Power steering system and commercial vehicles
Through the power steering system that works in concert with the worm gear and worm speed reduction mechanism and the vehicle controller, the low transmission efficiency and noise problems of the hydraulic power steering system of commercial vehicles are solved, and efficient and quiet steering assistance is achieved, improving the driving experience.
Patent Information
- Application Number
- CN202411741930.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2044-11-29
AI Technical Summary
The hydraulic power steering system of commercial vehicles has low transmission efficiency, poor noise, vibration and sound and vibration roughness performance, heavy steering handling force, poor driving experience, and cannot meet the development trend of new energy vehicles.
The power steering system with the worm gear and worm speed reduction mechanism is adopted, combined with the vehicle controller and sensor, and the worm gear and worm speed reduction mechanism is used to cooperate with the rack transmission to achieve accurate power transmission, and the power size is adjusted by using the motor and controller. The integrated steering controller works in concert with the vehicle controller to provide a variety of driving assistance functions.
It improves the transmission efficiency of the steering system, reduces energy loss, reduces noise and vibration, improves driving handling and road sense feedback, and meets the driving needs of new energy vehicles.
Smart Images

Figure CN119459861B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of vehicles, and in particular to a power steering system and a commercial vehicle. Background Art
[0002] Most commercial vehicles currently use hydraulic power steering, which has disadvantages such as low transmission efficiency and poor noise, vibration and harshness performance. In addition, the steering control force is heavy and the feel is poor, the highway feel is poor, and the driving experience is not good, which cannot meet the development trend of new energy vehicles.
[0003] Therefore, there is an urgent need to provide a power steering system and a commercial vehicle that can solve at least one of the above technical problems. Summary of the Invention
[0004] The object of the present invention is to provide a power steering system and a commercial vehicle, which have the advantages of high transmission efficiency, good noise, vibration and harshness performance, and better driving control.
[0005] To achieve the above objectives, the present invention provides the following technical solutions:
[0006] In a first aspect, the present invention provides a power steering system, comprising a steering column, a steering gear, and a vehicle controller, wherein the steering gear comprises an input shaft, a main housing, a steering gear controller, a power assist device, and a rack, and the steering column is connected to the input shaft;
[0007] The input shaft is rotatably connected to the main housing and is provided with a first sensor, the first sensor is used to detect parameter information of the input shaft rotation process and convert it into a first electrical signal, the first sensor and the steering gear controller are both signal-connected to the vehicle controller, the vehicle controller is used to generate a power-assistance curve according to the first electrical signal, a vehicle speed signal, and a vehicle start signal, and convert it into a curve signal, the steering gear controller is signal-connected to the power-assist device, the steering gear controller is used to adjust the magnitude of the power-assistance output by the power-assist device according to the curve signal, and the power-assist device includes a worm gear reduction mechanism;
[0008] The input shaft and the worm gear reduction mechanism are both matched with the rack transmission.
[0009] Furthermore, the steering column includes an upper column, a lower column and a stopper, the upper column is slidably matched with the lower column along the extension direction of the lower column, and a clamping structure for increasing friction is provided between the upper column and the lower column;
[0010] The limiter is connected to the upper tubular column, and is configured to limit the position of the upper tubular column when the pressure between the upper tubular column and the lower tubular column is less than a first threshold value, and to loosen from the upper tubular column when the pressure between the upper tubular column and the lower tubular column is greater than the first threshold value.
[0011] Furthermore, the limiter is used to be mounted on the vehicle frame, and the power steering system further includes a second sensor and a limiter controller, and the second sensor and the limiter are both connected to the limiter controller by signal;
[0012] The second sensor is used to detect the impact force on the steering wheel and convert it into a force signal. The limiter controller is used to receive the force signal and control the limiter to loosen from the frame when the impact force is greater than a second threshold.
[0013] Furthermore, the second threshold is equal to the first threshold.
[0014] Furthermore, the upper pipe column is sleeved on the outside of the lower pipe column, and the clamping structure includes a plurality of protrusions protruding from the inner wall of the upper pipe column to the outer wall of the lower pipe column.
