Brake system for a vehicle and method for braking a vehicle
The brake system addresses the challenge of ensuring brake fluid volume by prefilling the wheel brake circuit with a pressure transducer, achieving a compact and efficient brake system design.
Patent Information
- Application Number
- JP2020076394
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-05-09
- Filing Date
- 2020-04-23
- Publication Date
- 2025-10-01
- Estimated Expiration
- 2040-04-23
Smart Images

Figure 0007747433000001 
Figure 0007747433000002
Abstract
Description
[Technical Field]
[0001] Brake systems for vehicles, particularly motor vehicles, such as cars or trucks, are usually realized as electrohydraulic brake systems. Brake systems of this type generally have a master brake cylinder with a displacement piston. The master brake cylinder may be directly operated manually or by a brake booster. The hydraulic pressure generated in the master brake cylinder is then transmitted to the wheel brakes to generate brake pressure. Such brake systems usually incorporate a pressure converter circuit, which has pressure converters connected to the wheel brakes via intake and discharge valves so that the brake pressure can be converted independently of the master brake cylinder. Such systems are described, for example, in US Pat. No. 5,529,999. [Background technology]
[0002] In these types of systems, in the event of brake booster failure, the generation of brake pressure is typically assisted by a pressure transducer which pumps brake fluid from the master brake cylinder to the wheel brake circuits to build brake pressure.
[0003] So-called brake-by-wire systems are also increasingly being used. In such brake systems, hydraulic pressure is generated in a simulator device by actuating a master brake cylinder. The pressure generated by the master brake cylinder or the adjustment stroke of the master brake cylinder's displacement piston is detected, and a corresponding braking request signal is generated from the results. A pressure generator connected to the wheel brake circuit regulates the brake pressure in the wheel brake circuit according to the braking request signal for actuating the wheel brake. For such brake systems, for example, Patent Document 2 describes a method for prefilling a wheel brake circuit, in which the wheel brake cylinder is pressed against the friction surface of the wheel brake by the pressure generator generating pressure in the wheel brake circuit independently of the braking request signal.
[0004] Brake systems of this type are increasingly being combined with pressure transducers. It is desirable to provide a sufficiently large volume for brake fluid in the master brake cylinder so that the pressure transducer can effectively assist in generating brake pressure in the event of a pressure generator failure. If the voltage supply for the pressure transducer fails, the full brake pressure must be generated manually using the displacement piston of the master brake cylinder. For this purpose, it is desirable to realize a displacement piston with as small a cross section as possible. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] European Patent Publication No. 0281769 [Patent Document 2] U.S. Patent No. 7,806,486 Summary of the Invention
[0006] According to the invention, a braking system having the features of claim 1 and a method for braking a vehicle having the features of claim 6 are provided.
[0007] According to a first aspect of the present invention, there is provided a brake system for a vehicle, comprising a master brake cylinder with a displacement piston movable from a home position within a master brake cylinder volume by input power, a brake fluid reservoir tank connected to the master brake cylinder volume that is in fluid exchange with the master brake cylinder volume when the displacement piston is in the home position, a sensor device for generating a braking demand signal representative of the input power, a wheel brake circuit with at least one wheel brake including a friction surface and a wheel brake cylinder movable toward the friction surface, an electrically operated pressure generator connected to the wheel brake circuit for generating brake pressure in the wheel brake circuit in accordance with the braking demand signal, a pressure transducer connected to the wheel brake circuit for converting the brake pressure, the pressure transducer connectable to the master brake cylinder volume, and a control system connected to the sensor device, the pressure generator and the pressure transducer, in particular for exchanging electrical or electromagnetic signals or for data communication. The control system is designed to operate the pressure generator in accordance with a braking demand signal to generate brake pressure, calculate an operating state of the pressure generator, calculate the position of the displacement piston using the braking demand signal, and when the operating state of the pressure generator is calculated to be inoperable and the displacement piston is in a basic position, connect the pressure transducer to the master brake cylinder volume to apply the wheel brake cylinder to the friction surface, and operate the pressure transducer so that the pressure transducer pumps brake fluid from the master brake cylinder volume to the wheel brake circuit.
