ELECTRIC MACHINE
20220037951 · 2022-02-03
Inventors
Cpc classification
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02K5/1732
ELECTRICITY
H02K9/22
ELECTRICITY
International classification
H02K5/173
ELECTRICITY
H02K9/19
ELECTRICITY
Abstract
An electric machine may include a stator, a rotor, a housing, and at least one heat transmission body. The housing may at least partially surround a housing interior. The housing may include a plurality of housing parts, which may bound the housing interior and on which the rotor is rotatably mounted via a bearing device. The heat transmission body may be arranged along the axial direction between at least one housing part of the plurality of housing parts and the rotor. The at least one heat transmission body and the at least one housing part may bound a coolant space through which a coolant is flowable. At least one of the plurality of housing parts may include an attachment section to which the at least one heat transmission body is attached. The bearing device may be disposed on the attachment section.
Claims
1. An electric machine, comprising: a stator; a rotor rotatable relative to the stator about a rotational axis which defines an axial direction; a housing at least partially surrounding a housing interior, the housing including a plurality of housing parts, the plurality of housing parts including a first housing part and a second housing part which bound the housing interior and on which the rotor is rotatably mounted via a bearing device; at least one heat transmission body is arranged along the axial direction between at least one housing part of the plurality of housing parts and the rotor the at least one heat transmission body and the at least one housing part bounding a coolant space through which a coolant is flowable; wherein at least one of the plurality of housing parts includes an attachment section to which the at least one heat transmission body is attached; and wherein the bearing device is disposed on the attachment section.
2. The machine as claimed in claim 1, further comprising a heat transmission structure configured to transmit heat from the rotor to the at least one heat transmission body, wherein the heat transmission structure is disposed on the at least one heat transmission body and on the rotor.
3. The machine as claimed in claim 1, wherein the rotor is mounted directly on the plurality of housing parts.
4. The machine as claimed in claim 2, wherein the rotor is not mounted on the plurality of housing parts via the heat transmission structure and not via the at least one heat transmission body.
5. The machine as claimed in claim 1, wherein an axial wall thickness of at least one of the first housing part and the second housing part is at least twice, as large as an axial wall thickness of the at least one heat transmission body.
6. The machine as claimed in claim 1, wherein: the at least one heat transmission body includes two heat transmission bodies, the two heat transmission bodies including a first heat transmission body and a second heat transmission body; the first heat transmission body is arranged along the axial direction between the first housing part and the rotor; and the second heat transmission body is arranged along the axial direction between the rotor and the second housing part.
7. The machine as claimed in claim 1, wherein: the bearing device includes two bearing elements, the two bearing elements including a first bearing element and a second bearing element arranged at an axial distance from one another such that the rotor is arranged axially between the two bearing elements; and, an axial position of the two bearing elements is defined such that less than 35% of radial forces taken up by the two bearing elements are passed on to the at least one heat transmission body.
8. The machine as claimed in claim 1, wherein: the bearing device includes a first bearing element via which the rotor is mounted on the first housing part and a second bearing element via which the rotor is mounted on the second housing part; the at least one heat transmission body includes a plurality of heat transmission bodies, the plurality of heat transmission bodies including a first heat transmission body and a second heat transmission body; an axial distance between the first heat transmission body and the first housing part is larger, than an axial distance between the first bearing element and the first housing part; and an axial distance between the second heat transmission body and the second housing part is larger than an axial distance between the second bearing element and the second housing part.
9. The machine as claimed in claim 1, wherein the stator is attached to at least one of the plurality of housing parts (8a, 8b).
10. The machine as claimed in claim 1, wherein the stator one of (i) is arranged at a distance from the at least one heat transmission body and (ii) bears loosely against the at least one heat transmission body.
11. The machine as claimed in claim 1, wherein the at least one heat transmission body is at least one of: attached to the at least one housing part; and provided with the at least one housing part as a single, monolithic piece.
12. The machine as claimed in claim 2, wherein the heat transmission structure includes a plurality of projections protruding axially from the rotor toward the at least one heat transmission body and engaging a plurality of complementary recesses disposed in the at least one heat transmission body.
13. The machine as claimed in claim 2, wherein the heat transmission structure includes a plurality of projections protruding axially from the at least one heat transmission body toward the rotor and engaging a plurality of complementary recesses disposed in the rotor.
14. The machine as claimed in claim 12, wherein the plurality of projections are structured and arranged in the manner of a comb.
15. The machine as claimed in claim 2, wherein an axial distance, in a region of the heat transmission structure, between the at least one heat transmission body and the rotor is 1 mm, or less.
16. The machine as claimed in claim 1, wherein: the at least one heat transmission body is structured as a deep-drawn component extending, at least in certain sections, transversely to the axial direction; and at least one section of the at least one heat transmission body has an axial wall thickness of 3 mm or less.
17. The machine as claimed in claim 16, further comprising a heat transmission structure configured to transmit heat from the rotor to the at least one heat transmission body, wherein: the heat transmission structure includes a plurality of projections protruding axially from one of the rotor and the at least one heat transmission body, the plurality of projections engaging a plurality of complementary recesses disposed in the other of the rotor and the at least one heat transmission body; and at least one of a recess depth of the plurality of recesses and a projection height of the plurality of projections is at least three times larger than the wall thickness of the at least one heat transmission body.
