Vehicle drive unit
The vehicle drive system addresses engine startability issues by calculating and adjusting energy to the electric heater based on actual viscosity, ensuring efficient oil viscosity reduction for improved engine starting.
Patent Information
- Application Number
- JP2024550849
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-24
- Publication Date
- 2025-09-10
- Estimated Expiration
- 2043-03-24
AI Technical Summary
Existing engine startability issues due to varying engine oil viscosity characteristics among vehicles, which are not adequately addressed by traditional heater activation based on oil temperature alone.
A vehicle drive system with an electric pump, electric heater, and starter motor, controlled by a system that calculates actual engine oil viscosity and adjusts energy input to the heater based on load torque, ensuring appropriate viscosity reduction before engine start.
Improves engine startability by effectively reducing oil viscosity, enhancing the ability to start the engine under varying conditions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a vehicle drive device. [Background technology]
[0002] Engine oil is injected as a lubricant into engines installed in vehicles (see Patent Documents 1 to 4). Furthermore, vehicles equipped with a heater in the oil pan or the like have been proposed in order to warm the engine oil in low-temperature environments (see Patent Documents 1 to 3). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent No. 6372459 [Patent Document 2] Japanese Patent Application Publication No. 2020-75678 [Patent Document 3] Japanese Patent No. 5293834 [Patent Document 4] Japanese Patent Application Publication No. 2022-57210 Summary of the Invention [Problem to be solved by the invention]
[0004] By activating a heater installed in an oil pan or the like, it is possible to warm the engine oil and reduce the oil viscosity, thereby improving engine startability. However, because the type and deterioration state of engine oil injected into the engine vary from vehicle to vehicle, the viscosity change characteristics of the engine oil also generally vary from vehicle to vehicle. In other words, simply activating a heater based on the oil temperature makes it difficult to appropriately reduce the oil viscosity, making it difficult to improve engine startability. [Means for solving the problem]
[0005] According to the present disclosure, a vehicle drive system includes an electric pump that pumps engine oil, an electric heater that warms the engine oil, and a starter motor that starts and rotates an output shaft. The vehicle drive system also includes a control system that controls the electric pump, the electric heater, and the starter motor. The control system drives the electric pump before starting the engine and calculates a first actual viscosity of the engine oil based on the load torque of the electric pump. The control system provides first energy to the electric heater to activate it, activates the electric heater, then drives the electric pump before starting the engine and calculates a second actual viscosity of the engine oil based on the load torque of the electric pump. The control system calculates second energy to provide to the electric heater based on the second actual viscosity of the engine oil and a target viscosity. After providing the second energy to activate the electric heater, the control system drives the starter motor to start and rotate the output shaft. [Effects of the Invention]
[0006] According to the present disclosure, it is possible to achieve the effect of improving the startability of the engine. [Brief explanation of the drawings]
[0007] [Figure 1] 1 is a diagram illustrating an example of a vehicle equipped with a vehicle drive device according to an embodiment; [Figure 2] FIG. 1 is a diagram illustrating an example of a vehicle drive device. [Figure 3] FIG. 2 is a diagram illustrating an example of a basic structure of a control unit. [Figure 4] FIG. 4 is a diagram illustrating an example of an execution status of a combustion power generation mode and a power generation stop mode. [Figure 5] 10 is a flowchart showing an example of an execution procedure of oil heating control. [Figure 6] 10 is a flowchart showing an example of an execution procedure of oil heating control. [Figure 7] FIG. 4 is a diagram illustrating an example of the relationship between the load torque of an electric oil pump and the actual viscosity of engine oil. [Figure 8] FIG. 4 is a diagram showing an example of the relationship between the temperature and viscosity of engine oil. [Figure 9] FIG. 4 is a diagram showing an example of the relationship between the temperature and viscosity of engine oil. [Figure 10] FIG. 4 is a diagram showing an example of the relationship between the temperature and viscosity of engine oil. [Figure 11] FIG. 4 is a diagram showing an example of the relationship between oil viscosity and starting energy. [Figure 12] 4 is a timing chart showing an example of an execution state of oil heating control. [Figure 13] FIG. 10 is a diagram illustrating a vehicle drive device according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0008] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will be described in detail below with reference to the accompanying drawings. In the following description, identical or substantially identical configurations and elements are designated by the same reference numerals and will not be described repeatedly.
[0009] First Embodiment <Vehicle configuration> Fig. 1 is a diagram showing an example of a vehicle 11 equipped with a vehicle drive system 10 according to one embodiment. As shown in Fig. 1, the vehicle drive system 10 has a power generation unit 14 made up of an engine 12 and a starter generator 13, and a drive unit 17 made up of an electric axle 16 connected to wheels 15. The power generation unit 14 and the drive unit 17 are connected to each other via a power supply unit 20 made up of an inverter 18 and a battery pack 19. The vehicle 11 shown in the figure is a so-called series hybrid vehicle, but is not limited to this and may be a series-parallel hybrid vehicle.
