Rotary damper
09539873 ยท 2017-01-10
Assignee
Inventors
Cpc classification
F16F15/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F13/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2202/30
PERFORMING OPERATIONS; TRANSPORTING
F16F15/1213
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotary damper includes a damper motor and a damper housing in surrounding relationship to the damper motor. The damper housing has a connection piece for mounting the damper housing to a first mass. An articulated lever is swingably mounted in relation to the damper housing and connected to a second mass. The articulated lever has a lobe which is movable during a swinging motion of the articulated lever in relation to the damper housing along a movement path between two stops which are connected to the damper housing. A gear mechanism transmits and/or converts a relative rotational movement between the first and second masses to the damper motor for vibration damping.
Claims
1. A rotary damper, comprising: a damper motor; a damper housing in surrounding relationship to the damper motor, said damper housing having a connection piece for mounting the damper housing to a first mass; an articulated lever swingably mounted in relation to the damper housing and connected to a second mass, said articulated lever having a lobe movable during a swinging motion of the articulated lever in relation to the damper housing along a movement path between two stops which are connected to the damper housing; a gear mechanism configured to transmit and/or convert a relative rotational movement between the first and second masses to the damper motor for vibration damping; and damping parts arranged on the stops in the movement path of the lobe, wherein the damping parts are helical springs.
2. The rotary damper of claim 1, wherein the springs are arranged in a circumferential direction of the rotary damper and supported on the stops.
3. The rotary damper of claim 1, wherein the damping parts are guided in the damper housing.
4. A rotary damper, comprising: a damper motor; a damper housing in surrounding relationship to the damper motor, said damper housing having a connection piece for mounting the damper housing to a first mass; an articulated lever swingably mounted in relation to the damper housing and connected to a second mass, said articulated lever having a lobe movable during a swinging motion of the articulated lever in relation to the damper housing along a movement path between two stops which are connected to the damper housing; a gear mechanism configured to transmit and/or convert a relative rotational movement between the first and second masses to the damper motor for vibration damping; and damping parts arranged on the stops in the movement path of the lobe, wherein the lobe is trapezoidal in cross section to define two parallel trapeze sides and two slanted sides, with a shorter one of the two parallel trapeze sides positioned adjacent to the articulated lever, and with the slanted trapeze sides forming support surfaces for the damper parts.
5. The rotary damper of claim 4, wherein the stops in the movement path of the articulated lever are integrated in the damper housing to thereby form a unitary structure.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) Other features and advantages of the present invention will be more readily apparent upon reading the following description of currently preferred exemplified embodiments of the invention with reference to the accompanying drawing, in which:
(2)
(3)
(4)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(5) Throughout all the figures, same or corresponding elements may generally be indicated by same reference numerals. These depicted embodiments are to be understood as illustrative of the invention and not as limiting in any way. It should also be understood that the figures are not necessarily to scale and that the embodiments are sometimes illustrated by graphic symbols, phantom lines, diagrammatic representations and fragmentary views. In certain instances, details which are not necessary for an understanding of the present invention or which render other details difficult to perceive may have been omitted.
(6) Turning now to the drawing, and in particular to
(7) As shown in particular in
(8) The gear mechanism 12 in the form of a strain wave gear has internal teeth, a rigid unit 16, a flexible unit 18 having external teeth, and an oval wave generator 20 which is rotatably supported in the flexible unit 18. Rotation of the wave generator 20 causes a deformation of the flexible unit 18, with the rigid unit 16 and the flexible unit 18 being coupled to one another via the meshing internal and external teeth. Arranged between the flexible unit 18 and the wave generator 20 is a flexible rolling-contact bearing 22. The rotor 8 of the gear mechanism 12 is rotatably supported on the bearing part 14 via rolling contact bearings 24, 26.
(9) The rigid unit 16 is connected to a radial wall 28 of the damper housing 2, whereas the wave generator 20 is connected to the rotor 8 of the damper motor 4. The flexible unit 18 is connected to the articulated lever 10 which, in turn, is supported on the bearing part 14 via rolling-contact bearings 30, 32. The flexible unit 18 has an axial wall portion 34, a radial wall portion 36, and a further axial wall portion 38 which is secured to the articulated lever 10. Arranged on the articulated lever 10 is a cup-shaped housing part 40 to cover the flexible unit 18 in the region between the rigid unit 16 and the articulated lever 10 and thereby prevent ingress of dirt particles.
(10) The damper housing 2 may be connected to a vehicle body via the bearing part 14, with the articulated lever 10 being arranged at the other end of the damper housing 2 and driving the damper motor 4.
(11) As a vehicle wheel jounces and rebounds, the articulated lever 10 swings about an angle in relation to the damper housing 2. As a result of this swinging motion, the damper motor 4 applies a recoiling force. As a result of the rotation speed, the rotary damper generates hereby a damping force.
(12) As is readily apparent from
(13) Damping parts in the form of springs 48, 50 are further arranged on the stops 44, 46 in the movement path of the lobe 42 and extend in circumferential direction of the rotary damper. The stops 44, 46 are supported with their one end on the slanted trapeze sides of the lobe 42, respectively, and supported with their other end upon the stops 44, 46.
(14) The springs 48, 50 may involve basically any type of spring. Currently preferred is, however, a configuration of the springs 48, 50 as helical springs, as shown in the non-limiting example of the drawing. The springs 48, 50 are hereby guided in the damper housing 2 by a cover (not shown), a radial portion 52 of the articulated lever 10, and the stops 44, 46.
(15) While the invention has been illustrated and described in connection with currently preferred embodiments shown and described in detail, it is not intended to be limited to the details shown since various modifications and structural changes may be made without departing in any way from the spirit and scope of the present invention. The embodiments were chosen and described in order to explain the principles of the invention and practical application to thereby enable a person skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated. In particular, damper motors other than electromagnetic damper motors or gear mechanisms other than strain wave gears may be used, without departing from the scope of the present invention.