Device for operating a hydraulic brake system, brake system
11084478 · 2021-08-10
Assignee
Inventors
- Frank Schneider (Ilsfeld, DE)
- Dieter Blattert (Kirchheim/Neckar, DE)
- Frank Baehrle-Miller (Schoenaich, DE)
Cpc classification
B60T7/22
PERFORMING OPERATIONS; TRANSPORTING
B60T13/588
PERFORMING OPERATIONS; TRANSPORTING
B60T13/686
PERFORMING OPERATIONS; TRANSPORTING
B60T13/741
PERFORMING OPERATIONS; TRANSPORTING
B60T7/042
PERFORMING OPERATIONS; TRANSPORTING
B60T13/662
PERFORMING OPERATIONS; TRANSPORTING
B60T13/146
PERFORMING OPERATIONS; TRANSPORTING
B60T13/745
PERFORMING OPERATIONS; TRANSPORTING
B60T2230/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
B60T13/66
PERFORMING OPERATIONS; TRANSPORTING
B60T13/68
PERFORMING OPERATIONS; TRANSPORTING
B60T13/58
PERFORMING OPERATIONS; TRANSPORTING
B60T7/22
PERFORMING OPERATIONS; TRANSPORTING
B60T13/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for operating a hydraulic brake system of a motor vehicle includes generating a force for displacing a brake piston of a wheel brake of the brake system for the actuation thereof via a pressure generator and an electromechanical actuator of the brake system. The method further includes actuating one or more of the pressure generator and the actuator to set a parking brake function and monitoring the operability of the brake system. The method further includes monitoring the actuator for a change of the operating state thereof, and suspending the monitoring for a specifiable period of time depending on a detected change.
Claims
1. A method for operating a hydraulic brake system of a motor vehicle, the brake system including at least one wheel brake, a brake pedal device, at least one actuatable pressure generator configured to hydraulically actuate the at least one wheel brake, and an electromechanical actuator associated with the at least one wheel brake and configured to actuate the at least one wheel brake, the method comprising: generating a force configured to displace a brake piston of the at least one wheel brake so as to actuate the at least one wheel brake, the force generated with each of the at least one pressure generator and the electromechanical actuator; actuating one or more of the at least one pressure generator and the electromechanical actuator so as to set a parking brake function; monitoring the operability of the brake system; and monitoring the electromechanical actuator for a change of the operating state thereof and suspending the monitoring for a specifiable period of time depending on a detected change.
2. The method according to claim 1, wherein the monitoring is suspended if it is determined that the electromechanical actuator starts to move in order to produce a displacement of the brake piston.
3. The method according to claim 1, wherein the monitoring is suspended if the electromechanical actuator signals a tightening status.
4. The method according to claim 1, wherein the monitoring is suspended if the electromechanical actuator signals a releasing status.
5. The method according to claim 1, wherein the electromechanical actuator signals or sends a status message when a change in the status occurs.
6. The method according to claim 1, wherein the period of time is specified depending on an anticipated movement time of the brake piston.
7. The method according to claim 1, wherein during the suspension of the monitoring, one or more of a detection of measurement data and an analysis of measurement data is deactivated.
8. A device for operating a brake system of a motor vehicle, the brake system including at least one wheel brake, a brake pedal device, at least one actuatable pressure generator configured to hydraulically actuate the at least one wheel brake, and an electromechanical actuator associated with the at least one wheel brake and configured to actuate the at least one wheel brake, the device comprising: a control unit configured to execute a method for operating the brake system, the control unit specifically configured to: actuate each of the at least one pressure generator and the electromechanical actuator to generate a force configured to displace a brake piston of the at least one wheel brake so as to actuate the at least one wheel brake, actuate one or more of the at least one pressure generator and the electromechanical actuator so as to set a parking brake function, monitor the operability of the brake system, and monitor the electromechanical actuator for a change of the operating state thereof and suspend the monitoring for a specifiable period of time depending on a detected change.
