Hybrid vehicles

A control system in hybrid vehicles limits fuel cut and adjusts engine rotation speed to reduce power consumption and prevent overheating, addressing excessive power usage during deceleration and downshifts.

JP7732440B2Active Publication Date: 2025-09-02TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2022179632
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-11-09
Publication Date
2025-09-02
Estimated Expiration
2042-11-09

AI Technical Summary

Technical Problem

In hybrid vehicles, restricting fuel cut to maintain deceleration can lead to excessive power consumption due to high rotation speeds of the first motor, especially during downshifts, increasing overall power consumption.

Method used

Implement a control system that limits fuel cut during deceleration and adjusts the engine rotation speed using the first motor's power torque, setting a lower target rotation speed during downshifts, and consider battery charge and coolant temperature to optimize power consumption.

Benefits of technology

This approach suppresses power consumption and prevents battery depletion by reducing the first motor's power usage and overheating of engine components, particularly the particulate filter, while maintaining vehicle deceleration.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a hybrid vehicle which can suppress increase in electric power consumption.SOLUTION: A hybrid vehicle comprises: an engine which is connected with a driving shaft; a first motor which can rotate the engine; a second motor which is connected with the driving shaft; a transmission which is arranged between the engine and the first motor and between the engine and the second motor; and a control device which executes reduction processing where deceleration of the hybrid vehicle is reduced by limiting fuel cut of the engine and increasing process where rotation number of the engine is increased till a target rotation number by power running torque of the first motor at the time of deceleration by downshift of the transmission. The target rotation number in the increasing process is set to a lower value during execution of the reduction processing than during stop of the reduction processing.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to hybrid vehicles. [Background technology]

[0002] In a hybrid vehicle equipped with first and second motors, a reduction process may be executed to reduce the deceleration of the hybrid vehicle by limiting fuel cut in the engine (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-128152 Summary of the Invention [Problem to be solved by the invention]

[0004] When fuel cut is restricted as described above, if the power torque of the first motor is used to ensure the same deceleration as when fuel cut is performed, the rotation speed of the first motor may become excessively high, which may increase the power consumption of the first motor and the overall power consumption of the vehicle.

[0005] Furthermore, when a hybrid vehicle is decelerating due to a downshift, it is possible to execute an increase process that increases the engine speed to a target speed using the power running torque of the first motor while ensuring vehicle deceleration by cutting fuel in the engine. If the increase process is executed during the execution of the decrease process described above, the power consumption of the first motor may increase, which may result in an increase in the amount of power consumed by the vehicle.

[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a hybrid vehicle that suppresses an increase in power consumption. [Means for solving the problem]

[0007] The above object can be achieved by a hybrid vehicle comprising an engine connected to a drive shaft, a first motor capable of rotating the engine, a second motor connected to the drive shaft, a transmission interposed between the engine, the first motor, and the second motor, and a control device that executes a reduction process that limits fuel cut in the engine to reduce the deceleration of the hybrid vehicle, and an increase process that increases the engine rotation speed to a target rotation speed using the power torque of the first motor when deceleration is achieved by downshifting the transmission, wherein the target rotation speed in the increase process is set to a lower value while the reduction process is being executed than when the reduction process is stopped.

[0008] The vehicle may further include a battery that supplies power to the first motor, and the target rotation speed in the increasing process may be set to a lower value as the charge amount of the battery decreases.

[0009] The target rotation speed in the increasing process may be set to a lower value as the temperature of the engine coolant decreases.

[0010] The reduction process may limit fuel cut when it is predicted that a filter that traps particulate matter in the exhaust gas of the engine will become excessively hot due to the execution of fuel cut. [Effects of the Invention]

[0011] According to the present invention, it is possible to provide a hybrid vehicle in which an increase in power consumption is suppressed. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a schematic diagram of a hybrid vehicle. [Figure 2] FIG. 2 is a schematic diagram of the engine. [Figure 3] FIG. 3 is a flowchart showing an example of engine speed increase control. [Figure 4] FIG. 4 is a collinear diagram defining the relationship between the rotation speeds of the first MG, the engine, the drive shaft, and the second MG. [Figure 5] FIG. 5 is an example of a map that defines the rotation speed B. DETAILED DESCRIPTION OF THE INVENTION

[0013] [Hybrid vehicle configuration] 1 is a schematic diagram of a hybrid vehicle 1 according to this embodiment. The hybrid vehicle 1 includes an ECU (Electronic Control Unit) 100, an engine 10, a first motor generator (hereinafter referred to as the "first MG (Motor Generator)") 14, a second motor generator (hereinafter referred to as the "second MG") 15, a PCU (Power Control Unit) 17, a battery 18, a power split mechanism 50, a transmission mechanism 51, a transmission 52, a drive shaft 53, a differential 54, and drive wheels 55. The engine 10 is a gasoline engine, but is not limited to this and may be a diesel engine. The engine 10, the first MG 14, and the second MG 15 are power sources for driving the hybrid vehicle 1.