[0008] According to a second aspect of the present invention, there is provided a method for braking a vehicle, the method including calculating a position of a displacement piston of a master brake cylinder, the displacement piston being movable out of a home position by input power to generate a braking request signal within a master brake cylinder volume of the master brake cylinder, where when the displacement piston is in the home position, a brake fluid reservoir tank is in fluid exchange with the master brake cylinder volume and the pressure generator connected to a wheel brake circuit is activated to generate brake pressure in accordance with the braking request signal, and when the operational state of the pressure generator is calculated to be inoperative and the displacement piston is calculated to be in the home position, performing a pre-fill of the wheel brake circuit. The pre-filling includes connecting a pressure transducer connected to the wheel brake circuit to the master brake cylinder volume and pumping brake fluid from the master brake cylinder volume into the wheel brake circuit by the pressure transducer to apply wheel brake cylinders of the wheel brake circuit to friction surfaces of the wheel brakes. The next step in the method involves applying input power to generate brake pressure in the wheel brake circuits by sliding a displacement piston in the master brake cylinder.
[0009] The method according to the second aspect of the invention may in particular be carried out using a brake system according to the first aspect of the invention, and therefore the advantages and features described above and below in relation to one of the aspects of the invention also apply to the other aspects, respectively.
[0010] The idea behind the present invention is therefore to detect the operating state of the pressure generator and, if it is detected that the pressure generator is stuck or inoperable, for example due to an interruption or failure of the electrical voltage supply, to prefill the wheel brake circuit with brake fluid by the pressure transducer. This is done, according to the present invention, when the displacement piston of the wheel brake cylinder is in its basic position, i.e., when it is not being operated. In the basic position, the connecting opening between the reservoir tank and the master brake cylinder volume is opened by the displacement piston, so that brake fluid can be additionally supplied from the reservoir tank to the master brake cylinder volume. When the displacement piston is moved out of the basic position, the connecting opening is covered or closed by the displacement piston.
[0011] Prefilling the wheel brake circuits improves the braking performance of the brake system because it ensures that a sufficiently large brake fluid volume is always present in the wheel brake circuits and in the hydraulic cylinder volumes. This makes it easier to assist brake pressure generation, for example, by a pressure transducer. Furthermore, the diameter of the master brake cylinder can be reduced, which on the one hand allows for a more compact design of the brake system and on the other hand requires less input power to generate a given brake pressure.
[0012] Preferred embodiments and implementations follow from the dependent claims which, in conjunction with the description, refer to the independent claims.
[0013] According to one embodiment of the brake system, the control system comprises a first control device connected to the sensor device and the pressure generator and a second control device connected to the first control device and the pressure transducer. Optionally, this provides two functionally separate control devices that are connected to each other for data exchange, for example via a wired or wireless data connection. This advantageously facilitates a space-saving design of the brake system, for example if multiple control devices are each arranged in a housing, in which the pressure transducer or pressure generator is arranged.
[0014] According to another embodiment, the pressure transducer device comprises a pump driven by an electric motor, in which case the electric motor is connected to a control system, and the electric motor is operated in particular by motor control commands that the control system, in particular the two control devices, generates based on vehicle acceleration data received, for example, at a data interface of the two control devices.
[0015] According to another embodiment, the pressure generating device has a pressure generating / displacing piston that can be displaced by an electric motor, in which case the electric motor is connected to a control system, and the electric motor is in particular operated by motor control commands that are generated by the control system, in particular the first control device, on the basis of a braking request signal that is provided by the sensor device to a data interface of the first control device.
[0016] In another embodiment of the brake system, the master brake cylinder volume is defined by a cylindrical inner surface of a housing having a diameter in the range of 17 mm to 21 mm, in particular in the range of 19.05 mm, thereby realizing a particularly compact brake system in which a high brake pressure can be effectively generated by the pre-filling even in the event of a pressure-generating device failure.