9. A brake system for a motor vehicle, comprising: at least one wheel brake; a brake pedal device; at least one electrohydraulic pressure generator configured to hydraulically actuate the at least one wheel brake; an electromechanical actuator associated with the at least one wheel brake and configured to actuate the at least one wheel brake; and a control unit configured to execute a method for operating the brake system, the control unit specifically configured to: actuate each of the at least one pressure generator and the electromechanical actuator to generate a force configured to displace a brake piston of the at least one wheel brake so as to actuate the at least one wheel brake, actuate one or more of the at least one pressure generator and the electromechanical actuator so as to set a parking brake function, monitor the operability of the brake system, and monitor the electromechanical actuator for a change of the operating state thereof and suspend the monitoring for a specifiable period of time depending on a detected change.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure is described in detail below using the drawings. For this purpose, in the figures:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6)
(7) The brake circuit 4 is first connected to a master brake cylinder 6 of the brake pedal device 3, characterized in that moreover the brake pedal device 3 comprises a brake pedal 7 that can be operated by the driver and a brake force booster. The brake circuit 4 comprises a changeover valve 8 and a high pressure switching valve 9 that are connected in parallel with each other and are disposed downstream of the master brake cylinder 6. The changeover valve 8 is implemented to be normally open and enables a flow of the hydraulic medium of the brake circuit, i.e. the brake fluid, in both directions. The high pressure switching valve 9 is implemented to be normally closed and enables a throughflow of brake fluid towards the wheel brakes 2 when in the energized state. The changeover valve 8 is furthermore connected to the two wheel brakes 2 with the interposition of an inlet valve 10 that is implemented to be normally open in both directions. Moreover, in each case a normally closed outlet valve 11 is associated with the wheel brakes 2 of the brake circuit 4. A hydraulic pressure reservoir 12 is connected downstream of the outlet valves 11. On the outlet side, the outlet valves 11 are moreover connected to a suction side of a pump 13, which is connected on the pressure side to the brake circuit 4 between the changeover valve 8 and the inlet valves 10. The pump 13 is mechanically coupled to an electric motor 14, characterized in that the pump 13 and the electric motor 14 together form a pressure generator 15 of the brake system 1. It is provided that the electric motor 14 is associated with the pumps 13 of both brake circuits 4 and 5. Alternatively, it can also be provided that each brake circuit 4, 5 comprises a dedicated electric motor 14. On the pressure side, a respective pressure sensor P/U is associated with the respective pump 13 in each case, characterized in that only one is shown in
(8) If the two changeover valves 8 of the brake circuits 4, 5 are closed, then the hydraulic pressure in the downstream section of the brake circuits 4, 5, i.e. between the changeover valves and the wheel brakes 2, remains locked in or maintained, even if the brake pedal 7 is released by the driver.
(9)
(10) Moreover, an electromechanical actuator 22 that comprises an electric motor 23 and a gearbox 24 that works in conjunction with the electric motor 23 is associated with the brake piston 19. The gearbox is implemented as a spindle gearbox that comprises a spindle 25 that is rotationally fixedly connected to the electric motor 23 and a spindle nut 26 that is rotationally fixedly supported in the brake piston 19 and longitudinally displaceable on the spindle 25. If the spindle is driven by the electric motor 23, then as a result the spindle nut 26 is longitudinally displaced in the brake piston 19. During this, the spindle nut 26 is displaced by the rotary motion of the spindle 25 to the extent that the spindle comes into contact with an axial stop 27 of the brake piston 19 in the cavity 20, whereby the brake piston 19 is taken along with the spindle nut 26. By actuating the actuator 22, thereby a force can also be applied to the brake piston 19 to displace the piston, characterized in that said force can be overlaid by or can overlay the force applied by the hydraulic pressure.
(11) More robust monitoring of the brake system 1 is carried out with increased system availability by the method described below, which is carried out by a control unit that is not illustrated here of the brake system 1.
(12) At the vehicle level, the overall function and the availability of the brake system 1 is determined therefrom and is controlled. Based on the functional monitoring of the sub-systems, functional monitoring is activated or deactivated. As a result, overall reliability is increased.
(13) Using a flow chart,
(14) In the step S3, the monitoring of the operation of the brake system 1 is suspended, either by deactivating the detection of measurement data or suspending the analysis of the measurement data. The measurement data is in particular measurement variables of the actuator 22, such as in particular the operating current of the actuator 22, which changes with the load on the brake piston and the movement thereof. Thus, the pressure monitoring of the brake system is deactivated. With the suspension of the monitoring, a counter starts to run.
(15) In the subsequent query S4, the elapsed time is compared with a specifiable limit that defines a specified period of time. Said period of time or the limit is in particular specified depending on an anticipated period of movement of the brake piston 19. In this case, the period of movement comprises the start of the movement of the brake piston from for example the released position to the end of the movement of the piston in the tightened position or vice-versa. If the period of time in step S4 has not yet elapsed (n), then the process returns to the step S3. But if the time has elapsed (j), then in a subsequent step S5 the monitoring is re-activated and the method is terminated in the step S6. The method is started whenever the brake system 1 is checked for a drop in pressure.
(16) On start-up, the status of the actuator is continuously monitored according to step S2. If the status of the actuator does not change (n), then the process goes directly to the step S5 or the monitoring of the brake system 1 is maintained. The method only takes a status change into account, whereas the static state of the actuator 22 is not taken into account for the monitoring of the hydraulic brake system. As a result, a particularly simple and inexpensive method is implemented.
(17)