Actuation system
The actuation system addresses the challenge of managing axial forces in mechanical modules by using a nut-screw interface with a rear radial bearing and sliding element, achieving reliable and compact actuation.
Patent Information
- Application Number
- FR2024008283
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-07-25
- Publication Date
- 2026-01-30
AI Technical Summary
Existing actuation systems for mechanical modules requiring small displacements under high loads face challenges in efficiently managing axial forces while minimizing radial space usage, often necessitating complex guide bearings that increase the system's footprint.
An actuation system with a nut and screw interface featuring a circulation path of rolling bodies, a rear radial bearing surface, and a sliding element to absorb axial forces, allowing for reliable actuation with reduced radial dimensions by using a polymer-coated metallic frame for relative rotation.
The system effectively manages axial forces, ensuring reliable actuation with minimal radial space impact, enhancing the system's reliability and compactness.
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Abstract
Description
Title of the invention: Actuation system
[0001] The invention relates to a system for actuation of a mechanical module by linear displacement of an actuation member.
[0002] It applies in particular to the actuation of a mechanical module requiring a small displacement of the component but under a high load, such as for example a brake caliper of a motor vehicle.
[0003] Actuation systems are known which include a nut mounted for rotation in a housing, and a screw forming an actuating member which is mounted in said nut.
[0004] The actuation system is of the "ball screw" type, presenting, at the interface between the nut and the screw, a circulation path of a plurality of rolling bodies, said path being arranged to be able to actuate, by rotation of the nut, the axial translation of the screw.
[0005] In particular, the nut is mounted for rotation in the housing by means of a front bearing for guiding said rotation, said bearing being arranged to ensure optimal actuation, in particular by radially holding the nut / screw assembly during said actuation.
[0006] In certain applications, the nut / screw assembly is subjected to significant axial forces, particularly in reaction to the actuation thrust on the module, which must be taken up to ensure the reliability of the actuation as a function of the translation stroke of the screw.
[0007] To do this, unless the guide bearing used is made more complex, it is necessary to provide a rotating axial stop device for the nut / screw assembly, the placement of which is at the expense of the space, particularly the radial space, of the actuation system.
[0008] The invention aims to improve the prior art by proposing in particular an actuation system which is arranged to ensure optimal recovery of axial actuation forces, and this in a reduced radial footprint.
[0009] To this end, the invention proposes an actuation system comprising a nut mounted for rotation in a housing and an actuation screw mounted in said nut forming an interface between their respective outer and inner peripheries, said interface being equipped with a circulation path of a plurality of rolling bodies which is arranged to be able to actuate the translation of the screw by rotation of the nut, the nut having a rear radial bearing surface which is arranged in axial support on a complementary radial bearing surface of the housing, a sliding element being interposed between said bearing surfaces to allow their relative rotation.
[0010] Other objects and advantages of the invention will become apparent from the following description, made with reference to the accompanying figures, in which:
[0011] [Fig-1] represents in axial section an actuation system according to an embodiment of the invention,
[0012] [Fig. la] being an enlargement of the upper part of [Fig. 1];
[0013] [Fig.2] is an enlargement of a cross-section of the actuation system of [Fig.1a], centered on a portion of rolling stock recirculation;
[0014] [Fig.3] represents, in perspective top view, the nut of the actuation system previous figures;
[0015] [Fig.4] represents, in perspective top view, an insert carrying a portion of recirculation of the rolling bodies equipping the nut according to [Fig.3].
[0016] In relation to these figures, a system for actuation of a mechanical module by linear displacement of an actuation member is described below, in particular a module requiring a small displacement of the member but under a high load, such as for example a brake caliper of a motor vehicle.
[0017] The actuation system includes a nut 1 mounted for rotation in a housing 2, and an actuation screw 3 for said device which is mounted in said nut, forming a radial interface 4 between the outer periphery 5 of said screw and the inner periphery 6 of said nut.
[0018] In the description, the terms for positioning in space are taken with reference to the actuation system as shown in the figures. Thus: - the terms "exterior" and "interior" are defined with respect to the axis A of rotation of the nut 1, respectively for a location far and close to said axis; - the terms "axial" and "radial" are also defined in relation to this axis A, and refer to a direction respectively following this axis A and moving away from or towards it; - the terms "front" and "rear" are defined in relation to the direction of actuation, for a location respectively on the left and right in particular on the [Fig.l].
[0019] The interface 4 is equipped with a circulation path 7 for a plurality of rolling bodies, for example in the form of spherical balls, which is arranged to be able to actuate, by rotation of the nut 1 around the axis A, the translation of the screw 3 along this same axis A, between a deployed forward position - respectively retracted backward - to actuate - respectively disengage - the module to be actuated.
[0020] In relation to the figures, each of the outer peripheries 5 and inner peripheries 6 of respectively the screw 3 and the nut 1 is provided with a helical thread 5a, 6a, said threads being arranged radially opposite to form a helical circulation path 7.
[0021] The circulation path 7 has at least a portion 7a for recirculating rolling bodies from a downstream area to an upstream area, in order to prevent them from exiting said path during the relative movements of the screw 3 and the nut 1.
