Vehicle steering system
The vehicle steering system addresses toe changes from road irregularities by using sensors and actuators to apply corrective forces, improving stability and reducing driver effort.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-23
- Publication Date
- 2026-04-15
AI Technical Summary
Existing vehicle steering systems fail to effectively suppress toe changes caused by road surface irregularities, leading to vehicle instability and increased driver burden due to unintended tire direction displacement.
A vehicle steering system that includes a road surface reaction force detection unit, a toe adjustment actuator, and a control unit to counteract toe changes by applying a driving force to the steering wheels, utilizing tire load sensors and suspension stroke sensors to calculate and correct toe adjustments.
The system improves straight-line stability and reduces driver burden by effectively canceling out toe changes due to uneven road surfaces, enhancing vehicle control and steering precision.
Smart Images

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Abstract
Description
Technical Field
[0006]
[0001] The present invention relates to a steering device for a vehicle configured to cancel out a toe change amount generated when a tire passes over an uneven road surface by a toe adjustment actuator connected to a steering wheel.
Background Art
[0002] During driving, various forces in various directions (front-rear, left-right, up-down) and of various magnitudes act on the tires, and these forces are transmitted from the tires to the body through the suspension and bushings. Basically, the geometry, the rigidity of the suspension structural parts, and the bushings are set so that the tires can be held at preferably designed positions as much as possible, thereby regulating the direction of the tires. However, during driving, due to the influence of road surface irregularities, the displacement amount cannot always be set to 0.
[0003] Therefore, even when the driver holds the steering wheel in a straight-ahead state (neutral position), the tire direction undergoes an unexpected displacement in the toe-in / toe-out direction due to the front-rear, left-right, and up-down forces applied to the tires. As a result, the vehicle tries to turn contrary to the driver's intention, causing the steering wheel to wobble and impairing the straight-ahead stability.
[0004] For example, in the steering mechanism 101 shown in FIGS. 12 and 13, when one of the tires Fl.Fr (right tire Fr in the figure) of the front left and right wheels, which are steering wheels, attempts to cross over a convex surface of the road surface, if the lateral force is ignored, a reaction force Fu in the upward direction and a reaction force Fb attempting to push it back rearward act on the tire Fr. As a result, as shown by the broken line in FIG. 12, the toe of the right tire Fr is displaced, and the vehicle tries to turn in a direction unintended by the driver.
[0005] In response, the driver operates the steering wheel to return the tires Fl, Fr in the straight-ahead direction via the steering gear box 102. Therefore, the driver must operate the steering wheel to drive the vehicle straight, increasing the driver's burden.
[0006] As a countermeasure, for example, Patent Document 1 (Japanese Patent Application Publication No. 2006-56374) discloses a technology in which auxiliary rack bar mechanisms are provided on rack bars extending to the left and right from the steering gearbox, and axial force sensors are provided on these left and right auxiliary rack bar mechanisms. When the vehicle is traveling in a straight line, if the difference in axial force generated in the left and right tie rods detected by each axial force sensor exceeds a predetermined threshold, the motor of the auxiliary rack bar mechanism provided on the side with the greater axial force is driven to steer the steering wheel in a direction that reduces the force acting on the steering wheel, thereby reducing the burden on the driver. [Prior art documents] [Patent Documents]
[0007] [Patent Document 1] Japanese Patent Publication No. 2006-56374 [Overview of the Initiative] [Problems that the invention aims to solve]
[0008] In the technology disclosed in the aforementioned document, the displacement of the steering wheel is detected from the axial force detected by axial force sensors installed on the left and right auxiliary rack bar mechanisms, and the motor of the auxiliary rack bar mechanism is driven to steer the steering wheel in a direction that cancels out the displacement.
[0009] Incidentally, during driving, loads are generated on the tires in the vertical, horizontal, and longitudinal directions, which causes changes in toe. The aforementioned axial force sensor can only measure the push-pull force of the tie rod, and therefore cannot detect changes in toe. As a result, there are limitations to its ability to suppress the effects of road surface irregularities and improve the vehicle's straight-line stability.
