ELECTROMECHANICALLY ACTUATABLE PRESSURE MEDIUM CONTROL VALVE
20240167579 ยท 2024-05-23
Inventors
Cpc classification
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T15/025
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to an electromechanically actuatable pressure medium control valve (10) comprising a valve housing (12), an armature (14), a pole core (18), a valve casing (20) with a control cross-section (26.1), and a closing element (16) controlling a pressure medium flow through the control cross-section (26.1).
The invention proposes a development of a pressure medium control valve (10) of this type, which allows for a different throttling of a pressure medium flow between a first valve opening (26) and a second valve opening (28) according to the flow direction of the pressure medium flow through the pressure medium valve (10).
Claims
1-11. (canceled)
12. An electromechanically actuatable pressure medium control valve, comprising: a valve housing in which an armature that can be driven to perform a stroke movement in a direction of a longitudinal valve axis is movably accommodated; a pole core configured to limit the armature movement in one direction of movement; a valve casing with a control cross-section formed thereon; and a closing element which controls a pressure medium flow through the control cross-section and can be actuated by the armature; wherein the pressure medium control valve is configured for different throttling of a pressure medium flow between a first valve opening and a second valve opening according to a flow direction of a pressure medium flow through the pressure medium valve
13. The electromechanically actuatable pressure medium control valve according to claim 12, wherein the closing element is coupled to the armature by a tether device, wherein the tether device allows for movement of the closing element relative to the armature in or against a stroke direction of the armature.
14. The electromechanically actuatable pressure medium control valve according to claim 12, wherein the tether device includes an armature capsule which is fixed to the armature and in which the closing element is displaceably accommodated.
15. The electromechanically actuatable pressure medium control valve according to claim 14, wherein the armature capsule is cup-shaped, is firmly anchored to an outer periphery of the armature by a cup rim, and has a cup bottom with an aperture.
16. The electromechanically actuatable pressure medium control valve according to claim 15, wherein the closing element is a plunger having a plunger shaft and a plunger head, wherein the plunger protrudes through the aperture with an end section having the plunger head and cooperates directly with the control cross-section.
17. The electromechanically actuatable pressure medium control valve according to claim 16, wherein a radially projecting axial stop is formed on the plunger shaft.
18. The electromechanically actuatable pressure medium control valve according to claim 17, wherein the axial stop is a circumferential annular bead with stop surfaces lying opposite one another, a first stop surface of the stop surfaces facing an end face of the armature, and a second stop surface of the stop surfaces facing an area of the armature capsule which encloses the aperture.
19. The electromechanically actuatable pressure medium control valve according to claim 16, wherein the closing element is displaceably accommodated inside a closing element guide on the armature with an end section of the plunger shaft facing the armature.
20. The electromechanically actuatable pressure medium control valve according to claim 19, wherein the closing element guide is in contact with one of the first and second valve openings of the pressure medium control valve via a pressure medium channel formed on the armature so as to conduct pressure medium.
21. The electromechanically actuatable pressure medium control valve according to claim 12, wherein the armature is acted upon by a valve spring, and the pressure medium control valve can be switched by electrical control from a basic position, in which a pressure medium connection between the first valve opening and the second valve opening is interrupted, into an open position.
22. The electromechanically actuatable pressure medium control valve according to claim 12, wherein the pressure medium control valve controls a pressure medium connection provided between a master brake cylinder and a pedal travel simulator in an electronically pressure controllable vehicle brake system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] An exemplary embodiment of the present invention is illustrated in the figures and explained in greater detail in the subsequent description.
[0018] Each of the figures shows a longitudinal section of a pressure medium control valve according to the present invention. Corresponding components are indicated in the figures with uniform reference signs.
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0022] In the figures, only the pressure medium-carrying part of a pressure medium control valve is shown. An electrically controllable valve coil for actuating the armature is not shown.
[0023] The pressure medium-carrying part of a pressure medium control valve 10 shown in
[0024] The valve housing 12 is a slim, hollow cylindrical component which is expanded once in a step-like manner around its periphery at its end facing the valve casing 20. The expansion forms a shoulder 22 projecting radially from the valve housing 12, which merges into an annular collar 24 at its outer end. This annular collar 24 extends in the direction of the longitudinal valve axis L and encloses one of the open ends of the valve housing 12. The valve casing 20 is inserted into this open end until it stops against the inside of the shoulder 22.
[0025] The annular collar 24 surrounds a facing section of the valve casing 20 and forms a force-fit connection therewith.
[0026] Accordingly, the valve casing 20 and the valve housing 12 are connected to form a single unit.
