专利摘要:
The invention relates mainly to a method of winding a stator (10) for a multiphase electrical machine, said stator (10) having notches (15) and intended to receive conductors (C1-C3, C1'-C3 ' ) a winding, said winding comprising for each phase a winding (PH1-PH3, PH1'-PH3 ') and forming two systems (A, B) each comprising a respective group of windings (PH1-PH3, PH1'- PH3 '), said method comprising steps of installing the conductors (C1-C3, C1'-C3') in said recesses (15) repeated so as to form a coil comprising a plurality of concentric turns, characterized in that one of the steps for installing the conductors (C1-C3, C1'-C3 ') in a series of notches (15) is subdivided into a first step of installing the conductors (C1-C3) of a first turn ( SD) of the first system (A); followed by a second installation step (SD) of the conductors (C1'-C3 ') of the first turn (SD) of the second system (B) while the first step of installing the conductors (C1-C3) of the first system (A) continues.
公开号:FR3033456A1
申请号:FR1551834
申请日:2015-03-05
公开日:2016-09-09
发明作者:Vincent Ramet;Alain Defebvin;Jean Duquesne;Jerome Fournier;Stephane De-Clercq;Sebastien Leclercq;Geoffroy Wilquin
申请人:Valeo Equipements Electriques Moteur SAS;
IPC主号:
专利说明:

[0001] The present invention relates to a method of winding a stator of a rotating electrical machine, as well as to the corresponding wound stator.
[0002] The invention finds a particularly advantageous application for a stator of a rotary electrical machine such as for example an alternator, an alternator-starter, or an electric motor. In known manner, the rotating electrical machines comprise a stator and a rotor secured to a shaft. The rotor may be integral with a driving shaft and / or driven and may belong to a rotating electrical machine in the form of an alternator as described in EP0803962 or an electric motor as described in EP0831580. The electric machine has a housing carrying the stator. This housing is also configured to rotate the rotor shaft for example by means of bearings. This alternator comprises in particular a housing and, inside thereof, a claw rotor, fixed in rotation directly or indirectly to a shaft, and a stator, which surrounds the rotor with the presence of a small air gap . The rotor comprises a coil and a pair of pole wheels composed of a cylindrical portion carrying the rotor coil, as well as disk portions extending from the ends of the cylindrical portion. In addition, a plurality of claw-shaped magnetic poles extend axially from said disk portions to cover the rotor coil. The claws of one pole wheel are directed axially towards the other pole wheel, the claw of a pole wheel penetrating the space between two claws adjacent to the other pole wheel, so that the claws of the pole wheels are nested with each other. The outer periphery of the claws is axially oriented and defines with the inner periphery of the stator body the air gap between the stator and the rotor. The inner periphery of the claws is inclined, the claws being less thick at their free end. In a variant, the rotor comprises a body formed by a stack of sheets of sheets held in the form of a package by means of a suitable fastening system, such as rivets passing axially through the rotor from one side to the other. The rotor comprises poles formed for example by permanent magnets housed in cavities formed in the magnetic mass of the rotor, as described for example in document EP0803962.