[0015] Furthermore, the upper pipe column includes a pipe body, a mounting bracket and an adjusting member, the mounting bracket is connected to the limit member, the adjusting member is connected between the mounting bracket and the pipe body, and the adjusting member is used to adjust and lock the installation angle of the pipe body relative to the mounting bracket.
[0016] Furthermore, the steering column also includes an intermediate shaft, a first universal joint, a second universal joint and an output shaft. One end of the intermediate shaft is rotatably connected to an end of the lower column away from the upper column through the first universal joint, and the other end of the intermediate shaft is rotatably connected to the output shaft through the second universal joint, and the output shaft is connected to the input shaft.
[0017] Furthermore, the first universal joint and the second universal joint each include a first joint, a second joint and a connecting frame, the first joint rotates with the connecting frame around a first direction and the rotation angle is greater than 40°, the second joint rotates with the connecting frame around a second direction and the rotation angle is greater than 40°, and the second direction is perpendicular to the first direction.
[0018] Furthermore, the power assist device further includes a motor, which is signal-connected to the steering gear controller, and the motor is coupled to the rack transmission via the worm gear reduction mechanism.
[0019] In a second aspect, the present invention further provides a commercial vehicle comprising the power steering system described in the above solution.
[0020] The power steering system and commercial vehicle provided by the present invention can produce the following beneficial effects:
[0021] Compared with the prior art, the power steering system provided by the first aspect of the present invention has a power assist device with a worm gear reduction mechanism, and the power is output to the rack after deceleration. The steering system has high transmission efficiency, small energy loss, more energy saving, good noise, vibration and acoustic roughness performance, and a good vehicle driving environment. The power assist device can provide reverse assistance during driving, and the road feel feedback is good, which can bring a better driving control feel and meet the development trend of new energy vehicles.
[0022] The commercial vehicle provided in the second aspect of the present invention has the power steering system provided in the first aspect of the present invention, thereby having all the beneficial effects of the power steering system provided in the first aspect of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0024] Figure 1 A schematic diagram of a three-dimensional structure of a power steering system provided by an embodiment of the first aspect of the present invention;
[0025] Figure 2 A schematic diagram of the three-dimensional structure of a steering gear (without a main housing) provided in accordance with an embodiment of the first aspect of the present invention;
[0026] Figure 3 A side view of a steering column in a first state provided by an embodiment of the first aspect of the present invention;
[0027] Figure 4 A schematic diagram of a three-dimensional structure of a steering column in a second state provided by an embodiment of the first aspect of the present invention Figure 1 ;
[0028] Figure 5 for Figure 4 A local enlarged schematic diagram of point A;
[0029] Figure 6 A schematic diagram of a three-dimensional structure of a steering column in a second state provided by an embodiment of the first aspect of the present invention Figure 2 ;
[0030] Figure 7 for Figure 6 A partial enlarged schematic diagram of point B.
[0031] Icons: 1 - Steering column; 11 - Upper column; 111 - Tube body; 1111 - Protrusion; 112 - Mounting bracket; 1121 - Clamping part; 113 - Adjusting part; 1131 - Connecting shaft; 1132 - Bracket; 1133 - Handle; 12 - Lower column; 13 - Limiting part; 131 - Limiting block; 132 - Limiting bar; 14 - Intermediate shaft; 141 - Upper intermediate shaft; 142 - Lower intermediate shaft; 15 - First universal joint; 151 - First joint; 152 - Second joint; 153 - Connecting frame; 16 - Second universal joint; 17 - Output shaft; 18 - Frame; 2 - Steering gear; 21 - Input shaft; 22 - Main housing; 23 - Steering gear controller; 24 - Power assist device; 241 - Worm gear reduction mechanism; 242 - Motor; 25 - Rack; 26 - Pull rod. DETAILED DESCRIPTION
[0032] The technical solution of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present invention.
[0033] In the description of the present invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0034] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed, detachable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0035] The following describes the specific embodiments of the present invention in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only used to illustrate and explain the present invention and are not intended to limit the present invention.
