This application is a national stage application of International Application No. PCT/KR2015/008272 filed Aug. 7, 2015, which claims priority to Korean Patent Application No. 10-2014-0101741 filed Aug. 7, 2014, the disclosures of which are incorporated herein by reference and to which priority is claimed.
The present invention relates to a wire assembly for rotary electric machine and corresponding method to obtain the wire assembly. The invention may be used with rotary electric machine consisting for example of an alternator or an electric motor.
Rotary electric machine comprises a stator and a rotor mounted on a shaft. The electric machine comprises a casing carrying the stator. The shaft of the rotor is linked in rotation to the casing for example by means of ball bearings.
The rotor comprises a core formed by a stack of flat metal plates. The rotor comprises poles formed for example by permanent magnets positioned within cavities realized in the magnetic mass of the rotor, as it is described in document EP0803962. Alternatively, in a so-called salient poles architecture, the poles are formed by coils wound around arms of the rotor.
Furthermore, the stator comprises a core constituted by a stack of flat metal plates and a stator winding. The stator winding comprises a plurality of phase coils of the type in which each phase coil consists of conductors which are arranged in slots of the core associated with the phase, forming overall a spiral coaxial to an axis of the core. The winding therefore consists of a set of turns of the phase coils radially superimposed. Each phase coil comprises end-loop portions positioned alternatively on each side of the stator. Those end-loop portions establish a link between straight portions positioned inside the slots of the stator.
To improve the performance of the electric machine, it is preferable to fill the slots of the core to the maximum, while optimizing the flow sections of the magnetic flux. To this end, document U.S. Pat. No. 6,459,187 teaches the realization of a same layer of conductors. However, because of the high number of wires (at least two wires per phase, i.e 12 wires in total for a six phases winding), the coupling of the different phase coils between them is difficult to perform.
The invention aims to remedy to the drawbacks of the existing machine by providing a wire assembly for electric rotary machine comprising a plurality of phase coils, each phase coils being aimed to be inserted in a dedicated set of slots of a stator, each phase coil comprising a first part having an input and a second part having an output, said first part and second part constituting a distributed wave winding, characterized in that each phase coil comprises a U-turn part linking the first and the second parts so that each phase coil is composed of a single wire.
By limiting the number of wire for each phase coil to only one, the invention facilitates the coupling between the phase coils.
According to a particular embodiment, the wire of each phase coil comprises: a plurality of straight portions aimed to be inserted into the slots of the stator, and a plurality of end-loop portions linking the straight portions, said end-loop portions linking a plurality of consecutive straight portions being positioned in a same layer of conductors.
According to a particular embodiment, in the first and second parts of each phase coil, a given straight portion is linked to two adjacent straight portions disposed on two opposite sides of the given straight portion.
According to a particular embodiment, in the U-turn part, the straight portion is linked to two straight portions positioned on the same side through end-loop portions.
According to a particular embodiment, in the U-turn part, a straight portion comprises a slope portion.
According to a particular embodiment, the slope portion is inclined in a thickness direction of the wire assembly.
According to a particular embodiment, a length of the wire assembly is equal to N times the circumference of the stator, N being at least equal to two.
According to a particular embodiment, there is a transversal offset between the first and the second parts of a phase coil.
The invention also relates to a method for forming a wire assembly comprising:
According to a particular embodiment, the straight portion positioned inside said last slot is preformed to have a slope portion prior to the step of installation.
According to a particular embodiment, the step of pressing the wires is made phase coil by phase coil or for all the phase coils together after their assembly on the linear support.
Other aspect of the invention will become apparent by consideration of the detailed description and accompanying drawings.
In the description which follows, identical, similar, or like elements will be designated by the same reference numbers.
The rotary machine is for example an alternator or a starter-alternator. This machine is preferably intended to be used in a motor vehicle. It is pointed out that a starter-alternator is an electric rotary machine able to work in a reversible way, on the one hand as an electric generator functioning as an alternator, and on the other hand as an electric motor, in particular for starting the combustion engine of the motor vehicle.
