This application claims priority to European Patent Application No. 18162851.2 filed on Mar. 20, 2018, the entire disclosure of which is hereby incorporated herein by reference.
The invention concerns an annular rotating bezel system.
The invention also concerns a watch case comprising a middle part and the annular rotating bezel system rotatably mounted on the case middle.
The invention concerns a watch including the watch case. The watch is, for example, a diver's watch, although this is not limiting in the context of the present invention.
Known annular rotating bezel systems comprise a rotating bezel, an annular holding ring, a toothed ring and a spring ring. A rotating bezel system of this type is, for example, described in European Patent No 2672333A1. The spring ring extends in a plane in which it is capable of deforming elastically along a radius and cooperates elastically with the toothed ring. To achieve this, elastic arms intended to cooperate with the toothed ring are arranged on an inner edge of the spring ring, by cutting the latter. The toothed ring and the spring ring are held axially by the rotating bezel and the annular holding ring. The spring ring is angularly joined to the rotating bezel, and the toothed ring is angularly joined to the case middle. However, in a rotating bezel system of this type, the spring ring has limited flexibility in the plane that it defines. This means that sufficient width must be provided in the system to ensure enough clear space radially for deformation of the spring ring, and therefore requires a significant amount of space. Further, the manufacture of such a spring ring is relatively complex, because of the cutting operation to form the elastic arms.
It is thus an object of the invention to provide an annular rotating bezel system that increases the flexibility of the spring ring in its plane, but which is simple to manufacture, and overcomes the aforementioned drawbacks of the state of the art.
To this end, the invention concerns an annular rotating bezel system, which includes the features mentioned in the independent claim 1.
Specific embodiments of the system are defined in the dependent claims 2 to 12.
A first advantage of the present invention is that it increases the flexibility of the spring ring in its plane. Indeed, owing to the thinned portions contained therein, the spring ring flexes in its plane, allowing the teeth it carries to move in and out of mesh with the toothed ring as the bezel rotates. This makes it possible to reduce the width required for the spring ring to operate in the system and thus to obtain a space saving as regards the width of the assembly.
Further, such an arrangement is simple to manufacture, compact in diameter, and makes it possible to obtain precisely controlled dimensions for the spring ring and the toothed ring. Moreover, such a configuration of the spring ring does not require tongues or strips to be added to the ring, since the spring ring is formed of a single piece of material.
Finally, this arrangement allows a material to be chosen for the toothed ring independently of the material used for the rotating bezel. This makes it possible, for example, to make bezels from precious material with no risk of premature wear since the toothed ring is not integrated in the bezel but is simply secured to said bezel.
Advantageously, the rotating bezel includes at least one lug extending over an inner lateral face of the bezel, and the spring ring has, on an outer edge, at least one hollow in which the bezel lug is engaged. This means the spring ring can easily be rotatably connected to the rotating bezel, while facilitating the positioning of the spring ring in the bezel.
Advantageously, the toothed ring has, on an inner edge, at least one lug intended to be received in a hollow arranged in an external cylindrical surface of the case middle. This allows easy angular joining of the toothed ring to the case middle, while facilitating the positioning of the toothed ring on the case middle and allowing the rotating bezel system to be guided for assembly on the case middle.
According to a first embodiment of the invention, the teeth of the toothed ring and the or each tooth of the spring ring have an asymmetrical shape in the plane defined by the spring ring. In this first embodiment, the spring ring can rotate with respect to the toothed ring in a single predefined direction: clockwise or anticlockwise depending on the shape chosen for the teeth. This first embodiment of the invention thus corresponds to a unidirectional rotating bezel.
According to a second embodiment of the invention, the teeth of the toothed ring and the tooth or each tooth of the spring ring have a symmetrical shape in the plane defined by the spring ring. In this second embodiment, the spring ring can rotate with respect to the toothed ring in one or other of the two directions: clockwise or anticlockwise. This second embodiment of the invention thus corresponds to a two-directional rotating bezel.
Advantageously, the annular rotating bezel system consists of on an independent module, said module being configured to be clipped onto the case middle. This provides a simple, practical means of mounting the rotating bezel system on the case middle, and also allows easy disassembly. This makes it possible to further simplify the method for manufacturing the watch case. The clip mounting system used forms a free hooking system.
To this end, the invention also concerns a watch case including the annular rotating bezel system described above, and which includes the features mentioned in the dependent claim 13.
A particular embodiment of the watch case is defined in the dependent claim 14.
To this end, the invention also concerns a watch including the watch case described above, and which includes the features mentioned in the dependent claim 15.
The objects, advantages and features of the annular rotating bezel system according to the invention will appear more clearly in the following description, based on at least one non-limiting embodiment illustrated by the drawings, in which:
As illustrated in
Annular rotating bezel system 6 includes a rotating bezel 14, an annular holding ring 16, a toothed ring 18 and a spring ring 20. Preferably, system 6 further includes a decorative ring 22 press fitted onto rotating bezel 14. Decorative ring 22 bears, for example, graduations, typically diving graduations in the case of a diver's watch 1. Decorative ring 22 is for example made of ceramic.
