The present invention concerns a perpetual or annual calendar mechanism for a timepiece such as a wristwatch.
The perpetual or annual calendar mechanisms generally comprise a driving lever bearing a small click cooperating with a 31-tooth date wheel of a date mobile for the transition from one day to the next within a month and for the transition from the last day of a month of 31 days to the first day of the following month, and a great click cooperating with a snail correction cam of the date mobile for the correction of the last days of months of less than 31 days.
In some of these mechanisms, the driving of the date mobile by the small and great clicks during each transition from one day to the next is dragging, that is to say that it's effected in a slow manner, generally over several hours. During this time, the date of the current day progressively gives way to the date of the next day in the date display window provided in the dial of the watch. This solution is not really satisfactory, because it is prejudicial to the display accuracy and to the aesthetic of the watch.
In other mechanisms, the driving of the date mobile by the small and great clicks during each transition from one day to the next is instantaneous. The date display on the dial therefore changes instantaneously at midnight, which is appreciable. However, here, a non negligible risk exists that at the end of the transition from the last day of a month of less than 31 days to the first day of the following month, the date mobile pursues its movement due to its inertia, therefore causing an erroneous display of the date. This risk is particularly present during the transition from the 28th of Feb. to the 1st of Mar. when the date mobile has to complete a four pitch jump in an instantaneous manner.
The present invention aims to remedy the aforementioned drawbacks of the known perpetual or annual calendar mechanisms, or at least to alleviate them, and provides for this purpose a calendar mechanism according to the appended claim 1, particular embodiments being defined in the dependent claims.
Other features and advantages of the invention will appear from the reading of the following detailed description in conjunction with the annexed drawings, in which:
With reference to
This mechanism comprises in particular a date finger 2, a date lever 3 and a correction lever 4. The levers 3, 4 are mounted about a same pivot axis 5, but are free to rotate one relatively to the other.
The date finger 2 is continuously driven counter-clockwise at one revolution per day by a pin 6 solid with a 24-hour wheel 7 meshing with a 12-hour intermediate wheel 8 solid with the hours wheel of the watch. The date finger 2 cooperates each day, from a given time, with a finger 9 (cf.
The date lever 3 comprises, in addition to finger 9, a first small click 14 and a second small click 15 which, during the transition from one day to the next, cooperate respectively with a 31-tooth date star-wheel 16 and a seven-tooth days star-wheel 17 to make them rotate instantaneously by one pitch. The days star-wheel 17 bears a display hand 18 associated with a weekdays display area 19 on the dial of the watch (
The correction lever 4 comprises at one of its ends a rack 22 engaged with a corresponding rack 23 of the pivoting shuttle 11, and at another end a feeler consisting of a finger 24 in which a feeler pin 25 is secured, the feeler pin 25 being, in rest position of the correction lever 4, in contact with a months cam 26 or a leap year cam 27 (
Each lever 3, 4 extends partly on one side of the pivot axis 5 and partly on the other side of the pivot axis 5. It should be particularly noted, concerning the correction lever 4, that the feeler 24-25 is located on the side opposite to the one of the rack 22 and the finger 10. The shape of each lever 3, 4 is chosen advantageously so that the centre of gravity of the lever 3, 4 be substantially on the pivot axis 5. In this way, the mechanism becomes less sensitive to impacts. Moreover, one or several ball bearings can be associated with the pivot axis 5 of levers 3, 4 to reduce the friction coefficients.
The date star-wheel 16 is solid with a 31-tooth date wheel 28, a units wheel 29 having 29 teeth plus an empty space 29′ taking up the space of two consecutive teeth, a four-tooth tens wheel 30 and a snail correction cam 31. The assembly formed by the date star-wheel 16, the date wheel 28, the units wheel 29, the tens wheel 30 and the correction cam 31 will be referred to as “date mobile” in the following of this description.