[0014] Both the first MG 14 and the second MG 15 function as motors that output torque when supplied with drive power, and as generators that generate regenerative power when torque is applied. Specifically, the first MG 14 and the second MG 15 are AC rotating electric machines. The AC rotating electric machines are, for example, permanent magnet synchronous motors that have rotors with embedded permanent magnets.

[0015] The first MG 14 and the second MG 15 are electrically connected to the battery 18 via the PCU 17. 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 to AC power and supplies it to the first MG 14, and converts AC power from the first MG 14 to DC power and supplies it to the converter. The second inverter converts DC power from the converter to AC power and supplies it to the second MG 15, and converts AC power from the second MG 15 to DC power and supplies it to the converter. In other words, the battery 18 supplies power to the first MG 14 or the second MG 15 and receives regenerative power generated in the first MG 14 or the second MG 15. Furthermore, the ECU 100 controls the first inverter to control the amount of power supplied to the first MG 14 and the amount of regenerated power in the first MG 14, thereby controlling the power running torque and regenerative torque of the first MG 14. Similarly, the ECU 100 controls the second inverter to control the amount of power supplied to the second MG 15 and the amount of regenerated power in the second MG 15, thereby controlling the power running torque and regenerative torque of the second MG 15.

[0016] The battery 18 is made up of a plurality of stacked cells, which are, for example, secondary batteries such as nickel-metal hydride batteries or lithium-ion batteries.

[0017] The power split mechanism 50 mechanically couples the crankshaft of the engine 10, the rotating shaft of the first MG 14, and the output shaft of the power split mechanism 50. The power split mechanism 50 is, for example, a planetary gear mechanism including a sun gear, a planetary carrier, a pinion gear, and a ring gear. A rotor of the first MG 14 is coupled to the sun gear. A drive shaft 53 is coupled to the ring gear via a transmission mechanism 51 and a speed changer 52. The crankshaft of the engine 10 is coupled to the planetary carrier, which couples the pinion gear. The output shaft of the power split mechanism 50 is coupled to the transmission mechanism 51. The rotating shaft of the second MG 15 is also coupled to the transmission mechanism 51. The transmission mechanism 51 is coupled to the speed changer 52. The speed changer 52 is coupled to the drive shaft 53. The driving forces of the engine 10, the first MG 14, and the second MG 15 are transmitted to drive wheels 55 via a transmission mechanism 51, a transmission 52, a drive shaft 53, and a differential .

[0018] The transmission 52 is a stepped automatic transmission interposed between the second MG 15 and the drive shaft 53, and changes the gear ratio by changing the gear ratio under the control of the ECU 100. This allows the transmission 52 to switch 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. In the N range, power transmission to the drive wheels 55 is cut off. In the D range, forward driving is possible. In the R range, reverse driving is possible. In the P range, power transmission to the drive wheels 55 is cut off and rotation of the output shaft of the transmission 52 is mechanically prevented. The range of the transmission 52 can be changed by the driver manually operating a shift lever 90.

[0019] The ECU 100 is an electronic control unit that includes a processing circuit that performs various types of calculations related to vehicle driving control, and a memory that stores control programs and data. The ECU 100 is an example of a control device.

[0020] The ECU 100 receives signals from an ignition switch 71, a water temperature sensor 72, a crank angle sensor 73, an air flow meter 74, a shift position sensor 75, an accelerator position sensor 76, and an SOC (State Of Charge) sensor 77. The ignition switch 71 detects the on / off state of the ignition. The water temperature sensor 72 detects the temperature of the coolant for the engine 10. The crank angle sensor 73 detects the engine rotation speed, which is the rotation speed of the crankshaft of the engine 10. The air flow meter 74 detects the amount of intake air introduced into the engine 10. The shift position sensor 75 detects the operating position of the shift lever 90. The accelerator position sensor 76 detects the operating position of the accelerator pedal 91. The SOC sensor 77 detects the charge level of the battery 18.