[0036] The embodiment of the first aspect of the present invention is to provide a power steering system, such as Figure 1 and Figure 2 As shown, it includes a steering column 1, a steering gear 2 and a vehicle controller. The steering gear 2 includes an input shaft 21, a main housing 22, a steering gear controller 23, a power assist device 24 and a rack 25. The steering column 1 is connected to the input shaft 21.
[0037] The input shaft 21 is rotationally connected to the main housing 22 and is provided with a first sensor. The first sensor is used to detect parameter information during the rotation of the input shaft 21 and convert it into a first electrical signal. The first sensor and the steering controller 23 are both signal-connected to the vehicle controller. The vehicle controller is used to generate a power-assistance curve based on the first electrical signal, a vehicle speed signal, and a vehicle start signal, and convert it into a curve signal. The steering controller 23 is signal-connected to the power-assistance device 24. The steering controller 23 is used to adjust the amount of power-assistance output by the power-assistance device 24 based on the curve signal. The power-assistance device 24 includes a worm gear reduction mechanism 241.
[0038] The input shaft 21 and the worm gear reduction mechanism 241 are both in driving cooperation with the rack 25 .
[0039] When the steering system provided by the above embodiment is in use, the driver turns the steering wheel, and the steering column 1 will drive the input shaft 21 to rotate relative to the main housing 22. Since the input shaft 21 and the rack 25 are in transmission cooperation, the rack 25 can be moved. At the same time, the vehicle controller can generate a power assist curve according to the vehicle speed signal, the vehicle start signal and the first electrical signal emitted by the first sensor and convert it into a curve signal. The steering gear controller 23 can adjust the size of the power assist output by the power assist device 24 according to the curve signal, thereby realizing that the power steering system provides appropriate steering assistance through the power assist device 24 according to the driving scenario, which is more energy-efficient and has better response than traditional hydraulic systems.
[0040] Among them, the vehicle speed signal can be generated by a sensor that detects the vehicle speed, and the vehicle controller can receive the above vehicle speed signal. When the vehicle controller receives the vehicle start signal, it forms a power assistance curve as the first electrical signal and the vehicle speed signal change.
[0041] In addition, the parameter information of the rotation process of the input shaft 21 may include at least one of the rotation angle information and torque information of the input shaft 21 .
[0042] In the above-mentioned power steering system, the power assist device 24 has a worm gear reduction mechanism 241, which amplifies the torque through the reduction mechanism and effectively and accurately transmits the power assist to the rack 25, so that the steering system has high transmission efficiency, low energy loss, more energy saving, good noise, vibration and sound roughness performance, and a good driving environment for the whole vehicle. When driving, the power assist device 24 can reverse the power assist, and the road feel feedback is good, which can bring a better driving control feel.
[0043] In addition, in the above embodiment, the first sensor is integrated with the steering gear 2 to replace the angle sensor in the traditional electro-hydraulic power-assist structure. The signal transmission efficiency is faster, the steering response is quicker, and the space utilization rate of the steering column 1 is higher, which can achieve cost reduction per vehicle.
[0044] In an optional embodiment, the model of the first sensor may be TAS011061-71.
[0045] In an alternative embodiment, if Figure 2 As shown, the power assist device 24 also includes a motor 242, which is connected to the steering gear controller 23 by signal. The steering gear controller 23 can adjust the size of the power assist output by the motor 242 according to the curve signal. The motor 242 transmits power to the rack 25 through the worm gear reduction mechanism 241, so that the rack 25 moves left and right. Pull rods 26 are connected to both ends of the rack 25, and the ends of the pull rods 26 can be connected to the wheels. Under the drag of the rack 25, the pull rods 26 realize the left and right turning of the wheels and assist the rotation of the wheels.
