SOLENOID VALVE WITH IMPROVED DAMPING AND METHOD FOR PRODUCING SAME
20250277544 · 2025-09-04
Inventors
Cpc classification
F16K47/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2200/301
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0627
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K47/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A solenoid valve including a first connection, a second connection, an armature and a coil for moving the armature. The solenoid valve comprises: a first closure part which is coupled to the armature and opens or closes the first connection as a result of a movement of the armature; a second closure part which is coupled to the armature and opens or closes the second connection as a result of the movement of the armature; and a damping spring which is arranged between the first closure part and the second closure part and is configured to dampen the closing process of the first connection and/or the second connection.
Claims
1-10. (canceled)
11. A solenoid valve, comprising: a first connection and a second connection; an armature; a coil for moving the armature; a first closure portion, which couples to the armature, and which in response to a movement of the armature opens or closes the first connection; a second closure portion, which couples to the armature, and which in response to a movement of the armature closes or opens the second connection; and a damping spring, which is arranged between the first closure portion and the second closure portion, and which is configured to cushion the closure of the first connection and/or the second connection.
12. The solenoid valve of claim 11, wherein only one damping spring is arranged between the first closure portion and the second closure portion, and wherein the damping spring presses the first closure portion and the second closure portion away from each other.
13. The solenoid valve of claim 11, wherein the first closure portion is structurally identical to the second closure portion.
14. The solenoid valve of claim 11, further comprising: a third connection and a chamber in which the armature together with the first and second closure portions are linearly movable and the first, second and third connections provide a connection in the chamber; wherein in an energized state of the coil, the first closure portion closes the first connection and the second closure portion produces a fluid connection via the chamber between the second connection and the third connection, and wherein in a non-energized state of the coil, the second closure portion closes the second connection and the first closure portion produces a fluid connection via the chamber between the first connection and the third connection.
15. The solenoid valve of claim 11, wherein the armature extends cylindrically around the first closure portion and around the second closure portion and has a portion which protrudes axially over the first closure portion and a longitudinally extending side channel, and wherein the armature has at least two through-openings between an inner region of the armature and the side channel, of which a first through-opening is formed in the protruding portion and a second through-opening is formed in a region of the armature which is located axially between the first closure portion and the second closure portion to provide a pressure compensation between the inner region and an outer region of the cylindrical armature.
16. The solenoid valve of claim 15, wherein the at least two through-openings are structurally identical holes.
17. The solenoid valve of claim 15, wherein: the first and the second closure portion each have a head/shoulder region for closing the associated first or second connection, and the armature has a projection which protrudes radially into the inner space and, at an opposing end, an annular recess having a stop element, wherein the projection is configured to form a stop for the head/shoulder region of the first closure portion and the recess is configured in order, after the insertion of the first closure portion, the damping spring and the second closure portion via the stop element to fix the second closure portion with respect to the axial direction.
18. The solenoid valve of claim 17, wherein the stop element is a disk, which is fixed inside the recess by an edge compression of the armature.
19. A method for producing a solenoid valve, the solenoid valve having a first connection, a second connection, an armature having a cylindrical inner space and a coil for moving the armature, the method comprising: inserting a first closure portion in the inner space of the armature; inserting a damping spring in the inner space of the armature; and inserting a second closure portion in the inner space of the armature, wherein the first closure portion and the second closure portion are configured in order, when the armature is moved, to alternately open or close the first connection or the second connection, while the damping spring provides a damping when the first connection and/or the second connection is/are closed.
20. The method of claim 19, further comprising: forming a stop for the second closure portion by an edge compression of the armature to ensure a fixing of the first closure portion, the second closure portion and damping springs which are arranged therebetween inside the cylindrical hollow space of the armature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
DETAILED DESCRIPTION
[0028]
[0029] The coil 6 may, for example, be accommodated in a valve body housing 10 and may extend cylindrically around a core 4 and the armature 5. The core 4 may, for example, be securely arranged inside the coil 6 and provide as a through-opening the first connection 1. The armature 5 can be displaced in an axial direction (vertically in
[0030] The first and the second closure portions 7a, 7b may move relative to the armature 5 by the damping spring 8 being compressed. However, this movement is limited axially in both directions by a stop. To this end, the first and the second closure portions 7a, 7b each comprise a narrowed region 17a, 17b which forms a shoulder/head region, wherein the head portion serves to close the associated first or second opening 1, 2 and the shoulder acts as a stop.
[0031] Furthermore, the armature 5 comprises a projection 5c which protrudes radially into the inner space and which forms the stop for the shoulder portion 17a of the first closure portion 7a. The pressure spring 11 may also engage on this inner projection 5c and press the armature 5 away from the core 4. At an opposing end, in the armature 5 an annular recess 5d is formed. The annular recess 5d is, together with the head/shoulder region 17b of the second closure portion 7b, configured in such a manner that an exemplary disk 9 which is, for example, fixed in a simple manner by a compression of the armature 5 can be used at that location. Both closure portions 7a, 7b are then fixed in the armature 5 by an axial stop.
[0032] In the non-energized state of the coil 6, the pressure spring 11 pushes the armature 5 away from the core 4. The first closure portion 7a thereby opens the first connection 1 since the first connection portion 7a is also moved by the stop 5c. At the same time, the pretensioning force of the pressure spring 11 is sufficient to move the armature 5 until the armature 5 closes the opposing second connection 2 by the second closure portion 7b. The placement of the second closure portion 7b on the second connection 2 is in this instance damped by the damping spring 8.
