Driving force estimation device

The driving force estimation device uses sensor data and slip angle corrections to accurately estimate driving force distribution in four-wheel drive vehicles, addressing continuous changes and turning conditions for improved vehicle stability and control.

JP7850006B2Active Publication Date: 2026-04-22SUBARU CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
SUBARU CORP
Filing Date
2022-05-17
Publication Date
2026-04-22

AI Technical Summary

Technical Problem

Existing methods for estimating the driving force in four-wheel drive vehicles are inadequate when mechanisms continuously change the distribution of driving force between front and rear wheels, as they rely on binary decisions about wheel states, failing to account for continuous changes and vehicle turning.

Method used

A driving force estimation device that uses sensors to measure steering angle, yaw rate, and vehicle speed, calculates slip angles and ratios, and corrects driving stiffness based on slip angles to accurately estimate driving force, even during turns, by employing a transfer clutch to adjust torque distribution.

Benefits of technology

Enables precise estimation of driving force distribution between front and rear wheels, improving stability and allowing for real-time adjustments to maintain optimal torque distribution, enhancing vehicle control and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a driving force estimating device that can appropriately estimate driving force.SOLUTION: A driving force estimating device, which estimates driving force in a vehicle 1 for driving front wheels FW and rear wheels RW, is configured to comprise: a free rolling / rotating speed output part that outputs free rolling / rotating speeds of the front wheels and the rear wheels; an actual rotation speed detecting part that detects actual rotation speeds of the front wheels and the rear wheels; a slip rate calculating part that calculates slip rates of the front wheels and of the rear wheels from the free rolling / rotating speeds and the actual rotation speeds; a driving force estimating part that estimates driving force for the front wheels and the rear wheels using driving stiffness and the slip rates of the front wheels and the rear wheels; a slip angle output part that outputs slip angles of the front wheels and the rear wheels; and a stiffness correcting part that corrects driving stiffness that is used in estimating driving force in accordance with the slip angles.SELECTED DRAWING: Figure 11
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Description

[Technical Field]

[0001] The present invention relates to a device for estimating the driving force of a vehicle that drives the front and rear wheels. [Background technology]

[0002] As a prior art relating to the estimation of driving force in four-wheel drive (AWD) vehicles, for example, Patent Document 1 describes how to accurately detect two-wheel drive and four-wheel drive states without using sensors, etc., by first detecting the wheel speed of the wheel to which driving torque is transmitted when in a two-wheel drive state when the wheel speed of the wheel to which driving torque is transmitted when in a two-wheel drive state is higher than the wheel speed of the wheel to which driving torque is not transmitted when in a two-wheel drive state, and by second detecting the wheel speed of the wheel to which driving torque is transmitted when in a two-wheel drive state when the wheel speed of the wheel to which driving torque is transmitted when in a two-wheel drive state is lower than the wheel speed of the wheel to which driving torque is not transmitted when in a two-wheel drive state when this condition has not continued for a predetermined time, and determining that the state is four-wheel drive in all other cases. Patent Document 2 describes how, in order to improve the accuracy of detecting the actual driving state, the actual driving state is determined based on the deviation between the estimated yaw rate value based on the set driving state and the actual yaw rate value when lateral motion occurs, such as when the vehicle is turning. Patent Document 3 describes a method for improving driving stability during vehicle turns, which involves calculating the turning radius of the vehicle from the steering angle and vehicle speed, calculating the sideslip angles of the front and rear wheels from the yaw rate, calculating the target moving speed of each wheel from the turning radius and sideslip angles of the front and rear wheels, calculating the slip ratio difference of each wheel from the target moving speed of each wheel and each wheel speed, and distributing torque to each wheel by applying braking torque to each wheel based on the slip ratio difference. Patent Document 4 describes a torque distribution status display device that includes a torque distribution status display screen, with level indicators provided for the left and right front wheels which are the main drive wheels and the left and right rear wheels which are the secondary drive wheels, and the torque distribution status to the front wheels and rear wheels is displayed by the level represented by the number of illuminated segments in each level indicator. [Prior art documents] [Patent Documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 8-230647 [Patent Document 2] Japanese Patent Publication No. 2003-118420 [Patent Document 3] Japanese Patent Application Publication No. 5-319124 [Patent Document 4] Japanese Patent Publication No. 2020-121707 [Overview of the project] [Problems that the invention aims to solve]

[0004] Patent Document 1 describes a method for determining whether a wheel is in a driving state based on the difference in wheel speeds of each wheel, and Patent Document 2 describes a method for determining whether the vehicle's turning state (yaw rate) is in accordance with the driving state (switching between two-wheel drive and four-wheel drive) in order to deal with changes in the difference in wheel speed due to the turning of the vehicle and vibrations in wheel speed due to interference in the drive system. However, some four-wheel drive vehicles have mechanisms and controls that continuously change the distribution of driving force to the front and rear wheels, including the state of two-wheel drive. In such cases, a binary decision of whether each wheel is in a driving state or not is insufficient as a function for estimating the driving state. In view of the above-mentioned problems, the object of the present invention is to provide a drive state estimation device capable of appropriately estimating the drive state. [Means for solving the problem]

[0005] To solve the above-mentioned problems, the present invention provides a driving force estimation device for estimating the driving force of the front wheels and the driving force of the rear wheels in a vehicle that drives the front wheels and the rear wheels, A sensor that measures the driving conditions of the vehicle, including the steering angle and the yaw rate of the vehicle,A free-rolling rotation speed output unit outputs the free-rolling rotation speed, which is the rotation speed of the front and rear wheels in a free-rolling state where no braking or driving force is generated, and a detection unit detects the actual rotation speed, which is the actual rotation speed of the front and rear wheels. The vehicle speed is output based on the actual rotational speed. The actual rotational speed detection unit, A slip angle output unit that outputs the slip angles of the front and rear wheels based on vehicle-specific constants including the distance between the front wheel and the vehicle's center of gravity, the driving state output from the sensor, and the vehicle speed output from the actual rotational speed detection unit; and a free-rolling rotational speed output unit that outputs the free-rolling rotational speed, which is the rotational speed of the front and rear wheels in a free-rolling state where no braking or driving force is generated, wherein the free-rolling rotational speed output unit estimates the ground speed of the contact point between the front wheel and the road surface and the ground speed of the contact point between the rear wheel and the road surface based on vehicle-specific constants, the driving state output from the sensor, and the vehicle speed output from the actual rotational speed detection unit, and estimates the free-rolling rotational speed based on the product of the cosine of the slip angles of the front and rear wheels and the ground speed of the front and rear wheels. A slip ratio calculation unit calculates the slip ratio of the front wheel and the rear wheel from the free rotation speed and the actual rotation speed. ,before The slip angle output unit outputs the slip angle increase in response Before Note Front wheels and the rear wheels Driving stiffness or is Raking stiffness So that it becomes smaller The stiffness correction unit that performs the correction and a driving force estimation unit that estimates the driving force of the front and rear wheels based on the driving stiffness or braking stiffness of the front and rear wheels corrected by the stiffness correction unit and the slip ratio, It is characterized by having the following features. According to this method, by calculating the slip ratio of the front and rear wheels based on the free rotational speed and actual rotational speed of the front and rear wheels, it is possible to appropriately calculate the slip ratio and appropriately estimate the driving force even in a four-wheel drive vehicle that does not have driven wheels to which driving force is not transmitted and for which it is difficult to obtain a reference vehicle speed. Furthermore, by correcting the driving stiffness or braking stiffness used to estimate the driving force according to the slip angle of the front and rear wheels, the driving force can be appropriately estimated even when the vehicle is turning.