[0003] Alternatively, in an architecture called "salient" poles, the poles are formed by coils wound around rotor arms. The stator comprises a body constituted by a stack of thin sheets and a winding of the phases received in slots of the stator open towards the inside. Phases are usually three or six. In the 10 stators of alternators of this type, the most commonly used types of windings are, on the one hand, so-called "concentric" windings constituted by closed coils on themselves which are wound around the teeth of the stator, and secondly, the windings of the type called "corrugated". A corrugated coil has a plurality of phase windings, each phase winding having a spiral conductor of which each turn forms undulations passing through the notches of the body. Thus, in each turn, the conductor has loop structures located alternately on each side of the rotor or the stator interconnecting segment structures located within the slots of the stator. The conductor may be formed of one or more electrically conductive wires. The document FR2947968 teaches the implementation of an in-situ winding process in which all of the phase windings are wound at the same time and in parallel in the corresponding notches 25 of the stator body. In the case of a hexaphase winding comprising two three-phase systems, this implies that the inputs of the two systems obtained at the beginning of the winding are grouped together in the same zone, while the outputs of the two systems obtained at the end of the winding are grouped together. between them in a separate area and away from the entrance area. Accordingly, in the case where it is desired to perform the coupling of the two three-phase systems, it is necessary to perform a complementary operation of orientation and ligation of the phase windings 3033456 3 to group on the one hand the inputs and the outputs of the first three-phase system and secondly the inputs and outputs of the second three-phase system, or to group one or more phase winding of the first system with one or more phase winding of the second system so as to create two systems phase. However, such a complementary ligation operation is long and expensive to perform assembly line. The invention aims to effectively overcome this disadvantage by proposing a method of winding a stator for a multiphase electrical machine, said stator comprising notches intended to receive conductors of a winding, said winding comprising for each phase a winding and forming two systems each comprising a respective group of windings, said method comprising steps of installing the conductors in said repeated notches to form a coil comprising a plurality of concentric turns. According to one characteristic, one of the steps of installing the conductors in a series of notches is subdivided into a first step of installing at least one of the conductors of a first turn of the first system; followed by a second step of installing at least one of the 20 conductors of the first turn of the second system while the first step of installing at least one of the conductors of the first system continues. The invention thus makes it possible to position the inputs of the two systems in two different places, which facilitates the coupling of the two systems by allowing the positioning of the inputs in front of the corresponding control electronics. The invention thus makes it possible to eliminate the orientation and ligation step carried out in the methods of the state of the art. According to one implementation, during the step of installing at least one of the conductors of a first turn of the first system, all the conductors of a first turn of the first system are installed and in the second step installing at least one of the conductors of the first turn of the second system, we install all the conductors of the first turn of the second system.
[0004] According to one implementation, said subdivided installation step also comprises a first step of installing the conductors of a last turn of the first system; and a second step of installing the conductors of the last turn of the second system, said first step of installing the conductors of the last turn of the first system ending before the second step of installing the conductors of the last turn of the second system. The invention also makes it possible to position the outputs of the two systems in two different places, which facilitates the coupling of the two systems by allowing the positioning of the outputs in front of the corresponding control electronics. According to one implementation, the second stage of installation of the conductors of the last turn of the second system continues while the first step of installing the conductors of the last turn of the first system 15 ends, on a number of notches corresponding to a predetermined angle of said stator. According to one implementation, said first and second installation steps of the conductors of the last turn are triggered simultaneously.
[0005] According to one embodiment, said first and second steps for installing at least one of the conductors of the first turn terminate simultaneously. According to one embodiment, the portions of the conductors of the first turn installed first in said notches during the first or second installation step of at least one of the conductors of the first turn respectively correspond to the winding inputs of the first turn. system or the second system. According to one embodiment, the parts of a conductor connecting the two parts of this conductor installed in two consecutive notches being loop structures, the method further comprises a step of drawing at least one of the loop structures of so as to form an over-length followed by a step of passing an input wire of the coil through said over-length so that said input wire is held. According to one embodiment, the portions of the conductors of the last turn installed last in said notches during the first or second installation step of the conductors of the last turn respectively correspond to the outputs of the winding of the first system or the second system. . According to one embodiment, the parts of a conductor connecting the two parts of this conductor installed in two consecutive notches being loop structures, the method further comprises a step of drawing at least one of the loop structures of so as to form an over-length followed by a step of passing an output wire of the winding through said over-length so that said output wire is maintained. According to one embodiment, the second step of installing at least one of the conductors of the first turn of the second system is triggered when a number of notches corresponding to a predetermined angle of said stator is covered by the first step. installing at least one of the conductors of the first turn of the first system. The invention also relates to a multiphase electrical machine stator 20, said stator comprising notches intended to receive conductors of a coil, said coil comprising for each phase a winding and forming two systems each comprising a respective group of windings. said coil comprising a plurality of concentric turns formed by conductors in a series of notches, characterized in that the first turn comprises conductors of the first system installed in a first series of notches and conductors of the second system installed in a second series of notches, the number of notches of the first series filled by the drivers of the first system being greater than that of the number of notches of the second series filled by the drivers of the second system.
