FIELD OF THE INVENTION
[0001] The invention relates to mechanisms for timepieces and to timepieces having such
mechanisms.
BACKGROUND OF THE INVENTION
[0002] Document
US8303167B2 discloses a mechanism for a timepiece, comprising a regulator mechanism having a
periodical movement, two rotary escapement wheels, a blocking mechanism cooperating
with the escapement wheels, said distributor mechanism being controlled by the regulator
mechanism to regularly and alternatively hold and release the escapement wheels so
that said escapement wheels rotate step by step, and an bistable elastic member configured
to be cyclically deformed in a predetermined way to store energy, and to release this
energy to the regulator mechanism by elastic return.
[0003] This mechanism is very complex, hence costly, and includes a large number of parts
moving with frictional losses, which limits the energetic efficiency of the system.
OBJECTS AND SUMMARY OF THE INVENTION
[0004] One objective of the present invention is to at least mitigate these drawbacks.
[0005] To this end, according the invention proposes a mechanism for a timepiece, comprising:
- a regulator mechanism adapted to oscillate with a periodical movement;
- an energy distribution member having teeth;
- a blocking mechanism cooperating with the energy distribution member, said blocking
mechanism being controlled by the regulator mechanism to regularly and alternatively
hold and release the energy distribution member, so that said energy distribution
member may move step by step according to a repetitive movement cycle;
- a monostable elastic member linked to the regulator mechanism and adapted to bear
on the teeth of the energy distribution member, said monostable elastic member normally
having a first geometrical configuration, said monostable elastic member being arranged
such that during each movement cycle of the energy distribution member:
- one tooth of said energy distribution member elastically deforms said monostable elastic
member from said first geometrical configuration;
- and then said monostable elastic member elastically returns to the first geometrical
configuration, thereby releasing mechanical energy to the regulator mechanism.
[0006] Thanks to these dispositions, the mechanism is simpler in structure and way of operating,
thus less costly, more reliable and better in terms of energetic efficiency.
[0007] In various embodiments of the mechanism according to the invention, one may possibly
have recourse in addition to one and/or other of the following arrangements:
- said monostable elastic member is arranged such that during each movement cycle of
the energy distribution member, one tooth of said energy distribution member elastically
deforms said monostable elastic member from said first geometrical configuration to
a predetermined, second geometrical configuration of the monostable elastic member,
said second geometrical configuration being the same for all movement cycles of the
energy distribution member, whereby said monostable elastic member releases a predetermined,
constant amount of mechanical energy to the regulator mechanism when it elastically
returns to the first geometrical configuration: the mechanism thus ensures energy
transfers to the regulator mechanism which are substantially constant and independent
of the torque applied to the energy distribution wheel. In particular, the elastic
deformation of the monostable elastic member are the same at each movement cycle,
due to the geometry of the mechanism, and therefore the mechanical energy which is
accumulated in the monostable elastic member during deformation and then released
to the regulator mechanism, is constant;
- said energy distribution member is a rotary energy distribution wheel;
- said monostable elastic member is a flexible tongue which has a first end linked to
the regulator mechanism and a second, free end bearing on the teeth of the energy
distribution wheel;
- the regulator mechanism has an inertial regulating member which is mounted on a support
by a first elastic suspension and the blocking mechanism has a blocking member which
is connected to the regulating member by at least an elastic link so as to move in
synchronism with said regulating member, said blocking member being connected to the
monostable elastic member and cooperating with the energy distribution member to alternatively
hold and release said energy distribution member;
- said blocking member is connected to the regulating member so as to oscillate with
a frequency twice an oscillation frequency of the regulating member: this feature
enables to increase the frequency of the stepwise rotations of the energy distribution
wheel, which in turn enables to control the timepiece movement with higher temporal
precision;
- the regulating member and the first elastic suspension are arranged so that said regulating
member oscillates in two directions from a neutral position, between first and second
extreme regulating member positions, the blocking member is mounted to oscillate between
first and second extreme locking member positions, and the elastic link is arranged
such that:
- the blocking member is moved to the second extreme blocking member position by the
elastic link when the regulating member is in the neutral position; and
- the blocking member is moved to the first extreme blocking member position by the
elastic link when the regulating member is in any of the first and second extreme
regulating member positions;
- said energy distribution member is a rotary energy distribution wheel and said blocking
member has first and second stop members which are arranged to interfere in turn with
said teeth of the energy distribution wheel so as to hold said energy distribution
wheel respectively when said blocking member is in the first and second extreme blocking
member positions, said first stop member being arranged to not interfere with the
energy distribution wheel when the blocking member is between a first escape position
and the second extreme blocking member position, and said second stop member being
arranged to not interfere with the energy distribution wheel when the blocking member
is between a second escape position and the first extreme blocking member position;
- the energy distribution wheel is movable in a direction of rotation and the teeth
of said energy distribution wheel have respectively a front face facing the direction
of rotation and a rear face opposite the direction of rotation, and the first and
second stop members are arranged such that:
- when said blocking member is in the first escape position and the first stop member
is in correspondence with the front face of a tooth, the second stop member is between
two other teeth of the energy distribution wheel, in the vicinity of the rear face
of one of these two other teeth;
- when said blocking member is in the second escape position and the second stop member
is in correspondence with the front face of a tooth, the first stop member is between
two other teeth of the energy distribution wheel, in the vicinity of the rear face
of one of these two other teeth;
- the mechanism further includes biasing means for biasing the energy distribution wheel
in rotation through a mechanical transmission, in a single direction of rotation,
and said transmission is arranged such that each rotation step of the energy distribution
wheel is completed in a time which is not longer than a time necessary for the blocking
member to travel from the first escape position to the second extreme blocking member
position;
- said monostable elastic member is arranged such that the teeth of the energy distribution
wheel elastically deform said monostable elastic member from said first geometrical
configuration to said second geometrical configuration during rotation of the energy
distribution wheel when the blocking member is between the first escape position and
the second extreme blocking member position;
