CONNECTION OF A ROTOR SHAFT TO A LAMINATED CORE
20230041078 · 2023-02-09
Inventors
- Konrad ARTMANN (Schondorf, DE)
- Lothar DIETL (Kaufering, DE)
- Tobias SCHMID (Emmenhausen, DE)
- Helmut BURGER (Unterdiessen, DE)
Cpc classification
H02K1/28
ELECTRICITY
International classification
H02K1/28
ELECTRICITY
Abstract
Rotor for an electric motor, having a rotor shaft and, mounted on the rotor shaft, a rotor core having a number of core laminations arranged along an axis of the rotor core. Each core lamination includes a central contoured aperture which is traversed by the rotor shaft and which includes at least two radially extending elevations and at least two cutouts positioned between the elevations, wherein, to form a press fit of the core laminations on the rotor shaft, a distance between the free ends of the elevations is less than a diameter of the rotor shaft, and wherein a duct extending peripherally on the rotor shaft is formed by the respective cutout in the successively arranged core laminations.
Claims
1-5. (canceled)
6. A rotor for an electric motor, the rotor comprising: a rotor shaft; and a rotor core mounted on the rotor shaft, the rotor core having a plurality of core laminations arranged along an axis of the rotor core, each of the plurality of core laminations including a central contoured aperture traversed by the rotor shaft and including at least two radially extending elevations and at least two cutouts positioned between the elevations, wherein, to form a press fit of the core laminations on the rotor shaft, a distance between free ends of the elevations is less than a diameter of the rotor shaft, and wherein a duct extending peripherally on the rotor shaft is formed by a respective one of the cutouts in the successively arranged core laminations.
7. The rotor as recited in claim 6 wherein the at least two cutouts include four cutouts positioned between the elevations, wherein the four cutouts are each rotated through 90° with respect to one another along the axis.
8. The rotor as recited in claim 6 wherein the at least two cutouts include three cutouts positioned between the elevations, wherein the three cutouts are each rotated through 120° with respect to one another along the axis.
9. The rotor as recited in claim 6 wherein the rotor shaft includes at least one groove running spirally around an envelope surface.
10. An electric motor comprising the rotor as recited in claim 6.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Further advantages can be found in the following description of the figures. Various exemplary embodiments of the present invention are illustrated in the figures. The figures, the description and the claims contain numerous features in combination. A person skilled in the art will expediently also consider the features individually and combine them into useful further combinations.
[0018] In the figures:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025]
[0026] Here, the rotor 1 substantially comprises a rotor laminated core 2 (also referred to only as a laminated core) and a rotor shaft 3.
[0027] As can be seen from
[0028] The rotor shaft 3 is configured to be substantially cylindrical. The rotor shaft 3 has a uniform diameter D2 (cf.
[0029]
[0030] Each individual core lamination 4 substantially comprises a central aperture 5 and a plurality of cutouts 7. The core lamination 4 according to the first and second embodiment (cf.
[0031] The core lamination 4 according to the first embodiment comprises a first, second, third and fourth elevation 9 around the central aperture 5, cf.
[0032] As can be seen from
[0033] As can be seen from
[0034] As already mentioned above, the individual core laminations are positioned or arranged in succession in direction A in order to form the cylindrical rotor laminated core. The rotor shaft is pushed through the central aperture in the individual core laminations and positioned there, with the result that the rotor is formed.
[0035]
[0036] The distance D1 or spacing between the second ends 9b of the elevations 9 is less here than the diameter D2 of the rotor shaft 3. The fact that the distance D1 between the second ends 9b of the elevations 9 is less than the diameter D2 of the rotor shaft 3 means that the rotor shaft 3 has to be pressed with a certain expenditure of force in direction A through the central aperture 5 in the core laminations 4. If the rotor shaft 3 has been positioned in the central aperture 5 in the core laminations 4, the elevations 9 are widened by a certain amount. The rotor shaft 3 is thus in a press seat or in a press contact with the core laminations 4. The thus created press contact makes it possible to prevent torsion of the rotor shaft 3 with respect to the core laminations 2.
[0037] According to an alternative embodiment of the present invention 9, it is also possible for more or fewer than three or four elevations 9 to be provided on the respective core lamination 4. If an even number of elevations 9 is selected, two elevations 9 are always in each case positioned or arranged opposite one another. Symmetry of the elevations 9 is strived for here.
[0038] As can also be seen from the figures, a cutout 10 is provided on each core lamination 4 between in each case two adjacent elevations 9.
[0039] In the case of the core lamination 4 according to the first embodiment, a first, second, third and fourth cutout 10 are present. Just like the elevations 9, the cutouts 10 are also positioned around the inner circular envelope surface of the central aperture 5 so as to be each rotated 90° with respect to one another. An elevation 9 and an adjacent cutout 10 are here arranged so as to be each rotated 45° with respect to one another.
[0040] In the case of the core lamination 4 according to the second embodiment, a first, second and third cutout 10 are present. Just like the elevations 9, the cutouts 10 are also positioned around the inner circular envelope surface of the central aperture 5 so as to be each rotated 120° with respect to one another.
[0041] By virtue of the fact that the core laminations 4 are positioned in succession in direction A to form a rotor laminated core 2 and the cutouts 7 in each core lamination 4 are likewise positioned in succession in direction A, uniformly distributed ducts 11 are formed in the cutouts 10 around the envelope surface of the rotor shaft 3. The ducts 11 are positioned here between the inner circular envelope surface of the central aperture 5 in the core laminations 4 and the outer envelope surface of the rotor shaft 3 and extend over the entire length of the rotor laminated core 2.
[0042] As can be gathered from
[0043] According to a further advantageous embodiment of the present invention, the rotor shaft 3 can also comprise a groove 12 running spirally around an envelope surface of the rotor shaft 3, cf.
[0044] This groove 12, in conjunction with the cutouts 10 in the laminated core 2, creates, as a result of filling with plastic KS, the function of a safeguard against relative rotation.