STATOR FOR A ROTATING FIELD MACHINE
20260088663 ยท 2026-03-26
Inventors
Cpc classification
H02K1/146
ELECTRICITY
H02K15/33
ELECTRICITY
International classification
H02K15/33
ELECTRICITY
Abstract
A stator for a rotary induction motor with a stator main body, the stator being assigned a geometric machine axis, the stator having stator slots and a stator coil arrangement with a plurality of stator coil strands, which can be connected to a rotary supply voltage at respective phase terminals in order to generate a rotary magnetic field, the stator coil strings each having a bundle with a plurality of conductors, the conductors of a bundle being arranged together to form respective star inductors in the stator slots, and the conductors each having a phase-connection-side portion and a star-point-side portion, the conductors of a bundle being electrically connected to the phase connection of the respective stator coil string via the phase-connection-side portion. The conductors of bundles of different stator coil strings are electrically connected to one another via the star-point-side portion by means of respective star points.
Claims
1. A stator for a rotary induction motor with a stator main body, the stator being assigned a geometric machine axis, the stator having stator slots and a stator coil arrangement with a plurality of stator coil strands, which can be connected to a rotary supply voltage at respective phase terminals in order to generate a rotary magnetic field, the stator coil strings each having a bundle with a plurality of conductors the conductors of a bundle being arranged together to form respective star inductors of the stator coil string in the stator slots, and the conductors each having a phase-connection-side portion and a star-point-side portion the conductors of a bundle being electrically connected to the phase connection of the respective stator coil string via the phase-connection-side portion, wherein the conductors of bundles of different stator coil strings are electrically connected to one another via the star-point-side portion by means of respective star points and wherein the star points are electrically decoupled from one another.
2. The stator as claimed in claim 1, wherein the conductors of bundles of different stator coil strings are connected to one another via the star-point-side portion by star point triplets.
3. The stator as claimed in claim 2, wherein the stator coil arrangement has further bundles with a plurality of conductors, wherein the conductors of the further bundles are each arranged together to form delta inductors in the stator slots, and wherein the conductors of the further bundles connect the star points of the star point triplets to one another in a respective delta circuit.
4. The stator as claimed in claim 1, wherein each conductor of a bundle is assigned exactly one star point or exactly one star point triplet to which the star-point-side portion is electrically connected.
5. The stator as claimed in claim 1, wherein the conductors of a bundle are arranged geometrically in a sequence with a respective conductor index in order to form the respective star windings in the stator slots, and wherein the conductors of bundles of different stator coil strings with different conductor indices are electrically connected to one another via the star-point-side portion.
6. The stator as claimed in claim 1, wherein the star inductors are designed as star windings.
7. The stator as claimed in claim 1, wherein the star inductors are each formed by a plurality of inductors, in particular star windings, electrically connected in series to a conductor.
8. The stator as claimed in claim 1, wherein the number of conductors per bundle is at most 20.
9. The stator as claimed in claim 1, wherein, for connecting the conductors of bundles of different stator coil strings via the star-point-side portion, electrical connecting elements are provided.
10. A rotary induction motor with a stator as claimed in claim 1 and a rotor which interacts magnetically with the stator coil arrangement.
11. A method for producing a stator for a rotary induction motor, with a stator main body being provided, with a geometric machine axis being assigned to the stator, with a stator coil arrangement with a plurality of stator coil strings being provided, which can be connected to a rotary supply voltage at respective phase connections in order to generate a rotary magnetic field, the stator coil strings each having a bundle with a plurality of conductors the conductors of a bundle being arranged together to form respective star inductors in stator slots in the stator main body, and the conductors each having a phase-connection-side portion and a star-point-side portion the conductors of a bundle being electrically connected to the phase connection of the respective stator coil string via the phase-connection-side portion, wherein the conductors of bundles of different stator coil strings are electrically connected to one another via the star-point-side portion by respective star points and wherein the star points are electrically decoupled from one another.
