Operating mechanism for a watch movement, in particular a chronograph mechanism equipped with such an operating mechanism
The actuation mechanism with adjustable spring forces and clear feedback addresses the lack of ergonomic comfort and user feedback in chronograph mechanisms, ensuring precise and reliable flyback operation.
Patent Information
- Application Number
- JP2022031066
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-18
- Filing Date
- 2022-03-01
- Publication Date
- 2025-12-22
- Estimated Expiration
- 2042-03-01
AI Technical Summary
Existing chronograph mechanisms lack an 'all-or-nothing' operating mechanism suitable for implementing a flyback function, providing user feedback, and ensuring ergonomic comfort during operation.
An actuation mechanism with a control lever having elastically deformable and rigid portions, and a jumper to return the control member, offering adjustable spring forces for smooth operation and clear feedback.
The mechanism provides ergonomic comfort and precise, reliable operation with clear user feedback, enabling a flyback function in chronograph mechanisms.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an "all or nothing" operating mechanism for a watch movement, which operates in such a way that: an actuating lever intended to be mounted on a frame part of the timepiece movement so as to be movable between an inoperative position and an operative position in order to actuate the timepiece functions; a control lever intended to move between an initial position and an actuated position in response to pressure applied by a user so as to move said actuating lever from said inactivated position to said activated position; a resilient return member arranged to return the control lever to the initial position in response to the control lever being released by the user; and a control member that is pivotable between a first inactive state in which the actuating lever is locked in the inactive position and a second state in which the actuating lever is released so that it can move to the actuated position under the action of the control lever. In the actuation mechanism, the control lever is arranged to act on the control member to move the control member from the first state to the second state in response to pressure applied by the user.
[0002] According to a preferred embodiment, the present invention relates to a chronograph mechanism with flyback function including such an operating mechanism.
[0003] The invention also relates to a clock movement equipped with such a mechanism, and to a clock equipped with such a clock movement. [Background technology]
[0004] Timepiece mechanisms of this kind are already known in the prior art, particularly in connection with chronograph mechanisms.
[0005] For example, Non-Patent Document 1 illustrates and describes a chronograph mechanism equipped with a zero reset device having the above-mentioned features. More specifically, the chronograph mechanism includes a first control lever intended to be pressed by a user to pivot a column wheel. The column of the column wheel controls the positions of multiple levers. More specifically, the coupling lever is controlled by the column wheel to alternate between a non-coupling position in which no time measurement is taking place and a coupling position in which the chronograph counter rotates. The column wheel also controls the position of a zero reset hammer. When time measurement begins, the column wheel raises the zero reset hammer until a pin fixed to the zero reset hammer engages with a notch in the pivot control member. The mechanism includes a second zero reset control lever intended to release the zero reset hammer in response to pressure applied by the user. When the second control lever is pressed, it acts on the control member, pivoting it to its end of travel, at which point a notch in the control member reaches a certain position. In this position, the notch in the control member suddenly releases the pin of the zero-reset hammer, which can then fall onto the zero-reset cam under the action of a specific spring. It should be noted that in such a mechanism, the column wheel can occupy three consecutive angular orientations, corresponding to the start, stop, and reset states of the chronograph mechanism. In the start state, the column that raised the zero-reset hammer remains in that position, so the zero-reset cannot be activated while timing is taking place. To pivot the column wheel to the stop state, the first control lever must be pressed. In the stop state, this column releases the zero-reset hammer, which could then fall onto the zero-reset cam if the hammer were not held in the raised position by cooperation between the pin and the control member. Therefore, such a structure is not suitable for implementing a flyback function—i.e., activation of the zero-reset hammer during timing.It should also be noted that the spring that returns the control member to its inactive position when the second control lever is released by the user is generally strong enough to lock the zero reset hammer in its raised position, so the amount of effort the user has to put into the second control lever to implement the zero reset and the chronograph counter is relatively high and, in fact, uncomfortable.
