TIMEPIECE WITH A MECHANICAL OSCILLATOR
20190324399 ยท 2019-10-24
Inventors
Cpc classification
International classification
Abstract
A sprung balance type mechanical timekeeper, includes a spiral spring (10), a balance (20) and an escapement mechanism (30) connected by a point of attachment (12) to the spiral spring and arranged to sustain an oscillation of the balance. The escapement mechanism (30) is connected to the point of attachment (12) of the spiral spring by a chassis (40) pivoted about the axis (A) of the balance. An outer end (12) of the spiral spring (10) is attached to this transverse pert (40) at a location located on one side of the balance axis (A). The chassis (40) includes two branches extending on either side of the axis of the balance (20) and forming a rotary plate whose axis of rotation is coincident with the axis of oscillation of the balance (20). The escapement mechanism (30) is located on the other side of the balance axis (A) and acts on the pivoted chassis (40) so as to free its rotation and thus make the attached end (12) of the spiral spring rotate.
Claims
1. A sprung balance type mechanical timekeeper, including a spiral spring (10), a balance (20) and an escapement mechanism (30) connected by a point of attachment (12) to the spiral spring and arranged to sustain an oscillation of the balance, where the escapement mechanism (30) is connected to the point of attachment (12) of the spiral spring by a part, hereinafter called chassis (40), pivoted about the axis (A) of the balance, an outer end (12) of the spiral spring (10) is attached to this chassis (40) at a location located on one side of the balance axis (A), and the escapement mechanism (30) is located on the other side of the axis (A) of the balance and acts on the pivoted chassis (40) so as to make it rotate and thus make the attached end (12) of the spiral spring rotate, wherein the balance (20) is mounted on, and coaxial with, a fixed ring gear (22), and the chassis (40) carries, at said other side of the balance axis (A), a planet wheel (42) which is engaged with said ring gear (22) and which is driven in a stepped manner by the escapement mechanism (30), the timekeeper including an escape wheel (32) coaxial with and secured to the planet wheel (42), and a detent-type escape lever (36, 37, 38, 39) pivoting between a rest position engaged with the escape wheel (32) and a position cleared off the escape wheel (32), and wherein the outer end (12) of the spiral spring is attached to the chassis (40) by a stud (14) which extends vertically between the plane of the chassis (40) and the plane of the spiral spring (10), the plane of the spiral spring (10) being disposed between the plane of the chassis (40) and the balance (20).
2. The timekeeper according to claim 1, wherein the chassis includes several branches extending on either side of a disk (44) coaxial with the balance (20) and forming with the chassis (40) a rotary plate whose axis of rotation is coincident with the axis of oscillation of the balance (20).
3. The timekeeper according to claim 1, wherein the escape lever (36, 37, 38, 39) includes a short inner arm (36) provided with an engagement tooth (37) which is engaged with the escape wheel (32), and a long outer arm (38) located in the path of an impulse element (24) secured in oscillation with the balance (20), which impulse element (24) is brought, during the oscillation of the balance (20), to displace the escape lever (36, 37, 38, 39) from its rest position towards its cleared position.
4. The timekeeper according to claim 1, wherein the escape lever (36, 37, 38, 39) is pivotally mounted at the outer end of an arm (39) which extends, coplanar with the chassis (40), outwardly from the axis of the planet wheel and of the escape wheel.
5. The timekeeper according to claim 1, wherein the planet pinion (42) and the chassis (40) are arranged so as to be driven in rotation by a chassis pinion (45), said planet pinion (42) being retained in its rotation by blockage of the escape wheel (32) by the escapement mechanism (30), the rotation of the escape wheel (32) being performed once for each oscillation cycle of the balance (20), when the balance (20) releases the detent mechanism (30), so that the rotary plate performs a rotation, whose amplitude depends on the ratio of the number of teeth of the different wheels of the timekeeper, the rotation of the rotary plate causing a displacement of the stud (14) to ensure or contribute in sustainment of the oscillation amplitude of the balance (20).
