ROTOR FOR AN ELECTRIC MOTOR PROVIDED WITH A COOLING CIRCUIT
20230223807 · 2023-07-13
Inventors
Cpc classification
H02K1/276
ELECTRICITY
H02K9/197
ELECTRICITY
International classification
H02K1/276
ELECTRICITY
H02K7/00
ELECTRICITY
Abstract
A rotor including a shaft mounted around an axis of rotation; a laminated core mounted coaxially on the shaft, the laminated core extending between a front side face and a rear side face. It includes first internal cavities, a plurality of permanent magnets housed inside the first internal cavities, a front flange in the form of discs and arranged on either side of the laminated core. The shaft is provided with an internal inlet channel for circulating a coolant. The front or rear flange is configured to form, with the front or rear side face, at least one front outlet channel or rear outlet channel inside which a coolant is circulated. The front or rear outlet channel connected to the inlet channel opens at an outlet opening at the outer periphery of the front flange or rear flange.
Claims
1. A rotor for an electric motor comprising: a rotor shaft rotatably mounted about an axis; a lamination stack coaxially mounted on the rotor shaft, the lamination stack extending between a front lateral face and a rear lateral face and comprising first internal cavities; a plurality of permanent magnets housed inside the first internal cavities of the lamination stack; a front flange and a disc-shaped rear flange coaxially mounted on the rotor shaft and axially arranged on either side of the lamination stack so as to be contiguous respectively to the front and rear lateral faces of the lamination stack; wherein the shaft is provided with at least one internal channel for circulating a coolant, called an inlet channel, and wherein the front flange, respectively the rear flange, is configured to form with the front lateral face, respectively the rear lateral face, of the lamination stack at least one front outlet channel, respectively at least one rear outlet channel), inside which a coolant may circulate, the at least one front, respectively rear outlet channel being in fluid communication with the inlet channel, and opening at at least one outlet aperture located at the external periphery of the front flange, respectively of the rear flange.
2. The rotor according to claim 1, wherein the shaft comprises a hollow front end portion and a solid rear end portion separated from the front end portion by a hollow central portion, the front end portion and the central portion being traversed by a cylindrically-shaped central cavity, the central cavity forming the inlet channel of the shaft, and wherein at least one hole oriented radially with respect to the axis of the shaft is formed inside the front end portion, respectively the central portion, so as to open, on one side, into the inlet channel and, on the other side, into the at least one front outlet channel, respectively the at least one rear outlet channel.
3. The rotor according to claim 2, wherein the shaft comprises a main body provided with a blind hole aligned along the axis of the shaft, the blind hole comprising two contiguous sections with different internal diameters, namely a first section having a first internal diameter and a second section having a second internal diameter, the inlet channel of the shaft being jointly defined by the first section and by the second section of the blind hole.
4. The rotor according to claim 1, wherein each of the front and rear flanges has an internal face in contact with a lateral face of the lamination stack, the internal face being provided with at least one groove radially extending from a recessed central region of the flange, at which the groove is in fluid communication with the inlet channel of the shaft, to a peripheral face of the flange, the at least one groove forming with the corresponding lateral face of the lamination stack the front or rear outlet channel.
5. The rotor according to claim 4, wherein the at least one groove has a specific profile allowing it to optimize the contact surfaces between the front outlet channel, respectively the rear outlet channel, and the permanent magnets housed in the lamination stack.
6. The rotor according to claim 4, wherein the at least one groove is formed by a succession of contiguous radial and orthoradial segments, the segments defining a baffle profile intended to increase the path to be traveled by the coolant during its circulation in the front outlet channel, respectively in the rear outlet channel, with respect to a path which would be radially direct between the central region and the peripheral face of the front flange, respectively of the rear flange.
7. The rotor according to claim 4, wherein the internal face of the front flange, respectively of the rear flange is provided with a plurality of grooves radially extending from a recessed central region of the front flange, respectively of the rear flange, at which the grooves are in fluid communication with the inlet channel of the shaft, to a peripheral face of the front flange, respectively of the rear flange, the grooves forming with the corresponding lateral face of the lamination stack a plurality of front outlet channels, respectively a plurality of rear outlet channels.
