Vehicle antilock brake control system
A vehicular antilock brake control system does not require a lengthy extension piping from its actuator. The system provides for an accurate controlling method for maximizing a calculated road surface friction coefficient. Each wheel has a control unit consisting of a stress sensor, a controller and an actuator installed at the respective wheel. A stress value is detected, representative of road surface friction value or road surface friction coefficient value, for the corresponding wheel independently of the other wheels. In response to the output signal of the sensor, the controller regulates the actuator which controls brake fluid pressure applied to the respective wheel.
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The present invention relates to a novel system for controlling a vehicle antilock brake system (ABS) by means of stress sensors for detecting road surface friction forces of road surface friction coefficients for respective wheels which insures safe steering without locking of its wheels even during sudden braking.
There has been a mounting interest in the so-called antilock brake system which controls the brake fluid pressure on the wheel within a certain range (about 20%) of slip ratio between braking force and cornering force during sudden braking and an increasing number of vehicles are carrying such ABS systems for safe steering even during sudden braking.
The antilock brake system generally comprises a wheel speed sensor for detecting the locking tendency of the tire (wheel), a controller for outputting an actuator drive command according to the current wheel speed data and an actuator which, in response to said drive command, adjusts the brake fluid pressure. Among the known modes of ABS control are the three-system control (selectro-control) mode in which the brake fluid pressures to the front right and left wheels are independently controlled and, with one of the two rear wheels which is more liable to be locked as a reference, the brake fluid pressures for both rear wheels are controlled as a unit. A two-system control exists in which the front and rear wheels are respectively controlled as units or the diagonally located wheels are simultaneously controlled. Also, a simultaneous front and rear wheel control mode exists in which one of the rear wheels is controlled by the selectro-control method and with one of the front wheels which is harder to control as a reference, the brake fluid pressures to the two front wheels are simultaneously controlled.
Since the conventional antilock brake system described above uses one controller for controlling the brake fluid pressures to the four wheels either through three-system control or through two-system control, a long pipeline is required between the wheel cylinder of each wheel and the actuator. In the case of a large-sized vehicle such as a trailer or a large bus, which has a great overall length, the brake fluid pipeline has to span a great distance, with the result that not only a time lag is inevitable after the actuator receives a drive command and before the wheel cylinder of the wheel is supplied with a brake fluid pressure but also a transmission loss of the brake fluid pressure is liable to occur, so that the system cannot provide for exact brake control and, hence, cannot be said to be a fully safe antilock brake system.
The conventional ABS employing wheel speed sensors is a system which automatically controls the brake so as to bring the slip ratio into a certain range based on chassis speed and wheel speed but since the relationship between road surface friction coefficient and slip ratio is a variable dependent on the changing road surface condition, the conventional system may not provide for the maximal braking force depending on the road surface condition, with the result that the minimum braking distance cannot be insured for certain.
Furthermore, since the chassis speed is a value estimated from wheel speeds, the accuracy of slip ratio control is not high enough and in order to find the exact chassis speed, a complicated device such as a ground speed sensor or a chassis deceleration sensor is needed.
SUMMARY OF THE INVENTIONDesigned to overcome the above drawbacks of the prior art, the present invention has for its object to provide an ABS control system by which the right and left front and rear wheels of a vehicle are independently subjected to brake fluid pressure control through the utilization of a wheel sensor means adapted to directly detect the road surface friction force or road surface friction coefficient to thereby provide for exact anitlock brake control.
The invention provides an ABS control device comprising a plurality of control units each provided for each wheel or each set of wheels and consisting of a stress sensor for detecting a wheel stress such as road surface friction force or road surface friction coefficient, an actuator controller and an actuator for controlling a brake fluid pressure, the stress sensor detecting the stress, such as road surface friction force or road surface friction coefficient, of the corresponding wheel according to road surface condition and the controller responding to the signal output of the stress sensor to cause the actuator to adjust the brake fluid pressure so that the respective wheels are independently controlled.
According to a feature of the invention, the stress values such as road surface friction force or road surface friction coefficient values for respective wheels are independently detected automatically on sudden braking, the corresponding controllers of the respective control units output drive signals to the corresponding actuators according to the respective detection signals, and the actuators independently control the brake oil or air brake pressures so that the antilock brake system for each wheel or each set of wheels functions independently of the corresponding systems for the other wheels.
As will be understood from the above description, the invention comprises control units each consisting of a stress sensor for detecting the road surface friction force or road surface friction coefficient value, a controller and an actuator, each of the units being installed close to the corresponding wheel, so that it is no longer necessary to provide long hydraulic fluid lines, nor is there a time lag between a drive command from the controller and the application of a brake fluid pressure with the consequent improvement in braking precision. Moreover, each wheel or set of wheels can be provided with an antilock brake system which functions independently of the corresponding systems for the other wheels or sets of wheels, in which cases the antilock brake systems work independently according to detected stress values such as road surface friction force or road surface friction coefficient values for the respective wheels or sets of wheels so that a vehicle equipped with highly safe antilock brake systems can be provided.
The invention further provides an ABS control system wherein the respective control units are supplied with a control hydraulic pressure from a foot brake master cylinder.