[0010] Fig. 2 is a diagram showing an example of a vehicle drive system 10. As shown in Fig. 2, the engine 12 has a cylinder block 21 and a cylinder head 22 attached thereto. The engine 12 also has a crankshaft (output shaft) 23 rotatably supported by the cylinder block 21, and a piston 24 housed in the cylinder block 21 so as to be able to reciprocate. The crankshaft 23 and the piston 24 are connected to each other via a connecting rod 25. The cylinder head 22 also has an injector 27 that injects fuel into a combustion chamber 26, and an ignition device 28 consisting of a spark plug or the like that ignites the air-fuel mixture in the combustion chamber 26.
[0011] The engine 12 has an electric oil pump (electric pump) 30 that pumps engine oil. The electric oil pump 30 has a pump unit 31 consisting of a gear pump, a motor unit 32 that rotates and drives the pump unit 31, and a drive circuit unit 33 that controls the power supply state of the motor unit 32. By driving the electric oil pump 30, engine oil X in an oil pan 34 is supplied from oil passages in the cylinder block 21 to each sliding part, such as bearings. The engine oil supplied to each sliding part in the engine 12 lubricates each sliding part and then returns to the oil pan 34 below the cylinder block. The oil pan 34 of the engine 12 is also provided with an electric heater 35 that generates heat when powered. An engine control unit 36, which is an electronic control unit, is connected to the electric oil pump 30, the electric heater 35, the injector 27, and the ignition device 28.
[0012] A starter generator (starter motor) 13 is connected to the crankshaft 23 of the engine 12 via a belt mechanism 40. The starter generator 13 has a stator 41 wound with a stator coil and a rotor 42 rotatably housed within the stator 41. The starter generator 13 is a so-called ISG (Integrated Starter Generator) that functions as both a generator and an electric motor. That is, the starter generator 13 not only functions as a generator that generates electricity using engine power, but also as an electric motor that starts and rotates the crankshaft 23 when the engine is started. A switching circuit 43 including a plurality of switching elements is connected to the stator 41 of the starter generator 13. Furthermore, a battery pack 19 including battery cells such as a lithium-ion battery is connected to the switching circuit 43 of the inverter 18.
[0013] The electric axle 16 has a traction motor 44 and a differential mechanism 45. The traction motor 44 has a stator 46 wound with a stator coil and a rotor 47 rotatably housed within the stator 46. The rotor 47 of the traction motor 44 is connected to the wheels 15 via a gear train 48 and the differential mechanism 45. By controlling the traction motor 44 to a power running state, the wheels 15 can be driven by the traction motor 44. On the other hand, by controlling the traction motor 44 to a regenerative state, the traction motor 44 can generate electricity and brake the wheels 15. A switching circuit 49 including a plurality of switching elements is connected to the stator 46 of the traction motor 44. Furthermore, a battery pack 19 is connected to the switching circuit 49 of the inverter 18. Furthermore, a motor control unit 50, which is an electronic control unit, is connected to the inverter 18.
[0014] The battery pack 19 has a plurality of battery modules 51 each consisting of a plurality of battery cells, and a battery control unit 52 that monitors the charging and discharging of the battery modules 51. The battery pack 19 also has a battery sensor 53 that detects the charging and discharging current, terminal voltage, etc. The battery control unit 52, which is an electronic control unit, calculates the SOC (State of Charge) of the battery pack 19 based on the charging and discharging current, terminal voltage, etc. The SOC of the battery pack 19 is a ratio that indicates the remaining amount of electricity stored in the battery pack 19, and is the ratio of the amount of stored electricity to the full charge capacity of the battery pack 19.
[0015] <Control System> 2, the vehicle drive device 10 has a control system 60 made up of a plurality of electronic control units. The electronic control units that make up the control system 60 include the engine control unit 36, the motor control unit 50, and the battery control unit 52. Another electronic control unit that makes up the control system 60 is a vehicle control unit 61 that outputs control signals to the control units 36, 50, and 52. These control units 36, 50, 52, and 61 are connected to each other so as to be able to communicate with each other via an in-vehicle network 62 such as a CAN (Controller Area Network).
[0016] The vehicle control unit 61 sets operation targets for the power generation unit 14, the drive unit 17, etc. based on input information from various control units and various sensors described below. The vehicle control unit 61 then generates control signals according to the operation targets for the power generation unit 14, the drive unit 17, etc., and outputs these control signals to the engine control unit 36, the motor control unit 50, etc. Sensors connected to the vehicle control unit 61 include an accelerator sensor 63 that detects the amount of accelerator pedal operation and a brake sensor 64 that detects the amount of brake pedal operation. Other sensors connected to the vehicle control unit 61 include a vehicle speed sensor 65 that detects the vehicle speed, which is the traveling speed of the vehicle 11, and a temperature sensor 66 that detects the outside air temperature. Furthermore, a start switch 67 that is operated by the driver when the control system 60 is started is connected to the vehicle control unit 61.
