This application claims priority from European Patent Application No. 16203366.6 filed on Dec. 12, 2016; the entire disclosure of which is incorporated herein by reference.
The present invention concerns a mechanical timepiece movement provided with power reserve detection means. The timepiece movement includes at least one barrel system connected to a winding wheel of a differential gear and an unwinding wheel of the differential gear.
A mechanical timepiece movement generally includes a barrel system driving at least one wheel at the winding output and one wheel at the unwinding output respectively connected to a winding wheel and to an unwinding wheel of a differential gear. A set of wheels connected to an intermediate wheel of the differential gear controls a power reserve display, but no element of the movement is provided for an operation to stop the movement when the power reserve is at zero.
EP Patent 0 568 499 B1 describes a power reserve indicator device for a mechanical watch. The indicator device includes at least one star-wheel with an indicator member, which is driven in rotation during the winding or unwinding of the barrel. The indicator member makes it possible to display the power reserve of the watch. However, nothing is provided to ensure that the movement is stopped when the power reserve approaches zero.
CH Patent 698 752 B1 describes a timepiece which includes a power reserve indicator mechanism. It includes two barrels facing each other and connected by a common arbor, which controls the power reserve display mechanism. However, nothing is provided to ensure that the movement is stopped when the power reserve approaches zero.
EP Patent 1 970 778 B1 may also be cited, which describes a timepiece with a movement and a power reserve indicator device. This timepiece includes a barrel system mounted between a watch plate and a bar. The power reserve indicator device includes a differential gear connected by a first input to the barrel arbor and by a second input to the barrel. The differential gear is arranged coaxially to the barrel arbor. The barrel output is connected to a power reserve indicator member. Nothing is provided to ensure that the movement is stopped when the power reserve approaches zero.
It is therefore a main object of the invention to overcome the drawbacks of the prior art by proposing a mechanical timepiece movement provided with power reserve detection means and capable of stopping operation of the movement when the power reserve is close to zero.
To this end, the present invention concerns a mechanical timepiece movement provided with power reserve detection, comprising at least one barrel system with a winding output connected to a winding wheel, such as a chassis wheel of a differential gear, and with an unwinding output connected to an unwinding wheel, such as a crown of the differential gear,
wherein the differential gear is connected to a power reserve indicator to display the power reserve, and
wherein it includes at least one locking member disposed on the crown and at least one locking element disposed on the chassis wheel, during the rotation of the crown relative to the chassis wheel, the locking member being intended to come into contact with the locking element, when the power reserve is at zero in order to stop the timepiece movement.
Particular embodiments of the mechanical timepiece movement are defined in the dependent claims 2 to 12.
One advantage of the mechanical timepiece movement lies in the fact that it includes a differential gear connected to the barrel system by means of a driving wheel set and a set of wheels of one or two reduction gear stages. The differential gear includes a crown on which are coaxially mounted a solar pinion of a power reserve indicator, and a chassis wheel mounted on an axial arbor of the solar pinion. A locking element is mounted on the chassis wheel to come into contact with a locking member of the crown when the power reserve detection position to be indicated is zero.
Advantageously, the locking element is a planet-wheel driven in rotation by an inner surface of the edge of the crown. A locking member in the form of a notch or a truncated toothing portion is provided for locking the planet-wheel in a minimum power reserve position, which also stops the timepiece movement. Another locking member may also be provided to lock the planet-wheel in a maximum power reserve position.
The objects, advantages and features of a mechanical timepiece movement provided with power reserve detection means will appear more clearly in the following description, in a non-limiting manner, with reference to the drawings, in which:
In the following description, all those components of a mechanical timepiece movement provided with power reserve detection means that are well known to those skilled in the art in this technical field will be described only in a simplified manner.
Mechanical timepiece movement 1 includes a differential gear 10 mounted to rotate about a rotational axis and respectively connected to the winding output and to the unwinding output of the barrel system. Differential gear 10 is preferably connected via a reduction stage or rotational speed reducing chain to the winding output from first barrel 2 and to the unwinding output from second barrel 3. A driving wheel set 4 may be provided between barrel system 2, 3 and differential gear 10. This driving wheel set 4 may comprise a central arbor 4a and a ring 4b disposed coaxially around the arbor. Ring 4b is held on an intermediate portion of central arbor 4a between two rims of central arbor 4a while allowing rotation of the ring about the central arbor. The diameter of the rims or of the two ends of arbor 4a may be identical to the external diameter of ring 4b.
