Electromechanical actuator with integrated force sensor
11561142 · 2023-01-24
Assignee
Inventors
Cpc classification
G01L1/2231
PHYSICS
F16H25/2247
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2252
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/06
ELECTRICITY
H02K5/1732
ELECTRICITY
H02K11/20
ELECTRICITY
F16H2025/2031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/083
ELECTRICITY
G01L5/0019
PHYSICS
International classification
G01L5/00
PHYSICS
F16H25/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/20
ELECTRICITY
H02K5/173
ELECTRICITY
H02K5/22
ELECTRICITY
Abstract
An electromechanical cylinder contains a casing, an actuating rod mounted so as to be able to move longitudinally relative to the casing, an electric motor provided with a rotating rotor shaft, a mechanism for transforming a rotational movement of the rotor shaft of the electric motor into a linear translational movement of the actuating rod, and at least one bearing for guiding the rotor shaft of the electric motor in rotation relative to the casing and for supporting the rotor shaft. The cylinder further contains a sleeve that is fastened to the casing and inside which is mounted the bearing, and at least one load sensor that is mounted on the sleeve while being offset axially relative to the bearing.
Claims
1. An electromechanical cylinder, comprising: a casing including a tubular main body, said casing including a front endplate mounted at an end of said tubular main body and a rear endplate mounted at another end of said tubular main body; an actuating rod extending through said front endplate and mounted to be longitudinally moveable relative to said casing; an electric motor having a rotating rotor shaft; a mechanism for transforming a rotational movement of said rotor shaft of said electric motor into a linear translational movement of said actuating rod; at least one bearing for guiding said rotor shaft of said electric motor in rotation relative to said casing and for supporting said rotor shaft, said at least one bearing being situated axially between said electric motor and said front endplate; a sleeve fastened to said casing and inside said sleeve is mounted said bearing, said sleeve having a radial flange for fastening said sleeve to said casing, said radial flange being gripped axially between said tubular main body and said front endplate of said casing; and at least one load sensor mounted on said sleeve while being offset axially relative to said at least one bearing.
2. The cylinder according to claim 1, wherein said casing has a bore formed therein and an annular radial clearance is provided at least between said bore of said casing and a portion of said sleeve on which are mounted said bearing and said at least one load sensor.
3. The cylinder according to claim 1, wherein said sleeve has an axial tubular portion and inside said axial tubular portion is mounted said bearing and said sleeve supports said at least one load sensor.
4. The cylinder according to claim 1, wherein said casing has a bore formed therein and an annular axial clearance is disposed between said bore of said casing and an axially opposite end of said sleeve from said radial flange.
5. The cylinder according to claim 1, wherein said sleeve has through-openings formed therein being made in a radial thickness of said sleeve, said at least one load sensor being disposed between two of said through-openings that succeed one another in a circumferential direction.
6. The cylinder according to claim 1, further comprising at least one electrical connection cable that is connected to said at least one load sensor and mounted on said sleeve.
7. The cylinder according to claim 6, wherein said sleeve has at least one groove formed therein, said electrical connection cable extends at least partially inside said at least one groove formed on said sleeve.
8. The cylinder according to claim 6, further comprising: an external housing fastened to the casing; and an electronic card connected to said electrical connection cable and mounted inside said external housing.
9. The cylinder according to claim 1, wherein said mechanism for transforming the rotational movement includes a screw that is secured to said actuation rod and has an external thread, and a plurality of longitudinal rollers that engage with said external thread of said screw and with an internal thread of said rotor shaft of said electric motor.
Description
(1) The present invention will be better understood upon studying the detailed description of an embodiment, given by way of entirely non-limiting example and illustrated by the appended drawings.
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
(2)
(3)
(4)
(5)
DESCRIPTION OF THE INVENTION
(6) In
(7) The cylinder 10 comprises a casing 12, an actuating rod 14 that is able to move axially and is coaxial with the axis X-X′, an electric motor 16 and a mechanism 18 for transforming a rotational movement of said motor into a linear translational movement of the rod 14 along the axis X-X′. The mechanism 18 is interposed radially between the electric motor 16 and the actuating rod 14.