[0006] In the present invention, the vehicle has a front-wheel drive force transmission mechanism that transmits driving force to the front wheels, a rear-wheel drive force transmission mechanism that transmits driving force to the rear wheels, and a transfer clutch that constrains the rotational speed difference between the front-wheel drive force transmission mechanism and the rear-wheel drive force transmission mechanism, and is equipped with a transfer torque estimation unit that estimates the transmission torque of the transfer clutch, and the drive force estimation unit is, From the aforementioned driving force of the front wheel The transfer torque estimated by the transfer torque estimation unit Subtracting the equivalent driving force value of the front wheel Correct the estimated value of the driving force. The estimated value of the driving force of the rear wheel is corrected by adding the value of the transmission torque converted to driving force estimated by the transfer torque estimation unit to the driving force of the rear wheel. This configuration can be implemented. According to this method, the accuracy of the estimated driving force can be improved by correcting the estimated driving force value according to the lock / slip state of the transfer clutch.

[0007] In the present invention, the transfer torque estimation unit uses the difference between the actual rotational speeds of the front wheel and the rear wheel, and the difference between the free rolling rotational speeds of the front wheel and the rear wheel. The difference is divided by the difference in the actual rotational speeds of the front wheel and the rear wheel. Based Estimating the lock ratio or slip ratio of the transfer clutch, and if the slip ratio of the front wheel is greater than the slip ratio of the rear wheel, estimating the driving force equivalent value of the transmitted torque based on the product of the lock ratio or slip ratio of the transfer clutch and the driving force of the rear wheel assuming the transfer clutch is locked, and if the slip ratio of the front wheel is less than or equal to the slip ratio of the rear wheel, The aforementioned transmission torque The aforementioned driving force equivalent value of Zero and It can be configured to be estimated. According to this, the lock / slip state of the transfer clutch can be properly determined based on easily detectable parameters.

[0009] In the present invention, the system can be configured to include at least one of the following: a drive force distribution control modification unit that modifies the drive force distribution control between the front wheel and the rear wheel based on the drive force estimated by the drive force estimation unit; and a drive force information output unit that presents the drive force estimated by the drive force estimation unit to the occupant. According to this, if the estimated front and rear wheel torque distribution deviates from the target value in torque distribution control, the torque distribution can be brought closer to the ideal state by correcting the instruction values ​​in torque distribution control. Furthermore, by presenting the occupants with information regarding the estimated driving force, it is possible to encourage them to perform appropriate driving operations and assist in driving the vehicle in a more stable manner. [Effects of the Invention]

[0010] As described above, the present invention provides a drive state estimation device capable of appropriately estimating the drive state. [Brief explanation of the drawing]

[0011] [Figure 1] This figure schematically shows the configuration of the drive system of a vehicle having an embodiment of the drive force estimation device to which the present invention is applied. [Figure 2] This diagram shows the relationship between tire speed, road surface speed, and slip angle. [Figure 3] This figure shows an example of the correlation between tire slip ratio and braking / driving force. [Figure 4] This figure shows a typical μ-s characteristic obtained by dividing the braking / driving force by the ground load. [Figure 5] This figure shows an example of estimating braking stiffness (driving stiffness) during cornering using a tire model, specifically the case where road surface μ = 1. [Figure 6] This figure shows an example of estimating braking stiffness (driving stiffness) during cornering using a tire model, with a road surface μ = 0.65. [Figure 7] This diagram schematically illustrates the state when a vehicle exhibits pitching behavior in the nose-up direction due to acceleration. [Figure 8] This figure shows an example of an equivalent two-wheeled model of a four-wheeled vehicle. [Figure 9] This figure shows the correlation between driving stiffness divided by tire contact load and tire slip angle. [Figure 10] This figure shows an example of the measurement results for the actual rotational speed difference between the front and rear axes of the transfer clutch. [Figure 11] This is a flowchart showing the driving force estimation process in the embodiment. [Figure 12] This figure shows an example of a display image showing the drive status of each wheel in a display device. [Figure 13] This figure shows an example of the driving force estimation result in the driving force estimation device of the embodiment. [Modes for carrying out the invention]

[0012] The following describes embodiments of a driving force estimation device to which the present invention is applied. The driving force estimation device of the embodiment estimates the driving force of each wheel in a four-wheel drive vehicle that drives the left and right front wheels and the left and right rear wheels and can continuously change the driving force distribution between the front and rear wheels. Figure 1 is a schematic diagram showing the configuration of the drive system of a vehicle equipped with the driving force estimation device of the embodiment.

[0013] Vehicle 1 consists of a pair of left and right front wheels FW and rear wheels RW, an engine 10, a transmission 20, a front wheel drive force transmission mechanism 30, and a transfer case. clutch It includes a rear-wheel drive force transmission mechanism 50, an engine control unit 110, a transmission control unit 120, a drive force distribution control unit 130, a transfer clutch drive unit 140, a display device 150, and the like.

[0014] Engine 10 is the power source for the vehicle's propulsion. For example, a four-stroke gasoline engine can be used as engine 10. Furthermore, the power source for the vehicle 1 is not limited to the engine 10, but may also be an engine-electric hybrid system having the engine 10 and a motor generator, or a configuration having only a motor generator.

[0015] The transmission 20 includes a transmission mechanism that reduces or increases the rotational speed of the output shaft of the engine 10 by a predetermined gear ratio. The transmission mechanism can be configured to include, for example, a chain-type or belt-type CVT variator, or multiple planetary gear sets.

