Moon phase indication mechanism
The moon phase display mechanism addresses the lack of realistic lunar phase representation by using synchronized and offset wheel and pinion movements to depict all lunar phases with clear boundaries, improving visibility and realism in mechanical timepieces.
Patent Information
- Application Number
- JP2021182493
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-11-30
- Filing Date
- 2021-11-09
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2041-11-09
AI Technical Summary
Existing moon phase display mechanisms for mechanical timepieces do not realistically depict all phases of the illuminated portion of the moon visible from Earth against a large sky background behind the horizon, and lack realistic light and dark boundary lines.
A moon phase display mechanism comprising a first wheel and pinion with a nighttime background and lunar background, and a second wheel and pinion superimposed on the first, where the second wheel and pinion is driven in the same direction and angular velocity as the first during the lunar phase display period, and offset by a repositioning angle during transition periods to realistically depict all lunar phases.
The mechanism provides a realistic representation of all lunar phases with clear light-dark boundaries, moving against a sky background, enhancing visibility and realism in moon phase displays.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a moon phase display mechanism for a timepiece, comprising a first wheel and pinion having a nighttime background and at least a portion of a lunar background, and a second wheel and pinion superimposed on the first wheel and pinion, said second wheel and pinion having a nighttime background and a lunar phase profile.
[0002] The invention also relates to a timepiece equipped with such a display mechanism. [Background technology]
[0003] Such a moon phase display mechanism is described, for example, in the applicant's European Patent Application Publication No. 2 392 976. In said document, the moon phase display mechanism comprises a first moon disc including two light-colored circles symbolizing the moon set against a dark background symbolizing the night sky. The dial comprises an opening that can be used in cooperation with the moon disc to indicate the phase of the moon with a concave symbol.
[0004] It is possible to use a second disc superimposed on the moon disc, containing a nighttime background and apertures with various lunar phase profiles, in this design this second disc is positioned to function as an occultation disc, cooperating with the first moon disc and optionally with apertures to obscure the circle symbolizing the moon, in order to show the lunar phases with a particular convex symbol.
[0005] The moon disc is rotationally driven to rotate 180° once every lunar synodic cycle, allowing the user to follow the daily progression of the various lunar phases, from the new moon appearing on the left side of the aperture during lunar synodic cycle to the final crescent moon appearing on the right side of the aperture, in a conventional manner. A program wheel is provided to advance the moon disc daily and to rotate the occultation disc only during lunar phase changes to differently occlude one of the moons represented on the moon disc. The occultation disc then remains stationary until the next rotation.
[0006] This mechanism allows the display of all phases of the waxing and waning of the illuminated part of the moon as seen from Earth to produce a lunar phase indication on the watch that corresponds to the actual appearance of the lunar phases during the entire period of lunar synovia.
[0007] Numerous variations have been described, but none of these variations provide a lunar phase display that simultaneously displays all phases of the illuminated portion of the moon visible from the Earth against a large sky background behind the horizon, independent of the displayed lunar profile.
[0008] Furthermore, the aperture configuration does not allow for a realistic look of the light and dark boundary lines of the various displayed moon phases. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] European Patent Application Publication No. 2392976 Summary of the Invention [Problem to be solved by the invention]
[0010] The object of the present invention is to remedy these drawbacks by proposing a new and original lunar phase display for mechanical timepieces, which makes it possible to display, with realistic boundary lines, all the phases of the illuminated part of the Moon visible from the Earth, against a large sky background behind the horizon, regardless of the displayed lunar profile. [Means for solving the problem]
[0011] To this end, the present invention relates to a display mechanism for n moon phases for a timepiece, where n is an odd integer preferably greater than or equal to 3, comprising a first wheel and pinion having a night background and at least a portion of a moon background, and a second wheel and pinion superimposed on the first wheel and pinion, said second wheel and pinion having a night background and moon phase profile, the first wheel and pinion and the second wheel and pinion pivoting about the same axis.
[0012] According to the invention, the display mechanism is arranged so that the first wheel and pinion can be driven in rotation at a constant speed and so that the second wheel and pinion can be driven in rotation in the same direction and at the same angular velocity as the first wheel and pinion during a lunar phase display period, during which period a portion of the lunar background of the first wheel and pinion and a lunar phase profile of the second wheel and pinion corresponding to the lunar phase to be displayed are superimposed to show said lunar phase, and so that the second wheel and pinion is offset by a repositioning angle relative to the first wheel and pinion to enable the next lunar phase to be displayed during the transition period between the current and next display periods.
[0013] Advantageously, the first wheel and pinion is drivable by a drive gear train and is arranged to cooperate with a drive device, said drive device being arranged to drive the second wheel and pinion synchronously during the lunar phase indication period and to drive the second wheel and pinion in relative rotation to offset them by said repositioning angle during the transition period.
[0014] Thus, since the lunar phase to be displayed is made visible by superimposing a portion of the lunar background of the first wheel and pinion with the lunar phase profile of the second wheel and pinion, the display mechanism according to the present invention makes it possible to select a lunar phase profile so as to realistically display all phases of the illuminated portion of the moon visible from the Earth.
[0015] Advantageously, the display mechanism comprises a dial including a display aperture of a size selected to show the movement of the phases of the moon during at least a portion of its display period, more particularly the display aperture is of a size selected to show at most one phase of the moon within said aperture at any time.
[0016] Thus, the movement of the moon phases is more visible to the user of the watch.
[0017] Preferably, the display aperture of the dial has a substantially annular shape, the radial edge of which defines the horizon line. Advantageously, the first wheel and pinion and the second wheel and pinion are rotatable in a clockwise direction to represent the movement of the moon through its phases from rising to setting above the horizon.
[0018] Thus, the lunar phase profile appearing on the second wheel and pinion appears independent of the edge of the viewing aperture, so that the various lunar phases appear to move against the sky background defined by the edge of the aperture, and the radial edges can form a customizable horizon.