12. The method as claimed in claim 11, wherein the star inductors are produced as star windings by a flyer winder.
13. The stator as claimed in claim 2, wherein the star point triplets are designed to be electrically decoupled from one another.
14. The stator as claimed in claim 7, wherein the inductors are star windings.
15. The stator as claimed in claim 6, wherein the delta inductors are designed as delta windings.
16. The stator as claimed in claim 1, wherein the number of conductors per bundle is at most 10.
17. The stator as claimed in claim 1, wherein the number of conductors per bundle is at most 7.
18. The stator as claimed in claim 9, wherein, the electrical connecting elements are arranged axially with respect to the machine axis on a stator front side and/or a stator rear side.
19. The stator as claimed in claim 9, wherein the connecting elements are provided as connecting conductors, connecting rails and/or connecting terminals.
20. The method as claimed in claim 12, wherein the stator coil arrangement has further bundles with a plurality of conductors, wherein the conductors of the further bundles are each arranged together to form delta windings in the stator slots, and wherein the conductors of the further bundles connect the star points of star point triplets to one another in a respective delta circuit, and wherein the delta inductors are produced as delta windings by a flyer winder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In the following, various aspects are explained in more detail with the aid of a drawing showing only exemplary embodiments. In the drawing
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035] The stator 1 shown in
[0036] The stator 1 can include a hollow stator interior 2 to accommodate a rotor, not shown. Alternatively, however, the rotor can also be arranged outside the stator 1, particularly if the induction motor is an external rotor. In this case, the stator interior 2 can even be dispensed with. In various embodiments, the induction motor is designed as an axial flux motor. Furthermore, the stator 1 has a metal stator main body 3, a geometric machine axis 4 being assigned to the stator 1. The stator main body 3 has stator slots 5. In the variant shown here with a hollow stator interior 2, stator slots 5 are distributed around the machine axis 4 and arranged in the stator main body 3.
[0037] A stator coil arrangement 6 is used to generate a rotary magnetic field that interacts with the above rotor. For this purpose, the stator coil arrangement 6 forms electromagnetic poles in the energized state, the formation of which depends on the structure of the stator coil arrangement 6. The proposed solution can be implemented with different structures for the stator coil arrangement 6.
[0038] In various embodiments, the stator coil arrangement 6 forms several, such as three, stator coil strings 7, each of which has at least one stator coil.
[0039] The stator coil strings 7 each have a bundle 9 with several conductors 10.sub.1, 10.sub.2, . . . 10.sub.n, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 being arranged together to form respective star inductors 11 in the stator slots 5. The term bundle here means that individual conductors 10.sub.1, 10.sub.2, . . . 10.sub.n are electronically combined and interconnected in a manner to be explained in more detail. The conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 therefore do not necessarily have to be in a specific geometric arrangement. However, the bundles 9 are provided together in the stator slots 5, which means that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 run at least partially in the same stator slots 5 and at least partially in the same direction. In various embodiments, however, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 also run geometrically next to each other at least in portions, as can be seen from
[0040] The conductors 10.sub.1, 10.sub.2, . . . 10.sub.n each have a phase-connection-side portion 12 and a star-point-side portion 13. In various embodiments, the phase-connection-side portion 12 and the star-point-side portion 13 are respective opposite end portions of the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n.
[0041] The conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 are electrically connected to the phase connection 8 of the respective stator coil string 7 via the phase-connection-side portion 12. This divides the stator coil string 7starting from the phase connection 8with the bundle 9 into several adjacent conductors 10.sub.1, 10.sub.2, . . . 10.sub.n, so to speak. In various embodiments, there is an electrical contact point of all conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 of the stator coil string 7 at the phase connection 8 or at a supply line provided to the phase connection 8.
[0042] It is now essential that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of bundles 9 of different stator coil strings 7 are electrically connected to each other via the star-point-side portion 13 by means of respective star points 14.sub.1, 14.sub.2, . . . 14.sub.n and that the star points 14.sub.1, 14.sub.2, . . . 14.sub.n are electrically decoupled from each other.
