Crowd forming machine and crowd forming set comprising a group of such machines

The shedding machine addresses high inertia and low torque issues by using a rotary electric motor with a rotor shaft and crank mechanism, ensuring efficient operation and reduced energy consumption.

FR3160709A1Active Publication Date: 2025-10-03STAUBLI FAVERGES SA
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Patent Information

Application Number
FR2024003210
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-28
Publication Date
2025-10-03
Estimated Expiration
2044-03-28

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Abstract

Shedding machine and shedding assembly comprising a group of such machines The machine (9) comprises a rotary electric motor, a crank, a driving lever and a driving rod. The stator (23) of the motor comprises winding laminations (33), extending radially between a stator outer diameter (D23e) and a stator inner diameter (D23i), and electrical windings (39). The rotor (29) of the motor comprises a rotor shaft (51), centered on a main axis (A1), surrounded by a cylindrical portion (53) of the rotor and integral with the cylindrical portion and the crank, and permanent magnets (57). A ratio of the external stator diameter (D23e) to a length (L53) of the cylindrical part (53), measured parallel to the main axis without extending beyond the permanent magnets, is between 2.0 and 4.0, preferably between 2.5 and 3.5, more preferably between 2.8 and 3.2. Figure for abstract: Figure 3
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Description

Title of the invention: Crowd forming machine and crowd forming assembly comprising a group of such machines

[0001] The present invention relates to a shedding machine and a shedding assembly comprising a group of such machines.

[0002] The invention relates to the technical field of frame-connecting rod actuator type shedding machines for a heddle frame loom.

[0003] It is known to use a plurality of electric actuators on the frame to drive vertical oscillations of heald frames. Depending on the technology used, the electric actuators produce an oscillating rotation or a continuous rotation. In particular, EP4144903A1 and EP4219813A1 describe shedding machines in which each electric actuator drives the corresponding heald frame via a pulling mechanism, comprising a crank pin, connecting rods and levers, which transform the rotation produced by the actuator into an alternating translation of the heald frame.

[0004] In operation, the motor must stop and restart at high frequency, depending on the desired position for the frame at each stroke of the loom. It is therefore desirable that the rotational inertia of the motor rotor be minimal, in order to avoid excessive vibrations and significant energy consumption for these accelerations. In addition, the space available for arranging the motors is relatively small. Consequently, the actuators used in such shedding machines have a relatively low torque, due to the constraints on inertia and size. However, it is desirable that the torque developed by the actuators be sufficiently high, in order to drive the heddle frames, which can be relatively heavy and on which the taut warp threads apply forces tending to oppose their movement.In addition, the speed required for driving the frames is usually lower than the rated speed of the motors, so the motors operate with relatively low efficiency.

[0005] It is also known from FR3004468A3 to add a reducer at the output of the rotor of a motor of a shedding machine. In practice, this makes it possible to obtain a higher torque at the output of the reducer and therefore to adopt an operating regime in which the efficiency of the motor is higher. However, the addition of a reducer is expensive, poses space problems and is also not optimal in terms of efficiency due to the losses linked to the reducer. Furthermore, the inertia of the geared motor assembly is greatly increased because of the rotating parts of the reducer, the rotational inertia of which is added to that of the rotor.

[0006] The aim of the invention is therefore to propose a shedding machine whose moment of inertia is reduced, without causing an excessive increase in size and cost and without lowering the efficiency and nominal torque.

[0007] To this end, the invention relates to a shedding machine for actuating a heddle frame of a weaving loom in an alternating translational stroke along a frame axis, the shedding machine comprising: • a rotary electric motor, comprising: • a frame, centered on a main axis of the rotating electric motor and configured to be secured to a machine frame of the weaving loom, • a stator, attached to the frame, • a rotor, arranged in the stator and comprising a cylindrical part, centered on the main axis and comprising an external peripheral wall, • a first bearing, arranged in a first plane, perpendicular to the main axis, on a front side of the rotary electric motor, and • a second bearing, arranged in a second plane, perpendicular to the main axis, on a rear side of the rotary electric motor, the first bearing and the second bearing guiding a rotation of the rotor relative to the stator around the main axis; • a crank, secured to the rotor and comprising a crank pin defining an eccentric axis, parallel to the main axis and distant from the main axis by an eccentric center distance; • an attack lever, which is configured to be pivotable about a first lever axis relative to the machine frame, to actuate the heald frame, the first lever axis being fixed relative to, and parallel to, the main axis; and • an attack rod, which includes: • a first end, attached to the crank pin while pivoting around the eccentric axis relative to the crank pin, and • a second end, coupled to the attack lever while pivoting about a second lever axis relative to the attack lever, the second lever axis being parallel to the first lever axis;

[0008] characterized in that: • the stator includes: • winding sheets, surrounding the main axis and extending radially between an external stator diameter and an internal stator diameter centered on the main axis, the winding sheets forming winding teeth distributed around the main axis, directed towards the main axis and delimiting between them stator notches, which extend parallel to the main axis, and • electrical windings, each electrical winding being wound around several of the winding teeth while being received in the stator slots; and • the rotor includes: • a rotor shaft, centered on the main axis, surrounded by the cylindrical part of the rotor and being integral with the cylindrical part of the rotor and the crank, and • permanent magnets, arranged on the external peripheral wall of the cylindrical part and being distributed around the main axis, each permanent magnet comprising a respective external surface, the external surfaces being opposite the winding teeth and being inscribed on a rotor circle, centered on the main axis and defining a rotor diameter; and • a ratio of the external diameter of the stator to a length of the cylindrical part, measured parallel to the main axis without exceeding the permanent magnets, is between 2.0 and 4.0, preferably between 2.5 and 3.5, more preferably between 2.8 and 3.2.

[0009] An idea underlying the invention is that the rotor comprises, in addition to the cylindrical part, a rotor shaft, which makes it possible to reduce the moment of inertia of the rotor compared to the prior art, since a larger proportion of the mass of the rotor is brought closer to the main axis by being concentrated in the rotor shaft rather than in the cylindrical part. Retaining the cylindrical part nevertheless makes it possible to maintain a large lever arm so that the electromagnetic field imparted by the stator to the permanent magnets of the rotor, carried by the cylindrical part, makes it possible to obtain a relatively high nominal torque. In addition, retaining the cylindrical part makes it possible to design the rotary electric motor such that the external diameter of the stator is relatively large, in particular larger than the length of the cylindrical part, without the increase in the moment of inertia being too significant.The ratio between the external diameter of the stator and the length of the cylindrical part then gives the rotary electric motor a higher nominal torque and a lower nominal rotational speed than in the prior art. During operation, the motor can therefore be used at a speed closer to its nominal speed, which ensures that the efficiency is maximum. The crank being directly integral with the rotor shaft, that is to say that no mechanical reducer is provided between the rotor and the crank, the size, the rotational inertia and the cost are not excessive.

[0010] According to other advantageous aspects of the invention, the invention comprises one or several of the following characteristics, taken individually or in all technically possible combinations: • The rotor comprises a first set of permanent magnets, comprising 12 to 40 permanent magnets, preferably 30 to 35 permanent magnets, preferably 30 permanent magnets, distributed equally around the main axis, and the stator comprises 24 to 48 slots, preferably 32 to 40 slots, more preferably 36 slots, distributed equally around the main axis. • The rotor comprises a second set of permanent magnets, offset from the first set of permanent magnets along the main axis, each permanent magnet of the second set of permanent magnets being adjacent to one of the permanent magnets of the first set of permanent magnets, along the main axis, and each permanent magnet of the first set of permanent magnets is angularly offset, around the main axis, from the permanent magnet of the second set of permanent magnets which is adjacent to it, by an angle of 0.5 to 5 degrees, preferably 1 to 2 degrees, more preferably 1 degree. • The external stator diameter measures between 160 and 200 mm, preferably between 170 and 190 mm, more preferably between 175 and 185 mm. • The rotor is designed so that a rotor moment of inertia is less than 100 kg.cm2, preferably less than 90 kg.cm2, preferably less than 80 kg.cm2. • The shedding machine comprises an electrical cabinet, comprising an electrical power circuit configured to electrically power the rotary electric motor and in that the rotary electric motor develops a nominal torque of between 30 and 100 Nm, preferably between 50 and 70 Nm, preferably between 60 and 70 Nm. • The electrical power circuit delivers a supply current of intensity I to the rotary electric motor which develops a torque reported per unit of current I of between 6.5 and 8 Nm / A, preferably between 7 and 7.5 Nm / A, when the rotation speed of the rotor is maintained at 750 revolutions per minute. • It is intended that (i) each winding tooth comprises: • a tooth head, delimited by the internal diameter of the stator, • a tooth root, delimited by the external diameter of the stator, and • a tooth body, which extends perpendicular to the main axis, which connects the tooth head to the tooth foot and which has a generally rectangular shape in projection in the foreground, each tooth body having a length, measured radially relative to the main axis, of between 19 and 25 mm, preferably between 20 and 23 mm, preferably between 21 and 23 mm; and that

[0011] (ii) each electrical winding forms three layers of wire around the winding tooth around which said electrical winding is wound. • The rotor shaft comprises a single piece which extends to connect the first plane and the second plane. • The rotor comprises a disc, extending perpendicular to the main axis, comprising recesses distributed around the main axis and a central bore, by means of which the disc is fitted onto the rotor shaft, and the cylindrical part is integral with the rotor shaft and the disc and surrounds the disc. • The rotor shaft comprises a centering wall, cooperating with the central bore to center the disc on the rotor shaft, and a collar, extending radially to the main axis and being arranged between the first plane and the second plane, the disc being fixed to the collar by means of at least one screw parallel to the main axis. • It is intended that (i) the crank comprises: • a base, secured to the rotor shaft, and • a connecting piece, integral with the crankpin and mounted on the base; and that

