ROTOR WITH A WINDING FOR AN ELECTRICAL MACHINE
20200177046 ยท 2020-06-04
Inventors
Cpc classification
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rotor for an electrical machine, comprising: a rotor stack with a plurality of pole teeth and windings around the pole teeth, a plurality of groove wedges, which are arranged radially above the windings, in grooves between the pole teeth, characterised in that a support element is arranged in the grooves between the windings and radially between the groove wedges and the rotor stack.
Claims
1. A rotor for an electrical machine, comprising: a rotor stack with a plurality of pole teeth and windings around the pole teeth, a plurality of groove wedges, which are arranged radially above the windings, in grooves between the pole teeth, characterised in that a support element is arranged in the grooves between the windings and radially between the groove wedges and the rotor stack.
2. The rotor according to claim 1, wherein the support element has at least one recess for compensating for an unbalance of the rotor.
3. The rotor according to claim 1, wherein the support element has at least one tooth radially in the direction of the groove wedge, which tooth is operatively connected to the groove wedge.
4. The rotor according to claim 1, wherein the support element has a clamping point radially in the direction of the rotor stack, which clamping point is operatively connected to the rotor stack.
5. The rotor according to claim 1, wherein the support element has a recess in the direction of the windings.
6. The rotor according to claim 1, wherein the support element has at least one recess in the radial direction in order to save weight.
7. The rotor according to claim 1, wherein the pole tooth has an end portion, which protrudes beyond the windings in the direction of the support element and has a holding region which is engaged with the groove wedge.
8. The rotor according to claim 1, wherein the support element supports the groove wedge.
9. The rotor according to claim 1, wherein the at least one tooth extends merely over a region of the support element.
10. A vehicle with an electrical machine, in particular an electric motor, with a rotor according to claim 1.
Description
DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] At the end portion 31 of the pole tooth 5 there is situated a holding region 19, which holds a groove wedge 13 between two pole teeth 5. The groove wedge 13 covers and thus closes the groove 7, A support element 15 is arranged in each of the grooves 7 and is clamped between the groove wedge 13 and the rotor stack 33 via a clamping point 27.
[0032] The teeth 17 on the support elements 15 are compressed by the groove wedge 13 and hold the groove wedge 13 in its position.
[0033] The support element 15 has recesses 23, which are used to compensate for an unbalance. On the one hand the recesses 23 may be formed depending on the unbalance, that is to say negative balancing, or they are filled with material depending on the unbalance, what is known as positive balancing.
[0034] Further recesses 21 are also provided in the support elements 15 and do not influence the stability, but lead to a saving in weight.
[0035] The support element 15 is also adapted to an outer contour of the winding and therefore has an outer recess 25.
[0036] In
[0037] The support element 15 is connected to the rotor stack 33 via the clamping point 27 and imparts an increased strength to the pole teeth 5 with the groove wedge 13. In particular, a tangential deformation of the pole teeth 5 is minimised.
[0038] The groove wedge 13 is inserted into the groove 7 axially above the support element 15 and below the end portion 31 and is held by the holding region 19 and supported by the support element 15. During this process, the teeth 17 are pressed and the groove wedge 13 is fixed. The support element 15 is also fixed in the groove 7 by the clamping that occurs at the clamping point 27.
[0039]
[0040]