[0046] The above configuration enables the power assist device 24 to perform multiple functions. For example, the power assist device 24 can have a speed-dependent assist function. When driving at low speeds or when parking, the power assist device 24 provides greater assist force, making steering easier and reducing driver effort. When the vehicle is traveling at high speeds, the system automatically reduces the assist force, increasing steering wheel stability and ensuring high-speed driving stability and safety. Another example is that the power assist device 24 can have a return-to-center control function, assisting the vehicle in automatically returning to center after turning. The steering controller 23 controls the magnitude and direction of the assist provided by the motor 242 to help the vehicle maintain a straight line and enhance driving convenience. Another example is that the power assist device 24 can have a damping control function. When driving on uneven roads, the power assist device 24 can provide appropriate damping force to suppress steering wheel vibration caused by road vibration and improve driving smoothness. Another example is that the power assist device 24 can have a road vibration suppression function, using the reverse torque of the motor 242 to offset vibration caused by road unevenness, reducing the vibration transmitted to the steering wheel and improving driving comfort. For another example, the power assist device 24 may have an inertia and friction compensation function. In view of the internal friction and inertia of the steering system, the steering controller may adjust the power assist output of the power assist device 24 to ensure the linearity and consistency of the steering response.
[0047] The amount of power required for each function can be calculated using the following data.
[0048] Set the required assist torque of the foundation to T_assist:
[0049] T_assist=K_assist(v)·T_driver;
[0050] Set the assist torque required for active return to T_return:
[0051] T_return=K_return(θ,ω,v)·T_Δθ;
[0052] Set the assist torque required for damping compensation to T_damp:
[0053] T_damp=K_damp(v,ω)·ω;
[0054] Set the assist torque required for friction compensation to T_friction:
[0055] T_friction=K_friction·sign(ω);
[0056] Set the assist torque required for inertia compensation to T_inertia:
[0057] T_inertia=K_inertia·dω / dt;
[0058] The assist torque required for the output torque of the motor 242 is set to T_motor:
[0059] T_motor=T_assist+T_return+T_damp+T_friction+T_inertia.
[0060] Where: K_assist(v) is the assist gain coefficient with vehicle speed;
[0061] K_return(θ, ω, v) is the return gain coefficient with angle, angular velocity and vehicle speed;
[0062] K_damp(v,ω) is the damping gain coefficient with vehicle speed and angular velocity;
[0063] K_friction is the friction gain coefficient;
[0064] K_inertia is the inertia gain coefficient;
[0065] T_driver is the driver's input hand torque;
[0066] T_Δθ is the aligning torque based on the difference between the target angle and the current angle;
[0067] ω is the angular velocity of the motor 242;
[0068] sign(ω) is the sign function of the angular velocity of the motor 242. The sign function is also called the sign function. Its function is to obtain the sign (positive or negative) of a number. The basic definition of the sign function is: if the parameter is greater than 0, return 1; if the parameter is less than 0, return -1; if the parameter is equal to 0, return 0;
[0069] dω / dt is the rate of change of the angular velocity of the motor 242 with time.
[0070] The power steering system described above can utilize a controller area network to achieve precise communication and coordinated control with other key systems in the car.
[0071] Specifically, the steering controller 23 can be connected to the vehicle engine controller, braking system, body control module and other signals through the controller local area network to exchange key performance parameters (such as vehicle speed, wheel angle, vehicle status) to control the power assist device 24 in real time to adjust the steering assist to ensure steering accuracy and vehicle stability.
[0072] Data sharing and command execution between the steering controller 23 and other systems are achieved through the controller area network, ensuring seamless coordination and responsiveness between systems. This integrated control mechanism enhances vehicle driving safety and operational comfort.
[0073] Of course, in other implementations, the steering controller 23 and the vehicle controller can also collaborate to implement advanced features such as lane departure warning, lane departure warning, and automatic parking, enhancing driving safety and convenience. The steering controller 23 can also monitor vehicle performance and diagnose potential faults in real time, automatically recording fault codes and quickly locating problems, thereby simplifying maintenance and reducing repair time.
[0074] In an optional embodiment, the steering gear controller 23 may include a main chip, an auxiliary chip, a memory chip, a driver chip, a CAN (Controller Area Network) transceiver, and a motor position chip, all of which are signal-connected to each other. The main chip may be SPC560P50L3CEFAY; the auxiliary chip may be PIC16F1824; the memory chip may be M95160-DRMN3TP / K; the driver chip may be A4935KJPTR-T; the CAN transceiver may be TJA1042T; and the motor position chip may be TAD2141.
