LINEAR ACTUATOR WITH IMPROVED INDEXING MEANS

By employing rollers pressed against lateral support paths to minimize lateral play and sliding, the linear actuator achieves improved precision and extended service life, addressing inaccuracies and wear issues in high-frequency applications.

FR3160001A1Active Publication Date: 2025-09-12LINEATEC
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Patent Information

Application Number
FR2024002276
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-07
Publication Date
2025-09-12
Estimated Expiration
2044-03-07

AI Technical Summary

Technical Problem

Existing linear actuators suffer from inaccuracies in the longitudinal position of the nut due to lateral play, premature wear of indexing members, and shocks during high-frequency applications, especially when the stroke length is significant.

Method used

The use of rollers with diameters smaller than the lateral support paths, permanently pressed against these paths by support elements, reduces lateral play and minimizes sliding, thereby enhancing precision and extending the service life of the indexing members.

Benefits of technology

This design significantly reduces inaccuracies and wear, ensuring precise longitudinal positioning and increased durability of the nut, even in high-frequency applications with high forces.

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Abstract

LINEAR ACTUATOR WITH IMPROVED INDEXING MEANS Linear actuator (1) comprising:- an actuating rod (2) arranged telescopically in an outer tube (3) and linearly movable in a longitudinal direction (II) between a retracted position and at least one extended position relative to said outer tube (3),- an actuating member (4) shaped to generate the longitudinal movements of the actuating rod (2), comprising a threaded rod (5) rotatable about the longitudinal direction (II) and a nut (6) cooperating by screwing with the threaded rod (5) to be moved bidirectionally in translation in the longitudinal direction (II) by rotation of said threaded rod (5), said nut (6) being mechanically coupled to the actuating rod (2),- indexing means (7) for rotation of the nut (6) in the outer tube (3), shaped so as to lock the nut in rotation (6) relative to the outer tube (3),and comprising at least one first longitudinal groove (8) formed in the outer tube (3) and comprising two opposite lateral support paths (8a, 8b), and at least one first indexing member (10) secured to the nut (6) and slidably engaged between the two lateral support paths of the first longitudinal groove (8). The first indexing member (10) comprises rollers which are permanently pressed against the two lateral support paths of the first longitudinal groove (8). Figure to be published with the abstract: Fig. 2,
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Description

Title of the invention: LINEAR ACTUATOR WITH IMPROVED INDEXING MEANS TECHNICAL FIELD OF THE INVENTION

[0001] The present invention relates to linear actuators, and more particularly relates to the guiding of an actuating rod of a linear actuator.

[0002] A linear actuator AL according to the state of the art as illustrated in [Fig. 1] comprises: - an actuating rod TA arranged telescopically in an external tube TE and linearly movable in a longitudinal direction DL between a retracted position and at least one extended position relative to said external tube TE, - an actuating member OA (here a ball screw VB) shaped to generate the longitudinal movements of the actuating rod TA, comprising a threaded rod TF rotating around the longitudinal direction DL and a nut EC cooperating by screwing with the threaded rod TF to be moved bidirectionally in translation along the longitudinal direction DL by rotation of said threaded rod TF, said nut EC being mechanically coupled to the actuating rod TA, - indexing means MI for rotation of the nut EC in the external tube TE, shaped so as to lock the nut EC in rotation relative to the external tube TE.

[0003] In the linear actuator AL illustrated in [Fig.l], the indexing means comprise: - two longitudinal grooves RL1 and RL2 formed in the external tube TE and each comprising two opposite lateral support paths, - two indexing members Oïl and OI2 secured to the nut EC and respectively engaged to slide between the two lateral support paths of the longitudinal grooves RL1 and RL2.

[0004] In practice, the indexing members consist of pads made of a material with a low coefficient of friction in the longitudinal grooves.

[0005] To be mounted in the longitudinal grooves, the indexing members are inserted between the lateral support paths of the corresponding longitudinal groove, and a lateral clearance must be provided between the indexing members and the lateral support paths.

[0006] A first disadvantage is that the lateral play induces an inaccuracy in the longitudinal position of the nut when the threaded rod is rotated.

