C-SHAPED OR U-SHAPED HALF-COIL, ROTOR WINDING WITH SUCH A HALF-COIL AND ITS MANUFACTUING METHOD
20170033629 ยท 2017-02-02
Inventors
- Johann Haldemann (Birr, CH)
- Xiaoli CUI (Brugg, CH)
- Christian Auge (Mannheim, DE)
- Carsten Meinecke (Karlsruhe, DE)
- Matthias MUNDSTOCK (Limburgerhof, DE)
- Walter Soehner (Karlsruhe, DE)
Cpc classification
H02K15/063
ELECTRICITY
H02K15/50
ELECTRICITY
H02K15/0414
ELECTRICITY
H02K3/04
ELECTRICITY
International classification
H02K3/04
ELECTRICITY
Abstract
Embodiments of the present invention relate to a winding of a rotor for use in rotating electrical machines. More particularly, embodiments of the present invention relate to innovative half-coils used for the winding of the rotor. Moreover, embodiments of the invention pertain to a method for winding a rotor body of an electrical machine. According to embodiments of the invention, half-coils, instead of being manufactured as double hollow conductors, are provided in the form of two single hollow conductors, which are adjacently embedded within a respective slot of the rotor body.
Claims
1. A C-shaped half-coil for a rotor body of an electrical machine, the rotor body comprising axial slots, said C-shaped half-coil comprising: an active portion configured to be embedded through the respective rotor axial slot and two opposite bent radius winding end portions; a stack of turns electrically insulated from each other, wherein each turn of said stack of turns is provided in the form of two separate adjacent single conductors electrically connected to each other; and a first conductor and a second conductor of said two separate single conductors, wherein said first conductor is a straight conductor and said second conductor is C-shaped and comprises two opposite bent radius portions, said first straight conductor having its axial ends located in proximity of respective bent radius portions of said second conductor and abut the active portion of said second conductor.
2. The C-shaped half-coil according to claim 1, further comprising electrical contact means positioned lengthwise between said first and second conductors, said electrical contact means being located substantially in proximity of the axial ends of said first conductor and the active portion of said second conductor.
3. The C-shaped half-coil according to claim 2, wherein said electrical contact means comprises at least one of: soldering; silvering; friction welding; riveting; screwing; crimping; contact sleeves; contact bridges; and/or contact strips.
4. The C-shaped half-coil according to claim 1, wherein said separate single conductors are hollow conductors.
5. The C-shaped half-coil according to claim 1, wherein said turns of said stack of turns are disposed on top of each other and said first and second conductors are positioned side by side.
6. The C-shaped half-coil according to claim 5, wherein said first conductor of turn abuts on said second conductor of an adjacent turn, said pair of turns being arranged on top of each other.
7. The C-shaped half-coil according to claim 6, wherein said bent radius portions of said second conductor of turn are arranged in alignment with corresponding bent radius portions of said second conductor of said adjacent turn.
8. An electrical machine, comprising a half-coil according to claim 1.
9. A method for winding a rotor body of an electrical machine, the rotor body having a plurality of slots, the method comprising: embedding in each slot a respective conductive C-shaped half-coil, said half-coil comprising: an axial active portion running through said slot parallel to a rotating axis R of the rotor body and two opposite bent radius winding end portions; and a stack of turns electrically insulated from each other, wherein each turn of said stack of turns of at least one half-coil is provided in the form of two separate single conductors, adjacently positioned along the slot and electrically connected to each other, wherein for each turn of said turn stack of a least one half-coil a first single conductor of said two separate single conductors is a straight conductor and a second conductor of said two separate single conductors is a C-shaped conductor comprising two opposite bent radius portions, the first conductor having its axial ends located in proximity of respective bent radius portions and abut the active portion of the said second conductor.
10. The method for winding a rotor body according to claim 9, wherein the first conductor is arranged to be protruding out of the rotor body.
11. The method for winding a rotor body according to claim 9, wherein said turns of said stack of turns of at least one half-coil are disposed along a radial direction and said first and second conductors are positioned along a circumferential direction with respect to the rotating axis R of the rotor body.
12. The method for winding a rotor body according to claim 9, wherein said first and second conductors are positioned along a radial direction and said turns of at least half-coil are positioned, in pairs, along a circumferential direction, such that the first conductor of turn abuts on a second conductor of an adjacent turn, said pairs of turns being arranged within the respective slot along a radial direction, the method further comprising providing a slot wedge supporting said half-coils such that, during operation, first and second conductors are pressed to each other due to centrifugal forces.
13. The method for winding a rotor body according to claim 10, wherein said turns of said stack of turns of at least one half-coil are disposed along a radial direction and said first and second conductors are positioned along a circumferential direction with respect to the rotating axis R of the rotor body.