[0012] (ii) the shedding machine comprises an adjustment system, which comprises locking means, configured to: • allow the adjustment of the eccentric center distance, by a relative movement between the base and the connecting part, in an adjustment configuration of the adjustment system, and • secure the base with the connecting piece, in a locked configuration of the adjustment system. • The base includes a cam groove, defining a spiral around the main axis, and the connecting piece includes a follower finger running along the cam groove to guide the connecting piece relative to the base when the adjustment system is in the adjustment configuration and thus vary the eccentric center distance. • The connecting piece and the base are pivotable relative to each other around a crank axis parallel to the main axis, when the adjustment system is in the adjustment configuration. • It is expected that (i) a rotation stroke without change of direction of the rotor around the main axis corresponds to an oscillation stroke of the lever attack about the first lever axis, the swing stroke including a high frame orientation, a crossover orientation and a low frame orientation of the attack lever, the crossover orientation being midway between the high frame orientation and the low frame orientation; and that

[0013] (ii) the rotary electric motor comprises locking means, which allow: • a locking configuration, in which the locking means immobilize the rotor relative to the stator around the main axis, selectively according to several predetermined reference orientations, including: • a crowd amplitude adjustment orientation, in which the attack lever is in the high frame orientation or in the low frame orientation, and • a crowd height adjustment orientation, at 90 degrees relative to the crowd amplitude adjustment orientation and in which the attack lever is in the crossing orientation; and • a release configuration, in which the locking means allow rotation of the rotor around the main axis relative to the stator. • The locking means comprise a locking pin, movable relative to the stator in a direction parallel to the main axis, a first notch, belonging to the rotor and cooperating with the locking pin in the locking configuration, to immobilize the rotor in the crowd amplitude adjustment orientation, and a second notch, belonging to the rotor and cooperating with the locking pin in the locking configuration, to immobilize the rotor in the crowd height adjustment orientation. • The shedding machine is arranged such that when the rotary electric motor is in the locking configuration with the rotor in the shedding amplitude adjustment orientation, then the main axis, the eccentric axis and the second lever axis are substantially coplanar. • The crowd forming machine includes: • a front flange, integral with the carcass and comprising a circular flange, configured to cooperate with the machine frame, so that the carcass can be positioned on the machine frame; • means for fixing the rotary electric motor to the machine frame, for fixing the rotary electric motor to the machine frame when the circular flange cooperates with the machine frame; and • an indexing means, which is distinct from the fixing means and which requires that, when the circular flange cooperates with the machine frame, the carcass is positioned so that: • the attack lever either in the high frame orientation or in the low frame orientation when the rotor is in the crowd amplitude adjustment orientation in the blocking configuration, and • the attack lever is in the crossover orientation when the rotor is in the crowd height adjustment orientation in the blocking configuration. • The first lever axis and the second lever axis are connected by a lever arm line perpendicular to the second lever axis; the eccentric axis and the second lever axis are connected by a connecting rod line perpendicular to the second lever axis and defining a connecting rod-lever angle with the lever arm line; and the connecting rod-lever angle is 97 degrees, plus or minus 2 degrees, when the attack lever is in the crossing orientation.

[0014] The invention also relates to a crowd forming assembly, comprising a group of crowd forming machines as defined above and in which: • each shedding machine in the group defines a lever arm distance, measured between the first lever axis and the second lever axis; • the lever arm distance of each shedding machine in the group is equal to the lever arm distance of each other shedding machine in the group; and • when the shedding machines of the group are in the locking configuration with the rotor in one of the reference orientations, then the respective main axes, eccentric axes and second lever axes of the shedding machines of the group are coplanar.

[0015] The invention will appear more clearly on reading the following description, given solely by way of non-limiting example and with reference to the appended drawings in which:

[0016] [Fig-1] [Fig.l] is a side view of a crowd forming assembly comprising several groups of shedding machines mounted on a machine frame, according to a first embodiment of the invention, an attack lever and an attack connecting rod belonging to one of the shedding machines and driving a heald frame being shown, the attack lever being of a first type.

[0017] [Fig.2] [Fig.2] is a view from an opposite side of the shedding assembly of [Fig.l], a driving lever and a driving rod belonging to another of the shedding machines and driving another heddle frame being shown, the driving lever being of a second type.

[0018] [Fig.3] [Fig.3] is a longitudinal sectional view of one of the machines of formation of the crowd of figures 1 and 2, centered on a main axis belonging to the rotating electric motor of this crowd formation machine.

[0019] [Fig.4] [Fig.4] is a partial front view of the shed forming machine of [Fig.3], where the driving rod is omitted.

[0020] [Fig.5] [Fig.5] is a view similar to that of [Fig.3], where the rotary electric motor is in a locking configuration and receives an adjustment tool.

[0021] [Fig.6] [Fig.6] is a perspective view of a rear side of the shedding machine of Figures 3 to 5, with the adjustment tool of [Fig.5], the shedding machine being in the locking configuration and being mounted on the machine frame.

[0022] [Fig.7] [Fig.7] is a cross-sectional view of a stator of the rotary electric motor of the preceding figures.

[0023] [Fig.8] [Fig.8] shows a detail B of [Fig.7].

[0024] [Fig.9] [Fig.9] is an exploded perspective view of part of the electric motor rotary and part of a crank belonging to the crowd-forming machine of the previous figures.

[0025] [Fig.10] [Fig.10] is a view similar to that of [Fig.l], in which a part of the shed forming assembly is omitted and in which a driving lever and a driving rod belonging to another of the shed forming machines and driving another heald frame are shown, the driving lever being of a third type.

[0026] [Fig. 11] [Fig. 11] is a view similar to that of [Fig.l], in which a part of the shed-forming assembly is omitted and in which a driving lever and a driving rod belonging to another of the shed-forming machines and driving another heald frame are shown, the driving lever being of a fourth type.

[0027] [Fig.12] [Fig.12] is a view similar to that of [Fig.l], in which a part of the shed-forming assembly is omitted and in which a driving lever and a driving rod belonging to another of the shed-forming machines and driving another heald frame are shown, the driving lever being of a fifth type.

[0028] [Fig. 13] [Fig. 13] is a view similar to that of [Fig.l], in which a part of the shed-forming assembly is omitted and in which a driving lever and a driving rod belonging to another of the shed-forming machines and driving another heald frame are shown, the driving lever being of a sixth type.

[0029] [Fig.14] [Fig.14] is a view similar to that of [Fig.l], in which a portion of the shedding assembly is omitted and in which an attack lever and a driving rod belonging to another of the shedding machines and driving another frame of heddles are shown, the driving lever being of a seventh type.

[0030] [Fig. 15] [Fig. 15] is a view similar to that of Figures 10 to 14, of a set crowd forming machine comprising groups of crowd forming machines, according to a second embodiment of the invention.

[0031] [Fig. 16] [Fig. 16] is a sectional view similar to that of [Fig.3] of a shedding machines according to a third embodiment of the invention.

[0032] [Fig. 17] [Fig. 17] is a front view similar to that of [Fig.4], of the machine of crowd formation of [Fig. 16].

[0033] [Fig. 18] [Fig. 18] is an exploded perspective view of the forming machine the crowd in figures 16 and 17.

[0034] [Fig. 19] [Fig. 19] is a sectional view similar to that of [Fig.3] of a machine of forming the crowd according to a fourth embodiment of the invention.

[0035] [Fig.20] [Fig.20] is a front view similar to that of [Fig.4], of the machine of crowd formation of [Fig. 19].

[0036] [Fig.21] [Fig.21] is a perspective view of a crank belonging to a crowd forming machine according to a fifth embodiment of the invention.

[0037] Consider a weaving loom 1, partially shown in Figures 1 and 2, according to a first embodiment of the invention. The weaving loom 1 comprises heddle frames 3 and a shed forming assembly 5 used to operate the heddle frames 3.

[0038] The crowd forming assembly 5 comprises a frame 7, fixed in the terrestrial reference frame, and crowd forming machines 9. In each of Figures 1 and 2, a single frame 3 is shown. The crowd forming machines 9 are partially shown, except for the one actuating this frame 3, which is fully shown.

[0039] Here, sixteen shedding machines 9 and sixteen heald frames 3 are provided, each shedding machine 9 respectively actuating one of the frames 3. Alternatively, it may be provided that the same shedding machine 9 actuates several heald frames 3. The heald frames 3 are superimposed in a direction perpendicular to the heald frames 3 and offset from each other by a distance of approximately 12 mm in this direction, for example.

[0040] Each frame 3 advantageously comprises an upper crosspiece 42A, a lower crosspiece 42B, parallel to the crosspiece 42A and two uprights 33A and 33B, parallel to each other and connecting the crosspieces 42A and 42B. Preferably, the crosspieces 42A and 42B are horizontal while the uprights 33A and 33B are vertical. The crosspieces 42A and 42B measure approximately 2 m in length. Each heald frame 3 is equipped with a row of healds, not shown, each connecting the crosspieces 42A and 42B and being arranged between the uprights 33A and 33B, being distributed along the crosspieces 42A and 42B. The healds each carry an eyelet crossed by a warp thread, the warp threads forming a sheet of warp threads. For example, each heald frame 3 has a mass of approximately 7 kg and is subjected to tension forces of the warp threads adding an equivalent load of approximately 50%. The weaving loom 1 advantageously includes other components, such as a beater, means for inserting a weft thread, a weft feeder which are not shown.

[0041] For the purpose of carrying out weaving, each shed forming machine 9 is designed to actuate the corresponding heddle frame 3 along an alternating translational stroke C3, relative to the frame 7, along a frame axis Z3 specific to this frame 3. By "stroke", reference is made to the trajectory traveled by the frame 3 during its movement. Being moved by the machine 9 along the stroke C3, the frame 3 is moved parallel to the axis Z3, in a rectilinear movement, going back and forth between an upper extreme position H3, corresponding to an upper limit of the stroke C3, and a lower extreme position B3, corresponding to a lower limit of the stroke C3. For example, the stroke C3 has a reference amplitude of the order of 100 mm, this amplitude being advantageously adjustable, as explained below.The axis Z3, and therefore the movement of the frame 3, is preferably vertical, or at least parallel to the heddles of the frame 3 considered. The reference position P3 is defined as being a central position, which can correspond to the crossing position of the loom 1 for all the layers of warp threads whose strokes are centered relative to a central plane comprising the heddle eyelets of the frames in position P3.

[0042] During weaving, for the insertion of each weft thread, the position of the frames 3 along their respective stroke C3 is determined by the action of the machines 9, independently for each frame 3, to define the shed of the loom 1 receiving the inserted weft thread. The loom 1 then produces a fabric of warp threads and weft threads with a desired weave.