- the monostable elastic member is arranged such that said monostable elastic member
is in the second geometrical configuration when the blocking member is in the second
extreme blocking member position, whereby the monostable elastic member returns to
the first geometric configuration and then transfers said predetermined amount of
mechanical energy to the blocking member during movement of the blocking member from
the second extreme blocking member position to the second escape position, the elastic
link being arranged to transmit said predetermined amount of mechanical energy to
the regulating member: this feature particularly enhances the energetic efficiency
of the mechanism, since the elastic deformations of the monostable elastic member
accompany the movement of the blocking member instead of opposing to this movement;
- the monostable elastic member is arranged not to interfere with the teeth of the energy
distribution wheel while the blocking member moves from the second escape position
to the first extreme blocking member position and from said first extreme blocking
member position to the first escape position;
- the monostable elastic member is mounted on the blocking member adjacent the second
stop member;
- said blocking member is mounted on the support by a second elastic suspension;
- said first elastic suspension is arranged to impose either a translational movement,
or a rotational movement to the regulating member, and said second elastic suspension
is arranged to impose either a translational movement, or a rotational movement to
the blocking member;
- said first elastic suspension is arranged to impose a translational movement to the
regulating member in a first direction, and said second elastic suspension is arranged
to impose a translational movement to the blocking member in a second direction substantially
perpendicular to said first direction;
- the first elastic suspension comprises two flexible, first elastic branches extending
substantially parallel to the second direction and the second elastic suspension comprises
two flexible, second elastic branches extending substantially parallel to the first
direction, and the blocking member is connected to the regulating member by at least
two flexible elastic links extending substantially parallel to the second direction;
- said first elastic branches and said flexible elastic links are arranged to be substantially
rectilinear when the regulating member is in neutral position: this feature enhances
precision of the elastic deformation of the monostable elastic member, thus enhancing
precision of the amount of energy transferred to the regulator mechanism each time
the monostable elastic member returns to its first geometrical configuration;
- said energy distribution member is a rotary energy distribution wheel and said first
and second stop members and said second elastic suspension are arranged such that
said first and second stop members move substantially radially with regard to the
energy distribution wheel, alternately toward and away from said energy distribution
wheel;
- the mechanism has one single energy distribution wheel;
- the regulator mechanism, the blocking mechanism and the monostable elastic member
are a monolithic system made in a single plate and designed to move essentially in
a mean plane of said plate.
[0008] Besides, the invention also concerns a timepiece having a mechanism as defined above.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Other features and advantages of the invention appear from the following detailed
description of one embodiment thereof, given by way of non-limiting example, and with
reference to the accompanying drawings.
[0010] In the drawings:
- Figure 1 is a schematic bloc diagram of a mechanical timepiece, according to the invention;
- Figure 2 is a plan view of a mechanism for a mechanical timepiece, including a regulator
mechanism, a blocking mechanism and an energy distribution wheel according to a first
embodiment of the invention;
- Figure 2a shows details of the blocking mechanism and energy distribution wheel of
Figure 2;
- Figures 3,3a to 9, 9a are views similar to Figures 2 and 2a, respectively illustrating
successive movements of the mechanism of Figure 2 in substantially half a period of
the regulating mechanism;
- Figures 10 - 12 are views similar to Figure 2, respectively for second, third and
fourth embodiments of the invention.
MORE DETAILED DESCRIPTION
[0011] In the Figures, the same references denote identical or similar elements.
[0012] Figure 1 shows a schematic bloc diagram of a mechanical timepiece 1, for instance
a watch, including at least the following:
- a mechanical energy storage 2;
- a transmission 3 powered by the energy storage 2;
- one or several time indicator(s) 4, for instance watch hands driven by the transmission
3;
- an energy distribution member 5 driven by the transmission 3;
- a blocking mechanism 6 having for instance a blocking member 8 adapted to sequentially
hold and release the energy distribution member 5 so that said energy distribution
member may move step by step according to a repetitive movement cycle, of a constant
travel at each movement cycle;
- a regulator mechanism 7, which is an oscillating mechanism controlling the blocking
mechanism to move it regularly in time so that the hold and release sequence of the
blocking mechanism be of constant duration, thus giving the tempo of the movement
of the energy distribution wheel 5, the transmission 3 and the time indicators 4.
[0013] The energy distribution member may be a rotary energy distribution wheel 5. The following
description will be made with respect to such energy distribution wheel.
[0014] The mechanical energy storage 2 is usually a spring, for instance a spiral shaped
spring usually called mainspring. This spring may be wound manually through a winding
stem and / or automatically through an automatic winding powered by the movements
of the user.
[0015] The transmission 3 is usually a gear comprising a series of gear wheels (not shown)
meshing with one another and connecting an input shaft to an output shaft (not shown).
The input shaft is powered by the mechanical energy storage 2 and the output shaft
is connected to the energy distribution wheel. Some of the gear wheels are connected
to the watch hands or other time indicators 4.
[0016] The transmission 3 is designed so that the energy distribution wheel rotates much
more quickly than the input shaft (with a speed ratio which may be for instance of
the order of 3000).
[0017] The regulator mechanism 7 is designed to oscillate with a constant frequency, thus
ensuring the timepiece's precision. The oscillation of the regulator is sustained
by regular transfers of mechanical energy from the energy distribution wheel 5, through
a monostable elastic member 9 which may for instance belong to the blocking mechanism
6.
[0018] The mechanical energy storage 2, transmission 3, energy distribution wheel 5, blocking
mechanism 6 and regulator 7 form together a timepiece movement 10.
[0019] The particular embodiment of Figures 2-9 will now be described in details.
[0020] In this embodiment, the blocking mechanism 6 and regulator mechanism 7 may be monolithic
and made in a single plate 11, as shown for instance in Figures 2 and 2a. Plate 11
is usually planar.
[0021] The plate 11 may have a small thickness, e.g. about 0.1 to about 0.6 mm, depending
of the material thereof.
[0022] The plate 11 may have transversal dimensions, in the plane of said plate (e.g. width
and length, or diameter), comprised between about 15 mm and 40 mm.
[0023] The plate 11 may be manufactured in any suitable material, preferably having a relatively
high Young modulus to exhibit good elastic properties. Examples of materials usable
for plate 11 are: silicon, nickel, steel, titanium. In the case of silicon, the thickness
of plate 11 may be for instance comprised between 0.3 and 0.6 mm.
