ELECTROMAGNETIC ACTUATING DEVICE
20200203105 ยท 2020-06-25
Inventors
Cpc classification
F16K31/0696
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01F2007/085
ELECTRICITY
International classification
Abstract
An electromagnetic actuating device includes a sleeve, an armature situated radially inside the sleeve, and an electromagnetic coil situated radially outside the sleeve, the armature having a first armature end face on one end and a second armature end face on the opposite end. The sleeve has a channel on or in the sleeve wall, which extends in the longitudinal direction of the sleeve and forms a fluid connection between the armature end faces.
Claims
1. An electromagnetic actuating device comprising: a sleeve formed of a wall in which a channel extends along a longitudinal direction of the sleeve; an electromagnetic coil situated radially outside the sleeve; and an armature that is situated radially inside the sleeve and that includes a first armature end face at a first end of the armature and a second armature end face at a second end of the armature that is opposite the first end, wherein the channel forms a fluid connection between the armature end faces.
2. The electromagnetic actuating device of claim 1, wherein the armature does not include channels.
3. The electromagnetic actuating device of claim 1, wherein the armature does not include overflow channels.
4. The electromagnetic actuating device of claim 1, wherein the wall includes an a longitudinal slot opening between free ends of the wall that are perpendicular to the first and second ends, the slot opening forming a portion of the channel.
5. The electromagnetic actuating device of claim 1, wherein the channel has a first channel cross-section, which, in an axial direction, regionally tapers to a second channel cross-section.
6. The electromagnetic actuating device of claim 1, further comprising a pole core that is axially adjacent to the armature and that has a groove in a section of the pole core facing the armature, the groove being aligned with the channel of the sleeve.
7. The electromagnetic actuating device of claim 1, further comprising an inner sleeve arranged radially between the sleeve and the armature, the inner sleeve formed of a wall in an axial section of which extends an axial slot that is aligned with the channel.
8. The electromagnetic actuating device of claim 7, wherein an inner circumference of the inner sleeve is at least partially provided with a glass cloth foil coated with PTFE for guidance of the armature, and/or the inner circumference of the sleeve or the inner sleeve and/or the outer circumference of the armature is at least partially and preferably completely provided with a magnetically non-conductive coating, in particular a nickel layer or a nickel-phosphorus layer.
9. The electromagnetic actuating device of claim 8, wherein at least one of (a) an inner circumference of the sleeve or the inner sleeve and (b) an outer circumference of the armature is at least partially provided with a magnetically non-conductive coating.
10. The electromagnetic actuating device of claim 9, wherein the magnetically non-conductive coating is a nickel layer or a nickel-phosphorus layer.
11. The electromagnetic actuating device of claim 8, wherein at least one of (a) an inner circumference of the sleeve or the inner sleeve and (b) an outer circumference of the armature is completely provided with a magnetically non-conductive coating.
12. The electromagnetic actuating device of claim 7, wherein an inner circumference of the inner sleeve is completely provided with a glass cloth foil coated with PTFE for guidance of the armature.
13. The electromagnetic actuating device of claim 1, further comprising: a pole core; and a pole sleeve (a) that is radially exterior to, and at least regionally surrounds, the pole core and (b) in a section of which that faces the armature, there is a groove that is aligned with the channel of the sleeve.
14. The electromagnetic actuating device of claim 1, wherein the sleeve is secured in the actuating device in a torsion-resistant manner such that the channel is situated, relative to a force of gravity, above or below the armature.
15. The electromagnetic actuating device of claim 1, wherein an inner circumference of the sleeve is at least partially provided with a glass cloth foil coated with PTFE for the guidance of the armature.
16. The electromagnetic actuating device of claim 1, wherein an inner circumference of the sleeve is completely provided with a glass cloth foil coated with PTFE for the guidance of the armature.
17. The electromagnetic actuating device of claim 1, wherein at least one of an inner circumference of the sleeve and an outer circumference of the armature is at least partially provided with a magnetically non-conductive coating.
18. The electromagnetic actuating device of claim 17, wherein the magnetically non-conductive coating is a nickel layer or a nickel-phosphorus layer.