[0021] The ECU 100 controls acceleration and deceleration based on the accelerator operation amount. Specifically, the outputs of the engine 10, the first MG 14, and the second MG 15 are controlled so as to achieve a target acceleration or target deceleration set based on the accelerator operation amount. The output of the engine 10 is controlled by the intake air amount and the fuel injection amount. The outputs of the first MG 14 and the second MG 15 are controlled by the PCU 17. The above control is an example of processing executed by the deceleration control unit.

[0022] [Engine outline] FIG. 2 is a schematic diagram of the engine 10. The engine 10 has cylinders 30, pistons 31, connecting rods 32, a crankshaft 33, an intake passage 35, an intake valve 36, an exhaust passage 37, and an exhaust valve 38. FIG. 2 shows only one of the multiple cylinders 30 of the engine 10. An air-fuel mixture is combusted in the cylinder 30. A piston 31 is accommodated in each cylinder 30 so as to be able to reciprocate, and is connected to the crankshaft 33, which is the output shaft of the engine 10, via a connecting rod 32. The connecting rod 32 and the crankshaft 33 convert the reciprocating motion of the piston 31 into the rotational motion of the crankshaft 33.

[0023] Each cylinder 30 is provided with an in-cylinder injection valve 41d. The in-cylinder injection valve 41d injects fuel directly into the cylinder 30. The intake passage 35 is provided with a port injection valve 41p that injects fuel toward the intake port 35p. Each cylinder 30 is provided with an ignition device 42 that ignites, by spark discharge, an air-fuel mixture of intake air introduced through the intake passage 35 and fuel injected by the in-cylinder injection valve 41d and the port injection valve 41p. It is sufficient that at least one of the in-cylinder injection valve 41d and the port injection valve 41p is provided.

[0024] The intake passage 35 is connected to an intake port 35p of each cylinder 30 via an intake valve 36. The exhaust passage 37 is connected to an exhaust port 37p of each cylinder 30 via an exhaust valve 38. The intake passage 35 is provided with the air flow meter 74 and a throttle valve 40 that controls the amount of intake air.

[0025] A three-way catalyst 43 and a gasoline particulate filter (GPF) 44 are provided in the exhaust passage 37 from the upstream side. The three-way catalyst 43 contains a catalytic metal such as platinum (Pt), palladium (Pd), or rhodium (Rh), has oxygen storage capacity, and purifies NOx, HC, and CO.

[0026] The GPF 44 is a porous ceramic structure that captures exhaust particulate matter (hereinafter referred to as PM (Particulate Matter)) in the exhaust gas. The GPF 44 also supports a precious metal such as platinum. During regeneration control, this precious metal promotes the oxidation reaction of the accumulated PM. The GPF 44 is an example of a filter. If the engine 10 is a diesel engine, for example, a DPF (Diesel Particulate Filter) is provided instead of the GPF 44.

[0027] The throttle valve 40 can increase or decrease the amount of intake air introduced into the cylinder 30 by increasing or decreasing the opening degree thereof. The opening degree of the throttle valve 40 is controlled in accordance with the opening degree required by the ECU 100.

[0028] When the accelerator opening is released while the engine 10 is running and the hybrid vehicle 1 is traveling, the ECU 100 executes a fuel cut to stop fuel injection from the in-cylinder injection valves 41d and the port injection valves 41p of the engine 10. This causes the output torque of the engine 10 to become a negative value, allowing the hybrid vehicle 1 to decelerate. Furthermore, while the fuel cut is being executed, air (oxygen) is supplied to the GPF 44, and PM accumulated in the GPF 44 is burned.

[0029] [Decrease processing] When a predetermined condition is met, the ECU 100 executes a reduction process for reducing the deceleration of the hybrid vehicle 1 by limiting the fuel cut.

[0030] The predetermined condition is a case where it is predicted that the GPF 44 will overheat due to the execution of fuel cut. By limiting the fuel cut in such a case, it is possible to suppress the overheating of the GPF 44. The ECU 100 predicts whether the execution of fuel cut will cause the GPF 44 to overheat based on the amount of PM accumulated in the GPF 44 and the temperature of the GPF 44. The greater the amount of PM accumulated and the higher the temperature of the GPF 44, the more it is predicted that the GPF 44 will overheat due to the execution of fuel cut.