[0024] The various members of the blocking mechanism 6 and regulator mechanism 7, which
will be detailed hereafter, are formed by making cutouts in plate 11. These cutouts
may be formed by any manufacturing method known in micromechanics, in particular for
the manufacture of MEMS.
[0025] In the case of a silicon plate 11, plate 11 may be locally hollowed out for instance
by Deep Reactive Ion Etching (DRIE), or in some cases by solid state laser cutting
(in particular for prototyping or small series).
[0026] In the case of a nickel plate 11, the blocking mechanism 6 and regulator mechanism
7 may be obtained for instance by LIGA.
[0027] In the case of a steel or titanium plate 11, plate 11 may be locally hollowed out
for instance by Wire Electric Discharge Machining (WEDM).
[0028] The constituting parts of the blocking mechanism 6 and regulator mechanism 7, each
formed by portions of plate 11, by will now be described in details. Some of these
parts are rigid and others are elastically deformable, usually in flexion. The difference
between so-called rigid parts and so-called elastic parts is their rigidity in the
plane of plate 11, due to their shape and in particular to their slenderness. Slenderness
may be measured for instance by the slenderness ratio (ratio of length of the part
on width of the part). Parts of high slenderness are elastic (i.e. elastically deformable)
and parts of low slenderness are rigid. For instance, so-called rigid parts may have
a rigidity in the plane of plate 11, which is at least about 1000 times higher than
the rigidity of so-called elastic parts in the plane of plate 11. Typical dimensions
for the elastic connections, e.g. elastic branches 21, 33 and elastic links 27 described
below, include a length comprised for instance between 5 and 13 mm, and a width comprised
for instance between 0.01 mm (10 µm) and 0.04 mm (40 µm), e.g. around 0.025 mm (25
µm).
[0029] Plate 11 forms an outer frame which is fixed to a support plate 11a for instance
by screws or similar through holes 11b of the plate 11. The support plate 11a is in
turn fixed in the timepiece casing.
[0030] In the example shown on Figure 2, plate 11 forms a closed, rigid frame entirely surrounding
the blocking mechanism 6 and regulator mechanism 7, but this frame could be designed
otherwise and in particular could be designed to not surround or not surround totally
the blocking mechanism 6 and regulator mechanism 7. In the example shown on Figure
2, such fixed frame includes two substantially parallel sides 12, 15 extending in
a first direction X and two substantially parallel sides 13, 14 extending in a second
direction Y which is substantially perpendicular to the first direction X. Frame 12-15,
support plate 11a and all other fixed parts may be referred to herein as "a support".
[0031] The energy distribution wheel 5 is pivotally mounted relative to the support, around
an axis of rotation Z which is perpendicular to the plate 11. The energy distribution
wheel 5 is biased by energy storage 2 through transmission 3 in a single direction
of rotation 36.
[0032] The energy distribution wheel 5 has external teeth 5a, each having a front face 5b
facing the direction of rotation 36 and a rear face 5c opposite the direction of rotation
36.
[0033] For instance, the front face 5b can extend in a radial plane which is parallel to
the rotation axis Z, while the rear face 5c may extend parallel to axis Z and slantwise
relative to the radial direction (see Figure 2a).
[0034] It should be noted that the teeth 5a do not need to have the complex shape of a classical
escapement wheel of a so-called Swiss-lever escapement or Swiss-anchor escapement.
[0035] The monostable elastic member 9 is linked to the regulator mechanism 7 and is adapted
to bear on the teeth 5a of the energy distribution wheel 5. The monostable elastic
member 9 normally have a first geometrical configuration (rest position) and the teeth
5a of the energy distribution wheel are adapted to elastically deform said monostable
elastic member 9 by cam effect from said first geometrical configuration to a second
geometrical configuration. The monostable elastic member 9 is arranged such that during
each rotation cycle of the energy distribution wheel 5:
- one tooth 5a of said energy distribution wheel elastically deforms said monostable
elastic member 9 from said first geometrical configuration to said second geometrical
configuration of the monostable elastic member;
- and then said monostable elastic member 9 elastically returns to the first geometrical
configuration, thereby releasing a predetermined amount of mechanical energy to the
regulator mechanism 7.
[0036] The regulator mechanism may have a rigid, inertial regulating member 17 which is
connected to the frame of the plate 11 by a first elastic suspension 21. The first
elastic suspension may comprise for instance two flexible, first elastic branches
21 extending substantially parallel to the second direction Y, from the side 12 of
the plate 11 so that the regulating member 17 is movable in translation substantially
parallel to the first direction X with respect to the support. The regulating member
17 and the first elastic suspension 21 are arranged so that said regulating member
17 oscillates in two directions from the neutral position shown on Figure 2, according
to the double arrow 17a visible on Figure 2, between two extreme positions which will
be called here "first and second extreme regulating member positions".
[0037] The translation movement of regulating member 17 may be substantially rectilinear.
[0038] Advantageously, the regulating member 17 is mounted on the support to oscillate in
circular translation, with a first amplitude of oscillation in the first direction
X and a non-zero, second amplitude of oscillation in the second direction Y. Preferably,
the first amplitude of oscillation is at least 10 times the second amplitude, which
makes the movement substantially rectilinear.
[0039] The regulating member 17 may have a main rigid body 18 extending longitudinally substantially
parallel to the first direction X close to the side 12 of plate 11, two diverging
rigid arms 19 extending from the ends of the main body 18 toward the side 15 of plate
11, up to respective free ends 20. The free ends 20 may extend outwardly opposite
to each other, substantially parallel to the first direction X.
[0040] The first elastic branches 21 may have first ends connected to the side 12 of plate
11, respectively close to sides 13, 14 of plate 11, and second ends respectively connected
to the free ends 20 of the arms 19. The first elastic branches 21 may be substantially
rectilinear (i.e. not flexed) when the regulating member 17 is at rest in the neutral
position.
[0041] The length of first elastic branches 21 and the amplitude of oscillation of regulating
member 17 are such that the movement of said regulating member 17 is substantially
rectilinear, as explained above.
[0042] The blocking mechanism 6 has a rigid blocking member 8 which is connected to the
regulating member 17 by at least an elastic link 27 so as to move in synchronism with
said regulating member 17.
