Latching device for a rotationally or translationally movable operator control element
09651108 ยท 2017-05-16
Assignee
Inventors
Cpc classification
Y10T74/2141
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60W2554/00
PERFORMING OPERATIONS; TRANSPORTING
F16D71/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05G1/08
PHYSICS
G05G5/06
PHYSICS
International classification
G05G1/00
PHYSICS
F16D71/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The latching device for a rotationally or translationally movable operating element is provided with a resiliently mounted latching projection and with a latching guideway which is in sliding contact with the latching projection and which has a plurality of latching depressions with latching elevations arranged between them. The latching depressions and the latching elevations form a substantially corrugated latching path along which the latching projection slides during a relative movement between latching guideway and latching projection. The latching projection has a surface which contacts the latching path along at least one contact line running substantially transversely to the longitudinal extent of the latching path. When sliding along the latching path, the latching projection experiences an upward and downward movement with periodic change of the orientation of its contact line with respect to the latching guideway.
Claims
1. A latching device for a rotationally movable operating element, comprising a resiliently mounted latching projection and a latching guideway being in sliding contact with the latching projection and having a plurality of latching depressions with latching elevations arranged between them, the latching depressions and the latching elevations forming a substantially corrugated latching path which extends above and below a latching path extension plane and along which the latching projection slides during a relative movement between the latching guideway and the latching projection, and the latching projection having a surface which contacts the latching path along at least one contact line running substantially transversely to the longitudinal extension of the latching path, wherein, when sliding along the latching path, the latching projection experiences an upward and downward movement with periodic change of the orientation of its contact line with respect to the latching path extension plane, and wherein the surface of the latching path has a change of inclination relative to the latching path extension plane, the inclination being in a direction for the rotationally movable operating element in a radial direction relative to a circular corrugated latching path, which change of inclination is a function of the position of the contact line of the latching projection selected to maintain a contact line between the latching projection and the latching guideway at all positions during its upward and downward movement.
2. The latching device according to claim 1, wherein the surface of the latching path between the vertices of two adjacent latching elevations is formed as a frustoconical partial surface or as a part-pyramidal surface having a cone and respectively pyramid axis arranged transversely to the extension of the latching path.
3. The latching device according to claim 1, wherein the latching projection is formed on a spring arm, wherein the spring arm is fixed on at least one end and the latching projection is arranged at a distance thereto, and wherein, during the upward and downward movement of the latching projection, the spring arm is deformed in a curved shape between its fixed end and the latching projection.
4. The latching device according to claim 3, wherein the spring armwhen seen in plan view onto the latching pathextends substantially linearly and at a right angle to the orientation of the latching path, and wherein the latching projection is designed as a crimp formed with a frustoconical part-surface and having a cone axis arranged substantially along the extension of the spring arm.
5. The latching device according to claim 4, wherein the spring arm when seen in plan view onto the latching pathextends annularly following the latching path, wherein the curved spring arm is fixed on its two ends facing away from each other and wherein the latching projection is arranged substantially in the area of the vertex of the curved spring arm and is designed as a crimp formed with a frustoconical part-surface and having a cone axis arranged radially relative to the annular shape of the spring arm.
6. The latching device according to claim 5, wherein the latching guideway extends along a circular line and wherein the spring arm is formed as an annular spring comprising a latching projection or comprising two diametrically arranged latching projections and two fixing areas arranged at a displacement of 90 relative to each latching projection.
Description
(1) The invention will be explained in greater detail hereunder by way of two exemplary embodiments and with reference to the drawing. In the drawing:
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(19) Each rotary dial 14 comprises a rotary operating element 18 supported for rotation about a rotary axis 20. On the lower axial end side 22, said rotary operating element 18 comprises a latching guideway 24 which is provided on the end side along the circumference of the rotary operating element 18 and consists of alternately arranged latching depressions 26 and latching elevations 28. Said latching depressions 26 and latching elevations 28 form a latching path 30 along which a latching projection 32, supported in a spring-elastic manner, will slide when the rotary operating element 18 is actuated, i.e. rotated. Said latching projection 32 is a crimp-shaped projection of a spring 34 which in this embodiment is annular and which is supported on two diametrically opposite fixing areas 35 on the housing 36 of operating unit 12.
(20) The special characteristic of the latching device according to
(21) As evident from
(22) In
(23) To make it possible that a contacting with the latching path along two contact lines will occur only in the position of the deepest immersion of the latching projection into the latching depression, the radius of the latching projection should be larger than the radius of a latching depression. In other words, when the latching projection has been immersed into the latching depression to a maximal depth, the latching projection shall not be allowed to contact the latching depression in the area of the vertex of the latching projection.
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(25) Referring to
(26) As with the rotational embodiments in
(27) As evident from
(28) In Figs, 17 to 19, there is shown a further exemplary embodiment of a latching device comprising a latching spring with latching projection and a latching guideway which can be used in the rotary dial 14 according to
(29) According to
(30) Above, two designs of latching devices have been described, notably by way of a rotary operating element which is rotationally movable. At this point, it should be noted that the above described latching devices can be used also in an operating element designed for translational movement. Also in the latter case, the inclination of the contact line between the latching projection and the latching path will change periodically when the latching projection is sliding along the latching path. For minimization of wear and noise, there are used the same mechanisms as explained further above in the context of the two described embodiments.