[0016] A torque converter 21 is provided between the engine 10 and the transmission 20. The torque converter 21 is a fluid coupling that functions as a starting device that enables the vehicle to start from zero speed. The torque converter 21 is equipped with a lock-up clutch that restrains the relative rotation between the input section (impeller) and the output section (turbine) under predetermined conditions.

[0017] The front-wheel drive force transmission mechanism 30 is a power transmission mechanism that transmits the rotation of the output shaft of the transmission 20 to the left and right front wheels FW. The front wheel drive force transmission mechanism 30 includes a drive gear 31, a driven gear 32, a pinion shaft 33, a front differential 34, a front drive shaft 35, and the like.

[0018] The drive gear 31 and driven gear 32 are a pair of helical gears mounted on parallel shafts. The drive gear 31 is directly connected to the output shaft of the transmission 20. The driven gear 32 is mounted on the pinion shaft 33. The pinion shaft 33 is a rotating shaft that transmits torque, which is transmitted from the transmission 20 via the drive gear 31 and driven gear 32, to the front differential 34. The pinion shaft 33 is equipped with a pinion gear that transmits driving force to a ring gear (not shown) located on the outer circumference of the front differential 34. The pinion gear on the pinion shaft 33 and the ring gear on the front differential 34 function as the final reduction gear.

[0019] The front differential 34 is a differential mechanism that transmits the driving force transmitted from the pinion shaft 33 to the left and right front drive shafts 35, and also absorbs the difference in rotational speed between the left and right front wheels FW. The front drive shaft 35 is a rotating shaft that transmits power from the front differential 34 to the left and right front wheels FW. The front drive shaft 35 is equipped with a universal joint and the like to change the direction of rotation in order to follow the suspension stroke and the steering of the front wheels FW.

[0020] The transfer clutch 40 is a fastening element provided between the output shaft of the transmission 20 and the front end of the propeller shaft 51 of the rear wheel drive force transmission mechanism 50. The transfer clutch 40 has a wet multi-plate clutch, such as a hydraulic or electromagnetic type, which can change the torque transmitted from the output shaft of the transmission 20 to the propeller shaft 51 by adjusting the restraining force. The transfer clutch 40 can continuously change the restraining force between the front shaft connected to the output shaft of the transmission 20 and the rear shaft connected to the front end of the propeller shaft 51, from a locked state (direct connection state) to a free state (release state) in which no torque is transmitted except for the unavoidably occurring friction.

[0021] Drive gear 31 and driven gear of the front wheel drive force transmission mechanism 30 32 The pinion shaft 33, front differential 34, and transfer clutch 40 are housed inside a transmission case (not shown), which is a common housing with the transmission 20.

[0022] The rear-wheel drive force transmission mechanism 50 is a power transmission mechanism that transmits the rotation of the output shaft of the transmission 20, which is transmitted via the transfer clutch 40, to the left and right rear wheels RW. The rear-wheel drive force transmission mechanism 50 includes a propeller shaft 51, a rear differential 52, a rear drive shaft 53, and the like.

[0023] The propeller shaft 51 is a rotating shaft that transmits driving force from the rear shaft of the transfer clutch 40 to the rear differential 52. The rear differential 52 is a differential mechanism that transmits the driving force transmitted from the propeller shaft 51 to the left and right rear drive shafts 53, and also absorbs the difference in rotational speed between the left and right rear wheels RW. The rear differential 52 is equipped with a final reduction device that reduces the rotational speed of the propeller shaft 51 by a predetermined final reduction ratio and transmits it to the rear drive shaft 53. The rear drive shaft 53 is a rotating shaft that transmits power from the rear differential 52 to the left and right rear wheels RW. The rear drive shaft 53 is equipped with a universal joint or the like to change its direction of rotation in order to follow the suspension stroke.

[0024] The engine control unit 110 is a device that comprehensively controls the engine 10 and its auxiliary equipment. The engine control unit 110 sets the required torque according to, for example, the amount of accelerator operation by the driver, and controls the output of the engine 10 so that the torque actually generated by the engine 10 (actual torque) matches the required torque. The engine control unit 110 transmits an estimated value of the actual torque of the engine 10 (which usually matches the required torque) to the drive force distribution control unit 130.

[0025] The transmission control unit 120 is a device that comprehensively controls the transmission 20 and its auxiliary components. The transmission control unit 120 has the function of controlling the gear ratio in the transmission 20 and the engagement force of the lock-up clutch in the torque converter 21. The transmission control unit 120 transmits information regarding the gear ratio 20 and, if the torque converter 21 is generating a torque amplification effect, the torque ratio to the drive force distribution control unit 130.

[0026] The drive force distribution control unit 130 is a device that controls the drive force distribution between the front and rear axles by controlling the engagement force of the transfer clutch 40 via the transfer clutch drive unit 140. The drive force distribution control unit 130 sets a target value for the front-to-rear drive force distribution according to the current driving state of the vehicle 1 (for example, acceleration / deceleration state, turning state, etc.), and controls the engagement force of the transfer clutch 40 according to this target value. Furthermore, the drive force distribution control unit 130 functions as a drive force estimation device of this embodiment, which estimates the current drive force of the front wheels FW and rear wheels RW in real time. Furthermore, the drive force distribution control unit 130 is a free rolling of the present invention rotate It functions as a speed output unit, slip ratio calculation unit, driving force estimation unit, slip angle output unit, driving stiffness (braking stiffness) correction unit, and driving force distribution control modification unit. These functions will be explained in detail later.

[0027] The drive force distribution control unit 130 is connected to vehicle speed sensors 131 and 132, steering angle sensor 133, acceleration sensor 134, yaw rate sensor 135, and the like. Vehicle speed sensors 131 and 132 are sensors that output vehicle speed signals corresponding to the rotational speed (angular velocity) of the front wheels FW and rear wheels RW, respectively. The vehicle speed sensors 131 and 132 are provided on the hub portion that rotatably supports the front wheel FW and rear wheel RW. Vehicle speed sensors 131 and 132 are provided on the left and right front wheels (FW) and rear wheels (RW), respectively.

[0028] The steering angle sensor 133 detects the angle position (steering wheel angle θ) of the steering wheel used by the occupant (driver) to steer. H This is a sensor that detects ). The drive force distribution control unit 130 controls the steering angle θ detected by the steering angle sensor 133. H Furthermore, the steering angle of the front wheels (FW) can be calculated based on the gear ratio (constant) n of the steering gearbox, which is not shown in the diagram. The acceleration sensor 134 is a sensor that detects acceleration acting on the vehicle body in the longitudinal direction and the lateral direction (vehicle width direction). The yaw rate sensor 135 is a sensor that detects the yaw rate, which is the rotational speed of the vehicle body around its vertical axis.

