Clockwork mechanism with a striking mechanism equipped with a flexible guide
Patent Information
- Application Number
- DE602022026896
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-20
- Publication Date
- 2025-12-17
- Estimated Expiration
- 2042-07-20
AI Technical Summary
Existing watch striking mechanisms face challenges in controlling and maximizing the normal component of forces applied by the hammer to the vibrating element, leading to inefficiencies in sound production and complexity in mechanical parts.
A watch movement with a striking mechanism featuring a hammer cantilevered by two elastic blades forming a flexible guide, which extends parallel to the vibrating element, providing a mechanical connection and guiding the hammer for precise positioning and energy transfer.
Enhances sound production efficiency by maximizing the normal component of forces and reducing mechanical complexity, while minimizing tangential friction and part count, resulting in improved sound quality and simplified manufacturing.
Description
Technical field of the invention
[0001] The invention falls within the field of watch movement complications, and in particular the striking mechanisms of a watch.
[0002] More specifically, the invention relates to a watch movement comprising a striking mechanism with a flexible guide.
[0003] Such a ringing mechanism can be adapted to any type of ringing, such as a quarter repeater, minute repeater, loud ring, small ring or alarm. Technological background
[0004] Watch striking mechanisms are known to include a hammer designed to strike a vibrating element, such as a gong.
[0005] In particular, the hammer is constrained in movement towards the vibrating element by a spring and is cocked, that is to say held away from the gong, by an activation mechanism, such as a lift or other dedicated mechanism.
[0006] Generally, the vibrating element extends along a curvilinear direction within the watch case, for example, around a central axis of the case. When the hammer strikes the vibrating element, the hammer generates forces on the element, causing it to vibrate and, consequently, producing the chime. These forces have a normal component and a tangential component, the latter characterizing the friction of the hammer on the vibrating element.
[0007] In particular, the vibration of the vibrating element is essentially generated by the normal component of the forces applied by the hammer, hence the need to control and maximize this normal component to control the effectiveness of the impact of the hammer on the vibrating element and the sound produced by this impact.
[0008] Document CH 715 617 A2 describes a bell hammer mounted pivoting on a flexible guide. Summary of the invention
[0009] The invention overcomes the aforementioned drawbacks by proposing, for this purpose, a watch movement comprising a striking mechanism for a watch including a vibrating element and a striking device for said vibrating element. The striking device comprises a hammer cantilevered from a structure of the watch movement by means of at least two elastic blades forming a flexible guide. The two blades are arranged so as to extend in directions parallel to an axis T tangent to a surface of the vibrating element intended to be struck by the hammer of the striking device.
[0010] In particular embodiments, the invention may further comprise one or more of the following features, taken individually or in all technically possible combinations.
[0011] In particular embodiments, the striking device is fixed to the structure of the watch movement only by a mechanical connection of the embedment type.
[0012] In particular embodiments, at least the blades are made of silicon, by deep reactive ion etching.
[0013] In particular embodiments, at least the blades are produced by laser machining, in particular by femtosecond lasers, or by electro-erosion.
[0014] In particular embodiments, the striking device is a single unit.
[0015] In particular embodiments, the striking device is made of amorphous metal, by molding or by hot forming.
[0016] In particular embodiments, the striking device is made of nickel or nickel phosphorus, by LIGA process.
[0017] In particular embodiments, the blades have a thickness less than that of the hammer. Brief description of the figures
[0018] Other features and advantages of the invention will become apparent from the following detailed description, given by way of non-limiting example, with reference to the accompanying drawings in which: there figure 1 schematically represents a top view of a bell mechanism comprising a striking device in a resting state, according to a preferred embodiment of the invention: the figure 2 schematically represents a cross-sectional view of the striking device of the bell mechanism of the figure 1 .
[0019] Note that the figures are not necessarily drawn to scale for reasons of clarity. Detailed description of the invention
[0020] There figure 1shows a striking mechanism 10 of a watch movement in a preferred embodiment of the invention.
[0021] The striking mechanism 10 comprises a vibrating element 11 and a striking device 120 for striking said vibrating element 11 to produce a sound. The vibrating element 11 is fixed to a structure of the watch movement, for example to a bridge, a plate, etc., and is, in the embodiment shown in the figure 1 formed by a stamp.
[0022] The striking device 120 comprises a hammer 121 cantilevered from the watch movement structure by means of several blades 122 forming a flexible guide. The blades 122 have elastic deformation capabilities and are used in the present invention for guiding and driving the hammer 121. Preferably, there are two blades 122. In particular, each blade 122 has a straight shape when the striking device 120 is at rest, i.e., in an equilibrium position. The flexible guide formed by the blades 122 is a translational guide.
[0023] In summary, as is known to those skilled in the art, the striking device 120 is cocked by an activation mechanism (not shown in the figures), such as a lever or other dedicated mechanism. This means that the hammer 121 is driven away from the vibrating element 11, causing the blades 122 to deform progressively until they reach a cocked state. Subsequently, in response to the passage of a predefined time value or upon instruction from a user, the activation mechanism releases the hammer 121, which is then, under the effect of the elastic return force of the blades 122, driven to strike the vibrating element 11, the striking device 120 being in a striking state.
[0024] Advantageously, the blades 122 allow for very precise positioning of the hammer 121 relative to the structure of the watch movement, and in particular relative to the vibrating element 11, without mechanical play or lubrication, unlike a conventional watch pivot. Furthermore, the blades 122 provide a constant amount of energy to move the hammer 121 in translation with each strike of the striking device 120 on the vibrating element 11.