[0006] In one embodiment, the last turn comprises conductors of the first system installed in a first series of notches and conductors of the second system installed in a second series of notches, the number of notches of the first series filled by the 5 drivers of the first system being less than the number of slots of the second series filled by the drivers of the second system. According to one embodiment, the sum of the number of notches of the first series filled by the drivers of the first system in the first turn and the last turn is equal to the sum of the number of notches of the second 10 series filled by the drivers of the second system. in the first turn and the last turn. The invention will be better understood on reading the description which follows and on examining the figures which accompany it. These figures are given for illustrative but not limiting of the invention.
[0007] FIG. 1 is a perspective view of a wound stator obtained following the implementation of the winding method according to the present invention; FIGS. 2a to 2d illustrate, for a stator shown in planar projection, the different types of turns made during the implementation of the winding method according to the present invention; FIG. 3 illustrates the coupling of the two three-phase systems obtained following the implementation of the method according to the present invention; FIG. 4 is a list of the numbers of the notches filled by the conductors of the phases of the different systems respectively during the production of the starting turn, the odd turns, the 25-pair turns, and the end winding turn. Figure 5 illustrates a step of passing an input wire of the winding in a loop structure. Identical, similar or similar elements retain the same reference from one figure to another.
[0008] FIG. 1 is a perspective view of a wound stator 10 of a rotating electrical machine which mainly comprises a body 11 in which several PH1-PH3 phase windings are mounted; PH1'-PH3 'forming a coil. The rotary machine is for example an alternator or a 5 alternator-starter. This machine is preferably intended to be implemented in a motor vehicle. It will be recalled that an alternator / starter is a rotating electrical machine capable of reversibly working on the one hand as an electric generator in alternator function and, on the other hand, as an electric motor, in particular for starting the thermal engine of the vehicle. automobile. The stator body 11 has an annular cylindrical shape of axis X and consists of an axial stack of plane sheets. The body 11 has teeth 12 angularly distributed regularly over an inner circumference of a yoke 13. These teeth 12 delimit two by two notches 15. The yoke 13 corresponds to the solid annular portion of the body 11 which extends between the bottom of the notches 15 and the outer periphery of the body 11. The notches 15 open axially on either side of the body 11. The notches 15 are also open radially in the inner face of the body 11. The notches 15 may be parallel edges, that is to say that the inner faces vis-à-vis one of the other are parallel to each other. Alternatively, in another configuration, one can also find teeth 12 parallel edge, and in this case the notches are called trapezoidal. The notches 15 are for example 36, 48, 60, 72, 84, or 96. In the exemplary embodiment, the stator 10 comprises 72 notches. Preferably, the stator 10 is devoid of toes in order to facilitate insertion of the conductors during the winding step. Alternatively, in another configuration, the teeth 12 may be provided with tooth stands. Insulators 16 are arranged in the notches 15 of the stator.
[0009] To form the stator winding 10, a plurality of phase windings PH1-PH3, PH1'-PH3 'are installed in the notches 15 of the body 11. In this case, the "hexaphase" stator has six phase windings to form two three-phase systems coupled together. The invention is however applicable to stators having a larger number of three-phase systems or to systems each having a number of phase windings different from three windings. Each phase winding PH1-PH3, PH1'-PH3 'is constituted by a conductor C1-C3, C1'-C3' folded in the form of a coil and wound inside the stator in the notches 15 to form a turn, the winding of several concentric turns performing the winding of the complete phase. Each notch 15 receives several times the conductor C1-C3, C1'-C3 'of the same phase, and when there are N phases the conductor of the same phase winding PH1-PH3, PH1'-PH3' is inserted all the N notches 15. In each turn, the conductor C1-C3, C1'-C3 'and has loop structures 19a, 19b alternately located on each side of the rotor or the stator interconnecting segment structures 18 located in a series of notches 15 associated with a given phase winding. It should be noted that each conductor C1 -C3, C1-C3 'may comprise a single wire or a bundle of M conductive son, M being greater than or equal to 2. In this case the son has a round section. Alternatively, in order to optimize the filling of the notches 15, the wires may have a rectangular or square section. The conductors are preferably made of copper covered with