BASIC BODY FOR AN ELECTRIC MOTOR
20220149693 ยท 2022-05-12
Inventors
- Bernd Fleishmann (Weilheim, DE)
- Michael SCHMOHL (Ammerbuch, DE)
- Stefan BAUER (Westerheim, DE)
- Enrico FLOETE (Stuttgart, DE)
- Matthias Hiller (Altenriet, DE)
- Bernd WIESNER (Owen, DE)
- Thomas STENZEL (Ostfildern, DE)
Cpc classification
H02K2203/03
ELECTRICITY
H02K5/1732
ELECTRICITY
H02K3/50
ELECTRICITY
H02K2203/06
ELECTRICITY
International classification
H02K5/22
ELECTRICITY
H02K3/50
ELECTRICITY
Abstract
The invention relates to abasic body (1) for an electric motor (2), which comprises the following features: a substantially cylindrical outer wall (3), which forms a rotor space (4) for receiving a rotor (5) at least partially inside the outer wall (3) and on which a winding (6) can be mounted at least partially outside the latter; a laminated core (7) which is held by the outer wall (3); a receiving space (9) which serves to receive a printed circuit board (12) or another component of the electric motor (2) and which adjoins the rotor space (4); a partition wall (10) separating the receiving space (9) from the rotor space (4); at least one orienting device (13) for positionally orienting the printed circuit board (12) or the other component of the electric motor (2) inside the receiving space (9); a receptacle (17) for a cover (18) which closes the rotor space (4), said receptacle being situated on the outer wall (3) on the side of the rotor space (44) opposite to the partition wall (10); and an inner wall (20), which adjoins the partition wall (10), for receiving a bearing (21) for the rotor (5), said inner wall, together with the outer wall (3), creating the receiving space (9).
Claims
1. A main body for an electric motor comprising: a substantially cylindrical outer wall, the substantially cylindrical outer wall forming a rotor space for at least partially receiving a rotor within the outer wall, and wherein a winding is at least partially attached on an outside of the outer wall, a laminated core, the laminated core held by the outer wall, a receiving space which adjoins the rotor space and receives a printed circuit board or another component of the electric motor, dividing wall which divides the receiving space with respect to the rotor space, at least one orienting device for positional orientation of the printed circuit board or the other component of the electric motor within the receiving space, a receptacle for a cover, the receptacle situated on the outer wall and on a side of the rotor space opposite the dividing wall, for a wherein the cover closes the rotor space, an inner wall adjoining the dividing wall, wherein the inner wall receives a bearing for the rotor, and wherein the inner wall and the outer wall produce the receiving space.
2. The main body of claim 1, wherein the dividing wall has an opening for leading through a rotor shaft or the rotor.
3. The main body of claim 1, wherein the laminated core includes a plurality of teeth for receiving the winding, wherein the plurality of teeth project to the outside from the outer wall.
4. The main body of claim 2, wherein the opening for leading through the rotor in the dividing wall has a non-round cross section.
5. The main body of claim 1, further comprising: at least two webs for supporting the printed circuit board or the other component of the electric motor, wherein the at least two webs are arranged on the dividing wall.
6. The main body of claim 5, wherein the at least one orienting device has at least one projection which is arranged on at least one web of the at least two webs for engagement into a bore of the printed circuit board or the other component of the electric motor.
7. The main body of claim 1, wherein the outer wall has a plurality of cutouts for leading through the winding.
8. The main body of claim 1, wherein the receptacle for the cover closing the rotor space comprises a peripheral cutout on an inner circumference of the outer wall.
9. The main body of claim 1, wherein the receptacle for the cover closing the rotor space has at least one slot for positional orientation of the cover.
10. The main body of claim 1, wherein the receiving space is formed by way of a peripheral depression between the outer wall and the inner wall, and wherein the receiving space receives one or more connector wires for interconnection of the winding.
11. The main body of claim 1, further comprising: an axial extension for a position transmitter, wherein the axial extension is provided on a side of the dividing wall facing away from the rotor space.
12. An electric motor comprising a rotor, a winding and a main body, the main body comprising: a substantially cylindrical outer wall, the substantially cylindrical outer wall forming a rotor space for at least partially receiving the rotor within the outer wall, and wherein the winding is at least partially attached on an outside of the outer wall; a laminated core, the laminated core held by the outer wall; a receiving space, the receiving space adjoining the rotor space, and wherein the receiving space receives a printed circuit board or another component of the electric motor; a dividing wall wherein the dividing wall divides the receiving space with respect to the rotor space; at least one orienting device for positional orientation of the printed circuit hoard or the other component of the electric motor within the receiving space; a receptacle for a cover, the receptacle situated on the outer wall and on a side of the rotor space opposite the dividing wall, and wherein the cover closes the rotor space; and an inner wall adjoining the dividing wall, wherein the inner wall receives a bearing for the rotor, and wherein the inner wall and the outer wall produce the receiving space.
13. The electric motor of claim 12 further comprising: at least one projection for fastening the printed circuit board or the other component of the electric motor, wherein the at least one projection is staked.