[0010] The present invention aims to provide a vehicle steering system that can improve straight-line stability and reduce the burden on the driver by suppressing the effects of toe changes that occur when the tire passes over an uneven road surface. [Means for solving the problem]
[0011] This invention one form This is a steering system for a vehicle that applies a driving force to the steering wheels to counteract the amount of toe change caused by road surface irregularities, comprising: a road surface reaction force detection unit that detects the road surface reaction force received by the tires mounted on the steering wheels; a toe adjustment actuator connected to the steering wheels; and a control unit that controls the driving force of the toe adjustment actuator. The road surface reaction force detection unit includes a tire load sensor that detects the input load received by the tire, and a suspension stroke sensor that detects the vertical load received by the tire from the suspension stroke amount. The control unit comprises a toe change amount setting unit that sets the toe change amount based on the road surface reaction force detected by the road surface reaction force detection unit, an operating amount calculation unit that calculates an actuator operating amount to offset the toe change amount set by the toe change amount setting unit, and a drive unit that drives the toe adjustment actuator with the actuator operating amount calculated by the operating amount calculation unit. The toe change amount setting unit calculates the toe change amount by adding the tire toe change amount based on the input load detected by the tire load sensor and the tire toe change amount based on the suspension stroke amount detected by the suspension stroke sensor. One embodiment of the present invention is a steering system for a vehicle that applies a driving force to the steering wheel to counteract the amount of toe change caused by road surface irregularities, comprising: a driving environment recognition unit that recognizes the driving environment in front of the vehicle; a road surface reaction force detection unit that detects the road surface reaction force received by the tires mounted on the steering wheel; a toe adjustment actuator connected to the steering wheel; and a control unit that controls the driving force of the toe adjustment actuator, wherein the control unit includes a toe change amount setting unit that sets the amount of toe change based on the road surface reaction force detected by the road surface reaction force detection unit; an operating amount calculation unit that calculates the actuator operating amount to counteract the amount of toe change set by the toe change amount setting unit; and the actuator calculated by the operating amount calculation unit The toe adjustment actuator is driven by the amount of Eta operation; the toe change amount setting unit detects the road surface irregularities in front of the vehicle based on the driving environment recognized by the driving environment recognition unit and calculates the estimated road surface reaction force that the tires receive when the vehicle passes over the road surface irregularities based on the road surface irregularities; the correction value calculation unit calculates a correction value to correct the estimated road surface reaction force based on the road surface reaction force detected by the road surface reaction force detection unit; and the correction unit corrects the estimated road surface reaction force obtained by the estimation calculation unit with the correction value calculated by the correction value calculation unit to calculate a new road surface reaction force. The toe change amount setting unit sets the toe change amount based on the new road surface reaction force calculated by the correction unit. [Effects of the Invention]
[0012] According to the present invention, the amount of toe change is set based on the road surface reaction force received by the tire, and the toe adjustment actuator is driven by an actuator operating amount that cancels out this amount of toe change. As a result, the effects of toe change that occur when the tire passes over an uneven road surface are suppressed, straight-line stability is improved, and the burden on the driver is reduced. [Brief explanation of the drawing]
[0013] [Figure 1] Schematic plan view of the main components of the steering device according to the first embodiment. [Figure 2] Same, right side view of Figure 1 [Figure 3] Schematic diagram of the steering control unit. [Figure 4] A flowchart showing the toe adjustment actuator operating amount calculation routine. [Figure 5] Similarly, a conceptual diagram of the tire input load-tire toe change map. [Figure 6] Conceptual diagram of the suspension stroke-tire toe change amount table. [Figure 7] The timing chart also shows the amount of tire toe change in response to road surface irregularities. [Figure 8] Timing chart showing the tire toe change amount with respect to the suspension stroke [Figure 9] Timing chart showing the actuator operation amount that cancels the total tire toe change amount [Figure 10] Schematic configuration diagram of the steering control unit according to the second embodiment [Figure 11] Schematic plan view of the main part of the steering device according to the third embodiment [Figure 12] Schematic plan view of the main part of the conventional steering device [Figure 13] Right side view of FIG. 12
Mode for Carrying Out the Invention
[0014] Hereinafter, an embodiment of the present invention will be described based on the drawings. [First Embodiment] The first embodiment of the present invention is shown in FIGS. 1 to 9. In the steering device 1 shown in FIG. 1, a rack shaft 2a is supported in a steering gear box 2 so as to be reciprocally slidable in the axial direction. A rack (not shown) is formed on the rack shaft 2a, and a pinion formed on a pinion shaft is engaged with this rack to form a rack & pinion type steering gear mechanism. Although not shown, this pinion shaft is connected to a steering shaft that fixedly mounts a steering wheel (hereinafter simply referred to as "wheel") operated by a driver at the proximal end side.
