BRAKE SYSTEM FOR A MOTOR VEHICLE
20190375391 ยท 2019-12-12
Assignee
Inventors
Cpc classification
B60T2220/04
PERFORMING OPERATIONS; TRANSPORTING
B60T7/042
PERFORMING OPERATIONS; TRANSPORTING
B60T13/745
PERFORMING OPERATIONS; TRANSPORTING
B60T8/4081
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A brake system for a motor vehicle, including at least one wheel brake which can be actuated by a pressure build-up in a brake line on the wheel brake side, a brake pedal, a sensor for detecting actuation information relating to actuation of the brake pedal, a brake actuator for generating a brake pressure in a brake actuator-side brake line, and a controller by which, in a first operating mode of the brake system, the brake actuator is controlled as a function of the actuation information, at least in the first operating mode, the brake line on the wheel brake side being fluidly coupled to the brake line on the brake actuator side.
Claims
1-11. (canceled)
12. A brake system for a motor vehicle, comprising at least one wheel brake which can be actuated by a pressure build-up in a brake line on the wheel brake side, a brake pedal, a sensor for detecting actuation information relating to actuation of the brake pedal, a brake actuator for generating a brake pressure in a brake line on the brake actuator side, and a controller, by which, in a first operating mode of the brake system, the brake actuator is controlled as a function of the actuation information, the brake line on the wheel brake side being fluidically coupled to the brake line on the brake actuator side at least in the first operating mode, the brake system having a brake cylinder in which a brake pressure can be built up by means of a brake piston mechanically coupled to the brake pedal, wherein the brake cylinder is coupled via a brake cylinder valve to the wheel brake-side brake line which is closed in the first operating mode and opened in a second operating mode of the brake system.
13. The brake system according to claim 12, wherein the brake line on the wheel brake-side is coupled via a brake actuator valve to the brake line on the brake actuator-side which is open in the first operating mode and closed in the second operating mode.
14. The brake system according to claim 12, wherein the brake system has a feedback device by means of which a haptic feedback signal can be given on the brake pedal in the first operating mode, facilitating a pressure to be built up in a feedback line by the feedback device, which pressure is fluidically coupled to the brake cylinder at least in the first operating mode.
15. The brake system according to claim 14, wherein the brake cylinder is coupled via a feedback valve to the feedback line which is open in the first operating mode and closed in the second operating mode.
16. The brake system according to claim 12, wherein it comprises an integrated brake module and a pedal module formed separately therefrom, the pedal module comprising the brake cylinder, the brake piston, the brake pedal and the sensor, and the integrated brake module comprising the brake force actuator and the brake cylinder valve.
17. The brake system according to claim 16, wherein the integrated brake module additionally comprises a reservoir for a brake fluid and/or a valve block for controllably coupling the brake lines on the wheel brake side to the wheel brakes.
18. The brake system according to claim 16, wherein the pedal module is coupled to the integrated brake module via a connecting line which fluidically couples the brake cylinder to a line section on the brake module side which is connected to the brake cylinder valve.
19. The brake system according to claim 18, wherein the pedal module is additionally coupled to the integrated brake module via a further connecting line, by means of which the brake cylinder is fluidically coupled or can be coupled on the brake module side to a reservoir.
20. The brake system according to claim 12, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
21. The brake system according to claim 12, wherein it comprises multiple wheel brakes, wherein multiple brake lines on the wheel brake side are connected to the brake cylinder valve and/or to the brake actuator valve and/or wherein the brake system comprises multiple brake cylinder valves and/or multiple brake actuator valves, to each of which at least one brake line on the wheel brake side is connected.
22. The brake system according to claim 13, wherein the brake system has a feedback device by means of which a haptic feedback signal can be given on the brake pedal in the first operating mode, facilitating a pressure to be built up in a feedback line by the feedback device, which pressure is fluidically coupled to the brake cylinder at least in the first operating mode.
23. The brake system according to claim 13, wherein it comprises an integrated brake module and a pedal module formed separately therefrom, the pedal module comprising the brake cylinder, the brake piston, the brake pedal and the sensor, and the integrated brake module comprising the brake force actuator and the brake cylinder valve.
24. The brake system according to claim 14, wherein it comprises an integrated brake module and a pedal module formed separately therefrom, the pedal module comprising the brake cylinder, the brake piston, the brake pedal and the sensor, and the integrated brake module comprising the brake force actuator and the brake cylinder valve.
25. The brake system according to claim 15, wherein it comprises an integrated brake module and a pedal module formed separately therefrom, the pedal module comprising the brake cylinder, the brake piston, the brake pedal and the sensor, and the integrated brake module comprising the brake force actuator and the brake cylinder valve.
26. The brake system according to claim 17, wherein the pedal module is coupled to the integrated brake module via a connecting line which fluidically couples the brake cylinder to a line section on the brake module side which is connected to the brake cylinder valve.