6. The timekeeper according to claim 5, wherein the arm comprising the escape lever (37), pushed by the escape wheel (32), is extended so that the detent mechanism (30) also acts on the impulse pin (24), the energy transmitted to the balance (20) to sustain its amplitude then being distributed between the displacement of the stud (14) and the impulse of the extended arm of the detent.
7. The timekeeper according to claim 5, wherein the chassis pinion (45) is arranged so as to perform a rotation ensuring counting of the number of oscillations cycles performed by the balance (20).
8. The timekeeper according to claim 1, wherein the sum of the inertia of the escape wheel (32) added to the inertia of the chassis (40) is arranged so that a direct impulse of a tooth (52) of the escape wheel (32) on an additional pin (48) occurs when the passage speed of the balance (20) is low, that is to say when the oscillation amplitude of the balance (20) is low.
9. The timekeeper according to claim 8, wherein when said direct impulses do not take place, impulses by displacement of the point of attachment of the stud (14) to the chassis (40) take place regardless of the amplitude of the oscillations of the balance (20).
10. The timekeeper according to claim 1, wherein the escape wheel (32) has a clearance plane (50) on its teeth (52) interacting with the short arm (36) of the detent mechanism (30), said clearance plane (50) preventing a too rapid return of the detent after the release thereof.
11. The timekeeper according to claim 8, wherein the escape wheel (32) is provided with a clearance plane (50), provided in order that the detent remains held in its passing position, the time the balance (20) is cleared, the clearance of the balance (20) being guaranteed by the interaction between a tooth of the escape wheel (52) and the additional pin (48).
12. The timekeeper according to claim 11, wherein during the passage of the balance (20) in the direction of clearance of the detent, the balance (20) makes the detent mechanism (30) pivot through its pin, the beak of the tooth of the escape wheel leaving the rest plane of the detent to lie on an inclined plane (54) of the detent and make the latter pivot so as to let the balance pass.
13. A timepiece, selected from a wristwatch, a table pendulum or a wall pendulum, including a timekeeper according to claim 1.
Description
[0023] The features of the invention will come out more clearly on reading the description of several embodiments provided only as a non-limiting example with reference to the following figures in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] As illustrated, the detent escapement mechanism 30 is connected to the point of attachment 12 of the spiral spring 10 by a chassis 40 which pivots about the axis A of the balance. An outer end 12 of the spiral spring 10 is attached to this chassis 40 at a location located on one side of the balance axis A, the inner end of the spiral spring 10 being fastened by the center of the balance 20. The detent escapement mechanism 30 is located on the other side of the balance axis A and acts on the pivoting chassis 40 to make it rotate about the axis A and thus make the attached end 12 of the spiral spring 10 rotate about the axis A.
[0030] The balance 20 is mounted on, and coaxial with, a fixed ring gear 22 including an inner toothing 46, and the chassis 40 carries, on said other side of the balance axis A, a planet pinion 42 which is engaged with said ring gear 22 and which is driven in a stepped manner by the detent escapement mechanism 30.
[0031] The chassis 40 includes several branches extending on either side of the axis of rotation of the balance 20 at an angle of about 120. The chassis 40 forms a rotary plate whose axis of rotation is coincident with the axis of rotation A of the balance 20.
[0032] The timekeeper according to the invention includes an escape wheel 32 coaxial with and secured to the planet pinion 42.
[0033] The detent escapement mechanism 30 includes an escape body 39 pivoting between a test position engaged with the escape wheel 32 and a position cleared off the escape wheel 32. This pivoted escape body 39 includes a short inner arm provided with a rest plane 37 which is engaged with the escape wheel 32, and a stop 38 located in the path of an impulse pin 24 secured in oscillation with the balance 20, which impulse pin 24 is brought, during the oscillation of the balance 20, to displace the escape lever 36/37/38/39 from its rest position towards its cleared position.
[0034] The escape body 39 is pivotally mounted at one of the outer ends of the chassis 40.