8. The rotor according to claim 7, wherein each of the grooves faces a radial hole formed through the shaft, the radial hole opening, on one side, onto the inlet channel of the shaft and, on the other side, onto the peripheral wall of the shaft.
9. The rotor according to claim 1, wherein the permanent magnets are made of ferrite.
10. The rotor according to claim 1, wherein the permanent magnets are made of rare earth.
11. The rotor according to claim 1, wherein at least one of the front and rear flanges are produced from plastic.
12. An electric motor comprising a rotor according to claim 1 and an annular stator which surrounds the rotor coaxially to the shaft, winding heads axially projecting on either side of the stator, wherein the outlet aperture, respectively each of the outlet apertures, through which the coolant of the front and rear flanges exits, is axially aligned with the winding heads so as to allow cooling of the winding heads by means of the coolant.
13. The rotor according to claim 5, wherein the at least one groove is formed by a succession of contiguous radial and orthoradial segments, the segments defining a baffle profile intended to increase the path to be traveled by the coolant during its circulation in the front outlet channel, respectively in the rear outlet channel, with respect to a path which would be radially direct between the central region and the peripheral face of the front flange, respectively of the rear flange.
14. The rotor according to claim 5, wherein the internal face of the front flange, respectively of the rear flange is provided with a plurality of grooves radially extending from a recessed central region of the front flange, respectively of the rear flange, at which the grooves are in fluid communication with the inlet channel of the shaft, to a peripheral face of the front flange, respectively of the rear flange, the grooves forming with the corresponding lateral face of the lamination stack a plurality of front outlet channels, respectively a plurality of rear outlet channels.
15. The rotor according to claim 6, wherein the internal face of the front flange, respectively of the rear flange is provided with a plurality of grooves radially extending from a recessed central region of the front flange, respectively of the rear flange, at which the grooves are in fluid communication with the inlet channel of the shaft, to a peripheral face of the front flange, respectively of the rear flange, the grooves forming with the corresponding lateral face of the lamination stack a plurality of front outlet channels, respectively a plurality of rear outlet channels.
16. The rotor according to claim 13, wherein the internal face of the front flange, respectively of the rear flange is provided with a plurality of grooves radially extending from a recessed central region of the front flange, respectively of the rear flange, at which the grooves are in fluid communication with the inlet channel of the shaft, to a peripheral face of the front flange, respectively of the rear flange, the grooves forming with the corresponding lateral face of the lamination stack a plurality of front outlet channels, respectively a plurality of rear outlet channels.
17. The rotor according to claim 16, wherein each of the grooves faces a radial hole formed through the shaft, the radial hole opening, on one side, onto the inlet channel of the shaft and, on the other side, onto the peripheral wall of the shaft.
18. The rotor according to claim 17, wherein the permanent magnets are made of ferrite.
19. The rotor according to claim 18, wherein at least one of the front and rear flanges are produced from plastic.
20. The rotor according to claim 18, wherein the permanent magnets are made of rare earth.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The invention will be better understood upon reading the non-limiting following description, made with reference to the appended figures.
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION
[0038] Throughout the description and in the claims, the terms “axial” and “radial” and their derivatives are defined with respect to the axis of rotation of the rotor. Thus, an axial orientation relates to an orientation parallel to the axis of rotation of the rotor and a radial orientation relates to an orientation perpendicular to the axis of rotation of the rotor. An orthoradial orientation relates to an orientation perpendicular to a radial orientation in a plane perpendicular to the axis of rotation of the rotor. Also, by convention, the terms “front” and “rear” refer to separate positions along the axis of rotation of the rotor. In particular, the “front” end of the shaft of the rotor corresponds to the end of the shaft on which a pulley, a pinion, a spline intended to transmit the rotational movement of the rotor to any other similar motion transmission device may be fastened.