[0043] The frame 7 is preferably a set of welded or otherwise assembled parts, fixed relative to the ground and arranged at one end of the heald frames 3. The frame 7 comprises two parts 7A and 7B, the part 7A being better visible in [Fig. 1] and the part 7B being better visible in [Fig. 2]. The parts 7A and 7B are arranged parallel to each other and to the heald frames 3 and face each other. Each part 7A or 7B comprises locations 11, each location 11 receiving one of the shed forming machines 9, which is thus fixed to the frame 7. Here, each subassembly 7A or 7B comprises eight locations 11, respectively receiving eight of the machines 9.

[0044] Each shedding machine 9 comprises a rotary electric motor 13 and a crank 15, visible in more detail in Figures 3 and 4, as well as a driving rod 17 and a driving lever 19, visible in Figures 1 and 2, by means of which the motor 13 actuates the frame 3. The rotary electric motors 13 and the cranks 15 of the sixteen shedding machines 9 are advantageously identical to each other, or essentially similar to each other.

[0045] Each crowd forming machine 9 preferably comprises an adjustment system making it possible to adjust on the one hand the crowd height, i.e. the reference position P3 relative to the ground, and on the other hand the crowd amplitude, i.e. the amplitude of the stroke C3, i.e. the distance between the upper extreme position H3 and the lower extreme position B3 taken by the frame 3 when it is driven under the action of the rotary electric motor 13.

[0046] Each rotary electric motor 13 is preferably controlled by a microcontroller contained in a control cabinet, not shown. The control cabinet comprises for example a central unit, itself comprising a master controller, which exchanges data with each microcontroller of each shedding machine 9. The weaving loom 1 advantageously comprises a terminal allowing a weaver to apply different settings to the loom 1, depending on the desired weaving articles. In practice, the weaver chooses a weaving program for an article via the terminal, with a predetermined weave, speed and profile. This instruction is transmitted to the central unit, which converts them into position instructions for the rotary electric motors 13 of each shedding machine 9.The position instructions are transmitted to the associated microcontroller and then to the rotary electric motor 13 via an electrical power circuit.

[0047] As clearly visible in Figures 3 and 4, the rotary electric motor 13 comprises a casing 21, a stator 23, a rotor 29, a first bearing 31A and a second bearing 31B. A first plane P1 is defined in which the first bearing 31A extends and a second plane P2 in which the second bearing 31B extends.

[0048] The rotary electric motor 13 is a permanent magnet synchronous motor whose structure is detailed in the following. The choice of this motor technology combines several advantages for the application, in particular precise control of the speed and torque offering fine control of the frame 3, simplified construction and maintenance thanks to the fact that the rotor 29 is devoid of windings, as well as the possibility of maintaining a high torque even at low speed, which makes it possible to do without a reducer between the rotor 29 and the crank 15.

[0049] The carcass 21 constitutes the interface of the rotary electric motor 13 with respect to the frame 7 by being fixed on one of the locations 11. The carcass 21 is centered on a main axis Al of the motor 13, which is perpendicular and fixed relative to the frame axis Z3.

[0050] Advantageously, the carcass 21 includes an internal peripheral part 22, an external peripheral part 24, a front flange 25 and a rear flange 27. The internal peripheral part 22 surrounds the main axis A1 and is secured to the front flange 25 and to the rear flange 27. The flanges 25 and 27 are perpendicular to the main axis A1, and close axial ends of the internal peripheral part 22. The external peripheral part 24 envelops the internal peripheral part 22.

[0051] The parts 22 and 24 advantageously delimit between them a helical channel 28, centered on the axis A1, constituting a cooling circuit, intended to guide the circulation of a heat transfer liquid in the thickness of the casing 21, to cool the engine 13. The external peripheral part 24 comprises two radial channels 30 fluidly connected to respective ends of the helical channel 28, respectively to supply the helical channel 28 with heat transfer liquid and to evacuate the heat transfer liquid from said helical channel. The casing 21 preferably includes two seals 32, interposed radially between the internal peripheral part 22 and the external peripheral part 24, being arranged axially on either side of the channels 28 and 30, in order to contain the heat transfer liquid inside the casing 21.The radial channels 30 are connected to a cooling circuit, preferably common to all the machines 9, which comprises tubes, a pump for circulating the heat transfer fluid in the cooling circuit, a heat dissipation device and a tank.

[0052] Advantageously, the front flange 25 is fixed by screws to the internal peripheral part 25. The front flange 25 comprises a circular flange 26, cooperating with the frame 7, making it possible to position the carcass 21 on the frame 7. In particular, at the location 11, the frame 7 forms a circular opening 34 complementary to the circular flange 26, and which coaxially receives the circular flange 26, without constraining the orientation of the circular flange 26, and therefore of the carcass 21, around the axis A1, relative to the frame 7. The carcass 21 also bears forward along the axis A1 against the frame 7, by bringing a bearing face 36 of the front flange 25 into contact with a corresponding face 38 of the frame 7, surrounding the circular opening 34, at the location 11.The machine 9 further comprises an indexing means, making it possible to impose the orientation of the carcass 21 relative to the frame 7 around the axis AL. For example, the indexing means includes an indexing pin 89, which is received both in an orifice formed in the front flange 25, parallel to and at a distance from the axis Al, and in a corresponding orifice formed at the location 11 of the frame 7, formed at the periphery of the circular opening 34. The indexing means can be considered as . a rotational key, imposing a single orientation of the carcass 21 relative to the frame 7 around the axis A1. This makes it possible to position the motor 9 in a particular position in which the mechanical efficiency of the transmission formed by the crank 15, the connecting rod 17 and the lever 19 is optimal, and in which these elements take a particular position facilitating the adjustment of the crowd height or crowd amplitude, as explained below.

[0053] In addition to the aforementioned indexing means, the machine 9 comprises fixing means, also clearly visible in [Fig. 6], for fixing the motor 13 to the frame 7. For example, the fixing means are constituted by screws 84, which pass through a screw flange 86 belonging to the carcass 21 and are screwed into the frame 7 to fix the motor 13 to the frame 7.

[0054] The stator 23, visible in [Fig. 3] and shown individually in Figures 7 and 8, is fixedly secured to the casing 21, being enclosed inside the casing 21. With the casing 21, the stator 23 represents the fixed part of the rotary electric motor 13. The stator 23 has the function of generating a magnetic field when the rotary electric motor 13 is powered by the aforementioned power circuit coming from the control cabinet.

[0055] For this purpose, the stator 23 comprises winding sheets 33, winding teeth 35 and electrical windings 39, as well as, preferably, two plastic end pieces 40.

[0056] The winding laminations 33, visible in Figures 3 and 7, each have a crown shape surrounding the main axis AL. Each winding lamination 33 is flat in shape, perpendicular to the main axis AL. The winding laminations 33 are stacked along the main axis Al, to together form a ferromagnetic core of the motor 13, tubular in shape around the main axis AL. The stator 23 is fixed to the internal part 24 of the frame 21 by means of the laminations 33. Each winding lamination 33 extends radially between an external stator diameter D23e and an internal stator diameter D23i, centered on the main axis AL.

[0057] The two plastic end pieces 40 are positioned respectively at each axial end of the winding core constituted by the winding sheets 33.

[0058] Advantageously, and as shown in [Fig. 8], each winding sheet 33 is made up of several contiguous tooth sheets 47, oriented radially and distributed equally around the main axis AL. Each tooth sheet 47 comprises a relief 49 cooperating with a complementary relief of the adjacent tooth sheet 47 belonging to the same sheet 33, said reliefs positioning the adjacent tooth sheets 47 relative to each other. Thus, the manufacture of the stator 23 is simplified and is optimal in terms of the quantity of material used, in particular compared to block machining which would require a longer production time and would result in material losses linked to the removal of a central part.

[0059] The winding teeth 35, one of which is shown in more detail in [Fig. 8], are formed by the winding laminations 33. Each winding tooth 35 is formed by stacking several tooth laminations 47 aligned along the main axis A1. Each tooth lamination 47 belongs to a single winding tooth 35. The tooth laminations are advantageously made of steel.

[0060] The winding teeth 35 are directed towards the main axis AL. The teeth 35 delimit between them the stator notches 37, which extend parallel to the main axis Al and are open in the direction of the main axis AL. Each notch 37 is delimited between two successive teeth 35, by these two teeth 35. Advantageously, each winding tooth 35 comprises a tooth head 41, delimited by the internal stator diameter D23i, a tooth root 43, delimited by the external stator diameter D23e, and a tooth body 45, which extends perpendicular to the main axis Al, which connects the tooth head 41 to the tooth root 43. The stator notch 37 is formed between the two adjacent tooth heads 41. As clearly visible in [Fig.8], the tooth body 45 has a generally rectangular shape in projection in a transverse plane of the stator 23.The tooth body 45 also has a length L45, measured radially relative to the main axis Al, of between 19 and 25 mm, preferably between 20 and 23 mm, preferably between 21 and 23 mm.

[0061] Advantageously, the external stator diameter D23e measures between 160 and 200 mm, preferably between 170 and 190 mm, more preferably between 165 and 185 mm. Advantageously, the use of a motor with a large external stator diameter D23e allows the production of an electromagnetic circuit which exploits the distance from the main axis A1 of the motor 13, and promotes the application of a lever arm of the driving forces of the rotor 51 by the stator 37 over a large distance. In other words, the external stator diameter D23e gives a high nominal torque to the motor 13 of the shedding machine. Advantageously, the stator notches 37 are 24 to 48 in number, preferably 32 to 40, more preferably 36, and are distributed equally around the main axis AL. Advantageously, the stator notches 37 have a width of 5.5 mm, measured orthoradially, and a height of 22.1 mm, measured radially.These dimensions allow an optimal compromise between the torque of the rotary electric motor 13 and its size.

[0062] Each electrical winding 39 is wound around the winding teeth 35 while being received in the stator notches 37. The electrical windings 39 are advantageously three in number and are each wound around ten winding teeth 35 distributed equally around the main axis AL. The plastic end caps 40 mechanically protect the electrical windings 39 in their winding, so that they are not cut by the sheets 33, at the axial ends of the core. Each electrical winding 39 forms three layers. Among these three layers, the first layer advantageously has 17 turns of conductive wire, around the winding tooth 35 around which said electrical winding 39 is wound. The second layer preferably has 15 turns of wire. The third layer preferably has 8 turns of conductive wire. In this way, the length of wire used is optimized to obtain a magnetic field, and therefore an electromagnetic torque, sufficient for the application, while limiting heat dissipation along the wire, in order to improve the efficiency of the rotary electric motor 13. The diameters of the wires are preferably chosen to be of the order of 1.12 mm, which is also compatible with the expected performance while minimizing heating of the stator 29 thanks to sufficient heat dissipation in the stator slots 37.