[0017] According to one embodiment of the method, if, before pre-filling, the operating state of the pressure generator is determined to be inoperative and the displacement piston is determined to have left its home position, a brake pressure correction is performed, which includes connecting a pressure transducer to the master brake cylinder volume and pumping brake fluid from the master brake cylinder volume into the wheel brake circuit to generate brake pressure in the wheel brake circuit according to a braking request signal. Thus, if the pressure generator fails and the displacement piston is positioned outside its home position, thereby closing the connecting opening to the reservoir, brake pressure generation is assisted by the pressure transducer, which further improves braking performance.
[0018] According to another embodiment, the pressure generator is disconnected from the wheel brake circuit before prefilling and, if applicable, before brake pressure correction.
[0019] In this specification, "connecting" in relation to components, lines, etc. of a hydraulic system is understood to mean making a connection for conducting fluid between said system, component, line, etc., and "disconnecting" is understood to mean disconnecting said connection. Connection and disconnection are effected in particular by opening and closing valves, e.g. solenoid valves, connecting the systems, components or lines. [Brief explanation of the drawings]
[0020] [Figure 1] FIG. 1 is a simplified schematic diagram of a hydraulic circuit diagram for a braking system according to one embodiment of the present invention. [Figure 2] 1 is a flowchart of a method according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0021] The invention will now be described with reference to the figures of the drawings.
[0022] In the drawings, unless stated to the contrary, like reference numbers indicate identical or functionally similar elements.
[0023] 1 shows a schematic diagram of a brake system 1 for a vehicle, such as a PKW (passenger car), LKW (goods vehicle) or bus, which comprises a master brake cylinder 2, a brake fluid reservoir tank or reservoir tank for short 3, a sensor device 4, two wheel brake circuits 5A, 5B, a pressure generator 6, a pressure converter 7 and a control system 8.
[0024] The master brake cylinder 2 includes a master brake cylinder volume 20 and at least one displacement or actuator piston 21. The master brake cylinder volume 20 may be defined by an inner surface 22a of a cylinder housing 22. For example, the inner surface 22a may define a cylindrical volume, particularly a circular cross-section. As shown schematically in FIG. 1, the diameter d22 of the cross-section of the inner surface 22a may be in the range of 17 mm to 21 mm, particularly 19.05 mm, or may be 19.05 mm. As further shown schematically in FIG. 1, the cylinder housing 22 may be formed by a wall of a first housing 11, in which a pressure generator 6 may also be provided next to the master brake cylinder 2, as shown by way of example in FIG. 1.
[0025] As shown by way of example in FIG. 1, first and second displacement pistons 21A, 21B can be arranged in master brake cylinder volume 20. For reasons of clarity, only displacement piston 21 will be referred to below. However, this configuration naturally applies both to first displacement piston 21A and to second displacement piston 21B. Displacement piston 21 is movable in master brake cylinder volume 20 by applying an input power F, thereby displacing the hydraulic fluid present in master brake cylinder volume 20. The input power F is applied, for example, via brake pedal P, which is kinematically connected to displacement piston 21 via rod 10. FIG. 1 shows the basic position of displacement piston 21, in which displacement piston 21 is biased by reset device 23, for example a spring, when no input power F is applied or when an input power F smaller than the reset force of the reset device is applied.
[0026] The reservoir tank 3 is connected to the master brake cylinder volume 20 via a hydraulic line 30. In the base position of the displacement piston 21, a connecting opening 31, which opens the hydraulic line 30 into the master brake cylinder volume 20, is opened by the displacement piston 21, so that a fluid-guided connection for exchanging brake fluid between the reservoir tank 3 and the master brake cylinder volume 20 is formed. When the displacement piston 21 is moved from the base position to the working position by applying an input power F in order to displace brake fluid from the master brake cylinder volume 20, the connecting opening 31 is closed by the displacement piston 21, thereby isolating the reservoir tank 3 from the master brake cylinder volume 20.
[0027] The sensor device 4 is used to provide an electrical or electromagnetic brake demand signal S4 which represents the input power F and thus the brake pressure demanded by the driver operating the brake pedal. The sensor device 4 may, for example, be a pressure sensor which detects the pressure in a simulator circuit (not shown) connected to the master brake cylinder volume 20. Alternatively or additionally, a control stroke sensor may be used for this purpose which detects the control stroke through which the displacement piston 21 is moved.