[0007] A second disadvantage is that the indexing members wear out too quickly due to their friction against the lateral support paths. This premature wear comes increase the inaccuracy in the longitudinal position of the nut.

[0008] A third disadvantage is that the lateral play is a source of shocks (in particular when reversing the direction of rotation of the threaded rod) which can lead to premature wear of the indexing members, and this is even more so when the linear actuator is used in high-frequency applications with high forces. This premature wear also increases the inaccuracy in the longitudinal position of the nut.

[0009] These drawbacks are even more significant when the stroke of the indexing members in the longitudinal grooves has a great length, because the longer the stroke, the more the lateral clearance increases in order to take into account the machining tolerances of the longitudinal grooves. Statement of the invention

[0010] A problem proposed by the present invention is to provide a linear actuator with improved indexing means, having less inaccuracy in the longitudinal position of its nut, and reducing the risks of shocks and premature wear.

[0011] To achieve these and other objects, the invention provides a linear actuator comprising: - an actuating rod arranged telescopically in an outer tube and linearly movable in a longitudinal direction between a retracted position and at least one extended position relative to said outer tube, - an actuating member shaped to generate the longitudinal movements of the actuating rod, comprising a threaded rod rotatable about the longitudinal direction and a nut cooperating by screwing with the threaded rod to be moved bidirectionally in translation in the longitudinal direction by rotation of said threaded rod, said nut being mechanically coupled to the actuating rod, - means for indexing the nut in rotation in the external tube, shaped so as to lock the nut in rotation relative to the external tube, and comprising: • at least one first longitudinal groove formed in the external tube and comprising two opposite lateral support paths, • at least one first indexing member secured to the nut and slidingly engaged between the two lateral support paths of the first longitudinal groove; according to the invention: - the first indexing member comprises a first pair of rollers substantially aligned longitudinally and having diameters smaller than the width between the two lateral support paths, - the first pair of rollers is carried by a first support element secured to the nut, - the first support element is shaped so as to permanently press a first roller of said first pair of rollers against one of said two lateral support paths and the other roller of said first pair of rollers against the other of said lateral support paths.

[0012] The actuating member may be a ball screw or any other helical-linked member operating on the screw / nut principle.

[0013] The rollers being permanently pressed respectively against the two opposite lateral paths, the indexing member is received without lateral play in the first longitudinal groove, which effectively limits the risks of shocks during a reversal of the direction of rotation of the threaded rod. The precision in determining the longitudinal position of the nut as a function of the rotation of the threaded rod (which can be determined by means of an encoder for example) is also increased.

[0014] The permanent pressing of the rollers against the two opposite lateral paths also makes it possible to compensate for the manufacturing tolerances of the longitudinal groove, in particular if the latter is long.

[0015] Finally, the permanent pressing of the rotating rollers against the two opposite lateral paths promotes rolling with little (or no) sliding of the rollers against the lateral support paths, which limits the risks of premature wear.

[0016] Preferably, for more reliable, more precise and more balanced indexing around the longitudinal direction, it can be provided that: - the indexing means comprise at least one second longitudinal groove formed in the external tube and comprising two opposite lateral support paths, - the indexing means comprise at least one second indexing member secured to the nut and slidingly engaged between the two lateral support paths of the second longitudinal groove, - the second indexing member comprises a second pair of rollers substantially aligned longitudinally and having diameters smaller than the width between the two lateral support paths, - the second pair of rollers is carried by a second support element secured to the nut, - the second support element is shaped so as to permanently press a first roller of said second pair of rollers against one of said two lateral support paths and the other roller of said second pair of rollers against the other of said lateral support paths.

[0017] To further reduce the risks of premature wear, the rollers can advantageously be of the ball bearing type with a coaxial inner ring and outer ring between which balls are arranged.

[0018] Preferably, when an indexing member is arranged outside the corresponding longitudinal groove, the rollers define between them a maximum width, taken transversely to their substantially longitudinal alignment direction, which is greater than the width of the corresponding longitudinal groove.

[0019] The mounting of the indexing member in the corresponding longitudinal groove is thus carried out in a pre-stressed state which considerably extends the service life of said indexing member.

