Damping Valve Device For A Vibration Damper
20170058988 ยท 2017-03-02
Inventors
Cpc classification
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/369
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/463
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A damping valve device (27), includes a damping valve housing (31) with a tube part (33) and an outer top housing part (35), wherein an intermediate housing wall (39) which is fixed with respect to the tube part (33) spatially separates a coil assembly (37) from a valve region (73), and the outer top housing part (35) forms a back iron body for the coil assembly (37), wherein an inner sleeve (69) together with a base (71) closes the valve region (73), wherein the outer top housing part (35) is a component part which is separate from the intermediate housing wall (39), and the inner sleeve (69) is connected to the intermediate housing wall (39) in a pressure-tight manner independent from the outer housing part (35), and wherein a protective cap (93) which is separate from the outer top housing part (35) covers the outer top housing part (35).
Claims
1-14. (canceled)
15. A damping valve device, comprising: a damping valve housing (31) including a tube part (33) and an outer top housing part (35); a coil assembly (37); a valve region (73) and an inner sleeve (69) having a base (71) for closing said valve region (73); an intermediate housing wall (39) fixed with respect to said tube part (33) and spatially separating said coil assembly (37) from said valve region (73); said outer top housing part (35) forming a back iron body for said coil assembly (37); said outer top housing part (35) being a component part separate from said intermediate housing wall (39); said inner sleeve (69) being connected to said intermediate housing wall (39) in a pressure-tight manner independent from said outer housing part (35); and a protective cap (93) which is a separate component part from said outer top housing part (35) constructed to cover said outer top housing part (35).
16. The damping valve device according to claim 15, wherein said coil assembly (37) comprises a contact (49; 51) which can be coupled with a counter-contact (97) of said protective cap (93), and wherein said protective cap (93) comprises a power supply connection (95).
17. The damping valve device according to claim 15, wherein said coil assembly (37) comprises a positioning connection to said outer top housing part (35).
18. The damping valve device according to claim 15, wherein said outer top housing part (35) is constructed for preventing rotation with respect to said protective cap (93).
19. The damping valve device according to claim 15, wherein said outer top housing part (35) comprises a retaining connection (59) with said coil assembly (37).
20. The damping valve device according to claim 5, wherein said outer top housing part (35) comprises at least one receiving opening (57) for a fastening pin (55) of said coil assembly (37).
21. The damping valve device according to claim 15, wherein said protective cap and said inner sleeve each comprise a base, and wherein said intermediate housing wall (39) is connected to said tube part (33).
22. The damping valve device according to claim 15, wherein said protective cap and said inner sleeve each comprise a base, and wherein said base (105) of said protective cap (93) is supported on said base (71) of said inner sleeve (69).
23. The damping valve device according to claim 15, additionally comprising a fastening element (111), and wherein said protective cap (93) is fixed at said base (71; 107) of said inner sleeve (69) by said fastening element (111).
24. The damping valve body according to claim 22, wherein said base (105) of said protective cap (93) comprises a passage (109) through which said base (71) of said inner sleeve (69) projects; and wherein said fastening element means (111) enters into a fixing connection with said base (71; 107) of said inner sleeve (69).
25. The damping valve device according to claim 24, wherein said fastening element (111) comprises a hat-shaped cross section.
26. The damping valve device according to claim 24, additionally comprising a seal (113) associated with said passage (109).
27. The damping valve device according to claim 15, wherein said protective cap (93) comprises a tube extension (115) which axially overlaps said tube part (33).
28. The damping valve device according to claim 27, additionally comprising at least one seal (117) arranged between an inner wall of said tube extension (115) and said tube part (33).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The invention will be described in more detail with reference to the following drawings in which:
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
[0029] In
[0030] When the piston rod 3 moves upward out of the cylinder 1, the upper working chamber 21b becomes smaller. An overpressure builds up in the upper working chamber 21b, which overpressure can only be reduced through the piston valve arrangement 11 in the lower working chamber 21a as long as the adjustable damping valve 27 is closed. When the adjustable damping valve device 27 is opened, fluid flows simultaneously from the upper working chamber 21b through the high-pressure partial section 23 and the adjustable damping valve device 27 into the compensation chamber 19. Accordingly, when the piston rod 3 moves out, the damping characteristic of the vibration damper depends on the degree to which the adjustable damping valve device 27 is open or closed.
[0031] When the piston rod 3 moves into the cylinder 1, an overpressure forms in the lower working chamber 21a. Fluid can pass upward from the lower working chamber 21a through the piston valve arrangement 11 into the upper working chamber 21b.