[0043] In the example shown on Figure 2, the blocking member 8 may be connected to the regulating
member 17 by two flexible elastic links 27 extending substantially parallel to the
second direction Y. Said flexible elastic links 27 may be arranged to be substantially
rectilinear (non-flexed) when the regulating member 17 is in neutral position.
[0044] The blocking member 8 may be mounted on the frame of the plate 11 by a second elastic
suspension 33. The second elastic suspension 33 may be arranged to impose a translational
movement to the blocking member 8 in the second direction Y. The second elastic suspension
may comprise two flexible, second elastic branches 33 extending substantially parallel
to the first direction X, so that blocking member 8 is movable in translation substantially
parallel to the first direction X, in direction of double arrows 8a. The blocking
member is thus movable in two opposite directions from a neutral position, between
two extreme positions called here "first and second extreme blocking member positions".
The elastic branches 33 may be arranged so as to be substantially linear (not flexed)
when the blocking member 8 is at rest in the neutral position.
[0045] In the example shown on Figure 2, the blocking member 8 may include:
- a rigid base 22 close to the main body 18 of regulating member 17 and extending longitudinally
in the first direction X, and
- two diverging rigid lateral arms 23, 25 from the ends of the base 22 toward the side
15 of plate 11, up to respective free ends 24, 26. The free ends 24, 26 may extend
outwardly opposite to each other, substantially parallel to the first direction X.
[0046] The elastic links 27 may have first ends connected to main body of regulating member
18, close to the ends thereof, and second ends respectively connected to the free
ends 24, 26 of the arms 23, 25.
[0047] Besides, the free end 26 of the lateral arm 25 may be extended toward the other lateral
arm 23, in the first direction X, by a first transversal, rigid arm 30. The lateral
arm 25 may also be extended, toward the other lateral arm 23, in the first direction
X, by a second rigid transversal arm 28 which is close to the base 22. The energy
distribution wheel 5 is between first and second transversal arms 30, 28.
[0048] The respective free ends of the first and second transversal arms 30, 28 may have
respectively first and second stop members 29a, 29b. First and second stop members
29a, 29b may be in the form of rigid fingers protruding toward each other from the
free ends of first and second transversal arms 30, 28, in the second direction Y.
[0049] First and second stop members 29a, 29b are designed to cooperate with the teeth 5a
of the energy distribution wheel 5, as will be explained in more details below, to
alternately hold and release said energy distribution wheel 5. First and second stop
members 29a, 29b may have a stop face, respectively 29a1, 29b1, facing the front face
5b of the teeth, and an opposite rear face, respectively 29a2, 29b2. The stop faces
29a1, 29b1 may preferably be disposed in a radial plane parallel to axis Z, while
the rear faces 29a2, 29b2 may extend slantwise so that the stop members 29a, 29b have
pointed shapes.
[0050] Blocking member 8 may further include a strut 25 a, extending in the second direction
Y and joining the lateral arm 25 to the first transversal arm 30.
[0051] Blocking member 8 may further have a tab 31 extending in the second direction Y from
the transversal arm 30, toward the side 15 of plate 11.
[0052] The free end 26 and first transversal arm 30 may be received with small play in an
indent 26a cut out in the side 25 of plate 11. In addition, tab 31 may be received
in a further indent 31a cut out in the side 15 of plate 11.
[0053] Plate 11 may further include a rigid tongue 16, extending in the second direction
Y from the side 15 of plate 11 toward side 12, between the energy distribution wheel
5 and the lateral arm 23 of the blocking member 8. Tongue 16 may have a first edge
16a facing the energy distribution wheel 5 and extending parallel to the second direction
Y. The first edge 16a may have a concave, circular cut out 16b partly receiving the
energy distribution wheel 5. Tongue 16 further has a second edge 16c opposite the
first edge and facing the lateral arm 23. The second edge 16c may be slanted parallel
to the lateral arm 23, and be in close vicinity to lateral arm 23.
[0054] One of the second elastic branches 33 may have a first end connected to the first
edge 16a of the tongue 16, close to the side 15 of plate 11, and a second end connected
to the tab 31. The other of the second elastic branches 33 may have a first end connected
to the first edge 16a of the tongue 16, close to the free end of the tongue 16, and
a second end connected to the lateral arm 25 close to the base 22.
[0055] The blocking member 8 may be connected to the monostable elastic member 9. In particular,
said monostable elastic member may be a flexible tongue 9 which has a first end connected
to the blocking member 8 (and therefore linked to the regulator mechanism 7 through
flexible links 27) and a second, free end bearing on the teeth 5a of the energy distribution
wheel 5. Typical dimensions for the flexible tongue 9 include a length comprised between
for instance 3 and 5 mm, and a width comprised for instance between 0.01 mm (10 µm)
and 0.04 mm (40 µm), for instance around 0.025 mm (25 µm).
[0056] The flexible tongue 9 may be mounted on the blocking member 8 adjacent the second
stop member 29b. In particular, the flexible tongue may be connected to the lateral
arm 25 of the blocking member 8, close to the transversal arm 28. The flexible tongue
9 may extend substantially parallel to the first direction X, between the transversal
arm 28 and the energy distribution wheel 5, up to a free end which is close to the
second stop member 29b.
[0057] The flexible tongue 9 and blocking member 8 being two distinct members, the mechanism
thus provides a separation between the function of blocking / releasing the distribution
wheel 5 (provided by the blocking member 8) and the function of transferring energy
to the regulator mechanism to sustain oscillation thereof (provided by the flexible
tongue 9). Thanks to this separation of functions, the design of the blocking member
8 doesn't need to take into account the function of transferring energy (as it is
the case in a traditional Swiss-anchor escapement which handles both blocking and
energy transferring functions) and the design of the flexible tongue 9 doesn't need
to take into account the function of blocking / releasing the distribution wheel 5.
[0058] During operation, regulating member oscillates in translation parallel to the first
direction X, with a frequency f comprised for instance between 20 and 30 Hz, and blocking
member 8 oscillates with a frequency 2f, twice the oscillation frequency of the regulating
member 17.