[0020] Advantageously, it can be provided that: - each support element extends longitudinally in a first direction between a first end and a second end and extends transversely in a second direction between first and second lateral edges, - the support element comprises a first arm extending along the first lateral edge towards a free end located in the vicinity of the first end and a second arm extending along the second lateral edge towards a free end located in the vicinity of the second end, - each arm comprises at its free end means for receiving a roller shaped to receive a roller in a rotating manner around a direction of rotation substantially perpendicular to the first and second directions, - the free end of the first arm can be elastically displaced towards the second lateral edge while the free end of the second arm can be elastically displaced towards the first lateral edge.

[0021] Such a support element is simple, inexpensive to produce and reliable.

[0022] Preferably, it can be provided that: - the elastic displacement capacity of the first arm towards the second lateral edge is provided by a slot provided in the support element from its first end towards its second end, - the elastic displacement capacity of the second arm towards the first lateral edge is provided by a slot provided in the support element from its second end towards its first end.

[0023] The elastic displacement capacities of the first and second arms are thus achieved in a simple manner with a support element with reduced bulk.

[0024] For even smaller space requirements, the slots can be made so as to have an overlap in the first direction.

[0025] Advantageously, the indexing member(s) are received in the respective longitudinal groove(s) by deformation of the first and / or second arms of the support elements. The arms of the support elements, having a tendency to return to their initial position (before deformation), thus press the rollers against the lateral support paths.

[0026] Preferably, the support elements are respectively attached and fixed by means of a flange in respective radial housings provided in the outer wall of the nut. The flange makes it possible to fix the support elements in a precise and constant orientation on the nut.

[0027] Advantageously, the linear actuator may comprise a first and a second longitudinal grooves arranged in the outer tube in diametrically opposite positions.

[0028] Preferably, each longitudinal groove may be delimited by two opposite lateral rails added and fixed in a longitudinal slot provided in the lateral wall of the outer tube. The lateral rails may be machined easily and separately from the outer tube, therefore with greater precision. The lateral rails may be made of a material less subject to premature wear and undergo finishes and treatments (in particular heat treatments) giving them better wear resistance than the outer tube.

[0029] Alternatively, however, it can be provided that each longitudinal groove can be machined directly in the constituent mass of the external tube.

[0030] To make the sliding of the nut in the outer tube more reliable, it is advantageous to provide a guide ring arranged between the nut and the inner surface of the outer tube, preferably two guide rings spaced apart from each other in the longitudinal direction.

[0031] The guide ring(s) may preferably be made of a polymer material. For example, guide rings marketed under the name TURCITE® T59 by the company TRELLEBORG AB may be used. SUMMARY DESCRIPTION OF THE DRAWINGS

[0032] Other objects, characteristics and advantages of the present invention will emerge from the following description of particular embodiments, made in relation to the attached figures, among which:

[0033] [Fig.l] [Fig.l] is a longitudinal sectional view of a linear actuator according to the prior art;

[0034] [Fig.2] [Fig.2] is a longitudinal sectional view of a particular embodiment of a linear actuator according to the present invention;

[0035] [Fig.3] [Fig.3] is a perspective view of an outer tube of the linear actuator of [Fig.2] in which a nut is guided in translation;

[0036] [Fig.4] [Fig.4] is a perspective view of the outer tube and nut of [Fig.3] taken in longitudinal section;

[0037] [Fig.5] [Fig.5] is a longitudinal sectional view of the outer tube and nut of [Fig.3];

[0038] [Fig.6] [Fig.6] is a partial top view of the outer tube and nut of the [Fig.3] ;

[0039] [Fig.7] [Fig.7] is a partial and bottom view of the outer tube and nut of [Fig.3];

[0040] [Fig.8] [Fig.8] is a partial cross-sectional view of the outer tube and nut of [Fig.3] taken along a first transverse plane;

[0041] [Fig.9] [Fig.9] is a partial cross-sectional view of the outer tube and nut of [Fig.3] along a second transverse plane;

[0042] [Fig. 10] [Fig. 10] is a perspective view of a support member used in the embodiment of [Fig.2];

[0043] [Fig. 11] [Fig. 11] is a top view of the support member of [Fig.8] in a resting state; and

[0044] [Fig. 12] [Fig. 12] is a top view of the support member of [Fig.8] in a state of partial elastic deformation. DESCRIPTION OF PREFERRED EMBODIMENTS

[0045] When identical reference numerals are used in several figures, embodiments or variants of the invention, these reference numerals designate identical or similar elements in each of the figures, embodiments or variants.