[0015] In addition, one ends of tie rods 3l and 3r are connected to both ends of the rack shaft 2a, and the other ends of the tie rods 3l and 3r and one ends of tie rod ends 4l and 4r are connected via left and right toe adjustment actuators 5l and 5r.
[0016] Furthermore, the other ends of these tie rod ends 4l and 4r are connected to knuckle arms 6l and 6r that extend from the left and right steering knuckles (not shown). These steering knuckles rotatably support the tires Fl and Fr mounted on the left and right steering wheels (left and right front wheels), and are also steerably supported by the vehicle frame (not shown) via front arms 7l and 7r.
[0017] Furthermore, as shown in Figure 2, a tire load sensor 12r(12l) is provided on the hub 9r(9l) to which the tire wheel on which the tire Fr(Fl) is mounted is fixed, to measure the longitudinal and lateral loads (road surface reaction force) received by the tire Fr(Fl). In addition, left and right suspension stroke sensors 13r(13l) are fixed to the front suspension 8r(8l) to detect the stroke amount (suspension stroke amount) Xr(Xl) of the front suspension 8r(8l). Note that these tire load sensors 12r, 12l and suspension stroke sensors 13r, 13l correspond to the road surface reaction force detection unit of the present invention.
[0018] The toe adjustment actuators 5l and 5r described above adjust the distance between the tie rods 3l and 3r and the tie rod ends 4l and 4r during straight-line driving, thereby applying a driving force to the steering wheels that cancels out disturbances experienced by the left and right front tires Fl and Fr, and ensuring driving stability. These toe adjustment actuators 5l and 5r operate according to the drive signals transmitted from the steering control unit (steering ECU) 11, which acts as the control unit.
[0019] This steering ECU11 consists of a microcontroller equipped with a CPU, RAM, ROM, rewritable non-volatile memory (flash memory or EEPROM), and peripheral devices. The ROM stores programs and fixed data necessary for the CPU to execute various processes. The RAM is provided as the CPU's work area, where various data from the CPU is temporarily stored. The CPU is also called an MPU (Microprocessor) or processor. Alternatively, a GPU (Graphics Processing Unit) or GSP (Graph Streaming Processor) may be used instead of the CPU. Alternatively, a selective combination of CPU, GPU, and GSP may be used.
[0020] As shown in Figure 3, the steering ECU 11 is equipped with a toe adjustment amount calculation unit 11a that drives the toe adjustment actuators 5l and 5r to achieve driving stability. Left and right tire load sensors 12l and 12r and left and right suspension stroke sensors 13l and 13r are connected to the input side of the toe adjustment amount calculation unit 11a. Also, left and right toe adjustment actuators 5l and 5r are connected to the output side of the toe adjustment amount calculation unit 11a.
[0021] The toe adjustment amount calculation unit 11a calculates the amount of toe change caused by the reaction force from the road surface received by the tires Fl and Fr as they pass over an uneven road surface. Specifically, first, the left and right tire load sensors 12l and 12r detect the lateral loads Ply and Pry and the longitudinal loads Plx and Prx received by the tires Fl and Fr. In addition, the left and right suspension stroke sensors 13l and 13r detect the suspension stroke amounts Xl and Xr.
[0022] The toe adjustment amount calculation unit 11a then calculates the toe change amount based on the lateral loads Ply, Pry and the longitudinal loads Plx, Prx and the vertical loads Plz, Prz, calculates the actuator operating amount to cancel out this toe change amount, and operates the left and right toe adjustment actuators 5l, 5r.
[0023] The calculation of the operating amounts of the left and right toe adjustment actuators 5l and 5r, performed by the toe adjustment amount calculation unit 11a, is specifically processed according to the toe adjustment actuator operating amount calculation routine shown in Figure 4. Although this routine is executed individually for the left and right toe adjustment actuators 5l and 5r, the processing content is the same. Therefore, the calculation of the operating amount of the right toe adjustment actuator 5r will be explained, and the calculation of the operating amount of the left toe adjustment actuator 5l will be noted in parentheses.
[0024] In this routine, first, in step S1, the lateral load Pry (Ply) and longitudinal load Prx (Plx) received by the tire Fr (Fl) from the road surface, as detected by the tire load sensor 12r (12l), are read. Then, in step S2, the suspension stroke amount Xr (Xl) detected by the suspension stroke sensor 13r (13l) is read.