[0017] Fig. 3 is a diagram showing an example of the basic structure of the control units 36, 50, 52, and 61. As shown in Fig. 3, the control units 36, 50, 52, and 61, which are electronic control units, have a microcontroller 72 incorporating a processor 70 and a main memory (memory) 71. A predetermined program is stored in the main memory 71, and the program is executed by the processor 70. The processor 70 and the main memory 71 are connected to each other so that they can communicate with each other. Note that multiple processors 70 may be incorporated into the microcontroller 72, and multiple main memories 71 may be incorporated into the microcontroller 72.
[0018] The control units 36, 50, 52, and 61 each include an input circuit 73, a drive circuit 74, a communication circuit 75, an external memory 76, and a power supply circuit 77. The input circuit 73 converts signals input from various sensors into signals that can be input to the microcontroller 72. The drive circuit 74 generates drive signals for various devices, such as the inverter 18, the electric oil pump 30, and the electric heater 35, based on signals output from the microcontroller 72. The communication circuit 75 converts signals output from the microcontroller 72 into communication signals for other control units. The communication circuit 75 also converts communication signals received from other control units into signals that can be input to the microcontroller 72. The power supply circuit 77 supplies a stable power supply voltage to the microcontroller 72, the input circuit 73, the drive circuit 74, the communication circuit 75, the external memory 76, and the like. The external memory 76, which may be a nonvolatile memory or the like, stores programs and various data.
[0019] <Power generation unit control mode> The vehicle drive system 10 has, as control modes for the power generation unit 14, a combustion power generation mode in which the starter generator 13 generates power, and a power generation stop mode in which the power generation of the starter generator 13 is stopped. The combustion power generation mode is a control mode in which the engine 12 is controlled to an operating state and the starter generator 13 is controlled to a power generating state. The power generation stop mode is a control mode in which the engine 12 and the starter generator 13 are controlled to a stopped state.
[0020] FIG. 4 is a diagram showing an example of the execution status of the combustion power generation mode and the power generation stop mode. As shown in FIG. 4, when the SOC of the battery pack 19 falls below threshold S1 while the power generation stop mode is being executed, the control system 60 switches the control mode from the power generation stop mode to the combustion power generation mode. That is, when the SOC falls below threshold S1 while the engine is stopped, the control system 60 determines that the engine start condition for starting the engine 12 is met and drives the starter generator 13 to start the engine 12. Thereafter, the control system 60 controls the starter generator 13 to a power generating state and switches the control mode to the combustion power generation mode. This allows the starter generator 13 to generate electricity and charge the battery pack 19, gradually increasing the SOC of the battery pack 19.
[0021] Furthermore, when the SOC of the battery pack 19 exceeds a threshold S2, which is greater than threshold S1, while the combustion power generation mode is being executed, the control system 60 switches the control mode from the combustion power generation mode to the power generation stop mode. That is, when the SOC exceeds threshold S2 while the engine is running, the control system 60 determines that an engine stop condition for stopping the engine 12 is met, stops the engine 12, and switches the control mode to the power generation stop mode. This allows the traction motor 44 to be driven using the power stored in the battery pack 19, and allows the vehicle 11 to travel with the engine 12 stopped. Note that even in the power generation stop mode, the traction motor 44 is controlled to a regenerative state when the vehicle decelerates, so the battery pack 19 is charged by the traction motor 44.
[0022] <Oil heating control: flowchart> As described above, when the SOC of the battery pack 19 falls below the threshold value S1, the control system 60 starts the engine 12 and controls the starter generator 13 to a power generating state. Here, in a low-temperature environment (e.g., −20° C.) such as in a cold region, the viscosity of the engine oil (hereinafter referred to as oil viscosity) is high, resulting in a large rotational resistance of the crankshaft 23, making it difficult to start and rotate the crankshaft 23 using the starter generator 13. Therefore, the control system 60 executes oil heating control, which operates the electric heater 35 to warm the engine oil before starting the engine, thereby reducing the oil viscosity and improving the startability of the engine 12.
[0023] The procedure for executing oil heating control will be described below. Figures 5 and 6 are flowcharts showing an example of the procedure for executing oil heating control. The flowcharts shown in Figures 5 and 6 are connected to each other at the point marked with the symbol A and are also connected to each other at the point marked with the symbol B. Each step of the oil heating control shown in Figures 5 and 6 is executed by the processor 70 that constitutes the control system 60.
