Method for manufacturing a timepiece pinion

High-speed mechanical machining addresses the challenges of manufacturing watch pinions by ensuring precision and reliability in producing small, complex components with minimal tool wear, using materials like ceramic and metal alloys.

WO2025219460A1PCT designated stage Publication Date: 2025-10-23ROLEX SA
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Patent Information

Application Number
PCT/EP2025/060519
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-04-16
Filing Date
2025-04-16
Publication Date
2025-10-23

AI Technical Summary

Technical Problem

Existing methods for manufacturing watch pinions face challenges in achieving high mechanical performance, reliability, and simplicity, particularly with materials like metal and ceramic, which are sensitive to magnetic fields, require complex processes, or cause excessive tool wear and breakage.

Method used

A manufacturing method involving high-speed mechanical machining using a spindle and mechanical cutting tools, such as milling cutters or grinding wheels, at speeds exceeding 100,000 rpm, to process materials like ceramic and metal alloys, ensuring precise and reliable production of watch components with minimal tool wear.

Benefits of technology

The method achieves high precision and reliability in producing small, complex watch components with minimal tool wear, enabling efficient manufacturing of pinions and other watch parts with optimized mechanical properties.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a method for manufacturing a timepiece pinion, characterised in that the method comprises the following steps: - providing a block to be machined; - machining the block using a machining device comprising a mechanical cutting tool that acts on the block through direct contact so as to remove chips from the block, characterised in that - the step of machining the block is carried out using a spindle to which the block is attached and on which it is rotated at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm, while the mechanical cutting tool comes into contact with the block to remove material in successive passes, in order to form a timepiece component having rotational symmetry; or in that - the step of machining the block is carried out by a mechanical cutting tool, such as a milling cutter or a grinding wheel, rotated at a rotational speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held stationary by a spindle, in order to remove material.
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Description

[0001] Manufacturing process of a watch pinion

[0002] The present invention relates to a method of manufacturing a watch pinion. It also relates to a machining device which implements such a manufacturing method.

[0003] The production of a watch pinion requires finding a good compromise between the following requirements:

[0004] - A high-performance material, which meets at least the high mechanical requirements imposed by the watchmaking application;

[0005] - A manufacturing process simple enough to consider large-scale implementation, in a reliable and robust manner.

[0006] A first existing solution consists of manufacturing a metal watch pinion by a bar turning process, involving a mechanical cutting tool that acts directly in contact with an initial block, to shape it by removing material. This cutting tool comes into direct contact with the block, unlike laser machining in which a laser beam can act remotely on such a block. Such a process makes it possible to achieve high precision in a rapid and well-controlled manner. However, depending on the alloy used, the metal has the disadvantage of being sensitive to magnetic fields, which can lead to problems with the reliability of the running of a watch in certain circumstances of use. On the other hand, the metal is not always sufficiently hard and requires additional operations to increase its hardness, and sometimes improve its surface condition, which ultimately complicates the manufacturing process.Finally, some non-magnetic and hard alloys prove to be too difficult to machine, as they cause excessive wear, or even breakage, of the cutting tools. A second existing solution is based on the choice of a very rigid non-magnetic material, such as ceramic, which does not have some of the defects of the metal in the first solution. However, the manufacture of a ceramic watch pinion requires a more complex process, generally involving laser machining, which is more difficult to master and slower than traditional machining.

[0007] Thus, the object of the present invention is to propose a solution for manufacturing a watch pinion which best meets the above-mentioned requirements and improves existing solutions.

[0008] More specifically, the invention aims to define a solution for manufacturing a watch pinion making it possible to simply, reliably and robustly manufacture a watch pinion with optimized mechanical properties.