[0029] The engine control unit 110, the transmission control unit 120, and the drive force distribution control unit 130 can be configured as a microcomputer having, for example, an information processing unit such as a CPU, a storage unit such as RAM or ROM, an input / output interface, and a bus connecting these. The engine control unit 110, the transmission control unit 120, and the drive force distribution control unit 130 are connected to each other via an in-vehicle LAN such as a CAN communication system, or directly, in a way that enables communication.

[0030] The transfer clutch drive unit 140 is a device that controls the fastening force of the transfer clutch 40. The transfer clutch drive unit 140 has a function to adjust the hydraulic pressure that is the source of the fastening force in the transfer clutch 40, for example, when the transfer clutch 40 is hydraulic. The transfer clutch drive unit 140 is equipped with a pressure regulating valve that adjusts the hydraulic pressure supplied from an oil pump (not shown) located in the transmission 20 and supplies it to the transfer clutch 40. The transfer clutch drive unit 140 controls the restraining force (transmission torque) of the transfer clutch 40 by controlling the hydraulic pressure of the transfer clutch 40 according to the instruction value from the drive force distribution control unit 130.

[0031] The display device 150 is an image display device that displays to the occupants the estimated driving force of the front wheels FW and rear wheels RW calculated by the driving force distribution control unit 130. The display device 150 can be configured to include, for example, an LCD or organic EL display provided on the instrument panel, or a head-up display (HUD) that projects images onto the front windshield glass provided in front of the occupant. The specific content of the display on the display device 150 will be explained in detail later.

[0032] In the vehicle 1 of this embodiment, the front wheel FW, which is directly connected to the output shaft of the transmission 20, is the main drive wheel, and the rear wheel RW, which receives driving force in accordance with the restraining force of the transfer clutch 40, is the secondary drive wheel. In this embodiment, the drive force distribution control unit 130 estimates the driving force of the front wheels FW and rear wheels RW while the vehicle is in motion, including during turns. When the transfer clutch 40 is locked (i.e., there is no difference in rotation between the front wheel drive force transmission mechanism 30 and the rear wheel drive force transmission mechanism 50), the driving force of the front wheel FW and rear wheel RW is determined by the difference in tire slip ratio at the same rotational speed (rotational speed) of the front wheel FW and rear wheel RW, and by the braking force characteristics (driving stiffness / braking stiffness).

[0033] The front axle driving force (the sum of the driving forces of the left and right front wheels FW) and the rear axle driving force (the sum of the driving forces of the left and right rear wheels RW) are represented by the following equations (1) and (2). K xf : Braking stiffness of the front wheels K xr : Braking stiffness of the rear wheels λ f : Slip ratio of the front wheels λ r : Slip ratio of the rear wheels When it is set as Front axle driving force = K xf ×λ f (with sign) =(Transmission output torque × Final reduction ratio / Tire dynamic load radius (average of front and rear wheels)) ×K xf / (K xf +K xr ) +K xf ×λ f (with sign) ± Error correction at the slip ratio zero point (Equation 1) Rear axle driving force = K xr ×λ r (with sign) =(Transmission output torque × Final reduction ratio / Tire dynamic load radius (average of front and rear wheels)) ×K xr / (K xf +K xr ) +K xr ×λ r (with sign) ± Error correction at the slip ratio zero point (Equation 2)

[0034] In the calculation of the driving force, in order to offset accurately when the vehicle speed (the zero point of the slip ratio λ) is not obtained accurately, as shown in the second line and below of each equation, it is calculated by the offset (plus or minus) from the total driving force (the average value of the driving forces of the front and rear wheels). Also, when the vehicle is in a turning state, according to the slip angles of the tires of the front wheels FW and the rear wheels RW, the driving stiffness (braking stiffness) K xf ,K xr is corrected. This point will be explained in more detail later.

[0035] Furthermore, if TRFΔVω is defined as the comparison value between the front-to-rear rotational difference calculated from the output values ​​of vehicle speed sensors 131 and 132 and the wheel speed difference assumed during free rotation when the braking and driving forces are zero, then TRFΔVω is expressed by the following equation 3. TRFΔVω =(Difference in peripheral speed of front and rear axles (actual value) - free rotation) rotate Speed ​​difference (estimated value) ) / Peripheral speed difference between front and rear axes (actual value) )( Equation 3) From this TRFΔVω, it is possible to estimate the slip of the front wheel FW (main drive wheel), i.e., the slip of the transfer clutch 40, which is greater than when the front and rear wheels are freely rotating, and by correcting the braking torque to the rear wheel RW, which is the secondary drive shaft, it is possible to continuously estimate the driving force without switching calculation formulas.

[0036] The following provides a detailed explanation of the specific methods for estimating the driving force. The definition of the tire slip ratio λ is explained below. The slip ratio λ is expressed by the following equation 4.

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[0037] Average speed V within the contact patch of the tread base B This is expressed by equation 5 below. V B =r·ω (Equation 5) r: Tire rolling radius ω: rotational angular velocity

[0038] The braking and driving force of a tire is expressed by the following equation 6. F=K x ·λ (Equation 6) F: Braking force (or driving force) of the tires K x : Tire braking stiffness (or driving stiffness) λ: slip ratio Figure 3 shows an example of the correlation between tire slip ratio and braking / driving force. In Figure 3, the horizontal axis represents the slip ratio, and the vertical axis represents the braking force or driving force. In Figure 3, in the region where the slip ratio is relatively small, the braking and driving force increases almost proportionally to the slip ratio. The slope in this region is the braking stiffness K. x This is the result.

[0039] The tire's contact width w and contact length l are expressed by the following equations 7 and 8.

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[0040] Considering the tire structure model, braking stiffness (which is roughly the same as driving stiffness) is proportional to the square of the contact length multiplied by the contact width, so 1% of the contact load 1 / 4It will be proportional to the exponent (which can be treated as the first power without any particular problem). Figure 4 shows a typical μ-s characteristic obtained by dividing the braking / driving force by the ground load. The horizontal axis represents the slip ratio, and the vertical axis represents the coefficient of friction. Thus, braking stiffness (driving stiffness) is related to ground contact load. of It can be seen that it remains almost constant regardless of the changes.

[0041] Figures 5 and 6 show examples of calculations of braking stiffness (driving stiffness) during cornering using a tire model. Figure 5 shows an example with a road surface μ = 1.0 (corresponding to a dry paved road surface), and Figure 6 shows an example with a road surface μ = 0.65 (corresponding to a wet paved road surface). As can be seen from these figures, the braking stiffness (driving stiffness) Kx (the gradient of braking and driving force with respect to slip ratio at slip ratio λ=0) at a tire slip angle α=0 is determined by the characteristics of the tire structure and does not depend on the road surface μ, but it decreases as the tire slip angle α increases with cornering. The tire slip angle α can be calculated from the vehicle body slip angle β estimated by the vehicle model.