[0063] The motor 13 advantageously comprises a terminal block, not shown, secured to the frame 21, to which the windings 39 are electrically connected. The terminal block makes it possible to electrically connect the motor 13 to the aforementioned power circuit coming from the control cabinet. When the motor 13 is powered, an electric current flowing in the windings 39 generates the magnetic field.

[0064] As shown in Figures 3 and 9, the bearings 31A and 31B are coaxial with the axis A1 and are mounted in the stator 23. In particular, the bearing 31A is mounted on the front flange 25 and the bearing 31B is mounted on the rear flange 27. The first bearing 31A, located on the front side where the motor 13 is loaded, is approximately twice as large as the second bearing 31B, in order to withstand greater dynamic forces on the front side of the motor 13. Preferably, the first plane P1 and the second plane P2 are less than 120mm apart.

[0065] The rotor 29 is arranged in the stator 23 and is pivotally mounted relative to the stator 23 about the main axis A1 by means of the bearings 31A and 31B. The rotor 29, visible in particular in FIGS. 3 and 9, is arranged in the stator 23 and comprises a rotor shaft 51, a cylindrical part 53 and permanent magnets 57. The rotor shaft 51 is centered on the main axis A1 and is received in the bearings 31A and 31B, at ends of the rotor shaft 51. In particular, the rotor shaft 51 passes through each of the two bearings 31A and 31B. The rotor 29 is therefore guided in rotation by the bearings 31A and 31B via the rotor shaft 51. Advantageously, the rotor shaft 51 comprises a single-piece part, which extends so as to connect the first plane P1 and the second plane P2. The single-piece part is in particular received in each of the bearings 31A and 31B. In the present example, the rotor shaft 51 is made up of this single-piece part.This makes it possible to optimize the coaxiality of the rotor 29 and the stator 23, unlike a rotor made of several parts, which is likely to cause possible offsets between said parts. The use of a single-piece part also simplifies the assembly of the motor 13 and improves the precision of guidance of the rotor 51 relative to the stator 23, in particular to ensure a posi- . precise operation of the magnets relative to the stator.

[0066] The rotor shaft 51 is of generally tubular shape. Advantageously, more precisely, the rotor shaft 51 comprises three hollow cylindrical enclosures 52A, 52B and 52C which follow one another along the axis A1, giving its tubular shape to the shaft 51. The rotor shaft 51 thus forms an internal duct 83, coaxial with the axis A1, extending from one end to the other of the shaft 51. The internal duct 83 is here formed by the successive cylindrical enclosures 52A, 52B and 52C. The overall envelope of the rotor shaft 51 preferably extends inside a virtual cone, centered on the axis A1 and the apex of which is directed towards the rear of the motor 13, the cone passing successively through the balls of the bearing 31A and the bearing 31B. The shaft 51 being tubular and hollow, its inertia is minimized due to an overall envelope close to the axis AL

[0067] The cylindrical part 53 surrounds the rotor shaft 51, being coaxial with the latter and with the main axis AL. The cylindrical part 53 and the rotor shaft 51 are fixedly secured to each other, so that the rotor shaft 51 can be rotated about the axis Al relative to the stator 23, by rotating the rotor 29 via the cylindrical part 53.

[0068] As clearly visible in [Fig.9], the rotor 29 preferably comprises a disc 61, by means of which the cylindrical part 53 is secured to the main shaft AL. The disc 61 is arranged between the planes PI and P2.

[0069] Preferably, the disc 61 is integral with the cylindrical part 53 by forming a single piece with the cylindrical part 53. Otherwise, the disc 61 can be a piece assembled with the cylindrical part 53. Preferably, the disc is arranged between the axial ends of the cylindrical part 53, so that the cylindrical part 53 and the disc have a longitudinal section in the shape of a “T”.

[0070] Preferably, the disc 61 is integral with the rotor shaft 51 by being fitted onto the rotor shaft and fixed in rotation around the rotor shaft 51. For this, the disc 61 is advantageously fitted onto the rotor shaft 51 between the planes PI and P2, so as to be traversed by the rotor shaft 51, via a central bore 63 of the disc 61. The rotor shaft 51 comprises a centering wall 67, which is here an external radial wall, cooperating with the bore 63 according to a cylinder-cylinder connection. Advantageously, the rotor shaft 51 comprises a collar 69, which extends radially to the main axis A1 and is arranged between the first plane PI and the second plane P2. The disc 61 is fixed to the collar 69, for example by means of several assembly screws 70, for example ten assembly screws 70, parallel to the main axis A1 and distributed around this axis, and several elastic pins 72, for example three.Attaching the disc 61 to the collar 69 fixes the disc 61 in rotation around the rotor shaft 51.

[0071] Preferably, the disc 61 comprises recesses 65, for example ten recesses, distributed around the main axis Al. Radially, the recesses 65 are arranged between the cylindrical part 53 and the rotor shaft 51, in particular between the cylindrical part 53 and the collar 69. Each recess 65 is an opening passing through the disc 61 from one side to the other parallel to the axis Al.

[0072] The use of the disc 61 to secure the cylindrical part 53 makes it possible to minimize the inertia of the rotor 29, in particular if the disc 61 is equidistant, or almost equidistant, from the planes P1 and P2. Preferably, so that the rotational inertia is minimal, a single disc 61 is provided to connect the cylindrical part 53 to the shaft 51, the cylindrical part 53 and the shaft 51 not being connected other than by the single disc 61. Alternatively, several discs 61 can be provided to connect the cylindrical part 53 to the rotor shaft 51.

[0073] The permanent magnets 57 are arranged on an external peripheral wall 55 of the cylindrical part 53. The external peripheral wall 55 is advantageously an external radial surface, centered on the axis A1, which preferably extends from one axial end to the other of the cylindrical part 53, opposite the winding sheets 33, over the entire length of the winding teeth 33.

[0074] Each permanent magnet 57 comprises a respective external surface S57, the external surfaces S57 being opposite the winding teeth 35 and inscribed on a rotor circle 60, centered on the main axis Al, perpendicular to the axis Al, and defining a rotor diameter D29. Advantageously, the magnets 57 have a length, measured parallel to the main axis Al, of 30 mm, a width, measured ortho-radially, of 10.5 mm, and a thickness, measured radially, of 3.5 mm.

[0075] A length L53 of the cylindrical part 53 is defined, which is measured parallel to the main axis AL. The length L53 is measured without exceeding the permanent magnets 57 in the direction of the axis Al, that is to say, in the present example, from a front end of one of the permanent magnets 57 of the assembly arranged at the front of the rotor 29, to the rear end of one of the permanent magnets 57 of the assembly arranged at the rear of the rotor 29.

[0076] The rotor 29 is dimensioned so that a ratio of the external stator diameter D23e to the length L53 of the cylindrical part 53 is between 2.0 and 4.0, preferably between 2.5 and 3.5, more preferably between 2.8 and 3.2. This dimensioning is optimal for obtaining a high torque while minimizing inertia. In other words, this dimensioning is optimal for guaranteeing a high energy density of the motor 13. The motor torque constant Kt is a torque value obtained per unit of current I delivered by the power circuit. The torque constant Kt is here calculated at a motor speed of 750 revolutions per minute, which corresponds to a working speed of 1500 strokes per minute. Advantageously, the motor 13 develops a torque constant Kt of between 6.5 and 8 Nm / A, preferably between 7 and 7.5 Nm / A. Achieving such a value of engine torque constant Kt corresponds to the use of a high-efficiency engine.

[0077] Preferably, the stator external diameter D23e is equal to 180mm and the length L53 is equal to 60mm. Alternatively, the length L53 is less than 60mm, and the stator external diameter D29e adjusted to always obtain the above ratio.

[0078] Advantageously, the rotor 29 comprises a first set 59A of permanent magnets 57, comprising twelve to forty permanent magnets 57, preferably thirty to thirty-five permanent magnets 57, preferably thirty permanent magnets 57, distributed equally around the main axis A1. The permanent magnets 57 of this first set 59A are arranged one after the other around the main axis A1. Preferably, the permanent magnets 57 of this first set 59A are arranged along the same plane perpendicular to the axis A1. Coupled with the aforementioned dimensions of the stator 23, these dimensions are optimal for maximizing the torque while minimizing the size.

[0079] Advantageously, the rotor 29 comprises a second set 59B of permanent magnets 57, offset relative to the first set 59A along the main axis AL. As for the first set 59A, the magnets 57 of this second set 59B are arranged one after the other around the main axis AL. Preferably, the permanent magnets 57 of this second set 59B are arranged along the same plane perpendicular to the axis Al, axially offset relative to the plane of the first set 59A. As visible in [Fig.9], each permanent magnet 57 of the second set 59B is adjacent to one of the permanent magnets 57 of the first set 59A, along the main axis AL. In addition, each permanent magnet 57 of the first set 59A is angularly offset, around the main axis Al, relative to the permanent magnet 57 of the second set 59B which is adjacent to it, for example by an angle of 0.5 to 5 degrees, preferably 1 to 2 degrees, more preferably 1 degree.Thus, for a given position of the rotor 29 around the axis A1, two permanent magnets 57 belonging to two different sets 59A and 59B and adjacent to each other are not opposite the same portion of the stator 23. This angular offset aims to reduce the occurrence of intermittent jerky movements of the rotor 29, in particular when starting the motor 13, a phenomenon sometimes called cogging torque, detent torque or even cogging torque, and which applies to motors whose rotor is with permanent magnets. In other words, this angular offset aims to smooth the operation of the motor 13 by reducing torque oscillations. This construction is particularly advantageous, since the present application requires operation at relatively low speed and repeated starts.