18. (canceled)
19. The machine as claimed in claim 1, wherein: the attachment section is structured as a sleeve projecting inward into the housing interior along the axial direction from the at least one of the plurality of housing parts; and the bearing device includes a bearing element arranged on an inner side of the sleeve.
20. The machine as claimed in claim 1, wherein the plurality of housing parts are composed of a different material than the at least one heat transmission body.
21. The machine as claimed in claim 1, wherein at least one of the plurality of housing parts is composed of a material having a thermal conductivity which is lower than a thermal conductivity of the at least one heat transmission body.
22. The machine as claimed in claim 1, wherein the at least one heat transmission body is composed of a material having a thermal conductivity of at least 100 W/(m*k).
23. The machine as claimed in a claim 1, wherein: the plurality of housing parts further includes a third housing part; and the machine is formed radially limited and from plastic via encapsulation of the stator via injection molding.
24. The machine as claimed in claim 23, wherein at least one of the first housing part and the second housing part is structured separately from the third housing part.
25. The machine as claimed in claim 1, wherein at least one of: the at least one heat transmission body and the plurality of housing parts are structured non-uniformly with respect to material; a material of the at least one heat transmission body has a higher thermal conductivity than a material of at least one of the first housing part and the second housing part; and the material of at least one of the first housing part and the second housing part has at least one of a higher upper yield strength and a higher creep limit than the material of the at least one heat transmission body.
26. The machine as claimed in claim 1, wherein: a plurality of winding end sections of the stator project into the coolant space; and an annular gap, which forms a portion of the coolant space, is defined between the plurality of winding end sections, and the at least one heat transmission body.
27. The machine as claimed in claim 1, wherein the at least one heat transmission body is locked exclusively via axial compression.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] In the drawings, in each case in a schematic form:
[0039]
[0040]
DETAILED DESCRIPTION
[0041]
[0042] As is apparent from
[0043] The rotor 5 with the rotor shaft 6 is rotatably mounted on the housing 2 by means of a bearing device 9. For this purpose, the bearing device 9 comprises a first bearing element 10a, by means of which the rotor shaft 6 is rotatably mounted on the first housing part 8a. Correspondingly, the bearing device 9 comprises a second bearing element 10b, which is axially arranged at a distance from the first bearing element 10a and by means of which the rotor shaft 6 is rotatably mounted on the second housing part 8b. The two bearing elements 10a, 10b—also known to a person skilled in the art by the term “shaft bearing”—are for this purpose permanently connected to the first or second housing part 8a, 8b.
[0044] The stator 4 with the stator body 12 and the stator coils 13 is also attached to the housing parts 8a, 8b, 8c. Furthermore, first and second heat transmission bodies 11a, 11b for conducting away waste heat generated by the rotor 5 including its permanent magnets 7 during operation are provided in the housing interior 3. The two heat transmission bodies 11a, 11b are formed separately with respect to the two housing parts 8a, 8b and bound, together with the two housing parts 8a, 8b, a coolant space 15 through which a coolant K can flow. The first and second heat transmission bodies 11a, 11b and the housing parts 8a, 8b which are respectively assigned to the heat transmission bodies 11a, 11b are therefore each embodied in two parts. The first heat transmission body 11a can be attached to the first housing part 8a, for example by means of a materially joined connected. Correspondingly, the second heat transmission body 11b can preferably also be attached to the second housing part 8b by means of a materially joined connection. As an alternative to a materially joined connection it is also possible to consider a suitable releasable connection. The two heat transmission bodies 11a, 11b of the heat transmission structure 18 are preferably locked exclusively by axial pressure. The rotor 5 is expediently mounted directly on the housing parts 8a, 8b, in particular, the rotor 5 is, as is apparent in
[0045] The coolant K can take up, via the two heat transmission bodies 11a, 11b, heat generated by the rotor 5 during the operation of the machine 1, so that overheating and associated damage to or even destruction of the machine 1 can be avoided. A coolant inlet 16 for feeding the coolant K into the coolant space 15 is provided on the external circumference of the housing 2 in the first housing part 8a, and a coolant outlet 17 for discharging the coolant K from the coolant space 15 is provided in the second housing part 8b. Heat is passed on to the coolant K flowing through the coolant space 15 and carried away from said space out of the machine 1 via the two heat transmission bodies 11a, 11b which each partially bound the coolant space 15.
[0046] The two heat transmission bodies 11a, 11b can both be embodied as cooling plates 22a, 22b which extend at least in certain sections transversely with respect to the axial direction A, that is to say along the radial direction R, and their wall thickness W measured along the axial direction A, in the region of the heat transmission structure 18, is at maximum 3 mm, preferably at maximum 1 mm. The cooling plates 22a, 22b can be implemented by means of deep-drawn shaped sheet metal parts. As is apparent from
[0047] The material of the first and second housing parts 8a, 8b can also have a higher upper yield strength and a higher creep limit than the material of the heat transmission bodies 11a, 11b.
[0048] In the text which follows, reference is made to
[0049] The illustration in
[0050] The preceding considerations explained above with reference to
[0051] An annular gap 27 can be respectively formed between winding end sections 26 of the stator coils 13, which project into the coolant space 15, and the heat transmission bodies 11a, 11b, said annular gap 27 being part of the coolant space 15.