COMPONENT ESPECIALLY FOR HOROLOGY WITH SURFACE TOPOLOGY AND METHOD FOR MANUFACTURING THE SAME
20200371477 ยท 2020-11-26
Assignee
Inventors
Cpc classification
G04D3/0087
PHYSICS
B81C2201/0132
PERFORMING OPERATIONS; TRANSPORTING
B81C1/00698
PERFORMING OPERATIONS; TRANSPORTING
International classification
G04B15/14
PHYSICS
G04D3/00
PHYSICS
Abstract
A component intended to be in friction contact with another component, the component being coated with an electrically conductive layer in one piece, at least partially covering every surface of the component, the friction occurring on at least one of these surfaces, called the functional surface, the functional surface being surrounded by a plurality of side surfaces, the component having on its functional surface a texture formed of a succession of troughs coated with the electrically conductive layer, the troughs each extending between two side surfaces such that the electrically conductive layer remains in one piece over the component despite the wear caused by friction on the functional surface. The invention also relates to the method for manufacturing the component by the DRIE (deep reactive ion etching) process, wherein surface defects on the sides machined by the DRIE process are used to form the troughs.
Claims
1. A component intended to be in friction contact with another component, said component being coated with an electrically conductive layer in one piece at least partially covering every surface of the component, the friction occurring on at least one of these surfaces, called the functional surface, said functional surface being surrounded by a plurality of side surfaces, the component having on its functional surface a texture formed of a series of troughs coated with said electrically conductive layer, said troughs each extending between two side surfaces of the component such that the electrically conductive layer remains in one piece over the entire component or continuous over all the faces of the component despite the wear caused by friction on the functional surface.
2. The component according to claim 1, wherein, in the manufactured state, said troughs and the portions surrounding the troughs on the functional surface are coated with the electrically conductive layer, said layer on the portions being susceptible to wear during use.
3. The component according to claim 1, wherein said troughs have a depth P which is comprised between 100 and 500 nm.
4. The component according to claim 1, wherein the succession of troughs forms a periodic structure.
5. The component according to claim 3, wherein the troughs have a rounded cross-section and are separated by portions in relief, thereby forming a scalloped texture.
6. The component according to claim 1, wherein the texture is present on one side of said at least one component machined by deep reactive ion etching.
7. The component according to claim 1, wherein the electrically conductive layer is a metal layer.
8. The component according to claim 7, wherein the metal layer is made of a metal chosen from among gold, platinum, rhodium and palladium.
9. The component according claim 1, wherein, in the manufactured state, the layer completely covers each of the surfaces, and in that wherein, during use, the layer completely covers each of the surfaces with the exception of the functional surface from which the layer gradually disappears.
10. The component according to claim 1, wherein the component is a timepiece component.
11. The component according to claim 10, wherein the component is a balance spring intended to be fitted to a balance with fixed inertia.
12. The component according to claim 10, wherein the component is a component of one of the following systems: escape wheel, pallets roller.
13. The component according to claim 12, wherein the functional surface forms the impulse face and/or the locking face of the escape wheel teeth.
14. The component according to claim 12, wherein the functional surface forms the impulse face and/or the locking face of the pallet stones.
15. The component according to claim 12, wherein the functional surface forms the surface of the horns of the pallet fork intended to come into contact with the impulse pin.
16. The component according to claim 1, wherein said component is silicon-based.
17. A timepiece comprising a component intended to be in friction contact with another component, said component being coated with an electrically conductive layer in one piece at least partially covering every surface of the component, the friction occurring on at least one of these surfaces, called the functional surface, said functional surface being surrounded by a plurality of side surfaces, the component having on its functional surface a texture formed of a series of troughs coated with said electrically conductive layer, said troughs each extending between two side surfaces of the component such that the electrically conductive layer remains in one piece over the entire component or continuous over all the faces of the component despite the wear caused by friction on the functional surface.
18. A method for manufacturing a component, wherein the method comprises the following steps: providing a blank, machining a side on said blank, by the deep reactive ion etching process to produce the component, said machined side having a scalloped texture inherent to the deep reactive ion etching process, said texture defining on the machined side a set of troughs, depositing an electrically conductive layer on each of the surfaces of the component including in the troughs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007]
[0008]
[0009]
DETAILED DESCRIPTION
[0010] The present invention relates to a component intended to be subject to friction in use. More specifically, this is a component made of an electrically non-conductive material intended to be coated with a conductive layer in order to release the electrostatic charges accumulated during friction. For example, the material may be silicon-based. In the field of horology, for example, one can, for example, cite one component or both components involved in a system: escape wheel teeth/pallet stones, lever-notch/impulse pin, etc. It may also concern a balance spring intended to be fitted to a fixed inertia balance of a timepiece movement.
[0011] As schematically represented in
[0012] According to the invention, the entire component is preferably coated with an electrically conductive layer 4 at the end of its manufacturing process. Thus, as illustrated in
[0013] By way of illustration,
[0014] In the case of a balance spring more specifically intended to be fitted to a balance with fixed inertia (not represented), both faces of the outer coil of the balance spring are perpendicular to the plane of the balance spring and respectively subjected to friction against the two pins of the index assembly during the oscillation of the balance/balance spring. Consequently, at least one of these two faces may have a surface with the texture formed of a series of troughs 2a separated by peaks 2b coated with conductive layer 4 according to the invention, the lines of the peaks extending in the circumferential direction of the balance spring coils.
[0015] Various processes can be envisaged to form the structure according to the invention. For example, it can be obtained by machining, selective chemical etching, etc. Preferably, this surface texture is obtained during the machining of the component by the DRIE process which is plasma etching process which has two different successive cycles, namely an etching cycle and a passivation cycle. The method is schematically represented in
[0016] Once the texture according to the invention is obtained on the functional surface, the conductive layer is deposited on the various surfaces of the component. Preferably, this layer is metal and formed of a corrosion resistant and non-magnetic metal such as gold, platinum, rhodium, palladium, chromium, titanium, vanadium, etc. Typically, this layer has a thickness less than or equal to 100 nm. The conductive layer is deposited by means of various known processes, such as sputtering, physical vapour deposition, ion implantation or electrolytic deposition.
[0017] It will be noted that, in addition to the conductive layer, the component may be coated with one or more layers underneath the conductive layer. For example, in the case of a silicon balance spring, this may be a temperature compensation layer, for example of SiO.sub.2, which has the function of compensating for variations in the thermoelastic coefficient of the balance spring core with temperature.
KEY
[0018] (1) Component [0019] (2) Functional surface of the component [0020] a. Trough [0021] b. Peak or portion [0022] (3) Side surface, or surface communicating with the functional surface [0023] (4) Electrically conductive layer [0024] (5) Surface not communicating with the functional surface, or surface opposite the functional surface [0025] (6) Escape wheel [0026] (7) Pallet-lever [0027] a. Lever [0028] b. Horns [0029] c. Functional surface of the horns [0030] (8) Escape wheel tooth [0031] a. Impulse face forming a functional surface [0032] b. Locking face forming a functional surface [0033] (9) Pallet stone [0034] a. Impulse face forming a functional surface [0035] b. Locking face forming a functional surface [0036] c. Back of the pallet stones [0037] (10) Blank [0038] (11) Mask [0039] (12) Passivation layer [0040] C: Impulse pin [0041] P: Roller