[0059] More precisely, the elastic links 27 are arranged such that:
- the blocking member 8 is moved to the second extreme blocking member position by the
elastic link 27 (toward the side 15) when the regulating member 17 is in the neutral
position; and
- the blocking member 8 is moved to the first extreme blocking member position (toward
the side 12) by the elastic links 27 when the regulating member 17 is in any of the
first and second extreme regulating member positions.
[0060] During this movement, the first and second stop members 29a, 29b move substantially
radially with regard to the energy distribution wheel 5, alternately toward and away
from said energy distribution wheel, and the first and second stop members 29a, 29b
thus interfere in turn with the teeth 5a of the energy distribution wheel 5 so as
to hold said energy distribution wheel 5 respectively when said blocking member 8
is in the first and second extreme blocking member positions.
[0061] More precisely, the first stop member 29a is arranged to:
- hold the energy distribution wheel 5 when the blocking member is moving between the
first extreme blocking member position (close to side 12) and a first escape position
(position where the apex of first stop member 29a is in correspondence with the outer
diameter of the teeth 5a),
- and not interfere with the energy distribution wheel 5 when the blocking member 8
is between said first escape position and the second extreme blocking member position
(close to side 15).
[0062] Besides, the second stop member 29b is arranged to:
- hold the energy distribution wheel 5 when the blocking member is moving between the
second extreme blocking member position (close to side 15) and a second escape position
(position where the apex of second stop member 29b is in correspondence with the outer
diameter of the teeth 5a);
- and not interfere with the energy distribution wheel 5 when the blocking member 8
is between said second escape position and the first extreme blocking member position
(close to side 12).
[0063] Further, the second escape position of blocking member 8 may be between the first
extreme blocking member position (close to side 12) and the first escape position.
In that case, advantageously, the first and second stop members 29a, 29b are arranged
such that:
- when said blocking member 8 is in the first escape position and the first stop member
29a is in correspondence with the front face 5b of a tooth 5a, the second stop member
29b is between two other teeth 5a of the energy distribution wheel, in the vicinity
of the rear face 5c of one of these two other teeth;
- when said blocking member 8 is in the second escape position and the second stop member
29b is in correspondence with the front face 5b of a tooth 5a, the first stop member
29a is between two other teeth 5a of the energy distribution wheel, in the vicinity
of the rear face 5c of one of these two other teeth.
[0064] The flexible tongue 9 may be arranged such that the teeth 5a of the energy distribution
wheel 5 elastically deform said monostable elastic member 9 from said first geometrical
configuration to said second geometrical configuration during rotation of the energy
distribution wheel 5 when the blocking member 8 is between the first escape position
and the second extreme blocking member position. Thus, the flexible tongue 9 accumulates
a predetermined potential mechanical energy, corresponding to the geometrical deformation
thereof between the predetermined first geometrical configuration and the predetermined
second geometrical configuration. This predetermined energy is the same at each rotation
cycle of the energy distribution wheel 5.
[0065] The flexible tongue 9 may be arranged such that said flexible tongue 9 is in the
second geometrical configuration when the blocking member 8 is in the second extreme
blocking member position. Thus, the flexible tongue 9 returns to the first geometric
configuration and transfers said predetermined amount of mechanical energy to the
blocking member 8 during movement of the blocking member 8 from the second extreme
blocking member position to the second escape position. The elastic links 27 are arranged
to transmit said predetermined amount of mechanical energy to the regulating member
17.
[0066] Further, the flexible tongue 9 may be arranged not to interfere with the teeth 5a
of the energy distribution wheel 5 while the blocking member 8 moves from the second
escape position to the first extreme blocking member position and from said first
extreme blocking member position to the first escape position.
[0067] Preferably, the transmission 3 is such that each rotation step of the energy distribution
wheel 5 is completed in a time which is not longer than the time necessary for the
blocking member 8 to travel from the first escape position to the second extreme blocking
member position.
[0068] The operation of the mechanism will now be described step by step, with regard to
Figures 3, 3a - 9, 9a.
[0069] In the position of Figures 3 and 3a:
- regulating member 17 is moving toward side 14 in the direction of arrow 34 and is
close to the second extreme regulating member position;
- blocking member 8 is moving toward side 12 in the direction of arrow 35 and is close
to the first blocking member regulating member position, so that energy distribution
wheel 5 is held by the first stop member 29a;
- second stop member 29b does not interfere with the energy distribution wheel 5;
- flexible tongue 9 is in the first geometric position (rest position).
[0070] For a better understanding, reference numerals have been given to some of the teeth
5a on Figures 3a - 9a. The situation of these teeth is as follows in the position
of Figure 3a:
- tooth 5a1 is the tooth which is held by the first stop member 29a;
- tooth 5a2 is the next tooth which will move toward the first stop member 29a the direction
of rotation at the next rotation step of the energy distribution wheel 5;
- teeth 5a3 and 5a4 are situated respectively past and before the second stop member in the direction
of rotation of the energy distribution wheel 5;
- tooth 5a4 is the next tooth to move toward second stop member 29b after tooth 5a4 in the direction of rotation of the energy distribution wheel 5.
[0071] The mechanism then arrives in the position of Figures 4, 4a, where:
- regulating member 17 arrives in the second extreme regulating member position;
- blocking member 8 arrives in the first extreme blocking member position, and energy
distribution wheel 5 is still held by the first stop member 29a;
- flexible tongue 9 is still in the first geometric position (rest position).
[0072] The regulating member 17 and blocking member 8 then change their direction of movement,
and the mechanism arrives in the position of Figures 5, 5a, where:
- regulating member 17 moves toward side 13 in the direction of arrow 37, and arrives
close to neutral position;
- blocking member 8 moves toward side 15 in the direction of arrow 38 and arrives in
the first escape position where energy distribution wheel 5 will be released by the
first stop member 29a and turn of one angular step in the direction of arrow 36;
- second stop member 29b is already between two teeth 5a of the energy distribution
wheel 5, close to the rear face 5c of one of these teeth 5a;
- flexible tongue 9 is beginning to be flexed by tooth 5a5 of the energy distribution wheel 5.