[0028] The brake system 1 shown by way of example in FIG. 1 has two wheel brake circuits 5A, 5B each with two wheel brakes 5. In general, at least one wheel brake circuit 5 with at least one wheel brake 50 may be provided. Each wheel brake 50 has a friction surface 51, for example in the form of a brake disc, and a wheel brake cylinder 52 that can be moved toward the friction surface 51 to apply a friction force or pressed against the friction surface 51 with a force corresponding to the brake pressure by hydraulic braking pressure in the wheel brake circuit 5. As shown diagrammatically in FIG. 1, the wheel brake circuits 5 are connected to a pressure transducer 7, which will be described in more detail below. In this case, the pressure transducer 7 merely forms a hydraulic line when the pressure transducer 7 is not activated.
[0029] The pressure generator 6 serves to generate brake pressure in the wheel brake circuit 5 and, for this purpose, is connected to, for example, hydraulic lines 15, 16 which connect the pressure generator 6 to the wheel brake circuit 5 via the pressure converter 7. The pressure generator 6, shown schematically by way of example in FIG. 1, comprises an electric motor 60 and a pressure generating / displacing piston 61 which can be slidable in a pressure generating volume 62 by the electric motor 60. The electric motor 60 can be kinematically connected to the pressure generating / displacing piston 61 via, for example, a spindle drive or other transmission 63 which is provided for converting rotary motion into linear motion. As shown by way of example in FIG. 1, the pressure generator 6 can be accommodated in the first housing 11 together with the master brake cylinder 2.
[0030] The pressure transducer 7, shown only diagrammatically in FIG. 1, is used to convert the brake pressure in the wheel brake circuit 5. For example, the pressure transducer 7 includes a pump 71 driven by an electric motor 70 to vary the brake pressure. Two pumps 71 are shown in FIG. 1 by way of example, driven by a common electric motor 70. The pressure transducer 7 may further include intake and discharge valves (not shown) for supplying brake fluid to or withdrawing it from the wheel brake cylinders 52. The pressure transducer 7 is connected to the master brake cylinder 2 via lines 15, 16 and can be hydraulically connected to the master brake cylinder volume 20, for example, by means of a switchable separate valve (not shown). As can be seen in FIG. 1, the pressure transducer 7 may also be accommodated in a separate second housing 12. The second housing 12 may be fixed to the first housing 11.
[0031] 1 , the control system 8 comprises a first controller 81 and a second controller 82. Each of these controllers 81, 82 may comprise a processor (not shown), e.g., a CPU, FPGA, ASIC, etc., and a data storage device (not shown), in particular a non-volatile memory, e.g., a hard disk, CD, DVD, Blu-ray disc, or flash memory. Each of the controllers 81, 82 is designed to process input signals, e.g., by means of a processor, and to generate control commands based on these input signals in order to operate the various components of the brake system 1.
[0032] 1, for data exchange, the control system 8 is connected to the sensor device 4, the pressure generator 6 and the pressure transducer 7 via a wired connection, for example via an Ethernet or CAN-BUS system, or via a wireless connection, for example via WIFI, Bluetooth, etc. In particular, the sensor device 4 and the pressure generator 6, in particular the electric motor 60, are connected to a first control device 81, and the pressure transducer 7, in particular the electric motor 70 of the pressure transducer 7, is connected to a second control device 82. Furthermore, in this case, the first and second control devices 81, 82 are preferably connected to each other by a wireless or wired data connection.
[0033] To brake the vehicle using the brake system 1, an input power F is applied by the brake pedal P to the displacement piston 21 of the master brake cylinder 2, causing the displacement piston 21 to move from its basic position. The sensor device 4 detects this movement or input power and generates a braking request signal S4 accordingly, which is received by the first control device 81. Based on this braking request signal S4, the first control device 81 generates a control command C6 for operating the electric motor 60 of the pressure generating device 6. When the electric motor 60 is operated, the electric motor 60 moves the pressure generating / displacing piston 61 to displace or receive brake fluid from or into the pressure generating volume 62 in order to change the brake pressure in the wheel brake circuit 5 in accordance with the braking request signal S4. Optionally, the pressure converter 7 converts the brake pressure based on a control command C6 generated by the second controller 82, which generates the control command C6 based on an input signal SX, e.g., wheel slip.