[0006] Furthermore, Non-Patent Document 1 describes a chronograph mechanism structure with a flyback function. In this example, a zero-reset control lever acts to pivot a zero-reset hammer via a lever. This mechanism has the advantage of being simple, but it cannot realize an "all-or-nothing" solution and does not provide feedback to the user when they operate the zero-reset control lever. [Prior art documents] [Non-patent literature]
[0007] [Non-Patent Document 1] https: / / www.horlogerie-suisse.com / technique / les-complications / chronographe-a-2-poussoirs Summary of the Invention [Problem to be solved by the invention]
[0008] The main object of the present invention is to propose an "all-or-nothing" operating mechanism intended to operate the mechanism of a timepiece movement, suitable for implementing a flyback function, in particular in relation to a chronograph mechanism, and for providing a good user experience, in particular by providing feedback to the user when he operates the mechanism of the timepiece movement of his timepiece. [Means for solving the problem]
[0009] To this end, the present invention more particularly relates to an "all or nothing" actuation mechanism as shown above, which actuation mechanism comprises: the control lever having an elastically deformable portion arranged to act on the actuating lever in response to pressure applied by the user, tending to move the actuating lever towards its actuated position, and a rigid portion arranged to act on the actuating lever in response to release of the control lever, tending to move the actuating lever towards its non-actuated position; and the actuation mechanism including a jumper arranged to return the control member to the first condition in response to the control lever being released. It is characterized by:
[0010] As a result of these features, the structure of the mechanism according to the invention offers considerable design freedom, particularly in terms of choosing the layout of the various components involved relative to one another. Furthermore, when applying pressure to the control lever to activate it, the user must simultaneously apply a force that overcomes the actions of three springs: the spring of the control lever, the spring of the deformable part of the control lever intended to act on the actuating lever, and the spring of the jumper of the control member. The elastic properties of these three springs can be adjusted with considerable freedom and, in particular, can be selected so that the force exerted on each spring is substantially linear over the entire travel of the control lever. Thus, the user experiences increasing, smooth resistance when operating the control lever. This is particularly advantageous in terms of comfort of use and gives the mechanism according to the invention an impression of high quality. Naturally, one or more additional springs may be included in some cases, depending on the nature of the timepiece function to be controlled.
[0011] Advantageously, the rigid portion of the control lever may be provided with a retractable pawl intended to cooperate with the control member.
[0012] The control member further comprises: a disk carrying N teeth intended to cooperate with said control lever to switch from said first state to said second state and with said jumper to switch from said second state to said first state; N columns intended to cooperate with said actuating levers; may advantageously include
[0013] Thus, apart from the fact that it can be mounted on a frame member in a very flexible manner taking into account the shape and dimensions of the other components of the mechanism, the column wheel offers very reliable operating precision.
[0014] According to a preferred embodiment, the present invention relates to a chronograph mechanism with flyback function for a timepiece movement, said chronograph mechanism comprising: at least one chronograph counter; a transmission member capable of having a first coupling position in which a kinematic link between the drive wheel of the timepiece movement and the chronograph counter is active, and a second non-coupling position in which the kinematic link is broken; a brake movable between a first position acting on the chronograph counter to lock the chronograph counter and a second position allowing the chronograph counter to rotate freely; a control unit operable by a user to alternately occupy a first state corresponding to time measurement and a second state corresponding to stopping the chronograph mechanism, the control unit being arranged to cooperate with the transmission member and the brake to define these positions; A zero reset device; and the above-mentioned actuating lever which, in relation to the chronograph counter, performs the function of the zero reset hammer of the zero reset device, and which cooperates to move away from the chronograph counter in an inactive position and to place the chronograph counter in a predetermined configuration in an active position. The control member is operable to act on the transmission member and the brake to move the transmission member and the brake to the second position in response to pressure applied to the control lever by the user.
[0015] The advantages of the operating mechanism according to the invention are therefore applied to the implementation of a flyback function in connection with a chronograph mechanism, offering good ergonomics and a high level of user comfort.
[0016] Preferably in this case: the chronograph mechanism may include a lever arranged to cooperate with the control member to occupy first and second orientations associated with the first and second states of the control member, respectively; and The lever also switches from the first orientation to the second orientation. The transmission member is switchable from a first position to a second position of the transmission member; and The brake may be arranged to be switchable from its first position to its second position.
[0017] In this case, the chronograph mechanism may advantageously include a connecting lever carrying the transmission member and having an elastically deformable portion that can be stressed to switch the transmission member into its second position in response to pressure applied to the control lever by the user.
[0018] In general, the following may be advantageous: The chronograph mechanism is provided with a minute counter coaxial with the chronograph counter and an additional zero reset hammer movable between an inoperative position spaced apart from the minute counter and a zero reset position cooperating with the minute counter to set the minute counter to a predetermined setting. The additional zero reset hammer is fixed to the actuating lever and has the same axis of rotation as the actuating lever.