[0025] Next, the process proceeds to step S3, where the tire toe change is set by referencing the tire input load-tire toe change map with interpolation calculations, based on the tire input loads, namely the lateral load Pry(Ply) and the longitudinal load Prx(Plx). Figure 5 shows a conceptual diagram of the tire input load-tire toe change map. The tire toe change when the lateral load Pry(Ply) and the longitudinal load Prx(Plx) are applied to the tire Fr(Fl) can be calculated mechanically. Therefore, if the characteristics of the vehicle are known, the tire toe change due to the lateral load Pry(Ply) and the longitudinal load Prx(Plx) can be determined in advance by simulation, etc., and it is easy to map this.
[0026] For example, as shown in Figure 2, when the tire Fr(Fl) of a vehicle traveling in a straight line attempts to go over a convex surface, a load is applied to the tire Fr(Fl) due to the reaction force from the road surface. This load has three components: a load Prx(Plx) that pushes the tire Fr(Fl) backward, an upward load Prz(Plz) that pushes it upward, and a load Pry(Ply) that pushes it laterally (not shown).
[0027] Within these three components, the tire load sensor 12r (12l) detects the components of the longitudinal load Prx (Plx) and the lateral load Pry (Ply), and as shown in Figure 7, detects changes in the longitudinal and lateral loads of the tire. In Figure 7, for convenience, it is assumed that the lateral load Pry (Ply) is not occurring. If the lateral load Pry (Ply) is not occurring, the tire toe change amount is set to the value traced by the longitudinal load Prx (Plx).
[0028] Next, proceeding to step S4, the tire toe change amount is set based on the suspension stroke amount Xr(Xl) by referring to the suspension stroke amount-tire toe change amount table. Figure 6 shows a conceptual diagram of the suspension stroke amount-tire toe change amount table. As shown in the figure, the suspension stroke amount Xr(Xl) is set in the direction of expansion and contraction from a stationary state, and as the amount of change in the suspension stroke amount Xr(Xl) increases in both compression and extension, the tire toe change amount also increases proportionally. Therefore, the suspension stroke amount Xr(Xl) and the tire toe change amount can also be calculated from a linear equation with a certain slope, which is determined by the characteristics of the vehicle.
[0029] For example, as shown in Figure 2, when the tire Fr(Fl) of a vehicle traveling in a straight line attempts to go over a convex surface, a vertical load Prz(Plz) is generated on the tire Fr(Fl) that pushes it upward due to the reaction force from the road surface. Then, as shown in Figure 8, the suspension stroke amount Xr(Xl) is detected by the suspension stroke sensor 13r(13l). Based on this suspension stroke amount Xr(Xl), the tire toe change amount that traces the suspension stroke amount Xr(Xl) is set by referring to a table.
[0030] Subsequently, the process proceeds to step S5, where the tire toe change amount based on the tire input load set in step S3 and the tire toe change amount based on the suspension stroke amount set in step S4 are added together to calculate the total toe change amount (see Figure 9). Note that the processing in steps S3 to S5 corresponds to the toe change amount setting unit of the present invention.
[0031] Next, in step S6, an actuator operating amount with the opposite phase to cancel out this total toe change is calculated (see Figure 9). Note that the processing in step S6 corresponds to the operating amount calculation unit of the present invention.
[0032] Then, the process proceeds to step S7, where a drive signal corresponding to the actuator operating amount is output to the right toe adjustment actuator 5r (left toe adjustment actuator 5l). Note that the processing in step S7 corresponds to the drive unit of the present invention.
[0033] As shown in Figure 9, the right toe adjustment actuator 5r (left toe adjustment actuator 5l) generates an actuator operation amount that cancels out the total toe change, and the corresponding driving force is applied to the steering wheel to which the tire Fr (Fl) is mounted, thereby correcting the tire toe. As a result, tire toe changes due to road surface irregularities are suppressed, straight-line stability is improved, and the burden on the driver performing steering operations is reduced. [Second Embodiment] Figure 10 shows a second embodiment of the present invention. In the first embodiment described above, the total toe change is calculated based on the tire input load (lateral load Pry (Ply) and longitudinal load Prx (Plx)) detected by the tire load sensor 12r (12l) and the suspension stroke amount Xr (Xl) detected by the suspension stroke sensor 13r (13l).
[0034] In contrast, in this embodiment, while driving, the vehicle detects road surface irregularities ahead, estimates the tire input load and suspension stroke amount based on the detected road surface irregularities, and corrects these using the tire input load detected by the tire load sensor 12r (12l) and the suspension stroke amount Xr (Xl) detected by the suspension stroke sensor 13r (13l), respectively. Then, these corrected tire input load and suspension stroke amount are read in steps S1 and S2 of the toe adjustment actuator operating amount calculation routine shown in Figure 4, respectively.