[0019] Preferably, the lunar phase profile of the second wheel and pinion has a profile defined by a lunar phase and a boundary line corresponding to the arc of the outer edge of the moon. Advantageously, the edge of the lunar phase profile corresponding to the boundary line includes relief features that show details of the moon.
[0020] Thus, a realistic representation of the various phases of the moon is obtained.
[0021] The invention also relates to a timepiece equipped with a moon phase indicator mechanism as defined above.
[0022] Other characteristics and advantages of the invention will become apparent from reading the following detailed description of various embodiments of the invention, given as non-limiting examples. [Brief explanation of the drawings]
[0023] [Figure 1] FIG. 1 is a plan view of a timepiece according to the invention displaying a full moon. [Figure 2] FIG. 2 is a plan view of a dial used in the present invention. [Figure 3] FIG. 2 is a plan view of a first wheel and pinion used in the present invention. [Figure 4] FIG. 10 is a plan view of a second wheel and pinion used in the present invention. [Figure 5] 10 is a plan view of a first wheel and pinion, a second wheel and pinion, and a first alternative embodiment of a drive device; FIG. [Figure 6] FIG. 6 is a cross-sectional view taken along line AA in FIG. 5. [Figure 7] FIG. 6 is an exploded view of the drive unit of FIG. 5. [Figure 8] FIG. 6 is a plan view of the drive device of FIG. 5. [Figure 9] 1 shows two wheels and pinions and a first embodiment of a drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon; FIG. [Figure 9a] FIG. 10 is a detailed view of FIG. 9. [Figure 10] 1 shows two wheels and pinions and a first embodiment of a drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon; FIG. [Figure 10a] FIG. 11 is a detailed view of FIG. [Figure 11] 1 shows two wheels and pinions and a first embodiment of a drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon; FIG. [Figure 11a] FIG. 12 is a detailed view of FIG. [Figure 12] 1 shows two wheels and pinions and a first embodiment of a drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon; FIG. [Figure 12a] FIG. 13 is a detailed view of FIG. [Figure 13a] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13b] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13c] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13d] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13e] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13f] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13g] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13h] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 13i] 1 illustrates the various phases of the moon as displayed by a display mechanism according to the present invention at different times during the display period of the moon phases. [Figure 14] FIG. 10 is a plan view of a first wheel and pinion, a second wheel and pinion, and a second embodiment of a drive device. [Figure 15] FIG. 10 is an exploded view of a first wheel and pinion, a second wheel and pinion, and a second embodiment of a drive device. [Figure 16] 10A and 10B show two wheels and pinions and a second embodiment of the drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon. [Figure 16a] FIG. 17 is a detailed view of FIG. [Figure 16b] FIG. 17 is a detailed view of FIG. [Figure 17]10A and 10B show two wheels and pinions and a second embodiment of the drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon. [Figure 17a] FIG. 18 is a detailed view of FIG. [Figure 17b] FIG. 18 is a detailed view of FIG. [Figure 18] 10A and 10B show two wheels and pinions and a second embodiment of the drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon. [Figure 18a] FIG. 19 is a detailed view of FIG. [Figure 18b] FIG. 19 is a detailed view of FIG. [Figure 19] 10A and 10B show two wheels and pinions and a second embodiment of the drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon. [Figure 19a] FIG. 20 is a detailed view of FIG. 19. [Figure 19b] FIG. 20 is a detailed view of FIG. 19. [Figure 20] 10A and 10B show two wheels and pinions and a second embodiment of the drive device through various operating sequences during the full moon display period and the transition period between the full moon and the last quarter moon. [Figure 20a] FIG. 21 is a detailed view of FIG. 20. [Figure 20b] FIG. 21 is a detailed view of FIG. 20. DETAILED DESCRIPTION OF THE INVENTION
[0024] The present invention relates to a moon phase display mechanism for a timepiece and to a timepiece, and more particularly to a mechanical timepiece equipped with such a display mechanism.
[0025] FIG. 1 shows such a timepiece 1, more particularly a wristwatch comprising in particular a dial 2 and a set of hands 3, 4, 5 in the centre of the dial 2, for displaying the time in the conventional way.
[0026] The moon phase mechanism comprises a dial constituted here by a dial 2 for indicating the time of the watch, said dial 2 having a display opening 6, as shown in Figure 2, which will be explained in more detail below. It is quite clear that the moon phase dial may differ from the time display dial in that it is arranged in a selected zone of said time display dial of the watch.
[0027] 3, the moon phase display mechanism comprises a first wheel and pinion 8 in the form of a disk having a center C with a plate 8a and external teeth 8b. Plate 8a has a nighttime background 10 and at least a portion of a lunar background 12. Preferably, nighttime background 10 occupies the largest area of plate 8a, with the remaining area being occupied by the lunar background portion. Preferably, nighttime background 10 is a decorative motif representing the nighttime sky.
[0028] Advantageously, the first wheel and pinion 8 has x lunar background portions 12, x being greater than or equal to 1 and less than n, said x lunar background portions 12 being regularly distributed on the first wheel and pinion 8 and separated from one another by nighttime backgrounds 10. The lunar background portions are decorative motifs representing the lunar surface selected to fit all possible configurations corresponding to the various lunar phases to be displayed. The lunar decorative motifs can be reproduced by decals, burning, gravure printing or any other suitable technique.
[0029] 4, the moon phase display mechanism comprises a second wheel and pinion 14 in the form of a disk having a center C' with a plate 14a and external teeth 14b. Plate 14a carries a nighttime background 16 and an odd number n of moon phase profiles 18. Said second wheel and pinion 14 is coaxially stacked on, i.e. positioned above, the first wheel and pinion 8 along an axis passing through C and C', as visible to a user looking at dial 2.
[0030] The night background 16 of the second wheel and pinion 14 is preferably identical to, or at least similar in appearance to, the night background 10 of the first wheel and pinion 8 so that when the night background 10 of the first wheel and pinion 8 appears on the lunar phase profile 18 of the second wheel and pinion 14, the night backgrounds blend into each other to prevent said lunar phase profile 18 from appearing when not superimposed on the lunar background 12.
