CONTROLLABLE VIBRATION DAMPER
20230366444 ยท 2023-11-16
Assignee
Inventors
Cpc classification
F16F9/461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A controllable vibration damper includes a damping force control system, having a damper housing tube. The damper is at least partially filled with a damping medium. A damping valve for damping force control is arranged on and fluidly connected to the damper housing tube. The damper housing tube has an inner tube, which is inserted into the tubular damper housing via a bottom valve element. The vibration damper has a piston rod, which can be moved longitudinally in the inner tube and has a working piston.
Claims
1.-8. (canceled)
9. A controllable vibration damper having a damping force control system, the controllable vibration damper comprising: a tubular damper housing which is at least partially filled with damping medium, and a damping valve element for damping force control, which is arranged on and fluidly connected to the tubular damper housing; an inner tube, which is inserted into the tubular damper housing via a bottom valve element; a piston rod, which can be moved longitudinally in the inner tube and has a working piston; wherein the bottom valve element divides the tubular damper housing into a low-pressure working chamber and a high-pressure working chamber, which is acted upon by means of the working piston; and a separating piston seated in the tubular damper housing that separates the damping medium in the low-pressure working chamber from a gas volume held in the tubular damper housing; wherein an inlet opening of the damping valve element is fluidly connected to the high-pressure working chamber, and an outlet opening of the damping valve element is fluidly connected to the low-pressure working chamber, such that the damping valve element is connected in parallel with the working piston.
10. The controllable vibration damper as claimed in claim 9, wherein the gas volume is arranged within one of the damper valve element and on the outer circumference of the damper tube.
11. The controllable vibration damper as claimed in claim 9, wherein the inner tube is inserted into the tubular damper housing via the bottom valve element in such a way that the bottom valve element is inserted into the tubular damper housing on the inner circumference and forms a hydraulic seal with the inner tube.
12. The controllable vibration damper as claimed in claim 11 wherein the damping valve element is selectively adjusted continuously between any desired minimum damper characteristic and any desired maximum damper characteristic.
13. The controllable vibration damper as claimed in claim 12, wherein the damper valve element has at least one controllable valve unit, by means of which the damper characteristic is selectively switched.
14. The controllable vibration damper as claimed in claim 13, wherein the valve unit comprises one of a manually, electrically and electromagnetically adjustable valve for switching the damper characteristic.
15. The controllable vibration damper as claimed in claim 14, further comprising a second valve unit with a defined flow cross section connected one of upstream and downstream of the first valve unit in the flow direction of the damping medium.
16. The controllable vibration damper as claimed in claim 15, further comprising a passive valve unit, which is connected in one of parallel and in series with at least one of the first and the second valve unit.
Description
[0012] The invention is explained below with further features, details and advantages with reference to the appended figures. The figures illustrate only illustrative embodiments of the invention. More specifically:
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020] During operation, a high-pressure working chamber 26 is formed in the inner tube 18, wherein the working piston 22 divides this chamber into a region 26a on the piston-rod side and a region 26b remote from the piston rod. The high-pressure working region 26 extends via openings 44 in the wall of the inner tube 18 as far as the intermediate space between the inner tube 18 and the tubular damper housing 12. By means of the bottom valve element 16, the high-pressure working chamber 26 is delimited with respect to a low-pressure working region 26, which forms within the tubular damper housing 12 during operation. Furthermore, a gas volume 42 is provided in the tubular damper housing 12, which is delimited with respect to the low-pressure working region 26 by means of a separating piston 40, which can be moved axially in the tubular damper housing 12.
[0021] Mounted on the outside of the tubular damper housing 12 is a damping valve element 14, the function of which is described further below in conjunction with the working movement of the working piston 22. The damping valve element 14 has an inlet opening 28 and an outlet opening 30 and is fluidically connected to the high-pressure working chamber 26 via the inlet opening 28 and fluidically connected to the low-pressure working chamber 24 via the outlet opening 30 via bores correspondingly formed in the tubular damper housing 12.
[0022] The damping valve element 14 in the embodiment shown comprises a controllable valve unit 34, a second valve unit 36 with a defined flow cross section, which is arranged downstream of the first controllable valve unit 34 in the flow direction of the damping medium, and an hydraulic intermediate chamber 38 arranged between the two valve units. By means of the controllable valve unit 34, the damping valve element 14 can be positioned between an open position and a closed position.
[0023] The circulation of the damping medium in the vibration damper 10 in the compression stage, the rebound stage and with the damping valve element 14 open and closed in each case is described with reference to
[0024]
[0025]
[0026] The flow of the damping medium then continues via the check valve 50 in the bottom valve element 16 into the region of the high-pressure working chamber 26 remote from the piston rod. The flow of the damping medium is symbolized by the arrow Q.sub.2. To compensate for the piston rod volume, damping medium flows from the high-pressure working chamber 24 on the piston-rod side into the high-pressure working chamber 26 remote from the piston rod through the valve element 48 in the working piston 22. As a result, a small damping force is produced. This flow of the damping medium is symbolized by the arrow Q.sub.1. In this operating range of the vibration damper 10, the damping medium flows primarily via the damping valve element 14, i.e. Q.sub.1<<Q.sub.2. The separating piston 40 moves upward in order to compensate for the volume of the piston rod 20 extending out of the tubular damper housing 12. The division between flows Q.sub.1 and Q.sub.2 can be varied by means of intermediate positions of the valve unit 34 between the open and closed positions, thus enabling different damper characteristics to be set in the rebound stage.
[0027]
[0028]
[0029]
LIST OF REFERENCE SIGNS
[0030] 10 Vibration damper [0031] 12 Tubular damper housing [0032] 14 Damping valve element [0033] 16 Bottom valve element [0034] 18 Inner tube [0035] 20 Piston rod [0036] 22 Working piston [0037] 24 Low-pressure working chamber [0038] 26 High-pressure working chamber [0039] 26a High-pressure region on the piston-rod side [0040] 26b High-pressure region remote from the piston rod [0041] 28 Inlet opening [0042] 30 Outlet opening [0043] 32 Valve element [0044] 34 Valve unit [0045] 36 Valve unit [0046] 38 Hydraulic intermediate chamber [0047] 40 Separating piston [0048] 42 Gas volume [0049] 44 Opening [0050] 46 Rebound stage [0051] 48 Valve element [0052] 50 Check valve [0053] 52 Valve element [0054] 54 Compression stage