27. The brake system according to claim 13, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
28. The brake system according to claim 14, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
29. The brake system according to claim 15, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
30. The brake system according to claim 16, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
31. The brake system according to claim 17, wherein the controller is set up to monitor at least one operating parameter of the brake system and to trigger a change of the brake system to the second operating mode if a fault condition dependent on the operating parameter is fulfilled.
Description
[0022] Further advantages and details of the invention result from the following embodiments and the associated illustrations. These schematically show:
[0023]
[0024]
[0025]
[0026] A purely hydraulic actuation path is provided in order to implement a fallback level that still enables reliable actuation of wheel brakes 5-8, even if, for example, sensor 14 or brake actuator 15 fail. For this the brake system 2 features a brake cylinder 18, in which a brake pressure can be built up by a brake piston 19 mechanically coupled with the brake pedal. In the following, it is initially assumed that the brake cylinder 18 is a single cylinder. The use of a master tandem brake cylinder and a second brake circuit will be discussed at a later stage.
[0027] The brake cylinder 18 is connected to the brake lines 9-12 on the wheel brake side via the brake cylinder valves 20, 21. The brake cylinder valves 20, 21 can be controlled by the controller 17. They are controlled such that they are closed in the first operating mode and therefore decouple the brake lines 9-12 on the wheel brake side from the brake cylinder. This implements a brake-by-wire system.
[0028] The brake cylinder valves 20, 21 are designed such that they have an open power supply in the event of an interruption. If, for example, controller 17 fails, brake system 2 automatically switches to the second operating mode, in which the brake cylinder 18 is fluidically connected to the brake lines 9-12 on the wheel brake side in order to implement a hydraulic actuation path from brake cylinder 18 to the wheel brakes 5-8, which enables brake actuation even without using the electronic components. In addition, the controller 17 can also specifically control valves 20 and 21 in order to switch to the second operating mode of brake system 2 if, as will be explained in detail at a later stage, certain basic conditions are met or certain faults are detected.
[0029] In the second operating mode, the brake lines 9-12 on the wheel brake side are decoupled from the brake actuator 15 and the brake line 16 on the brake actuator side. The two brake actuator valves 22, 23 are provided for this purpose, and can be closed by the controller 17 when switching to the second operating mode. The brake actuator valves are preferably designed such that they are normally closed.
[0030] To allow the brake pedal 13 to be actuated for a longer distance or to give a user haptic feedback when the pedal is actuated, brake system 2 has a feedback device 24. For this purpose, a pressure can be built up in a feedback line 25 by means of the feedback device, which in the first operating mode is coupled to the brake cylinder 18 via the feedback valve 26. The feedback device 24 is shown as a spring-loaded piston in
[0031] The feedback valve 26 can be closed by the controller 17 when switching to the second operating mode in order to decouple the feedback unit from the brake cylinder 18. The feedback valve is preferably designed such that it is normally closed in order to decouple the feedback device from the brake cylinder 18. On the one hand, this enables robust operation of the brake system in the second operating mode even in the event of a malfunction of the feedback device 24 in the second operating mode and, on the other hand, prevents an extension of the actuation paths of the brake pedal 13 by yielding to the feedback device in this operating mode.
[0032] In order to detect possible faults in the brake system 2 which should lead to a change to the second operating mode, the controller 17 records at least one operating parameter of the brake system. If a fault condition dependent on the operating parameter is fulfilled, the fulfillment of which fault condition indicates in particular a malfunction of the brake system 2 or at least one component of the brake system 2, the controller 17 triggers a change of the brake system to the second operating mode. For example, the controller 17 can detect pressure values in different lines of the brake system 2 via two pressure sensors 29, 30. In the first operating mode, the pressure sensor 29 arranged on the line section 28 detects a pressure which is determined by the pressure in the pressure cylinder 19 and the feedback device 24, i.e. an input pressure which correlates with the pedal position of the brake pedal 13 when the brake system is functioning correctly. In the first operating mode, the pressure sensor 30 records the pressure provided by the brake actuator 15 to the brake lines 9-12 on the wheel brake side, i.e. an output pressure of the brake system 2. With correct control and function of the brake actuator 15, this should be in a defined relationship with the pressure measured by the pressure sensor 29 at input. If the measured pressures deviate from this limit value by more than a specified amount, the controller 17 can trigger a change to the second operating mode.
[0033] As shown in
[0034] In addition, a second brake circuit could be provided. This allows an additional fallback level to be provided for the hydraulic brake system. Corresponding second brake circuits are known in the art, which is why the design of this second brake circuit need not be explained in detail. A change between the first and second brake circuit can follow via the valve block 32, which is also used for coupling with the reservoir 33. This valve block can be used, for example, to achieve a different braking behavior of individual wheels as part of a lane departure warning system or an anti-lock brake system.
[0035] A reservoir 33 for brake fluid is preferably provided on the integrated brake module 4 in order, for example, to compensate for a temperature expansion of brake fluid or over time or minor losses of brake fluid.