[0019] The present invention generally relates to a timepiece movement including a movement and / or a chronograph mechanism having the above-mentioned characteristics, said chronograph mechanism being integrated directly into the timepiece movement or combined with an existing timepiece calibre in the form of an add-on module to define a timepiece movement according to the invention, and to a timepiece including such a timepiece movement. [Brief explanation of the drawings]
[0020] Other features and advantages of the present invention will be more clearly understood from a reading of the following detailed description of preferred embodiments, made with reference to the accompanying drawings, given by way of non-limiting example only, in which: [Figure 1] 1 shows a partial front view of a chronograph mechanism with an operating mechanism according to a preferred embodiment of the present invention; [Figure 2] 1a-f show the same detailed front view of the actuation mechanism shown in FIG. 1 in six successive operating states. [Figure 3] 1a-h show pairs of front and opposite faces of an actuation mechanism according to an alternative embodiment of the invention in four successive operating states. DETAILED DESCRIPTION OF THE INVENTION
[0021] The purpose of the following detailed description is to describe a chronograph mechanism with flyback function consisting of an "all-or-nothing" operating mechanism according to a preferred embodiment of the present invention, provided as an illustrative and non-limiting example. More specifically, according to the embodiment shown and described, the chronograph mechanism may be intended to be integrated into a timepiece movement or may be combined with an existing timepiece caliber in the form of an add-on module.
[0022] It should be noted that a person skilled in the art can implement the operating mechanism according to the invention in connection with other types of timepiece mechanisms without departing from the context of the invention as defined in the following claims. Thus, for example, it may be possible to associate the operating mechanism according to the invention with a striking mechanism. In this case, the operating mechanism would be used to load a spring that drives a striking mechanism and to activate the striking mechanism only when the spring is sufficiently loaded.
[0023] FIG. 1 shows a partial front view of a chronograph mechanism 1 with a flyback function according to a preferred embodiment of the present invention.
[0024] In general, the chronograph mechanism 1 may have different known structures, such as a shuttle or column wheel type, without particularly affecting the operation of the actuation mechanism according to the invention, and therefore will not be described in full detail.
[0025] The chronograph mechanism 1 in this case has, by way of illustrative and non-limiting example, two coaxially arranged counters: a minute counter 2 and a second counter 4. Each of the counters 2, 4 is constituted by a shaft 6, 8 (the minute shaft 6 is hollow to define a passage for the second shaft 8) and a wheel including a disk 10, 12 and a zero-reset cam 14, 16 fixed to the corresponding shaft. Each disk 10, 12 is provided with teeth to drive the corresponding counter. Each shaft 6, 8 is adapted to carry a display member for displaying minutes and seconds, respectively.
[0026] Conventionally, the chronograph mechanism 1 comprises a first START / STOP control lever 100 for starting and stopping the driving of the counters 2, 4, via at least one coupling 102, in order to measure or stop the measurement of time.
[0027] The chronograph mechanism 1 also typically has a brake 104 arranged on the frame part so that it can pivot between two positions: a first, inactive START position located at a distance from the counter 4, and a second STOP position acting on the disk 12 to lock the counter 4 and make it possible to read the measured time. A jumper 108 is typically able to lock the minute counter. The chronograph mechanism 1 therefore includes a conventional device, in this case a column wheel 110 also cooperating with the linkage 102, arranged to act on the brake 104 and control its position depending on the current state (START / STOP) of the chronograph mechanism.
[0028] Furthermore, the chronograph mechanism 1 according to the invention also comprises a second zero-reset control lever 22. The second control lever 22 is fixed at its first end to an actuating face 23 which is intended to receive pressure exerted by a user on the zero-reset pushbutton of the corresponding timepiece so as to pivot in a counterclockwise direction about a rotation axis 24 in the view shown in Figure 1 .
[0029] At its other end, the second control lever 22 carries a retractable pawl 26 intended to cooperate with a notch 28 of the control member 30, in this case in the form of an additional column wheel, by way of illustrative and non-limiting example, comprising as many columns 32 as the notches 28 form teeth (in this case N=6).
[0030] An additional column wheel pivots on the frame part (not shown) of the chronograph mechanism 1, or of the corresponding watch movement, and allows control of the state of the various members involved in resetting counters 2 and 4 to zero, as will be explained below.