[0024] 5, the control system 60 proceeds to step S10, where it determines whether or not startup of the control system 60 has been completed. If it determines in step S10 that system startup has been completed, the control system 60 proceeds to step S11, where it determines whether or not the outside air temperature is below a predetermined threshold A1 (for example, 0°C). If it determines in step S11 that the outside air temperature is below threshold A1, the control system 60 proceeds to step S12, where it temporarily drives the electric oil pump 30 before starting the engine. Then, in step S12, the control system 60 calculates an actual viscosity (first actual viscosity) Vx1, which is the actual oil viscosity, based on the load torque of the electric oil pump 30.
[0025] FIG. 7 is a diagram showing an example of the relationship between the load torque of the electric oil pump 30 and the actual viscosity of the engine oil. As shown in FIG. 7, the actual viscosity Vx1 of the engine oil increases as the load torque of the electric oil pump 30 increases. That is, in step S12 described above, the control system 60 calculates a higher actual viscosity Vx1 of the engine oil as the load torque of the electric oil pump 30 increases. The control system 60 is capable of calculating the load torque of the electric oil pump 30 based on the current consumption of the electric oil pump 30. That is, the control system 60 calculates a higher load torque of the electric oil pump 30 as the current consumption of the electric oil pump 30, which is driven at a constant rotational speed, increases.
[0026] As shown in Fig. 5, after the control system 60 calculates the actual viscosity Vx1 in step S12, the process proceeds to step S13, where a predetermined amount of pre-heating energy (first energy) E1 [kWh] is applied to operate the electric heater 35. After operating the electric heater 35 in step S13, the control system 60 proceeds to step S14, where the control system 60 again temporarily drives the electric oil pump 30 before starting the engine. Then, in step S14, the control system 60 calculates an actual viscosity (second actual viscosity) Vx2, which is the actual oil viscosity, based on the load torque of the electric oil pump 30. Note that, as shown in Fig. 7, the control system 60 also calculates in step S14 that the actual viscosity Vx2 of the engine oil increases as the load torque of the electric oil pump 30 increases.
[0027] After calculating the actual viscosity Vx2 in step S14, the control system 60 proceeds to step S15 and calculates the main heating energy (second energy) Ex2 [kWh] to be applied to the electric heater 35. Here, the main heating energy Ex2 is the energy required to reduce the oil viscosity from the actual viscosity Vx2 to the target viscosity Vt, and is the amount of power, i.e., energy, consumed by the electric heater 35. Note that the target viscosity Vt of the engine oil is the upper limit of the oil viscosity required at engine start from the perspective of properly starting the engine 12 using the starter generator 13. In other words, by reducing the oil viscosity to the target viscosity Vt, the crankshaft 23 can be properly started and rotated by the starter generator 13, and the engine 12 can be properly started.
[0028] Figures 8, 9, and 10 are diagrams showing an example of the relationship between engine oil temperature and viscosity. In Figures 8 and 9, the viscosity change characteristic of engine oil OA is shown by a solid line, and in Figures 8 and 10, the viscosity change characteristic of engine oil OB, which is separate from engine oil OA, is shown by a dashed line. In Figures 8 and 9, actual viscosity Va1 is the actual viscosity Vx1 of engine oil OA calculated in step S12, and actual viscosity Va2 is the actual viscosity Vx2 of engine oil OA calculated in step S15. In Figures 8 and 10, actual viscosity Vb1 is the actual viscosity Vx1 of engine oil OB calculated in step S12, and actual viscosity Vb1 is the actual viscosity Vx2 of engine oil OB calculated in step S15.
[0029] As shown in Figure 8, if the actual viscosity of engine oil OA before warming is "Va1" and the actual viscosity after warming is "Va2," the viscosity change characteristic of engine oil OA is calculated to be characteristic line La. Also, if the actual viscosity of engine oil OB before warming is "Vb1" and the actual viscosity after warming is "Vb2," the viscosity change characteristic of engine oil OB is calculated to be characteristic line Lb. In this way, it is thought that the viscosity change characteristic of engine oil differs depending on the type and deterioration state of engine oil injected into engine 12.
[0030] 8, even when the oil viscosity is to be reduced to the common target viscosity Vt, the engine oil OA needs to be heated to a temperature Ta2, whereas the engine oil OB needs to be heated to a temperature Tb2 that is higher than the temperature Ta2. Therefore, even when the oil viscosity is to be reduced to the common target viscosity Vt, the main heating energy Ex2 to be supplied to the electric heater 35 needs to be different between the vehicle into which the engine oil OA is injected and the vehicle into which the engine oil OB is injected.