19. A method of forming an electromagnetic actuating device, the method comprising: forming a wall in which a channel extends along a longitudinal direction of the wall; arranging an electromagnetic coil radially outside the wall; and arranging an armature radially inside the wall, so that the wall is a sleeve for the armature, wherein the armature includes a first armature end face at a first end of the armature and a second armature end face at a second end of the armature that is opposite the first end, wherein the channel forms a fluid connection between the armature end faces.
20. The method of claim 11, wherein the forming of the wall includes punching and rolling a material.
21. The method of claim 12, wherein the sleeve is formed from magnetically conductive, unalloyed steel.
22. The method of claim 13, wherein the magnetically conductive, unalloyed steel has a carbon content of less than 0.15% by mass.
23. The method of claim 11, wherein the sleeve is formed from magnetically conductive, unalloyed steel.
24. The method of claim 15, wherein the magnetically conductive, unalloyed steel has a carbon content of less than 0.15% by mass.
Description
BRIEF DESCRIPTION OF THE DRAWING
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DETAILED DESCRIPTION
[0030]
[0031] Electromagnetic actuating device 10 has a housing 14 in which the components of electromagnetic actuating device 10 are situated. Electromagnetic actuating device 10 has an electromagnetic coil 16, which includes a coil body 18 and a winding 20. On a first end face 22, housing 14 is sealed by an end piece 24, which can be a flux disk. On a second end face 26, the housing is sealed using a cover 28, which can be a magnet cover 28. In addition, an electrical contacting 30 is provided on housing 14, which is electrically connected to electromagnetic coil 16.
[0032] Moreover, electromagnetic actuating device 10 has an armature 32 (solenoid armature), a sleeve 34 (flux sleeve), and a pole core 36. Pole core 36 is provided with a centrical through passage 38 through which an actuating element 40 is guided (actuating pin), which acts on hydraulic valve 12. Actuating element 40 can have a shaft section 42 as well as a radially expanded head section 44.
[0033] Armature 32 is situated radially inside sleeve 34. Situated radially outside sleeve 34 is an electronic coil 16. Coil 16, armature 32, and sleeve 34 at least partially overlap one another along axial direction 46. At one end, armature 32 has a first armature end face 48 (facing pole core 36), and on the opposite end, it has a second armature face end 50 (facing away from pole core 36).
[0034] On or in sleeve wall 52, sleeve 34 has a channel 54, which extends along longitudinal direction 46 of sleeve 34 and forms a fluid connection (hydraulic connection) between the armature end faces 48, 50. Pole core 36 is axially adjacent to armature 32 and has a groove 55 in a section 53 facing armature 32, in particular an annular section, which is aligned with channel 54 of sleeve 34. When coil 16 is activated, armature 32 moves along axial direction 46, e.g., in the direction of first end face 22, and a return of armature 32 can be accomplished by applying force to actuating pin 40, for instance. Through the axial movement of armature 32, an oil flow results in channel 54, which is illustrated by arrow 56. Armature 32 itself is developed without channels (without overflow channels) and thus has no bore holes or grooves.
[0035] Sleeve 34 is secured in actuating device 10 in a torsion-resistant manner in such a way that channel 54 is situated above armature 32 in the direction of the force of gravity (installation position of actuating device 10). In example embodiments that are not illustrated, sleeve 34 can be secured in actuating device 10 in a torsion-resistant manner in such a way that channel 54 is situated underneath armature 32 in the direction of the force of gravity. Sleeve 34 is illustrated separately in
[0036] Sleeve 34 has an open cross-section including a longitudinal slot 58 (butt joint), and free ends 60, 62 include longitudinal slot 58 between them and thus restrict channel 54 in the circumferential direction, i.e., toward the sides. Put another way, sleeve 34 is developed as a ring segment including longitudinal slot 58. A restriction of channel 54 in the radially inward direction can be achieved using armature 32. A restriction of channel 54 in the radially outward direction can be accomplished by coil 16, in particular by coil body 18.
[0037] At its inner circumference 57, sleeve 34 is at least sectionally and preferably completely provided with a glass cloth foil 59 coated with PTFE for the guidance of armature 32. Positive sliding properties are able to be achieved. As an alternative, inner circumference 57 of sleeve 34, or outer circumference 61 of armature 32, can at least partially and preferably completely be provided with a magnetically non-conductive coating, this in particular being a nickel layer or a nickel-phosphorus layer.
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