ANTISHOCK DEVICE AND TIMEPIECE MECHANICAL OSCILLATOR WITH FLEXIBLE GUIDANCE HAVING SUCH AN ANTISHOCK DEVICE
20200319597 ยท 2020-10-08
Inventors
Cpc classification
International classification
Abstract
An antishock device intended to protect from shocks a timepiece mechanical oscillator with flexure guiding, the antishock device including a visco-elastic element and a rigid stop, each being configured in such a manner as to cooperate with a portion of the oscillator. The visco-elastic element is configured to be deformed elastically if the oscillator is subjected, in the event of a shock, to an acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS. The portion cooperating with the rigid stop if the portion is subjected to an acceleration beyond at least 1000 G NIHS, preferably at least 500 G. A timepiece mechanical oscillator includes a balance, a suspension with flexure guiding and elastically restoring the balance into a plane of oscillation and provided with shock protection, the oscillator including at least one antishock device according to the invention.
Claims
1. Antishock device intended to protect from shocks a timepiece mechanical oscillator with flexure guiding, the antishock device comprising: a visco-elastic element and a rigid stop, each being configured in such a manner as to cooperate with a portion of the oscillator; the visco-elastic element being configured in such a manner as to be deformed if the oscillator is subjected, in the event of a shock, to an acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS; said portion cooperating with the rigid stop if the portion is subjected to an acceleration beyond at least 1000 G NIHS, preferably at least 500 G NIHS; and in which there is no contact between said portion of the oscillator and the antishock device for an acceleration less than 50 G NIHS.
2. Antishock device according to claim 1, in which the stiffness of the visco-elastic element is adjusted in such a manner that the portion of the oscillator cooperates with the visco-elastic element if the oscillator is subjected to an acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS, and cooperates with the rigid stop if the oscillator is subjected to an acceleration beyond at least 1000 G NIHS, preferably at least 500 G NIHS.
3. Antishock device according to claim 1, in which the visco-elastic element comprises a plurality of flexible blades each comprising a visco-elastic material.
4. Antishock device according to claim 3, in which an end of each said flexible blades is secured to an intermediate part intended to cooperate with the portion of the oscillator.
5. Antishock device according to claim 4, in which the intermediate part takes the form of a circular cylinder from which extends a plurality of flexible blades, the intermediate part including a first housing configured to cooperate with said portion.
6. Antishock device according to claim 4, in which the flexible blades are curved in a spiral pattern, the centre of the spiral coinciding with a central axis of the intermediate part and the housing.
7. Antishock device according to claim 5, in which the rigid stop takes the form of a circular cylinder and includes a second housing configured to cooperate with said portion.
8. Timepiece mechanical oscillator comprising a balance, a suspension with flexure guiding guiding and elastically restoring the balance into a plane of oscillation and provided with protection against shocks, in which the oscillator comprises at least one antishock device comprising a visco-elastic element and a rigid stop, each being configured in such a manner as to cooperate with a portion of the oscillator; the visco-elastic element being configured in such a manner as to deform if the oscillator is subjected, in the event of a shock, to an acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS; said portion cooperating with rigid stop if the portion suffers an acceleration beyond at least 1000 G NIHS, preferably at least 500 G NIHS; and in which there is no contact between said portion of the oscillator and the antishock device for an acceleration less than 50 G NIHS.
9. Oscillator according to claim 8, comprising a shaft rigidly connected to the balance, the shaft cooperating with the visco-elastic element and the rigid stop.
10. Oscillator according to claim 9, in which the shaft comprises a bearing surface at the end cooperating with the visco-elastic element if the shaft suffers a radial acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS, and a proximal bearing surface cooperating with the rigid stop if the shaft suffers a radial acceleration beyond at least 1000 G NIHS, preferably at least 500 G NIHS.
11. Oscillator according to claim 10, in which the shaft comprises a shaft end cooperating with the visco-elastic element if the shaft suffers an axial acceleration between 20 G and 1000 G NIHS, preferably between 50 G and 500 G NIHS; and in which the proximal bearing surface is of greater diameter than the bearing surface at the end in such a manner as to form a shoulder, the shoulder cooperating with the rigid stop if the shaft suffers an axial acceleration beyond at least 1000 G NIHS, preferably at least 500 G NIHS.
12. Oscillator according to claim 10, in which the intermediate part takes the form of a circular cylinder including a first housing, the bearing surface at the end cooperating with the first housing.