[0042] The total driving force of the vehicle, FxEG, is expressed by the following equation 9. Total driving force FxEG = (Engine output torque - drag torque - transmission hydraulic pump loss) × Torque converter torque ratio × Transmission gear ratio (Equation 9) The engine output torque can be estimated from the operating state of engine 10. The drag torque (friction torque) is a constant. The transmission hydraulic pump loss, torque converter torque ratio, and transmission gear ratio can be obtained from the transmission control unit 120.

[0043] The peripheral speeds Vwf and Vwr of the front wheel FW and rear wheel RW are expressed by the following equation 10. Vwf, Vwr = Average wheel speed of left and right wheels × Tire diameter of front and rear wheels (actual value) / Tire diameter of front and rear wheels (set value) (Equation 10) Here, the set value for the tire diameter refers to the tire diameter used when calculating the vehicle speed based on the outputs of the vehicle speed sensors 131 and 132.

[0044] V is the value obtained by converting the rotational speed of the front and rear axles of the transfer clutch 40 into the peripheral speed of the tires. tf ,V tr This is expressed by the following equation 11. V tf ,V tr = Average wheel speed of left and right wheels × Average tire diameter (actual value) of front and rear wheels / Tire diameter (set value) of front and rear wheels (Formula 11)

[0045] The vehicle speed V, which is the ground speed of vehicle 1, is the average of the four wheel speeds detected by the vehicle speed sensor. Figure 7 schematically illustrates the state when a vehicle exhibits pitching behavior in the nose-up direction due to acceleration. During acceleration, a pitching moment in the nose-up direction acts around the center of gravity (CG), while the axle load of the front wheels (FW) decreases and the axle load of the rear wheels (RW) increases.

[0046] ΔF of longitudinal load transfer due to acceleration and deceleration z It can be expressed by the following formula: ΔF z = Vehicle mass × longitudinal acceleration × center of gravity height / wheelbase (Equation 12) Vehicle mass, center of gravity height, and wheelbase are vehicle-specific constants. Longitudinal acceleration can be detected using a longitudinal acceleration sensor. Front and rear axle ground contact load F zf F zrThis is the reference load (ground load when stationary), plus the aforementioned longitudinal load transfer ΔF. z The result is obtained by adding or subtracting , and can be expressed by the following formula. F zf =F zf0 -ΔF zx (Formula 13) F zr =F zr0 +ΔF zx (Formula 14) F zf Front wheel ground contact load F zr : Rear wheel ground contact load F zf0 : Front wheel ground contact load when stationary F zr0 : Ground contact load of the rear wheels when stationary ΔF zx : Load transfer amount due to acceleration

[0047] Load transfer amount ΔF due to acceleration zx This is expressed by the following equation 15.

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[0048] Figure 8 shows an example of an equivalent two-wheeled model of a four-wheeled vehicle. The vehicle body slip angle β is expressed by the following equation 16. Vehicle body slip angle β = ((1-(vehicle mass m / (2×wheelbase l))×(distance between front axle and center of gravity l)) f / (distance between rear axle and center of gravity l r ×Rear wheel cornering power Kr)) × (Vehicle speed V) 2 ))) (1 + Stability Factor A × Vehicle Speed ​​V) 2 )×(distance between rear axle and center of gravity l r (Wheelbase l) × (Handle angle θ) H / Steering gear ratio n) (Equation 16) Vehicle mass m, distance l between front axle and center of gravity f , distance between rear axle and center of gravity l r , rear wheel cornering power K r Stability factor A, wheelbase l, and steering gear ratio n are vehicle-specific constants. Vehicle speed V is measured by the vehicle speed sensor, and steering angle θ is measured by the steering angle sensor. H This can be obtained from the rudder angle sensor 133.

[0049] The vehicle body slip angle β can be expressed as shown in Equation 17 below.

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[0050] Ground speed V at the front and rear axles (center position of the left and right wheels) f ,V r This is expressed by the following equations 18 and 19. Ground speed V f ,V r The distance between the front and rear axles and the center of gravity (l) is relative to the vehicle speed V. f or l r This value is obtained by adding or subtracting ) × vehicle slip angle β × yaw rate γ.

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[0051] Front and rear wheel slip angle α f ,α r This is expressed by the following equations 20 and 21. α f = Handle angle θ H / Steering gear ratio n - Vehicle slip angle β - Distance between front axle and center of gravity l fYaw rate γ / vehicle speed V (Equation 20) α r = - vehicle body slip angle β - distance between the rear axle and the center of gravity l r Yaw rate γ / vehicle speed V (Equation 21) Front wheel steering angle δ f is expressed by the following Equation 22. δ f = θ H / n (Equation 22)

[0052] Slip angles α of the front and rear wheels f ,α r can be expressed by the following Equations 23 and 24.

Number

[0055] Driving stiffness (substantially equal to braking stiffness) K of the front wheel FW and rear wheel RW xf , K xy is expressed by the following formula K xf , K xr = MAX (Driving stiffness / reference value of ground contact load (constant: when α = 0) × Ground contact load F of the front and rear axles zf ,F zr × cos(rBx1 (model constant) × Atan(tK xf ,tK xr ))), minimum value (constant)) tKxf,tKxr) = rBx1 (MF constant) × cos(Atan(rBx2 (model constant) × slip ratio (constant: 0.01))) × Slip angle α of the front and rear wheels f ,α r (Equation 29)[[ID=​​​​​​​​​​​​​​​​​×Slip ratio of front wheels FW and rear wheels RW λ f ,λ r ×100 (Formula 30) Here, the driving stiffness K of the front wheels FW and rear wheels RW. xf ,K xr is, tire Nosu It varies depending on the slip angle. Figure 9 shows the correlation between the value obtained by dividing driving stiffness by the tire contact load and the tire slip angle. The horizontal axis represents the tire slip angle α. f or α r The graph shows the driving stiffness K on the vertical axis. xf or K xr This shows the value obtained by dividing by the ground load Fz. As shown in Figure 9, when the ground load Fz is the same (when the denominator on the vertical axis is constant), the driving stiffness K xf ,K xr This is the tire slip angle α f ,α r It decreases in proportion to the increase. Therefore, when calculating the driving force, the tire slip angle α obtained from the vehicle model is used. f ,α r Driving stiffness K xf ,K xr It is necessary to use this.