[0009] To this end, the invention is based on a method of manufacturing a watch component, comprising the following steps:

[0010] - Obtain a machining block;

[0011] - Machining the block using a machining device comprising a mechanical cutting tool acting in direct contact with the block so as to remove chips from the block, characterized in that

[0012] - the step of machining the block uses a spindle on which the block is fixed and driven in rotation, at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm, while the mechanical cutting tool comes into contact with it to remove material in successive passes, to form a watch component having a symmetry of revolution;or in that - the step of machining the block is carried out by a mechanical cutting tool, such as a milling cutter or a grinding wheel, driven at a rotation speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held fixed by a spindle, to remove material.;

[0013] The block to be machined can be entirely made of ceramic, preferably a sintered and hardened ceramic.

[0014] The ceramic may be based on zirconia, in particular yttria-containing zirconia, or based on alumina, based on a zirconia-alumina composite, based on silicon carbide, or based on silicon nitride.

[0015] The block to be machined may be made of rigid and / or fragile and / or hard material with a hardness greater than or equal to 500 HV, or even greater than or equal to 600 HV, or even greater than or equal to 700 HV, or even greater than or equal to 800 HV, or even greater than or equal to 1000 HV, or even greater than or equal to 1200 HV.

[0016] The block may be made of metal or metal alloy, including stainless steel, or copper alloy, including beryllium copper (CuBe), or metallic glass.

[0017] The step of machining the block may be mechanical turning carried out by a turning machine in which the block to be machined is fixed on a spindle and driven in rotation, the turning machine being a single-spindle machine or a multi-spindle machine.

[0018] The mechanical cutting tool can act on the block to be machined in fine passes allowing chips less than 5 microns thick to be removed during one pass. The mechanical cutting tool can comprise a natural or synthetic diamond, in particular a polycrystalline synthetic diamond.

[0019] The method of manufacturing a watch component may comprise a step of finishing the watch component, particularly a tribofinishing step, which modifies by a maximum of 1%, or even a maximum of 0.5%, or even a maximum of 0.1%, the dimension of a cross-section of the watch component resulting from the step of machining the block.

[0020] The step of machining the block can make it possible to achieve the final geometry of the watch component, or the final dimension of at least one functional portion of the watch component, or a part of the final dimension of at least one functional portion of the watch component different by less than 1%, or even less than 0.5%, or even less than 0.1%, from the final dimension of the at least one functional portion of the watch component.

[0021] The manufacturing process of a watch component can form at least one functional portion of the watch component with a roughness Ra less than or equal to 0.5 pm, or even less than or equal to 0.1 pm, or even less than or equal to 50 nm, or even less than or equal to 20 nm, or even less than or equal to 15 nm.

[0022] The method of manufacturing a watch component may form a watch component whose largest cross-section is inscribed in a circle with a diameter less than or equal to 2 mm, or even less than or equal to 1 mm, or even less than or equal to 0.5 mm, and / or at least one functional portion of the watch component of which at least one cross-section is inscribed in a circle with a diameter less than or equal to 200 pm, or even less than or equal to 100 pm, or even less than or equal to 70 pm.

[0023] The manufacturing process of a watch component can make it possible to manufacture all or part of a watch axis, such as a balance staff or an anchor stem or a barrel arbor, all or part of a pinion, in particular the entirety of a single-piece pinion, such as an escapement pinion or a gear train pinion.

[0024] The invention also relates to a machining device comprising at least one spindle configured to hold a block to be machined and a mechanical cutting tool configured to act in direct contact with the block to be machined so as to remove chips from the block to be machined, characterized in that the machining device comprises a motor connected to the at least one spindle and / or to the mechanical tool so as to drive it in rotation, to implement the method for manufacturing a watch component as described above, the motor being configured to drive the at least one spindle in rotation at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm,while the mechanical cutting tool comes into contact with it to remove material in successive passes, or the motor being configured to rotate the mechanical cutting tool, such as a milling cutter or a grinding wheel, at a rotation speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held fixed by the at least one spindle, to remove material.,

[0025] In all cases, said watch component is advantageously a watch pinion.

[0026] These objects, characteristics and advantages of the present invention will be explained in detail in the following description of particular embodiments made without limitation in relation to the attached figures among which: Figure 1 represents a side view of a watch component obtained by a manufacturing method according to an embodiment of the invention.