enamel. With reference to FIGS. 2a to 2d, the method for obtaining the hexaphase wound coil (N = 6) comprising a first three-phase system A formed by the phase windings PH1-PH3 and a second three-phase system is described below. three-phase system B formed by the windings PH1'-PH3 '. Each phase winding PH1-PH3, PH1'-PH3 'is constituted by a corresponding conductor C1 -C3, C1-C3' coiled. In this case, the conductors C1-C3, C1'-C3 'each have a bundle of M = 2 wires, even though only one wire per conductor has been shown in the figures to facilitate understanding of the method. More precisely, as illustrated in FIG. 2a, a first step of installation of the conductors C1-C3 of the first system A is carried out so as to form a first turn, called the start turn SD. To this effect, the conductors C1-C3 are inserted into three distinct notches 15 corresponding to the first system A. Two adjacent notches 15 of this set are spaced apart by a notch left free to allow the subsequent insertion of the C1 conductors. '-C3' of the second three-phase system B, as explained below. In the example shown, the conductors C1-C3 of the first system A are inserted into the notches respectively numbered 26, 28, and 30. The portions of the conductors C1-C3 of the starter coil installed first in the notches 15 during this first installation step 10 correspond to the inputs E1-E3 of the winding of the first system. The C1 -C3 conductors of the first system A are then folded to form loop structures 19a, here of substantially triangular shape, protruding from the same side of the stator 10. The drivers C1 -C3 of the first system A are then inserted each in the next notch 15 which is located N notches after the first. The C1-C3 conductors are then bent to form loop structures 19b that protrude from an opposite side to that of the first loop structures 19a. Thus, the loop structures 19a, 19b are located outside the stator 10 alternately on one side or the other of the stator, the assembly of the loop structures 19a, 19b protruding from the same side of the stator 10 forming a winding bun. Thus, the winding of the first system A continues to be formed until a number of notches 15 corresponding to a predetermined angle α of the stator 10 are covered by the first step of installation of the conductors C1-C3 of the first system. A. This angle a is predetermined such that the inputs E1-E3; E1'-E3 'of the two three-phase systems A, B are respectively opposite the corresponding control electronics. When this predetermined angle is reached, for example an angle α of the order of 120 degrees, a second stage of installation of the drivers C1 '-C3' of the starting turn SD of the second system B is carried out. Indeed, the portions of the conductors C1'-C3 'of the second system B corresponding to the inputs E1'-E3' are inserted into the free slots 15 situated between the notches filled by the first system A as well as in an adjacent notch 15, so that to alternatively have a notch 30 receiving a conductor from one of the systems A, B and then a notch receiving a conductor from the other system A, B. The drivers C1 '- C3' of the second system B may thus for example they are inserted into the notches 15, numbered 1, 3, and 5, respectively, while the leads C1-C3 of the first system A are in the notches 15, numbered 2, 4 and 6 respectively (see FIG. Since the installation step of the conductors C1-C3 of the first system A continues, the simultaneous winding of the two three-phase systems A, B is then carried out simultaneously. In other words, the simultaneous winding of the N conductors C1-C3 is carried out in parallel. , C1'-C3 'in successive series of N notches 15. The winding of the systems A, B having been carried out in a first direction K1 during the winding of the starter coil SD, then a CH1 direction change is performed, represented in FIG. discontinuous lines to pass in a second winding direction K2 to make an odd 15 turn SI, as shown in Figure 2b. The two systems A, B are then wound simultaneously in the odd turn SI following a complete revolution of the stator 10, that is to say that all the notches 15 of the stator 10 are filled successively by series of N notches by the two systems. A, B in the direction K2 (see Figure 4).
[0010] When the turn of the odd turn IS is completed, CH2 directional change is made to go back in the winding direction K1 in order to achieve a SP even turn, as illustrated in FIG. 2c. The two systems A, B are then wound simultaneously in the SP even turn following a complete revolution of the stator 10, that is to say that all the notches 15 of the stator 25 are filled successively by series of N notches by the two systems A, B in the direction K1 (see Figure 4). It should be noted that during a winding phase in the opposite direction, each loop structure 19a, 19b of a conductor C1-C3, C1'-C3 'belonging to a given winding PH1-PH3, PH1'-PH3' will be placed in the free space 30 between two loop structures 19a, 19b of the conductors C1-C3, C1'-C3 'obtained during the winding phase in the first direction. This produces a symmetrical winding of distributed corrugated type.