[0035] Specifically, as shown in Figure 10, the steering ECU 11 is equipped with a tire input load estimation calculation unit 11b, a tire input load correction value calculation unit 11c, a first correction unit 11d, a suspension stroke amount estimation calculation unit 11e, a suspension stroke amount correction value calculation unit 11f, and a second correction unit 11g on the input side of the toe adjustment amount calculation unit 11a.
[0036] The tire input load estimation calculation unit 11b calculates the amount of road surface irregularities (height, depressions) based on the forward road surface recognition information and determines the estimated tire input load (lateral load Pry(Ply) and longitudinal load Prx(Plx)), which is the estimated road surface reaction force that the tire Fr(Fl) receives when passing over the irregular road surface. Furthermore, it predicts the time to reach the road surface irregularities based on the distance to the road surface irregularities and the vehicle speed. When the time to reach the road surface is reached, it outputs the estimated tire input load to the first correction unit 11d. The forward road surface recognition information is obtained from the forward driving environment information recognized by the forward driving environment recognition unit. This forward driving environment recognition unit may include a stereo camera, millimeter-wave radar, microwave radar, LiDAR (Light Detection and Ranging), etc. Alternatively, a monocular camera and each radar may be combined to form the forward driving environment recognition unit.
[0037] Furthermore, the tire input load correction value calculation unit 11c outputs the tire input load (lateral load Pry (Ply) and longitudinal load Prx (Plx)) detected by the tire load sensor 12r (12l) as a correction value to the first correction unit 11d.
[0038] The first correction unit 11d adds the correction value obtained by the tire input load correction value calculation unit 11c to the tire input load (lateral load Pry(Ply) and longitudinal load Prx(Plx)) estimated by the tire input load estimation calculation unit 11b to obtain a new tire input load, and outputs this new tire input load to the toe adjustment amount calculation unit 11a.
[0039] As a result, the tire input load estimated by the tire input load estimation calculation unit 11b becomes the feedforward control value, and the correction value calculated by the tire input load correction value calculation unit 11c becomes the feedback correction value. Although there is a slight time lag between this feedforward control value and the feedback correction value, because the tire input load is feedforward controlled, the feedback control value becomes relatively small, and high responsiveness can be obtained.
[0040] Meanwhile, the suspension stroke amount estimation calculation unit 11e calculates the amount of road surface irregularities based on the forward road surface recognition information described above, and determines the estimated stroke amount (estimated suspension stroke amount), which is the estimated road surface reaction force received by the tire Fr(Fl) and transmitted to the front suspension 8r(8l) when passing over an uneven road surface. Furthermore, it predicts the time to reach the road surface irregularities based on the distance to the road surface irregularities and the vehicle speed. When the time to reach the road surface is reached, it outputs the estimated suspension stroke amount to the second correction unit 11g.
[0041] Furthermore, the suspension stroke amount correction value calculation unit 11f outputs the suspension stroke amount Xr(Xl) detected by the suspension stroke sensor 13r(13l) as a correction value to the second correction unit 11g.
[0042] The second correction unit 11g adds the correction value obtained by the suspension stroke amount correction value calculation unit 11f to the suspension stroke amount estimated by the suspension stroke amount estimation calculation unit 11e to obtain a new suspension stroke amount, and outputs this new suspension stroke amount to the toe adjustment amount calculation unit 11a.
[0043] As a result, the suspension stroke amount estimated by the suspension stroke amount estimation calculation unit 11e becomes the feedforward control value, and the correction value calculated by the suspension stroke amount correction value calculation unit 11f becomes the feedback correction value. As described above, there is a slight time lag between this feedforward control value and the feedback correction value, but because the suspension stroke amount is feedforward controlled, the feedback control value becomes relatively small, and high responsiveness can be obtained. [Third Embodiment] Figure 11 shows a third embodiment of the present invention. In the first embodiment described above, left and right toe adjustment actuators 5r (5l) are interposed in the mechanical steering device 1. In contrast, in this embodiment, the control amount of the left and right steering actuators 2l and 22r provided in the steering-by-wire steering device 21 is increased by an actuator operating amount that cancels out the total toe change that occurs when passing over an uneven road surface. Note that this actuator operating amount is the same as in the first and second embodiments described above, so its explanation is omitted.