[0027] Figure 2 represents a top view of the watch component obtained by the manufacturing method according to the embodiment of the invention.

[0028] To simplify the description, we will conventionally use the longitudinal direction for the main direction along which the axis of a watch pinion in question extends, for example an axis of revolution of a watch pinion, or more generally a main axis, for example considered according to the direction of greatest dimension of the watch pinion. The adjective "transverse" will be used to designate a direction perpendicular to the longitudinal direction.

[0029] The concept of the invention consists in using a manufacturing method based on unconventional machining, in particular on unconventional bar turning, involving a very high relative speed between a block to be machined, in particular a bar to be machined, and a mechanical cutting tool, which comes into contact with the block to be machined. Traditional bar turning machines, as used in the state of the art to manufacture metal watch components, are totally unsuitable for the use of very rigid, fragile and hard materials such as ceramics, in particular zirconia-based. Indeed, such use would lead to catastrophic wear of the mechanical cutting tools, or even the breakage of these mechanical cutting tools and / or the block to be machined, explaining why such a solution does not exist.For example, machining tests of a very hard metal alloy known by its name P2000 during traditional machining in which a P2000 block is driven at a rotation speed of 12,000 rpm made it possible to manufacture only 150 pieces before requiring the cutting tool to be changed. According to the invention, it was discovered against all expectations that a very high rotation speed implemented in a bar turning machine makes it possible to significantly reduce the wear and breakage of mechanical cutting tools, even when using a very hard base material such as a ceramic. A first embodiment of the invention will now be detailed for the manufacture of a watch pinion having a symmetry of revolution, at least over a part of its length, around a longitudinal axis. Figure 1 illustrates such a watch component 1, which comprises a complex structure arranged around an axis A, with several functional parts.This watch component 1 is also a watch pinion and comprises a toothing 2, particularly visible in figure 2, arranged around its axis A. As an example of embodiment, such a toothing 2 may comprise a length of 0.3 mm (measured in the direction of the axis A), and a diameter of 0.75 mm.

[0030] In this first embodiment, a machine tool, also called a bar turning machine, is used, comprising at least one spindle intended for mounting a block, in particular a bar or a rod, to be machined, from which at least one blank of the watch component will be formed by machining, by removing material. This spindle is associated with a motor intended to drive the spindle in rotation around an axis of rotation. The spindle further comprises a housing for fixing a block to be machined. This spindle is therefore a workpiece holder. According to this embodiment, the motor of the bar turning machine is adapted to drive the block to be machined at a very high rotation speed on itself, around an axis which corresponds to the longitudinal axis of the future watch component.This speed is greater than 20,000 rpm, or greater than or equal to 22,000 rpm, or greater than or equal to 25,000 rpm, or greater than or equal to 30,000 rpm, or greater than or equal to 35,000 rpm, or greater than or equal to 40,000 rpm.

[0031] The machining machine or device, also called a turning machine, also includes a mechanical cutting tool, which comes into direct contact with the block to be machined during its rotation, thus removing chips of material symmetrically around the axis of rotation of the block to be machined, which will form the axis of symmetry of the future watch component, which will have a symmetry of revolution. The cutting tool thus makes it possible to gradually remove material around the block to be machined, thus cutting its circumference and gradually sculpting the block to be machined until reaching the final watch component. Advantageously, the cutting tool passes several times over the same location, to remove chips of very low thickness, for example less than 5 μm thick, or even less than 2 μm, or even less than 1 μm, with each pass. Thus, the result obtained is of very high precision.Surprisingly, the higher the rotation speed of the block to be machined, according to the above-mentioned values, the less wear there is on the mechanical cutting tool, which thus makes it compatible with such a manufacturing solution.

[0032] This cutting tool may retain usual geometries and materials, in particular having a cutting surface in a rigid and / or hard material, for example cutting inserts made of natural or synthetic diamond, such as a polycrystalline synthetic diamond like PCD.