[0031] The lunar phase profile 18 represents the various phases of the waxing and waning of the illuminated portion of the Moon as seen from Earth. More specifically, the lunar phase profile 18 is configured to be able to represent all phases of the illuminated portion of the Moon as seen from Earth, for example, by a concave shape for the first crescent and last crescent, a D-shape for the first quarter, an inverted D-shape for the last quarter, a circle for the full Moon, and a convex shape for the waxing and waning gibbous Moon.
[0032] The lunar phase profile 18 may be formed by an opening in the plate 14a of the second wheel and pinion 14, which comprises the nighttime background 16. It is also possible to provide a solid second wheel and pinion 14, with at least the portion where the lunar phase profile 18 is displayed being at least translucent, preferably transparent. In particular, a gradation of transparency levels is possible to create a spherical effect for the revealed moon. For example, at least said portion, preferably the second wheel and pinion 14, may be made of sapphire or glass with a polarizing layer. The nighttime background 16 is formed by depositing a thinly painted or textured layer around the lunar phase profile 18, preferably on the underside of the plate 14a of the second wheel and pinion 14, to minimize parallax effects between the first wheel and pinion 8 and the second wheel and pinion 14.
[0033] Advantageously, the lunar phase profile 18 has a profile corresponding to the shape of the illuminated surface of the moon, defined by the light-blind lines 18a corresponding to the various lunar phases that it is desired to be able to display, and an arc 18b corresponding to the outer edge of the moon. Advantageously, the edge of the lunar phase profile corresponding to the light-blind line includes relief features that show lunar details. Thus, details of craters or maria, particularly details that are visible in bright sunlight, can be formed by carving or drawing on the edge of the lunar phase profile that corresponds to the light-blind line.
[0034] Advantageously, as shown in FIG. 3, the lunar background portions 12 provided on the first wheel and pinion 10 are regularly distributed on the plate 8a of the first wheel and pinion 8 in the form of sectors of an angle substantially equal to 360 / n° and separated from one another by the night background 10, while n juxtaposed regularly distributed sectors of an angle equal to 360 / n° are provided on the plate 14a of the second wheel and pinion 14 to represent the n lunar phases to be displayed.
[0035] According to the invention, the n lunar phase display mechanisms are arranged so that the first wheel and pinion 8 and the second wheel and pinion 14 pivot about the same axis, here the central axis, which passes through C and C' and is perpendicular to the first wheel and pinion 8 and the second wheel and pinion 14. The first wheel and pinion 8 can be driven to rotate at a constant speed by that movement. The mechanism is arranged so that the second wheel and pinion 14 is rotationally driven at the same speed and in the same direction as the first wheel and pinion 8 during a lunar phase display period, during which a portion of the lunar background 12 of the first wheel and pinion 8 and a lunar phase profile 18 of the second wheel and pinion 14 corresponding to the lunar phase to be displayed are superimposed to reveal said lunar phase, and so that the second wheel and pinion 14 is offset by a repositioning angle relative to the first wheel and pinion 8 to enable the next lunar phase to be displayed during the transition period between a current display period and the next.
[0036] The moon thus represents the 29.5-day lunar synodic cycle in n steps of 29.5 / n days, during which the displayed lunar phase, obtained by the overlap of the second wheel and pinion 14 with the first wheel and pinion 8, remains constant and moves regularly with the nighttime background. The position of the displayed lunar phase on the dial 2, with or without the display aperture 6, indicates to the user the progression of the displayed lunar phase (beginning, middle or end of phase). Advantageously, then, over the course of 29.5 / n days, the displayed lunar phase can disappear and the next lunar phase can appear.
[0037] Advantageously, the display aperture 6 has a size selected to allow the movement of the lunar phases to appear during at least a portion of its display period. More specifically, the display aperture 6 is sized to display at most one lunar phase within said aperture 6 at any one time. Furthermore, the display aperture 6 is sized so that the remaining area of the dial 2 conceals the offset between the first wheel and pinion 8 and the second wheel and pinion 14 during transition periods. Because the lunar phase profiles 18 are independent of the display aperture 6 but also of each other, each of the lunar phase profiles 18 can occupy the same sector of the plate 14b of the second wheel and pinion 14. As a result, each of the lunar phase profiles 18 appears larger within the enlarged display aperture than in a standard lunar phase display aperture.
[0038] Advantageously, the display opening 6 has a substantially annular shape coaxial with the first wheel and pinion 8 and the second wheel and pinion 14, with its radial edges 6a, 6b forming the horizon. At least one of the radial edges 6a, 6b of the display opening 6 may have a shape that can be customized according to the wishes of the user or the place of purchase of the watch, chosen to represent, for example, the outline of a mountain 6c, a monument or a city on the horizon. This foreground formed by the horizon makes it possible to create a contrast with the lunar phases displayed in the sky, giving the impression of a large moon.
[0039] Preferably, the first wheel and pinion 8 and the second wheel and pinion 14 can rotate in a clockwise direction to represent the movement of the moon's phases above the horizon, rising in the east to the left of the viewing opening 6 and setting in the west to the right of the viewing opening 6.
[0040] Advantageously, the first wheel and pinion 8 is arranged to be drivable at constant speed by the drive gear train (not shown) of the timepiece and to cooperate with a drive device which is arranged to drive the second wheel and pinion 14 synchronously during the lunar phase indication period and to drive in relative rotation during the transition period the second wheel and pinion to offset by said repositioning angle.
[0041] Advantageously, the lunar phase profiles 18 of the second wheel and pinion 14 are positioned relative to one another depending on a selected direction of relative rotation of the second wheel and pinion 14 with respect to the first wheel and pinion 8, so that during a transition period, when the second wheel and pinion 14 is driven in relative rotation with respect to the first wheel and pinion 8 by the drive device, the next lunar phase is displayed instead of the current lunar phase.