[0044] According to this embodiment, since only an actuator operating amount that cancels out the total toe change is added to the control amount of the steering actuators 22l and 22r of the existing steering-by-wire steering system 21, there is no need to add a new mechanism, and high versatility can be obtained.
[0045] Furthermore, the present invention is not limited to the embodiments described above, and although the embodiments were explained using a convex road surface as an example, it goes without saying that it can also be applied to a concave road surface. In addition, since the total toe change when passing over an uneven road surface is mitigated, the vehicle is less affected by the uneven road surface during steering, and good turning performance can be obtained. [Explanation of symbols]
[0046] 1... Steering device, 2... Steering gearbox, 2a... Rack axis, 3L, 3R... Tie rod, 4L, 4R... Tie rod end, 5L, 5R... Toe adjustment actuator, 6L, 6R... Knuckle arm, 7L, 7R... Front arm, 8L, 8R... Front suspension, 9L, 9R...hub, 11…Steering control unit (Steering ECU), 11a...Toe adjustment amount calculation unit, 11b... Tire input load estimation calculation unit, 11c... Tire input load correction value calculation unit, 11e...Suspension stroke amount estimation calculation unit, 11f...Suspension stroke amount correction value calculation unit, 12L, 12R... Tire load sensor, 13L, 13R... Suspension stroke sensor, 21... Steering gear, 22l, 22r... Steering actuator, Fl, Fr... tires, Plx,Prx…front and rear loads, Ply,Pry…lateral load, Plz,Prz…Vertical load, Xl, Xr... Suspension stroke amount
Claims
1. A steering system for a vehicle that applies a driving force to the steering wheels to counteract the amount of toe change caused by uneven road surfaces, A road surface reaction force detection unit detects the road surface reaction force received by the tire mounted on the steering wheel, A toe adjustment actuator connected to the steering wheel, A control unit that controls the driving force of the toe adjustment actuator and It has, The road surface reaction force detection unit is A tire load sensor that detects the input load applied to the tire, A suspension stroke sensor detects the vertical load on the tire based on the suspension stroke amount. Equipped with, The control unit, A toe change amount setting unit sets the toe change amount based on the road reaction force detected by the road reaction force detection unit, An operating amount calculation unit calculates an actuator operating amount that cancels out the toe change amount set in the toe change amount setting unit, A drive unit drives the toe adjustment actuator with the actuator operating amount calculated by the operating amount calculation unit. Equipped with, The toe change amount setting unit calculates the toe change amount by adding the tire toe change amount based on the input load detected by the tire load sensor and the tire toe change amount based on the suspension stroke amount detected by the suspension stroke sensor. A steering device for a vehicle characterized by the following features.
2. A steering system for a vehicle that applies a driving force to the steering wheels to counteract the amount of toe change caused by uneven road surfaces, A driving environment recognition unit that recognizes the driving environment in front of the vehicle, A road surface reaction force detection unit detects the road surface reaction force received by the tire mounted on the steering wheel, A toe adjustment actuator connected to the steering wheel, A control unit that controls the driving force of the toe adjustment actuator and It has, The control unit, A toe change amount setting unit sets the toe change amount based on the road reaction force detected by the road reaction force detection unit, An operating amount calculation unit calculates an actuator operating amount that cancels out the toe change amount set in the toe change amount setting unit, A drive unit that drives the toe adjustment actuator with the actuator operating amount calculated by the operating amount calculation unit, Based on the driving environment recognized by the driving environment recognition unit, an estimation calculation unit detects the road surface irregularities in front of the vehicle and calculates the estimated road surface reaction force that the tires receive when the vehicle passes over the road surface irregularities. A correction value calculation unit calculates a correction value to correct the estimated road reaction force based on the road reaction force detected by the road reaction force detection unit, A correction unit corrects the estimated road surface reaction force obtained by the estimation calculation unit with the correction value calculated by the correction value calculation unit to calculate a new road surface reaction force. Equipped with, The steering device for a vehicle is characterized in that the toe change amount setting unit sets the toe change amount based on the new road surface reaction force calculated by the correction unit.
3. The toe adjustment actuators are located on either side of the steering gearbox, and each toe adjustment actuator is connected to the left and right steering wheels. A steering device for a vehicle according to claim 1 or 2, characterized by its features.
4. The steering device is a steering-by-wire system. The toe adjustment actuator is shared by the left and right steering actuators, which individually drive the left and right steering wheels. A steering device for a vehicle according to claim 1 or 2, characterized by its features.
Citation Information
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