[0031] As shown in FIG. 9, in a vehicle into which engine oil OA has been poured, activating the electric heater 35 with pre-heating energy E1 increases the temperature of the engine oil OA from "Ts" to "Ta1" and decreases the actual viscosity from "Va1" to "Va2." That is, when the electric heater 35 is activated with pre-heating energy E1, the viscosity of the engine oil OA decreases by a change amount Da1. Therefore, in order to decrease the oil viscosity from the actual viscosity Va2 to the target viscosity Vt, it is necessary to calculate the main heating energy Ea2 from the pre-heating energy E1, the slope of the characteristic line La, and the change amount (difference) Da2, and to supply this main heating energy Ea2 to the electric heater 35. That is, in step S15 described above, the main heating energy Ea2 (Ex2) to be supplied to the electric heater 35 is calculated based on the pre-heating energy E1, the slope of the characteristic line La, and the change amount Da2 (Da2 = Va2 - Vt). Furthermore, the control system 60 calculates a larger main heating energy Ea2 as the amount of change Da2 increases.
[0032] As shown in FIG. 10, in a vehicle into which engine oil OB has been poured, activating the electric heater 35 with pre-heating energy E1 increases the temperature of the engine oil OB from "Ts" to "Tb1" and decreases the actual viscosity from "Vb1" to "Vb2." In other words, when the electric heater 35 is activated with pre-heating energy E1, the viscosity of the engine oil OB decreases by a change amount Db1. Therefore, in order to decrease the oil viscosity from the actual viscosity Vb2 to the target viscosity Vt, it is necessary to calculate the main heating energy Eb2 from the pre-heating energy E1, the slope of the characteristic line Lb, and the change amount (difference) Db2, and to supply this main heating energy Eb2 to the electric heater 35. That is, in the above-mentioned step S15, the main heating energy Eb2 (Ex2) to be supplied to the electric heater 35 is calculated based on the pre-heating energy E1, the slope of the characteristic line Lb, and the change amount Db2 (Db2 = Vb2 - Vt). Furthermore, the control system 60 calculates a larger main heating energy Eb2 as the amount of change Db2 increases.
[0033] 5, after calculating the main heating energy Ex2 in step S15, the control system 60 proceeds to step S16, where it calculates the start energy Est1 [kWh] when the oil viscosity is the target viscosity Vt. This start energy (first start energy) Est1 is the energy consumed by the starter generator 13 when the engine starts when the oil viscosity is the target viscosity Vt. Furthermore, after calculating the start energy Est1 in step S16, the control system 60 proceeds to step S17, where it calculates the start energy Est2 [kWh] when the oil viscosity is the actual viscosity Vx2. This start energy (second start energy) Est2 is the energy consumed by the starter generator 13 when the engine starts when the oil viscosity is the actual viscosity Vx2.
[0034] FIG. 11 is a diagram showing an example of the relationship between oil viscosity and starting energy. As shown in FIG. 11, the starting energies Est1 and Est2 increase as the oil viscosity increases. That is, in step S16, the control system 60 calculates a starting energy Est1 that increases as the target viscosity Vt increases. Also, in step S17, the control system 60 calculates a starting energy Est2 that increases as the actual viscosity Vx2 increases. Note that the target viscosity Vt of the engine oil is a fixed value set in advance by simulation or the like, but may be changed in accordance with deterioration over time of the starter generator 13, etc.
[0035] 6, after calculating the start-up energy Est2 in step S17, the control system 60 proceeds to step S18, where it determines whether the sum of the start-up energy Est1 and the main heating energy Ex2 is less than the start-up energy Est2. In step S18, a situation in which the sum of the start-up energy Est1 and the main heating energy Ex2 is less than the start-up energy Est2 means that operating the electric heater 35 before starting the engine consumes less energy. On the other hand, in step S18, a situation in which the sum of the start-up energy Est1 and the main heating energy Ex2 exceeds the start-up energy Est2 means that not operating the electric heater 35 before starting the engine consumes less energy.
[0036] If the control system 60 determines in step S18 that the sum of the start-up energy Est1 and the main heating energy Ex2 is less than the start-up energy Est2, the process proceeds to step S19, where it determines whether the SOC of the battery pack 19 is less than a threshold value S1a. As shown in FIG. 4, the threshold value S1a is set slightly higher than the threshold value S1, and a situation in which the SOC is less than the threshold value S1a indicates a situation in which a transition to the combustion power generation mode is imminent. Then, as shown in FIG. 6, if the control system 60 determines in step S19 that the SOC is less than the threshold value S1a, a transition to the combustion power generation mode accompanied by engine start is imminent, and the process proceeds to step S20, where the control system 60 operates the electric heater 35 using the main heating energy Ex2.
