors' torque to address the deterioration issue.
Patent Information
- Application Number
- JP2022167084
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-10-18
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2042-10-18
AI Technical Summary
The continuous vibration damping control using electric motors in vehicles with internal combustion engines can deteriorate the startability of the engine over time.
A vehicle control device that includes a start-up control unit and a vibration damping control unit, which stops vibration damping control after a predetermined time during engine start-up, utilizing torque from both electric motors to improve startability.
Improves the startability of the internal combustion engine by optimizing the use of electric motor torque during engine start-up and damping control.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a vehicle control device. [Background technology]
[0002] BACKGROUND ART Vehicles equipped with an internal combustion engine and two electric motors are known (for example, see Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2020-093602 Summary of the Invention [Problem to be solved by the invention]
[0004] The torque generated by the electric motor rotates the internal combustion engine, causing it to start. The torque generated by the electric motor suppresses vehicle vibrations (vibration damping control). Vibration damping control continues while the internal combustion engine continues to start. If the vibration damping control continues for a long time, there is a risk that the startability of the internal combustion engine will deteriorate. Therefore, an object of the present invention is to provide a vehicle control device that can improve the startability of the internal combustion engine. [Means for solving the problem]
[0005] The above object can be achieved by a control device for a vehicle equipped with an internal combustion engine, a first electric motor, and a second electric motor, the control device comprising: a start-up control unit that performs start-up processing of the internal combustion engine using torque output by at least one of the first electric motor and the second electric motor; and a vibration damping control unit that executes vibration damping control, which is vibration control using the first electric motor and the second electric motor, wherein if the duration of the start-up processing of the internal combustion engine is equal to or longer than a predetermined time, the vibration damping control unit stops the vibration damping control.
[0006] The start control unit may perform a start process for the internal combustion engine using only the torque output by the first electric motor.
[0007] During the vibration damping control, the first electric motor and the second electric motor may output torque in a direction opposite to the rotational direction of the internal combustion engine, and during the start-up process, the first electric motor may output torque in the same direction as the rotational direction, and after the vibration damping control is stopped, the start-up control unit may reduce the torque output by the first electric motor in the opposite direction to the rotational direction of the internal combustion engine and increase the torque in the same direction as the rotational direction. [Effects of the Invention]
[0008] A vehicle control device that can improve the startability of an internal combustion engine can be provided. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a schematic diagram of a vehicle according to this embodiment. [Figure 2] FIG. 2 is a flowchart illustrating the processing executed by the ECU. [Figure 3] FIG. 3 is a diagram illustrating an example of a time chart. DETAILED DESCRIPTION OF THE INVENTION
[0010] FIG. 1 is a schematic diagram of a vehicle 1 according to this embodiment. The vehicle 1 is a hybrid vehicle and includes an ECU (Electronic Control Unit) 50, an engine 10 (internal combustion engine), a first motor generator (hereinafter referred to as "first MG (Motor Generator)") 14 (first electric motor), a second motor generator (hereinafter referred to as "second MG") 15 (second electric motor), a PCU (Power Control Unit) 17, a battery 18, a torsional damper 19, a power split mechanism 20, a reduction mechanism 22, a differential gear 24, and drive wheels 26. The engine 10 may be a gasoline engine or a diesel engine. The engine 10, the first MG 14, and the second MG 15 are power sources for driving the vehicle 1.
[0011] The first MG 14 and the second MG 15 function as an electric motor and a generator. When drive power is supplied to the first MG 14 and the second MG 15, they output torque, and when torque is applied to them, they generate regenerative power. The first MG 14 and the second MG 15 are, for example, AC rotating electric machines. The AC rotating electric machine is, for example, a permanent magnet synchronous motor having a rotor with a permanent magnet embedded therein.
[0012] The first MG 14 and the second MG 15 are electrically connected to the battery 18 via the PCU 17. The PCU 17 charges the battery 18 using regenerative power generated in the first MG 14 or the second MG 15, and drives the first MG 14 or the second MG 15 using the power charged in the battery 18. The PCU 17 includes a first inverter that exchanges power with the first MG 14, a second inverter that exchanges power with the second MG 15, and a converter. The converter boosts the power of the battery 18 and supplies it to the first and second inverters, and reduces the power supplied from the first and second inverters and supplies it to the battery 18. The first inverter converts DC power from the converter into AC power and supplies it to the first MG 14, and converts AC power from the first MG 14 into DC power and supplies it to the converter. The second inverter converts DC power from the converter into AC power and supplies it to second MG 15, and converts AC power from second MG 15 into DC power and supplies it to the converter.