[0080] Advantageously, the rotor 29 is further dimensioned so that a moment inertia of the rotor 29 is less than 100 kg.cm2, preferably less than 90 kg.cm2, preferably less than 80 kg.cm2. This dimensioning helps to guarantee a high torque without excessively increasing the diameter of the rotor, the inertia of which is usually penalizing, when it is too high, for the dynamic operation of the kinematic chain.

[0081] During weaving, the rotor 29 rotates at a speed of approximately 750 rpm relative to the stator.

[0082] Preferably, the rotary electric motor 13 has a nominal torque of between 30 and 100 Nm, preferably between 50 and 70 Nm, preferably between 60 and 70 Nm. The motor 13 sized as described above has a torque of 65 Nm, up to 93 Nm at peak acceleration, an inertia of 78 kg.cm2 and a nominal power of 5.2 kW. The nominal power formula being the torque multiplied by the continuous and uniform angular speed of the motor: P = Cco, co = 2pin / 60, with the rotational speed of the motor n expressed in rpm.

[0083] The motor 13 advantageously comprises a position sensor 91, for example of the resolver type, a measurement of which reflects the orientation of the rotor 29 around the axis A1, relative to the stator 23. Preferably, the position sensor 91 is arranged at a rear end of the shaft 51. The sensor 91 includes, for example, a fixed part attached to the stator 23 via the flange 27, and a movable part, attached to the rear end of the shaft 51. For example, the sensor 91 allows the measurement of 4096 distinct discrete positions of the rotor 29 around the axis A1 relative to the stator 23. The microcontroller associated with the rotary electric motor 13 determines and supplies the current to the different windings of the stator 23 as a function of the position of the rotor 29 from the signals coming from the sensor 91, and the position setpoints.

[0084] Advantageously, the rotary electric motor 13 further comprises locking means, in this case a locking pin 79 and at least two notches 81 and 82, allowing a locking configuration in which the rotor 29 is immobilized relative to the stator 23 around the main axis AL. The locking configuration is shown in [Fig. 5]. The locking pin 79 is movable relative to the stator 23 in a direction parallel to the main axis AL. The first notch 81, belonging to the rotor 29, cooperates with the locking pin 79 so as to immobilize the rotor 29 in a crowd amplitude adjustment orientation. The second notch 82, belonging to the rotor 29, cooperates with the locking pin 79 so as to immobilize the rotor 29 in a crowd height adjustment orientation. These particular orientations are used when adjusting crowd height and crowd amplitude, which will be detailed later in the description.The release configuration is the configuration in which the locking means allow the rotor 29 to rotate around the stator 23. The release configuration is shown in [Fig. 3]. This is the . configuration which is used during weaving. Preferably, the notches 81 and 82 are formed at a rear axial end of the cylindrical part 53. Preferably, the locking pin 79 is mounted through the rear flange 27, so as to be able to be actuated from outside the motor 13, at the rear of the motor 13, in particular manually.

[0085] When the locking pin 79 cooperates with the notch 81 in the locking configuration, the rotor 29 is immobilized in a first orientation relative to the stator 23, called the “crowd amplitude adjustment orientation”. When the locking pin 79 cooperates with the notch 82 in the locking configuration, the rotor 29 is immobilized in a second orientation relative to the stator 23, called the “crowd height adjustment orientation”. Preferably, the notch 82 is arranged at 90 degrees relative to the notch 81 around the axis AL. The crowd height adjustment orientation is therefore at an angle of 90° relative to the crowd amplitude adjustment orientation. In practice, four notches are advantageously provided, including two diametrically opposed notches 81 and two diametrically opposed notches 82, the notches 81 and 82 being spaced 90 degrees apart from each other.

[0086] The rotational movement of the rotor 29 thus produced by the rotary electric motor 13 is then converted into the translational movement of the frame 3 by means of a connecting rod-crank-lever system, including the crank 15, the driving connecting rod 17 and the driving lever 19.

[0087] As clearly visible in [Fig.4], the crank 15 is directly attached to the rotor shaft 51, without any intermediate transmission or reducer. The crank 15 is arranged at the front of the motor 3. The plane PI separates the crank 15 from the cylindrical part 53.

[0088] The crank 15 comprises a base 73, a connecting piece 75 and a crank pin 71.

[0089] The base 73 is secured to the rotor shaft 51, to be driven in rotation by the rotor 29 around the axis A1 relative to the stator 23. The base 73 is for example fixed to the rotor shaft 51 by means of three elastic pins 85 and three assembly screws 74, parallel to the main axis A1 and regularly distributed around this axis A1. A different number of pins 85 and screws 74 can be chosen. In the present example, the base 73 forms a radial plate and two rails, forming a sliding guide for the connecting piece 75.

[0090] The connecting piece 75 is mounted on the base 73. In this embodiment, the connecting piece 75 is a through axial sliding flange which is able to slide relative to the base 73, in a radial direction relative to the axis AL. The connecting piece 75 is received between the rails and bears against the plate of the base 73 to be guided in sliding by the base 73.

[0091] The crank pin 71 defines an eccentric axis A2, parallel to the main axis Al and distant from the main axis Al by an eccentric center distance RL. The crank pin 71 and the connecting piece 75 are fixedly secured to each other.

[0092] The sliding of the connecting piece 75 and the crank pin 71 relative to the base 73 makes it possible to modify the eccentric center distance RI.

[0093] The connecting piece 75 belongs to an adjustment system of the shedding machine 3, making it possible to modify the eccentric center distance RL. Indeed, due to the structure of the shedding machine 9, the shedding amplitude is directly linked to the eccentric center distance RL. In this case, the greater the distance RI, the greater the amplitude of the stroke C3, that is to say the greater the distance between the positions B3 and H3. Modifying the eccentric center distance RI therefore makes it possible to modify the amplitude of the opening of the shedding controlled by the frame 3.For example, it is provided that the distance RI can be varied from a minimum value of 20 mm to a maximum value of 60 mm, to vary the amplitude of the stroke C3 from a minimum value of 50 mm to a maximum value of 160 mm, when the height of the stroke C3 is centered on the reference position P3, that is to say with the positions B3 and H3 equidistant from the position P3.

[0094] The adjustment system also comprises an adjustment screw 77, visible in [Fig. 3], capable of selectively allowing the sliding of the connecting piece 75 relative to the base 73 and of securing the base 73 with the connecting piece 75. When the adjustment system is in an adjustment configuration, the screw 77 is loosened and sliding is allowed. Conversely, when the adjustment system is in a locking configuration, the adjustment screw 77 is tightened and sliding is impossible. Thus, the eccentric center distance RI can be adjusted if and only if the adjustment system is in the adjustment configuration, and is fixed if the adjustment system is in the locking configuration. During weaving, the adjustment system is in the locking configuration.

[0095] As shown in Figures 3 and 4, it is advantageously provided that the adjusting screw 77 is coaxial with the axis AL. The adjusting screw 77 comprises a body which passes through an oblong orifice 76, belonging to the connecting piece 75 and which passes through the connecting piece 75. In the oblong orifice 76, a tightening nut 78 is provided, into which the screw 77 is screwed. The screw 77 further comprises a head 80, by means of which the screw 77 can be rotated, the base 73 and the connecting piece 75 are axially interposed between the nut 78 and the head 80, so that tightening the screw 77 in the nut 78 tightens the connecting piece 75 against the base 73 to prevent sliding. The head 80 is preferably arranged inside the internal duct 83 of the rotor shaft 51. As shown in [Fig.5], the head 80 is thus accessible from the rear of the motor 3, to be actuated using an adjustment tool 88, for example a screwdriver, introduced up to the head 80 from the rear of the motor 3 via the internal conduit 83. The screw 77 is chosen to be short, so as to be more resistant to forces. of torsion applied by the adjustment tool 88, as well as to minimize the inertia of the rotor 29, in particular compared to a screw whose body would extend over the entire length of the rotor shaft 51. The casing of the shaft 51 is brought as close as possible to the axis Al, while leaving a central passage just sufficient to introduce the adjustment tool 88.

[0096] The driving rod 17 is, at a first end, coupled to the crank pin 71, and pivoting about the eccentric axis A2 relative to the crank pin 71, and therefore relative to the crank 15. At a second end, the rod 17 is coupled to the driving lever 19, being pivoting about a lever axis A4 relative to the driving lever 19. The lever axis A4 is parallel to the main axis AL

[0097] R2 is a connecting rod center distance, defined as the distance between the lever axis A4 and the eccentric axis A2. Advantageously, the driving connecting rod 17 comprises two parts, telescopic with each other, so as to be able to vary the connecting rod center distance R2. The aforementioned adjustment system includes a means for adjusting the distance R2, allowing a configuration for adjusting the connecting rod center distance R2 and a configuration for locking the connecting rod center distance R2. In the crowd height adjustment configuration, sliding between the two parts of the connecting rod 17 is possible to vary the connecting rod center distance R2. This has the consequence of offsetting the stroke C3 along the axis Z3 relative to the ground, that is to say to adjust the height of the positions H3, B3 and P3 along the axis Z3.In the locked configuration, the sliding between the two parts is locked, so that the two parts are secured to each other and the connecting rod center distance R2 is fixed, thus fixing the height of the stroke C3 relative to the ground along the Z3 axis.

[0098] The attack lever 19, visible in Figures 1 and 2, is pivotable about a lever axis A3 relative to the frame 7. The first lever axis A3 is fixed relative to, and parallel to, the main axis AL. Thus, the pivoting of the attack lever 19 about the axis A3 is subject by the connecting rod 17 to the rotational movement of the crank 15, and therefore to the rotation of the rotor 29. At its end not coupled to the attack connecting rod 17, the attack lever 19 is coupled to a lower end of the upright 33A of the heald frame 3 which it actuates, preferably via a connecting rod.

[0099] By default, the locking system of the rotary electric motor 13 is in the release configuration and the adjustment system is in the locked configuration. During weaving, the microcontroller controls the powering up of the rotary electric motor 13, the rotor shaft 51 of which then describes a rotational stroke around the main axis AL. By means of the connecting rod-crank system described above, the movement is transmitted to the attack lever 19 which then describes an oscillation stroke around the first lever axis A3, driving the heddle frame 3 along the stroke C3. The stroke oscillation of the attack lever 19 includes a high frame orientation, in which the frame 3 is in its high position H3, a crossing orientation, in which the frame 3 is in its reference position P3, and a low frame orientation, in which the frame 3 is in its low position B3. The attack lever in its high frame orientation 19' and the attack lever in its low frame orientation 19” are shown in Figures 10 to 14. The desired movement for the heald frame is thus obtained from the rotary electric motor 13 optimized for the application in terms of torque and size.