[0042] The number x of lunar background portions 12 on the first wheel and pinion 8 may be greater than or equal to 1, so that the first wheel and pinion 8 and the second wheel and pinion 14 are arranged such that they can be offset relative to each other by the repositioning angle during the transition period between the current lunar phase display period and the next lunar phase display period.
[0043] In the presented embodiment, the offset between the two wheels and pinions 8, 14 occurs after the displayed lunar phase has disappeared below the western horizon, causing the next lunar phase to appear in the east. Preferably, the lunar phase profiles 18 of the second wheel and pinion 14 are positioned relative to each other such that the repositioning angle is equal to 360 / 2n°.
[0044] According to a first embodiment, the drive device comprises an energy accumulator arranged to be driven by the first wheel and pinion 8 driven by the drive gear train and arranged so that during the transition period the second wheel and pinion 14 jumps forward under the action of said energy accumulator.
[0045] Such a drive is shown, for example, in FIGS.
[0046] In this first embodiment, the drive device 20 with energy accumulator comprises three wheels coaxially superimposed along an axis parallel to the central axis, namely a first toothed wheel 22 arranged to be driven by its external toothing 8b by the first wheel and pinion 8. The first wheel 22 is integrated with a cam 24, here comprising, for example, four sectors.
[0047] The drive with energy accumulator 20 is also driven by the first wheel and pinion 8 via its external toothing 8b, but also comprises a second toothed wheel 26 arranged to be driven at a higher speed than the first wheel 22. For this purpose, the first wheel 22 and the second wheel 26 are provided with a different number of teeth. The second wheel 26 bears on a pin or peg 28, the function of which will be explained below.
[0048] The drive with energy accumulator 20 also comprises a third toothed wheel 30 arranged to drive the second wheel and pinion 14 via its external teething 14b. The third wheel 30 comprises a groove 32 in which a pin or peg 28 of the second wheel 26 engages, so that the angular freedom of the third wheel 30 relative to the second wheel 26 is limited by the groove 32 due to the abutment effect of the groove 32 and the pin 28.
[0049] Furthermore, the third wheel 30 carries a pivotally mounted jumper 34 equipped with a jumper spring 36, said jumper 34 being arranged to cooperate with the cam 24 of the first wheel 22. For this purpose, the jumper 34 can have at its free end a roller or runner 38 extending through said third wheel 30 through an opening 39 made in the plate of the third wheel 30, said roller 38 being arranged to cooperate with the contour of the cam 24. Thus, while the pin 28 of the second wheel 26 is not in abutment with the groove 32 of the third wheel 30, the jumper 34 moves under tension together with the cam 24, thereby allowing the third wheel 30 to rotate integrally with the first wheel 22 for synchronous driving of the first wheel and pinion 8 and the second wheel and pinion 14. The difference in speed between the first wheel 22 and the second wheel 26 creates an angular offset driven by the wheel and pinion 8 meshing with the two wheels 22 and 26, such that the pin 28 of the second wheel 26 moves freely in a groove 32 of a third wheel 30. When the pin 28 reaches and abuts the groove 32, the third wheel 30 rotates together with the second wheel 26, whereby the jumper 34, which is forced to move along the contour of the cam 24, stores energy by means of its spring 36. The contour of the cam 24 is selected so that during the phase of synchronous drive of the two wheels and pinions 8, 14 and until the pin 28 abuts in the groove 32, the roller 38 of the jumper 34 is at the bottom of the concave surface of the contour of the cam 24. When the jumper 34 reaches the apex of one of the sectors of the profile of the cam 24, it drops from this apex and cooperates with the next sector, allowing, during a transition period, the energy to be suddenly released to pivot the third wheel 30 and jump to drive the second wheel and pinion 14 in rotation through its external teeth 14b by the repositioning angle. Those skilled in the art know how to calculate the number and size of the teeth of the various elements of the drive device 20 to obtain the required repositioning angle.
[0050] The operation of this first embodiment of the drive unit 20 will now be described in more detail in connection with a preferred embodiment of a moon phase display mechanism according to the invention, with more particular reference to Figures 5, 9, 9a to 12, 12a.
[0051] According to this preferred embodiment, the first wheel and pinion 8 comprises two lunar background portions 12 symmetrically opposed about a central axis, as shown in Figure 3, and can be driven by a timepiece drive gear train (not shown) at a constant speed of n half revolutions per lunar synodic cycle, which is achieved by a lunar drive gear well known to those skilled in the art.
[0052] According to a preferred embodiment, n is equal to 9, so that the first wheel and pinion 8 is arranged to be continuously driven in a clockwise direction by the drive gear train at a constant speed of 9 half revolutions per lunar synodic period.
[0053] The second wheel and pinion 14 has nine lunar phase profiles 18, which are arranged in the following order in a clockwise direction as shown in FIG. 5: first crescent moon a, waning quarter moon b, moon between full moon and waning quarter moon c, moon between first quarter moon and full moon d, first quarter moon e, last crescent moon f, waning half moon g, full moon h, first quarter moon i, each occupying a sector of 40° (360 / 9).
[0054] The viewing aperture 6 is annular, coaxial with the first wheel and pinion 8 and the second wheel and pinion 14 and extends over an angle of approximately 140°.
[0055] The drive 20 is arranged to drive the second wheel and pinion 14 synchronously at the same speed as the first wheel and pinion 8 during the lunar phase indication period, and in relative rotation, thanks to the energy accumulator, to offset by the required repositioning angle during the transition period.
[0056] Thanks to the energy accumulator, the second wheel and pinion 14 is offset clockwise by a repositioning angle of 20° (360 / 2*9) during the transition period between one lunar phase display period and the next, which is approximately 3.28 days (29.5 / 9).
[0057] The drive 20 with energy storage is shown in Figure 5 to the left of the overlapping first wheel and pinion 8 and second wheel and pinion 14. The drive can very obviously be arranged at any other position around said wheels and pinions 8, 14.