As it can be seen in
The core 11 is delimited radially by an internal cylindrical face 13 and by an external cylindrical face 14, and is delimited axially by a radial face at an axial lower end 15 and by a radial face at an axial upper end 16.
The core 11 comprises axial slots 18 which open out axially into the radial faces of axial lower end 15 and axial upper end 16 of the core 11. The slots 18 also open out radially into the internal cylindrical face 13 of the core 11. Slots 18 are all identical. The slots 18 are distributed in a regular manner angularly around the axis X of the core 11. Each slot 18 is defined by two consecutive teeth 19. Preferably, the core 11 does not comprise tooth foot in order to facilitate the insertion of the phase coils inside the slots 18.
The full external annular portion 22 of the core 11 into which slots 18 do not extend, is called the yoke.
In order to form the stator 10, several phase coils P1-P6 are installed in the core 11. The invention will be described with reference to a stator 10 comprising six phase coils P1-P6. The number of slots 18 may be equal to 36, 48, 60, 72, 84, or 96. In the present embodiment, the stator 10 comprises 96 slots. The invention is however applicable to stators comprising a different number of phase coils, and in particular stators comprising three phase coils. The stator core 11 then comprises for example 36, 48, or 72 slots.
Each phase coils P1-P6 comprises rippled turns, formed by electrical wires 23, which are piled up radially, as explained in more detailed hereafter. The wires 23 have preferably a rectangular cross section in order to maximize the filing of the slots 18.
Each phase coil P1-P6 comprises a series of straight portions 25 which are received in a series of associated slots 18. Each phase coil P1-P6 also comprises end-loop portions 26 with overall transverse orientation, which connect the consecutive straight portions 25 of the phase coils, and which extend alternately above the face of axial upper end 16 and below the face of axial lower end 15.
Slots 18 of a series of slots receive the straight portions 25 of the phase coils P1-P6. Each series of slots 18 is associated with one of the six phase coils P1-P6. Two consecutive slots 18 of a series of slots are separated by adjacent slots 18, each corresponding to another series of slots associated with one of the other five phase coils.
Thus, for a six-phases stator 10 as is the case in the present embodiment, five adjacent slots 18 are left free between two slots 18 of each series. In other words, the wire of a given phase coil is inserted in a slot out of six adjacent slots 18. Thus, for a stator 10 comprising N phase coils, the straight portions of a turn of a phase coil are received in a slot out of N adjacent slots.
Subsequent figures show apparatus for implementing the method for building up the stator 10. In a first step shown at
The male dies 34 are curved in the extremity forming the end-loop portion 26 with no straight zone. Correspondingly, the female dies 35 are curved in the extremity forming the end-loop portion 26 with no straight zone.
As it can be seen in
In the embodiment of
In each male 34 or female 35 die, the two parts 38 are symmetrically positioned with regard to a vertical axis A1. Also, for each couple comprising a male 34 and a female 35 dies, the two parts 38 of one die 34, 35 are rotated around a horizontal axis A2 with regard to the two parts 38 of the other die 34, 35. In other word, the male die 34 and the female die 35 can be built up by means of identical parts 38 that are combined together in order to obtain the different dies 34, 35.
The parts 38 of the upper 32 and/or the lower 33 jigs are linearly slidable with regard to each other. In the embodiment of
The male 34 and the female 35 dies are spaced with each other of a distance substantially equal to a width of the wire 23 after the tool 31 has been activated.
The forming tool 31 allows to obtain a wire 23 having a sinusoidal shape which is going to be used to form one of the phase coils P1-P6 as it is explained hereafter. The wire 23 comprises end-loop portions 26 which are completely round with no straight zone. The fact that only segmented parts 38 of the male 34 and/or the female 35 dies are successively displaced during the process allows to facilitate the removal of the jigs 32, 33 without damaging the wire 23.
The method for building up the stator 10 comprises a step of installation of the wires on a linear support 45 in order to form a wire assembly 44 corresponding to a linear development of the phase coils P1-P6.