[0046] In the schematic figures 2 to 12 is illustrated a particular embodiment of linear actuator 1 according to the present invention (the linear actuator 1 is shown only partially compared to the linear actuator of the prior art illustrated in [Fig.l]). This linear actuator 1 comprises: - an actuating rod 2 arranged telescopically in an external tube 3 and linearly movable in a longitudinal direction II between a retracted position and at least one extended position relative to said external tube 3, - an actuating member 4 shaped to generate the longitudinal movements of the actuating rod 2, comprising a threaded rod (externally) 5 rotatable around the longitudinal direction II and a nut 6 (internally threaded) cooperating by screwing with the threaded rod 5 to be moved bidirectionally in translation along the longitudinal direction II by rotation of said threaded rod 5, said nut 6 being mechanically coupled to the actuating rod 2, - indexing means 7 for rotation of the nut 6 in the external tube 3, shaped so as to block the rotation of the nut 6 relative to the external tube 3.

[0047] The actuating member 4 is shown here only schematically. It may be a ball screw (as in [Fig.l] of the prior art) or any other member with a helical connection operating according to the screw / nut principle.

[0048] In the embodiment of figures 2 to 12, the indexing means 7 comprise: - a first longitudinal groove 8 formed in the external tube 3 and comprising two opposite lateral support paths 8a and 8b (see figures 8 and 9 more specifically), - a second longitudinal groove 9 formed in the external tube 3 and comprising two opposite lateral support paths 9a and 9b (see figures 8 and 9 more specifically), - a first indexing member 10 secured to the nut 6 and engaged in longitudinal movement between the two lateral support paths 8a and 8b of the first longitudinal groove 8, - a second indexing member 11 secured to the nut 6 and engaged in longitudinal movement between the two lateral support paths 9a and 9b of the second longitudinal groove 9.

[0049] The first indexing member 10 comprises a first pair of rollers 10a and 10b, offset longitudinally relative to each other and having diameters D10a and D10b less than the width L8 between the two lateral support paths 8a and 8b. The first pair of rollers 10a and 10b is carried by a first support element 12 secured to the nut 6. The first support element 12 is shaped so as to permanently press the roller 10a in rolling contact against the lateral support path 8a and the other roller 10b in rolling contact against the other lateral support path 8b. As seen in [Fig.6], there remains a clearance J10a between the roller 10a and the lateral support path 8b, as well as a clearance J10b between the roller 10b and the lateral support path 8a.

[0050] Similarly, the second indexing member 11 comprises a second pair of rollers 11a and 11b offset longitudinally relative to each other and having diameters DI1a and DI1b smaller than the width L9 between the two lateral support paths 9a and 9b. The second pair of rollers 11a and 11b is carried by a second support element 13 secured to the nut 6. The second support element 13 is shaped so as to permanently press the roller 11a in rolling contact against the lateral support path 9a and the other roller 11b in rolling contact against the other lateral support path 9b. As seen in [Fig.7], there remains a clearance J11a between the roller 11a and the lateral support path 9b, as well as a clearance J11b between the roller 11b and the lateral support path 9a.

[0051] The support elements 12 and 13 are respectively attached to the nut 6 by means of a flange 20 or 21 in respective radial housings 22 or 23 provided in the outer wall of the nut 6 (figures 4 and 5).

[0052] As can be seen more particularly in Figures 8 and 9, which are partial sections respectively along a first transverse plane PI and along a second transverse plane P2, the rollers 10a, 10b, 11a and 11b are of the ball bearing type with an inner ring 14 and an outer ring 15 coaxial between which balls 16 are arranged.

[0053] It can be seen more particularly in Figures 10 to 12 that each of the first 12 and second 13 support elements extends longitudinally in a first direction II-II (intended to be parallel to the longitudinal direction II) between a first end 12a or 13a and a second end 12b or 13b, and extends transversely in a second direction III-III between a first 12c or 13c and a second lateral edge 12d or 13d.