[0033] When energy is applied to the coil 6, and consequently a magnetic field is produced, the armature 5 is pulled counter to the resilient tension of the pressure spring 11 magnetically in the direction toward the core 4 until the first closure portion 7a closes the first connection 1. When energy is applied to the coil, the armature 5 is pulled magnetically into the coil in the direction toward the connection 1. In this instance, the stop transmits as a result of the disk 9 the force from the armature 5 to the second closure portion 7b which via the damping spring 8 transmits the force to the first closure portion 7a. The pressing force when the first connection 1 is closed is consequently limited to the resilient force of the damping spring 8 and consequently protects the solenoid valve.
[0034] As a result of this movement, either the second connection 2 or the first connection 1 is opened or closed. When the second connection 2 is open (energized state), there is a fluid connection between the third connection 3 and the second connection 2. The third connection 3 may in addition to the second connection 2 be formed in the valve body 10 in a base portion. No further precautions for air guiding between the second and third connections 2, 3 are then required.
[0035]
[0036] It is self-evident that a plurality of through-openings 13 and/or a plurality of side channels may be provided in order to distribute the air flows as a result of the considerable pressure relationships in the most uniform manner possible over the inner space. The second connection 2 and the third connection 3 may be in the form of through-openings in the valve body housing 10.
[0037]
[0041] The first closure portion 7a and the second closure portion 7b are configured during a movement of the armature 5 to alternately open or close the first connection 1 or the second connection 2, whilst the damping spring 8 provides a damping when the first connection 1 and/or the second connection 2 is/are closed.
[0042] Optionally, the method involves as an additional method step forming S135 a stop for the second closure portion 7b in order to ensure a fixing of the first closure portion 7a, the second closure portion 7b and damping springs 8 which are arranged therebetween inside the cylindrical hollow space of the armature 5. The formation of the stop may, for example, involve the insertion of the disk 9 and an edge compression of the armature 5. Afterwards, the disk 9 can no longer be removed from the recess without being destroyed.
[0043] Of course, all the other features of the solenoid valve as described above may be in the form of additional optional method steps during the production. Furthermore, it is self-evident that the sequence in which they are mentioned is not necessarily a sequence in which the method steps are carried out. The steps may also be carried out in another sequence or only some of the method steps are carried out.
[0044] The assembly and the media guiding can be summarized as follows: [0045] The sequence of the assembly can therefore be carried out as follows: first, the cylindrical armature 5, in which the first closure portion 7a is inserted, is provided. The first closure portion 7a comprises a head region and a shoulder region, wherein on the shoulder region the radially inwardly protruding projections 5c of the armature 5 engage and provide a stop so that the first closure portion 7a can be moved only up to the radial projections. Afterwards, the damping spring 8 can be inserted into the cylindrical armature 5. Finally, the second closure portion 7b is placed on the damping spring 8. Finally, the disk 9 is inserted. Since the second closure portion 7b also has a shoulder portion and a head portion, the disk strikes the shoulder region and consequently provides a stop for the second closure portion 7b. To this end, the armature 5 comprises the circumferential recess 5d in which the disk 9 can be inserted. After the compression of the armature 5 at one axial end, a removal of the disk 9 and consequently the second closure portion 7b from the inner space of the armature 5 is no longer possible since a deformation of the axial end of the armature 5 prevents a removal of the disk 9. Subsequently, the armature can be inserted together with the core 4 in the inner space of the valve housing 10 and, after the core 9 is fixed, the solenoid valve is ready for use.
[0046] The air movement in the individual switching positions is carried out along the through-openings 13 and the outer grooves 14. To this end, along the outer cylindrical surface of the armature 5, there are provided one or more grooves 14 which enable an axial air flow in or from the third connection 3. The media guide (air) therefore passes from the first connection 1 to the third connection 3 through the core valve seat 12 and is directed through the transverse hole 13 in the armature 5. From the transverse hole 13 in the armature 5, the air guiding continues via the outer grooves mentioned to the third connection 3.
[0047] An advantage of this air guiding is that the outer grooves 14 of the armature 5 may already be provided in the input material and would not have to be produced separately. This may, for example, thus be produced before the production of the armature 5 by a turning process. Process time and consequently also costs are thereby saved. The transverse hole 13 in the armature 5 enables the air guiding both from the inner side to the outer side and from the outer side to the inner side. Furthermore, the transverse holes 13 which are used to guide air between the first connection 1 and the third connection 3 may be structurally identical to the transverse hole 13b which produces a pressure compensation between the first closure portion 7a and the second closure portion 7b.
[0048] The features of the invention disclosed in the description, the claims and the Figures may be significant for the implementation of the invention both individually and in any combination.
[0049] THE LIST OF REFERENCE NUMERALS IS AS FOLLOWS: [0050] 1, 2, 3 Connections [0051] 4 Core [0052] 5 Armature [0053] 5a,5b,5s,5d Portions of armature [0054] 6 Coil [0055] 7, 7a, 7b Closure portion(s) [0056] 8 Damping spring [0057] 9 Disk [0058] 10 Housing body [0059] 11 Pressure spring [0060] 12 Valve seat (core) [0061] 13,13a, 13b Through-openings [0062] 14 Side channel, groove [0063] 15 Chamber (inner space) [0064] 17a, 17b Narrowed region (shoulder/head region/portion)