[0031] The amount of PM accumulated in the GPF 44 is calculated based on, for example, the engine rotation speed, the charging efficiency, and the temperature of the coolant. The charging efficiency is calculated based on the engine rotation speed and the intake air amount. The engine rotation speed is calculated based on the detection value of the crank angle sensor 73. The intake air amount is calculated based on the detection value of the air flow meter 74. The temperature of the coolant is calculated based on the detection value of the water temperature sensor 72.

[0032] The temperature of the GPF 44 is calculated based on, for example, the engine rotation speed and the charging efficiency. However, the method of calculating the amount of PM accumulated in the GPF 44 and the temperature of the GPF 44 is not limited to this. For example, the amount of PM accumulated may be calculated based on the pressure difference before and after the GPF 44. Furthermore, the temperature of the GPF 44 may be calculated based on the detected value of a temperature sensor. Alternatively, these may be calculated using other known methods.

[0033] [Engine RPM Increase Control] 3 is a flowchart showing an example of engine speed increase control executed by ECU 100. This control is repeatedly executed at predetermined intervals while the ignition is on. First, ECU 100 determines whether or not the hybrid vehicle 1 is decelerating, for example, based on the operating position of accelerator pedal 91 (step S1). If the answer is No in step S1, this control is terminated. If the answer is Yes in step S1, ECU 100 determines whether or not there is a request to downshift the transmission 52 (step S2). If the answer is No in step S2, this control is terminated.

[0034] If the result of step S2 is Yes, the ECU 100 determines whether the above-described reduction process is being executed (step S3). If the result of step S3 is No, the ECU 100 sets the target rotation speed of the engine 10 to rotation speed A (step S4), executes a downshift (step S6), and executes an increase process to increase the engine rotation speed to rotation speed A (step S7). In this case, the engine rotation speed is increased to rotation speed A by powering the first MG 14 while executing a fuel cut.

[0035] If the answer is Yes in step S3, the ECU 100 sets the target rotation speed of the engine 10 to rotation speed B, which is lower than rotation speed A (step S5), executes a downshift (step S6), and executes an increase process to increase the engine rotation speed to rotation speed B (step S7). In this case, the engine rotation speed is increased to rotation speed B by powering the first MG 14 while limiting fuel cut. In addition, the fuel injection amount and intake air amount of the engine 10 are controlled to minimum values ​​that allow combustion in the engine 10 to continue.

[0036] 4 is a collinear diagram defining the relationship between the rotation speeds of the first MG 14, engine 10, drive shaft 53, and second MG 15. The S-axis represents the rotation speed of the sun gear of the power split mechanism 50 and the first MG 14. The C-axis represents the rotation speed of the planetary carrier of the power split mechanism 50 and the engine 10. D The axis indicates the rotation speed of the ring gear of the power split mechanism 50 and also the rotation speed of the drive shaft 53. The M axis indicates the rotation speed of the second MG 15.

[0037] S-axis, C-axis, and D On the M axis, values ​​above 0 indicate positive rotation, values ​​below 0 indicate reverse rotation, with an upward direction indicating positive torque, which is torque in the positive rotation direction, and a downward direction indicating negative torque, which is torque in the reverse rotation direction. On the M axis, values ​​above 0 indicate reverse rotation, values ​​below 0 indicate positive rotation, with an upward direction indicating negative torque, and a downward direction indicating positive torque. The nomogram in Figure 4 shows the state immediately after a downshift. In Figure 4, the magnitude of each torque while the reduction process is stopped is indicated by a solid arrow, and the magnitude of each torque while the reduction process is being performed is indicated by a dashed arrow.

[0038] While the reduction process is stopped, fuel cut is performed, so that negative torque of the drive shaft 53 is ensured, and the magnitude of the negative torque of the engine 10 is also large. The positive torque of the first MG 14, i.e., the powering torque, for increasing the engine speed to the speed A against the negative torque of the engine 10 is also controlled to be large.

[0039] In contrast, during execution of the reduction process, fuel cut is limited, so the deceleration of the hybrid vehicle 1 is reduced, the negative torque of the drive shaft 53 is reduced, and the magnitude of the negative torque of the engine 10 is small. The positive torque of the first MG 14, i.e., the power running torque, for increasing the engine speed to the speed B against this negative torque is also controlled to be small. In this way, during execution of the reduction process, the power running torque of the first MG 14 is also reduced, and the power consumption of the first MG 14 is also suppressed. Therefore, the amount of power consumed by the hybrid vehicle 1 is suppressed. As a result, insufficient charging of the battery 18 is also prevented.