[0075] In an optional embodiment, if Figure 2 As shown, the input shaft 21 and the worm gear reduction mechanism 241 are both coupled with the rack 25 through gears to achieve left and right movement of the rack 25.
[0076] In an optional embodiment, the steering controller 23, the power assist device 24 and the rack 25 are all integrated in the main housing 22. Compared with the electro-hydraulic power assist structure, the system has a higher degree of integration, space utilization and modularization, is easy to repair, and has lower maintenance costs. At the same time, the overall weight of the system is reduced, and the space layout in the vehicle is flexible and can be adjusted according to the progress of surrounding components to improve space utilization.
[0077] The structure of the steering column 1 is described in detail below:
[0078] In an alternative embodiment, if Figures 3 to 5 As shown, the steering column 1 includes an upper column 11, a lower column 12 and a limiter 13. The upper column 11 slides with the lower column 12 along the extension direction of the lower column 12, and a clamping structure that increases friction is provided between the upper column 11 and the lower column 12; the limiter 13 is connected to the upper column 11, and the limiter 13 is configured to limit the position of the upper column 11 when the pressure between the upper column 11 and the lower column 12 is less than a first threshold value and to loosen from the upper column 11 when the pressure between the upper column 11 and the lower column 12 is greater than the first threshold value.
[0079] The above arrangement allows the steering column 1 to have a margin for collapse. When the steering wheel is hit head-on in an unexpected situation, the impact force is directly transmitted to the upper column 11. If the above first threshold is 4500N, then when the impact force reaches the critical value of 4500N, the limiter 13 will loosen from the upper column 11, and the upper column and the lower column will use the mutual friction to absorb the energy generated by the impact, thereby protecting the driver. Combined with the airbag built into the steering wheel, it can effectively prevent the driver from being injured by the impact.
[0080] The above-mentioned first threshold is not limited to 4500N, but may be less than 4500N, such as 4300N, 4000N or 3800N, or slightly greater than 4500N, such as 4550N, 4600N or 4650N, so that the limit member 13 can be loosened from the upper column 11 in time after the steering wheel is subjected to a strong impact.
[0081] In an alternative embodiment, if Figure 3 As shown, the tube body 111 in the upper tube column 11 is sleeved on the outside of the lower tube column 12 , and the clamping structure includes a plurality of protrusions 1111 protruding from the inner wall of the tube body 111 to the outer wall of the lower tube column 12 .
[0082] In the above embodiment, the multiple protrusions 1111 can press the outer surface of the lower column 12, so that after the limit member 13 is loosened from the upper column 11, the upper column 11 moves relative to the lower column 12, and the impact force is offset by the action of friction, ensuring that the impact force during collapse is maintained at about 2000N. Combined with the airbag on the steering wheel, it can effectively protect the driver and reduce the damage caused by accidents.
[0083] Specifically, a plurality of protrusions 1111 may be provided, and the plurality of protrusions 1111 are evenly distributed around the circumference of the tube body 111 .
[0084] Specifically, if Figure 6 and Figure 7 As shown, the upper column 11 includes a mounting bracket 112 connected to the limit member 13, and the limit member 13 includes a limit block 131 and a limit strip 132. One end of the limit strip 132 is covered on the outside of the limit member 13 to achieve a clamping connection with the limit member 13, and the other end passes through the mounting bracket 112 and guides the movement of the mounting bracket 112 during collapse along its own extension direction. The limit block 131 and the limit strip 132 are both provided with connecting holes, and bolts and other connecting parts can pass through the connecting holes of the two to connect the limit block 131 and the limit strip 132 to the frame.
[0085] When the steering wheel is hit head-on, the impact force is directly transmitted to the upper column 11. When the impact force reaches a first threshold, the limiter 13 and the mounting bracket 112 in the upper column 11 are loosened, and the upper column 11 as a whole can move relative to the lower column 12, absorbing the energy generated by the impact through friction.