[0100] The aforementioned indexing means, i.e. the indexing pin 89, requires that the carcass 21 and the locking system are oriented, around the axis A1 relative to the frame 7, so that the attack lever 19 is in the high frame orientation or in the low frame orientation when the rotor 29 is in the shed amplitude adjustment orientation in the locking configuration, and that the attack lever 19 is in the crossing orientation when the rotor 29 is in the shed height adjustment orientation in the locking configuration.

[0101] Advantageously, the shedding machine 3 is arranged so that, when the motor 13 is in the locking configuration with the rotor 29 in the shedding amplitude adjustment orientation, then the main axis A1, the eccentric axis A2 and the second lever axis A4 are substantially coplanar. This arrangement is also obtained by means of the aforementioned indexing means. In other words, the driving rod 17 is substantially positioned in the extension of a sliding direction of the connecting piece 75 relative to the base 73. This particular arrangement allows the adjustment of the eccentric center distance RI by driving the driving rod 17.

[0102] By "substantially coplanar" we allow that the axes A1, A2 and A4 are not perfectly coplanar. With respect to a perfectly coplanar orientation between a first plane defined by the axes A1 and A2 and a second plane defined by the axes A2 and A4, we allow for example a tolerance of a few degrees for an angle that the first plane would form with respect to the second plane.

[0103] The first lever axis A3 and the second lever axis A4 are connected by a lever arm straight line D34 perpendicular to the second lever axis A4. The eccentric axis A2 and the second lever axis A4 are connected by a connecting rod straight line D24 perpendicular to the second lever axis A4. The connecting rod-lever angle BL is the angle between the lever arm straight line D34 and the connecting rod straight line D24. Advantageously, the connecting rod-lever angle a is 97 degrees, plus or minus 2 degrees, when the attack lever 19 is in the crossing orientation. Thus, the asymmetry of the stroke is minimized, and the forces in the connecting rod are optimized.

[0104] The aforementioned crowd formation set 5 comprises one to sixteen groups of 9 shedding machines, each group consisting of several 9 shedding machines, preferably two to sixteen 9 shedding machines.

[0105] In the present example, there is provided on the frame 7 a group G1 of four shedding machines 9 belonging to part 7A and one shedding machine 9 belonging to part 7B, a group G2 of three shedding machines 9 belonging to part 7A and one shedding machine 9 belonging to part 7B, a group G3 of two shedding machines 9 belonging to part 7B, and five shedding machines 9 which do not belong to any group.

[0106] The attack lever 19 can be of several types. Advantageously, the shedding machines 9 of the same group have the same type of attack lever 19. Attack levers 19 of the same type are preferably identical levers 19, or at least having similar dimensions. For example, Figures 1 and 12 show the lever 19 of the shedding machines 9 of group G1, Figures 2 and 10 show the lever 19 of the shedding machines 9 of group G3, [Fig. 13] shows the lever 19 of a shedding machine 9 of group G2 and [Fig. 14] shows the attack lever 19 of a shedding machine not belonging to any group. The lever arm distance d34 of a shed forming machine 9 is the distance between the first lever axis A3 and the second lever axis A4 of said shed forming machine 9, measured along the lever arm line D34.For each group, the lever arm distance d34 of each machine 9 of the group is equal to the lever arm distance d34 of each other machine 9 of said group, in which these levers are of the same type. Within a given group, when the machines 9 of the group are in a locking configuration with the rotor 29 in one of the reference orientations, then the respective main axes A1, eccentric axes A2 and second lever axes A4 of the shedding machines 9 of said group are advantageously coplanar. Thus, for a given type of driving lever 19, the rotors 29 of each of the machines 9 of the same group are in the same angular position when the rotary electric motors 13 are in a locking configuration.

[0107] The provision of the indexing means, namely the indexing pin 89, makes it possible to easily install the motor 13 on the frame 7, in order to ensure that the axes A1, A2 and A4 are coplanar. Indeed, the indexing means 89 ensures that the orientation of the carcass 21 and therefore of the stator 23 is correct, knowing that the locking system is partly mounted on the stator 23, namely the locking pin 79. The stator 23 and the locking system being correctly oriented thanks to the indexing means, the rotor 29 is itself correctly oriented when the machine 3 is in the configuration of blocking, in order to ensure the aforementioned coplanarity. The indexing means also makes it possible to ensure that the rotor 29 and the stator 23 are positioned optimally, with regard to the development of the power of the motor 13 during weaving, considering that the accelerations and decelerations of the motor 13 are carried out at known angles which are always the same and correspond for example to the extreme positions B3 and H3 of the actuated frame 3. The indexing means also makes it possible to ensure that the position sensor 91 is correctly positioned so that the detection accuracy is maximum for these particular angles.

[0108] By virtue of these arrangements, the motor is able to stop very precisely at these particular positions, to accelerate efficiently from the particular positions, and the detection that these particular positions are reached is very precise. Advantageously, the permanent magnets 57 and the winding teeth 33 are indexed with respect to these particular positions, to provide maximum efficiency.

[0109] When adjusting the crowd height, the adjustment system is put into the adjustment configuration by inserting the locking pin 79 into the second notch 82. Thus, the rotor 29 is immobilized in its crowd height adjustment orientation. Thanks to the indexing by the indexing pin 89, this orientation of the rotor 29 corresponds to the crossing position of the attack lever 19, therefore to the reference position P3 of the heald frame 3. Then, the attack rod 17 is put into the configuration for adjusting the rod center distance R2. By manually moving the heald frame, the length of the attack rod 17 is then modified, which amounts to modifying the crowd height. Once the adjustment has been made, the attack rod 17 is again put into the configuration for locking the rod center distance R2.Finally, the locking system is returned to the release configuration by removing the locking pin 79 from the second notch 82, so that the rotary electric motor 13 can rotate again.

[0110] When adjusting the crowd amplitude, the adjustment system is put into the adjustment configuration by inserting the locking pin 79 into the first notch 81. Thus, the rotor 29 is immobilized in its crowd amplitude adjustment orientation. Thanks to the indexing by the indexing pin 89, this orientation of the rotor 29, located at 90 degrees relative to the shedding height adjustment orientation, corresponds to the high frame position or the low frame position of the attack lever 19, therefore to the high position H3 or the low position B3 of the heald frame 3. Then, the adjustment system is put in the adjustment position by unscrewing the adjustment screw 77 using the adjustment tool 88. By manually moving the heald frame 3 or using a dedicated actuator, not shown, the connecting piece 75 is then slid relative to the base 73, which amounts to modifying the eccentric distance RI, and therefore the shedding amplitude.Once the adjustment is made, the adjustment system is reset. locked position by tightening the adjustment screw 77 using the adjustment tool 88. Finally, the locking system is returned to the released configuration by removing the locking pin 79 from the first notch 81, so that the rotary electric motor 13 can rotate again.

[0111] [Fig. 15] relates to a loom 101 according to a second embodiment of the invention. This loom 101 is identical to the loom 1 of FIGS. 1 to 14 except for the differences mentioned below. The characteristics of the loom 101 which are identical or which operate in the same way as those of the loom 1 bear the same reference sign. Modified characteristics bear a reference sign increased by 100. The loom 101 differs from the loom 1 in that it comprises only four shedding machines 9 instead of sixteen. The loom 101 comprises a frame 107, which replaces the frame 7, comprising only four locations 11 respectively receiving the four machines 9.

[0112] Here, a group G101 of two shedding machines 9 and two other shedding machines 9 which do not belong to any group is provided.

[0113] Alternatively, it is provided that the loom comprises from two to thirty shedding machines.

[0114] Figures 16 to 18 relate to a loom 201 according to a third embodiment of the invention. This loom 201 is identical to the loom 1 of Figures 1 to 14 except for the differences mentioned below. The features of the loom 201 which are identical or which operate in the same way as those of the loom 1 bear the same reference sign. Modified features bear a reference sign increased by 200. The loom 201 differs from the loom 1 of the first embodiment in that the connecting piece 275 is no longer sliding relative to the base 273, but these two pieces are pivotable relative to each other about a crank axis A5, parallel to the main axis AL

[0115] As clearly visible in [Fig. 18], the connecting piece 275 comprises a through hole defining a first circular-shaped internal surface S273, centered on the crank axis A5, complementary to the base 273, and a second internal surface S278, centered on the crank axis A5 and complementary to the tightening nut 278. The first internal surface S273 and the second internal surface S278 form a pivot connection between, on the one hand, the connecting piece 275, and on the other hand, the base 273 and the tightening nut 278 which are fixed relative to each other around the axis A5.

[0116] The crank pin 271, by being fixed to the connecting piece 275 while being eccentric relative to the axis A1, defines an eccentric center distance RI which varies according to the angular position of the connecting piece 275 relative to the base 273.

[0117] Rotation of the connecting piece 275 relative to the base 273 is permitted when the adjustment system is in the adjustment configuration, i.e., the nut 278 is loosened by loosening the screw 77, so that the eccentric center distance RI can be changed. The rotation of the connecting piece 273 relative to the base 275 is blocked when the adjustment system is in the locked configuration, by tightening the nut 278 using the screw 77, so that the eccentric center distance RI is fixed.

[0118] Figures 19 and 20 relate to a loom 301 according to a fourth embodiment of the invention. This loom 301 is identical to the loom 201 of Figures 16 to 18 except for the differences mentioned below. The features of the loom 301 which are identical or which function in the same way as those of the loom 201 bear the same reference sign. Modified features bear a reference sign increased by 100. The loom 309 differs from the loom 209 of the third embodiment in that the clamping screw 377 is eccentric with respect to the axis A1, being centered on the axis A5. The machine 209 also differs from the machine 309 by the shape of the clamping nut 378, which is of circular section and centered on the axis A5. As a result, the clamping screw 377 is coaxial with the second internal surface S278.

[0119] [Fig.21] relates to a loom 401 according to a fifth embodiment of the invention. This loom 401 is identical to the loom 1 of Figures 1 to 14 except for the differences mentioned below. The features of the loom 401 which are identical or which operate in the same way as those of the loom 1 bear the same reference sign. Modified features bear a reference sign increased by 400.