[0058] With more detailed reference to Figures 9, 9a to 12, 12a, the operation of the drive unit 20 with energy storage will now be described for a full moon h.
[0059] As shown in FIG. 9 , the first wheel and pinion 8 and the second wheel and pinion 14 are positioned so that the lunar phase profile 18 of the second wheel and pinion 14 corresponding to the full moon h is superimposed on a portion of the lunar background 12 of the first wheel and pinion 8, revealing the full moon to the left of the viewing opening 6 (not shown in these figures), which corresponds to the east. The other lunar phase profiles 18 located in the viewing opening 6 are superimposed on the night background 10 of the first wheel and pinion 8 so as not to be visible, and the night background 10 of the first wheel and pinion 8 that appears through the lunar phase profiles 18 blends in with the night background 16 of the second wheel and pinion 14. The other lunar phase profiles 18, particularly those that reveal another portion of the lunar background 12 on the opposite side of the central axis, are hidden beneath the viewing opening 6 and therefore are not visible to the user.
[0060] During the period of the lunar phase display in the display aperture 6, the drive device 20 with energy accumulator drives the first wheel and pinion 8 and the second wheel and pinion 14 at the same speed of 0.5 x 9 revolutions / 29.5 days. For this purpose, as shown more specifically in Figure 9a, the third wheel 30 rotates integrally with the first wheel 22 by means of a jumper 34, its roller 38 being pushed by a spring 36 into the bottom of the concave surface of the profile of the cam 24. The first wheel and pinion 8, driven by the drive gear train of the base movement at a constant speed of 0.5 × 9 revolutions / 29.5 days, drives the first wheel 22 of the drive unit 20 via its external toothing 8b and thus the third wheel 30 which meshes with the second wheel and pinion 14, so that the second wheel and pinion 14 rotates synchronously with the first wheel and pinion 8 at the same speed of 0.5 × 9 revolutions / 29.5 days and in the same direction. The two wheels and pinions 8, 14 rotate together such that the full moon displayed in the display aperture 6 moves through said aperture 6 in a clockwise direction, from left to right (east to west), for 3.28 days (29.5 / 9), against a nighttime background constituted by the nighttime background 10 of the first wheel and pinion 8 and the nighttime background 16 of the second wheel and pinion 14, which appears through a lunar phase profile 18 appearing in the aperture 6. For just under half a revolution of the wheel and pinion, the pin 28 of the second wheel 26 , which rotates faster than the first and third wheels 22 , 30 , is free to offset within the groove 32 of the third wheel 30 .
[0061] At the end of the display period, a few hours before the transition to the next lunar phase, the full moon h arrives to the right, i.e., west, of the display aperture 6. On the opposite side of the central axis, as shown in Figures 10 and 10a, another portion of the lunar background 12 is out of phase with both the lunar phase profile d, corresponding to the first quarter moon and the full moon, and the lunar phase profile c, corresponding to the last quarter moon and the full moon, both of which are hidden to the lower left of the aperture 6. At this time, the pin 28 abuts against the bottom of the groove 32. This causes the second wheel 26, still driven by the first wheel and pinion 8, and the third wheel 30 to rotate together. Therefore, the jumper 34 attached to the third wheel 30 is pushed out of its position by the bottom of the concave surface of the cam 24.
[0062] As the first wheel and pinion 8 and the second wheel and pinion 14 continue to rotate clockwise, the full moon h is now hidden below the viewing opening 6 to the right. On the opposite side of the central axis, the next lunar phase profile, i.e., the full moon c between full and waning quarters and a portion of the lunar background 12, remains hidden below the viewing opening 6 and approaches the left side of the viewing opening 6, as shown in Figures 11 and 11a, corresponding to the transition period from the full moon to the full moon between full and waning quarters. The jumper 34, under load on its spring 36, has nearly reached the apex of the cam 24 profile. The energy stored by the spring 36 is sufficient to suddenly release the stored energy, causing an instantaneous or very rapid relative rotation of the second wheel and pinion 14 with respect to the first wheel and pinion 8, enabling the jump and ending the jump in the position shown in Figures 12 and 12a. During the jump, the first wheel and pinion 8 remains in approximately the same position as before. In contrast, the third wheel 30 has pivoted 90° under the influence of the unloading of the spring 36 of the jumper 34. As it rotates, the third wheel 30 drives the second wheel and pinion 14 in a clockwise direction, and the gears are dimensioned to create an offset of 20° (360 / 2*9) of the repositioning angle. During this offset, to the left of the central axis, the next lunar phase profile corresponding to the Moon c between full and waning quarter is completely superimposed on the portion of the lunar background 12 to reveal the next lunar phase corresponding to the Moon c between full and waning quarter that is still hidden below the viewing opening 6. On the opposite side of the central axis, another portion of the lunar background 12, out of phase with the lunar phase profiles g and h, is hidden below and to the right of the viewing opening 6. The pin 28 of the second wheel 26 is again positioned forward within the groove 32 of the third wheel 30. After these steps, which represent 1 / 9 of a cycle, the mechanism is again ready to display in aperture 6 the phase of the moon c between full and waning quarter, which then moves from left to right over the course of 3.28 days, as described above.
[0063] The lunar synodic cycle continues in the same way for each of the nine lunar phases displayed. This allows all the lunar phases, both concave and convex, D-shaped and inverted D-shaped, and full circular, to be visually rendered particularly realistically with realistic light-dark boundaries, moving from left to right against the nighttime background within the enlarged aperture 6, creating a contrast that gives the impression of a giant moon rising above the horizon and setting, as shown in Figures 13a through 13i. That is, successively, the full moon (h) in Figure 13a, the moon between full and last quarter (c) in Figure 13b, the waning quarter (g) in Figure 13c, the waning quarter (b) (the penultimate crescent) in Figure 13d, the last crescent (f) in the waning quarter (f) in Figure 13e, the first crescent (a) in Figure 13f, the first quarter (e) (the second crescent) in Figure 13g, the first quarter (i) in Figure 13h, and the moon between first quarter and full (d) in Figure 13i.