[0031] The second control lever 22 includes a central rigid main portion 34 from which extend two resilient portions 36, 38. One of the resilient portions 36, in conjunction with a fixing stud 40, defines a resilient return spring for returning the control lever 22 towards its inoperative position, while the other resilient portion 38 is capable of acting on a pin 42 fixed to a zero reset hammer 44 to pivot the second control lever 22 in a clockwise direction in the view shown in the figures, as disclosed below.
[0032] It should be noted that the zero reset hammers 44 are not visible in the front view in this example, but are fixed to one another, with one of the zero reset hammers 44 positioned above the other, each of which is associated with one of the zero reset cams 14, 16.
[0033] The travel of the second control lever 22 is set so that its pawl 26 acts to rotate the additional column wheel counterclockwise a little less than one full pitch. As shown in Figure 1, a jumper 46 is disposed on the frame to cooperate with the recessed and raised portion 28 of the additional column wheel to complete the current pitch and maintain the additional column wheel in its stable, inoperative position after the action of the pawl 26 has ended.
[0034] 1 also shows that the mechanism according to the invention advantageously comprises a lever 18 pivoting about an axis of rotation 20. The lever 18 is arranged to cooperate with a column 32 of an additional column-wheel, which carries a beak 48 that makes it possible to control the angular orientation of the lever 18 between an inactive position, in which the chronograph brake 104 is left free to move, depending on the START or STOP state of the mechanism, and a zero reset position, in which the chronograph brake 104 acts on the chronograph brake 104, moving it away from the counter 4, as required. The cooperation of the beak 48 with the additional column wheel facilitates ensuring that the brake 104 is moved away from the counter 4 during the zero reset operation, whether the chronograph mechanism 1 is in START mode (when the brake is already away from the counter) or in STOP mode (when the brake is in contact with the counter).
[0035] An elastic return member 112 acting on the lever 18 is provided to bias it in a counterclockwise rotational direction in the view shown in the figure, i.e. to move it towards the additional column wheel. The elastic return member 112 is here made integral with an additional lever 106 provided to play a role when the minute counter 2 is reset to zero. In fact, a suitable rotation of the levers 18 and 106 leads in particular to the lifting of an actuating beak which engages with the minute counter 2 during the zero reset operation and which actuating beak is otherwise responsible for driving the minute counter 2 as a function of the movement of the second counter 4 during the time measurement operation.
[0036] Furthermore, the operating mode of the lever 18 can be used to act on a kinematic link connecting the chronograph counter 4 to the drive wheel of the timepiece movement during a zero-resetting operation. In fact, the link generally involves a transmission element carried by a coupling lever that can move between two positions, a coupled position and a non-coupled position, and such a kinematic link can be established or broken depending on the START or STOP operating mode of the chronograph mechanism. However, in START mode, it is necessary to release this kinematic link, especially to be able to reset the seconds counter 4 to zero. Therefore, the lever 18 can also be arranged to move the transmission element away from the chronograph counter 4 when the chronograph brake 104 moves away from the chronograph counter 4, in order to reset the chronograph counter 4 to zero. For this purpose, the transmission element 114 can be novelly connected to the coupling lever 116, in particular via an elastically deformable connecting element 118, which is therefore deformed under the influence of the lever 18. Thanks to this structure, the transmission member 114 can be moved away from the disc 12 of the second counter 4 by deformation of the connecting member 118, even when the chronograph mechanism is in its START function mode. Therefore, there is no need to change the orientation of the connecting lever 116 during the zero reset operation.
[0037] It can also be seen in FIG. 1 that the zero reset hammer 44 is fixed to a beak 50 which is arranged to cooperate with the column 32 of the additional column wheel to control the angular orientation of the zero reset hammer 44 between a neutral or inoperative position as shown in FIG. 1 and an operative position (as shown in FIG. 2e).
[0038] The operation of the zero reset mechanism will now be explained in detail in relation to Figures 2A to 2f, which show its different successive steps.
[0039] FIG. 2a shows the configuration of the operating mechanism according to the invention when the chronograph mechanism 1 is in one of its function modes, START or STOP.
[0040] In this situation, the zero reset control lever 22 is not in contact with the additional column wheel, and the angular orientation of the additional column wheel remains fixed by the jumper 46.
[0041] Generally, the lever 18 is arranged to allow the decoupling or separation of the chronograph counters. The lever 18 always cooperates with the additional lever 106, which is prestressed under the effect of the action of the elastic return member 112. When the lever 18 is actuated, it cooperates with the additional lever 106 to separate the minute counter 2 and allows it to be reset to zero, provided that it is only acted upon by the jumper 108.