[0120] Instead of the crank 15, the loom 401 comprises a crank 415, providing the same function. The crank 415 comprises a base 473, a connecting piece 475 and a crank pin 471.

[0121] The base 473 is integral with the rotor shaft 51, to be driven in rotation by the rotor 29 around the axis A1 relative to the stator 23. In the present example, the base 473 forms a radial plate, without the rails provided for the base 73.

[0122] The connecting piece 475 is mounted on the base 473. In this embodiment, the connecting piece 475 is a through axial sliding flange which is able to slide relative to the base 473, radially relative to the axis AL. The connecting piece 475 is in sliding support against the plate of the base 473. Unlike the connecting piece 75, the connecting piece 475 can pivot about the axis Al relative to the base 475, since the connecting piece 475 is not constrained by rails as is the connecting piece 75.

[0123] The crank pin 471 and the connecting piece 475 are fixedly secured to each other. Like the crank pin 71, the crank pin 471 defines the eccentric axis A2, parallel to the axis main Al and distant from the main axis Al by the eccentric center distance RI. As for the crankpin 71, the axis Al of the crankpin 471 is fixed relative to the connecting part 471.

[0124] The crank 415 is configured so that the pivoting of the connecting piece 475 around the axis A1 relative to the base 473 is subject to the sliding of the connecting piece 475 radially relative to the base 473. For this purpose, unlike the base 473, the base 473 advantageously comprises a cam groove 492 and the connecting piece 475 advantageously comprises a follower finger 493, which cooperates with the cam groove 492 by circulating along the cam groove 492, thus constraining the radial translation of the connecting piece 475 to be accompanied by a rotation of the radial piece. To this end, the cam groove 492 follows a spiral trajectory around the main axis A1.

[0125] In practice, the cam groove 492 is preferably constituted by a spiral-shaped groove, formed in a hollow on the surface of the base 473. The follower finger 493 is preferably centered on the eccentric axis A2.

[0126] The movement of the follower finger 493 in the cam groove 492 guides the connecting part 475 according to a displacement relative to the base 473, which notably includes a radial translation relative to the base 473, making it possible to modify the eccentric center distance RL.

[0127] The connecting piece 475 therefore belongs to an adjustment system making it possible to modify the eccentric center distance RI, and, consequently, the shed amplitude, in a similar manner to that explained above for the weaving loom 1.

[0128] The adjustment system of the loom 401 comprises, as for the loom 1, an adjustment screw 477, visible in [Fig. 21], capable of selectively authorizing the movement of the connecting piece 475 relative to the base 473 and of securing the base 473 with the connecting piece 475. When the adjustment system is in an adjustment configuration, the screw 477 is loosened and the movement is authorized. Conversely, when the adjustment system is in a locking configuration, the adjustment screw 477 is tightened and the movement is impossible. Thus, the eccentric center distance RI can be adjusted if and only if the adjustment system is in the adjustment configuration, and is fixed if the adjustment system is in the locking configuration. During weaving, the adjustment system is in the locking configuration.

[0129] As shown in Figure 21, it is advantageous to provide that the adjusting screw 477 is coaxial with the axis A1 and has a body which passes through an oblong hole 476 which passes through the connecting piece 475. In the oblong hole 476, a tightening nut 478 is provided, into which the screw 477 is screwed. The screw 477 further has a head 480, by means of which the screw 477 can be rotated. The base 473 and the connecting piece 475 are axially interposed between the nut 478 and the head 480, so that tightening the screw 477 in the nut 478 tightens the connecting piece 475 against the base 473 to prevent the movement of the connecting piece 475. The head 480 is preferably accessible from the rear of the motor 3 so that it can be actuated.

[0130] For this embodiment, the nut 478 guides the pivoting of the connecting piece 475 around the axis A1. The connecting piece 475 is therefore guided in its movement both by the nut, around the axis A1 fixed relative to the base 473, and by the follower finger 493, around the axis A2 fixed relative to the connecting piece 475.

[0131] In the following, the invention is explained with reference to an experimental example, which is in no way limiting.

[0132] The experiment consists of evaluating examples of rotary electric motors according to the invention, namely motors B and C, compared to a comparative electric motor A.

[0133] Comparative motor A is a commercial motor, the structure of which is described in EP1953276A1 and which has the characteristics indicated in Table 1 below. The characteristics of motor A were either observed directly on motor A (the diameters and lengths were measured), or provided by the manufacturer (nominal torque). The moment of inertia was estimated by numerical modeling of the rotor using computer-aided design software.

[0134] The motor B according to the invention is an experimental motor which has not been manufactured, but only modeled numerically. The motor B has a structure conforming to that of the motor 9 of the first embodiment of figures 1 to 15 described above. The motor B has the characteristics indicated in table 1 below. The characteristics were all obtained by numerical modeling (dimensions, moment of inertia) or estimated by calculation (nominal torque).

[0135] The engine C according to the invention is an experimental engine which has been tested on a test bench. The engine C has a structure conforming to that of the engine 9 of the first embodiment of figures 1 to 15 described above. The engine C has the characteristics indicated in table 1 below

[0136] In the table below, the ratio R corresponds to the ratio between the external diameter of the stator and the length of the cylindrical part of the rotor. The ratio Kt corresponds to the motor torque constant, expressed as a torque value obtained per unit of current I delivered by the power circuit. The torque constant is calculated at a comparable motor speed between the different motors tested, here at 750 revolutions per minute, which corresponds to a working speed of 1500 strokes per minute.

[0137] [Tables 1] Motor A Motor B Motor C Crank drive With reducer Without reducer Without reducer Presence of a rotor shaft surrounded by a cylindrical part of the rotor carrying the permanent magnets NO YES YES Moment of inertia of the rotor excluding the crank and, if a reducer is present, excluding the reducer (kg.cm2) 45 95 78 External stator diameter 128 200 180 Length of the cylindrical part 165 50 60 Ratio R 0.8 4 3 Rotor diameter 80 156 117 Nominal torque, at the rotor (Nm) 60 65 65 Ratio Kt (Nm / A) at 750 rpm 3 6 7 Number of magnet sets 2 2 2 Number of permanent magnets per set 12 40 30 Number of slots 15 48 36

[0138] Engine C develops a ratio Kt = C / 1 = 65 NM / 9.2 A = 7 Nm / A while engines A and B develop in a known manner a ratio Kt of respectively 3 Nm / A and 6 Nm / A at a speed of 750 revolutions per minute. Achieving such a constant engine torque value corresponds to the use of a high-efficiency engine.

[0139] Motor A has axially elongated proportions, with a small external stator diameter and a particularly long length of the cylindrical part. Motor A is therefore particularly bulky in the length direction. It can be seen that motor A itself has a particularly low moment of inertia. However, the nominal torque at the rotor is low given the application, so that it is necessary to provide the reducer. The small diameter limits the motor's ability to provide high torque at low current. The presence of the reducer for motor A increases the moment of inertia significantly, reduces the efficiency mechanical and increases the overall length, which is already high due to the engine itself.

[0140] Motor B is relatively short and radially more bulky, with a large stator outer diameter and a relatively short cylindrical portion length. Motor B is radially bulky, which imposes constraints on the design of the shedding assembly, for arranging several motors side by side. Providing a large stator outer diameter and rotor outer diameter allows for a large number of permanent magnets to be provided around the cylindrical portion and a large number of slots for the stator, with a large number of windings. Motor B thus provides sufficient nominal torque for the application, so there is no need to provide a reducer. Thanks to the presence of the rotor shaft surrounded by the cylindrical portion, it can be seen that motor B itself has a moderately high moment of inertia, despite its large rotor diameter.The moment of inertia of motor B is suitable for the application, especially since there is no need for a reduction gear.

[0141] Motor C is of balanced proportions, which facilitates the design of the shedding assembly, which is not too bulky, and which allows several motors to be easily arranged side by side. By providing a relatively large stator outer diameter and rotor outer diameter, a relatively large number of permanent magnets can be provided around the cylindrical part and a relatively large number of slots for the stator, with a relatively large number of windings. Motor B thus provides sufficient nominal torque for the application, so there is no need to provide a reducer. Surprisingly, the moment of inertia is particularly low, which is very advantageous for the application, especially since no reducer is required.

Claims

Claims

1. Shed forming machine (9), for actuating a heddle frame (3) of a weaving loom (1; 101; 201; 301; 401) according to a stroke (C3) in alternating translation along a frame axis, the shed forming machine (9) comprising: • a rotary electric motor (13), comprising: • a carcass (21), centered on a main axis (Al) of the rotary electric motor and configured to be secured to a machine frame (7) of the weaving loom (1; 101; 201; 301; 401), • a stator (23), integral with the frame (21), • a rotor (29), arranged in the stator (23) and comprising a cylindrical part (53), centered on the main axis (Al) and comprising an external peripheral wall (55), • a first bearing (31 A), arranged in a first plane (PI), perpendicular to the main axis (Al), on a front side of the rotary electric motor (13), and • a second bearing (31B), arranged in a second plane (P2), perpendicular to the main axis (Al), on a rear side of the rotary electric motor (13), the first bearing (31 A) and the second bearing (31B) guiding a rotation of the rotor (29) relative to the stator (23) around the main axis (Al); • a crank (15; 415), integral with the rotor (29) and comprising a crank pin (71; 271; 371; 471) defining an eccentric axis (A2), parallel to the main axis (Al) and distant from the main axis (Al) by an eccentric center distance (RD; • an attack lever (19), which is configured to be pivotable about a first lever axis (A3) relative to the machine frame (7), to actuate the heald frame (3), the first lever axis (A3) being fixed relative to, and parallel to, the main axis (Al); and • a connecting rod (17), which includes: • a first end, attached to the crankpin (71; 271; 371; 471) being pivotable around the eccentric axis (A2) relative to the crank pin (71; 271; 371; 471), and • a second end, coupled to the attack lever (19) while pivoting around a second lever axis (A4) relative to the attack lever (19), the second lever axis (A4) being parallel to the first lever axis (A3); characterized in that: • the stator (23) comprises: • winding sheets (33), surrounding the main axis (Al) and extending radially between an external stator diameter (D23e) and an internal stator diameter (D23i) centered on the main axis (Al), the winding sheets (33) forming winding teeth (35) distributed around the main axis (Al), directed towards the main axis (Al) and delimiting between them stator notches (37), which extend parallel to the main axis (Al), and • electrical windings (39), each electrical winding (39) being wound around several of the winding teeth (35) while being received in the stator notches (37); and • the rotor (29) comprises: • a rotor shaft (51), centered on the main axis (Al), surrounded by the cylindrical part (53) of the rotor (29) and being integral with the cylindrical part (53) of the rotor (29) and the crank (15; 415), and • permanent magnets (57), arranged on the external peripheral wall (55) of the cylindrical part (53) and being distributed around the main axis (Al), each permanent magnet (57) comprising a respective external surface (S57), the external surfaces (S57) being opposite the winding teeth (35) and being inscribed on a rotor circle (60), centered on the main axis (Al) and defining a diameter of rotor (D29); and • a ratio of the external stator diameter (D23e) to a length (L53) of the cylindrical part (53), measured parallel to the main axis (Al) without exceeding the permanent magnets (57), is between 2.0 and 4.0, preferably between 2.5 and 3.5, more preferably between 2.8 and 3.