[0025] As schematically shown figures 1 and 2The blades 122 extend between two longitudinal ends. Each blade 122 is therefore mechanically linked, by one of its longitudinal ends, to the structure of the watch movement, and by its other longitudinal end, to the hammer 121. In other words, the striking device 120 is fixed to the structure of the watch movement only by a mechanical connection of the fixed type, that is to say that the blades 122 constitute the only mechanical connection between the hammer 121 and the structure.
[0026] In particular, each 122 blade can be fixed to the structure of the watch movement by welding, screwing, gluing, tight fitting, or by any other means suitable to the reach of a person skilled in the art.
[0027] The blades 122 are arranged so that they extend in directions parallel to an axis T tangent to the vibrating element 11, as shown in the figure 1More precisely, the axis T is tangent to a surface of the vibrating element 11 intended to be subjected to the impact of the hammer 121. Thus, the hammer is driven in translation along a direction D perpendicular to the axis T, or substantially in translation along a direction tangent to a direction D perpendicular to the axis T.
[0028] This feature offers several advantages.
[0029] Indeed, this feature maximizes the normal component of the forces applied by the hammer 121 to the vibrating element 11 during percussion, even eliminating any tangential component. Thus, percussion is more efficient in terms of the forces transmitted to the vibrating element 11 for given elastic characteristics of the blades 122, resulting in a higher sound volume produced by said percussion.
[0030] Furthermore, this feature allows for better control of the position of the hammer's striking point 121 on the surface of the vibrating element 11, and thus enables better control of the vibratory response of said vibrating element 11 and therefore of the sound produced during the impact. More precisely, the sound produced during the impact differs depending on whether the striking point is located on a node or on an antinode of vibration of a vibratory mode of the vibrating element 11.
[0031] Finally, the use of a flexible guide and its particular arrangement makes it possible to reduce the size of the striking device 120 and to considerably reduce the number of parts constituting said device, insofar as said flexible guide plays both a guiding role and an elastic return role.
[0032] Preferably, the 120 striking device is a single unit. This makes the 120 striking device particularly simple to manufacture, and its production cost is kept down. Furthermore, the mechanism is not susceptible to power loss during percussion due to any mechanical play that might exist if the 120 striking device were constructed by assembling various parts.
[0033] In particular, the 120 striking device can be made of amorphous metal, for example by molding or hot forming, or of nickel or nickel phosphorus, for example by LIGA process.
[0034] Alternatively, the striking device 120, and in particular the blades 122, can be made of silicon, for example by dry etching, and more particularly by deep reactive ion etching, a manufacturing method known as such to those skilled in the art under the acronym DRIE meaning Deep Rectified Ion Etchingin English. The 122 blades can, alternatively, be made of steel, by laser machining, in particular by femtosecond laser, or by electro-erosion.
[0035] In particular, the hammer 121 may include one or more masses made of a metallic material, for example tungsten or steel, to which the blades 122 are attached by pressing, gluing, screw or pin.
[0036] Advantageously, the blades 122 have a thinner profile than the hammer 121, as can be seen in the schematic cross-sectional view of the figure 2 This feature makes it possible to increase the mass of the hammer 121 relative to that of the blades 122, and therefore to increase the energy supplied by the latter during the percussion against the vibrating element 11.
[0037] It should be noted that the thickness is defined as the dimension extending in a direction perpendicular to a plane in which the striking device 120 and the vibrating element 11 are mobile.
[0038] More generally, it should be noted that the implementation and realization methods considered above have been described as non-limiting examples, and that other variants are therefore conceivable.
[0039] In particular, the hammer has a trapezoidal shape in the example shown on the figure 1 , but it can alternatively take any form suitable for the performance of percussion.
[0040] Furthermore, in the example implementation shown on the figure 1, the vibrating element 11 is formed by a stamp comprising a strand extending in a circular direction inside which the striking device 120 is arranged. Alternatively, the striking device 120 could be arranged outside the strand of the stamp.
[0041] Furthermore, the vibrating element 11 can adopt any suitable shape enabling it to vibrate following a hammer strike and to generate a sound by vibrating, such as a bell or a gong.
Claims
1. A horological movement comprising a striking mechanism (10) of a watch comprising a vibrating element (11)and a device (120) for striking said vibrating element (11) comprising a hammer (121) fastened cantilevered to a structure of the horological movement through elastic blades (122) forming a flexible guide, said striking mechanism (10) being characterised in that said blades (122) are arranged so as to extend according to directions parallel to an axis T tangent to a surface of the vibrating element (11) intended to be subjected to the impact of the hammer (121), so the hammer (121) is driven in translation according to a direction D perpendicular to the axis T .
2. The horological movement according to claim 1, wherein the striking device (120) is fastened to the structure of the horological movement only by an embedded type mechanical connection.
3. The horological movement according to one of claims 1 or 2, wherein at least the blades (122) are made of silicon, by deep reactive-ion etching.
4. The horological movement according to one of claims 1 to 3, wherein at least the blades (122) are made by laser machining, in particular by femtosecond laser, or by electrical discharge machining.
5. The horological movement according to one of claims 1 to 4, wherein the striking device (120) is made in one-piece.
6. The horological movement according to claim 5, wherein the striking device (120) is made of amorphous metal, by moulding or by hot forming.
7. The horological movement according to claim 5, wherein the striking device (120) is made of nickel or of nickel-phosphorus, by the LIGA process.
8. The horological movement according to one of claims 1 to 7, wherein the blades (122) have a smaller thickness than that of the hammer (121).