[0043] Instead of the conventional electrical connection of the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of the bundles 9 to a common star point 14.sub.1, 14.sub.2, . . . 14.sub.n, several star points 14.sub.1, 14.sub.2, . . . 14.sub.n are provided according to the proposal, which electrically connect conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of bundles 9 of different stator coil strings 7 to each other. An electrically decoupled design of the star points 14.sub.1, 14.sub.2, . . . 14.sub.n means that electrical contact between the star-point-side portions 13 of the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n Via the star points 14 does not exist or is sufficiently low, so that electrical currents between the star points 14.sub.1, 14.sub.2, . . . 14.sub.n are suppressed under the conditions occurring during operation of the rotary induction motor. In this respect, the star points 14.sub.1, 14.sub.2, . . . 14.sub.n can also be connected to each other via comparatively high resistances or indirectly, for example via a star conductor connection. However, it can be in various embodiments that the star points 14.sub.1, 14.sub.2, . . . 14.sub.n remain at a floating potential in relation to each other. In particular, the star points 14.sub.1, 14.sub.2, . . . 14.sub.n are electrically connected only indirectly via the stator coil strings 7, in this case via the phase connections 8.
[0044]
[0045] Any voltage differences due to the arrangement and individual properties of the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n are largely irrelevant here. Compared to a conventional star circuit with bundles 9, significantly higher electrical resistance occurs for circular currents in the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n, since, for example, a circular current between two stator coil strings 7 passes through the star inductors 11 of both stator coil strings 7.
[0046] To connect the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of different stator coil strings 7, groups of several star points 14.sub.1, 14.sub.2, . . . 14.sub.n, in particular those that are electrically decoupled from each other, can also be provided. In the further embodiment shown in
[0047] The star point triplets 15.sub.1, 15.sub.2, . . . 15.sub.n are electrically connected to each other, such as via a delta circuit, so that a star-delta circuit is achieved overall between the phase connections 8 for the stator coil arrangement 6.
[0048] Furthermore, according to
[0049]
[0050] In principle, it is conceivable that several star points 14.sub.1, 14.sub.2, . . . 14.sub.n are provided, but several conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 are electrically connected to one or more of these star points 14.sub.1, 14.sub.2, . . . 14.sub.n. However, it can be that each conductor 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 is assigned exactly one star point 14.sub.1, 14.sub.2, . . . 14.sub.n or exactly one star point triplet 15.sub.1, 15.sub.2, . . . 15.sub.n, to which the star-point-side portion 13 is electrically connected. This optimally suppresses the occurrence of ring currents in the stator coil arrangement 6.
[0051] In one embodiment, it is provided that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 are arranged geometrically in a sequence with a respective conductor index to form the respective star windings in the stator slots 5.
[0052] Such a sequence can result from the fact that the conductors 10.sub.1, 10.sub.2 are arranged, in particular wound, next to each other in the stator slots 5 as shown in
[0053] Therefore, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of bundles 9 of different stator coil strings 7 with different conductor indices can be electrically connected to each other via the star-point-side portion 13. In
[0054] It is possible in some embodiments to apply the proposed teaching to stators 1 with wound stator coil arrangements 6. In various embodiments, it is provided that the star inductors 11 are designed as star windings. In the aforementioned embodiments with delta inductors 17, it is provided that the delta inductors 17 are designed as delta windings.
[0055] Alternatively or additionally, it is also conceivable that the stator coil arrangement 6 is at least partially plugged, with the star inductors 11 and/or delta inductors 17 being formed by bundles 9 with several hairpins as conductors 10.sub.1, 10.sub.2, . . . 10.sub.n. In this case, fewer requirements are placed on the geometry of the hairpins.
[0056] In
[0057] The star inductors 11 can each be formed by a plurality of inductors, in particular star windings, electrically connected in series to a conductor 10.sub.1, 10.sub.2, . . . 10.sub.n.