[0042] When the chronograph mechanism is in its start function mode, the column wheel 110 moves the brake 104 away from the seconds counter 4, so that the lever 18 does not cooperate with the brake 104 when the brake 104 is activated. However, in this case the lever 18 acts on the transmission member 114, moving it away from the seconds counter 4. When the chronograph mechanism is in its stop function mode, the column wheel 110 acts on the coupling 102, moving the transmission member 114 away from the seconds counter 4. In this case, when the lever 18 is activated, it does not cooperate with the transmission member 114, but cooperates with the brake 104 to move it away from the seconds counter 4.
[0043] Returning to FIG. 2a, the beak 48 of the lever 18 is located in a recess between the two columns 32 of the additional column wheel.
[0044] The beak 50 of the zero reset hammer 44 is kept outside the outer periphery defined by the column 32 of the additional column-wheel by the control lever 22. This keeps the zero reset hammer at a distance from the zero reset cams 14, 16.
[0045] When the user begins to apply pressure to the zero reset control lever 22 (via a push button, not shown), the zero reset control lever 22 begins to pivot in a counterclockwise rotational direction in the view shown in the figure, as shown in Figure 2b.
[0046] When the control lever 22 pivots, the pawl 26 contacts the notch 28 of the additional column wheel. At the same time, the elastic portions 36 and 38 of the control lever 22 begin to generate tension and store mechanical energy. The elastic portion 36 rests on a fixed rivet 40, and the elastic portion 38 rests on a pin 42 fixed to a zero reset hammer 44, and the control lever 22 is held fixed in its inoperative position as a result of the beak 50 resting on the column 32 of the additional column wheel.
[0047] After the control lever 22 has completed a certain amount of movement, the additional column-wheel also begins to rotate, as shown in FIG. 2c.
[0048] At this point, the column 32 still supported by the beak 50 of the zero reset hammer 44 simply moves, locking the zero reset hammer 44 in its inoperative position, while another column 32 moves toward the beak 48 of the lever 18.
[0049] As the control lever 22 pivots further, the lever 18 is lifted under the action of the column 32 which has moved towards its beak 48, as shown in FIG. 2d.
[0050] The beak 50 of the zero reset hammer 44 still bears against the same column 32, but is about to be positioned facing the recess between this column and the next. Meanwhile, the elastic portions 36 and 38 of the control lever 22 have essentially stored a maximum amount of mechanical energy by being deformed, and the control lever 22 is essentially at the end of its travel.
[0051] A slight further pivoting of the control lever 22 releases the beaks 50 of the zero reset hammers 44, as shown in Figure 2e, as the column 32 that locked them has moved completely away from the beaks 50. At the same time, the pawls 26 have been released from the notches 28 of the additional column wheel.
[0052] The fully loaded elastic portion 38 can then release its mechanical energy, causing the zero reset hammer 44 to pivot clockwise in the view shown in FIG. 2e until it abuts against the zero reset cams 14, 16, so that it can rotate in the conventional manner to a predetermined angular orientation associated with the display members indicating the seconds and minutes of the time being positioned at zero.
[0053] At the same time, the column 32 acting on the lever 18 is moving away from the beak 48 while continuing to act on the beak 48 .
[0054] In this configuration, the additional column-wheel is in an unstable orientation, its jumper 46 being under tension and bearing against a single tooth of the notch 28. At the same time, due to the positioning of the zero reset hammer 44, no further rotation of the additional column-wheel is possible in the counterclockwise direction in the view shown in FIG. 2e, and its beak 50 defines an abutment for the next column 32.
[0055] As long as the user continues to apply pressure to the control lever 22, the actuation mechanism will remain in the state shown in FIG. 2e and the time measurement will be interrupted with the display member displaying the measured time at zero.
[0056] When the user releases the control lever 22, it returns to its inactivated position, as shown in Figure 2f, by virtue of the action of its resilient portion 36 on the stud 40.
[0057] By rotating in a clockwise direction, the control lever 22 contacts with its rigid central part 34 the pin 42 of the zero reset hammer 44, while the elastic part 38 can release its tension. The elastic part 36 has elastic properties such that its action on the control lever 22, which is intended to be rotated in a clockwise direction in the view shown in Figure 2f, lifts the zero reset hammer 44 to return it to its inoperative position.