[0011] When the turn of the SP even turn is complete, a new CH3 direction change is made to make a new odd turn SI, and so on until the desired number of turns is reached. In the case where it is desired to make six complete turns (not counting the start winding SD or the winding turn end SF), three CH2 directional changes are thus made to pass 1/3/5 turns made following the direction K2 towards the turns 2/4/6 carried out according to the direction K1. In addition, two CH3 direction changes are made to pass 2/4 turns made along the K1 direction to the turns 3/5 made along the K2 direction.
[0012] In the present case, the direction K1 corresponds to an insertion of the conductors C1-C3, C1'-C3 'in decreasing series of notches; while the direction K2 corresponds to an insertion of the conductors C1-C3, C1'-C3 'in increasing sets of notches. However, alternatively, these two winding directions K1, K2 could be reversed.
[0013] At the end of the winding process, and after having made a last change of direction, it is realized, as illustrated in FIG. 2d, a first stage of installation of the conductors C1 -C3 of the last turn SF of the first system. A, and a second step of installing conductors Cl '-C3' of the last turn SF of the second system B.
[0014] These two installation steps are triggered simultaneously. However, the installation step of the conductors C1-C3 of the last turn SF of the first system A ends before the step of installing the conductors C1 '-C3' of the last turn SF of the second system B. The portions conductors of the last turn SF installed last 25 in the notches 15 during the first or the second stage of installation of the conductors C1-C3, C1'-C3 'of the last turn respectively correspond to the outputs S1-53 of the winding the first system A or the outputs 51'-S3 'of the winding of the second system B. It should be noted that the second step of installing the drivers C1' -C3 'of the last turn SF of the second system B continues whereas the first step of installation of the C1 -C3 conductors of the last turn SF of the first system A ends, on a number of notches 15 corresponding to a predetermined angle 13 of the stator 10. This angle 13, for example of the order of 120 degrees, e st predetermined so that the outputs S1-S3, Si-S3 'of two three-phase systems A, B are opposite the corresponding control electronics.
[0015] Thus, at the end of the method, the inputs E1-E3, E1'-E3 'and the outputs S1-S3, S1'-S3' of each system are grouped together in one and the same zone, so that it is It is possible to easily perform the delta coupling of each of the three-phase systems A, B. For this purpose, in the first system A, the input E1 of the first phase winding PH1 is connected to the output S2 of the second phase winding PH2. the output S1 of the first phase winding PH1 is connected to the output S3 of the third phase winding PH3, and the input E2 of the second phase winding PH2 is connected to the input E3 of the third phase winding PH3.