[0040] Next, a method for setting the rotation speed B will be described. FIG. 5 shows an example of a map that defines the rotation speed B. This map is defined in advance in the ROM of the ECU 100. The ECU 100 sets the rotation speed B by referring to this map. In the map of FIG. 5, the rotation speed B is defined to be a lower value as the charge level of the battery 18 decreases and as the coolant temperature decreases. By setting the rotation speed B to a lower value as the charge level of the battery 18 decreases, the amount of power supplied from the battery 18 to the first MG 14 can be reduced, thereby preventing the battery 18 from being insufficiently charged. The charge level of the battery 18 is detected by the SOC sensor 77.

[0041] Furthermore, the lower the temperature of the coolant, the greater the friction torque of the engine 10. Therefore, the lower the temperature of the coolant, the greater the power running torque of the first MG 14 required to increase the rotation speed of the engine 10 to a predetermined value, and the greater the amount of power supplied to the first MG 14. Therefore, as shown in the map of FIG. 5, by setting the rotation speed B to a lower value as the temperature of the coolant decreases, the amount of power consumed by the hybrid vehicle 1 is reduced. The temperature of the coolant is detected by the water temperature sensor 72.

[0042] In the example of FIG. 5, the rotation speed B is set to gradually decrease as the charge amount decreases, but this is not limited thereto, and the rotation speed B may be set to decrease in stages. Furthermore, when the charge amount is equal to or less than a threshold, the rotation speed B may be set to a lower value than when the charge amount is greater than the threshold. Similarly, the rotation speed B is set to gradually decrease as the coolant temperature decreases, but this is not limited thereto, and the rotation speed B may be set to decrease in stages. Furthermore, the setting of the rotation speed B is not limited to a method based on such a map, and the rotation speed B may be set using an arithmetic expression that uses the charge amount and the coolant temperature as arguments. Note that, like the rotation speed B, the rotation speed A may also be set to a lower value as the charge amount of the battery 18 and the coolant temperature decrease.

[0043] In the above embodiment, as an example of limiting fuel cut, a case where fuel cut is limited to all cylinders 30 of the engine 10, i.e., a case where fuel injection is continued in all cylinders 30, has been described. However, the present invention is not limited to this. For example, fuel cut may be limited to only some of the cylinders 30. In this case, fuel injection is continued in some of the cylinders 30, and fuel cut is performed in the remaining cylinders 30. This is because, even in this case, the magnitude of the negative torque of the engine 10 when the first MG 14 increases the engine speed to speed B during deceleration during a downshift is smaller than when fuel cut is performed in all cylinders 30.

[0044] Although the 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 defined in the claims. [Explanation of symbols]

[0045] 1 Hybrid vehicle 10 Engine 14 First motor generator 15 Second motor generator 44 GPF (filter) 52 Transmission 100 ECU (control unit)

Claims

1. A hybrid vehicle, an engine coupled to a drive shaft; a first motor capable of rotating the engine; a second motor coupled to the drive shaft; a power split mechanism having an output shaft mechanically connected to the crankshaft of the engine and the rotary shaft of the first motor; a transmission mechanism coupled to the output shaft of the power split mechanism and a rotary shaft of the second motor; a transmission connected to the transmission mechanism; a control device that executes a reduction process that limits fuel cut in the engine to reduce deceleration of the hybrid vehicle, and an increase process that increases the rotation speed of the engine to a target rotation speed by the power torque of the first motor when deceleration is caused by downshifting of the transmission, A hybrid vehicle, wherein the target rotation speed in the increasing process is set to a lower value while the decreasing process is being executed than while the decreasing process is stopped.

2. a battery for supplying power to the first motor; 2. The hybrid vehicle according to claim 1, wherein the target rotation speed in the increasing process is set to a lower value as the charge amount of the battery decreases.

3. 3. The hybrid vehicle according to claim 1, wherein the target rotation speed in the increasing process is set to a lower value as the temperature of the engine coolant decreases.

4. 3. The hybrid vehicle according to claim 1, wherein the reduction process limits fuel cut when it is predicted that a filter that traps particulate matter in exhaust gas from the engine will overheat due to the execution of fuel cut.

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