[0058] At least two conductors 10.sub.1, 10.sub.2, . . . 10.sub.n are provided per bundle 9. It can further be that the number of conductors 10.sub.1, 10.sub.2, . . . 10.sub.n per bundle 9 can be at most 20 or at most ten.
[0059] In particular, a maximum number of seven conductors 10.sub.1, 10.sub.2, . . . 10.sub.n per bundle 9 results in improved processing of the conductors 10 with an optimum overall cross-section of the bundles 9 for many applications.
[0060] To connect the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of bundles 9 of different stator coil strings 7, electrical connecting elements are provided, in various embodiments via the star-point-side portion 13, in particular arranged axially in relation to the machine axis 4 at a stator front side and/or a stator rear side.
[0061] In various embodiments, the connecting elements are provided as connecting conductors, connecting rails and/or connecting terminals, so that overall a simplified provision of the multiple star points 14.sub.1, 14.sub.2, . . . 14.sub.n is achieved. For example, a conductor such as a wire can also be used as the connecting conductor. In a simple case, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of the bundles 9 are connected to each other in an integrally bonded manner to form the respective star point 14.sub.1, 14.sub.2, . . . 14.sub.n.
[0062]
[0063] According to a further teaching, which is of independent significance, a rotary induction motor, not shown, is proposed with a stator 1 according to the proposal, a rotor which interacts magnetically with the stator coil arrangement 6.
[0064] As mentioned above, the induction motor can be an electric motor or generator. Any type of machine can be used. Examples of this are synchronous machines, which can be self-excited or externally excited, asynchronous machines or the like. Reference may be made to all explanations of the proposed stator 1.
[0065] According to a further teaching, which is also of independent significance, a method is proposed for producing a stator 1 for a rotary induction motor, with a stator main body 3 being provided, the stator 1 being assigned a geometric machine axis 4 and stator slots 5 arranged distributed around it in the stator main body 3, a stator coil arrangement 6 with a plurality of stator coil strings 7 being provided, which can be connected to a rotary supply voltage at respective phase terminals 8 in order to generate a rotary magnetic field, the stator coil strings 7 each having a bundle 9 with a plurality of conductors 10.sub.1, 10.sub.2, . . . 10.sub.n, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 being arranged together to form respective star inductors 11 in the stator slots 5, and the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n each having a phase-connection-side portion 12 and a star-point-side portion 13, the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of a bundle 9 being electrically connected to the phase connection 8 of the respective stator coil string 7 via the phase-connection-side portion 12.
[0066] In the method according to the proposal, it is key that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of bundles 9 of different stator coil strings 7 are electrically connected to one another via the star-point-side portion 13 by means of respective star points 14.sub.1, 14.sub.2, . . . 14.sub.n and that the star points 14.sub.1, 14.sub.2, . . . 14.sub.n are electrically decoupled from one another. Reference may be made to all explanations of the proposed stator 1 and the proposed rotary induction motor.
[0067] It can be that the star inductors 11 are produced as star windings by means of a flyer winder, in some embodiments that the stator coil arrangement 6 has further bundles 16 with several conductors 10.sub.1, 10.sub.2, . . . 10.sub.n, that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of the further bundles 16 are each arranged together to form delta windings in the stator slots 5, and that the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of the further bundles 16 connect together the star points 14.sub.1, 14.sub.2, . . . 14.sub.n of star point triplets 15.sub.1, 15.sub.2, . . . 15.sub.n in a respective delta circuit and that the delta inductors 17 are produced as delta windings by means of a flyer winder.
[0068] As already mentioned with regard to the proposed stator 1, the proposed method allows simplified processing of the stator coil strings 7, wherein in particular a flyer winder can be used to produce wound inductors due to the comparatively small cross-sections of the conductors 10.sub.1, 10.sub.2, . . . 10.sub.n of the bundles 9.
[0069] Alternatively or additionally, plug-in inductors can be used, in particular using hairpin technology.