[0016] Furthermore, in the second system B, the input E1 'of the first phase winding PH1' is connected to the output S2 'of the second phase winding PH2', the output S1 'of the first phase winding PH1' is connected. at the output S3 'of the third phase winding PH3', and the input E2 'of the second phase winding PH2' is connected to the input E3 'of the third phase winding PH3'. Of course, alternatively, the three-phase systems A, B may be star-coupled. Alternatively, A can be star-coupled while B will be coupled in a triangle. As is apparent from FIG. 4, in the wound stator 10, the starting winding SD comprises conductors C1-C3 of the first system A installed in a first series of Ser_l_SD notches and C1'-C3 'conductors of the second system. B installed in a second set of notches Ser_2_SD, the number of notches 15 of the first series Ser_l_SD filled by the drivers C1-C3 of the first system A being greater than the number of notches of the second series Ser_2_SD filled by the conductors C1'-C3 'of the second system B. The difference between the number of notches of these two series Ser_l_SD and Ser_2_SD 3033456 13 corresponds to the predetermined angle a between the inputs E1-E3; E1'-E3 'of the two systems A, B. In addition, the last turn SF comprises C1-C3 conductors of the first system A installed in a first set of notches Ser_1_SF and 5 drivers C1'-C3' of the second system B installed in a second set of notches Ser_2_SF, the number of notches 15 of the first series Ser_1_SF filled by the drivers C1-C3 of the first system A being less than the number of notches 15 of the second series Ser_2_SF filled by the drivers C1'-C3 'of the second system B. The difference between the number of slots of these two series Ser_1_SF and Ser_2_SF corresponds to the predetermined angle 13 between the outputs S1-S3, S1'-S3' of the two systems A, B. In addition, the sum of the number of notches 15 of the first series Ser_1_SD, Ser_1_SF filled by the drivers C1-C3 of the first system A in the first turn SD and the last turn SF is equal to the sum of the number of notches 15 of the second series Ser_2_SD, Ser _2_SF filled by the drivers C1'-C3 'of the second system B in the first turn SD and the last turn SF. As illustrated in FIGS. 1, 4 and 5, the parts of a conductor connecting the two parts of this conductor housed or installed in two consecutive notches 15 are loop structures 19a or 19b. There is shown a stator with a coil comprising input outputs all located in outer diameter of the coil, that is to say in the winding layer furthest from the axis. It is also possible to provide a coil according to which the 3 inputs E1-E3 of the first system are located in inner diameter, that is to say in the winding layer closest to the axis, while the 3 outputs S1- S3 of the first system are located in outer diameter that is to say in the winding layer furthest from the axis. Similarly for the second system, it is also possible to provide a winding according to which the 3 inputs E'1-E'3 of the second system are located in internal diameter, that is to say in the winding layer the most close to the axis while the 3 outputs S'1-S'3 of the second system are located in outer diameter that is to say in the winding layer farthest from the axis. As illustrated in FIG. 5, it is possible to modify a loop structure 19a so as to form an over-length. Then it is then possible to pass an input wire El from the winding through said over-length so that said input wire is held. It would also be possible to pass in the place of the input wire, an output wire S1-S3 S1'-S3 'in said over-length. Similarly, it is also possible to modify a loop structure 19b so as to form an over-length. In this case, it is then possible to pass either an input wire or an output wire of the winding through said over-length so that said input or output wire is maintained. Of course, the foregoing description has been given by way of example only and does not limit the scope of the invention which would not be overcome by replacing the different elements or steps by any other equivalents.
权利要求:
Claims (14)
[0001]
REVENDICATIONS1. A method of winding a stator (10) for a multiphase electrical machine, said stator (10) having notches (15) for receiving conductors (C1-C3, C1'-C3 ') of a winding, said winding comprising for each phase a winding (PH1-PH3, PH1'-PH3 ') and forming two systems (A, B) each comprising a respective winding group (PH1-PH3, PH1'-PH3'), said method comprising installation steps of the conductors (C1-C3, C1'-C3 ') in said recesses (15) repeated so as to form a coil comprising a plurality of concentric turns (SD, SI, SP, SF), characterized in that one of the steps of installing the conductors (C1-C3, C1'-C3 ') in a series of notches (15) is subdivided into a first step of installing at least one of the conductors (C1-C3) a first turn (SD) of the first system (A); followed by a second installation step (SD) of at least one of the conductors (C1'-C3 ') of the first turn (SD) of the second system (B) while the first installation step of at least one of the drivers (C1-C3) of the first system (A) continues.
[0002]
2. A winding method according to claim 1, characterized in that during the step of installing at least one of the conductors (C1-C3) of a first turn (SD) of the first system (A), installs all the conductors (C1-C3) of a first turn (SD) of the first system (A) and during the second installation step (SD) of at least one of the conductors (C1'-C3 ') of the first turn (SD) of the second system (B), we install all the conductors (C1'-C3 ') of the first turn (SD) of the second system (B).
[0003]
3. Method according to claim 1 or 2, characterized in that said subdivided installation step also comprises a first step of installation of the conductors (C1-C3) of a last turn (SF) of the first system (A); and a second step of installing the conductors (C1'-C3 ') of the last turn (SF) of the second system (B), said first conductor installation step (C1-C3) of the last turn ( SF) of the first system (A) ending before the second installation step of the conductors (C1'-C3 ') of the last turn (SF) of the second system (B).