(8) The electric motor 16 and the mechanism 18 are entirely housed inside the casing 12. The actuating rod 14 extends axially through the casing 12 and protrudes toward the outside.
(9) The electric motor 16 comprises a stator 20 fastened to the casing 12 and a rotor (not shown). The stator 20 is fastened in the bore 24 of the casing. The rotor is provided with a tubular rotor shaft 26 and a plurality of permanent magnets (not shown) that are supported by said shaft. The rotor shaft 26 extends axially either side of the stator 20. The electric motor 16 may be of the brushless type.
(10) In the exemplary embodiment illustrated, the casing 12 comprises a tubular main body 12a, and a front endplate 12b and a rear endplate 12c that are each fastened to one axial end of said body. The actuating rod 14 extends through the front endplate 12b and protrudes outside the casing 12. The main body 12a delimits the majority of the bore 24 of the casing.
(11) In order to guide the rotor shaft 26 in rotation and support same, the cylinder 10 also comprises two front rolling bearings 30, 32 and a rear rolling bearing 34.
(12) The rear rolling bearing 34 is interposed radially between the rotor shaft 26 and a rear support 35 of the casing that is interposed axially between the body 12a and the rear endplate 12c. The rolling bearing 34 is mounted on the outer surface of the rotor shaft 26 of the electric motor and in a bore of the rear support 35.
(13) As will be described in greater detail below, the cylinder 10 also comprises a housing forming a sleeve 36 inside which are mounted the front rolling bearings 30, 32 and that supports load sensors 38 (
(14) In the exemplary embodiment illustrated, the mechanism 18 is a roller screw mechanism of the inverted satellite roller screw type. The mechanism 18 comprises a screw 40, which is coaxial with the actuating rod 14, fastened to said rod and provided with an external thread (not referenced), and a plurality of longitudinal rollers 42 that are disposed radially between the screw and the rotor shaft 26 of the electric motor. The rotor shaft 26 has a tubular shape. The rotor shaft 26, which is coaxial with the screw 40, comprises an internal thread (not referenced) of which the internal diameter is greater than the external diameter of the thread of the screw 40.
(15) The rollers 42 are identical to one another and in this case are distributed regularly around the screw 40. Each roller 42 extends along an axis parallel to the axis of the screw and comprises an external thread (not referenced) that engages with the external thread of the screw 40 and with the internal thread of the rotor shaft 26. In a manner known per se, each roller 42 comprises, at each end, external teeth that engage with synchronizing teeth of the screw 40, and a journal that extends axially toward the outside from the teeth and is housed in a cavity in one of the spacing rings 44, 46 that are mounted on said screw.
(16) The actuating rod 14 is secured to the screw 40 of the roller screw mechanism. A rotation of the rotor shaft 26 of the electric motor is converted into a translation of the screw 40 and of the actuating rod 14 along the axis X-X′.
(17) As indicated above, the bearings 30, 32 support the rotor shaft 26 of the electric motor and guide same in rotation. The bearings 30, 32 are mounted axially in abutment against one another.
(18) As illustrated more visibly in
(19) The inner ring 30b, 32b of each bearing is mounted on the outer surface of the rotor shaft 26 of the electric motor. The outer ring 30a, 32a of each bearing is mounted inside the bore of the sleeve 36.
(20) The inner ring 30b of the bearing 30 is mounted axially in abutment against a shoulder 26a of the rotor shaft. The outer ring 30a of this bearing 30 is mounted axially in abutment against a radial annular lip 36a of the sleeve 36, in this case by means of a washer (not referenced). Alternatively, it is possible to provide for direct contact between the lip 36a of the sleeve and the outer ring 30a.
(21) In order to axially preload the stack of bearings 30 and 32, the cylinder 10 comprises two locking nuts 50, 52 that are mounted respectively in abutment against the inner ring 32b and the outer ring 32a of the bearing 32, axially on the opposite side from the other bearing 30. A washer (not referenced) is in this case axially interposed between each nut 50, 52 and the bearing 32. Alternatively, it is possible not to provide these washers. The nut 50 is screwed on the outer surface of the rotor shaft 26 of the electric motor. The nut 52 is for its part screwed in the bore of the sleeve 36.