[0064] Figures 13a to 13i show the phases of the moon at different times during their display period in aperture 6, for example Figure 13a shows a full moon h at the beginning of the display period, Figure 13c shows a waning half moon g in the middle of the display period and Figure 13e shows a final crescent moon f at the end of the display period. Furthermore, other moon phase profiles are shown in dashed lines to enhance understanding of the invention, but in reality they are not visible to the user as a result of the blending in of the night backgrounds 10 and 16 of first wheel and pinion 8 and second wheel and pinion 14, as explained above.
[0065] 14 to 16 show a second embodiment of a drive unit for use in the present invention.
[0066] In this embodiment, the drive device comprises a drive wheel and pinion 40 attached to a first wheel and pinion 8' driven by a drive gear train, said drive wheel and pinion 40 comprising a drive wheel 42 arranged to cooperate with a second wheel and pinion 14' and a Maltese cross 44, said drive wheel and pinion 40 being arranged non-rotatably relative to said first wheel and pinion 8' to synchronously drive the first wheel and pinion 8' and the second wheel and pinion 14' via the drive wheel 42 during the display period, and being arranged to be rotationally driven relative to said first wheel and pinion 8' to momentarily pivot the drive wheel 42 to rotationally drive the second wheel and pinion 14' by a repositioning angle during the transition period.
[0067] 14 and 15, the first wheel and pinion 8' includes a nighttime background 10' and two symmetrically opposed lunar background portions 12', similar to the previously described exemplary embodiment. Additionally, the first wheel and pinion 8' includes internal teeth 46 on its outer periphery that are arranged to cooperate with a drive gear train (not shown) to drive the first wheel and pinion 8'. This configuration advantageously allows the drive gear train to be positioned below the mechanism.
[0068] The first wheel and pinion 8' carries a drive wheel and pinion 40 comprising a drive wheel 42 in the form of a toothed pinion and a Maltese cross 44 integral with the drive wheel 42. The drive wheel and pinion 40 thus rotates like a satellite together with the first wheel and pinion 8' around the center of the mechanism. Furthermore, the drive wheel and pinion 40 is pivotally mounted, for example, on a bearing 48 drilled in a plate of the first wheel and pinion 8'. The Maltese cross 44 is positioned below the plate of the first wheel and pinion 8' so that it can cooperate with frame elements, as will be described below, and the drive wheel 42 is positioned above the plate of the first wheel and pinion 8' so that it can cooperate with the second wheel and pinion 14'.
[0069] The second wheel and pinion 14' includes a nighttime background 16' and a moon phase profile 18', similar to the previous embodiment. Additionally, the second wheel and pinion 14' includes teeth 50 on its inner periphery that are arranged to cooperate with the drive wheel 42.
[0070] To orient the Maltese cross 44, various elements for maintaining its position are provided on the frame 52 or on the bottom plate of the movement. More specifically, the frame 52 is provided with a first outer cam profile 54 and a second inner cam profile 56 arranged coaxially with the centers C and C' of the first and second wheel and pinion 8', 14', so that the first and second cam profiles 54, 56 cooperate with the edges of the Maltese cross 44, except for two convex sectors 54' arranged symmetrically about the central axis on the outer cam profile 54 and two concave sectors 56' arranged symmetrically about the central axis on the inner cam profile 56. The convex sectors 54' and concave sectors 56' are dimensioned to allow rotation of the Maltese cross 44. The convex sector 54' of the outer cam profile 54 is substantially offset relative to the concave sector 56' of the opposing inner cam profile 56, so that the convex sector 54' still prevents rotation of the Maltese cross 44, but the opposing concave sector 56' allows rotation of the Maltese cross 44.
[0071] Two levers 58 are also provided below the frame, pivotally mounted around a shaft coaxial with the central axis. To this end, each lever 58 has an oval-shaped opening 60 configured to be positioned around said shaft so that it can move freely away from the central axis. Each lever 58 is in contact with a return spring 62 mounted below the frame. At its free end, each lever 58 has a peg or pin 64 facing the Maltese cross 44 and positioned to penetrate the frame via a "banana" groove 66 drilled in the frame in the space between the two cam profiles 54 and 56. When the lever 58 supporting it moves away from the central axis, the peg or pin itself can rest at the bottom of the groove in the Maltese cross 44. The levers 58 are positioned symmetrically with respect to the central axis, and an instantaneous jump of the Maltese cross occurs every 180° of rotation of the first wheel and pinion 8', as explained below. The shape of the banana groove 66 combined with the effect of the return spring 62 determines the rest position of the pin 64. According to an alternative embodiment not shown, the pin 64 can be attached directly to the end of one arm of the return spring and the lever can be omitted. The helical shape of the return spring allows for X and Y offset of the pin.
[0072] The operation of this second embodiment of the drive is explained below with reference to Figures 16 to 20, which show the different positions at the end of the full moon display period and during the transition period from full moon to the moon between full and last quarter.
[0073] Referring more particularly to FIGS. 16, 16a, and 16b, a lunar phase profile 18' corresponding to a full moon is positioned toward the right of a display aperture (not shown), indicating the end of the full moon display period. During the lunar phase display period, the second wheel and pinion 14' rotates integrally with the first wheel and pinion 8' via the drive wheel and pinion 40. This is because, as shown more specifically in FIG. 16b, the orientation of the Maltese cross 44 is fixed by a first outer cam profile 54 and a second inner cam profile 56 mounted on a frame 52. The first wheel and pinion 8' is driven clockwise by the drive gear train via its teeth 46, and the first wheel and pinion 8' and the second wheel and pinion 14' are driven synchronously at the same speed and in the same direction via the drive wheel 42, which is engaged with the teeth 50 of the second wheel and pinion 14' and integral with the Maltese cross 44 attached to the first wheel and pinion 8'. Thus, as described above for the first exemplary embodiment, the lunar phase moves from left to right within the opening, causing the first wheel and pinion 8' and the second wheel and pinion 14' to approach one of the levers 58. The return spring 62 is preferably pre-stressed to position the lever 58 and its pin 64 at the bottom of its banana groove 66.
