Electric motor-driven motor-vehicle vacuum pump, and drive shaft for a motor vehicle vacuum pump
10288067 · 2019-05-14
Assignee
Inventors
- Dietmar Moeser (Marienheide, DE)
- Benjamin Pyrdok (Bergisch Gladbach, DE)
- Freddy Schönwald (Hückeswagen, DE)
- Carsten Sczesny (Bochum, DE)
- Daniel Ziehr (Remscheid, DE)
Cpc classification
F04C18/3448
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C17/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to an electric motor-driven motor-vehicle vacuum pump (1), having a drive shaft (3) which has, in particular, two bearings and extends with a shaft stub (5; 35; 45) into a rotor (8) which is connected fixedly to the shaft stub so as to rotate with it. In the rotor, the shaft stub has a centring region (26; 36; 46) which serves to center the rotor, without guiding the rotor in the axial direction.
Claims
1. An electric motor-driven motor-vehicle vacuum pump, including: a drive shaft which has two bearings and which extends along an axis; a shaft stub extending axially from the drive shaft and terminating axially at a free end; a rotor disposed about the shaft stub; the rotor defining a coupling aperture extending axially therein along the axis; a coupling element positioned in the coupling aperture and rotationally fixing the free end of the shaft stub and the rotor and configured to allow tilting of the drive shaft relative to the rotor during rotation of the drive shaft and rotor; wherein the shaft stub in the rotor comprises a centering area axially spaced from the coupling element and the free end of the shaft stub for centering the rotor without guiding the rotor in an axial direction, and wherein the centering area extends radially outwardly and has a convexly curved shape along a plane extending through the axis for providing angular mobility of the drive shaft in relation to the rotor.
2. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the shaft stub in the centering area is spherically formed.
3. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the shaft stub in the centering area is arranged with a centering diameter affording virtually no play in a rotor opening.
4. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 3, wherein the centering diameter of the shaft stub, in relation to an extent of the rotor in the axial direction, is arranged substantially centrally in the rotor.
5. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the motor-vehicle vacuum pump is a dry-running pump.
6. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the motor-vehicle vacuum pump is a vane pump having at least one vane.
7. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the rotor defines a rotor opening being a through-hole.
8. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the rotor defines a rotor opening being a blind hole.
9. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein when viewed in longitudinal section, the shaft stub in the centering area has an ellipsoid shape being defined radially outwards by two circular arcs.
10. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the shaft stub in the centering area has the shape of a ball.
11. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the centering area has an extent in the axial direction which is approximately half the extent of the rotor in the axial direction, but at least 0.5 mm.
12. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 1, wherein the centering area has a convexly curved shape about an entire outer periphery of the centering area.
13. An electric motor-driven motor-vehicle vacuum pump, including: a drive shaft having two bearings and extending along an axis; a shaft stub extending axially from the drive shaft and terminating axially at a free end; a rotor disposed about the shaft stub; a coupling element rotationally fixing the free end of the shaft stub and the rotor and configured to allow tilting of the drive shaft relative to the rotor during rotation of the drive shaft and rotor; wherein the shaft stub in the rotor comprises a centering area axially spaced from the coupling element and the free end of the shaft stub for centering the rotor without guiding the rotor in an axial direction, and wherein the centering area extends radially outwardly and has a convexly curved shape along a plane extending through the axis for providing angular mobility of the drive shaft in relation to the rotor; wherein the rotor extends between a first axial surface and a second axial surface being generally parallel with one another, wherein the first axial surface defines a rotor opening extending axially therein toward the second axial surface along the axis, and wherein the second axial surface defines a coupling aperture extending axially therein along the axis, wherein the rotor opening extends into the coupling aperture, and wherein the coupling aperture extends radially outwardly past the rotor opening.
14. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 13, wherein the free end of the shaft stub is dihedral, and wherein the coupling element is an Oldham coupling and surrounds and is rotationally fixed to the shaft stub and is positioned in the coupling aperture.
15. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 13, wherein the rotor in the axial direction is arranged between two side faces.
16. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 13, wherein the shaft stub extends through the rotor opening, and wherein the free end of the shaft stub is positioned in the coupling aperture.
17. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 16, wherein the coupling element is fitted in the coupling aperture, and wherein the free end and the coupling element form a rotationally fixed connection.
18. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 13, wherein the centering area is positioned in the rotor opening, and wherein an outermost diameter of the centering area is substantially the same as a diameter of the rotor opening.