[0034] An example of a method, shown as a flow chart in FIG. 2, will now be described in relation to the braking system 1.
[0035] In a first step M1, the position of the displacement piston 21 is calculated, for example by the first control device 81, using the braking request signal S4. In a next step M2, the operating state of the pressure generator 6 is calculated. For example, the operating states "operable" and "inoperable" can be calculated. In the inoperable state, no brake pressure is generated by the pressure generator 6, for example because the electric motor 60 is overheated, the voltage supply to the electric motor 60 is interrupted or another operating fault exists. To calculate the operating state, the first control device 81 evaluates, for example, a sensor signal of a sensor (not shown) provided in the pressure generator 6 or another status signal generated by the pressure generator 6.
[0036] In step M2.1, it is checked whether the operating state of the pressure generator 6 is calculated as "inoperative." If this check results in a negative result, as indicated by the symbol "-" in FIG. 2, step M5 follows, in which the pressure generator 6 is activated to generate brake pressure according to the braking request signal S4, as described above. If the check M2.1 results in a positive result, as indicated by the symbol "+" in FIG. 2, step M2.2 follows, in which it is checked, for example by the first control device 81 evaluating the braking request signal S4, whether the displacement piston is in the basic position. If this check results in a positive result, as indicated by the symbol "+" in FIG. 2, step M3 follows.
[0037] In step M3, the wheel brake circuit 5 is pre-filled with brake fluid. The pre-filling M3 includes connecting the pressure transducer 7 to the master brake cylinder volume 20 (block M3.1). This can be done, for example, by the first or second control device 81, 82 issuing a control command to open a separate valve in order to hydraulically connect the lines 15, 16 to which the pressure transducer 7 is connected to the master brake cylinder volume 20. Optionally, prior to connecting the pressure transducer 7 to the master brake cylinder volume 20 in a suitable manner, the pressure transducer 6 is isolated from the wheel brake circuit 5, for example, by the first or second control device 81, 82 issuing a control command to close the separate valve connecting the pressure transducer 6 to the lines 15, 16.
[0038] Furthermore, the pressure transducer 7 pumps brake fluid from the master brake cylinder volume 20 to the wheel brake circuit 5 (block M3.2) in order to apply the wheel brake cylinders 52 of the wheel brake circuits 5 against the friction surfaces 51 of the wheel brakes 50. Since the displacement piston 21 is in its basic position, it opens the connection opening 31, so that when the pressure transducer 7 removes brake fluid from the master brake cylinder volume 20, additional brake fluid is supplied from the reservoir tank 3 into the master brake cylinder volume 20. This supply of brake fluid into the wheel brake circuit 5 causes the wheel brake cylinders 52 of each wheel brake 50 to apply against the friction surfaces 51. In this case, "applied" or "applying" refers to a negligibly small force, e.g., 1 m / s, between the wheel brake cylinders 52 and the friction surfaces 51. 2 ~12m / s 2 This may be interpreted as generating a predetermined friction force that is 3% or less compared to the friction force required to achieve a predetermined negative acceleration of the vehicle within a range of . To pump brake fluid from the master brake cylinder volume 20 to the wheel brake circuits 5, the first control device 81 generates, for example, a request signal S82 and transmits it to the second control device 82, where the request signal S82 represents the operating state of the pressure generator 6. Based on the request signal S82 and optionally on other input signals SX, such as the actual brake pressure in the wheel brake circuits 5, the second control device 82 generates a control command C7 that causes the pressure transducer 7 to operate. In particular, based on the control command C7, the pressure transducer 7 commands the pumping of a predetermined amount of brake fluid from the master brake cylinder volume 20 into the wheel brake circuits 5. This step M3 is periodically repeated depending on the driving situation, for example based on signals from the first or second control device 81, 82, to compensate for dynamic influences that cancel out the brake lining application (e.g., brake disc tilt).