[0033] It appears that such a manufacturing method makes it possible to form components of very small dimensions, for example having cross-sections with a diameter less than or equal to 350 μm, or even with a diameter less than or equal to 200 μm, or even less than or equal to 100 μm, or even less than or equal to 70 μm. Such a small-dimensioned production is very important since it is obligatory for the manufacture of a watch component, in particular a pinion, in particular the entirety of a single-piece pinion, such as an escapement pinion or a gear train pinion. More generally, the manufacturing method according to the invention makes it possible to form a watch component whose largest cross-section is inscribed in a circle with a diameter less than or equal to 2 mm, or even less than or equal to 1 mm, or even less than or equal to 0.4 mm, the block to be machined thus being able, for example, to be a bar with a diameter equal to 2 mm, or 1 mm, or 0.4 mm.

[0034] On the other hand, it appears that the method according to the invention makes it possible to manufacture a given geometry of a watch component with great precision and reliability, and high dimensional repeatability. The spindle of the turning machine is furthermore designed to guarantee the proper fixing of the block to be machined, without displacement of the latter despite the significant forces it undergoes during the machining operation. In addition, the overall rigidity of the machining device ensures that neither the block to be machined nor the cutting tools vibrate or deform, which guarantees a controlled trajectory of the cutting tool. To optimize the stability of the machining device, a machining strategy that minimizes the forces is preferred, in particular by multiplying the cutting passes that remove very small chips with each pass, as detailed previously.

[0035] On the other hand, advantageously, the machining device implements high and precise accelerations and decelerations.

[0036] According to an advantageous embodiment, the machining device comprises a multi-spindle lathe, i.e. comprises several spindles which operate at the same time, allowing for example parallel manufacturing of several watch components by breaking down the machining operations between the different spindles. For example, an additional spindle can carry a cutting tool for producing a toothing, in order to produce a watch pinion.

[0037] According to an advantageous embodiment, the machining device comprises a secondary workpiece holder, allowing the component to be reworked after it has been detached from the initial bar or rod.

[0038] The invention is not limited to the turning machine described above, the same principle can be implemented using any machining lathe.

[0039] The invention thus makes it possible to advantageously machine a block made of very hard material, such as a ceramic, which was not possible in the prior art, and considered impossible by the person skilled in the art. The invention applies, for example, to a block to be machined entirely made of ceramic. The ceramic is preferably a sintered and hardened ceramic. The block to be machined may be based on zirconia, in particular yttria-containing zirconia, the expression "based on" meaning that it comprises at least 50% by weight of zirconia. Alternatively, it may be entirely made of zirconia, in particular yttria-containing zirconia. Alternatively, it may be based on alumina or entirely made of alumina, entirely or based on a zirconia-alumina composite, entirely or based on silicon carbide, entirely or based on silicon nitride.

[0040] The invention is more generally suitable for machining by direct material removal from a block of any rigid material, in particular with a hardness greater than or equal to 500 HV, or even greater than or equal to 600 HV, or even greater than or equal to 700 HV, or even greater than or equal to 800 HV, or even greater than or equal to 1000 HV, or even greater than or equal to 1200 HV. Naturally, even though the invention is particularly advantageous in that it even allows the machining of materials as rigid as ceramic, it also works with a metal or metal alloy, in particular an austenitic stainless steel, such as P558 or P2000 or Biodur 108, or a Co-based austenitic superalloy such as Phynox, or a copper alloy, in particular beryllium copper (CuBe), or metallic glass.