[0032] The fluid displaced by the increasing piston rod volume within the cylinder 1 is expelled through the bottom valve arrangement 15 into the compensation chamber 19. An increasing pressure also occurs in the upper working chamber 21b because the flow resistance of the piston valve arrangement 11 is less than the flow resistance of the bottom valve arrangement 15. This increasing pressure can again flow through the high-pressure partial section 23 into the compensation space 19 when the damping valve device 27 is opened. This means that when the damping valve device 27 is opened the vibration damper also has a softer characteristic when moving in when the adjustable damping valve device 27 is open and a harder characteristic when the damping valve device 27 is closed, just as when the piston rod moves out. It should be noted that the flow direction through the high-pressure partial section 23 of the bypass is always the same regardless of whether the piston rod moves in or out.
[0033]
[0034]
[0035] A central opening 69 is used to guide through an inner sleeve 69 with a base 71. As is shown in
[0036] The intermediate housing wall 39 is also preferably constructed of a plurality of parts and comprises a stepped sleeve 85 and a base 87 which is oriented in direction of the armature 75. The basic construction of the armature 75, pre-stage valve 77 and main stage valve 79 is already known, for example, from DE 10 2013 209 926 A1, the entire content of which is hereby incorporated herein by reference.
[0037] A lateral surface portion 89 of the intermediate housing wall 39 forms a press fit with an end region 91 of the inner wall of the outer top housing part 35 such that a preassembled structural unit comprising coil assembly 37 and outer top housing part 35 can be fixed to the intermediate housing wall 39.
[0038]
[0039] As can be seen in the right-hand half of the sectional diagram, the protective cap 93 has an axial receiving groove 99 for the radial widening 65 of the outer top housing part 35. The receiving groove 99 and the radial widening 65 form a positive engagement device for preventing rotation between the protective cap 93 and the outer top housing part 35. In this way, a definitive orientation of the power supply connection 95 relative to the damping valve device 27 can be produced.
[0040] The intermediate housing wall 39 is fixedly connected to the tube part 33, e.g., by means of a radial bead 101. A seal 103 prevents damping liquid from exiting the valve region 73 into the environment. Also, in case of a bead 101 which is already closed, the outer top housing part 35 can be removed from the intermediate housing wall 39.
[0041] The protective cap 93 comprises a base 109 which is axially supported on the base 71 of the inner sleeve 69. The base 71 of the inner sleeve 69 is constructed in some areas as hollow pin-shaped fastening element 107 which projects through a passage 109 of the protective cap 93, and a separate fastening element 111 enters into a fixing connection with the base 71 of the inner sleeve 69 and the pin-shaped fastening element 107. Accordingly, the protective cap 93 is fixed relative to the base 71 of the inner sleeve 69 which is in turn fixedly connected to the intermediate housing wall 39. The small radial and axial distance between the contact and counter-contact and the fastening elements 107; 111 can be seen. In this way, the contact/counter-contact is subjected to practically no relative movements of the protective cap 93 with respect to the inner sleeve.
[0042] The fastening element 111 has a hat-shaped cross section and accordingly covers the passage 109 in the protective cap 93. Optionally, a seal 113 can be associated with the passage 109 in addition such that the contact region between the protective cap 93 and the base 71 of the inner sleeve 69 is also sealed.
[0043] The protective cap 93 does not protect only the region of the outer top housing part 35 and the inner component parts thereof. A tube extension 115 of the protective cap 93 axially overlaps the tube part 33. Optionally, at least one seal 117 can be arranged between the inner wall of the tube extension 115 and the tube part 33 such that the transitional area between the outer top housing part 35 and the intermediate housing wall 39 is also covered and accordingly protected against dirt and moisture.
[0044] The assembly of the damping valve device 27 is carried out basically in the following manner. In a first step, the entire inner sleeve 69 is connected to the stepped sleeve 85, e.g., by a soldering process. When this constructional unit is held vertically with the bottom facing downward, the armature 75, including spring arrangement 119, can be inserted into the inner sleeve 69. Afterwards, the base 87 of the intermediate housing wall 39 is fixed to the stepped sleeve 85. The pre-stage valve 77 and main stage valve 79 are then installed. A partial deformation 121 at the inner wall of the stepped sleeve 85 can axially fix the main stage valve 79 and, therefore, also the pre-stage valve 77.
[0045] At the same time, the coil assembly 37 can be guided into the outer top housing part 35. Because of the geometric arrangement of the fastening pins 55, there is only one individual assembly position in circumferential direction.
[0046] The subassembly according to
[0047] The damping valve device 27 inserted into the tube part 33 is then oriented and, e.g., provided with beading, in circumferential direction according to the desired position of the power supply connection 95. In a next work step, the protective cap 93 with seal 117 is fitted, and the counter-contact 97 engages in the contact 49; 51 of the coil assembly 37. A faulty assembly is ruled out due to the fact that rotation between the protective cap 93 and the outer top housing part 35 is prevented.
[0048] Thus, while there have shown and described and pointed out fundamental novel features of the invention as applied to a preferred embodiment thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements and/or method steps which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.