In accordance with a feature of the invention, the control units provided for respective wheels are supplied with hydraulic fluid pressures from a single master cylinder and the respective actuators receiving drive commands from the corresponding controllers function independently to adjust the brake fluid pressures so that the antilock brake systems can be independently actuated for the respective wheels.
The invention also provides an ABS control system wherein control hydraulic oil sources for control units are provided for respective wheels or sets of wheels and each of said control oil sources comprises a high pressure control pressure generating means, a fluid reservoir means and a reversing means, so that the respective wheels or sets of wheels may be independently controlled.
In accordance with another feature of the invention, the control unit for each wheel or set of wheels is provided with a high-pressure control pressure generating means, a hydraulic oil reservoir means and a reversing means, thus shortening the pipelines connecting the respective controllers to the corresponding actuators and allowing each control unit to function independently and with high precision.
The invention further features an ABS control system wherein the control hydraulic pressure source is supplied with an auxiliary oil pressure from a foot brake master cylinder.
According to another feature of the invention, any deficiencies in control pressure in the control pressure sure generating means are compensated for by an auxiliary supply of pressure from the foot brake master cylinder so that the actuators of the respective control units can be driven at necessary hydraulic pressures with high precision.
The invention further provides an ABS control system wherein the control units are actuated on application of a sudden brake or receipt of the corresponding signal and the operations of the respective control units are coordinated and controlled by a central controller.
According to another feature of the invention, the operations of the control units provided for the respective wheels or sets of wheels are coordinated by a central controller so that a good coordination of the respective ABSs can be obtained.
BRIEF DESCRIPTION OF THE DRAWINGS
The preferred embodiments of the present invention are now described in detail with reference to the accompanying drawings.
Referring to
Referring to
Referring to
The strain sensor μ need not be the above-mentioned detector utilizing strain gauges but may for example be a semiconductor sensor, shear stress sensor, acceleration sensor, chassis speed sensor, wheel speed sensor or the like.
The control unit U need not be an integral assembly of the stress sensor μ, controller C and actuator A but these components may be disposed near the wheel or axle independently but operatively associated with one another so that they may function in the optimum manner to provide for necessary control according to wheel stress detection signals.
As the driver suddenly brakes, the stress sensors μ of the respective control units U independently detect stresses, such as current road surface friction forces or road surface friction coefficients, and independently transmit detection signals to the corresponding controllers C which are adapted to output drive commands to the corresponding actuators A. The respective actuators A receiving the drive commands from the controllers C according to the detection signals for the respective wheels are driven independently so that an antilock brake may be applied independently for each wheel. As indicated by broken lines in
In this manner, the bus is. equipped with 8 independently acting an antilock brake systems in a total of 8 positions, namely 4, positions, right and left, for the front wheels and 4 positions, right and left, for the rear wheels. The respective actuators A receive drive commands from the corresponding controllers according to detected stress values, such as road surface friction force or road surface friction coefficient values, for the respective wheels too adjust the brake fluid pressures independently. Thus, the antilock brakes for respective wheels can be independently actuated without requiring extended brake fluid lines.
The trailer is, thus, equipped with independently acting antilock brake systems ABC in two positions, right and left, for the front wheels and two positions, right and left, for the four rear wheels. The respective actuators A of said control units receive drive commands from the corresponding controllers C according to detected stress values, such as road surface friction force or road surface friction coefficient values, for each front wheel and for each couple of rear wheels couples to adjust the brake fluid pressures acting on the respective wheels independently. Thus, antilock brakes can be applied for sudden stopping without regard to chassis length or axle-to-axle distance for each front wheel and for each couple of rear wheels independently.
In the above embodiment, the actuator A of each control unit is supplied with a brake fluid from the master cylinder MP through a brake fluid line 30 and, therefore, complexity is introduced by the routing of the fluid line 30. However, when a control hydraulic pressure source S comprising a high-pressure control hydraulic pressure generating means, a fluid reservoir means and a reversing means is disposed for each control unit U as shown in
While the above embodiments have been described with reference to hydraulic oil brake control, the present invention is not limited to such hydraulic oil control but can be applied to pneumatic brake control with equal success.
Claims
1. An antilock brake system control system for a vehicle having at least a pair of axles in the rear or in the front of the vehicle, said control system having a control unit comprising:
- a stress sensor for detecting a wheel stress;
- an actuator controller providing an actuating signal to an actuator in response to an output signal provided by said stress sensor;
- said actuator adjusting brake fluid pressure in response to said actuating signal from said controller;
- said control unit being provided for each wheel or for a set of wheels of the vehicle;
- the first axle of said pair of axles is provided with said control units a control unit being related to each of the wheels of said first axle; and
- the wheels of the second axle of said pair of axles are connected through connecting pipes to the actuators of said control units of said first axle, each of said wheels being diagonally connected with one of said control units related to the wheel on the opposite side of the first axle.
Type: Application
Filed: May 18, 2006
Publication Date: Oct 5, 2006
Applicant: Japan Electronics Industry, Limited (Ikuno-ku)
Inventor: Nagao Miyazaki (Osaka-sayama)
Application Number: 11/436,777
International Classification: B60T 8/62 (20060101);