Isochronous timepiece resonator

US9983549B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9983549-B2
Application numberUS-201615309094-A
CountryUS
Kind codeB2
Filing dateJan 26, 2016
Priority dateFeb 3, 2015
Publication dateMay 29, 2018
Grant dateMay 29, 2018

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A watch including a movement including itself an isochronous timepiece oscillator mechanism including a fixed support bearing a crosspiece carrying N primary resonators each including a weight carried by a rotating flexible bearing fixed to this crosspiece. Each primary resonator has a center of mass which, at rest, is on the virtual pivot axis of its rotating flexible bearing and is arranged to oscillate in rotation about this virtual pivot axis. The primary resonators are arranged in rotational symmetry of order N about a main axis parallel to the virtual pivot axes, and oscillating motions of any two primary resonators are phase shifted by the value of the central angle formed by their respective virtual pivot axes with the main axis.

First claim

Opening claim text (preview).

The invention claimed is: 1. An isochronous oscillator mechanism for horology developing substantially planarly, comprising: a fixed support which bears a crosspiece carrying a plurality of N primary resonators each comprising at least one weight carried by a rotating flexible bearing fixed to the crosspiece, wherein each primary resonator has a center of mass which is located, at rest, on the virtual pivot axis of the respective flexible bearing thereof, and wherein each primary resonator is configured to oscillate in a rotational motion about the virtual pivot axis, wherein the N primary resonators are configured in a rotational symmetry of order N about a main axis which is parallel to all the virtual pivot axes which are parallel to each other, wherein oscillating motions of any two of the primary resonators of the oscillator mechanism are phase shifted by the value of the central angle formed by the respective virtual pivot axes thereof with respect to the main axis, and wherein the flexible bearing comprises at least crossed strips, which are either crossed in a same plane, or whose projections onto a plane perpendicular to the main axis are crossed, and whose actual crossing or crossing in projection onto the plane perpendicular to the main axis defines the virtual pivot axis of the flexible bearing, and wherein the crosspiece is fixed to the fixed support by a resilient main connection, whose stiffness is greater than the stiffness of each rotating flexible bearing. 2. The isochronous oscillator mechanism according to claim 1 , wherein each rotating flexible bearing is, in projection onto a plane perpendicular to the main axis, symmetrical with respect to a plane of symmetry passing through the virtual pivot axis of the rotating flexible bearing concerned. 3. The isochronous oscillator mechanism according to claim 2 , wherein each plane of symmetry passes through the main axis. 4. The isochronous oscillator mechanism according to claim 1 , wherein each rotating flexible bearing is configured to cause a return torque proportional to the angle of rotation of the at least one weight with respect to the virtual pivot axis of the rotating flexible bearing concerned. 5. The isochronous oscillator mechanism according to claim 1 , wherein the primary resonators have at least one identical resonance mode. 6. The isochronous oscillator mechanism according to claim 1 , wherein all of the primary resonators are identical to each other. 7. The isochronous oscillator mechanism according to claim 1 , wherein each primary resonator is configured to oscillate in a plane about a neutral radial axis, and wherein all of the neutral radial axes are concurrent at a single point or concurrent in pairs at intersections that are all located at a same distance from the main axis. 8. The isochronous oscillator mechanism according to claim 7 , wherein a number of the primary resonators is an even number or the number is two, and wherein all of the neutral axes are, in pairs, parallel to each other or coincide. 9. The isochronous oscillator mechanism according to claim 1 , wherein the flexible bearing comprises at least one flexible elastic strip, and wherein the virtual pivot axis is in the middle of the flexible elastic strip. 10. The isochronous oscillator mechanism according to claim 1 , wherein a number of the primary resonators is an even number or the number is two, and wherein the flexible bearing of each primary resonator comprises at least one balance spring, the balances springs of the primary resonators are in a mirror arrangement in pairs. 11. The isochronous oscillator mechanism according to claim 1 , wherein at least the flexible bearing is made of micromachinable material, or of silicon and/or silicon oxide, or of quartz, or of DLC. 12. The isochronous oscillator mechanism according to claim 1 , wherein each primary resonator comprises temperature compensation means at least on the flexible bearing. 13. The isochronous oscillator mechanism according to claim 12 , wherein the temperature compensation means comprises at least one component made of elinvar or of silicon and silicon oxide. 14. The isochronous oscillator mechanism according to claim 1 , wherein at least two of the primary resonators are coupled to each other, at least intermittently, by an escape wheel. 15. The isochronous oscillator mechanism according to claim 1 , wherein the primary resonators are each configured to oscillate at a frequency between 1 Hz and 100 Hz. 16. A timepiece movement comprising at least one isochronous oscillator mechanism according to claim 1 . 17. A watch comprising at least one movement according to claim 16 . 18. An isochronous oscillator mechanism for horology developing substantially planarly, comprising: a fixed support which bears a crosspiece carrying a plurality of N primary resonators each comprising at least one weight carried by a rotating flexible bearing fixed to the crosspiece, wherein each primary resonator has a center of mass which is located, at rest, on the virtual pivot axis of the respective flexible bearing thereof, and wherein each primary resonator is configured to oscillate in a rotational motion about the virtual pivot axis, wherein the N primary resonators are configured in a rotational symmetry of order N about a main axis which is parallel to all the virtual pivot axes which are parallel to each other, wherein oscillating motions of any two of the primary resonators of the oscillator mechanism are phase shifted by the value of the central angle formed by the respective virtual pivot axes thereof with respect to the main axis, and wherein the flexible bearing comprises at least crossed strips, which are either crossed in a same plane, or whose projections onto a plane perpendicular to the main axis are crossed, and whose actual crossing or crossing in projection onto the plane perpendicular to the main axis defines the virtual pivot axis of the flexible bearing, and wherein the flexible bearing includes at least one neck portion of narrow section. 19. An isochronous oscillator mechanism for horology developing substantially planarly, comprising: a fixed support which bears a crosspiece carrying a plurality of N primary resonators each comprising at least one weight carried by a rotating flexible bearing fixed to the crosspiece, wherein each primary resonator has a center of mass which is located, at rest, on the virtual pivot axis of the respective flexible bearing thereof, and wherein each primary resonator is configured to oscillate in a rotational motion about the virtual pivot axis, wherein the N primary resonators are configured in a rotational symmetry of order N about a main axis which is parallel to all the virtual pivot axes which are parallel to each other, wherein oscillating motions of any two of the primary resonators of the oscillator mechanism are phase shifted by the value of the central angle formed by the respective virtual pivot axes thereof with respect to the main axis, and wherein the flexible bearing comprises at least crossed strips, which are either crossed in a same plane, or whose projections onto a plane perpendicular to the main axis are crossed, and whose actual crossing or crossing in projection onto the plane perpendicular to the main axis defines the virtual pivot axis of the flexible bearing, and wherein at least one of the primary resonator comprises backlash limiting means to cooperate in abutment in event of shocks with complementary backlash limiting means comprised in the fixed s

