One-piece electroformed metal component
10214831 ยท 2019-02-26
Assignee
Inventors
Cpc classification
B81C1/00674
PERFORMING OPERATIONS; TRANSPORTING
G04B15/14
PHYSICS
G04B37/22
PHYSICS
C25D1/003
CHEMISTRY; METALLURGY
C22C45/04
CHEMISTRY; METALLURGY
International classification
C25D21/04
CHEMISTRY; METALLURGY
G04D3/00
PHYSICS
G04B15/14
PHYSICS
C22C45/04
CHEMISTRY; METALLURGY
G04B37/22
PHYSICS
B81C1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a one-piece metal component including an electroformed metal body, the external surface of the body including, only over or to a predetermined depth, less trapped hydrogen than the rest of the electroformed metal body causing a hardening relative to the rest of the body in order to improve the wear resistance of the one-piece component while preserving a relative magnetic permeability of less than 10 and the ability to be driven or pressed fit.
Claims
1. A method for fabricating a one-piece component, comprising: a) forming a mould on an electrically conductive substrate; b) filling the mould by electroforming to form at least one one-piece metal component comprising an electroformed metal body; c) releasing the at least one one-piece metal component from the electrically conductive substrate and from the mould; wherein the method further comprises: d) effecting desorption of trapped hydrogen in the at least one one-piece metal component during electroforming so as to form, only over a predetermined depth of an external surface of the body, a hardening relative to the rest of the body, wherein the metal is electroformed in the filling b) in amorphous form and the external surface comprises an at least partially crystalline phase of the electroformed metal.
2. The method according to claim 1, wherein the predetermined depth represents between 0.1% and 10% of the total thickness of the at least one one-piece component.
3. The method according to claim 1, wherein the external surface includes a larger grain size than the metal that is electroformed in the filling b).
4. The method according to claim 1, wherein the metal electroformed in the filling b) is a nickel-phosphorus, nickel-tungsten or nickel-cobalt-phosphorus alloy.
5. The method according to claim 1, wherein the effecting d) is performed in a controlled atmosphere with a partial pressure of hydrogen sufficiently low so that trapped hydrogen escapes from the component.
6. The method according to claim 5, wherein the controlled atmosphere is formed of 95% dinitrogen and 5% dihydrogen at atmospheric pressure.
7. The method according to claim 1, wherein the effecting d) is performed in a vacuum.
8. The method according to claim 1, wherein the effecting d) lasts between 15 and 240 minutes at a temperature comprised between 250 C. and 450 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features and advantages will appear clearly from the following description, given by way of non-limiting illustration, with reference to the annexed drawings, in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(6) As explained above, electroformed components are very satisfactory as regards their dimensions, notably when they are obtained through a LIGA process, but they are generally too soft and, incidentally, have unsatisfactory wear resistance.
(7) Following a recent development which is explained further below, it was discovered that, surprisingly, it was possible to harden the external surface of electroformed components over or to an easily controlled depth.
(8) This surprising possibility runs counter to the technical prejudice that a heat treatment is always homogeneous, namely that hardening is effective between the external surface and the core of the component, especially for part of a timepiece whose thickness rarely exceeds 200 m.
(9) The one-piece component formed of an electroformed body includes, advantageously according to the invention, an external surface which, only over or to a predetermined depth, includes a depletion of trapped hydrogen in the electroformed metal body causing a hardening relative to the rest of the body.
(10) Indeed, depending on the material used, it is possible to electroform a metal component that is insensitive to magnetic fields. However, the hardening superficially transforming the metal that was initially electroformed in a homogeneous manner has a different form, which may be sensitive to magnetic fields, but which may also make its plastic range too limited to permit driving or pressing fit.
(11) Consequently, with the aid of the surprising surface hardening of the electroformed metal body, it is therefore advantageously possible according to the invention to improve the wear resistance of the one-piece component while preserving a relative magnetic permeability of less than 10 and the ability to be driven or pressed fit.
(12) The fabrication method according to the invention includes a first step a) intended to form a mould 1 on an electrically conductive substrate 3 as shown in
(13) In the example illustrated in
(14) The method continues with a second step b) intended to fill mould 1 by electroforming in order to form at least one one-piece metal component. The electroforming will be performed by connecting the electrically conductive surface of substrate 3 which forms the bottom of negative pattern 5. Preferably, the metal that is electroformed in step b) includes nickel, gold or platinum.