19. The electric motor-driven motor-vehicle vacuum pump as claimed in claim 13, wherein the drive shaft extends into the rotor opening through the first axial surface opposite the coupling aperture, and wherein the coupling element is positioned in the coupling aperture.
20. An electric motor-driven motor-vehicle vacuum pump, including: a drive shaft which has two bearings and which extends along an axis; a shaft stub extending axially from the drive shaft and terminating axially at a free end; a rotor disposed about the shaft stub; the rotor defining a coupling aperture extending axially therein along the axis; a coupling element positioned in the coupling aperture and rotationally fixing the free end of the shaft stub and the rotor and configured to allow tilting of the drive shaft relative to the rotor during rotation of the drive shaft and rotor; wherein the shaft stub in the rotor comprises a centering area axially spaced from the coupling element and the free end of the shaft stub for centering the rotor without guiding the rotor in an axial direction, and wherein the centering area extends radially outwardly and has a convexly curved shape along a plane extending through the axis for providing angular mobility of the drive shaft in relation to the rotor; wherein said electric motor-driven motor-vehicle vacuum pump does not include a supply of lubricant.
Description
DRAWINGS
(1) Further advantages, features and details of the invention ensue from the following description, in which various exemplary embodiments are described in detail with reference to the drawing, in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6)
(7) From the drive shaft 3, a shaft stub 5 extends into a rotor 8 of the motor-vehicle vacuum pump 1. To receive the shaft stub 5, the rotor 8 comprises a rotor opening 10, which is designed as a through-hole in the form of a central bore.
(8) The rotor 8 is equipped with a total of five vane slots 11 to 15 for guiding vanes (not shown). The motor-vehicle vacuum pump 1 with the rotor 8 and the vanes is also referred to as a vane pump. The general construction and the working of a vane pump are described, for example, in international publications WO 2004/074687 A2 and WO 2011/134448 A2.
(9) At a free end 18 of the shaft stub 5, the drive shaft 3 of the motor-vehicle vacuum pump 1 is rotationally fixed to the rotor 8 by means of an Oldham coupling 20. The Oldham coupling 20 comprises a coupling element 22, which is fitted, rotationally fixed, onto the dihedral free end 18 of the shaft stub 5. A rotationally fixed connection is thereby created between the free end 18 of the shaft stub 5 and the coupling element 22.
(10) In addition, the coupling element 22 is received in a coupling aperture 24 of the rotor 8 for the rotationally fixed connection to the rotor 8. The Oldham coupling 20 known in the art allows tilting of the drive shaft 3 relative to the rotor 8, despite the rotationally fixed connection between the free end 18 of the shaft stub 5. A sort of wobbling motion of the drive shaft 3 relative to the rotor 8 is thereby allowed during operation of the motor-vehicle vacuum pump 1.
(11) According to a principal aspect of the invention, this wobbling motion is allowed by virtue of a centering area 26, which is formed on the shaft stub 5 approximately in the center of the rotor 8. The term center here relates to the extent of the rotor 8 in an axial direction. The term axial means in the direction of the longitudinal axis or axis of rotation of the drive shaft 3.
(12) The longitudinal axis or axis of rotation of the drive shaft 3 substantially coincides, apart from a tolerance-dependent angular error, with the axis of rotation of the rotor 8. In the centering area 26 the shaft stub 5 of the drive shaft 3 is spherically formed. The spherical formation serves to ensure a sufficient angular mobility of the drive shaft 3 in relation to the rotor 8 when there is very little play between the shaft stub 5 and the rotor opening 10 in a radial direction.
(13) Two side faces 31, 32, between which the rotor 8 is guided in an axial direction, are indicated in
(14) In
(15) The shaft stub 45 is convexly curved in the centering area 46. In longitudinal section the centering area 46 is defined by two circular arcs 48, 49. The shaft stub 45 thereby takes on a spherical shape in the centering area 46.
LIST OF REFERENCE NUMERALS
(16) 1 motor-vehicle vacuum pump 3 drive shaft 5 shaft stub 8 rotor 10 rotor opening 11 vane slot 12 vane slot 13 vane slot 14 vane slot 15 vane slot 18 end 20 Oldham coupling 22 coupling element 24 coupling aperture 26 centering area 31 side face 32 side face 35 shaft stub 36 centering area 38 ball 45 shaft stub 46 centering area 48 circular arc 49 circular arc