2.

2. A shedding machine (9) according to claim 1, wherein: • the rotor (29) comprises a first set of permanent magnets (59A), comprising 12 to 40 permanent magnets (57), preferably 30 to 35 permanent magnets (57), preferably 30 permanent magnets (57), distributed equally around the main axis (Al); and • the stator (23) comprises 24 to 48 notches (37), preferably 32 to 40 notches (37), more preferably 36 notches (37), distributed equally around the main axis (Al).

3. A shedding machine (1) according to claim 2, wherein: • the rotor (29) comprises a second set of permanent magnets (59B), offset relative to the first set of permanent magnets (59A) along the main axis (A1), each permanent magnet (57) of the second set of permanent magnets (59B) being adjacent to one of the permanent magnets (57) of the first set of permanent magnets (59A), along the main axis (A1); and • each permanent magnet (57) of the first set of permanent magnets (59A) is angularly offset, around the main axis (A1), relative to the permanent magnet (57) of the second set of permanent magnets (59B) adjacent thereto, by an angle of 0.5 to 5 degrees, preferably 1 to 2 degrees, more preferably 1 degree.

4. A shedding machine (9) according to any one of the claims preceding indications, wherein the external stator diameter (D23e) measures between 160 and 200 mm, preferably between 170 and 190 mm, more preferably between 175 and 185 mm.

5. A shedding machine (9) according to any preceding claim, wherein the rotor (29) is designed so that a moment of inertia of the rotor (29) is less than 100 kg.cm2, preferably less than 90 kg.cm2, preferably less than 80 kg.cm2.

6. A shedding machine (9) according to any preceding claim, wherein the shedding machine (9) comprises an electrical cabinet, comprising an electrical power circuit configured to electrically power the rotary electric motor (13) and in that the rotary electric motor (13) develops a nominal torque of between 30 and 100 Nm, preferably of between 50 and 70 Nm, preferably of between 60 and 70 Nm.

7. A shedding machine (9) according to claim 6, wherein the electrical power circuit delivers a supply current of intensity I to the rotary electric motor (13) which develops a torque reported per unit of current I of between 6.5 and 8 Nm / A, preferably of between 7 and 7.5 Nm / A, when the rotational speed of the rotor (29) is maintained at 750 revolutions per minute.

8. A shedding machine (9) according to any one of the preceding claims, wherein: • each winding tooth (35) comprises: • a tooth head (41), delimited by the stator internal diameter (D23i), • a tooth root (43), delimited by the stator external diameter (D23e), and • a tooth body (45), which extends perpendicular to the main axis (A1), which connects the tooth head (41) to the tooth root (43) and which has a generally rectangular shape in projection in the first plane (PI), each tooth body (45) having a length (L45), measured radially relative to the main axis (A1), of between 19 and 25 mm, preferably between 20 and 23 mm, preferably between 21 and 23 mm; and • each electrical winding (39) forms three layers of wire around the winding tooth (35) around which said electrical winding (39) is wound.

9. A shedding machine (9) according to any preceding claim, wherein the rotor shaft (51) comprises a single piece which extends so as to connect the first plane (PI) and the second plane (P2).

10. A shedding machine (9) according to any one of the preceding claims, wherein: • the rotor (29) comprises a disc (61), extending perpendicular to the main axis (Al), comprising recesses (65) distributed around the main axis (Al) and a central bore (63), by means of which the disc (61) is fitted onto the rotor shaft (51), • the cylindrical part (53) is integral with the rotor shaft (51) and the disc (61) and surrounds the disc (61).

11. A shedding machine (9) according to claim 10, wherein the rotor shaft (51) comprises: • a centering wall (67), cooperating with the central bore (63) to center the disc (61) on the rotor shaft (51); and • a collar (69), extending radially to the main axis (Al) and being arranged between the first plane (PI) and the second plane (P2), the disc (61) being fixed to the collar (69) by means of at least one screw parallel to the main axis (Al).

12. A shedding machine (9) according to any one of the preceding claims, wherein: • the crank (15; 415) comprises: • a base (73; 273; 373; 473), integral with the rotor shaft (51), and • a connecting piece (75; 275; 375; 475), integral with the crank pin (71; 271; 371; 471) and mounted on the base (73; 273; 373; 473); and • the shedding machine (9) comprises a system adjustment, which includes locking means, configured to: • allow the adjustment of the eccentric center distance (RI), by a relative movement between the base (73; 273; 373; 473) and the connecting part (75; 275; 375; 475), in an adjustment configuration of the adjustment system, and • secure the base (73; 273; 373; 473) with the connecting piece (75; 275; 375; 475), in a locked configuration of the adjustment system.

13.

14.

15. A shedding machine (9) according to claim 12, wherein: the base (473) comprises a cam groove (492), defining a spiral around the main axis (Al); and the connecting piece (475) comprises a follower finger (493) running along the cam groove (492) to guide the connecting piece (475) relative to the base (473) when the adjustment system is in the adjustment configuration and thus vary the eccentric center distance (RI). A shedding machine (9) according to claim 12, wherein the connecting piece (275; 375) and the base (273; 373) are pivotable relative to each other about a crank axis (A5) parallel to the main axis (A1), when the adjustment system is in the adjustment configuration. A shedding machine (9) according to any preceding claim, wherein: a rotational stroke without change of direction of the rotor (29) about the main axis (A1) corresponds to an oscillation stroke of the attack lever (19) about the first lever axis (A3), the oscillation stroke including a high frame orientation, a crossing orientation and a low frame orientation of the attack lever, the crossing orientation being median between the high frame orientation and the low frame orientation; and • the rotary electric motor (13) comprises locking means, which allow: • a locking configuration, in which the locking means immobilize the rotor (29) relative to the stator (23) around the main axis (Al), selectively according to several predetermined reference orientations, including: • a crowd amplitude adjustment orientation, in which the attack lever (19) is in the high frame orientation or in the low frame orientation, and • a crowd height adjustment orientation, at 90 degrees relative to the crowd amplitude adjustment orientation and in which the attack lever (19) is in the crossing orientation; and • a release configuration, in which the locking means allow rotation of the rotor (29) around the main axis (Al) relative to the stator (23).

16. A shedding machine (9) according to claim 15, wherein the locking means comprises: • a locking pin (79), movable relative to the stator (23) in a direction parallel to the main axis (Al); • a first notch (81), belonging to the rotor (29) and cooperating with the locking pin (79) in the locking configuration, to immobilize the rotor (29) in the crowd amplitude adjustment orientation; and • a second notch (82), belonging to the rotor (29) and cooperating with the locking pin (79) in the locking configuration, to immobilize the rotor (29) in the crowd height adjustment orientation.

17. A shedding machine (9) according to any one of claims 15 or 16, wherein the shedding machine (9) is arranged so that when the rotary electric motor (13) is in the locking configuration with the rotor (29) in the shedding amplitude adjustment orientation, then the main axis (A1), the eccentric axis (A2) and the second lever axis (A4) are substantially coplanar.

18. A shedding machine (9) according to any one of claims 15 to 17, wherein the shedding machine (9) comprises: • a front flange (25), integral with the carcass (21) and comprising a circular flange (26), configured to cooperate with the machine frame (7), so that the carcass (21) can be positioned on the machine frame (7); • means for fixing the rotary electric motor (13) to the machine frame (7), for fixing the rotary electric motor (13) to the machine frame (7) when the circular flange (26) cooperates with the machine frame (7);and • an indexing means, which is distinct from the fixing means and which requires that, when the circular flange (26) cooperates with the machine frame, the carcass (21) is positioned so that: • the attack lever (19) is in the high frame orientation or in the low frame orientation when the rotor (29) is in the crowd amplitude adjustment orientation in the blocking configuration, and • the attack lever (19) is in the crossing orientation when the rotor (29) is in the crowd height adjustment orientation in the blocking configuration.;

19. A shedding machine (9) according to any one of claims 15 to 18, wherein: • the first lever axis (A3) and the second lever axis (A4) are connected by a lever arm line (D34) perpendicular to the second lever axis (A4); • the eccentric axis (A2) and the second lever axis (A4) are connected by a connecting rod line (D24) perpendicular to the second lever axis (A4) and defining a connecting rod-lever angle (BL) with the lever arm line (D34); and • the connecting rod-lever angle (BL) is 97 degrees, plus or minus 2 degrees, when the attack lever (19) is in the crossing orientation.

20. A shedding assembly (5), comprising a group (G1; G2; G3; G4) of shedding machines (9) according to any one of the preceding claims and wherein: • each shear forming machine (9) of the group (G1; G2; G3; G4) defines a lever arm distance (d34), measured between the first lever axis (A3) and the second lever axis (A4); • the lever arm distance (d34) of each shedding machine (9) of the group (G1; G2; G3; G4) is equal to the lever arm distance (d34) of each other shedding machine (9) of the group (G1; G2; G3; G4); and • when the shedding machines of the group (9) are in a locking configuration with the rotor (29) in one of the reference orientations, then the respective main axes (A1), eccentric axes (A2) and second lever axes (A4) of the shedding machines (9) of the group (G1; G2; G3; G4) are coplanar.

Citation Information

Patent Citations

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