[0054] The support elements 12 and 13 each comprise a first arm 12e or 13e extending along the first lateral edge 12c or 13c towards a free end 120e or 130e located in the vicinity of the first end 12a or 13a. The support elements 12 and 13 each also comprise a second arm 12f or 13f extending along the second lateral edge 12d or 13d towards a free end 120f or 130f located in the vicinity of the second end 12b or 13b.

[0055] Each arm 12e, 13e, 12f or 13f comprises at its free end means 17 for receiving a roller 10a, 10b, 11a or 11b which are shaped to receive a roller 10a, 10b, 11a or 11b in a rotatable manner about a direction of rotation IV-IV or VV substantially perpendicular to the first II-II and second III-III directions. Here, the receiving means 17 comprise a tube 17a with internal thread 17b around which the inner ring 14 of the rollers 10a, 10b, 11a or 11b is fitted with little play, which are then held captive on their respective tube 17a by a screw 17c engaging in the internal thread 17b (see Figures 8 and 9).

[0056] As more particularly illustrated in [Fig. 12], the free end 120e or 130e of the first arm 12e or 13e can be elastically displaced towards the second lateral edge 12d or 13d, while the free end 120f or 130f of the second arm 12f or 13f can be elastically displaced towards the first lateral edge 12c or 13c.

[0057] The elastic displacement capacity of the first arm 12e or 13e towards the second lateral edge 12d or 13d is provided by a slot 18 provided in the support element 12 or 13 from its first end 12a or 13a towards its second end 12b or 13b. The elastic displacement capacity of the second arm 12f or 13f towards the first lateral edge 12c or 13c is provided by a slot 19 provided in the support element 12 or 13 from its second end 12b or 13b towards its first end 12a or 13a.

[0058] The slots 18 and 19 have an overlap R along the first direction II-II. This overlap R can be increased to provide the support elements 12 and 13 with an even smaller footprint along the first direction II-II.

[0059] In [Fig. 11], the arms 12e, 13e, 12f and 13f are not elastically displaced, so that the slots 18 and 19 have respective widths L18 and L19 which are substantially constant over their entire length.

[0060] Thus, when an indexing member 10 or 11 is arranged outside the corresponding longitudinal groove 8 or 9, the rollers 10a and 10b, or the rollers 11a and 11b, define between them a maximum width LM ([Fig. 11]), taken transversely to their substantially longitudinal alignment direction (first direction II-II), which is greater than the width L8 or L9 ([Fig. 6] or 7) of the corresponding longitudinal groove 8 or 9.

[0061] In [Fig. 12], the arms 12e, 13e, 12f and 13f are elastically displaced, so that the slots 18 and 19 have respective widths L18 and L19 which are not constant over their entire length. The rollers 10a and 10b, or the rollers 11a and 11b, then define between them a width L, taken transversely to their substantially longitudinal alignment direction (first direction II-II), which is less than or equal to the width L8 or L9 of the corresponding longitudinal groove 8 or 9: the indexing elements 10 or 11 can then be inserted into the corresponding groove 8 or 9.

[0062] In other words, the indexing members 10 and 11 are received in a compressed state in the respective longitudinal grooves 8 and 9 by deformation of the first arms 12e or 13e, and / or by deformation of the second arms 12f or 13f of the support elements 12 or 13. After insertion and fixing of the support elements 12 and 13, the elasticity of the arms 12e or 13e pushes the roller 10a or 11b against the lateral support path 8a or 9b, and the elasticity of the arms 12f or 13f pushes the roller 10b or 11a against the lateral support path 8b or 9a.

[0063] In the embodiment of Figures 2 to 12, and as is more particularly visible in Figures 8 and 9, the longitudinal grooves 8 and 9 are delimited by two opposite lateral rails 80a and 80b on the one hand, and two opposite lateral rails 90a and 90b on the other hand, attached and fixed in a respective longitudinal slot 800 or 900 formed in the lateral wall of the external tube 3.

[0064] Alternatively, the longitudinal grooves 8 and 9 can be machined directly in the mass constituting the side wall of the external tube 3.