The winding output wheel of first barrel 2 is in contact with a first rim or first end of central arbor 4a to drive it in rotation. The winding output wheel of first barrel 2 may include a toothing for meshing with a toothing of the first rim or first end of central arbor 4a. The unwinding output wheel of second barrel 3 is in contact with ring 4b to drive it in rotation. The unwinding output wheel of second barrel 3 may include a toothing for meshing with a toothing of ring 4b.
As will be explained in more detail in
Differential gear 10 thus includes a crown 10b, a chassis wheel 10a coaxial to the crown and a solar pinion 12 with an axial arbor 12′ as the power reserve indicator. Axial arbor 12′ passes through a central opening in chassis wheel 10a and may be connected to a power reserve indicator hand (not represented). Solar pinion 12 is placed on a base of crown 10b between chassis wheel 10a and crown 10b and is coaxial to chassis wheel 10a and to crown 10b. Preferably, the external diameter of crown 10b is similar to the external diameter of chassis wheel 10a, whereas the diameter of solar pinion 12 is smaller in order to be placed inside the peripheral edge of crown 10b.
Differential gear 10 also includes at least one member 13, 14 for stopping the movement connected to crown 10b and preferably to the peripheral edge of the crown to cooperate with at least one locking element 11 connected to chassis wheel 10a to stop the timepiece movement in a zero power reserve position of the barrel system, possibly also in a maximum winding position of the barrel system.
Chassis wheel 10a of differential gear 10 includes, as the locking element, at least one planet-wheel 11 mounted to rotate on an axial arm of chassis wheel 10a. This planet-wheel 11 is in contact with a circular inner surface of the peripheral edge of crown 10b and driven in rotation during the rotation of crown 10b relative to chassis wheel 10a. Preferably, the inner surface of crown 10b includes over at least one portion of its periphery a toothing for meshing with a toothing of planet-wheel 11. Solar pinion 12 is driven by planet-wheel 11 in contact with its peripheral edge. Solar pinion 12 may also comprise a toothing for meshing with planet-wheel 11. The peripheral edge of crown 10b, planet-wheel 11 and solar pinion 12 are disposed in the same plane on the base of crown 10b.
When planet-wheel 11 enters into contact with at least a first locking element, which may be a first notch 13 or a first truncated toothing portion, crown 10b is locked in rotation relative to chassis wheel 10a. This also has the effect of stopping the timepiece movement when the power reserve is at zero. During winding of the barrel system, planet-wheel 11 enters into contact with a second locking member, which may be a second notch 14 or a second truncated toothing portion. Crown 10b is then locked in rotation relative to chassis wheel 10a, which also has the effect of stopping the timepiece movement upon completion of winding of the barrel system. The angle of rotation of the crown relative to the chassis wheel between the two locking positions may be set between 90° and 180° for example, but other angles may be set.
These
These
Differential gear 10 is represented with a crown 10b, which includes a peripheral edge and a base or bottom, a solar pinion 12 coaxially mounted on the base of the crown and a chassis wheel 10a coaxially mounted on arbor 12′ of solar pinion 12. Planet-wheel 11 is mounted to rotate about an arbor fixed to one of the three axial arms of chassis wheel 10a. Planet-wheel 11 is driven in rotation by the inner edge surface of crown 10b. Driving planet-wheel 11 in rotation also causes rotation of solar pinion 12 in contact with planet-wheel 11. Thus, solar pinion 12 is a piece of a power reserve indicator, which may also include a hand fixed to the end of arbor 12′ of solar pinion 12. Sufficient space is provided between crown 10b and chassis wheel 10a while allowing planet-wheel 11 to be driven by the inner edge surface of crown 10b.
Planet-wheel 11 is locked by a first locking member 13 of the edge of crown 10b in
Evidently, each locking member 13, 14 may have a different shape to that shown in
From the description that has just been given, several variant embodiments of the mechanical timepiece movement with power reserve detection means may be devised by those skilled in the art without departing from the scope of the invention defined by the claims. The locking element of the chassis wheel may be a lug instead of the planet-wheel for locking against a locking member of the crown.
Number | Date | Country | Kind |
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16203366 | Dec 2016 | EP | regional |
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Entry |
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European Search Report dated Jun. 23, 2017 in European Application 16203366.6, filed on Dec. 12, 2016 (with English Abstract of Categories of cited documents). |
Number | Date | Country | |
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20180164743 A1 | Jun 2018 | US |