[0041] The invention more advantageously makes it possible to manufacture a watch component by the single machining step described above. However, it can be supplemented by an optional finishing step, particularly a step of tribofinishing the watch component. Such a step makes it possible, for example, to adapt the surface condition of one or more functional surfaces of the watch component, such as the roughness Ra. However, it has a negligible impact on the overall geometry of the watch component. In particular, such a finishing step modifies by a maximum of 1%, or even a maximum of 0.5%, or even a maximum of 0.1%, the dimension of a cross-section of the watch component resulting from the machining step described above. At the end of the process, a functional surface of the watch component may have a roughness Ra less than or equal to 0.5 μm, or even less than or equal to 0.1 pm, or even less than or equal to 50 nm, or even less than or equal to 20 nm, or even less than or equal to 15 nm. In other words, the invention is particularly advantageous in that the machining step makes it possible to form the complete and final, or quasi-final, geometry of the watch pinion, and therefore a well-advanced roughing, outside of the toothing 2. Thus, the machining described above alone makes it possible to achieve the final dimension of the watch component, outside of the toothing 2, or the final dimension of at least one functional portion of the watch component, or even a part of the final dimension of at least one functional portion, in particular outside of the toothing 2, of the watch component different by less than 1%, or even less than 0.5%, or even less than 0.1%, from the final dimension of the at least one functional portion of the watch component.The term "functional portion of the watch component" means a portion of the component which interacts with another component, in particular such as the driving portion to accommodate, for example, a mobile plate or a balance wheel or a hairspring, or such as the pivoting portion which allows the rotation of the component in a fixed part (such as a jewel) which serves as its support, or such as the transmission part formed, for example, by a toothing.

[0042] According to a second embodiment of the invention, a machining device implementing milling or grinding can be used. As in the first embodiment, it has been discovered that a mechanical cutting tool such as a milling cutter or a grinding wheel of such a device, rotated at very high speed, greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, also makes it possible to sculpt a block to be machined made of a very rigid material, such as ceramic, without causing extreme and unacceptable wear of the milling cutter. Such a machining machine is thus, as a variant, suitable for the manufacture of a watch component.A difference with the lathe used in the first embodiment is that it is the cutting tool, in particular the milling cutter or the grinding wheel, of the machining device which rotates, the block to be machined being able to remain fixed, whereas in the lathe of the first embodiment, it was the block which was set in rotation. In both cases, there is a very high speed relative rotation between a block to be machined and a mechanical cutting tool.

[0043] On the other hand, in this second embodiment, the machining device is suitable for the manufacture of a watch component not exhibiting symmetry of revolution.

[0044] Milling or grinding can also form chips of very low thickness in each pass, less than 5 μm thick, of the order of 1 μm in each pass if necessary.

[0045] This second embodiment ultimately presents the same advantages as those described with reference to the first embodiment.

[0046] Naturally, the two embodiments of the invention can be combined, a watch component being able for example to undergo a first shaping by a turning machine implementing mechanical turning, before finalization by a machining device implementing milling or grinding, or vice versa. Furthermore, the invention can be combined with any other existing manufacturing method, this other method being able to be used to manufacture another portion of a watch component, or the same portion, before or after the implementation of the invention, such as for example a pinion.

[0047] In all cases, the invention makes it possible to form at least one functional portion of a watch component, at least one cross-section of which is inscribed in a circle with a diameter less than or equal to 200 μm, or even less than or equal to 100 μm, or even less than or equal to 70 μm. It also makes it possible, more generally, to form a watch component, of small size, the cross-section of which of largest dimension is inscribed in a circle with a diameter less than or equal to 2 mm, or even less than or equal to 1 mm, or even less than or equal to 0.5 mm. The method for manufacturing a watch pinion advantageously implements a second separate step of cutting the toothing 2, from the blank of the watch component manufactured by the first step described above.

[0048] This second cutting step can be carried out by various means: with a cutting tool, but also by laser ablation, or other suitable means.

[0049] In the variant of cutting teeth by machining with a cutting tool, the following approaches can be used:

[0050] • Tooth-by-tooth cutting: in this case, a tool carries the negative of the profile of the tooth to be cut, and crosses the portion of the component which carries the teeth in successive passes, successively producing each tooth profile.