[0065] It can be seen more particularly in Figures 4 and 5 that guide rings 24 and 25 are arranged between the nut 6 and the inner surface 3a of the outer tube 3. The two guide rings 24 and 25 are spaced from each other in the longitudinal direction II.

[0066] The guide rings make it possible to maintain satisfactory coaxiality between the nut 6 and the inner surface 3a of the outer tube 3.

[0067] As previously explained, the indexing members 10 and 11 are received in the respective longitudinal grooves 8 and 9 by deformation of the first arms. 12th or 13th, and / or by deformation of the second arms 12f or 13f of the support elements 12 or 13. There thus remains overall no lateral play between the first pair of rollers 10a and 10b transversely to the first longitudinal groove 8. Similarly, there remains overall no lateral play between the second pair of rollers 11a and 11b transversely to the second longitudinal groove 9.

[0068] When the nut 6 slides in the external tube 3, the respective indexing members 10 and 11 remain permanently in contact (by rolling) with the lateral support paths 8a and 8b on the one hand, and with the lateral support paths 9a and 9b on the other hand, thanks to the elasticity of the arms 12e, 13e, 12f and 13f which makes it possible to absorb the geometric imperfections of the longitudinal grooves 8 and 9 and to absorb the shocks during a reversal of the direction of rotation of the threaded rod 5. Simultaneously, better precision is provided in determining the longitudinal position of the nut 6 when the threaded rod 5 is rotated.

[0069] The present invention is not limited to the embodiments which have been explicitly described, but it includes the various variations and generalizations contained within the scope of the following claims.

Claims

Claims

1. Linear actuator (1) comprising: - an actuating rod (2) arranged telescopically in an outer tube (3) and linearly movable in a longitudinal direction (II) between a retracted position and at least one extended position relative to said outer tube (3), - an actuating member (4) shaped to generate the longitudinal movements of the actuating rod (2), comprising a threaded rod (5) rotatable about the longitudinal direction (II) and a nut (6) cooperating by screwing with the threaded rod (5) to be moved bidirectionally in translation along the longitudinal direction (II) by rotation of said threaded rod (5), said nut (6) being mechanically coupled to the actuating rod (2), - indexing means (7) for rotation of the nut (6) in the external tube (3), shaped so as to block the rotation of the nut (6) relative to the external tube (3), and comprising: • at least one first longitudinal groove (8) formed in the external tube (3) and comprising two opposite lateral support paths (8a, 8b), • at least one first indexing member (10) secured to the nut (6) and slidingly engaged between the two lateral support paths (8a, 8b) of the first longitudinal groove (8), characterized in that: - the first indexing member (10) comprises a first pair of rollers (10a, 10b) offset longitudinally relative to each other and having diameters (DIOa, DlOb) less than the width (L8) between the two lateral support paths (8a, 8b), - the first pair of rollers (10a, 10b) is carried by a first support element (12) secured to the nut (6), - the first support element (12) is shaped so as to permanently press a first roller (10a, 10b) of said first pair of rollers (10a, 10b) in rolling contact against one of said two lateral support paths (8a, 8b) and the other roller (10a, 10b) of said first pair of rollers (10a, 10b) in rolling contact against the other of said lateral support paths (8a, 8b).

2. Linear actuator (1) according to claim 1, characterized in that: - the indexing means (7) comprise at least one second longitudinal groove (9) formed in the external tube (3) and comprising two opposite lateral support paths (9a, 9b), - the indexing means (7) comprise at least one second indexing member (11) integral with the nut (6) and slidably engaged between the two lateral support paths (9a, 9b) of the second longitudinal groove (9), - the second indexing member (12) comprises a second pair of rollers (11a, 11b) offset longitudinally from each other and having diameters (DI 1a, DI 1b) less than the width (L9) between the two lateral support paths (9a, 9b), - the second pair of rollers (11a, 11b) is carried by a second element support element (13) secured to the nut (6), - the second support element (13) is shaped so as to permanently press a first roller (11a,11b) of said second pair of rollers (11a, 11b) in rolling contact against one of said two lateral support paths (9a, 9b) and the other roller (11a, 11b) of said second pair of rollers (11a, 11b) in rolling contact against the other of said lateral support paths (9a, 9b).,

3. Linear actuator (1) according to one of claims 1 or 2, characterized in that the rollers (10a, 10b, 11a, 11b) are of the ball bearing type with a coaxial inner ring (14) and outer ring (15) between which balls (16) are arranged.