[0057] Assuming that the transfer clutch 40 is locked, the front and rear axle driving forces FxLf and FxLr are expressed by the following equation 31. FxLf, FxLr = (Total driving force distributed to the front and rear axles based on the ratio of driving stiffness + the aforementioned front and rear axle driving forces) ((Total driving force FxEG × final reduction ratio / front and rear tire diameters (actual values)) -(Front axle driving force FxDf + Rear axle driving force FxDr)) × Front and rear wheel driving stiffness K xf ,K xr (Front wheel driving stiffness K) xf+Rear wheel driving stiffness K xr ) + Front and rear axle driving forces FxDf, FxDr (Equation 31)

[0058] The lock / slip ratio TRFΔVω of the transfer clutch 40 is expressed by the following equation 32. TRFΔVω = MIN(MAX(((Front shaft rotation speed V tf -Rear shaft rotation speed V tr ) -( Front wheels free to rotate rotate speed V f_free -Rear wheel free rolling rotate speed V r_free ) ) / MAX (ABS (Front axle rotation speed V tf - Rear axle rotation speed, lower limit (zero division prevention constant), Lower limit: -1), Upper limit: 1 (Equation 32)

[0059] Figure 10 shows an example of the measurement results of the actual rotational speed difference between the front and rear axes of the transfer clutch. The horizontal axis represents time, and the vertical axis represents the difference in rotational speed between the front axle (front wheel drive force transmission mechanism 30 side) and the rear axle (rear wheel drive force transmission mechanism 50 side) of the transfer clutch 40. This value represents the actual difference in rotational speed between the front and rear wheels. Thus, in actual vehicles, significant vibrations are observed in the differential rotation of the front and rear axles of the transfer clutch 40. In the above formula, by using the difference in actual wheel rotational speeds, which has the same vibration as the numerator, as the denominator of the division, the amplitude of the calculated value of TRFΔVω can be suppressed even if there is significant vibration in the difference in rotation between the front and rear axles.

[0060] TRFΔVω exhibits an average oscillation of 0 to ±1 when the transfer clutch 40 is locked. Here, if TRFΔVω is a positive value, the difference in peripheral speed between the front and rear axes is due to free rotation. rotateThis indicates that the speed difference is greater than the power distribution, suggesting that the power distribution is biased towards the front axle (similar to a front-wheel-drive (FWD) vehicle). Furthermore, if TRFΔVω is a negative value, the difference in peripheral speed between the front and rear axles is due to free rotation. rotate This indicates that the speed difference is less than the threshold, suggesting that the power distribution is heavily weighted towards the rear axle (similar to a rear-wheel-drive (RWD) vehicle). Furthermore, even when the transfer clutch 40 is disengaged and the total driving force is 0, the vibration will be ±1 from an average of 0. However, as the total driving force increases, the average vibration value will be offset in the positive direction if the front wheels are the primary drive wheels, and in the negative direction if the rear wheels are the primary drive wheels. 。

[0061] The transfer torque (equivalent to driving force) Ftrf is a value obtained by subtracting the transmission force (driving force) of the transfer clutch 40 from the braking force of the rear axle, according to the degree of positive lock / slip ratio TRFΔVω mentioned above. Front wheel slip ratio λ f >Rear wheel slip ratio λ r In this case, the transfer torque Ftrf is expressed by the following equation 33. Ftrf= - Transfer clutch 40 lock / slip ratio TRFΔVω ×Rear-wheel drive force FxLr assuming the transfer clutch 40 is locked (Formula 33) In addition, in all other cases, Ftrf = 0.

[0062] The front axle drive force FxDf, considering the locked or slipped state of the transfer clutch 40, is the value obtained by subtracting the transfer torque (drive force equivalent value) Ftrf from the front axle drive force FxLf, assuming that the transfer clutch 40 is locked. The rear axle drive force FxDr, considering the locked or slipped state of the transfer clutch 40, is the rear axle drive force FxLr (assuming the transfer clutch 40 is locked) plus the transfer torque (drive force equivalent value) Ftrf.

[0063] Figure 11 is a flowchart showing the driving force estimation process in the embodiment. The following explains each step in order. <Step S01: Obtain each parameter> The drive force distribution control unit 130 acquires values ​​other than constants from each sensor or from other units via communication, which are among the parameters necessary for the drive force estimation described above. Then, proceed to step S02.

[0064] <Step S02: Total driving force calculation> The drive force distribution control unit 130 calculates the total drive force FxEG of the front wheels FW and rear wheels RW using the equation 9 described above. Then, proceed to step S03.

[0065] <Step S03: Calculation of front and rear wheel ground contact load> The drive force distribution control unit 130 uses the above-described equations 13 to 15 to determine the ground contact load F of the front wheels FW and rear wheels RW. zf ,F zr Perform the calculation. Then proceed to step S04.

[0066] <Step S04: Vehicle slip angle calculation> The drive force distribution control unit 130 calculates the vehicle body slip angle β using the above-described equations 16 and 17. Then, proceed to step S05.

[0067] <Step S05: Calculation of front and rear wheel ground speed> The drive force distribution control unit 130 uses the above-described equations 18 and 19 to determine the ground speed V of the front wheels FW and rear wheels RW. f ,V r Calculate. Then, proceed to step S06.

[0068] <Step S06: Front and rear tires Yasu Angle calculation > The drive force distribution control unit 130 uses the above-described equations 23 and 24 to control the slip of the front wheels FW and rear wheels RW during turns, etc. Angular α f ,α r Calculate. Then proceed to step S07.

[0069] <Step S07: Front and rear wheels rotate freely> rotate Speed ​​calculation> The drive force distribution control unit 130 uses the above-described equations 25 and 26 to control the free rotation of the front wheels FW and rear wheels RW. rotate speed V f_free , V r_free Calculate. Then proceed to step S08.

[0070] <Step S08: Calculation of front and rear wheel slip ratio> The drive force distribution control unit 130 uses the above-described equations 27 and 28 to determine the slip ratio λ(λ) of the front wheels FW and rear wheels RW. f ,λ r ) is calculated. Then, proceed to step S09.

[0071] <Step S09: Front and rear tire driving stiffness calculation> The drive force distribution control unit 130 uses the above-described equation 29 to determine the driving stiffness K of the front wheels FW and rear wheels RW. xf , K xr Perform the calculation. Then proceed to step S10.