[0058] Upon further clockwise rotation in the configuration shown in Figure 2f, the control lever 22 acts on the zero reset hammer 44 to such an extent that its beak 50 is released from the recess between the two columns 32 in which it was located, thus releasing the additional column wheel, which can then complete the pitch it started under the effect of the action of the pawl 26 and take up a new stable position under the effect of the driving action of its jumper 46, as shown in Figure 2a.
[0059] By rotating further, the additional column wheel also releases the beak 48 of the lever 18, which falls into the recess between the two columns 32. The chronograph mechanism therefore switches to its configuration defined by the orientation of the column wheel 110, which means that the brake 104 retracts relative to the disc 12 of the seconds counter 4 if the chronograph mechanism is in its STOP function mode, or that the transmission member 114 retracts relative to the disc 12 if the chronograph mechanism is in its START function mode.
[0060] Additionally, to switch from the configuration shown in Figure 2f to the configuration shown in Figure 2a, the pawl 26 of the control lever 22 is retracted.
[0061] Thus, when the user releases the control lever 22, the operating mechanism according to the invention switches back from the configuration shown in Figure 2f to the configuration shown in Figure 2a, and if the zero reset operation was a flyback zero reset operation, in other words if the chronograph mechanism was in its START function mode, the time measurement restarts from 0. Otherwise, if the chronograph mechanism was in its STOP function mode, all chronograph counters remain in their zero position.
[0062] It should be noted that if the user releases the control lever lever 22 before the zero reset hammer 44 falls against the zero reset cams 14, 16, the tension in the two elastic parts 36, 38 of the control lever lever 22 is released, allowing the additional column wheel to rotate in a clockwise rotational direction and return to its stable inoperative position under the action of its jumper 46.
[0063] 3a-3h show pairs of front views of a first side and an opposite side, respectively, of an actuation mechanism according to an alternative embodiment of the present invention, at four successive stages of actuation.
[0064] More specifically, the actuation mechanism is similar to that disclosed in connection with Figures 2a-2f, with its components only modified to a minor extent with reference to the above description, and therefore, for ease of understanding, the same numerical references are used in Figures 3a-3h to identify the components described above.
[0065] Figures 3a and 3b show the configuration of the operating mechanism when the chronograph mechanism 1 is in either of its functioning modes START or STOP.
[0066] In this situation, the zero reset control lever 22 is not in contact with the additional column wheel and its angular orientation is kept fixed by its jumper 46.
[0067] The beak 48 of the lever 18 is located in a recess between the two columns 32 of the additional column-wheel.
[0068] The beak 50 of the zero reset hammer 44 is kept outside the outer periphery defined by the column 32 of the additional column-wheel by the control lever 22, so that the zero reset hammer is kept at a distance from the zero reset cams 14, 16.
[0069] When the user begins to apply pressure to the zero reset control lever 22, the control lever 22 begins to pivot in a counterclockwise rotational direction in the view shown in Figure 3a, as shown in Figures 3c and 3d.
[0070] When the control lever 22 pivots, the pawl 26 contacts the notch 28 of the additional column wheel. At the same time, the elastic portions 36 and 38 of the control lever 22 begin to generate tension and store mechanical energy. The elastic portion 36 bears against the fixing stud 40, and the elastic portion 38 bears against the pin 42 fixed to the zero reset hammer 44, and the control lever 22 remains fixed in its inoperative position as a result of the beak 50 bearing against the column 32 of the additional column wheel.
[0071] By pivoting, the control lever 22 rotates an additional column-wheel on the control lever 22. This can be seen in particular in Figure 3c, which shows the movement made by the column 32 on which the beak 50 of the zero reset hammer 44 rests from the inoperative configuration shown in Figure 3a.
[0072] At the same time, the new column 32 of the additional column wheel is positioned behind the beak 48 of the lever 18 .
[0073] In the view shown in FIG. 3d it can be seen in more detail that the teeth of the recess 28 of the additional column wheel have pushed the jumper 46 back to its maximum load position, the configuration shown representing the moment prior to the tipping point, beyond which the jumper 46 can move again towards the additional column wheel, releasing the mechanical energy stored during the initial phase.
[0074] Therefore, from the configuration shown in Figures 3c and 3d, it can be seen that any additional rotation of the additional column-wheel will enable the jumper 46 to apply a driving force to its recessed portion 28, as shown in Figures 3e and 3f.