[0013] The battery 18 is made up of a plurality of stacked cells, which may be secondary batteries such as nickel-metal hydride batteries or lithium-ion batteries.
[0014] The power split mechanism 20 is, for example, a planetary gear mechanism including a sun gear, a planetary carrier, a pinion gear, and a ring gear. The crankshaft 27 of the engine 10 is connected to the power split mechanism 20 via a torsional damper 19. The power split mechanism 20 mechanically connects the crankshaft 27 of the engine 10, the rotating shaft of the first MG 14, and the output shaft of the power split mechanism 20.
[0015] The reduction mechanism 22 is a multi-stage automatic transmission that changes the gear ratio. Under the control of the ECU 50, the reduction mechanism 22 changes the gear ratio and switches between multiple power transmission states. The multiple power transmission states include an N (neutral) range, a D (drive) range, an R (reverse) range, and a P (parking) range. A continuously variable transmission (CVT) that continuously changes the gear ratio may be used instead of the reduction mechanism 22.
[0016] The output shaft of the power split mechanism 20 is connected to a reduction mechanism 22. The rotating shaft of the second MG 15 is also connected to the reduction mechanism 22. The reduction mechanism 22 is connected to a differential gear 24. A drive shaft 25 is connected to the differential gear 24. A drive wheel 26 is attached to the tip of the drive shaft 25.
[0017] The engine 10, the first MG 14, and the second MG 15 function as drive sources that generate drive forces. The drive forces of the engine 10, the first MG 14, and the second MG 15 are transmitted to drive wheels 26 via a speed reduction mechanism 22 and a differential gear 24.
[0018] The ECU 50 is a control device of the vehicle 1, and includes an arithmetic unit such as a CPU (Central Processing Unit), and storage devices such as a RAM (Random Access Memory) and a ROM (Read Only Memory). The ECU 50 performs various controls by executing programs stored in the ROM or storage device. The ECU 50 acquires the engine speed of the engine 10 detected by the speed sensor 29. The ECU 50 controls the engine 10, the first MG 14, the second MG 15, the PCU 17, and the battery 18. The ECU 50 functions as a start control unit and a vibration damping control unit. The start control unit performs a start process for the engine 10. The vibration damping control unit performs vibration damping control.
[0019] When engine 10 rotates, the torque generated by engine 10 is transmitted to torsional damper 19, power split mechanism 20, reduction gear mechanism 22, drive shaft 25, etc. The transmission of torque may cause vibration in vehicle 1. For example, during the start-up process of engine 10, ECU 50 performs vibration suppression control to control vibration using first MG 14 and second MG 15. Vibration suppression control that uses both the torque of first MG 14 and the torque of second MG 15 is called cooperative vibration suppression control. In cooperative vibration suppression control, the torque output by first MG 14 and second MG 15 is torque (reverse torque) in the opposite direction to the rotation direction of engine 10.
[0020] The engine 10 is started by rotating it with the torque output by at least one of the first MG 14 and the second MG 15 (starting process). In the starting process, the torque of both the first MG 14 and the second MG 15 may be used. Alternatively, only the torque output by the first MG 14 may be used. Alternatively, only the torque output by the second MG 15 may be used. In this embodiment, the torque of the first MG 14 is used. The torque output by the first MG 14 in the starting process is torque in the same direction as the rotation direction of the engine 10 (forward torque).
[0021] 2 is a flowchart illustrating the control executed by the ECU 50. The ECU 50 determines whether or not the engine 10 is in the process of starting (step S10). If the determination is negative (No), the ECU 50 does not permit cooperative vibration suppression control (step S18). The cooperative vibration suppression control is not executed.
[0022] If the determination in step S10 is affirmative (Yes), the ECU 50 determines whether the conditions for cooperative vibration suppression control are met (step S12). If the determination is negative, the ECU 50 does not permit cooperative vibration suppression control (step S18). For example, when the rotation speed of the engine 10 is increasing (the rate of change in the rotation speed is positive), it is determined that the conditions are met (affirmative determination).
[0023] After a positive determination is made in step S12, the ECU 50 determines whether the duration of the start-up process of the engine 10 is equal to or longer than a predetermined time (step S14). If a negative determination is made in step S14, the ECU 50 permits cooperative vibration suppression control (step S16). Cooperative vibration suppression control is performed. If a positive determination is made in step S14, the ECU 50 does not permit cooperative vibration suppression control (step S18). Cooperative vibration suppression control is stopped. The torque of the first MG 14 is used in the start-up process of the engine 10. This completes the processing in FIG. 2.