13. Oscillator according to claim 10, in which the rigid stop takes the form of a circular cylinder and includes a second housing concentric with the first housing and of greater diameter than the latter, the proximal bearing surface cooperating with the second housing.
14. Oscillator according to claim 11, in which the intermediate part takes the form of a circular cylinder including a first housing, the bearing surface at the end cooperating with the first housing, in which the first housing is blind, and in which the shaft end cooperates with the first housing bottom.
15. Oscillator according to claim 14, in which the first housing bottom includes a stone.
16. Oscillator according to claim 11, in which the rigid stop takes the form of a circular cylinder and includes a second housing concentric with the first housing and of greater diameter than the latter, the proximal bearing surface cooperating with the second housing, and in which the shoulder cooperates with a lower plane of the rigid stop.
17. Oscillator according to claim 8, including two antishock devices disposed on each side of the balance.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0015] Embodiments of the invention are indicated in the description illustrated by the appended figures, in which:
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
EMBODIMENT(S)
[0023]
[0024] The oscillator comprises a balance 10, a suspension 11 with flexure guiding guiding and elastically restoring the balance 10 into an oscillation plane. The suspension 11 with flexure guiding connects the balance 10 to a fixed base 5 of the oscillator 1. The base 5 is intended to be fixed to a fixed part of the timepiece movement. The oscillator 1 comprises a shaft 3 rigidly connected to the balance 10 by a rigid connection 4 that attaches this shaft 3 at the centre of rotation of the balance 10. In the example shown, the suspension with flexure guiding includes elastic blades 11 connecting the base 5 to the balance 10 via a rigid ring 6 secured to the rigid connection 4.
[0025]
[0026] The stiffness of the visco-elastic element 20 is more particularly adjusted in such a manner that said portion of the oscillator (for example the shaft 3) cooperates with the visco-elastic element 20 when the oscillator is subjected to an acceleration between 50 G and 500 G NIHS and cooperates with the rigid stop 21 if the oscillator is subjected to an acceleration beyond at least 500 G NIHS.
[0027] According to the embodiment shown in
[0028] Still in accordance with the configuration shown in
[0029] In this configuration, if the oscillator is subjected to an acceleration between 50 G and 500 G NIHS, the visco-elastic element 20 damps the shock through the deformation of the visco-elastic material 202 of the flexible blades 201. If the oscillator is subjected to an acceleration beyond at least 500 g, the flexible blades 201 are sufficiently deflected for contact to occur between the portion (the shaft 3) of the oscillator at the rigid stop 21.
[0030] If the oscillator is subjected to an acceleration between 50 G and 500 G NIHS, the flexible blades 201 may more particularly be deflected radially and axially (for example relative to the central shaft 26). In this configuration the visco-elastic element 20 damps a shock suffered by the oscillator in the axial direction and in the radial direction, that is to say in the plane in which the flexible blades 201 extend, a plane perpendicular to the central shaft 26.
[0031] To this end, the flexible blades 201 may have an axial stiffness and a radial stiffness that are adjusted so that the portion of the oscillator (the shaft 3) cooperates with the visco-elastic element 20 if the oscillator is subjected to an acceleration, respectively axial and radially, between 50 G and 500 G NIHS, and cooperates with the rigid stop 21 if the oscillator is subjected to an acceleration, respectively axial and radial, beyond at least 500 G NIHS.
[0032] Still in accordance with the configuration shown in
[0033] In accordance with one embodiment the first housing 24 is blind. A stone 23 may be positioned in the bottom of the first housing 24.
[0034] The flexible blades 201 may be made of silicon. The visco-elastic material 202 may then be contained between the flexible blades 201 or in the flexible blades 201. For example, the visco-elastic material 202 may be deposited in a cavity formed in the flexible blade 201. Let us note that, as silicon withstands little local plastic deformation, the intermediate part 22 (and the stone 23) that is called upon to be in direct contact with the portion of the oscillator may be made from a material other than silicon, more resilient than silicon. The visco-elastic material 202 advantageously has a low shear modulus, i.e. a shear modulus preferably less than 10 GPa, a loss factor of at least 0.1. The visco-elastic material 202 preferably has a shear modulus at least ten times lower than the shear modulus of the flexible blade or blades 201. To this end, the visco-elastic material 202 may comprise a polymer, preferably an elastomer.
[0035] Alternatively, the flexible blades 201 may be made from a metal or metal alloy, for example with the aid of an LIGA (Lithography, Electroplating, and Moulding) type method or by laser cutting.