14. The method for winding a rotor body according to claim 10, wherein said first and second conductors are positioned along a radial direction and said turns of at least half-coil are positioned, in pairs, along a circumferential direction, such that the first conductor of turn abuts on a second conductor of an adjacent turn, said pairs of turns being arranged within the respective slot along a radial direction, the method further comprising providing a slot wedge supporting said half-coils such that, during operation, first and second conductors are pressed to each other due to centrifugal forces.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0027] The foregoing objects and many of the attendant advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description when taken in conjunction with the accompanying drawings, wherein:
[0028] Photo 1 is a perspective view of a winding mounted on a rotor body with bent corners belonging to the state of the art;
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION
[0038] With reference to photo 1, it shows a state-of-the-art electrical machine 1. In particular, the photo 1 shows a view of a rotor body generally indicated with reference 2. The rotor body 2 comprises a plurality of axial slots 3. A state of the art C-shaped half-coil 4 is embedded in a respective slot 3 of the rotor body 3. The C-shaped half-coil 4 comprises an axial active portion 41 running through the rotor slot 3 and two opposite bent radius winding end portions, which are positioned out of the slot, at different ends of the rotor body 3. In the photo only the bent portion 42 is visible at one end of the rotor body 3. Each C-shaped half-coil 4 is joined to a correspondent opposed C-shaped half-coil 5, as clearly showed in the photo. Half-coils 4 and 5 form a complete coil. All coils wound around the rotor body 2 make up the rotor winding, generally indicated in the photo with numeral 100.
[0039] Still making reference to the half-coil 4 according to the state of the art, the half-coil 4 comprises a plurality of stacked conductors, called turns, usually made of copper. Each turn of the stack is electrically insulated from the adjacent turn belonging to the same half-coil.
[0040] Making now reference to following
[0041] With reference now to
[0042] The C-shaped half-coil 8 comprises, in a similar manner, an active portion 81, configured to be embedded in a respective rotor slot, and two opposite bent radius winding end portions, of which only bent portion 82 is visible in the figure. The half-coil 8 comprises a stack of turns 5 electrically insulated from each other. Each turn 5 of the stack of turns of the half-coil 8 comprises two separate adjacent single first and second conductors 9 and 10. The term first conductor 9 is also referred to as first straight conductor 9, 31 in this whole disclosure. As described not all of the first conductors 9 of the rotor winding 20 are mandatorily designed as straight first conductors 9, 31 however. The first conductors 9 can be designed partially as straight first conductors 9, 31 without a bended portion, and partially as common first conductors 9 having a bended portion corresponding to the second conductors 10, 32, see Fig.7. The first straight conductors 9, 31 are conductors with cut out bended parts. Conductors 9 and 10 are electrically connected to each other in order to assure the flow of current between them. In this variant, first conductor 9, which is the outer conductor of turn 5, is a straight conductor having its axial ends protruding outside the respective rotor slot 3 when embedded within the rotor body (not shown), and located in the proximity of respective bent radius portions (in the figure only bent portion 82 is visible). As can be seen in
[0043] With reference to
[0044] With reference now to next
[0045]
[0046] With reference now to
[0047]
[0048] Making now references to following
[0049] More in particular, half-coil 30 comprises, in similar manner, an active portion 301, configured to be embedded in a respective rotor slot, and two opposite bent radius winding end portions, of which only bent portion 302 is visible in the figure. The half-coil 30 comprises a stack of turns 5 electrically insulated from each other. Each turn 5 of the stack of turns of the half-coil 30 comprises two separate adjacent single first and second conductors 31 and 32. Conductors 31 and 32 are electrically connected to each other in order to assure the flow of current between them. In this variant, first conductor 31 is a straight shorter conductor having its axial ends protruding outside the respective rotor slot when embedded within the rotor body (not shown), and located in the proximity of respective bent radius portions (in the figure only bent portion 32 is visible). Turns 5 are positioned in pairs, side by side. In the portion of the half-coil illustrated, two turns are shown, comprising, respectively, first single straight conductor 31 and second conductor 32 and first single straight conductor 31 and second conductor 32. In an embodiment, the arrangement is such that, for each pair of turns positioned side by side, first and second conductors are disposed on top of each other such that the first straight conductor 31 abuts on second conductor 32 of the adjacent turn and second conductor 32 abuts on the first straight conductor 31. Moreover, in an embodiment, the bent radius portions of second conductor 32 are arranged aligned with corresponding bent radius portions of second conductor 32 of the adjacent turn.
[0050] Such arrangement may be beneficial as it allows compacting the room required by the stack of coils without exceeding in the axial direction, and at the same time it allows the particular disposition of having single conductors of each turn disposed on top of each other, thus exploiting the centrifugal forces for establishing a strong contact between them for ensuring the flow of current.
[0051]
[0052] With reference to
[0053] Lastly,
[0054] Moreover, embodiments of the present invention are also directed, with reference to the described figures, to a method for winding a rotor body 2 of an electrical machine 1. The winding operation may also be a re-winding, that is removing the existing rotor winding and replacing it with a new one. The method according to an embodiment of the invention comprises embedding in each slot 3 of the rotor body a respective conductive C-shaped half-coil, the half-coil comprising an axial active portion running through the slot parallel to a rotating axis R of the rotor body 2, shown in
[0055] According to a first embodiment, the turns of at least one half-coil are disposed along a radial direction and the first and second conductors are positioned along a circumferential direction with respect to the rotating axis R of the rotor body 2.
[0056] According to a second embodiment, the first and second conductors of each turn are positioned along a radial direction and the turns of at least a half-coil are positioned, in pairs, along a circumferential direction, such that the first conductor of turn abuts on a second conductor of adjacent turn, wherein the pairs of turns are arranged within the respective slot along a radial direction.
[0057] The method further comprising providing a slot wedge 110 supporting the half-coils such that, during operation, first and second conductor are pressed to each other due to centrifugal forces.
[0058] Although the present invention has been fully described in connection with embodiments, it is evident that modifications may be introduced within the scope thereof, not considering the application to be limited by these embodiments, but by the content of the following claims.