[0027] The valve casing 20 constricts in a bottle-neck shape toward its end remote from the valve housing 12, and terminates in an end face where a first valve opening 26 is formed. This first valve opening 26 is arranged centrically to the longitudinal valve axis L and forms a control cross-section 26.1 of the pressure medium control valve 10 directed towards the interior of the valve housing 12. The control cross-section 26.1 is designed by way of example as a conical valve seat and is closed by the abutting closing element 16 in the illustration according to
[0028] A second valve opening 28 is formed as a cylinder bore at the neck of the valve casing 20. The second valve opening 28 is located in an area where an annular filter 30 is attached to the outer periphery of the valve casing 20, so that pressure medium flowing to or from the second valve opening 28 can be filtered of contaminants.
[0029] A caulking ring 32 is threaded onto the cylindrical section of the valve housing 12. This caulking ring 32 rests on the outside of the shoulder 22 on the valve housing 12 and serves to hold down the pressure medium control valve 10 in a provided valve receptacle of a housing block (each not shown). A peripheral contour of the caulking ring 32 is formed for caulking it to the housing block. A caulking tool is used to plastically deform material of the housing block in such a way that this caulked material covers the caulking ring 32 at least in sections.
[0030] The valve housing 20 protrudes with its housing section located above the caulking ring 32 according to
[0031] The armature 14 is divided into a plurality of successive longitudinal sections in the direction of the longitudinal valve axis L. The armature 14 is axially guided on the inner wall of the valve housing 12 via a guide section 14.1. A plurality of continuous and outwardly open longitudinal channels 34 are formed peripherally on this guide section 14.1, through which a pressure medium passes into an armature chamber 36 formed between the pole core 18 and the armature 14.
[0032] The guide section 14.1 extends into the interior of the valve casing 20, where it merges into a transition section 14.2 of the armature 14 and ends at a cylinder section 14.3. This cylinder section 14.3 has an outer dimension that is significantly smaller than the outer dimension of the guide section 14.1. Between an inner wall of the valve casing 20 and a peripheral surface of the armature 14 in the area of the transition section 14.2 and the cylinder section 14.3, there is a valve chamber 38 filled with pressure medium, into which the above-mentioned longitudinal channels 34 open at the guide section 14.1.
[0033] A closing element guide 40 is formed on the armature 14 in the center of the cylinder section 14.3. This closing element guide 40 comprises a blind-hole bore which is stepped in its internal diameter from the outside to the inside and which is connected to the valve chamber 38 via a pressure medium channel 42 extending transversely thereto, by way of example. Because the second valve opening 28 formed on the neck section of the valve casing 20 also opens into the valve chamber 38, there is a pressure medium-conducting connection between the closing element guide 40 and this second valve opening 28.
[0034] In the closing element guide 40, the closing element 16 of the pressure medium control valve 10 is guided axially, i.e., in the direction of the longitudinal valve axis L, so that it can be displaced. The closing element 16 is a plunger having a cylindrical plunger shaft 16.1 and a spherically curved plunger head 16.2 formed at one of the ends of this plunger shaft 16.1. According to
[0035] A radially projecting axial stop 16.3 is formed approximately in the center of the cylindrical plunger shaft 16.1. This axial stop 16.3 is designed as a circumferential annular bead with two stop surfaces 16.4, 16.5 opposite each other in plane-parallel arrangement. In
[0036] This armature capsule 44 forms a cup-shaped tether device with a circumferential cup rim 44.1 and a cup bottom 44.2 formed integrally with this cup rim 44.1. The cup bottom 44.2 is provided with an aperture 44.3 through which the closing element 16 protrudes from the armature capsule 44 with its end section comprising the plunger head 16.2 and cooperates directly with the control cross-section 26.1 of the pressure medium valve 10. The dimensions of the aperture 44.3 are larger than the outer dimensions of the plunger shaft 16.1.
[0037] The armature capsule 44 is force-fit fixed via its cup rim 44.1 to the periphery of the cylinder section 14.3 of the armature 14 in such a way that the closing element 16 accommodated inside the armature capsule 44 can move relative to the armature 14 in the direction of the longitudinal valve axis L. For this purpose, the armature capsule 44 is pushed onto the cylinder section 14.3 only to such an extent that a distance is established between the end face of the armature 14 and the inside of the cup bottom 44.1 which is greater than the dimensions of the axial stop 16.3 of the closing element 16 located at this distance.
[0038]
[0039]
[0040] According to
[0041]
[0042] In the valve position according to
[0043] For a change from the closed position according to
[0044] When the electrical control of the valve coil is reduced, these attractive forces decrease so that the spring tension of the valve spring 33 is sufficient to return the armature 14 and the closing element 16 tethered to it to the basic position shown in
[0045] Of course, changes or additions to the described exemplary embodiment are possible without the resulting products leaving the scope of protection of the present application.
[0046] It should be noted in this connection that the explained pressure medium control valve 10 has been disclosed merely by way of example as a normally closed valve. A normally open variant would be implementable accordingly.
[0047] Furthermore, it is not necessarily necessary for the present invention to provide the pressure medium control valve 10 with a valve coil as an actuator.