14. The electric motor of claim 12, further comprising: one or more connector wires for interconnection of the winding, wherein the one or more connector wires are received via respective plug terminals in a plug housing, wherein the plug housing is connected to a plug receptacle.
15. The electric motor of claim 14, wherein the plug housing can be is connected to the plug receptacle via a snap-in connection.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] In the figures, diagrammatically:
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DETAILED DESCRIPTION
[0053]
[0054] The main body 1 has a substantially cylindrical outer wall 3 which forms a rotor space 4 for receiving a rotor 5 (shown, for example, in
[0055] Furthermore, a coil or winding 6 (shown, for example, in
[0056] It can be seen in
[0057] The rotor space 4 is adjoined by a receiving space 9 which is divided from the rotor space 4 by means of a dividing wall 10 which is formed by way of a planar surface and has an opening 11 for leading through the rotor 5. With the exception of the opening 11 which serves for leading through the rotor 5 or the rotor shaft 5b, the dividing wall 10 is completely closed and therefore seals the rotor space 4. An additional seal element can possibly also be used in this region. The receiving space 9 serves to receive an annular printed circuit board 12 (shown, for example, in
[0058] An orienting device 13 which serves for positional orientation of the angular position of the printed circuit board 12 or the abovementioned other component of the electric motor 2 within the receiving space 9 and therefore with respect to the winding 6 or the rotor 5 is situated on the dividing wall 10. Furthermore, at least two (in the present case, a total of six) webs 14 for supporting the printed circuit board 12 or the other component of the electric motor 2 are arranged on the dividing wall 10. In its mounted state, the printed circuit board 12 lies on the webs 14, with the result that components which are situated on the underside of the printed circuit board 12 are also spaced apart from the dividing wall 10. It goes without saying that a completely different number of webs 14 can also be provided. The height of the webs 14 can be selected in such a way that a desired spacing of the printed circuit board 12 from the rotor 5 which is situated on the other side of the dividing wall 10 can be set, in order to ensure sufficient coupling between possible sensors which are situated on the printed circuit board 12 and the rotor 5 and therefore a correct function of said sensors.
[0059] The orienting device 13 has at least one (in the present case, three) projections 15 which are arranged on at least one of the webs 14 (in the present case, on three different webs 14) for engaging into a bore 16 of the printed circuit board 12 or of the other component of the electric motor 2. For fastening or fixing of the printed circuit board 12 to the main body 1, the at least one projection 15 or the plurality of projections 15 can be staked after arranging of the printed circuit board 12 within the receiving space 9.
[0060] Moreover, a receptacle 17 is provided on that side of the rotor space 4 which lies opposite the dividing wall 10, which receptacle 17 serves to receive a cover 18 which closes the rotor space 4 and therefore protects it against the penetration of dust or other contaminants. Here, the receptacle 17 for the cover 18 which closes the rotor space 4 is configured as a peripheral cutout on the inner circumference of the outer wall 3. The receptacle 17 for the cover 18 is therefore provided on that side of the main body 1 which lies opposite the cutouts 3a. In addition, the receptacle 17 for the cover 18 has at least one slot 19 for the positional orientation of the cover 18, into which slot 19 a projection (not shown) of the cover 18 can engage. Moreover, the cover 18 can serve to receive a bearing (not shown) for mounting the rotor 5.
[0061] The dividing wall 10 is adjoined by a substantially cylindrical inner wall 20 which serves to receive a bearing 21 for the rotor 5 and produces the receiving space 9 together with the outer wall 3. The bearing 21 can be pressed onto the rotor 5.
[0062] At the same time, the inner wall 20 forms a centering means for the printed circuit board 12. The opening 11 for leading through the rotor 5, which opening 11 is situated in the dividing wall 10 and is surrounded by the inner wall 20, has a non-round cross section, in the present case an octagon.
[0063] The outer wall 1, the dividing wall 10, the webs 14, the projections 15 and the inner wall 20 of the main body 1 preferably consist of a suitable plastic material, and can be produced by means of injection molding. For this reason and on account of its shape, the main body 1 can also be called an overmolded tooth star.
[0064] Here, the outer wall 1, the dividing wall 10, the webs 14, the projections 15 and the inner wall 20 are preferably configured in one piece with one another, and are produced, in particular, by means of a single injection molding process. Here, on account of the above-described, highly universal configuration of the main body 1, only a single injection molding die is in principle required. As a result of the above-described non-round cross section of the opening 11, said injection molding die can be of very exact configuration in the region which produces the opening 11, as a result of which likewise exact, central positioning of the rotor 5 within the opening 11 is possible. As a result of the molding of the inner wall 20 which receives the bearing 21 for the rotor 5 onto the dividing wall 10, very simple sealing is achieved in this region, inter alia satisfactory sealing of the rotor space 4, without an additional cover, a casting compound or the like being required.
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[0066] It can be seen in the section of
[0067] It can be seen in
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[0069] The plug housing 32 and the plug receptacle 33 are in each case plastic components which can be produced in a simple way. In the present case, the plug housing 32 is connected to the plug receptacle 33 by means of a snap-in connection. In a way which is not shown, the plug housing 31 can be connected fixedly to the main body 1. In this way, during the assembly of the electric motor 2, its electric connection could take place at the same time.