[0074] Approximately one day before the transition period, the first wheel and pinion 8' advances so that the Maltese cross 44 contacts the pin 64, as shown in Figures 17, 17a, and 17b. More specifically, as shown in Figure 17b, the oval shape of the opening 60 in the lever 58 allows the lever 58 to move freely away from the central axis, and the pin 64 is also offset to locate itself at the bottom of the groove in the Maltese cross 44. Furthermore, the Maltese cross 44 is still fixed in its orientation by the outer cam profile 54 and the inner cam profile 56 and cannot rotate about itself. As the Maltese cross 44 continues to advance with the first wheel and pinion 8', the return spring 62 begins to load.
[0075] 18, 18a, and 18b, at the end of the display period and the beginning of the transition period, the phase profile 18' of the second wheel and pinion 14', which corresponds to the full moon, advances so that it is hidden beneath the opening. At the same time, the Maltese cross 44 advances together with the first wheel and pinion 8' so that the return spring 62 and pin 64 are in their fully extended state. The Maltese cross 44 is positioned at the height of the concave sector 56' of the inner cam profile 56, so that it is no longer held by said inner cam profile 56, but is still unable to rotate around itself; it is held by the outer cam profile 54, ready to jump at the edge of its convex sector 54'.
[0076] The Maltese cross 44 is then positioned at the height of the convex sector 54' of the outer cam profile 54, so that it continues to advance with the first wheel and pinion 8' so that it is free to pivot about itself. Under the influence of a sudden release of the load on the spring 62, the pin 64 rises again to its equilibrium position, causing the Maltese cross 44 to rotate about itself by 90° relative to the first wheel and pinion 8', as shown in Figures 19, 19a, and 19b. This rotation of the Maltese cross 44 pivots the drive wheel 42, with which it is integral, and causes relative rotation of the second wheel and pinion 14' in a clockwise direction by a repositioning angle of 20° via its teeth 50.
[0077] During this relative rotation of the second wheel and pinion 14', the next lunar phase profile, corresponding to the Moon between full and last quarter, to the left of the central axis, is completely superimposed on the lunar background portion 12' to reveal the next lunar phase, corresponding to the Moon between full and last quarter, still hidden beneath the viewing aperture, as shown in FIG. 20. On the opposite side of the central axis, another portion of the lunar background 12', out of phase with the lunar phase profile, is hidden beneath and to the right of the viewing aperture. As shown in FIGS. 20a and 20b, the pin 64 and return spring 62 are again in their rest positions, and the Maltese cross 44, which has continued to advance with the first wheel and pinion 8', is once again fixed in its orientation by the outer cam profile 54 and inner cam profile 56. As described above, the mechanism is again ready to display the lunar phase corresponding to the Moon between full and last quarter in the aperture, which will then move from left to right over the next 3.28 days. During the next jump, the Maltese cross 44 cooperates with the opposite lever 58.
[0078] According to another embodiment not shown, the drive may be a differential comprising an input wheel meshing with a first wheel and pinion 8, an output wheel meshing with a second wheel and pinion 14, and a second input arranged to provide an offset between the wheels and pinions 8 and 14 during the transition period.
[0079] Quite obviously, the first wheel and pinion and the second wheel and pinion may have configurations other than those shown in the examples above, allowing for variations in the portion of the lunar background, the lunar phase profile, and the number of lunar phases to be displayed. Furthermore, the mechanism of the present invention may be adapted such that the relative rotation of the second wheel and pinion to offset the second wheel and pinion by the repositioning angle during the transition period proceeds in a counterclockwise direction.
Claims
1. A display mechanism for n moon phases for a timepiece, where n is an integer greater than or equal to 3, comprising a first wheel and pinion (8, 8') having a nighttime background (10, 10') and at least a portion of a lunar background (12, 12'), and a second wheel and pinion (14, 14') superimposed on the first wheel and pinion (8, 8'), the second wheel and pinion (14, 14') having a nighttime background (16, 16') and n moon phase profiles (18, 18'), the first wheel and pinion (8, 8') and the second wheel and pinion (14, 14') pivoting about the same axis, the display mechanism being arranged such that the first wheel and pinion (8, 8') can be driven in rotation at a constant speed, and the second wheel and pinion (14, 14') a second wheel and pinion (14, 14') arranged so that it can be rotationally driven in the same direction and at the same angular velocity as the first wheel and pinion (8, 8') during a lunar phase display period, during which a portion of a lunar background (12, 12') of the first wheel and pinion (8, 8') and a lunar phase profile (18, 18') of the second wheel and pinion (14, 14') corresponding to the lunar phase to be displayed are superimposed to show the lunar phase, and the second wheel and pinion (14, 14') is arranged so that it is offset by a repositioning angle with respect to the first wheel and pinion (8, 8') to enable the next lunar phase to be shown during a transition period between a current display period and a next display period.
2. 2. The display mechanism of claim 1, wherein n is an odd number.
3. 3. A display mechanism according to any one of claims 1 to 2, characterized in that it comprises a dial (2) including a display aperture (6) of a size selected to show the movement of the phases of the moon during at least part of its display period.
4. 4. A display mechanism according to claim 3, characterized in that the display opening (6) is of a size selected to display one or zero phases of the moon within the display opening (6) at any one time.
5. 5. A display mechanism according to any one of claims 3 to 4, characterized in that the display opening (6) is of a size selected so that the remaining area of the dial (2) conceals the offset between the first wheel and pinion (8, 8') and the second wheel and pinion (14, 14') during the transition period.
6. 6. A display mechanism according to any one of claims 1 to 5, characterized in that the first wheel and pinion (8, 8') has x lunar background portions (12, 12'), where x is greater than or equal to 1 and less than n, and the x lunar background portions (12, 12') are regularly distributed on the first wheel and pinion (8, 8').