[0073] The energy distribution wheel 5 then quickly turns of one angular step and the mechanism
arrives in the position of Figures 6, 6a, where:
- regulating member 17 still moves toward side 13 in the direction of arrow 37, and
is still close to neutral position;
- blocking member 8 is close to the second blocking member and already moves toward
side 12 in the direction of arrow 35;
- first stop member 29a does not interfere with the energy distribution wheel 5 and
is situated angularly between teeth 5a1 and 5a2;
- second stop member 29b holds the energy distribution wheel 5 by abutment with the
front face of tooth 5a4;
- flexible tongue 9 is in the second geometrical configuration, flexed at the maximum
by tooth 5a5, and is starting to progressively return to the first geometrical configuration,
while releasing its energy to the blocking member 8 and the regulating member 17.
[0074] The mechanism then arrives in the position of Figures 7, 7a, where:
- regulating member 17 still moves toward side 13 in the direction of arrow 37;
- blocking member 8 still moves toward side 12 in the direction of arrow 35;
- first stop member 29a is already between teeth 5a1 and 5a2 of the energy distribution wheel 5, close to the rear face 5c of tooth 5a1;
- flexible tongue 9 has released its energy and has returned to the first (non-flexed)
geometrical configuration.
[0075] The mechanism then arrives in the position of Figures 8, 8a, where:
- regulating member 17 still moves toward side 13 in the direction of arrow 37;
- blocking member 8 still moves toward side 12 in the direction of arrow 35 and arrives
in the second escape position where energy distribution wheel 5 will be released by
the second stop member 29b and will turn of one angular step in the direction of arrow
36;
- first stop member 29a is still between teeth 5a1 and 5a2 of the energy distribution wheel 5, close to the rear face 5c of tooth 5a1;
- flexible tongue 9 is in the first (non-flexed) geometrical configuration.
[0076] After the energy distribution wheel has turned of one angular step, the mechanism
then arrives in the position of Figures 9, 9a, where:
- regulating member 17 still moves toward side 13 in the direction of arrow 37, and
is close to the first extreme regulating member position;
- blocking member 8 still moves toward side 12 in the direction of arrow 35 and arrives
close to the first extreme blocking member position;
- energy distribution wheel 5 is held by the first stop member 29a;
- flexible tongue 9 is in the first (non-flexed) geometrical configuration.
[0077] The regulating member 17 and blocking member 8 then change direction and the same
steps occur until the mechanism reaches back the position of Figures 3, 3a, and then
the cycle is repeated.
[0078] Thus, the movement cycle of energy distribution wheel 5 includes two angular steps
of rotation, each equivalent to half the angular extent of one tooth 5a. In the example
of Figures 2-9, energy distribution wheel 5 has 21 teeth 5a, so that said angular
step is α=360°/(21*2)=8.57°. It should be noted that each movement cycle of energy
distribution wheel 5 is completed during half an oscillation cycle of regulating member
17, so that the frequency of movements of energy distribution wheel 5 is 4 times the
oscillation frequency of the regulator mechanism 7. Thus, if the frequency f of the
regulator mechanism 7 is 30 Hz, then the frequency of the blocking member 8 will be
2f=60 HZ and the frequency of movements of energy distribution wheel 5 will be 4f=120
Hz.
[0079] The invention is not limited to translational movements of the regulating member
17 and blocking member 8; in particular, the first elastic suspension 21 may be arranged
to impose either a translational movement, or a rotational movement to the regulating
member 17, and the second elastic suspension 33 may be arranged to impose either a
translational movement, or a rotational movement to the blocking member 8.
[0080] Three variants are shown in Figures 10-12 to illustrate these possibilities. These
variants are similar to the embodiment of Figures 2-9 in their conception and operation,
and will therefore not be described in detail here.
[0081] In the variant of Figure 10, the regulator mechanism 7 has a rigid regulating member
117 which is pivotally mounted around an axis of rotation Z" parallel to the axis
of rotation Z (axis Z" is not a fixed axis and may move under gravity, acceleration
or shock), and the blocking mechanism 6 has a pivoting member 108 which is pivotally
mounted around an axis of rotation Z' parallel to the axis of rotation Z (axis Z"
is not a fixed axis and may move under gravity, acceleration or shock).
[0082] Regulating member 117 may have a central hub 117 connected to the frame of the plate
11 by the first suspension 121. First suspension 121 may have two elastic branches
121 disposed radially relative to the axis of rotation Z".
[0083] Regulating member 117 may also have a plurality of rigid arms 117b extending radially
from the hub 117a, for instance two arms 117b.
[0084] The blocking member may have first and second arms 108a, 108b forming an angle together,
each having a stop member 129a, 129b adapted to interfere with the energy distribution
wheel 5. The axis of rotation Z' may be at the apex between arms 108a, 108b. The arm
108b may support the monostable elastic member 9, for instance an elastic tongue 9
extending from the free end of the arm 108b up to a free end close to the stop member
129b.
[0085] The blocking member 108 is connected to the frame of the plate 11 by a second suspension
133, for instance by two elastic branches 133 disposed radially with regard to the
axis of rotation Z'.
[0086] The blocking member 108 may have a third rigid arm 108c, disposed radially with respect
to the axis of rotation Z' and connected to the hub 117a of the regulating member
by an elastic link 127.
[0087] When regulating member 117 oscillates around axis Z" in the direction of double arrow
117c, the elastic link 127 controls oscillation of blocking member 108 around axis
Z' according to the double arrow 108d, so that stop members 129a, 129b alternately
hold and release energy distribution wheel 5. During each rotation of energy distribution
wheel 5, one of the teeth 5a of the energy distribution wheel 5 flexes the elastic
tongue 9, which then releases its mechanical energy to the blocking member 108 and
the regulating member 117.
[0088] The variant of Figure 10 operates similarly to the embodiment of Figures 2-9.
[0089] In the variant of Figure 11, the regulator mechanism 7 is similar to the variant
of Figure 10 and has a rigid regulating member 217 which is pivotally mounted around
axis of rotation Z" parallel to the axis of rotation Z, while the blocking mechanism
6 has a pivoting member 208 which is movable in translation parallel to the second
direction Y as in the embodiment f Figures 1-9..
[0090] Regulating member 217 may have a central hub 217 connected to the frame of the plate
11 by the first suspension 221. First suspension 221 may have two elastic branches
221 disposed radially relative to the axis of rotation Z".
