Hydraulic block for a hydraulic unit
09688256 ยท 2017-06-27
Assignee
Inventors
Cpc classification
F15B13/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87885
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F15B13/0814
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87877
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F15B13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T8/36
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hydraulic block for a hydraulic unit is configured to control the brake pressure in a slip-controlled vehicle brake system. Multiple pressure sensors are received in receptors that are defined by the hydraulic block and that are configured to place each of the pressure sensors in hydraulic contact with a respective brake circuit. The pressure sensors are configured to detect wheel brake pressures in the corresponding brake circuits. The hydraulic contact between the pressure sensors and the brake circuits is enabled by a common duct that includes a shut-off element configured to block a pressure medium connection between the brake circuits.
Claims
1. A hydraulic block for a hydraulic unit for controlling the brake pressure of a vehicle brake system with traction control, the hydraulic block defining: a plurality of sockets, each of which receives one of a pressure generator, a valve, and a pressure sensor; a plurality of fluid connections connecting a first set of the plurality of sockets to a first fluid circuit and connecting a second set of the plurality of sockets to a second fluid circuit, the first and second fluid circuits being hydraulically separated from each other, wherein a first pressure sensor is arranged in a first socket of the first set, and a second pressure sensor is arranged in a second socket of the second set; and a common duct hydraulically connected to the first and second sockets, wherein the hydraulic block includes a shut-off element fixed in the common duct at least partially between the first and second sockets so as to permanently prevent fluid communication through the common duct between the first and second fluid circuits.
2. The hydraulic block as claimed in claim 1, wherein the common duct is defined by a longitudinal bore that runs in a straight line and that is closed at each end.
3. The hydraulic block as claimed in claim 2, wherein: the common duct has a stepped shape in which a portion of the common duct from an outer end of the common duct to a step has a first diameter and a second portion of the common duct extending from the step away from the first portion has a second diameter; and the shut-off element is arranged in a region of the step.
4. The hydraulic block as claimed in claim 2, wherein: the common duct is further defined by a first bore portion having a first diameter and a second bore portion having a second diameter smaller than the first diameter; and the shut-off element of the common duct includes: an integral pin-shaped portion that has a head with a shape matched to a shape of the first bore portion; a shank that has a diameter that is smaller than a diameter of the head and that has a shape matched to the shape of the second bore portion; and the shank has a length configured such that the shut-off element seals off the second bore portion of the common duct when the head externally seals an orifice of the duct.
5. The hydraulic block as claimed in claim 1, wherein: a first side of the hydraulic block defines further sockets configured to receive connections for wheel brakes; and the common duct is defined by a blind bore, which opens out towards said first side of the hydraulic block.
6. The hydraulic block as claimed in claim 1, wherein the hydraulic block further defines: a first branch duct fluidly connecting the first socket to the common duct; a second branch duct fluidly connecting the second socket to the common duct; a third branch duct fluidly connecting a third socket of the first set to the common duct, the third socket receiving a first valve; and a fourth branch duct fluidly connecting a fourth socket of the second set to the common duct.
7. The hydraulic block as claimed in claim 6, wherein the third and the fourth branch ducts run in opposite directions towards each other and at angles of other than 90 to external faces of the hydraulic block.
8. The hydraulic block as claimed in claim 1, the plurality of sockets including: a first set of sockets that are configured to receive valves and that are located side by side in a straight first row on the hydraulic block; and a second set of sockets that are configured to receive valves and that are located side by side in a second row on the hydraulic block, which runs below and parallel to the first row; wherein the first socket, in which the first pressure sensor is arranged, is located above the first row and is connected one of the first set of sockets in the first row, and wherein the second socket, in which the second pressure sensor is arranged, is located between the first row and the second row, and is connected to one of the second set of sockets in the second row.
9. The hydraulic block as claimed in claim 8, wherein the common duct is in contact with the first and second sockets, and runs perpendicular to the first row and second row.
10. The hydraulic block as claimed in claim 8, the hydraulic block further defining additional sockets that are each configured to receive a connection with a wheel brake, the first socket being in fluid communication with a third socket of the additional sockets and the second socket being in fluid communication with a fourth socket of the additional sockets, wherein the third and fourth sockets are assigned to different fluid circuits of the at least two fluid circuits.