7. 7. A display mechanism according to any one of claims 1 to 6, characterized in that the first wheel and pinion (8, 8') is drivable by a drive gear train and is arranged to cooperate with a drive device (20), the drive device (20) being arranged to drive the second wheel and pinion (14, 14') synchronously during the lunar phase display period and to drive it in relative rotation for offsetting by the repositioning angle during a transition period.
8. 8. The display mechanism according to claim 7, wherein the lunar phase profiles (18, 18') of the second wheel and pinion (14, 14') are positioned relative to one another according to a selected direction of relative rotation of the second wheel and pinion (14, 14'), so that when the second wheel and pinion (14, 14') are driven in relative rotation by the drive device (20) in the selected direction, a next lunar phase is displayed instead of a current lunar phase.
9. 9. A display mechanism according to claim 7, characterized in that the drive device (20) comprises an energy accumulator, which is arranged to be driven by the first wheel and pinion (8) driven by the drive gear train and which is arranged so that the second wheel and pinion (14) jumps forward under the action of the energy accumulator.
10. The energy accumulator comprises three coaxially superimposed wheels, namely a first wheel (22) arranged to be driven by the first wheel and pinion (8), the first wheel (22) being integral with a cam (24); a second wheel (26) arranged to be driven by the first wheel and pinion (8) at a higher speed than the first wheel (22), the second wheel (26) bearing a pin (28); and a third wheel (30) arranged to drive the second wheel and pinion (14), the third wheel (30) having a groove (32) in which the pin (28) of the second wheel (26) engages and bearing a jumper (34) equipped with a jumper spring (36), the jumper (34) engaging the pin of the second wheel (26).
10. The display mechanism according to claim 9, wherein the pin (28) of the second wheel (26) is arranged to cooperate with the cam (24) of the first wheel (22) to rotate the third wheel (30) unitarily with the first wheel (22) for synchronously driving the first wheel and pinion (8) and the second wheel and pinion (14), while the pin (28) is not abutting the groove (32) of the third wheel (30), and the pin (28) of the second wheel (26) abutting the groove (32) of the third wheel (30) rotates the third wheel (30) unitarily with the second wheel (26) for driving the second wheel and pinion (14) in relative rotation by the repositioning angle, and then stores energy when the pin (28) abuts the groove (32) of the third wheel (30) to store energy when the pin (28) abuts the groove (32) of the third wheel (30) to rotate the third wheel (30) unitarily with the second wheel (26) for driving the second wheel and pinion (14) in relative rotation by the repositioning angle, and then suddenly releases energy to pivot the third wheel (30).
11. 10. The display mechanism according to claim 7, wherein the drive device comprises a drive wheel and pinion (40) attached to the first wheel and pinion (8'), the drive wheel and pinion (40) comprising a drive wheel (42) arranged to cooperate with the second wheel and pinion (14') and a Maltese cross (44), the drive wheel and pinion (40) being arranged non-rotatably relative to the first wheel and pinion (8') driven by the drive gear train for synchronously driving the first wheel and pinion (8') and the second wheel and pinion (14') via the drive wheel (42) during the display period, and being arranged to be rotationally driven relative to the first wheel and pinion (8') for pivoting the drive wheel (42) to rotationally drive the second wheel and pinion (14') by the repositioning angle during the transition period.
12. 12. A display arrangement according to claim 3 or any one of claims 4 to 11 when dependent on claim 3, characterized in that the display opening (6) has a substantially annular shape, the radial edges (6a, 6b) of which form a horizon.
13. 13. A display mechanism according to claim 12, characterized in that the first wheel and pinion (8, 8') and the second wheel and pinion (14, 14') are rotatable in a clockwise direction to represent the movement of the moon's phases between rising and setting above the horizon.
14. 14. A display arrangement according to any one of claims 12 to 13, characterized in that at least one of the radial edges (6a, 6b) of the display opening (6) has a shape selected to represent the outline of a mountain, a monument or a city.
15. 15. An indicator mechanism according to any one of claims 1 to 14, characterized in that the lunar phase profile (18, 18') of the second wheel and pinion (14, 14') has a profile defined by a light-dark boundary (18a) corresponding to the lunar phase and an arc (18b) of the outer edge of the moon.
16. 16. A display arrangement according to claim 15, characterized in that the edge of the lunar phase profile (18, 18') corresponding to the light-dark boundary (18a) is provided with relief features showing lunar details.
17. 17. A display mechanism according to claim 7 or any one of claims 8 to 16 when dependent on claim 7, characterized in that the first wheel and pinion (8, 8') comprises two symmetrically opposed lunar background portions (12, 12') and is arranged to be driven by the drive gear train at a speed of n half revolutions per lunar synovia, the drive being arranged to drive the second wheel and pinion (14, 14') synchronously during the lunar phase display period and to drive in relative rotation the second wheel and pinion (14, 14') during transition periods to offset them by the repositioning angle.
18. n is equal to 9, wherein the first wheel and pinion (8, 8') comprises two symmetrically opposed lunar background portions (12, 12') and is arranged to be driven by the drive gear train in a clockwise direction at a rate of 9 half revolutions per lunar syzygy, and the second wheel and pinion (14, 14') is arranged to be offset in the clockwise direction by a repositioning angle of 20° during the transition period between one lunar phase display period and the next lunar phase display period.
18. A display mechanism according to claim 17, dependent on claim 3, characterized in that the lunar phase display period is approximately 3.28 days, the display opening (6) extends over an angle of approximately 140°, and the lunar phase profiles (18, 18') are arranged on the second wheel and pinion (14, 14') in the following order in a clockwise direction: first crescent moon, waning quarter moon, moon between full moon and waning quarter moon, moon between first quarter moon and full moon, first quarter moon, last crescent moon, waning half moon, full moon, first quarter moon.
19. A timepiece comprising a display mechanism according to any one of claims 1 to 18.
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