[0072] <Step S10: Front and rear wheel drive force calculation> The drive force distribution control unit 130 uses the above-described equation 30 to calculate the drive forces FxDf and FxDr of the front wheels FW and rear wheels RW, assuming that the transfer clutch 40 is in the locked state. The driving stiffness K used in the calculation at this time xf ,K xr This is the slip angle α of the front wheel FW and rear wheel RW, which was determined in step S06. f ,α rUse the corrected value accordingly. Then proceed to step S11.

[0073] <Step S11: Transfer clutch slip ratio calculation> The drive force distribution control unit 130 calculates the lock / slip ratio TRFΔVω of the transfer clutch 40 using the equation 32 described above. Then proceed to step S12.

[0074] <Step S12: Comparison of slip ratio between main drive wheel and secondary drive wheel> The drive force distribution control unit 130 controls the slip ratio λ of the front wheels FW, which are the main drive wheels. f And the slip ratio λ of the rear wheel RW, which is the secondary drive wheel. r The two values ​​are compared, and if the former is larger than the latter, the system proceeds to step S13 assuming that the transfer clutch 40 is in a slipping state; otherwise, the system proceeds to step S15 assuming that the transfer clutch 40 is in a locked state.

[0075] <Step S13: Transfer Torque Calculation> The drive force distribution control unit 130 calculates the transfer torque Ftrf using the equation 33 described above. Then proceed to step S14.

[0076] <Step S14: Front and rear drive force correction calculation> The drive force distribution control unit 130 subtracts the transfer torque (drive force equivalent value) Ftrf obtained in step S13 from the drive force FxDf of the front wheels FW obtained in step S10. Furthermore, the transfer torque Ftrf obtained in step S13 is added to the rear wheel RW driving force FxDr obtained in step S10. Then, proceed to step S15.

[0077] <Step S15: Four-wheel drive force distribution correction> The drive force distribution control unit 130 compares the actual front-to-rear drive force distribution ratio, which is the ratio of the drive forces FxDf and FxDr of the front wheels FW and rear wheels RW (or the corrected value if correction has been performed in step S14), with the target front-to-rear drive force distribution ratio used for controlling the transfer clutch 40. If the actual front-to-rear torque distribution ratio deviates by a predetermined value or more from the target front-to-rear torque distribution ratio, a learning correction is performed to increase or decrease the instruction value given to the transfer clutch drive unit 140, assuming that a change has occurred in the characteristics of the transfer clutch 40 (such as the correlation between the tightening force and the command value and the transfer torque) due to individual differences in the transfer clutch 40, aging, etc. Then, proceed to step S16.

[0078] <Step S16: Display of each wheel drive status> The drive force distribution control unit 130 displays information regarding the current drive forces FxDf and FxDr of the front wheels FW and rear wheels RW on the display device 150 and presents it to the occupant (typically the driver). In this configuration, the steering angle of vehicle 1, the steering wheel angle, and the recommended steering direction can be displayed together. Specific examples of the display will be explained in detail later. After that, the series of processes will be terminated.

[0079] Figure 12 shows an example of a display image of each wheel drive state in a display device. The displayed image includes illustrations showing the front wheels (FW), rear wheels (RW), and steering wheel (SW). The front wheel flywheel (FW) and steering wheel switch (SW) are displayed in a rotated state on the display image corresponding to the current steering angle and steering wheel angle, allowing the driver to visually recognize the steering angle and steering wheel angle. The driving forces FxDf and FxDr are superimposed on the front wheel FW and rear wheel RW, respectively, or are displayed adjacent to them, with arrow-shaped marks indicating their magnitude and direction of action.

[0080] Figure 12(a) shows an image displayed as a driver assistance feature when a vehicle is passing through a curved road. Figure 12(a) shows the state of the vehicle as it passes a left corner, and an arrow-shaped indicator A, prompting a left turn, is shown adjacent to the steering wheel SW indicator. In terms of the front-to-rear torque distribution of vehicle 1, it can be seen that, in order to improve turning ability during cornering, the torque distribution of the rear wheels (RW) is relatively larger than the torque distribution of the front wheels (FW) (FxDf), resulting in a rear-wheel biased state.

[0081] Figure 12(b) shows an image displayed as a driver assistance feature when a vehicle is traveling on a straight road. In Figure 12(b), the driving force distribution of vehicle 1 is front-heavy, with the driving force FxDf of the front wheels FW being relatively larger than the driving force FxDr of the rear wheels RW. However, in this case, a steering angle is generated to the left, indicating that the driving force FxDf of the front wheels FW acts in a direction that disrupts the straight-line stability of vehicle 1. Therefore, adjacent to the steering wheel SW indicator, an arrow-shaped indicator A is shown to prompt steering towards the side that returns the steering angle to its original position (in this case, to the right). In this way, using the image displayed on the display device 150, the driver can visually and intuitively understand whether the driving force and steering angle of the vehicle 1 are in an ideal state.

[0082] Figure 13 shows an example of the estimation results of the driving forces FxDf and FxDr in the driving force estimation device of the embodiment. The upper part of Figure 13 shows the estimated and actual values ​​of the driving force FxDf of the front wheels FW, and the estimated and actual values ​​of the driving force FxDr of the rear wheels RW. The lower part of Figure 13 shows the difference in rotational speed of the transfer clutch 40. As shown in Figure 13, it can be seen that the method of this embodiment can appropriately estimate the driving force FxDf of the front wheel FW and the driving force FxDr of the rear wheel RW.

[0083] According to the embodiment described above, the following effects can be obtained. (1) Based on the free rotational speed and actual rotational speed of the front wheels FW and rear wheels RW, the slip ratio λ of the front wheels FW and rear wheels RW is calculated. f ,λ r By calculating the slip ratio λ, even in a four-wheel drive vehicle that does not have driven wheels to which driving force is not transmitted and for which it is difficult to obtain a reference vehicle speed, the slip ratio λ can be calculated. f ,λ r By appropriately calculating these factors, the driving forces FxDf and FxDr can be appropriately estimated. Also, the slip angle α of the front wheels FW and rear wheels RW f ,α r Accordingly, by correcting the driving stiffness or braking stiffness Kx used to estimate the driving forces FxDf, FxDr, the driving force can be appropriately estimated even when vehicle 1 is in a turning state. (2) By estimating the transmission torque of the transfer clutch 40 and correcting the driving forces FxDf and FxDr according to the lock / slip ratio of the transfer clutch 40, the accuracy of the driving force estimation can be improved. (3) By estimating the transmitted torque based on the difference in the actual rotational speed of the front wheel FW and the rear wheel RW and the difference in the free-rolling rotational speed, the lock / slip state of the transfer clutch 40 can be appropriately determined based on parameters that are easy to detect. (4) By estimating the transmission torque based on the difference between the actual rotational speed of the front wheel FW and the rear wheel RW and the difference between the free rotational speed of the front wheel FW and the rear wheel RW, divided by the difference in the actual rotational speed of the front wheel FW and the rear wheel RW, even if the measured value of the difference in the actual rotational speed of the front wheel FW and the rear wheel RW (difference in rotation of the transfer clutch 40) fluctuates greatly, it is possible to prevent the estimated transmission torque from diverging by using this value as both the numerator and denominator of the estimated transmission torque. (5) If the estimated force distribution between the front wheels (FW) and rear wheels (RW) deviates from the target value in the force distribution control, the force distribution can be brought closer to the ideal state by correcting the instruction value in the force distribution control. (6) By presenting the occupants with information regarding the estimated driving force, it is possible to encourage the occupants to perform appropriate driving operations and to assist in driving the vehicle in a more stable manner.