11. A hydraulic block for a hydraulic unit for controlling the brake pressure of a vehicle brake system with traction control, the hydraulic block defining: a plurality of sockets, each of which is configured to receive at least one of a pressure generator, a valve, and a pressure sensor; a plurality of fluid connections which are configured to connect sockets of the plurality of sockets to at least two fluid circuits that are hydraulically separated from each other, wherein at least one of the plurality of sockets is assigned to each of the at least two fluid circuits, a first socket of the assigned sockets is configured to receive a first pressure sensor and a second socket of the assigned sockets is configured to receive a second pressure sensor; and a common duct that hydraulically connects the first and second sockets which are assigned to different fluid circuits, the hydraulic block including a shut-off element arranged in the common duct, and that is configured to fluidically separate the at least two fluid circuits, wherein the shut-off element includes a ball, which is pressed into a bore portion of the common duct that has a diameter smaller than a diameter of the ball.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2) In
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) Sockets 14d for these pressure generators are situated between the second row 18b and the underlying third row 18c, in an arrangement in which their longitudinal axes 16d run parallel to the three rows 18, The sockets 14d assigned to the pressure generators each open out towards one of the opposite side faces 20 of the hydraulic block 10. Of these side faces only the left-hand side face 20 of the hydraulic block 10 is visible in
(7) Above the sockets 14d for the pressure generators, sockets 14e are provided for damper elements. Their longitudinal axes 16e likewise run parallel to the three rows 18a, 18b, 18c of the sockets 14 of the valves and to the sockets 14d of the two pressure generators. These too open out towards opposite side faces 20 of the hydraulic block 10.
(8) Sockets 14f and 14g for a total of three pressure sensors are furthermore provided on the hydraulic block. The sockets 14f for a first pressure sensor and for a second pressure sensor are situated one perpendicularly above another on an imaginary central axis 22 running vertically through the hydraulic block 10, which divides this into a left-hand and a right-hand part. The sockets 14 in the left-hand part and the sockets 14 in the right-hand part of the hydraulic block 10 are each connected to a hydraulic circuit by means of connecting ducts. The two hydraulic circuits are separated from one another, that is to say no fluid connection exists between the two hydraulic circuits, so that in the event of one brake circuit failing the other brake circuit remains serviceable. The socket 14f for the first pressure sensor is situated above the first row 18a of sockets 14a for valves and the socket 14f of the second pressure sensor lies between this first row 18a and the second row 18b of valve sockets. A socket 14g for the third pressure sensor is situated at the center of an imaginary square, the corners of which is formed by the longitudinal axes 16b and 16c of the sockets 14b and 14c of the valves in rows 18b and 18c in the left-hand part of the hydraulic block 10 in
(9) According to the disclosure the hydraulic contact of the sockets 14f for the first pressure sensor and the second pressure sensor is provided by a common duct 24. This takes the form of a blind bore, which opens out towards an upper side 26 of the hydraulic block 10 visible in
(10) A longitudinal axis 16f of the blind bore forming the common duct 24 runs perpendicular to the rows 18 of sockets for the valves in the area of the central axis 22 of the hydraulic block 10. The blind bore has one step in its inside diameter and is thereby subdivided into two bore portions 24a and 24b of differing inside diameters. The duct 24 has the bore portion 24a of larger diameter in the area where it opens out into the surroundings, whilst the bore portion 24b, on the other hand, situated in the interior of the hydraulic block 10 and forming the closed end, is reduced in its inside diameter. The transition from the bore portion 24a of larger inside diameter to the bore portion 24b of smaller inside diameter may be designed as a right-angled step or as a taper, for example.
(11)
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(13) The shut-off element 40b separates the fluid connection that otherwise exists between the two hydraulic circuits, so that the common duct 24 comprises a bore portion 24a connected to the one hydraulic circuit and a second bore portion 24b connected to the other hydraulic circuit.
(14)
(15) With a single pin-shaped shut-off and closing element 42 and a single pressing operation in a single duct 24 it is therefore possible both to separate the two hydraulic circuits from one another and to provide contacts for two pressure sensors with the two hydraulic circuits and finally to seal off the common duct 24 from the surroundings. This brings savings in overall space, weight, number of parts, production costs and assembly costs for the hydraulic block 10.
(16) Modifications or additions to the exemplary embodiments described are naturally feasible, without departing from the basic idea of the disclosure.