Frequency-selective damping valve assembly
10851865 · 2020-12-01
Assignee
Inventors
Cpc classification
F16K47/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/182
PERFORMING OPERATIONS; TRANSPORTING
F16K3/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3485
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/025
PERFORMING OPERATIONS; TRANSPORTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/5126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/512
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/02
PERFORMING OPERATIONS; TRANSPORTING
F16F9/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/348
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/182
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A frequency-dependent damping valve arrangement of a vibration damper having a damping piston with at least one check valve, a control arrangement arranged coaxial to the damping piston including a control pot with a pot wall and a control piston axially displaceably arranged in the control pot that axially limits a control space. The control piston has a seal arrangement that seals the control piston relative to the pot wall including a circumferential groove formed at the control piston and a seal ring arranged therein. The seal arrangement is constructed such that this seal arrangement increases its sealing effect with rising damping medium pressure in the control space and reduces its sealing effect with falling damping medium pressure in the control space.
Claims
1. A frequency-dependent damping valve arrangement for a vibration damper of a motor vehicle, comprising: at least one check valve; a damping piston with the at least one check valve and configured to be arranged inside of a cylinder, which is at least partially filled with a fluid damping medium, fastened to a carrier and axially movable inside of the cylinder, wherein the damping piston separates a first working chamber from a second working cylinder inside the cylinder; a control arrangement arranged at the carrier coaxial to the damping piston that comprises: a control pot with a pot wall; a pot base arranged at an end of the control pot remote of the at least one check valve; a control space arranged in the control pot and filled with the fluid damping medium; at least a second flow channel for the fluid damping medium that connects at least the first working chamber to the control space; an axially displaceable control piston arranged in the control pot that axially limits the control space, wherein a direction of axial movements of control piston depends on a damping medium pressure in the control space; and a seal arrangement of the control piston that seals the control piston relative to the pot wall and is constructed such that the seal arrangement increases its sealing effect with a rising damping medium pressure in the control space and reduces its sealing effect with a falling damping medium pressure in the control space, wherein the seal arrangement comprises a circumferential groove formed at the control piston and a seal ring arranged in the circumferential groove; wherein the groove comprises: a first radial groove wall near the control space; a second radial groove wall remote of the control space; and a groove base which joins the first groove wall and the second groove wall, wherein the groove is constructed such that the second groove wall remote of the control space has a greater radial extension than the first groove wall near to the control space such that the groove base is arranged at least partially so as to be radially closer to the carrier in an area of the second groove wall than in an area of the first groove wall.
2. The frequency-dependent damping valve arrangement according to claim 1, wherein the seal ring is a V-seal, wherein a tip of the V-seal faces the damping piston and an opening of the V-seal faces the control space.
3. The frequency-dependent damping valve arrangement according to claim 1, wherein the seal ring is constructed as a four-lip seal, configured as an X-ring.
4. The frequency-dependent damping valve arrangement according to claim 1, wherein the groove base has a first axial extension and a second axial extension, the first axial extension extends from the first groove wall substantially parallel to a longitudinal axis of the damping valve arrangement towards the damping piston, the second axial extension extends from the second groove wall so as to be inclined relative to the longitudinal axis of the damping valve arrangement towards the control space, and the first axial extension and the second axial extension meet between the first groove wall and the second groove wall.
5. The frequency-dependent damping valve arrangement according to claim 4, wherein the seal ring is constructed as a four-lip seal, configured as an X-ring and arranged inside the groove such that two sealing lips of the seal ring are arranged in an area of the first axial extension of the groove base to adjoin the first groove wall, and two further sealing lips in an area of the second axial extension of the groove base are arranged in a vicinity of the second groove wall.
6. A vibration damper with a frequency-dependent damping valve arrangement, comprising: a cylinder, which is at least partially filled with a fluid damping medium; a frequency-dependent damping valve arrangement comprising: at least one check valve; a damping piston with the at least one check valve and configured to be arranged inside of the cylinder, wherein the damping piston separates a first working chamber from a second working cylinder inside the cylinder; a control arrangement arranged at a carrier coaxial to the damping piston that comprises: a control pot with a pot wall; a pot base arranged at an end of the control pot remote of the at least one check valve; a control space arranged in the control pot and filled with the fluid damping medium; at least a second flow channel for the fluid damping medium that connects at least the first working chamber to the control space; an axially displaceable control piston arranged in the control pot that axially limits the control space, wherein a direction of axial movements of control piston depends on a damping medium pressure in the control space; and a seal arrangement of the control piston that seals the control piston relative to the pot wall and is constructed such that the seal arrangement increases its sealing effect with a rising damping medium pressure in the control space and reduces its sealing effect with a falling damping medium pressure in the control space, wherein the seal arrangement comprises a circumferential groove formed at the control piston and a seal ring arranged in the circumferential groove; wherein the groove comprises: a first radial groove wall near the control space; a second radial groove wall remote of the control space; and a groove base which joins the first groove wall and the second groove wall, wherein the groove is constructed such that the second groove wall remote of the control space has a greater radial extension than the first groove wall near to the control space such that the groove base is arranged at least partially so as to be radially closer to the carrier in an area of the second groove wall than in an area of the first groove wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described in more detail referring to the figures.
(2) The drawings show:
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
(6)
(7) The latter comprises a cylinder 2 which is at least partially filled with a damping fluid.