[0039] To generate brake pressure in the wheel brake circuits, in step M4, a displacement piston 21 of the master brake cylinder 2 is displaced by applying an input power F, for example via the pedal P. A large volume of brake fluid is prefilled into the wheel brake circuits 5 due to the prefill. This allows the volume that must be displaced by the displacement piston 21 to adjust a given brake pressure in the wheel brake circuits 5 to be relatively small. This allows the master brake cylinder volume 20 to be relatively small, and in particular, to have a small diameter d22. This results in a very compact brake system. Furthermore, due to the reduced cross section, the force F required to adjust a given brake pressure is preferably reduced.
[0040] As further shown in FIG. 2, a brake pressure correction M6 can optionally be performed before the pre-fill M3. As indicated by the symbol "-" in FIG. 2, the determination in step M2.2 is negative. Therefore, if the operating state of the pressure generator 6 is calculated to be inoperative (block M2.1) and the displacement piston has been moved from its basic position (block M2.2), a brake pressure correction M6 is performed. This brake pressure correction includes a connection M4.1 connecting the pressure transducer 7 to the master brake cylinder volume 20, as described above in connection with step M3.1. Furthermore, a pumping M4.2 of brake fluid from the master brake cylinder volume 20 into the wheel brake circuit 5 is performed to generate a brake pressure in the wheel brake circuit 5 according to the braking request S4. In this case, the first control unit 81 generates a request signal S82 representative of the braking request signal S4 based on the braking request signal S4 and transmits this request signal S82 to the second control unit 82. The second control device 82 generates a control command C7 based on the request signal S82, and this control command C7 instructs the pressure transducer 7 to slide the displacement piston 21 of the master brake cylinder 2 with the input power F to supplement and generate the desired brake pressure. In particular, the electric motor 70 of the pressure transducer 7 operates to increase the pressure by the pump 71 in accordance with the control command C7.
[0041] Although the present invention has been specifically described with reference to several embodiments, it is not limited to these embodiments and can be modified in various ways. In particular, combinations of the embodiments are also contemplated. [Explanation of symbols]
[0042] 1. Brake system 2 Master brake cylinder 3 Brake fluid reservoir tank 4. Sensor device 5 Wheel brake circuit 5A, 5B Wheel brake circuit 6. Pressure generator 7. Pressure converter 8. Control System 11 First Housing 12 Second Housing 15,16 Hydraulic lines 20 Master brake cylinder volume section 21 Displacement piston or actuator piston 21A First displacement piston 21B Second displacement piston 22 Housing, cylinder housing 22a Inside surface 23 Reset device 30 Hydraulic pipeline 31 Connection opening 50 Wheel brake 51 Friction surface 52 Wheel brake cylinder 60 Electric motor 61 Pressure generating / displacing piston 62 Pressure generating volume 63 Transmission 70 Electric Motor 71 Pump 81 First control device 82 Second control device C6,C7 control command d22 diameter F Input power, force P Brake pedal S4 Braking request signal S82 request signal SX input signal M1 First Step M2 Next Steps M2.1 Steps / Blocks / Inspections M2.2 Step / Block M3 Step / Prefill M3.1 Blocks / Steps / Connections M3.2 Block / Pump M4.1 Connection M4.2 pressure feed M4, M5, M6.1, M6.2 steps M6 Brake pressure compensation
Claims
1. A braking system (1) for a vehicle, comprising: a master brake cylinder (2) having a displacement piston (21) movable in a master brake cylinder volume (20) from a basic position by an input power (F), a brake fluid reservoir tank (3) connected to the master brake cylinder volume (20) in fluid exchange with the master brake cylinder volume (20) when the displacement piston (21) is in a basic position, a sensor device (4) for generating a braking demand signal (S4) representative of input power (F); a wheel brake circuit (5) having at least one wheel brake (50) including a friction surface (51) and a wheel brake cylinder (52) movable toward the friction surface (51); an electrically operated pressure generator (6) connected to the wheel brake circuit (5) for generating brake pressure in the wheel brake circuit (5) in accordance with the braking request signal (S4); a pressure converter (7) connected to the wheel brake circuit (5) for converting brake pressure, the pressure converter (7) being connectable to the master brake cylinder volume (20); a control system (8) connected to the sensor device (4), the pressure generating device (6) and the pressure converting device (7); - operating the pressure