As it can be seen in
As it is shown on
As it can be seen in
More precisely, each part 61, 62 itself has a sinusoidal shape overall and comprises, consecutively, a lower end-loop portion 26 which extends below the lower lateral face 51 of the linear support 45, and a straight portion 25 which is received in an associated slot 48, and an upper end-loop portion 26 which extends above the upper lateral face 52 of the linear support 45.
In the present distributed wave winding, for two adjacent slots 48 associated with a phase coil P1-P6, the first part 61 comprises an end-loop portion 26 which connects the straight portions 25 received in the two adjacent slots 48 mentioned previously, and which is arranged axially above the axial upper lateral face of the linear support 45 (or of the core 11 when installed in the stator core 11); and the second part 62 comprises an end-loop portion 26 which connects the straight portions 25 received in the two adjacent slots 48 mentioned previously, and which is arranged axially below the lower lateral face of the (or of the core 11 when installed in the stator core 11).
Furthermore, each phase coil P1-P6 comprises a U-turn part 63 linking the first 61 and the second 62 parts so that each coil phase P1-P6 is composed of a single wire 23.
As it is clearly shown in
As it can be seen in
In the U-turn part 63, a straight portion 25 is linked to two straight portions 25 positioned on the same side through end-loop portions 26. As a matter of fact, on
The U-turn part 63 is formed by turning around a last slot 48 (the slot 48 at the right side of a series of slots 48 on
As shown in
The length of the wire assembly 44 is equal to N times the circumference of the stator, N being at least equal to two. As a consequence, for N=3, the stator will comprise 3*2=6 layers after the wire assembly 44 is round around the stator core 11 as it is explained hereafter.
Preferably, as it can be seen in
As it can be seen in
Then, the method carries out the step of transferring the phase coils P1-P6 from the annular support 68 to the stator core 11. To this end, as it can be seen in
The external diameter of the annular support 68 is substantially equal to the internal diameter of the core 11. The apparatus may also comprise means of indexing the stator core 11 with regard to the annular support 68, so that each slot 75 of the annular support 68 opens out radially into the corresponding slot 18 of the stator core 11.
The apparatus comprises radial insertion blades 76 each of which extends in a radial plane relative to the principal axis Y of the annular support 68 and of the core 11. More precisely, as shown in
During implementation of the step of transfer, the insertion blades 76 are pulled radially relative to the principal axis Y of the annular support 68, so that each blade 76 is displaced radially towards the exterior of the annular support 68, so that the straight portions 25 migrate into the slots 18 of the core 11, then forming the straight portions 25 of the stator winding. The displacement of the blades 76 is obtained by applying an axial effort following arrow F1 (cf.
Prior to the insertion of the phase coils P1-P6 into the slots of the core 11, an insulator 79 of the continuous type may be positioned inside the slots 18 of the core 11. The part of the insulator 79 extending between two consecutive slots may be removed by means of a cutting tool (not represented) after the insertion of the wire.
While the method herein described, and the form of the tools for carrying this method, constitute preferred embodiments, it is to be understood that the invention is not limited to this precise method and form of tools, and that changes may be made without departing from the scope of the invention, which is defined in the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
10-2014-0101741 | Aug 2014 | KR | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/KR2015/008272 | 8/7/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2016/021974 | 2/11/2016 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
6459187 | Oohashi et al. | Oct 2002 | B1 |
10389199 | Langlard | Aug 2019 | B2 |
20040119362 | Neet | Jun 2004 | A1 |
20040261256 | Sadiku | Dec 2004 | A1 |
20100259124 | Bodin et al. | Oct 2010 | A1 |
Number | Date | Country |
---|---|---|
0803962 | Oct 1997 | EP |
2002330572 | Nov 2002 | JP |
2013208038 | Oct 2013 | JP |
WO2009016157 | Feb 2009 | WO |
Number | Date | Country | |
---|---|---|---|
20170229936 A1 | Aug 2017 | US |