[0091] Regulating member 217 may also have a plurality of rigid arms 217b extending radially
from the hub 217a, for instance two arms 217b.
[0092] The blocking member 208 may have a rigid body 208a extending longitudinally in the
second direction Y and two transversal arms 208b, 208c extending from the body 208a
parallel to the first direction X on both sides of energy distribution wheel 5, each
transversal arm having a stop member 229a, 2209b adapted to hold and release the energy
distribution wheel 5 as in the embodiment of Figures 1-9.
[0093] The body 208a of the blocking member may be connected to the frame of the plate 11
by a second suspension 233, comprising for instance two second elastic branches 233
parallel to the first direction X.
[0094] The blocking member 208 also includes an elastic tongue 9, extending from the body
208a substantially parallel to the first direction X, up to a free end close to stop
member 229b.
[0095] The blocking member 208 may further include an additional arm 208d, extending opposite
the transversal arms from the body 208a and connected to the hub 217a of the regulating
member by an elastic link 227.
[0096] When regulating member 217 oscillates around axis Z" in the direction of double arrow
217c, the elastic link 227 controls oscillation of blocking member 208 in the second
direction Y according to the double arrow 208e, so that stop members 229a, 229b alternately
hold and release energy distribution wheel 5. During each rotation of energy distribution
wheel 5, one of the teeth 5a of the energy distribution wheel 5 flexes the elastic
tongue 9, which then releases its mechanical energy to the blocking member 208 and
the regulating member 217.
[0097] The variant of Figure 11 operates similarly to the embodiment of Figures 2-9.
[0098] In the variant of Figure 12, the regulator mechanism 7 is similar to that of Figures
2-9 and has a rigid regulating member 317 which movable in translation parallel to
the first direction X, while the blocking mechanism 6 is that of Figure 10.
[0099] Regulating member 317 may have main body 318, two lateral arms 319 and free ends
320 which are similar to parts 18, 19, 20 of the embodiment of Figures 2-9 and may
be connected to the frame of plate 11 by two first elastic branches 321 parallel to
the second direction Y, as in the embodiment of Figures 2-9. The main body 318 may
be connected to the arm 108c of blocking member 8 by an elastic link 327.
[0100] When regulating member 317 oscillates in the direction of arrows 217a, the elastic
link 327 controls oscillation of blocking member 108 around axis Z' according to the
double arrow 108d, so that stop members 129a, 129b alternately hold and release energy
distribution wheel 5. During each rotation of energy distribution wheel 5, one of
the teeth 5a of the energy distribution wheel 5 flexes the elastic tongue 9, which
then releases its mechanical energy to the blocking member 108 and the regulating
member 117.
[0101] The variant of Figure 12 operates similarly to the embodiment of Figures 2-9.
1. A mechanism (10) for a timepiece, comprising:
- a regulator mechanism (7) adapted to oscillate with a periodical movement;
- an energy distribution member (5) having teeth (5a);
- a blocking mechanism (6) cooperating with the energy distribution member (5), said
blocking mechanism (6) being controlled by the regulator mechanism (7) to regularly
and alternatively hold and release the energy distribution member (5) so that said
energy distribution member may move step by step according to a repetitive movement
cycle;
- a monostable elastic member (9) linked to the regulator mechanism (7) and adapted
to bear on the teeth (5a) of the energy distribution member (5), said monostable elastic
member (9) normally having a first geometrical configuration, said monostable elastic
member (9) being arranged such that during each movement cycle of the energy distribution
member (5):
- one tooth (5a) of said energy distribution member elastically deforms said monostable
elastic member (9) from said first geometrical configuration;
- and then said monostable elastic member (9) elastically returns to the first geometrical
configuration, thereby releasing mechanical energy to the regulator mechanism (7).
2. A mechanism (10) according to claim 1, wherein said monostable elastic member (9)
is arranged such that during each movement cycle of the energy distribution member
(5), one tooth (5a) of said energy distribution member elastically deforms said monostable
elastic member (9) from said first geometrical configuration to a predetermined, second
geometrical configuration of the monostable elastic member, said second geometrical
configuration being the same for all movement cycles of the energy distribution member
(5), whereby said monostable elastic member (9) releases a predetermined, constant
amount of mechanical energy to the regulator mechanism (7) when it elastically returns
to the first geometrical configuration.
3. A mechanism (10) according to any one of the preceding claims, wherein said energy
distribution member is a rotary energy distribution wheel (5).
4. A mechanism (10) according to any one of the preceding claims, wherein said monostable
elastic member is a flexible tongue (9) which has a first end linked to the regulator
mechanism (7) and a second, free end bearing on the teeth (5a) of the energy distribution
wheel (5).
5. A mechanism (10) according to any one of the preceding claims, wherein the regulator
mechanism (7) has an inertial regulating member (17; 117; 217; 317) which is mounted
on a support (12-15) by a first elastic suspension (21; 121; 221; 321) and the blocking
mechanism (6) has a blocking member (8; 108; 208) which is connected to the regulating
member (17; 117; 217; 317) by at least an elastic link (27; 127; 227; 327) so as to
move in synchronism with said regulating member (17; 117; 217; 317), said blocking
member (8; 108; 208) being connected to the monostable elastic member (9) and cooperating
with the energy distribution member (5) to alternatively hold and release said energy
distribution member.
6. A mechanism (10) according to claim 5, wherein said blocking member (8; 108; 208)
is connected to the regulating member (17; 117; 217; 317) so as to oscillate with
a frequency twice an oscillation frequency of the regulating member (17; 117; 217;
317).
7. A mechanism (10) according to claim 6, wherein the regulating member (17; 117; 217;
317) and the first elastic suspension (21; 121; 221; 321) are arranged so that said
regulating member oscillates in two directions from a neutral position, between first
and second extreme regulating member positions,
the blocking member (8; 108; 208) is mounted to oscillate between first and second
extreme locking member positions, and the elastic link (27; 127; 227; 327) is arranged
such that:
- the blocking member (8; 108; 208) is moved to the second extreme blocking member
position by the elastic link (27; 127; 227; 327) when the regulating member (17; 117;
217; 317) is in the neutral position; and
- the blocking member (8; 108; 208) is moved to the first extreme blocking member
position by the elastic link (27; 127; 227; 327) when the regulating member (17; 117;
217; 317) is in any of the first and second extreme regulating member positions.