[0004]
4. Method according to claim 1 or 2, characterized in that the second step of installing the conductors of the last turn (SF) of the second system (B) continues while the first step of installing the conductors (C1 -C3) of the last turn (SF) of the first system (A) ends, on a number of notches (15) corresponding to a predetermined angle (13) of said stator (10). 10
[0005]
5. Method according to claim 3 or 4, characterized in that said first and second stages of installation of the conductors (C1-C3, C1 '-C3') of the last turn (SF) are triggered simultaneously.
[0006]
6. Method according to any one of claims 1 to 5, characterized in that said first and second stages of installation 15 of at least one of the conductors (C1-C3, C1'-C3 ') of the first turn ( SD) terminate simultaneously.
[0007]
7. Method according to any one of claims 1 to 6, characterized in that the portions of the conductors (C1-C3, C1'-C3 ') of the first turn (SD) of the first or the second system installed first in said notches (15) during the first or second installation step of at least one of the conductors (C1-C3, C1'-C3 ') of the first turn (SD) correspond respectively to the inputs (E1-E3, E1'-E3 ') of the winding of the first system (A) or the second system (B).
[0008]
8. A method according to claim 7, wherein the parts of a conductor connecting the two parts of this conductor installed in two consecutive notches (15) being loop structures (19a, 19b), the method further comprises a drawing step. at least one of the loop structures so as to form an over-length followed by a step of passage of an input wire (E1-E3, E1'-E3 ') of the winding through said sur- length so that said input wire is maintained.
[0009]
9. Method according to any one of claims 1 to 8, characterized in that the portions of the conductors (C1-C3, C1'-C3 ') of the last turn (SF) of the first or second system installed in last in said notches (15) during the first or second installation step of the conductors (C1-C3, C1'-C3 ') of the last turn (SF) 5 respectively correspond to the outputs (S1-S3, S1'- S3 ') of the winding of the first system (A) or the second system (B).
[0010]
10. The method of claim 9 wherein the portions of a conductor connecting the two portions of this conductor installed in two consecutive notches (15) being loop structures, the method further comprises a pulling step of at least one loop structures so as to form an over-length followed by a step of passing an output wire (S1-S3, S1'-S3 ') of the winding through said over-length so that said wire output is maintained.
[0011]
11. Method according to any one of claims 1 to 10, characterized in that the second step of installing at least one of the conductors (C1'-C3 ') of the first turn (SD) of the second system ( B) is triggered when a number of notches (15) corresponding to a predetermined angle (a) of said stator (10) is covered by the first step of installing at least one of the conductors (C1-C3) of the first turn 20 (SD) of the first system (A).
[0012]
12. Stator (10) of multiphase electrical machine, said stator (10) having notches (15) for receiving conductors (C1-C3, C1'-C3 ') of a winding, said winding comprising for each phase a winding (PH1-PH3, PH1'-PH3 ') and forming two systems (A, B) each comprising a group of respective windings (PH1-PH3, PH1'-PH3'), said winding comprising a plurality of turns ( SD, SI, SP, SF) concentric formed by conductors (C1-C3, C1'-C3 ') in a series of notches (15), characterized in that the first turn (SD) comprises 30 conductors (C1 -C3) of the first system (A) installed in a first series of notches (Ser_1_SD) and conductors (C1'-C3 ') of the second system (B) installed in a second series of notches (Ser_2_SD), the number of notches (15) of the first series (Ser_1_SD) filled by the 3033456 18 conductors (C1-C3) of the first system (A) being greater than that of the number of notches (15) of the two series (Ser_2_SD) filled by the drivers (C1'-C3 ') of the second system (B).
[0013]
13. Stator according to claim 12, characterized in that the last 5 turn (SF) comprises conductors (C1-C3) of the first system (A) installed in a first series of notches (Ser_1_SF) and conductors (C1 ' -C3 ') of the second system (B) installed in a second series of notches (Ser_2_SF), the number of notches (15) of the first series (Ser_1_SF) filled by the drivers (C1-C3) of the first system ( A) 10 being smaller than the number of notches (15) of the second series (Ser_2_SF) filled by the conductors (C1'-C3 ') of the second system (B).