The units wheel 29 is engaged with a ten-tooth units pinion 32 bearing a units disk 33 on which there is displayed a sequence of digits 0 to 9 of great size representing the units of the date. The tens wheel 30 cooperates with an eight-tooth tens pinion 34 bearing a tens disk 35 on which are displayed two consecutive sequences of digits 0 to 3 of great size representing the tens of the date. The pinions 32, 34 are each subject to the action of a jumper 36, 37, respectively. The units and tens disks 33, 35 are juxtaposed, and allow the display of the date in two respective large windows 38, 39 provided in the dial of the watch (
The gear formed by the units wheel 29 and the units pinion 32 is shown in detail on
The shuttle 11 (
The date wheel 28 is engaged with a 31-tooth intermediate date wheel 41 mounted about the same axis as the units pinion 32 and the units disk 33, but free to rotate with respect to this pinion 32 and this disk 33 (
The finger 45 of the months disk 44 cooperates at the end of each month with a 12-tooth months pinion 47 to drive it by one pitch, so that it makes one revolution per year. This months pinion 47, with which the months cam 26 is solid, bears a month display hand 48 associated with a month display area 49 on the dial of the watch (
The months pinion 47 drives a 48-month wheel 50, with 48 teeth, mounted about the same axis as the months wheel 43 and the months disk 44, but free to rotate with respect to the same, to drive it at the rate of one revolution in four years. A first 30-tooth year wheel 51 is solid with the 48-month wheel 50. A second 30-tooth year wheel 52 mounted about the same axis as the months pinion 47, but free to rotate with respect to this pinion 47, is driven by the first year wheel 51. This second year wheel 52, with which the leap year cam 27 is solid, bears a leap year display hand 53 associated with a corresponding display area 54 on the dial of the watch.
The months cam 26 has a periphery the radius of which is variable and depends upon the number of days of the months of the year, the angular position of this cam 26 defining the current month. The periphery of the cam 26 comprises, more precisely, (cf.
With additional reference to
The perpetual calendar mechanism according to the invention also comprises a moon phase display device. This device comprises (cf.
The perpetual calendar mechanism according to the invention further comprises correctors 73, 74, 75, 76 allowing manual correction of the angular position, respectively, of the date mobile 16, 28-31, of the days star-wheel 17, of the moon pinion 62 and of the months pinion 47. These correctors 73-76 are operated by push-buttons (not represented) projecting from the edge of the watch. Each corrector 73-75 is a mere pivoting member arranged to push a tooth of the date wheel 28, of the days star-wheel 17 and of the moon pinion 62, respectively. The corrector 76 associated with the months pinion 47 comprises (cf.
The perpetual calendar mechanism according to the invention operates in the following manner.
In rest position, the date lever 3 is maintained by its return spring 12 against an abutment 84 (visible on
During the lifting of the correction lever 4, the rack 22 drives the shuttle 11 in rotation, which causes the free end of the great click 40 to slide on the peripheral surface of the correction cam 31. During the days other than the last day of a month of less than 31 days, this sliding of the free end of the great click 40 has no effect on the angular position of the date mobile 16, 28-31. On the other hand, on the last day of a month of 30 days, 29 days or 28 days, the free end of the great click 40 comes into contact with the setback, designated on
During the lifting of the correction lever 4, the date finger 2 comes into contact with the finger 9 of the date lever 3, thus causing a progressive lifting of this lever 3 against the action exerted by the return spring 12. The end of the lifting of the date lever 3 occurs after the end of the lifting of the correction lever 4, but before the drop of the correction lever 4. As soon as the date finger 2 releases the date lever 3, this lever 3 drops under the action of the return spring 12 to retrieve its rest position. During this drop, the first small click 14 catches a tooth of the date star-wheel 16 to shift angularly and instantaneously this star-wheel 16 and therefore the date mobile 16, 28-31 by one pitch. During this same drop of the date lever 3, the second small click 15 catches a tooth of the days star-wheel 17 to shift angularly and instantaneously this star-wheel 17 and therefore the weekday display hand 18 by one pitch to display the following day.
This instantaneous shift by one pitch of the date mobile 16, 28-31 and of the days star-wheel 17 by the small clicks 14, 15 occurs each day, let it be or not the end of a month of less than 31 days. If the current day is the last day of a month of less than 31 days, this instantaneous shift by one pitch of the date mobile 16, 28-31 will follow the dragging shift of this mobile by the great click 40 to end the transition from the last day of the current month to the first day of the following month. In all the other circumstances, i.e for the transition of one day to the next within a month or the transition from the last day of a month of 31 days to the first day of the following month, the great click 40 has no function, and the instantaneous shift by one pitch of the date mobile 16, 28-31 by the small click 14 is the sole shift undergone by the date mobile 16, 28-31.
When the date mobile 16, 28-31 is rotated by one pitch, let it be by the small click 14 in an instantaneous manner or by the great click 40 in a dragging manner, the units wheel 29 of the date mobile 16, 28-31 shifts by one pitch the units pinion 32 so as to change the date unit displayed in the window 38 to the next unit, except once a month, when the date mobile 16, 28-31 is in an angular position corresponding to the date 31. In this position, indeed, the toothing of the units pinion 32 is facing the empty space 29′ of the toothing of the units wheel 29 and, therefore, is not driven. When the date mobile 16, 28-31 changes from the angular position corresponding to the 31st to the one corresponding to the 1st, the units disk 33 therefore remains still and the digit 1 of the units remains displayed through the window 38.