[0075] In fact, these figures show a configuration in which the control lever 22 continues to rotate slightly, passing the tipping point, and then the driving action of the jumper 46 drives the additional column wheel just enough to prevent it from reaching the pawl 26 of the control lever 22.
[0076] In the view shown in Figure 3e, it can be seen that the force applied by jumper 46 to recessed portion 28 allows beak 48 of lever 18 to be lifted, while zero reset hammer 44 is still held in its raised or neutral position by its beak 50 resting on column 32.
[0077] In the view shown in Figure 3f, it can be seen that in this configuration, jumper 46 still acts on notch 28 to continue rotating the additional column wheel until the orientation shown in Figures 3g and 3h is reached.
[0078] The final rotational movement of the additional column wheel, under the influence of the driving action of its jumper 46, allows the lever 18 to be positioned to separate all chronograph counters by lifting either the brake 104 or the transmission member 114 depending on the START or STOP function mode of the chronograph mechanism, and allows the beak 50 of the zero reset hammer 44 to fall between the two columns 32 under the influence of the energy stored by the release of the elastic part 38 of the control lever 22.
[0079] In this configuration, the jumper 46 has not yet released all of its stored energy, but the additional column-wheel cannot rotate any further because the beak 50 is positioned in the path of that one column 32.
[0080] When the control lever 22 is released, under the effect of the release of the energy stored by its elastic part 36, it can pivot clockwise in the view shown in Figure 3g towards its inactive position and act to bring the zero reset hammer 44 towards its raised position, as already described in relation to the first embodiment, whereupon the beak 50 is removed from its lowered position, releasing the additional column-wheel, which can then return to its initial state under the effect of the residual driving action of its jumper 46, as shown in Figure 3h.
[0081] The actuation mechanism then returns to its initial configuration as shown in Figures 3a and 3b.
[0082] 2a to 2f, the driving force making it possible to raise the lever 18 is no longer provided directly by the user via the control lever 22, but now comes from the jumper 46 (previously loaded by the user via the control lever 22). This means that, while in the case of the first embodiment the user acts simultaneously on four springs - namely the two elastic parts 36, 38 of the control lever 22, the jumper 46 and the elastic return member 112 of the lever 18 - in the context of the second embodiment shown in Figures 3a to 3h the user only acts on three springs, and part of the energy provided to the jumper 46 is later used indirectly to counteract the action of the elastic return member 112 of the lever 18.
[0083] It should also be noted that, in the context of the second embodiment shown in Figures 3a to 3h, the edges of the beak 50 are slightly rounded. Indeed, advantageously, the corresponding rounded edges of the lever 18 and the slope of the beak 48 are designed to give the lever 18, and consequently the brake 104 or transmission member 114, a "pull" and no longer instantaneous quality when the user releases the zero reset pushbutton, as was the case in the first embodiment of Figures 2a to 2f. Thus, the risk of the chronograph seconds hand jumping when restarting the chronograph after a flyback zero reset can be reduced or indeed eliminated.
[0084] The features just disclosed result in an "all-or-nothing" actuation mechanism that has a flexible structure and provides precise and reliable operation. As already indicated above, the sensation felt by the user when actuating this mechanism is comfortable, since the different springs involved (the two elastic portions 36, 38 and the jumper 46, and in particular the elastic return member 112) can be manufactured to offer a substantially linear resistance throughout the entire travel of the control lever 22. Furthermore, the user can very clearly feel the moment when the zero reset hammer 44 is released, ensuring excellent feedback.
[0085] As indicated above, the "all-or-nothing" operating mechanism according to the preferred embodiment of the present invention shown and described comprises a control lever acting on the column wheel and zero-reset hammer of the chronograph mechanism, but other embodiments can be considered without departing from the context of the present invention defined by the following claims, and a person skilled in the art can design the control lever to act on a control member of a different nature than the column wheel and on an operating lever other than one or more zero-reset hammers. As a non-limiting example, an operating mechanism according to the present invention may be integrated into the striking mechanism of a timepiece movement, the control lever then being arranged to activate the striking mechanism in response to pressure applied by the user, which loads the striking mechanism spring and allows the control lever to move to the end of its travel.