[0086] like Figure 5 As shown, the mounting bracket 112 has a clamping portion 1121 that holds the limiting block 131 . Under the action of the impact force, the clamping portion 1121 is destroyed, thereby achieving the loosening of the mounting bracket 112 and the limiting block 131 .
[0087] In an optional embodiment, the limit member 13 is used to be installed on the vehicle frame, and the power steering system also includes a second sensor and a limit member controller, and the second sensor and the limit member 13 are both connected to the limit member controller signal; the second sensor is used to detect the impact force on the steering wheel and convert it into a force signal, and the limit member controller is used to receive the force signal and control the limit member 13 to loosen from the frame when the impact force is greater than a second threshold value.
[0088] During use, since the mounting bracket 112 and the limit piece 13 in the upper column 11 are mechanically connected, after the steering wheel is hit, the connection structure between the mounting bracket 112 and the limit piece 13 is destroyed to achieve the loosening of the mounting bracket 112 and the limit block 131. However, due to factors such as the processing technology, it cannot be effectively guaranteed that when the pressure between the upper column 11 and the lower column 12 is greater than the first threshold, the mounting bracket 112 will definitely be loosened from the limit block 131. Therefore, the above embodiment has a redundant design.
[0089] The second sensor can be a pressure sensor, which is used to detect the impact force exerted on the steering wheel and convert it into a force signal. The limit member controller can receive the force signal and control the limit member 13 to loosen from the frame when the impact force is greater than the second threshold value. Even if the mounting bracket 112 is not loosened from the limit block 131 under the action of the above-mentioned impact force, the upper column 11 can be moved relative to the lower column 12, which has a double protection effect.
[0090] In an optional embodiment, the second threshold is equal to the first threshold.
[0091] Of course, the second threshold value may also be slightly greater than the first threshold value, for example, greater than the first threshold value by 20N, 50N or 100N, so that when the pressure between the upper tube column 11 and the lower tube column 12 is greater than the first threshold value, the limit member controller controls the limit member 13 to loosen from the frame only when the mounting bracket 112 is not loosened from the limit block 131.
[0092] On the basis of the above embodiment, the limiter 13 may be provided with a structure such as an electric claw connected to the frame, and the electric claw is connected to the limiter controller. When the impact force is greater than the second threshold, the limiter controller controls the electric claw to loosen from the frame.
[0093] In an alternative embodiment, if Figure 6 and Figure 7 As shown, the upper pipe column 11 further includes an adjusting member 113 , which is connected between the mounting bracket 112 and the pipe body 111 . The adjusting member 113 is used to adjust and lock the installation angle of the pipe body 111 relative to the mounting bracket 112 .
[0094] When in use, the lower tube column 12 can be rotatably connected to the frame 18. The position of the tube body 111 relative to the mounting bracket 112 can be unlocked by the adjusting member 113, and then the tube body 111 can be rotated. At this time, the tube body 111 drives the lower tube column 12 to rotate relative to the frame 18. After rotating to the appropriate position, the position of the tube body 111 relative to the mounting bracket 112 can be locked by the adjusting member 113.
[0095] Specifically, the upper column 11 can be adjusted up and down by ±3° relative to the mounting bracket 112 to meet the needs of drivers of different body shapes.
[0096] Specifically, waist-shaped grooves may be provided on both sides of the mounting bracket 112. Figure 4As shown, the adjusting member 113 may include a connecting shaft 1131, a bracket 1132 and a handle 1133; one end of the connecting shaft 1131 passes through the waist-shaped groove on one side of the mounting bracket 112 and is rotatably connected to the handle 1133, and the other end of the connecting shaft 1131 passes through the waist-shaped groove on the other side of the mounting bracket 112 and abuts against the outer surface of the mounting bracket 112 to limit the position of the connecting shaft 1131 along its own axial direction relative to the mounting bracket 112; the bracket 1132 is fixedly connected to the connecting shaft 1131, and the bracket 1132 is U-shaped with the opening facing upward, and a bending plate is extended obliquely upward from the top end of the bracket 1132, and the bending plate is fixedly connected to the tube body 111.