[0037] When the control system 60 completes energizing the electric heater 35 in step S20, the control system 60 proceeds to step S21, where it temporarily drives the electric oil pump 30 before starting the engine. Then, in step S21, the control system 60 calculates an actual viscosity Vx3, which is the actual oil viscosity, based on the load torque of the electric oil pump 30. After calculating the actual viscosity Vx3 in step S21, the control system 60 proceeds to step S22, where it determines whether the actual viscosity Vx3 is equal to or less than the target viscosity Vt. If the control system 60 determines in step S22 that the actual viscosity Vx3 exceeds the target viscosity Vt, the engine oil is not sufficiently warmed, so it proceeds to step S23, where it adds a predetermined amount of energy to operate the electric heater 35. After operating the electric heater 35 in step S23, the control system 60 proceeds to step S21, where it again calculates the actual viscosity Vx3, and then proceeds to step S22, where it determines whether the actual viscosity Vx3 is equal to or less than the target viscosity Vt. That is, the electric heater 35 continues to warm the engine oil until the actual viscosity Vx3 becomes equal to or less than the target viscosity Vt.
[0038] If the control system 60 determines in step S22 that the actual viscosity Vx3 is equal to or less than the target viscosity Vt, the engine oil has been sufficiently warmed, and the process proceeds to step S24, where the control system 60 determines whether the SOC of the battery pack 19 is below the threshold value S1. In step S24, the situation in which the SOC is below the threshold value S1 means that the engine 12 is started and the engine 12 transitions to the combustion power generation mode, that is, the engine start condition is met. If the control system 60 determines in step S24 that the SOC is below the threshold value S1, the process proceeds to step S25, where the electric oil pump 30 is driven, and the control system 60 then proceeds to step S26, where the starter generator 13 is driven, in order to transition from the power generation stop mode to the combustion power generation mode.
[0039] As described above, in step S12, which corresponds to a first step, the control system 60 calculates the actual viscosity Vx1 of the engine oil based on the load torque of the electric oil pump 30. In steps S13 and S14, which correspond to a second step, the control system 60 activates the electric heater 35 with pre-heating energy E1, and then calculates the actual viscosity Vx2 of the engine oil based on the load torque of the electric oil pump 30. In step S15, which corresponds to a third step, the control system 60 calculates the main heating energy Ex2 to be applied to the electric heater 35 based on the actual viscosity Vx2 of the engine oil and the target viscosity Vt. In steps S20 and S26, which correspond to a fourth step, the control system 60 activates the electric heater 35 with the main heating energy Ex2, and then drives the starter generator 13 to start the engine 12. This allows the oil viscosity to be appropriately reduced in preparation for engine start, thereby improving the startability of the engine 12.
[0040] Furthermore, in steps S20, S25, and S26, which correspond to the fourth step, the control system 60 activates the electric heater 35 with the main heating energy Ex2, then drives the electric oil pump 30, and then drives the starter generator 13. That is, after driving the electric oil pump 30 to pump engine oil, it drives the starter generator 13 to start and rotate the crankshaft 23. This reduces the rotational resistance of the crankshaft 23, thereby further improving the startability of the engine 12.
[0041] Furthermore, if the control system 60 determines in step S18 that the sum of the start energy Est1 and the main heating energy Ex2 is equal to or greater than the start energy Est2, the control system 60 proceeds to step S24 without activating the electric heater 35 in order to improve energy efficiency, and determines whether the SOC is below the threshold S1. That is, when the sum of the start energy Est1 and the main heating energy Ex2 exceeds the start energy Est2 and the SOC falls below the threshold S1, thereby satisfying the engine start condition, the control system 60 prohibits execution of step S20, which corresponds to the fourth step. In this case, the control system 60 bypasses step S20 and proceeds to step S24, thereby driving the starter generator 13 to start the engine 12 without activating the electric heater 35. In this way, whether to activate the electric heater 35 can be appropriately determined from the perspective of energy consumption, thereby improving the energy efficiency of the vehicle 11.
[0042] <Oil heating control: timing chart> The oil heating control described above will be explained with reference to a timing chart. FIG. 12 is a timing chart showing an example of the execution status of the oil heating control. As shown in FIG. 12, when the control system 60 is started at time t1, the actual viscosity Vx1 of the engine oil before warming is calculated at time t2, and the actual viscosity Vx2 of the engine oil after warming is calculated at time t3. Once the actual viscosities Vx1 and Vx2 of the engine oil are calculated in this manner, the main heating energy Ex2 to be applied to the electric heater 35 is calculated, as described above. Furthermore, when traveling in the power generation stop mode begins at time t4, the SOC of the battery pack 19 increases or decreases depending on the power running state or regeneration state of the traction motor 44.
[0043] As shown at time t5, when the SOC falls below the threshold value S1a (symbol a1), the electric heater 35 starts operating (symbol b1). As shown at time t6, when the main heating energy Ex2 is consumed by the electric heater 35 by operating the electric heater 35 for a predetermined time, the electric heater 35 stops (symbol b2). At time t6, the engine oil has been warmed up, and the oil viscosity has decreased to the target viscosity Vt (symbol c1). Thereafter, as shown at time t7, when the SOC falls below the threshold value S1 and the engine start condition is met (symbol a2), the starter generator 13 starts starting rotation (symbol d1), and the engine 12 is controlled to be in an operating state (symbol d2).
