MACHINE WITH A SYSTEM FOR AXIAL BLOCKING OF THE SHAFT
20200049201 ยท 2020-02-13
Inventors
Cpc classification
F16C35/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/6607
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K5/173
ELECTRICITY
H02K5/1732
ELECTRICITY
F16C23/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7886
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C35/073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K5/173
ELECTRICITY
Abstract
A machine including at least one bearing mount; at least one bearing carried by the bearing mount, the bearing comprising inner and outer races and rolling elements between the races; a shaft engaged in the bearing, axially blocked relative to the inner race; a pushrod cover arranged on one side of the bearing, having a surface opposite the bearing and having, on its radially outer edge, a bead of material in contact with the outer race; at least one push element movable transversely to the axis of rotation (X) of the shaft in order to exert a pressure on said surface of the push rod cover in order to press it against the outer race and axially block said outer race.
Claims
1. A rotary machine, including: at least one bearing mount; at least one bearing carried by the bearing mount, the bearing including inner and outer races and rolling elements between the races; a shaft engaged in the bearing, axially blocked relative to the inner race; a pushrod cover arranged on one side of the bearing, having a surface opposite the bearing, and having on its radially outer edge a bead of material in contact with the outer race; at least one push element moved transversally to the axis of rotation of the shaft in order to exert a pressure on said surface of the pushrod cover in order to press it against the outer race and axially block same.
2. The machine as claimed in claim 1, the push element or each push element being a screw.
3. The machine as claimed in claim 1, the push element or each push element being oriented perpendicularly to the axis of rotation of the shaft.
4. The machine as claimed in claim 1, said surface extending obliquely relative to the axis of rotation of the shaft.
5. The machine as claimed in claim 1, said surface being tapered, flaring towards the bearing.
6. The machine as claimed in claim 4, the push element having a slope at its end, substantially equal to that of said surface in the zone of contact of the push element on said surface.
7. The machine as claimed in claim 1, the pushrod cover having, on its radially inner edge, a turnback directed towards the radially inner race.
8. The machine as claimed in claim 1, the outer race being axially in contact with a projection of the bearing mount on the side opposite the pushrod cover.
9. The machine as claimed in claim 1, including a second cover, on the side opposite the pushrod cover.
10. The machine as claimed in claim 1, the pushrod cover being made in plastic, composite or metal material.
11. The machine as claimed in claim 1, consisting of a motor, an alternator or a reduction gear.
12. The machine as claimed in claim 2, the push element or each push element being screwed into the bearing mount so as to press the pushrod cover against the outer race.
13. A method for axially immobilizing the shaft of a machine such as that defined in claim 1, including the step consisting of moving the push element or each push element transversally to the axis of rotation of the shaft so as to cause the pushrod cover to press the outer race of the bearing and to immobilize this race axially relative to the bearing mount.
14. The method as claimed in claim 13, the push element or each push element being screwed into the bearing mount so as to press the pushrod cover against the outer race.
15. The method as claimed in claim 14, the push element or each push element being screwed with a controlled tightening torque.
16. The machine as claimed in claim 6, the push element consisting of a screw with a tapered tip.
17. The machine as claimed in claim 16, the screw with a tapered tip having the same taper as the surface.
Description
[0032] Other characteristics and advantages of the present invention will emerge on reading the detailed description that will follow, of a non-limitative embodiment example of said invention, and on examining the attached drawing, on which:
[0033]
[0034]
[0035]
[0036] The machine 1 according to the invention, partially shown at
[0037] The machine 1 is for example an electric motor.
[0038] The shaft 2 is engaged in a bearing 10 including an inner race 11, an outer race 12 and rolling elements 13 arranged between the races 11 and 12.
[0039] In the example considered, the rolling elements 13 are rollers but the invention is not limited to a particular type of bearing, and the rolling elements can be balls.
[0040] The inner race 11 is axially immobilized on the shaft 2 by circlips 3 and 4 installed in corresponding grooves 5 and 6 of the shaft 2. In variants, the immobilization is done differently, thanks for example to a projection on the shaft.
[0041] The outer race 12 is carried by a bearing mount of the machine, having an opening with the shaft passing through it.
[0042] The bearing mount 20 has a housing 21 in which the outer race 12 of the bearing 10 is accommodated. The housing 21 has a projection 23 against which the outer race 12 presses axially.
[0043] A pushrod cover 30 is arranged on the side opposite the projection 23 so as to press the outer race 12 against the projection 23.
[0044] This pushrod cover 30 has a wall 31, tapered, converging away from the projection 23, extending substantially over the entire radial dimension of the space between the bottom 21a of the housing 21 and the shaft 2.
[0045] The pushrod cover 30 has, on its radially outer edge, towards the projection 23, a bead of material 33 and on its radially inner edge a turnback 34 turned towards the bearing 10, extending substantially parallel t the axis X.
[0046] The bead 33 presses axially against the outer race 12 on the side opposite the projection 23.
[0047] Several push elements, consisting of the screws 40, only one of which is apparent on
[0048] The screws 40 are screwed into corresponding tapped holes 29 of the bearing mount 20, distributed uniformly, oriented perpendicularly to the axis X, and each having a tapered tip 41 of the same taper as the surface 35 of the wall 31 opposite the bearing 10.
[0049] The tapered tip 41 presses against the wall 31 on the side opposite the bead 33. By screwing the screw 40, an axial push is transmitted by corner effect to the outer race 12.
[0050] By screwing the screw 40 more or less and by controlling the tightening torque, it is thus possible precisely to control the axial push exerted by the pushrod cover 30 on the outer race 12.
[0051] The turnback 34 extends with a small clearance from the shaft 2 so as to retain the grease present in the space 38 between the bearing 10 and the pushrod cover 30.
[0052] On the side opposite the pushrod cover 30, the machine can include a cover 50 extending between the bearing mount 20 and the shaft 2, with a small clearance with it, as illustrated.
[0053] The cover 50 can include a turnback 51 towards the bearing, on its radially outer edge, said turnback being axially immobilized between the outer race 12 and a projection 27 of the bearing mount 20.
[0054] Of course, the invention is not limited to the illustrated example. For example, the machine is a reduction gear or an alternator, or any other mechanism where there is value in axially blocking a shaft guided by at least one bearing.
[0055] In variants, the cover 50 is absent; also in variants, the machine is realized without the projection 23.