[0051] • Gear hobbing: in this case, the tool is a hob that passes through the section to be cut, which does not have the profile of the teeth but a complex profile, which passes through the section to be cut. The hob has the appearance of a worm notched with longitudinal grooves to create cutting edges. This process requires coordinating the rotational and translational movements of the pinion blank to be machined and the hob, in order to obtain the desired tooth profile on the pinion. The cutter is driven by a rotational movement on its axis for cutting, as well as a translation parallel to the axis of the part for the feed and a radial translation for the depth of cut. The rotational movements of the component to be cut and the hob are linked.

[0052] • Alternatively, it is also possible to use other types of cutter, such as planing chisels; index cutters for producing teeth with non-symmetrical and / or deep profiles; or face cutting cutters, or cutters for cutting bevel gears.

[0053] Tests show that it is possible to produce watch pinions in hard and brittle materials, such as ceramics or metal alloys with hardnesses above 500HV, of excellent quality. A very high rotation speed of the spindle that carries the cutting tool to form the teeth in the second stage allows the teeth to be produced without breakage of the tool and the component, and without chipping of the material. The rotation speed of the spindle, for example for tooth-by-tooth cutting, is 30,000 rpm, or even 40,000 rpm, or even 60,000 rpm. More generally, the second step of cutting a tooth 2 uses a spindle which carries the cutting tool to form the tooth, rotating at a speed greater than or equal to 30,000 rpm, or even greater than or equal to 40,000 rpm, or even greater than or equal to 60,000 rpm.

[0054] Additionally, for forming hard metal components, a hard metal cutter is recommended. For forming ceramic components, a hard metal cutter breaks very quickly, and a polycrystalline diamond (PCD) cutter is particularly suitable.

[0055] More generally, the invention makes it possible to manufacture any watch component, and particularly all or part of a watch shaft, such as a balance shaft or an anchor stem or a barrel arbor, a part of a pinion, as described previously, such as an escapement pinion or a gear train pinion.

[0056] The invention also relates to a machining device comprising at least one spindle configured to hold a block to be machined and a mechanical cutting tool configured to act in direct contact with the block to be machined so as to remove chips from the block to be machined, characterized in that the machining device comprises a motor connected to the at least one spindle and / or to the mechanical cutting tool so as to drive it in rotation, to implement the method for manufacturing a watch component as described above, the motor being configured to drive the at least one spindle in rotation at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm,while the mechanical cutting tool comes into contact with it to remove material in successive passes, or the motor being configured to rotate the mechanical cutting tool, such as a milling cutter or a grinding wheel, at a rotation speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held fixed by the at least one spindle, to remove material.,

Claims

CLAIMS 1. Method of manufacturing a watch pinion, comprising the following steps - Obtain a machining block; - Machining the block using a machining device comprising a mechanical cutting tool acting in direct contact with the block so as to remove chips from the block, characterized in that - the step of machining the block uses a spindle on which the block is fixed and driven in rotation, at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm, while the mechanical cutting tool comes into contact with it to remove material in successive passes, to form at least one rough rough of the watch pinion having a symmetry of revolution; or in that - the step of machining the block is carried out by a mechanical cutting tool, such as a milling cutter or a grinding wheel, driven at a rotation speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held fixed by a spindle, to remove material.

2. Method of manufacturing a watch pinion according to the preceding claim, characterized in that it comprises a second separate step of cutting a toothing (2) on a blank obtained by said step of machining the block.

3. Method for manufacturing a watch pinion according to the preceding claim, characterized in that the second step of cutting a toothing (2) comprises cutting with a cutting tool, for tooth-by-tooth cutting or generation cutting, or laser ablation.

4. Method for manufacturing a watch pinion according to the preceding claim, characterized in that the second step of cutting a toothing (2) uses a spindle which carries the cutting tool to form the toothing, rotating at a speed greater than or equal to 30,000 rpm, or even greater than or equal to 40,000 rpm, or even greater than or equal to 60,000 rpm.

5. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that the block to be machined is entirely made of ceramic, preferably a sintered and hardened ceramic.

6. Method for manufacturing a watch pinion according to the preceding claim, characterized in that the ceramic is based on zirconia, in particular yttria-containing zirconia, or based on alumina, based on a zirconia-alumina composite, based on silicon carbide, or based on silicon nitride.

7. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that the block to be machined is made of rigid and / or fragile and / or hard material with a hardness greater than or equal to 500 HV, or even greater than or equal to 600 HV, or even greater than or equal to 700 HV, or even greater than or equal to 800 HV, or even greater than or equal to 1000 HV, or even greater than or equal to 1200 HV.

8. Method for manufacturing a watch pinion according to the preceding claim, characterized in that the block is made of metal or metal alloy, in particular stainless steel, or copper alloy, in particular beryllium copper (CuBe), or metallic glass.

9. Method of manufacturing a watch pinion according to one of the preceding claims, characterized in that the step of machining the block is a mechanical turning carried out by a turning machine in which the block to be machined is fixed on a spindle and driven in rotation, the turning machine being a single-spindle machine or a multi-spindle machine.

10. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that the mechanical cutting tool acts on the block to be machined in fine passes making it possible to remove chips less than 5 microns thick during one pass.

11. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that the mechanical cutting tool comprises a natural or synthetic diamond, in particular a polycrystalline synthetic diamond, or metal.

12. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that it comprises a step of finishing the watch pinion, particularly a tribofinishing step, which modifies by a maximum of 1%, or even a maximum of 0.5%, or even a maximum of 0.1%, the dimension of a cross-section of the watch pinion resulting from the step of machining the block.

13. Method for manufacturing a watch pinion according to one of claims 1 to 11, characterized in that the step of machining the block forms the final geometry of the watch pinion, or the final dimension of at least one functional portion of the watch pinion, or a part of the final dimension of at least one functional portion of the watch pinion different by less than 1%, or even less than 0.5%, or even less than 0.1%, from the final dimension of the at least one functional portion of the watch pinion.

14. Method of manufacturing a watch pinion according to one of the preceding claims, characterized in that it manufactures at least one functional portion of the watch pinion with roughness Ra less than or equal to 0.5 pm, or even less than or equal to 0.1 pm, or even less than or equal to 50 nm, or even less than or equal to 20 nm, or even less than or equal to 15 nm.

15. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that it manufactures a watch pinion whose largest cross-section is inscribed in a circle with a diameter less than or equal to 2 mm, or even less than or equal to 1 mm, or even less than or equal to 0.5 mm, and / or at least one functional portion of the watch pinion of which at least one cross-section is inscribed in a circle with a diameter less than or equal to 200 pm, or even less than or equal to 100 pm, or even less than or equal to 70 pm.

16. Method for manufacturing a watch pinion according to one of the preceding claims, characterized in that it manufactures all or part of a watch axis, such as a balance shaft or an anchor stem or a barrel arbor, all or part of a pinion, in particular the entirety of a single-piece pinion, such as an escapement pinion or a gear train pinion.

17. Machining device comprising at least one spindle configured to hold a block to be machined and a mechanical cutting tool configured to act in direct contact with the block to be machined so as to remove chips from the block to be machined, characterized in that the machining device comprises a motor connected to the at least one spindle and / or to the mechanical tool so as to drive it in rotation, to implement the method for manufacturing a watch pinion according to one of the preceding claims, the motor being configured to drive the at least one spindle in rotation at a speed greater than or equal to 20,000 rpm, or even greater than or equal to 22,000 rpm, or even greater than or equal to 25,000 rpm, or even greater than or equal to 30,000 rpm, or even greater than or equal to 35,000 rpm, or even greater than or equal to 40,000 rpm, while the mechanical cutting tool comes into contact with it to remove material in successive passes, or the motor being configured to rotate the mechanical cutting tool, such as a milling cutter or a grinding wheel, at a rotation speed greater than or equal to 100,000 rpm, or even greater than or equal to 120,000 rpm, or even greater than or equal to 150,000 rpm, or even greater than or equal to 180,000 rpm, which comes into contact with the block, held fixed by the at least one spindle, to remove material.

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