The tens pinion 34 is driven by the tens wheel 30 of the date mobile 16, 28-31 only four times a month, corresponding to the changes of the ten of the date, when the toothing of the tens pinion 34 is in the path of one of the four teeth of the tens wheel 30. Each time the tens pinion 34 is shifted by one pitch, the tens disk 35, solid with the pinion 34, also shifts so as to display the next ten of the date in the window 39.
Moreover, each rotation by one pitch of the date mobile 16, 28-31 entails, via the intermediate date wheel 41 and the intermediate pinion 42, a rotation by one pitch of the months wheel 43 and of the months disk 44. This rotation by one pitch of the wheel 43 and the disk 44 however causes the finger 45 of the months disk 44 to rotate the months pinion 47 only when the date mobile 16, 28-31 changes from an angular position corresponding to the 31st to an angular position corresponding to the 1st, the rest of the time the finger 45 being outside the toothing of the months pinion 47. Each rotation by one pitch of the months pinion 47 causes the months cam 26 and the month display hand 48 located above the months display area 49 on the dial of the watch to be rotated by one pitch for the transition to the following month. Each rotation by one pitch of the months pinion 47 also causes a rotation by one pitch of the 48-month wheel 50 which itself causes, through year wheels 51, 52, a rotation by one pitch of the leap year cam 27 and of the leap year display hand 53 associated with the display area 54 on the dial of the watch.
The fingers 9, 10 of the levers 3, 4 are designed so that the drop of the date lever 3 always occurs before the drop of the correction lever 4. Thus, the instantaneous shift by one pitch that the date mobile 16, 28-31 makes every day during the drop of the date lever 3, which shift, as explained above, causes a shift of the months pinion 47 and of the months cam 27 at each end of a month, occurs while the feeler 24-25 of the correction lever 4 is apart from the peripheral surface of the cams 26, 27. In this way, a blocking of the mechanism is prevented.
At any time during the operation of the mechanism, the angular position of the date mobile 16, 28-31, of the days star-wheel 17, of the moon pinion 62 and of the months pinion 47 can be corrected manually through the correctors 73-76, respectively, and this without a blocking risk. Regarding more particularly the months pinion 47, it is to be noted that rotation of this pinion 47 by the corrector 76 has never any effect on the angular position of the date mobile 16, 28-31. Indeed, when this rotation occurs while the finger 45 is outside the toothing of the months pinion 47, the months disk 44 cannot be driven by the months pinion 47. When the rotation of the months pinion 47 occurs while the finger 45 is within the toothing of said pinion 47, the months disk 44 is driven by one pitch counter-clockwise, but as the hole 46′ is greater than the pin 46 it receives, the months wheel 43 remains still, therefore also leaving the date mobile 16, 28-31 still.
The present invention as described above presents several advantages in addition to those already mentioned. One of them is that the change-of-date display is effected instantaneously most of the time, i.e. during the transition from one day to the next within a month and during the transition from the last day of a month of 31 days to the first day of the following month, but with a reduced risk of the date mobile 16, 28-31 being driven by its inertia into a non desired shift, this due to the fact that the shift of the date mobile 16, 28-31 during the transition from the last day of a month of less than 31 days to the first day of the following month is partly effected in a dragging manner. More particularly, it will be noted that, in the illustrated example, the instantaneous shifts of the date mobile 16, 28-31 are always restricted to a single pitch.
Another advantage of the invention is that it allows, by the presence of the two levers 3, 4 bearing respectively the small click 14 and the great click 40, the creation of a sufficient shifting angle for the clicks 14, 40 while freeing some space for another display device, i.e., in the illustrated example, the moon phase display device 62-68, and while allowing a great-size display of the date by two juxtaposed disks 33, 35. In a general manner, it will be noted that the mechanism according to the invention allows for a user-friendly layout of different display areas well readable on the dial of the watch.
The present invention has been described above only by way of example. It goes without saying that modifications can be made without deviating from the scope of the invention. For example, the mechanism could be made merely annual by removing the leap year cam 27 and the gears associated with it. Another modification could consist in removing the moon phase display device 62-68 or in replacing it by a tourbillon, for example.
Number | Date | Country | Kind |
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0648/04 | Apr 2004 | CH | national |
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