8. A mechanism (10) according to claim 7, wherein said energy distribution member is
a rotary energy distribution wheel (5) and said blocking member (8; 108; 208) has
first and second stop members (29a, 29b; 129a, 129b; 229a, 229b) which are arranged
to interfere in turn with said teeth (5a) of the energy distribution wheel (5) so
as to hold said energy distribution wheel (5) respectively when said blocking member
(8; 108; 208) is in the first and second extreme blocking member positions, said first
stop member (29a; 129a; 229a) being arranged to not interfere with the energy distribution
wheel (5) when the blocking member (8; 108; 208) is between a first escape position
and the second extreme blocking member position, and
said second stop member (29b; 129b; 229b) being arranged to not interfere with the
energy distribution wheel (5) when the blocking member (8 ; 108 ; 208) is between
a second escape position and the first extreme blocking member position.
9. A mechanism (10) according to claim 8, wherein the energy distribution wheel (5) is
movable in a direction of rotation (36) and the teeth (5a) of said energy distribution
wheel have respectively a front face (5b) facing the direction of rotation (36) and
a rear face (5c) opposite the direction of rotation (36), and the first and second
stop members (29a, 29b; 29a, 29b; 29a, 29b) are arranged such that:
- when said blocking member (8; 108; 208) is in the first escape position and the
first stop member (29a; 129a; 229a) is in correspondence with the front face (5b)
of a tooth (5a), the second stop member (29b; 129b; 229b) is between two other teeth
(5a) of the energy distribution wheel, in the vicinity of the rear face (5c) of one
of these two other teeth;
- when said blocking member (8; 108; 208) is in the second escape position and the
second stop member (29b; 129b; 229b) is in correspondence with the front face (5b)
of a tooth (5a), the first stop member (29a; 129a; 229a) is between two other teeth
(5a) of the energy distribution wheel, in the vicinity of the rear face (5c) of one
of these two other teeth.
10. A mechanism (10) according to claim 9, further including biasing means (2) for biasing
the energy distribution wheel (5) in rotation through a mechanical transmission (3),
in a single direction of rotation (36), and wherein said transmission (3) is arranged
such that each rotation step of the energy distribution wheel (5) is completed in
a time which is not longer than a time necessary for the blocking member (8; 108;
208) to travel from the first escape position to the second extreme blocking member
position.
11. A mechanism (10) according to any one of claims 8-10, wherein said monostable elastic
member (9) is arranged such that the teeth (5a) of the energy distribution wheel (5)
elastically deform said monostable elastic member (9) from said first geometrical
configuration to said second geometrical configuration during rotation of the energy
distribution wheel (5) when the blocking member (8; 108; 208) is between the first
escape position and the second extreme blocking member position.
12. A mechanism (10) according to claim 11, wherein the monostable elastic member (9)
is arranged such that said monostable elastic member (9) is in the second geometrical
configuration when the blocking member (8; 108; 208) is in the second extreme blocking
member position, whereby the monostable elastic member (9) returns to the first geometric
configuration and then transfers said predetermined amount of mechanical energy to
the blocking member (8; 108; 208) during movement of the blocking member (8; 108;
208) from the second extreme blocking member position to the second escape position,
the elastic link (27; 127; 227; 327) being arranged to transmit said predetermined
amount of mechanical energy to the regulating member (17; 117; 217; 317).
13. A mechanism (10) according to claim 12, wherein the monostable elastic member (9)
is arranged not to interfere with the teeth (5a) of the energy distribution wheel
(5) while the blocking member (8; 108; 208) moves from the second escape position
to the first extreme blocking member position and from said first extreme blocking
member position to the first escape position.
14. A mechanism (10) according to any one of claims 8-13, wherein the monostable elastic
member (9) is mounted on the blocking member (8; 108; 208) adjacent the second stop
member (29b; 129b; 229b).
15. A mechanism (10) according to any one of claims 5-13, wherein said blocking member
(8; 108; 208) is mounted on the support by a second elastic suspension (33; 133; 233).
16. A mechanism (10) according to claim 15, wherein said first elastic suspension (21;
121; 221; 321) is arranged to impose either a translational movement, or a rotational
movement to the regulating member (17; 117; 217; 317), and said second elastic suspension
(33; 133; 233) is arranged to impose either a translational movement, or a rotational
movement to the blocking member (8; 108; 208).
17. A mechanism (10) according to claim 16, wherein said first elastic suspension (21)
is arranged to impose a translational movement to the regulating member (17) in a
first direction (X), and said second elastic suspension (33) is arranged to impose
a translational movement to the blocking member in a second direction (Y) substantially
perpendicular to said first direction (X).
18. A mechanism (10) according to claim 17, wherein the first elastic suspension comprises
two flexible, first elastic branches (21) extending substantially parallel to the
second direction (Y) and the second elastic suspension comprises two flexible, second
elastic branches (33) extending substantially parallel to the first direction (X),
and the blocking member (8) is connected to the regulating member (17) by at least
two flexible elastic links (27) extending substantially parallel to the second direction
(Y).
19. A mechanism (10) according to claim 18, wherein said first elastic branches (21) and
said flexible elastic links (27) are arranged to be substantially rectilinear when
the regulating member (17) is in neutral position.
20. A mechanism (10) according to any one of claims 14-18, said energy distribution member
is a rotary energy distribution wheel (5) and wherein said first and second stop members
(29a, 29b; 129a, 129b; 229a, 229b) and said second elastic suspension (33; 133; 233)
are arranged such that said first and second stop members (29a, 29b; 129a, 129b; 229a,
229b) move substantially radially with regard to the energy distribution wheel (5),
alternately toward and away from said energy distribution wheel.
21. A mechanism (10) according to any one of the preceding claims, wherein the regulator
mechanism (7), the blocking mechanism (6) and the monostable elastic member (9) are
a monolithic system made in a single plate (11) and designed to move essentially in
a mean plane of said plate.
22. A timepiece (1) having a mechanism (10) according to any one of the preceding claims.