[0036] The role of the flexible blades 201 is to enable movement of the visco-elastic element 202 if the oscillator 1 is subjected, in the event of a shock, to an acceleration between 20 G and 1000 G (typically between 50 G and 500 G), which enables damping of the shock (dissipation of all or part of the energy of the shock) without jamming and/or braking the principal mode of oscillation of the oscillator 1.
[0037]
[0038] In accordance with one embodiment each shaft 3 comprises at least a shaft end 30, a bearing surface 31 at the end having a small diameter and connected to the shaft end 30, a proximal bearing surface 32 of greater diameter than the bearing surface 31 at the end and a shoulder 33 connecting the proximal bearing surface 32 to the base 34 of the shaft 3.
[0039] If the oscillator 1 suffers a shock in the radial direction with a radial acceleration between 50 G and 500 G NIHS, the bearing surface 31 at the end cooperates with the visco-elastic element 20. The proximal bearing surface 32 cooperates with the rigid stop 21 if the radial acceleration is beyond at least 500 G NIHS. For example, the bearing surface 31 at the end cooperates with the lateral edges of the first housing 24 and the proximal bearing surface 32 cooperates with the lateral edges 21 of the second housing 25.
[0040] If the oscillator 1 suffers a shock in the axial direction with an axial acceleration between 50 G and 500 G NIHS, the shaft end 30 cooperates with the visco-elastic element 20. The shoulder 33 cooperates with the rigid stop 21 if the radial acceleration is beyond at least 500 G NIHS. For example, the shaft end 30 cooperates with the bottom (the stone 23) of the first housing 24 and the shoulder 33 cooperates with a lower plane 21 of the rigid stop 21.
[0041] Let us note that for shocks of very low intensity (<50 G NIHS), the shaft 3 does not come into contact with the antishock device 2. It is the mass and stiffness properties of the oscillator 1 and likewise the clearances between the shaft 3 and the intermediate part 22 (and the stone 23) that determines this level of shock for a first contact between the oscillator 1 and the antishock device 2.
[0042] It is the mass and stiffness properties of the oscillator 1, the clearances between the shaft 3 and the rigid stop 21 and finally the axial and radial stiffnesses of the visco-elastic element 20 that determine this level of shock for a first contact between the oscillator 1 and the rigid stop 21. Thus the visco-elastic element 20 serves above all to prevent the shaft 3 coming into contact with the rigid stop 21 for wearing shocks at least less than 500 G NIHS.
[0043] The antishock device 2 can deform and damp post-shock vibrations radially and axially; it also enables dissipation of the tip/tilt rotation movements that may occur (and even be superimposed on the radial and axial movements) following shocks of the oscillator on the stop. The behaviour of the anti-shock device 2 may be similar for axial and radial shocks.
[0044] Compared to the known antishock devices, the oscillator 1 of the invention comprising two antishock devices 2 enables reduction of the diameter of the bearing surface 31 at the end collaborating with the antishock device in order to minimize friction for shocks at least less than 500 G NIHS. There is also better dissipation of the energy of tip/tilt axial, radial shocks at least less than 500 G NIHS compared to known antishock devices.
[0045] Other possible configurations of the visco-elastic element 20 enabling the function of flexure guiding of the flexible blades 201 to be achieved can also be envisaged. For example,
[0046] In a further embodiment shown in
[0047] In the variants of the antishock device 2 shown in
[0048] The reservoirs 203 may have dimensions such as, as in the spiral configuration of the visco-elastic element 20, to enable the deposition of a visco-elastic polymer, for example by capillarity, between the two facing faces of the elastic blades 201, thus producing a sandwich structure of which the visco-elastic material 202 constitutes the core.
REFERENCE NUMBERS EMPLOYED IN THE FIGURES
[0049] 1 oscillator [0050] 10 balance [0051] 11 suspension with flexure guiding [0052] 2 antishock device [0053] 20 visco-elastic element, visco-elastic spring [0054] 201 flexible blade [0055] 202 visco-elastic material [0056] 203 reservoir [0057] 21 rigid stop [0058] 21 lateral edges of second housing [0059] 21 lower plane of rigid stop [0060] 22 intermediate part [0061] 23 stone [0062] 24 first housing [0063] 25 second housing [0064] 26 central shaft [0065] 3 shaft [0066] 30 shaft end [0067] 31 bearing surface at end [0068] 32 proximal bearing surface [0069] 33 shoulder [0070] 34 base of shaft [0071] 4 rigid connection [0072] 5 base [0073] 6 rigid ring