[0039]
[0040] The lamination stack 14 is formed from an axial pile of laminations which extend in a radial plane perpendicular to the axis X of the shaft 12 or of a lamination rolled up on itself (Slinky lamination). The lamination stack 14 is coaxially mounted on the shaft 12. The shaft 12 can be fitted by force inside a central aperture of the lamination stack 14 so as to bind in rotation the body of the rotor with the shaft 12. A plurality of fastening holes 11 are made in the lamination stack 14 to allow the passage of fastening screws 13 intended to fasten end flanges 17, 19 on the lamination stack 14. Thus, a first end of the screws bears against the external face of a rear end flange 19, while the other end of the screws protrudes from the external face of a front end flange 17 and is threaded so as to receive a nut which, once screwed, exerts pressure against said external face. Thus, the lamination stack 14 is axially clamped between the front end flange 17 and the rear end flange 19. These flanges 17, 19 can advantageously make it possible to ensure a balancing of the rotor 10 while allowing a good maintenance of the magnets 15 inside the internal cavities 141. The balancing of these flanges may be carried out by adding or removing material. The removal of material may be carried out by machining, while the addition of material can be carried out by implanting elements in apertures provided for this purpose and distributed along the circumference of the flange 17, 19.
[0041] Referring to
[0042] Referring to
[0043] Referring to
[0044] The front flange 17 is substantially in the form of a disc comprising in particular an external face (not shown) and an internal face 173. The internal face 173 is in contact with the front lateral face 143 of the lamination stack 14 (the internal face 193 of the rear flange 19 is however in contact with the rear lateral face 144 of the lamination stack 14). The internal face 173 is provided with a groove 176 radially extending from a recessed central region 172 of said flange to a peripheral face 177 of said flange. The groove 176 is configured to form with the corresponding lateral face 143 of the lamination stack 14 a circulation channel for the coolant, called a front outlet channel 175. In the case of the rear flange 19, a similar groove allows in the same way to define a rear outlet channel 195.
[0045] As represented on
[0046] Thus configured, the rotor 10 and the motor 30 can be cooled by a coolant, such as oil for example, said coolant circulating in the rotor successively through the inlet channel 124, then between the front and rear flanges 17, 19 and the front and rear lateral faces 143, 144 of the lamination stack 14 respectively through the front and rear outlet channels 175, 195, to finally be expelled from the rotor 10 through the apertures 178. Subsequently, this coolant is directed towards the winding heads 37 so that, once in contact with the winding heads 37, it can extract part of the heat stored in said winding heads 37. The coolant then circulates, under the effect of the gravity, in the lower part of the casing before being discharged via a discharge aperture.
[0047]
[0048] In particular, the permanent magnets 15 have a parallelepipedic shape with rectangular section and are substantially aligned in two planes perpendicular to the axis X of the shaft 12, each of said planes being aligned with one of the front and rear lateral faces 143, 144 of the lamination stack 14. The magnets 15 are evenly distributed about the axis X and are disposed in such a way as to form a multi-arm star pattern. The magnets 15 can be made of rare earth, for example. The lamination stack 14 can in particular comprise a plurality of second internal cavities 142 axially traversing and extending along a direction radial with respect to the axis X. These second internal cavities 142 can make it possible to house acoustic absorption elements inside the lamination stack. In the embodiment shown, these second internal cavities 142 are four in number and each have a section in the shape of a portion of a ring. They are evenly distributed about the axis X so as to avoid creating an imbalance in the rotor.
[0049] Referring to
[0050] As shown in
[0051] The invention is obviously not limited to the embodiments as described previously. In particular, in other embodiments (not shown) of the invention, the flanges 17, 19 can also be provided with several grooves 176 separated from each other so that the coolant cannot circulate between the grooves through the flanges. Each of the grooves 176 can advantageously extend radially from the recessed central region of the flanges, at which each of the grooves will be in fluid communication with the inlet channel 124, to the peripheral face of said flanges at a single outlet aperture. This outlet aperture will advantageously be axially aligned with the winding heads 37 of the stator 36 so as to allow said winding heads 37 to be cooled by means of the coolant expelled from the rotor through said outlet aperture.