[0024] 3 is a diagram illustrating a time chart. The first row from the top of FIG. 3 represents the mode of the engine 10. The second row represents the rotation speed of the engine 10. The third row represents the permission flag for cooperative vibration suppression control.
[0025] As shown in FIG. 3, the engine 10 is stopped from time 0 to time t1. The rotation speed is zero. Cooperative vibration suppression control is not performed. At time t1, the start process of the engine 10 is started. The rotation speed of the engine 10 increases. Cooperative vibration suppression control is permitted and performed.
[0026] In the example shown by the dashed line in Figure 3, the rotation speed increases over time. The start-up process ends at time t2. The engine 10 operates. Cooperative vibration suppression control is disabled and stopped. On the other hand, in the example shown by the solid line in Figure 3, the start-up process continues after time t2. Cooperative vibration suppression control also continues. At time t3, cooperative vibration suppression control is disabled and stopped. The first MG 14 and the second MG 15 stop outputting the reverse torque. The forward torque output by the first MG 14 is used to start the engine 10.
[0027] According to this embodiment, the ECU 50 performs a start process for the engine 10 and also performs cooperative vibration suppression control. For example, the torque output by the first MG 14 is used in the start process. The torque output by the first MG 14 and the torque output by the second MG 15 are used in the cooperative vibration suppression control. If the duration of the start process is equal to or longer than a predetermined time, the ECU 50 stops the cooperative vibration suppression control (step S18 in FIG. 2). After the cooperative vibration suppression control is stopped, the torque of the first MG 14 that was used in the cooperative vibration suppression control is used to start the engine 10. The startability of the engine 10 is improved.
[0028] In the start-up process, the torque (forward torque) output by the first MG 14 is used. In the cooperative vibration suppression control, the torque (reverse torque) output by the first MG 14 is used. During the start-up process and the cooperative vibration suppression control, the torque output by the first MG 14 includes forward torque and reverse torque. After the cooperative vibration suppression control is stopped, the ECU 50 reduces the reverse torque of the first MG 14 and increases the forward torque. Since the torque used in the start-up process of the engine 10 is increased, the startability is improved.
[0029] The torque output by the second MG 15 may be used in the start-up process. After cooperative vibration suppression control is stopped, the second MG 15 reduces the reverse torque and increases the forward torque. The forward torque output by both the first MG 14 and the second MG 15 may be used in the start-up process. The threshold (predetermined time) for the duration of the start-up process is, for example, several seconds, and may be determined depending on the vehicle model, etc.
[0030] Although the preferred embodiments of the present invention have been described in detail above, the present invention is not limited to such specific embodiments, and various modifications and variations are possible within the scope of the gist of the present invention as set forth in the claims. [Explanation of symbols]
[0031] 1 vehicle 10 Engine 14 First motor generator 15 Second motor generator 17 PCU 18 Battery 19 Torsional Damper 20 Power split mechanism 22 Reduction mechanism 24 Differential gear 25 drive shaft 26 Drive wheels 27 crankshaft 29 Rotational speed sensor 50 ECU
Claims
1. A control device for a vehicle including an internal combustion engine, a first electric motor, and a second electric motor, a start control unit that performs a start process of the internal combustion engine using both the first electric motor and the second electric motor or a torque output by the first electric motor; a vibration damping control unit that performs vibration damping control, which is vibration control using the first electric motor and the second electric motor, In the start-up process, both of the first electric motor and the second electric motor or the first electric motor outputs torque in the same direction as a rotation direction of the internal combustion engine, During the vibration damping control, the first electric motor and the second electric motor output torque in a direction opposite to a rotation direction of the internal combustion engine, When the startup control unit performs the startup process, the vibration damping control unit performs the vibration damping control, When the internal combustion engine is started by the start processing of the internal combustion engine, the start control unit ends the start processing, and the vibration damping control unit stops the vibration damping control, A vehicle control device in which, when the duration of the start-up process of the internal combustion engine is equal to or longer than a predetermined time, the vibration damping control unit stops the vibration damping control, and after the vibration damping control is stopped, the start-up control unit reduces the torque output by the first electric motor and the second electric motor in the direction opposite to the rotational direction of the internal combustion engine to zero, and increases the torque output by both the first electric motor and the second electric motor or the first electric motor in the same direction as the rotational direction to a level greater than during the vibration damping control, and continues the start-up process.
2. The vehicle control device according to claim 1 , wherein the start control unit performs a start process for the internal combustion engine using only the torque output by the first electric motor.
3. A control device for a vehicle as described in claim 1, wherein the starting control unit performs starting processing of the internal combustion engine using the torque output by the first electric motor and the torque output by the second electric motor.
Citation Information
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