Assignees

Inventors

Classifications

  • for the effect of imbalance of the weights, e.g. tourbillon · CPC title

  • Oscillators with torsion strips or springs acting in the same manner as torsion strips, e.g. weight oscillating in a horizontal plane {(electrically driven torsion pendulum G04C3/033)} · CPC title

  • G04B17/045Primary

    with oscillating blade springs (mechanical oscillations maintained by electro-magnetic means, e.g. tuning forks G04C3/10) · CPC title

  • Manufacture of the spiral spring (locking of the spiral spring by the regulating lever G04B18/026; spiral spring with temperature compensation G04B17/227; fixation of the spiral spring on the collet G04B17/32; mainspring G04B1/14) · CPC title

  • Oscillators with hairsprings, e.g. balance {(electrically driven balances G04C3/04; contacts actuated by a balance G04C13/065)} · CPC title

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What does patent US9983549B2 cover?
A watch including a movement including itself an isochronous timepiece oscillator mechanism including a fixed support bearing a crosspiece carrying N primary resonators each including a weight carried by a rotating flexible bearing fixed to this crosspiece. Each primary resonator has a center of mass which, at rest, is on the virtual pivot axis of its rotating flexible bearing and is arranged t…
Who is the assignee on this patent?
Eta Sa Mft Horlogere Suisse
What technology area does this patent fall under?
Primary CPC classification G04B17/045. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue May 29 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 5 related publications on this page (citations in our corpus or others sharing the same primary CPC).