The present disclosure relates to linear actuators comprising a first element that can move in translation under the action of a second element rotated parallel to the axis of translation, in particular by an electric motor.
Some known linear actuators include an axially rotated screw and a nut disposed around the screw and rotated by the screw by means of balls placed in a helical circulation track provided around the screw, the balls being able to recirculate from one end to the other of the circulation track. The circulation track can be disposed, for example, externally around the screw and only extend over a single turn by looping back up on itself. As an alternative, a recirculation tube can be added to the outside of the screw and connect the ends of the circulation track.
These systems do not enable a recirculation of the balls which is both compact and multi-track, in other words over more than one turn. Moreover, it is often necessary to use a plurality of nuts in order to increase the transfer of forces over the length of the rotating screw, requires which stricter tolerance requirements during manufacture of the nuts and multiplies the maintenance difficulties.
The goal of the disclosure is to overcome at least some of the above-mentioned difficulties and to provide a linear actuator with multi-track recirculation of balls, which is configured to combine the advantages of robustness and compactness.
In view of the above, an object of the disclosure is a cam including a cylindrical ring having a substantially circular outer section and, externally, a helical rolling track, the ring comprising a duct that connects two ends of the outer helical rolling track, and the duct comprising a track for recirculation between the ends of the rolling track.
A transverse extension is provided, positioned facing an access of the duct and oriented towards the outside of the ring.
Advantageously, the duct includes an opening extending from the outer section of the ring to the duct, the cam further including a removable plug fitted in the opening.
For example, the opening is oriented substantially parallel to the axis of the ring.
The disclosure also relates to a linear actuator including such a cam and, further, an external tubular body extending along the axis of the cylindrical ring of the cam, the cam being mounted movable in translation inside the external tubular body, a plurality of balls of a same diameter further being inserted between the ring and the external tubular body, in the outer helical rolling track.
In an embodiment, the transverse extension constitutes means for guiding the balls, between the outer rolling track and the recirculation track.
Advantageously, the external tubular body includes an inner helical rolling track.
The transverse extension may include one end fitted in the inner helical rolling track.
In addition, the balls can be mounted in linear contact with the inner and outer helical rolling tracks.
According to an embodiment, two of the balls are connected in linear or point contact.
Further goals, features and advantages of the disclosure will become clear upon reading the following description, provided by way of non-limiting example and made with reference to the accompanying drawings, in which:
The cam 2 is mounted inside the external tubular body 5. A particularly compact system is thus formed of the “reverse” screw-nut type, wherein the screw as an internal threading and the nut is inside the reversed screw.
According to the operating mode of the actuator 1, the cam 2 can be either locked against rotation and free to move in translation along its axis X, or free to rotate and locked against movement in translation along its axis X if, as in this case, it is intended to internally receive a motor for rotating a shaft coaxial with its internal ring 3 (not shown).
The outer track 7 can be multi-track, in other words it can travel over a plurality of turns around the cam 2.
As illustrated in
The duct 8 comprises an internal recirculation track 9 which continuously extends the outer track 7 and extends between two accesses 8a, 8b crossing the ring 3.
The recirculation track 9 is curved and tangentially continuous with the outer helical rolling track 7 in order to prevent jamming of balls 6 in the recirculation track 9 or at one of its accesses 8a, 8b.
As can be seen in
In particular, the balls 6 are mounted in linear contact with the internal ring 3 and the external tube 5.
The balls 6 can be driven over the circulation zone 7 by combination of the pressure towards the axis X which the tube 5 exerts on the balls 6 and the rotational movement of the helical track 7.
In the recirculation zone 9, the balls 6 lose contact with the tube 5.
Advantageously, the balls 6 are then successively in point contact, so that each ball 6 located on the recirculation track 9 is pushed by a directly adjacent ball towards an access 8a, 8b.
As illustrated in
The inner helical rolling track 10 guides and promotes the helical rolling of the balls 6 on the outer track 7 when the cam 2 is axially rotated.
The cam 2 further includes transverse extensions 11 positioned facing each of the accesses 8a, 8b of the duct 8 and oriented towards the outside of the internal ring 3.
The transverse extensions 11 constitute scrapers 11 which ensure the guiding 12 of the balls 6 between the outer rolling track 7 and the inner recirculation track 9, and, in particular, the guiding of the balls 6 during their entry into the duct 8 and on the recirculation track 9.
As illustrated in
Advantageously, the end 13 is mounted either in contact with the inner track 10 so that the cam 1 and the outer tube 5 are only connected by the balls 6, or with a sliding contact with the inner track 20 so that the end 13 guides the rotation of the cam 2 in the tube 5.
In addition, as illustrated in
This opening 14 makes it possible for a ball 6 present in the duct 8 to be removed, for example in order to check its condition or to replace it.
A removable plug 15 can further be fitted in the opening 14 in order to facilitate this maintenance operation.
Advantageously, the opening 14 is oriented substantially parallel to the axis of the ring 3, which makes it possible to selectively change a ball 6 without separating the internal ring 3 and the external tube 5.
A linear actuator 1 is thus produced, the multi-track cam 2 of which can be particularly elongated, for an increased transfer of force when supporting a rotated shaft that is inserted in the cam 2, and for which the path of balls 6 around and in the cam 2 in order to drive an outer tube 5 in translation is particularly compact.
Number | Date | Country | Kind |
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1909619 | Sep 2019 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/074470 | 9/2/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/043826 | 3/11/2021 | WO | A |
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Entry |
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International Search Report mailed Nov. 16, 2020, issued in corresponding International Application No. PCT/EP2020/074470, filed Sep. 2, 2020, 5 pages. |
Written Opinion mailed Nov. 16, 2020, issued in corresponding International Application No. PCT/EP2020/074470, filed Sep. 2, 2020, 5 pages. |
English translation of Written Opinion mailed Nov. 16, 2020, issued in corresponding International Application No. PCT/EP2020/074470, filed Sep. 2, 2020, 6 pages. |
International Preliminary Report on Patentability mailed Mar. 8, 2022, issued in corresponding International Application No. PCT/EP2020/074470, filed Sep. 2, 2020, 6 pages. |
Number | Date | Country | |
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20220290745 A1 | Sep 2022 | US |