(8) The damping valve arrangement 1 is axially displaceably arranged inside the cylinder 2 and is fastened to a carrier 3. Damping valve arrangement 1 comprises a damping piston 4 with at least one check valve 5, this check valve 5 having at least a first flow channel 6 formed therein for the damping fluid, which flow channel 6 is covered by at least one valve disk 7.
(9) Damping piston 4 divides a first working chamber 8 from a second working chamber 9 inside the cylinder 2 such that the ratio of the damping medium pressure in the two working chambers 8, 9 varies depending on the direction of axial movements of damping piston 4 in cylinder 2.
(10) Further, damping valve arrangement 1 has a control arrangement 10, which contains a control pot 11 with a cylindrical pot wall 12 and a disk-shaped pot base 13 and a control piston 16 that is axially displaceably arranged in control pot 11 that axially limits a control space 14 enclosed in control pot 11.
(11) A spring arrangement 31 acts axially upon valve disk 7 in direction of flow channel 6 and upon control piston 16 in direction of pot base 13 with a defined spring force and is arranged between damping piston 4 and control arrangement 1.
(12) All of the structural component parts of damping valve arrangement 1 are arranged coaxial to one another at carrier 3. As is shown in
(13) Carrier 3 is shown here as a so-called piston rod tenon, i.e., an end portion of the piston rod having a reduced diameter. In the constructional variants shown in
(14) Control pot 11 of control arrangement 1 is connected to carrier 3 in the area of pot base 13 with the aid of connection 38. Connection 38 is shown in
(15) Control piston 16, which is arranged inside control pot 11, is constructed so as to be axially displaceable so that when a damping fluid pressure persists over a longer period of time in control space 14 of control arrangement 1 the control piston 16 is displaced in direction of valve disk 7 of check valve 5 and can tighten spring arrangement 31 so that the spring force acting on valve disk 7 through spring arrangement 31 and, therefore, the damping force of check valve 5 are increased.
(16) Second flow channel 15 comprises an inlet restrictor 39 which defines the flow of damping medium out of first working chamber 8 into control space 14.
(17) Further, an outlet restrictor 40 is formed at control piston 16 and influences the flow of damping medium out of control chamber 14. This outlet restrictor 40 can also be formed at carrier 3.
(18) A first stop 41 and second stop 42 are formed at control arrangement 1 for defining the soft damping characteristic and hard damping characteristic. First stop 41 is formed as a stop ring in the constructional variants shown in
(19) Spring arrangement 31 can be constructed in a variety of ways. In the constructional variant shown in
(20) During a high-frequency excitation of the vibration damper, the damping fluid pressure persists only briefly in control space 14, whereas the damping fluid pressure persists significantly longer in control space 14 during a low-frequency excitation of the vibration damper.
(21) Control arrangement 10 of damping valve arrangement 1 is constructed such that when a damping fluid pressure persists for a longer period of time in control space 14 of control arrangement 10 control piston 16 displaces in direction of valve disk 7 of check valve 5, tensions springs arrangement 31 and accordingly increases the spring force impinging on valve disk 7 through spring arrangement 31 and, therefore, increases the damping force of check valve 5.
(22) As is shown in
(23) Groove 21 comprises a first radial groove wall 22 near to control space, a second radial groove wall 23 remote of control space and a groove base 24 which joins first groove wall 22 and second groove wall 23.
(24) The constructional variant according to
(25) Accordingly, only the two sealing lips 27, 28 facing control space 14 are preloaded in a defined manner, and the two sealing lips 29, 30 arranged facing away from control space 14 can be arranged in groove 21 so as to be free of tension. According to this constructional variant, the preloading of the two sealing lips 27, 28 which are arranged facing control space 14 is defined by the radial extension of first groove wall 22 near to the control space. With rising damping medium pressure in control space 14, the damping medium inevitably exerts a pressure on seal ring 18 in the area of the two sealing lips 27, 28 arranged facing control space 14. In this way, seal ring 18 is reversibly deformed such that the one sealing lip 27 is pressed against pot wall 12 and the other sealing lip 28 is pressed against groove base 24, which heightens the sealing effect. If the damping medium pressure is lower in control space 14 than in the working chamber, the two sealing lips 27, 28 of seal ring 18 are pressed together again or regain their original shape, which reduces the sealing effect of sealing arrangement 17 to an extent ranging from appreciable to minimal.
(26) The constructional variant depicted in
(27) According to the constructional variant shown in
(28) The opening 20 of the V is accordingly exposed to the rising damping medium pressure in control space 14. The damping medium reversibly deforms seal ring 18 and presses the one leg of the V-seal against pot wall 12 and the other leg against groove base 24, which heightens the sealing effect. If the damping medium pressure is lower in control space 14 than in the working chamber, the two legs of the V-seal are pressed together or regain their original shape, which reduces the sealing effect of sealing arrangement 17 to an extent ranging from appreciable to minimal.
(29) Accordingly, the seal arrangement 17 is constructed in such a way that its sealing effect is increased when the damping medium pressure in control space 14 increases and is reduced when a damping medium pressure in control space 14 decreases.
(30) The sealing effect of seal arrangement 17 can be adjusted in a defined manner through the choice of the shape-related configuration of groove walls 22, 23 and/or of groove base 24.
(31)
(32) The seal ring 18 which is constructed as a four-lip seal, particularly as an X-ring, can then be arranged inside groove 21 such that its two sealing lips 27, 28 are arranged in the area of first axial extension 25 of groove base 24 and two further sealing lips 29, 30 are arranged in the area of second axial extension 26 of groove base 24.
(33) 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.