Rotating bezel 14 is of annular shape and includes an upper surface 23a visible to the user and a lower surface 23b. As illustrated in
Annular ring 16 holds toothed ring 18 and spring ring 20 in bezel 14, in an axial direction perpendicular to the plane of the timepiece movement. This facilitates the mounting of rotating bezel 14 on case middle 4. Preferably, and as seen in
Annular ring 16 rests on base 12b of case middle 4, and thus surrounds external cylindrical surface 8 of case middle 4. Annular ring 16 is configured to cooperate with external cylindrical surface 8 to allow rotation of rotating bezel 14 on case middle 4. Annular holding ring 16 is, for example, a flat ring.
According to a particular variant illustrated in
Preferably, as represented in
In the example embodiment of
Tongues 30a of the first group and tongues 30b of the second group have different dimensions in the radial direction. In the example embodiment of
Tongues 30b of the second group of tongues form braking and sound dampening means 28. More precisely, tongues 30b of the second group of tongues are formed of more flexible segments than tongues 30a of the first group. These segments are able to bend in an axial direction perpendicular to the plane of the timepiece movement. To achieve this, a specific example embodiment represented in
Braking the rotation of bezel 14 via means 28 has the advantage of smoothing the different plays inside the system so that the user of the bezel does not feel them, and of controlling the rotational torque of the bezel by softening it. Further, braking and sound dampening means 28 reduce the noise produced by rotation of the bezel and thus improve user experience.
Preferably, tongues 30a, 30b of the first and second groups are separated from each other by hollows 32. This improves, in particular, the flexibility of tongues 30b of the second group of tongues.
Preferably too, as seen in
Evidently, in other variants of the invention, the annular holding ring may comprise a single annular ring of rectangular cross-section over its entire circumference pressed into bezel 14.
Toothed ring 18 includes several teeth, for example 120 teeth, also distributed over 360° on its external edge. Preferably, toothed ring 18 also has, on its inner edge, at least one lug 34 received in a hollow 36 provided in external cylindrical surface 8 of case middle 4. In the example embodiments illustrated in
Toothed ring 18 is formed of a single piece of material. Toothed ring 18 is formed, for example, of a metal alloy, especially a cobalt based alloy (40% Co, 20% Cr, 16% Ni and 7% Mo) commercially known as phynox or steel, typically a stainless steel such as 316L steel. In a variant, toothed ring 18 may be formed of a thermoplastic material, particularly a thermostable, semi-crystalline thermoplastic material, such as, for example polyarylamide (Ixef®), polyetheretherketone (PEEK) or made of a ceramic material such as zirconia or alumina.
As visible in
Spring ring 20 engages elastically with toothed ring 18. More specifically, spring ring 20 comprises at least one thinned portion 38 having at least one tooth 40 elastically and radially in mesh with toothed ring 18. In the example embodiments illustrated in
Preferably, as illustrated in
Again preferably, spring ring 20 has on its outer edge at least one hollow 42 in which a lug 44 of bezel 14 is engaged to join these two elements in rotation. In the example embodiments illustrated in
Spring ring 20 is formed of a single piece of material. Spring ring 20 is, for example, formed of a metal alloy having good spring properties, i.e. which deforms elastically easily while being able to deform significantly without undergoing Plastic deformation, especially Phynox® or amorphous metal alloys. Of course, spring ring 20 can also, in a variant, be made from a synthetic material.
A first embodiment of the invention will now be described with reference to
Teeth 40, each arranged in a median part of a thinned portion 38, are regularly distributed over 360°. Thus, in the example illustrated in
In this first embodiment, spring ring 20 can rotate relative to toothed ring 18 in a single predefined direction: clockwise or anticlockwise depending on the shape chosen for the teeth. This first embodiment of the invention thus corresponds to a unidirectional rotating bezel 14.
A second embodiment of the invention will now be described with reference to
In this second embodiment, spring ring 20 can rotate relative to toothed ring 18 in one or other of the two directions: clockwise or anticlockwise. This second embodiment of the invention thus corresponds to a two-directional rotating bezel 14.
Preferably, according to this second embodiment, spring ring 20 includes three thinned portions 38 regularly distributed over 360°. Each thinned portion 38 carries one tooth 40.
The preceding description of the annular rotating bezel system was given with reference to a toothed ring angularly joined to the case middle, and a spring ring angularly joined to the rotating bezel. However, those skilled in the art will understand that the reverse configuration is possible without departing from the scope of the present invention, i.e. the toothed ring may be angularly joined to the rotating bezel, and the spring ring angularly joined to the case middle.
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Number | Date | Country | |
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20190294114 A1 | Sep 2019 | US |