[0044] Second Embodiment 2, the electric heater 35 is provided in the oil pan 34 of the engine 12, but this is not limitative and the electric heater 35 may be provided in another location on the engine 12. Fig. 13 is a diagram showing a vehicle drive device 80 according to another embodiment.
[0045] As shown in Fig. 13, a vehicle drive device 80 has a power generation unit 82 made up of an engine 81 and a starter generator 13. The engine 81 of the power generation unit 82 is an engine equipped with a so-called dry sump hydraulic system. The engine 81 has an oil tank 83 that stores engine oil X, a scavenge pump 84 located upstream of the oil tank 83, and an electric oil pump 30 located downstream of the oil tank 83. The engine 81 also has an electric heater 35 provided in the oil tank 83.
[0046] By driving the scavenge pump 84, engine oil is supplied from the oil pan 34 to the oil tank 83. Furthermore, by driving the electric oil pump 30, engine oil X in the oil tank 83 is supplied to each sliding part, such as bearings, through the oil passages in the cylinder block 21. The engine oil supplied to each sliding part in the engine 81 lubricates each sliding part and then returns to the oil pan 34 below the cylinder block. Furthermore, an engine control unit 36, which is an electronic control unit, is connected to the electric oil pump 30, the electric heater 35, the scavenge pump 84, the injectors 27, and the ignition device 28.
[0047] In this way, even a vehicle drive system 80 equipped with a dry sump engine 81 can function in the same manner as the vehicle drive system 10 described above. Specifically, in step S12, which corresponds to a first step, the control system 60 calculates the actual viscosity Vx1 of the engine oil based on the load torque of the electric oil pump 30. Furthermore, in steps S13 and S14, which correspond to a second step, the control system 60 activates the electric heater 35 with pre-heating energy E1, and then calculates the actual viscosity Vx2 of the engine oil based on the load torque of the electric oil pump 30. Furthermore, in step S15, which corresponds to a third step, the control system 60 calculates the main heating energy Ex2 to be applied to the electric heater 35 based on the actual viscosity Vx2 of the engine oil and the target viscosity Vt. Furthermore, in steps S20 and S26, which correspond to a fourth step, the control system 60 activates the electric heater 35 with the main heating energy Ex2, and then drives the starter generator 13 to start the engine 81. This allows the oil viscosity to be appropriately reduced in preparation for engine start, thereby improving the startability of the engine 81.
[0048] The present invention is not limited to the above-described embodiment, and various modifications are possible without departing from the spirit and scope of the present invention. In the above description, the control system 60 is configured by multiple control units 36, 50, 52, and 61, but this is not limited to this. For example, the control system 60 may be configured by a single control unit. Furthermore, the electric heater 35 may be an electric heater that generates heat using an electric heating wire, or a PTC (Positive Temperature Coefficient) heater. Furthermore, while the power source for the electric heater 35 and the electric oil pump 30 is a low-voltage battery, this is not limited to this, and power may be supplied to the electric heater 35 and the electric oil pump 30 from a high-voltage battery pack 19.
[0049] In the examples shown in FIGS. 8, 9, and 10, the characteristic lines La and Lb are straight lines, but this is not limiting and the characteristic lines La and Lb may be curved. In the above description, the characteristic lines La and Lb representing the viscosity change characteristics are calculated based on two actual viscosities Vx1 and Vx2. However, this is not limiting and the characteristic lines La and Lb representing the viscosity change characteristics may be calculated based on three or more actual viscosities. Furthermore, the preheating energy E1 supplied to the electric heater 35 before calculating the actual viscosity Vx2 of the engine oil may be a preset fixed value or may be a value that varies depending on the outside air temperature, oil temperature, etc. In the example shown in FIG. 7, the characteristic line representing the relationship between the load torque and the actual viscosities Vx1 and Vx2 is straight, but this is not limiting and the characteristic line representing the relationship between the load torque and the actual viscosities Vx1 and Vx2 may be curved. In addition, in the example shown in Figure 7, the characteristic line showing the relationship between oil viscosity and starting energies Est1 and Est2 is a straight line, but this is not limited to this, and the characteristic line showing the relationship between oil viscosity and starting energies Est1 and Est2 may be a curved line.
[0050] 5 and 6, if it is determined in step S11 that the outside air temperature is equal to or higher than threshold value A1, the oil viscosity is already low and there is no need to operate electric heater 35, so the process bypasses step S20 and proceeds to step S24. In this way, control system 60 determines whether the oil viscosity is low based on the outside air temperature, but this is not limited to this, and it may also determine whether the oil viscosity is already low based on the engine oil temperature, for example.