[0097] During use, the handle 1133 can be rotated forward to loosen the handle 1133, so that the handle 1133 can stop pressing on the mounting bracket 112. The user can adjust the angle of the tube body 111 relative to the mounting bracket 112. After the adjustment is completed, the handle 1133 can be rotated in the reverse direction to tighten it, so that the handle 1133 and the end of the connecting shaft 1131 can clamp the mounting bracket 112 together, locking the position of the tube body 111.
[0098] Specifically, the handle 1133 can be threadedly engaged with the connecting shaft 1131.
[0099] In an alternative embodiment, if Figure 6 As shown, the steering column 1 also includes an intermediate shaft 14, a first universal joint 15, a second universal joint 16 and an output shaft 17. One end of the intermediate shaft 14 is rotatably connected to the end of the lower column 12 facing away from the upper column 11 through the first universal joint 15, and the other end of the intermediate shaft 14 is rotatably connected to the output shaft 17 through the second universal joint 16. The output shaft 17 is connected to the input shaft 21.
[0100] When in use, the power of the upper column 11 can be transmitted to the intermediate shaft 14 and the output shaft 17 through the lower column 12, and then transmitted to the input shaft 21 of the steering gear 2 through the output shaft 17. The setting of the first universal joint 15 and the second universal joint 16 can adapt to the changes in the extension direction of the intermediate shaft 14 during the power transmission process, and effectively transmit the power to the output shaft 17 without getting stuck.
[0101] In an optional embodiment, the first universal joint 15 and the second universal joint 16 both include a first joint 151, a second joint 152 and a connecting frame 153, and the connecting frame 153 can be in a "cross" shape. The first joint 151 rotates with the connecting frame 153 around a first direction and the rotation angle is greater than 40°, and the second joint 152 rotates with the connecting frame 153 around a second direction and the rotation angle is greater than 40°, and the second direction is perpendicular to the first direction.
[0102] The above setting can control the torque fluctuation generated during steering to ≤1%, making the steering smoother and more silky.
[0103] like Figure 6 As shown, the intermediate shaft 14 includes an upper intermediate shaft 141 and a lower intermediate shaft 142 that is slidably engaged with the upper intermediate shaft along an extending direction of the upper intermediate shaft 141 .
[0104] Specifically, the first joint 151 in the first universal joint 15 is fixedly connected to the lower tube column 12, the second joint 152 in the first universal joint 15 is fixedly connected to the upper intermediate shaft 141, the first joint 151 in the second universal joint 16 is fixedly connected to the lower intermediate shaft 142, and the second joint 152 in the second universal joint 16 is fixedly connected to the output shaft 17.
[0105] An embodiment of the second aspect of the present invention provides a commercial vehicle. The commercial vehicle provided by the embodiment of the second aspect of the present invention includes the above-mentioned power steering system.
[0106] When the above-mentioned commercial vehicle is in use, under the premise of ensuring that the small battery inside the vehicle provides DC12V power supply, the vehicle ignition generates a READY signal and transmits it to the steering gear controller 23 and the vehicle controller. The steering gear controller 23 can control the power-assisting device 24 to provide an initial power assist to ensure that the driver has power assist when steering. After the driver turns the steering wheel, the first sensor detects the parameter information of the rotation process of the input shaft 21 and converts it into a first electrical signal. The vehicle controller generates a power assist curve based on the first electrical signal, the vehicle speed signal and the vehicle start signal and converts it into a curve signal. The steering gear controller 23 adjusts the magnitude of the power assist output by the power-assisting device 24 according to the curve signal.
[0107] The commercial vehicle provided in the second aspect of the present invention has the power steering system provided in the embodiment of the first aspect of the present invention, thereby having all the beneficial effects of the power steering system provided in the embodiment of the first aspect of the present invention.