4. Linear actuator (1) according to any one of claims 1 to 3, characterized in that, when an indexing member (10, 11) is arranged outside the corresponding longitudinal groove (8, 9), the rollers (10a-10b, 11a-11b) define between them a maximum width LM, taken transversely to their substantially longitudinal alignment direction, which is greater than the width (L8, L9) of the corresponding longitudinal groove (8, 9).

5. Linear actuator (1) according to any one of claims 1 to 4, characterized in that: - each support element (12, 13) extends longitudinally in a first direction (II-II) between a first end (12a, 13a) and a second end (12b, 13b) and extends transversely in a second direction (III-III) between first (12c, 13c) and second (12d, 13d) lateral edges, - the support element (12, 13) comprises a first arm (12e, 13e) extending along the first lateral edge (12c, 13c) towards a free end (120e, 1201) located in the vicinity of the first end (12a, 13a) and a second arm (12f, 131) extending along the second lateral edge (12d, 13d) towards a free end (1201, 1301) located in the vicinity of the second end (12b, 13b), - each arm (12e, 13e, 12f, 13f) comprises at its free end (120e, 130e, 1201, 1301) means (17) for receiving a roller (10a, 10b, 1 la, 11b), shaped to receive a roller (10a, 10b, 1 la, 11b) in a rotatable manner about a direction of rotation (IV-IV) substantially perpendicular to the first (II-II) and second (III-III) directions, - the free end (120e, 130e) of the first arm (12e, 13e) can be elastically displaced in the direction of the second lateral edge (12d, 13d) while the free end (1201, 1301) of the second arm ( 12f,131) can be elastically displaced towards the first lateral edge (12c, 13c).,

6. Linear actuator (1) according to claim 5, characterized in that: - the elastic displacement capacity of the first arm (12e, 13e) in the direction of the second lateral edge (12d, 13d) is provided by a slow (18) provided in the support element (12, 13) from its first end (12a, 13a) in the direction of its second end (12b, 13b), - the elastic displacement capacity of the second arm (12f, 13f) in the direction of the first lateral edge (12c, 13c) is provided by a slow (19) provided in the support element (12, 13) from its second end (12b, 13b) in the direction of its first end (12a, 13a).

7. Linear actuator (1) according to claim 6, characterized in that the teeth (18, 19) are made so as to have an overlap (R) in the first direction (II-II).

8. Linear actuator (1) according to any one of claims 5 to 7, characterized in that the indexing member(s) (10, 11) are received in the respective longitudinal groove(s) (8, 9) by deformation of the first (12e, 13e) and / or second (12f, 13f) arms of the support elements (12, 13).

9. Linear actuator (1) according to any one of claims 1 to 8, characterized in that the support elements (12, 13) are respectively attached and fixed by means of a flange (20, 21) in respective radial housings (22, 23) provided in the outer wall of the nut (6).

10. Linear actuator (1) according to any one of claims 1 to 9, characterized in that it comprises a first (8) and / or a second (9) longitudinal grooves arranged in the external tube (3) in diametrically opposite positions.

11. Linear actuator (1) according to any one of claims 1 to 10, characterized in that each longitudinal groove (8, 9) is delimited by two opposite lateral rails (80a-80b, 90a-90b) attached and fixed in a longitudinal slot (800, 900) formed in the lateral wall of the external tube (3).

12. Linear actuator (1) according to any one of claims 1 to 10, characterized in that each longitudinal groove (8, 9) is machined directly in the constituent mass of the external tube (3).

13. Linear actuator (1) according to any one of claims 1 to 12, characterized in that at least one guide ring (24, 25) is arranged between the nut (6) and the inner surface (3a) of the outer tube (3), preferably two guide rings (24, 25) spaced from each other in the longitudinal direction (II).

14. Linear actuator (1) according to claim 13, characterized in that the guide ring(s) (24, 25) are made of a polymer material.

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