[0051] In the flowcharts shown in Figures 5 and 6, whether to activate the electric heater 35 is determined based on the start-up energies Est1 and Est2, but the present invention is not limited to this. For example, in a situation where the outside air temperature or the oil temperature is below a predetermined value, the electric heater 35 may be activated before starting the engine without determining the start-up energies Est1 and Est2. Furthermore, in the flowcharts shown in Figures 5 and 6, the actual viscosity Vx3 of the engine oil is determined again after the electric heater 35 is activated by the main heating energy Ex2, but the present invention is not limited to this. In other words, after the electric heater 35 is activated by the main heating energy Ex2, the starter generator 13 may be driven to start the engine if the engine start condition is met, without determining the actual viscosity Vx3 of the engine oil again.
[0052] In the above description, the starter generator 13, which functions as both an electric motor and a generator, is used as the starter motor, but this is not limiting. For example, an electric motor having a pinion that meshes with the ring gear of a flywheel may be used as the starter motor, or a motor generator directly connected to the crankshaft 23 may be used as the starter motor. Furthermore, a motor generator connected to the crankshaft 23 via a damper mechanism, a clutch mechanism, a planetary gear mechanism, or the like may be used as the starter motor. [Explanation of symbols]
[0053] 10 Vehicle drive unit 11 vehicles 12 Engine 13 Starter generator (starter motor) 15 wheels 23 Crankshaft (output shaft) 30 Electric oil pump (electric pump) 35 Electric heater 44 Drive motor 60 Control System 70 processors 71 Main memory (memory) 80 Vehicle drive unit 81 Engine Vx1 Actual viscosity (first actual viscosity) Vx2 Actual viscosity (second actual viscosity) Vt Target viscosity E1 Preheating energy (first energy) Ex2, Ea2, Eb2 Main heating energy (second energy) Da2, Db2 change (difference) Est1 Starting energy (first starting energy) Est2 Starting energy (second starting energy)
Claims
1. A vehicle drive device equipped with an engine, an electric pump provided in the engine for pumping engine oil; an electric heater provided in the engine for warming the engine oil; a starter motor provided in the engine for starting and rotating an output shaft; a control system including a processor and a memory communicatively connected to each other, the control system controlling the electric pump, the electric heater, and the starter motor; and The control system includes: a first step of driving the electric pump before starting the engine and calculating a first actual viscosity of the engine oil based on a load torque of the electric pump; a second step of applying first energy to the electric heater to activate it, driving the electric pump after activating the electric heater and before starting the engine, and calculating a second actual viscosity of the engine oil based on a load torque of the electric pump; a third step of calculating a second energy to be applied to the electric heater based on the second actual viscosity and a target viscosity of the engine oil; a fourth step of applying the second energy to the electric heater to operate it, and then driving the starter motor to start rotating the output shaft; To execute Vehicle drive unit.
2. 2. The vehicle drive system according to claim 1, In the fourth step, the control system After supplying the second energy to operate the electric heater, the electric pump is driven and then the starter motor is driven to start rotating the output shaft. Vehicle drive unit.
3. 2. The vehicle drive system according to claim 1, In the first step, the control system The first actual viscosity is calculated to be higher as the load torque of the electric pump increases. Vehicle drive unit.
4. 2. The vehicle drive system according to claim 1, In the second step, the control system The second actual viscosity is calculated to be higher as the load torque of the electric pump increases. Vehicle drive unit.
5. 2. The vehicle drive system according to claim 1, In the third step, the control system The second energy is calculated to be larger as the difference between the second actual viscosity and the target viscosity increases. Vehicle drive unit.
6. 2. The vehicle drive system according to claim 1, In the third step, the control system calculating a viscosity change characteristic of the engine oil based on the first actual viscosity, the second actual viscosity, and the first energy; calculating the second energy based on the viscosity change characteristic, the second actual viscosity, and the target viscosity; Vehicle drive unit.
7. 2. The vehicle drive system according to claim 1, The control system includes: Calculating a first starting energy consumed by the starter motor when the viscosity of the engine oil is the target viscosity; Calculating a second starting energy consumed by the starter motor when the viscosity of the engine oil is the second actual viscosity; When an engine start condition is satisfied under a circumstance where a sum of the first start-up energy and the second start-up energy is lower than the second start-up energy, the fourth step is executed. Vehicle drive unit.
8. 8. The vehicle drive system according to claim 7, The control system includes: When an engine start condition is satisfied in a situation where the sum of the first start energy and the second start energy exceeds the second start energy, prohibiting execution of the fourth step, and driving the starter motor to start and rotate the output shaft without operating the electric heater; Vehicle drive unit.
9. 8. The vehicle drive system according to claim 7, The control system calculates the first starting energy to be larger as the target viscosity becomes higher, The control system calculates the second starting energy to be larger as the second actual viscosity becomes higher. Vehicle drive unit.
10. 2. The vehicle drive system according to claim 1, a traction motor connected to the wheels; Vehicle drive unit.
Citation Information
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