(15) Even more preferably, it appears that a nickel-phosphorus, nickel-tungsten or nickel-cobalt-phosphorus alloy is particularly advantageous for forming a timepiece component, such as an external part of a timepiece or part of a timepiece movement. In the example illustrated in
(16) The method includes a third step c) intended to release said at least one one-piece metal component 7 from substrate 3 and from mould 1, as illustrated in
(17) Advantageously according to the invention, the method further includes the last step d) intended to effect desorption of the trapped hydrogen in said at least one one-piece metal component during the electroforming in step b). Indeed, following a recent development, it was discovered that hydrogen was trapped during the electroforming step.
(18) Thus, surprisingly, controlling the hydrogen desorption in said at least one obtained one-piece metal component 7 makes it possible to harden the external surface of said at least one obtained one-piece metal component 7 over an easily controlled depth. It is therefore understood that it is easy to achieve and control a hardening front from the external surface towards the centre of the component.
(19) As shown in
(20) Thus, tests demonstrated that a predetermined depth E.sub.1 comprised between 0.1% and 10% of the total thickness E.sub.T of the one-piece component 17, namely 2.Math.E.sub.1=0.1%-10%.Math.E.sub.T, surprisingly produces a component whose wear resistance is increased by 30% while preserving a relative magnetic permeability .sub.R of less than 10 and the ability to be driven or pressed fit.
(21) Depending on the material selected, the external surface may consist of an increase in grain size relative to the rest of the body or in a phase change relative to the rest of the body, such as, for example, the change from an amorphous phase to an at least partially crystalline phase.
(22) According to the invention, step d) may be performed in a controlled atmosphere with low partial pressure of hydrogen or in a vacuum so that the trapped hydrogen escapes from component 7. By way of non-limiting example, one possible controlled atmosphere could consist of a fluid formed of 95% dinitrogen and 5% dihydrogen at atmospheric pressure. Finally, depending on the material used, step d) may last between 15 and 240 minutes at a temperature comprised between 250 C. and 450 C.
(23) Advantageously according to the invention, it is easy to control the hardening front from the external surface towards the centre of the component. Indeed,
(24) As seen in
(25) The line marked with a triangle () represents the Vickers hardness with a load of 10 g (HV 0.01), the line marked with a circle () represents the Vickers hardness with a load of 500 g (HV 0.5) and the line marked with a square () represents the difference in hardness between the test with a load of 10 g and that with a load of 500 g. The line marked with a cross (X) represents the evolution of relative permeability .sub.R.
(26) Observing the curve marked with a triangle (), it is seen that the external hardness of component 27 increases rapidly during the first hour of desorption at 300 C. and then tends towards an asymptote close to 1,000 HV. In comparison, the curve marked with a circle (), which represents the hardness at a depth of around 3 m, is virtually stable until one hour of desorption at 300 C. It is thus clear, as seen in the curve marked with a square (), that a very gradual transformation front is achieved. It is also seen with the curve marked with a square () that an extremum, representing a difference close to 300 HV, is reached at a value of 75 minutes of heating.
(27) As explained above, it is an object of the present invention to increase wear resistance while preserving a relative magnetic permeability .sub.R of less than 10 and while retaining the ability to drive or press fit the component. A surface delimited in a dash line is shown in
(28) In light of the tests, a 1 hour duration of step d) at 300 C. for a one-piece nickel-phosphorus component 27 seems the most optimal in that the hardness of the external surface is approximately 850 HV formed by a dendritic phase transformation front which gradually propagates towards the interior of the component as the hydrogen escapes, whereas the hardness at a depth of approximately 3 m remains unchanged around 600 HV formed by an amorphous phase. Further, the relative permeability remains limited to 1.5, which makes the one-piece component insensitive to magnetic fields. Finally, after tests, it became clear that the one-piece component 27 could still be driven or pressed fit onto an arbor using the usual methods to form timepiece wheel sets.
(29) Step d) according to the invention is different from an ordinary heat treatment of metals which is generally performed around 200 C. in order to relax internal stresses. By way of example, in the case of nickel-phosphorus, the phenomena described above only occur at temperatures substantially higher than 250 C.
(30) Of course, the present invention is not limited to the illustrated example, but is capable of diverse variants and modifications which will appear to those skilled in the art. In particular, the same test must be performed according to the application, the temperature, the material used and the duration of step d) in order to determine the optimal parameters of the component to be fabricated.
(31) In an example illustrated in
(32) Likewise and as illustrated in
(33) Thus, in a non-limiting manner, case middle 45 or the links 46 of bracelet 47 may certainly be subject to a longer step d), i.e. for example comprised between 90 and 240 minutes, in order to provide improved wear resistance so that the timepiece is less marked during wear.
(34) The method is also capable of being adapted without departing from the scope of the invention. Thus, it is possible to envisage depositing a sacrificial volume in hole 6 before step d), making it possible to limit the advance of the hardening front in the wall of hole 16, 26 and thereby make it even easier subsequently to drive or press fit the one-piece component 17, 27.