(22) As indicated above, the bearings 30, 32 are mounted inside the sleeve 36 that also supports the load sensors 38. The sleeve 36 is realized in a single piece. The sleeve 36 may for example be made of a metallic material, in particular steel.
(23) The sleeve 36 comprises an axial tubular portion 36b delimiting the bore of said sleeve inside which are mounted the bearings 30, 32. At one axial end, the tubular portion 36b is extended radially toward the inside by the lip 36a. At the opposite axial end, the tubular portion 36b is extended radially toward the outside by a radial annular flange 36c. The flange 36c is gripped axially between the body 12a and the front endplate 12b of the casing. The flange 36c fastens the sleeve 36 to the casing 12.
(24) The load sensors 38 are mounted on the tubular portion 36b of the sleeve. The load sensors 38 are mounted on the tubular portion 36b while being offset axially relative to the bearings 30 and 32, here on the side of the flange 36c. The sensors 38 are not situated radially in line with the region of the tubular portion 36b inside which are mounted the bearings 30, 32. In other words, the load sensors 38 are mounted on the tubular portion 36b in a region thereof that is left free by the bearings 30, 32.
(25) In the exemplary embodiment illustrated, the load sensors 38 are mounted on the outer surface of the tubular portion 36b. Alternatively, it may be possible to provide for the load sensors 38 to be mounted in the bore of the tubular portion 36b. In this instance there are two sensors 38 and they are diametrically opposite. As a variant, it is possible to provide a different number of sensors, for example a single sensor or at least three sensors. In the case of a plurality of sensors, these are preferably regularly spaced apart from one another in the circumferential direction.
(26) The load sensors 38 are strain gauges of which the resistance varies with the axial force applied to the sleeve 36. The load sensors 38 are able to deform so as to be able to measure an axial elongation or a compression of the tubular portion 36b of the sleeve. In the exemplary embodiment illustrated, two opposing planar portions are formed on the tubular portion 36b of the sleeve, for mounting the load sensors 38.
(27) As is illustrated more visibly in
(28) In the exemplary embodiment illustrated, on the tubular portion 36b of the sleeve there are also provided grooves 56, 58 for mounting electrical connection cables (not shown) that connect the load sensors 38 to an electronic card 60 (
(29) With reference once more to
(30) With reference to
(31) The tubular portion 36b of the sleeve is mounted in a floating manner relative to the casing 12. No direct contact is provided here in the axial direction and in the radial direction between the tubular portion 36b of the sleeve and the bore 24 of the casing.
(32) In operation, during movements in which the rod 14 of the cylinder pushes a load and works in compression, the force is reacted by the bearing 32 and then by the bearing 30 that is in abutment against the lip 36a of the sleeve, this causing an elongation of the tubular portion 36b of said sleeve, in particular in the region of the load sensors 38 which measure this elongation.
(33) Conversely, during movements in which the rod 14 of the cylinder pulls a load and works in tension, the force is reacted by the bearing 30 and then by the bearing 32 that is in abutment against the nut 52, this causing a compression of the tubular portion 36b of the sleeve that is measured by the load sensors 38.
(34) By virtue of the provision of the intermediate sleeve 36 on which are mounted the load sensors 38, and the positioning of these sensors relative to the bearings 30 and 32, the precision of the measurements obtained is improved, and the same sensitivity is achieved whatever the direction of the force applied to the sleeve and the fastening of the electromechanical cylinder to its external surroundings.
(35) The invention has been illustrated here on the basis of a cylinder comprising bearings 30, 32 of the angular-contact ball bearing type. Alternatively, it may be possible to provide other types of rolling elements, for example rollers.
(36) In the exemplary embodiments illustrated, the rolling elements are mounted in the DB configuration. Alternatively, it may be possible to provide a mounting in the DF configuration.
(37) The invention has been illustrated on the basis of a cylinder comprising bearings mounted axially in abutment against one another and each comprising a single row of rolling elements. As a variant, it may for example be possible to provide a single bearing comprising at least two rows of rolling elements, or else a greater number of axially stacked bearings each comprising one or a plurality of rows of rolling elements.