generator (6) according to the braking request signal (S4) to generate brake pressure; - calculating the operating state of the pressure generator (6); Calculating the position of the displacement piston (21) using the braking request signal (S4); When the operating state of the pressure generator (6) is calculated to be inoperable and the displacement piston (21) is in a basic position, performing a pre-filling, which includes connecting the pressure transducer (7) to the master brake cylinder volume (20) and operating the pressure transducer (7) so that the pressure transducer (7) pumps brake fluid from the master brake cylinder volume (20) to the wheel brake circuit (5) in order to apply the wheel brake cylinder (52) to the friction surface, before the pre-filling, when the operating state of the pressure generator (6) is calculated as inoperable and the displacement piston (21) is in a position retracted from the basic position, performing a brake pressure correction, which comprises connecting the pressure converter (7) to the master brake cylinder volume (20) and pumping brake fluid from the master brake cylinder volume (20) into the wheel brake circuit (5) in order to generate a brake pressure in the wheel brake circuit (5) according to the braking request signal (S4), A braking system for a vehicle that is designed to:
2. 2. The brake system according to claim 1, wherein the control system (8) comprises a first control device (81) connected to the sensor device (4) and the pressure generating device (6), and a second control device (82) connected to the first control device (81) and the pressure converting device (7).
3. 3. A brake system according to claim 1, wherein the pressure converter (7) comprises a pump (71) driven by an electric motor (70), the electric motor (70) being connected to the control system (8).
4. 4. A brake system according to claim 1, wherein the pressure generating device (6) comprises a pressure generating / displacing piston (61) which is slidable by an electric motor (60), the electric motor (60) being connected to the control system (8).
5. 5. A brake system according to claim 1, wherein the master brake cylinder volume (20) is defined by a cylindrical inner surface (22a) of a housing (22), the inner surface (22a) having a diameter (d22) in the range of 17 mm to 21 mm, in particular in the range of 19.05 mm.
6. A method (M) for braking a vehicle, comprising: a method step (M1) of calculating the position of a displacement piston (21) of a master brake cylinder (2), said displacement piston (21) being movable out of a home position by an input power (F) for generating a braking request signal (S4) in a master brake cylinder volume (20) of said master brake cylinder (2), wherein a brake fluid reservoir tank (3) is in fluid exchange with said master brake cylinder volume (20) when said displacement piston (21) is in the home position; a method step (M2) of calculating the operating state of a pressure generating device (6) connected to the wheel brake circuit (5) which is operated to generate a brake pressure according to the braking request signal (S4), the method comprises the steps of: performing a pre-filling (M3) of the wheel brake circuit when the operating state of the pressure generating device (6) is calculated to be inoperable (M2.1) and the displacement piston is calculated to be in a basic position (M2.2), the pre-filling (M3) comprising: a step (M3.1) of connecting a pressure transducer (7) connected to the wheel brake circuit (5) to the master brake cylinder volume (20); and a step (M3.2) of pumping brake fluid from the master brake cylinder volume (20) into the wheel brake circuit (5) by the pressure transducer (7) to apply a wheel brake cylinder (52) of the wheel brake circuit (5) against a friction surface (51) of a wheel brake (50); and a method step (M4) of applying an input power (F) to slide the displacement piston (21) of the master brake cylinder (2) to generate brake pressure in the wheel brake circuit (5), 1. A method for braking a vehicle, comprising: if, before the pre-filling (M3), the operating state of the pressure generator (6) is calculated to be inoperable (M2.1) and the displacement piston is calculated to have exited its basic position (M2.2), then performing a brake pressure correction (M6), the brake pressure correction (M6) comprising the steps of: connecting the pressure converter (7) to the master brake cylinder volume (20); and pumping brake fluid from the master brake cylinder volume (20) into the wheel brake circuits (5) to generate brake pressure in the wheel brake circuits (5) in accordance with the braking request signal (S4).
7. 7. The method according to claim 6, wherein the pressure generator is disconnected from the wheel brake circuit (5) before the pre-filling (M3).
Citation Information
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