[0035] As illustrated, the outer end 12 of the spiral spring 10 is attached to an end of the chassis 40 by a stud 14 which extends vertically between the plane of the chassis 40 and the plane of the spiral spring 10.
[0036]
[0037] The described concept is based on a conventional sprung-balance oscillator. The entire mechanism rests on the chassis 40 whose axis of rotation is coincident with the axis of rotation of the balance 20. The planet pinion 42 meshes with the planet ring 22. The detent escapement 30, the escape wheel 32, the planet wheel 42, the support of the stud 14 of the spiral spring 10 are all adjacent to the planet chassis. The planet pinion 42 and the escape wheel 32 are secured to each other.
[0038] The planet ring 22 is fixed (does not oscillate, does not rotate). A rotational torque is exerted on the chassis pinion 45 (
[0039] The rotational angle of the planet-carrier plate may be calculated so as to ensure an optimum amplitude of the rotational angle of the balance 20 in steady running.
[0040] A wheel train connects a barrel (not illustrated) which ensures coupling on the planet pinion 42 by the chassis pinion 45; and through the ratio of the teeth of the wheels, it is possible to obtain an adequate rotational speed for each of them in order to display for example, the hour, the minute and the second or other time measurements.
[0041]
[0042] As illustrated in
[0043] The balance 20 is mounted on, and coaxial with, a fixed ring gear 22 including an outer toothing, and the transverse part 40 carries, on said other side of the balance axis A, a planet pinion 42 which is engaged with said ring gear 22 and which is driven in a stepped manner by the detent escapement mechanism 30.
[0044] The transverse part 40 includes two branches extending on either side of a disk 44 coaxial with the balance 20. This disk 44 forms with the transverse part 40 a chassis or a rotary plate whose axis of rotation is coincident with the axis of rotation of the balance 20.
[0045] The timekeeper according to the invention includes an escape wheel 32 coaxial with and secured to the planet wheel 42. Alternatively, the detent escape mobile may be replaced with another escapement device.
[0046] In the embodiment illustrated in
[0047] In a second phase, where the direct impulses no longer take place, only the impulses by displacement of the point of attachment of the stud to the chassis take place. This impulse type occurs regardless of the amplitude of the oscillations of the balance. Potentially, this impulse type disturbs the oscillation frequency of the balance considerably lesser than the direct impact.
[0048] In addition, the escape wheel has a clearance plane 50 on its teeth interacting with the short arm of the detent. This clearance plane prevents a too rapid return of the detent after the release thereof. Indeed, during the passage of the balance in the direction of clearance of the detent, the balance makes the detent pivot through its pin, the beak of the tooth of the escape wheel leaves the rest plane of the detent, it arrives on the inclined plane 54 of the detent and makes the latter pivot so as to let the balance pass. However, since the latter has an inertia which is much lighter than the balance, it tends to return back to its initial position too quickly with the risk of interacting again with the pin of the balance. Thus, there is a risk of multiple contacts between the long arm of the detent and the pin of the balance which is not desirable.
[0049] Thus, in order to prevent multiple contacts, the escape wheel is provided with a clearance plane 50, provided in order that the detent remains held in its passing position, the time the balance is cleared. The clearance of the balance is guaranteed by the interaction between a tooth of the escape wheel 52 and the additional pin 48 where the angle that it forms with the balance pin has been established for this purpose.
LEGEND
[0050] 10 spiral spring [0051] 12 point of attachment/outer end of the spiral spring [0052] 14 Stud [0053] 20 Balance [0054] 22 fixed ring gear [0055] 24 impulse pin [0056] 30 escapement mechanism [0057] 32 escape wheel [0058] 36 detent flexible blade [0059] 37 rest plane of the detent [0060] 38 stop of the detent flexible blade [0061] 39 detent body [0062] 40 transverse part called chassis [0063] 42 planet pinion [0064] 44 Disk [0065] 45 chassis pinion [0066] 46 inner toothing [0067] 48 additional pin [0068] 50 clearance plane [0069] 52 tooth of the escape wheel [0070] 54 inclined plane