[0108] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A power steering system, characterized in that: It comprises a steering column (1), a steering gear (2) and a vehicle controller, wherein the steering gear (2) comprises an input shaft (21), a main housing (22), a steering gear controller (23), a power assist device (24) and a rack (25), and the steering column (1) is connected to the input shaft (21); The input shaft (21) is rotationally connected to the main housing (22) and is provided with a first sensor, the first sensor being used to detect parameter information of the rotation process of the input shaft (21) and convert it into a first electrical signal, the first sensor and the steering gear controller (23) are both signal-connected to the vehicle controller, the vehicle controller is used to generate a power-assistance curve according to the first electrical signal, the vehicle speed signal and the vehicle start signal and convert it into a curve signal, the steering gear controller (23) is signal-connected to the power-assistance device (24), the steering gear controller (23) is used to adjust the magnitude of the power-assistance output by the power-assistance device (24) according to the curve signal, and the power-assistance device (24) includes a worm gear reduction mechanism (241); The input shaft (21) and the worm gear reduction mechanism (241) are both in transmission cooperation with the rack (25); The steering column (1) comprises an upper column (11), a lower column (12) and a stopper (13); the upper column (11) is slidably matched with the lower column (12) along the extension direction of the lower column (12); and a clamping structure for increasing friction is provided between the upper column (11) and the lower column (12); The limiting member (13) is configured to limit the position of the upper tubular string (11) when the pressure between the upper tubular string (11) and the lower tubular string (12) is less than a first threshold value, and to be released from the upper tubular string (11) when the pressure between the upper tubular string (11) and the lower tubular string (12) is greater than the first threshold value; The upper pipe column (11) includes a mounting bracket (112), the limiting member (13) includes a limiting block (131) and a limiting strip (132), one end of the limiting strip (132) is wrapped around the outside of the limiting block (131), and the other end passes through the mounting bracket (112), and the mounting bracket (112) has a clamping portion (1121) that holds the limiting block (131); The limiting member (13) is used to be mounted on a vehicle frame, and the power steering system further comprises a second sensor and a limiting member controller, wherein the second sensor and the limiting member (13) are both connected to the limiting member controller by signal. The second sensor is used to detect the impact force on the steering wheel and convert it into a force signal, and the limiter controller is used to receive the force signal and control the limiter (13) to loosen from the vehicle frame when the impact force is greater than a second threshold value.
2. The power steering system according to claim 1, characterized in that: The second threshold is equal to the first threshold.
3. The power steering system according to claim 1, characterized in that: The upper pipe column (11) is sleeved on the outside of the lower pipe column (12), and the clamping structure includes a plurality of protrusions (1111) protruding from the inner wall of the upper pipe column (11) to the outer wall of the lower pipe column (12).
4. The power steering system according to claim 1, characterized in that: The upper pipe column (11) comprises a pipe body (111), a mounting bracket (112) and an adjusting member (113); the mounting bracket (112) is connected to the limiting member (13); the adjusting member (113) is connected between the mounting bracket (112) and the pipe body (111); the adjusting member (113) is used to adjust and lock the installation angle of the pipe body (111) relative to the mounting bracket (112).
5. The power steering system according to claim 1, characterized in that: The steering column (1) further comprises an intermediate shaft (14), a first universal joint (15), a second universal joint (16) and an output shaft (17), one end of the intermediate shaft (14) being rotatably connected to an end of the lower column (12) away from the upper column (11) via the first universal joint (15), the other end of the intermediate shaft (14) being rotatably connected to the output shaft (17) via the second universal joint (16), and the output shaft (17) being connected to the input shaft (21).
6. The power steering system according to claim 5, characterized in that: The first universal joint (15) and the second universal joint (16) both comprise a first joint (151), a second joint (152) and a connecting frame (153), wherein the first joint (151) is rotatably engaged with the connecting frame (153) around a first direction and a rotation angle is greater than 40°, and the second joint (152) is rotatably engaged with the connecting frame (153) around a second direction and a rotation angle is greater than 40°, and the second direction is perpendicular to the first direction.
7. The power steering system according to claim 1, characterized in that: The power assist device (24) further includes a motor (242), the motor (242) being connected to the steering gear controller (23) by signal, and the motor (242) being coupled to the rack (25) via the worm gear reduction mechanism (241).
8. A commercial vehicle, characterized in that: Comprising the power steering system according to any one of claims 1 to 7.
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