[0084] (modified version) The present invention is not limited to the embodiments described above, and various modifications and changes are possible, all of which fall within the technical scope of the present invention. (1) The configuration of the driving force estimation device and the vehicle is not limited to the embodiments described above and can be modified as appropriate. For example, in this embodiment, the vehicle 1 has the front wheels as the primary drive wheels (directly connected to the transmission) and the rear wheels as secondary drive wheels (connected to the transmission via a transfer clutch). However, the present invention is not limited to this and can also be applied to vehicles in which the rear wheels are the primary drive wheels, or to vehicles that transmit driving force to the front and rear wheels using a center differential. (2) In the embodiments, the power source for driving the vehicle was, for example, an engine (internal combustion engine), but the power source for driving the vehicle is not limited to this, and the present invention can also be applied to, for example, an engine-electric hybrid system or an electric vehicle that uses only an electric motor as the power source for driving. (3) The driving stiffness (braking stiffness) of the tires, the vehicle slip angle, the tire slip angle, and the tire contact load used to estimate the driving force may be calculated on board by a processor mounted on the vehicle, but is not limited to this. Alternatively, a map generated based on pre-prepared calculation results may be stored on a storage medium, and the necessary parameters may be read from the map based on the vehicle's driving conditions (vehicle speed, steering angle, yaw rate, acceleration, etc.). [Explanation of Symbols]

[0085] 1. Vehicle FW (Front Wheel) RW Rear Wheel 10 Engine 20 Transmission 21 Torque converter 30 Front-wheel drive force transmission mechanism 31 Drive gear 32 Driven gear 33 Pinion shaft 34 Front differential 35 Front drive shaft 40 Transfer clutch 50 Rear-wheel drive transmission mechanism 51 Propeller shaft 52 Rear differential 53 Rear drive shaft 110 Engine control unit 120 Transmission control unit 130 Drive force distribution control unit 131 Vehicle speed sensor 132 Vehicle speed sensor 133 Steering angle sensor 134 Accelerometer 135 Yaw rate sensor 140 Transfer clutch drive unit 150 Display device

Claims

1. A driving force estimation device for estimating the driving force of the front wheels and the driving force of the rear wheels in a vehicle that drives the front wheels and the rear wheels, A sensor that measures the driving conditions of the vehicle, including the steering angle and the yaw rate of the vehicle, An actual rotation speed detection unit detects the actual rotation speed of the front and rear wheels and outputs the vehicle speed of the vehicle based on the actual rotation speed. A slip angle output unit outputs the slip angles of the front and rear wheels based on vehicle-specific constants including the distance between the front wheel and the vehicle's center of gravity, the driving state output from the sensor, and the vehicle speed output from the actual rotational speed detection unit. A free-rolling rotation speed output unit that outputs the free-rolling rotation speed, which is the rotation speed of the front wheel and the rear wheel in a free-rolling state where no braking force is generated, Based on the vehicle-specific constants, the driving state output from the sensor, and the vehicle speed output from the actual rotational speed detection unit, the ground speed of the contact point between the front wheel and the road surface and the ground speed of the contact point between the rear wheel and the road surface are estimated. A free-rolling rotation speed output unit estimates the free-rolling rotation speed based on the product of the cosine of the slip angle of the front wheel and the rear wheel and the ground speed of the front wheel and the rear wheel, A slip ratio calculation unit that calculates the slip ratio of the front wheel and the rear wheel from the free rotation speed and the actual rotation speed, A stiffness correction unit that corrects the driving stiffness or braking stiffness of the front and rear wheels to decrease in accordance with the increase in the slip angle output by the slip angle output unit, A driving force estimation unit estimates the driving force of the front and rear wheels based on the driving stiffness or braking stiffness of the front and rear wheels corrected by the stiffness correction unit, and the slip ratio. A driving force estimation device characterized by comprising the following:

2. The vehicle has a front-wheel drive force transmission mechanism that transmits driving force to the front wheels, a rear-wheel drive force transmission mechanism that transmits driving force to the rear wheels, and a transfer clutch that restrains the rotational speed difference between the front-wheel drive force transmission mechanism and the rear-wheel drive force transmission mechanism. The system includes a transfer torque estimation unit for estimating the transmission torque of the transfer clutch, The driving force estimation unit corrects the estimated driving force of the front wheel by subtracting the driving force equivalent value of the transmission torque estimated by the transfer torque estimation unit from the driving force of the front wheel, and corrects the estimated driving force of the rear wheel by adding the driving force equivalent value of the transmission torque estimated by the transfer torque estimation unit to the driving force of the rear wheel. The driving force estimation device according to claim 1, characterized by the following:

3. The transfer torque estimation unit estimates the lock ratio or slip ratio of the transfer clutch based on the value obtained by dividing the difference between the actual rotational speed of the front wheel and the rear wheel and the difference between the free rotational speed of the front wheel and the rear wheel by the difference between the actual rotational speed of the front wheel and the rear wheel. If the slip ratio of the front wheel is greater than the slip ratio of the rear wheel, the driving force equivalent value of the transmitted torque is estimated based on the product of the lock ratio or slip ratio of the transfer clutch and the driving force of the rear wheel assuming that the transfer clutch is locked. If the slip ratio of the front wheel is less than or equal to the slip ratio of the rear wheel, the driving force equivalent value of the transmitted torque is estimated to be zero. The driving force estimation device according to claim 2, characterized by the following:

4. The system includes at least one of the following: a drive force distribution control modification unit that modifies the drive force distribution control between the front wheel and the rear wheel based on the drive force estimated by the drive force estimation unit, and a drive force information output unit that presents the drive force estimated by the drive force estimation unit to the occupant. A driving force estimation device according to any one of claims 1 to 3, characterized by the above.

Citation Information

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