[0014]
14. Stator according to claims 12 and 13, characterized in that the sum of the number of notches (15) of the first series (Ser_1_SD, Ser_1_SF) filled by the conductors (C1-C3) of the first system (A) 15 in the first turn (SD) and the last turn (SF) is equal to the sum of the number of notches (15) of the second series (Ser_2_SD, Ser_2_SF) filled by the drivers (C1'-C3 ') of the second system (B) in the first turn (SD) and the last turn (SF).
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同族专利:
公开号 | 公开日
US20180034351A1|2018-02-01|
CN107408860A|2017-11-28|
WO2016139430A1|2016-09-09|
FR3033456B1|2019-10-18|
CN107408860B|2021-12-31|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题
EP0454039A1|1990-04-24|1991-10-30|Nippondenso Co., Ltd.|Alternating current generator having a plurality of independent three-phase windings|
EP1258968A2|2001-05-18|2002-11-20|Delphi Technologies, Inc.|Generator having stator assembly with improved phase coil insertion in order to reduce noise|
US20070182267A1|2006-02-03|2007-08-09|Kirk Neet|Dynamoelectric machine having reduced magnetic noise and method|
FR2947968A1|2009-07-09|2011-01-14|Valeo Equip Electr Moteur|WINDING OF A ROTATING ELECTRIC MACHINE|
IT240620Y1|1996-04-23|2001-04-02|Bamo Elettroutensili S R L|POLAR PACK STRUCTURE, FOR DIALTERNATOR AND SIMILAR PERMANENT MAGNET ROTORS|
ES2193305T3|1996-09-21|2003-11-01|Diehl Ako Stiftung Gmbh & Co|INSTALLATION FOR THE CONTROL OF THE DRIVING CURRENT OF A PERMANENT MOTOR ELECTRIC SWITCHED.|
CN2922250Y|2006-05-17|2007-07-11|江西特种电机股份有限公司|Motor winding|FR3069117B1|2017-07-11|2019-08-02|Valeo Equipements Electriques Moteur|IMPROVED WINDING METHOD OF STATOR OF ROTATING ELECTRICAL MACHINE AND CORRESPONDING COIL STATOR|
CN111989845A|2018-02-28|2020-11-24|格鲁博-工厂有限及两合公司|Winding mat and coil mat comprising said winding mat and component of an electric machine formed thereby and method for producing same|
FR3099661B1|2019-07-29|2021-12-03|Nidec Psa Emotors|Rotating electric machine stator with simplified winding|
法律状态:
2016-03-31| PLFP| Fee payment|Year of fee payment: 2 |
2016-09-09| PLSC| Publication of the preliminary search report|Effective date: 20160909 |
2017-03-31| PLFP| Fee payment|Year of fee payment: 3 |
2018-03-29| PLFP| Fee payment|Year of fee payment: 4 |
2019-03-29| PLFP| Fee payment|Year of fee payment: 5 |
2020-03-31| PLFP| Fee payment|Year of fee payment: 6 |
2021-03-30| PLFP| Fee payment|Year of fee payment: 7 |
优先权:
申请号 | 申请日 | 专利标题
FR1551834|2015-03-05|
FR1551834A|FR3033456B1|2015-03-05|2015-03-05|METHOD FOR WINDING A STATOR OF ROTATING ELECTRICAL MACHINE AND CORRESPONDING STATOR COIL|FR1551834A| FR3033456B1|2015-03-05|2015-03-05|METHOD FOR WINDING A STATOR OF ROTATING ELECTRICAL MACHINE AND CORRESPONDING STATOR COIL|
CN201680013940.1A| CN107408860B|2015-03-05|2016-03-03|Method for winding a stator of a rotating electrical machine and corresponding wound stator|
PCT/FR2016/050491| WO2016139430A1|2015-03-05|2016-03-03|Method for winding a stator of a rotary electric machine and corresponding wound stator|
US15/552,902| US20180034351A1|2015-03-05|2016-03-03|Method for winding a stator of a rotary electrical machine, and corresponding wound stator|
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