[0086] In general, the implementation of the present invention is not limited to the precise geometrical configuration of the different components of the mechanism as shown and described. Indeed, those skilled in the art will have no particular difficulty in adapting the teachings of the present invention to the implementation of an operating mechanism having the features of the present invention, whose components may have shapes and layouts different from those described and shown. Thus, for example, a single chronograph counter or two non-axial chronograph counters could be provided, and the elastic portions 36, 38 could be replaced by springs separate from the control lever 22. It is also possible to provide for the hammer's fall to drive the transmission member 114 and the brake 104, as in conventional chronograph mechanisms, but in this case the angular travel of the hammer would need to be increased to allow the mechanism to be decoupled before the zero reset cam is activated.
Claims
1. An "all-or-nothing" operating mechanism for a clock movement, comprising: an actuating lever intended to be mounted on a frame part of the timepiece movement so as to be movable between an inoperative position and an operative position in order to actuate the timepiece functions; a control lever intended to move between an initial position and an actuated position in response to pressure applied by a user so as to move said actuating lever from said inactivated position to said activated position; a resilient return member arranged to return the control lever to the initial position in response to the control lever being released by the user; a control member pivotable between a first inactive state in which the actuating lever is locked in the inactive position and a second state in which the actuating lever is released so that it can move to the actuated position under the action of the control lever; the control lever is arranged to act on the control member to move the control member from the first state to the second state in response to pressure applied by the user; the control lever having an elastically deformable portion arranged to act on the actuating lever in response to pressure applied by the user, tending to move the actuating lever towards its actuated position, and a rigid portion arranged to act on the actuating lever in response to release of the control lever, tending to move the actuating lever towards its non-actuated position; and the actuation mechanism including a jumper arranged to return the control member to the first condition in response to the control lever being released. An actuation mechanism characterized by:
2. 2. An actuation mechanism according to claim 1, characterized in that the rigid part of the control lever carries a retractable pawl intended to cooperate with the control member.
3. 3. An actuation mechanism according to claim 1 or 2, wherein the control member comprises: a disk carrying N teeth intended to cooperate with said control lever to switch from said first state to said second state and with said jumper to switch from said second state to said first state; N columns intended to cooperate with said actuating levers; A column wheel comprising: An actuation mechanism characterized by:
4. A chronograph mechanism with a flyback function for a timepiece movement, comprising: at least one chronograph counter; a transmission member capable of having a first coupling position in which a kinematic link between the drive wheel of the timepiece movement and the chronograph counter is active, and a second non-coupling position in which the kinematic link is broken; a brake movable between a first position acting on the chronograph counter to lock the chronograph counter and a second position allowing the chronograph counter to rotate freely; a control unit operable by a user to alternately occupy a first state corresponding to time measurement and a second state corresponding to stopping the chronograph mechanism, the control unit being arranged to cooperate with the transmission member and the brake to define these positions; A zero reset device; an operating mechanism according to any one of claims 1 to 3, which, in relation to the chronograph counter, performs the function of a zero-resetting hammer of the zero-resetting device, and which cooperates to move away from the chronograph counter in the inactive position and to place the chronograph counter in a predetermined configuration in the active position; the control member is capable of acting on the transmission member and the brake to move the transmission member and the brake to the second position in response to pressure applied to the control lever by the user. A chronograph mechanism characterized by:
5. 5. A chronograph mechanism according to claim 4, the chronograph mechanism includes a lever arranged to cooperate with the control member to occupy first and second orientations associated with the first and second states of the control member, respectively; and The lever also switches from the first orientation to the second orientation. The transmission member is switchable from a first position to a second position of the transmission member; and arranged to switch the brake from its first position to its second position; Chronograph mechanism.
6. 6. A chronograph mechanism according to claim 4 or 5, a connecting lever carrying the transmission member and having an elastically deformable portion that can be stressed to switch the transmission member to its second position in response to pressure applied to the control lever by the user.
7. A chronograph mechanism according to any one of claims 4 to 6, a minute counter coaxial with said chronograph counter, and an additional zero reset hammer movable between an inoperative position spaced apart from said minute counter and a zero reset position cooperating with said minute counter to set said minute counter to a predetermined setting; the additional zero reset hammer is fixed to the actuating lever and has the same axis of rotation as the actuating lever; A chronograph mechanism characterized by:
8. A timepiece movement comprising an operating mechanism according to any one of claims 1 to 3.
9. A timepiece movement comprising the chronograph mechanism according to any one of claims 4 to 7.
10. A timepiece comprising a timepiece movement according to claim 8 or 9.
Citation Information
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