[0022] In the description, the terms "upstream" and "downstream" are taken in reference to the direction of movement of the rolling bodies in the traffic path, which depends on the direction of rotation of the nut 1, and therefore on the direction of translation of the screw 3.
[0023] In the illustrated embodiment, the circulation path 7 has several internal recirculation portions 7a between two adjacent thread portions 8 5a. To achieve this, the nut 1 has cavities 9, each extending radially between its outer periphery and its helical thread 6a, each being equipped with an insert 10 on which an internal recirculation portion 7a is formed.
[0024] In particular, as shown in [Fig.3], the nut 1 comprises three cavities 9 distributed angularly at 90° around its outer periphery.
[0025] In relation to figures 2 and 4, each insert 10 is fixed in a cavity 9, presenting an inner face 11 which is arranged radially opposite the helical thread 5a of the screw 3, said inner face having a portion 7a of internal recirculation thread which connects the two adjacent portions 8 of the thread 5a radially opposite which it is arranged.
[0026] Each cavity 9 has a substantially oblong geometry, as well as two outer portions 9a and inner portion 9b separated by a step 12, the insert 10 being engaged in the inner portion 9b and having two outer tabs 13 each provided with a bead 14 to allow their snapping onto said step.
[0027] In an alternative not shown, the circulation path 7 may have an external circulation portion between two end portions of the threads 5a, 6a, said portion also being able to be formed between two inserts arranged for this purpose in cavities of said nut.
[0028] In relation to Figures 1 and 1a, the outer periphery of the nut has a front axial bearing surface 15 on which an inner ring 16 of a bearing 25 is fixed by press fitting, said bearing comprising an outer ring 17 fixed by press fitting on a complementary axial bearing surface 18 of the housing 2, as well as a row of rolling elements 19 allowing the rotation of the nut 1 in said housing.
[0029] The bearing shown is located in front of the nut 1, that is to say as close as possible to the module to be actuated, and includes a row of spherical rolling bodies 19 allowing the nut 1 / screw 3 assembly to be held radially in the housing 2 in order to ensure optimal actuation.
[0030] The nut 1 further has a rear radial bearing surface 20 which is arranged in axial support on a complementary radial bearing surface 21 of the housing, a sliding element 22 being interposed between said bearing surfaces to allow their relative rotation.
[0031] This arrangement ensures good absorption of axial forces exerted on the nut 1 / screw 3 assembly, particularly in reaction to the actuation thrust on the module, in that said assembly is placed in rotating axial stop on the housing 2 in order to guarantee the reliability of the actuation according to the translation stroke of the screw 3.
[0032] In addition, the rear radial bearing 20 can be easily implemented in the actuation system, without negative impact on its overall dimensions, particularly radial.
[0033] In the embodiment shown, the rear radial bearing 20 extends internally from a rear axial peripheral bearing 23 of the nut 1, so that the rotating axial stop function can be implanted in the radial space of said nut.
[0034] The sliding element 22 can also be interposed between the rear axial peripheral bearing 23 and a complementary axial bearing 24 of the housing 2, so as to be able to contribute to a resumption of the radial forces exerted on the nut 1 / screw 3 assembly.
[0035] Advantageously, the rear axial peripheral bearing surfaces 23 and front 15 of the nut 1 extend substantially along the same diameter D, which makes it possible to limit the radial size of the actuation system, in particular by being able to limit the size of the bearing 25 for guiding the rotation of the nut 1.
[0036] According to one embodiment, the sliding element 22 comprises at least one layer of material, in particular polymer, having a coefficient of friction lower than that of the material, in particular metallic, forming respectively the nut 1 and the housing 2.
[0037] In the figures, the sliding element 22 comprises a self-lubricating plain bearing having a rigid frame 26, in particular metallic, on which at least one layer of antifriction material is deposited. In particular, the plain bearing may comprise a steel frame 26 on which a copper coating and then a polytetrafluoroethylene (PTFE)-based coating are successively deposited.
[0038] In relation to figures 1 and a, the rigid frame 26 is associated with the nut 1, and comprises for this purpose an axial annular ring 26a which is axially fitted onto the rear axial peripheral wall 23, said ring having a rear edge of which extends internally a radial fold 26b which, at the end of the fitting, bears axially against the rear radial bearing surface 20.
[0039] In particular, the coating layers allowing sliding are provided on the outer wall of the rigid frame 26, at the interface with respectively the spans 21, 24 of the housing 2.
[0040] According to the embodiment shown, the nut 1 has a rear edge 27 which is equipped with means 28 for driving the rotation of said nut, in particular at by means of an electric motor, said means being in the form of gear legs.
[0041] Advantageously, the means 28 are formed radially inside the rear radial bearing 20, which allows them to be positioned within the radial space of the nut 1 and the radial force recovery function, and thus to limit the overall radial space of the actuation system.
Claims
Demands
1. Actuation system comprising a nut (1) rotatably mounted in a housing (2) and an actuating screw (3) mounted in said nut forming an interface (4) between their respective outer (5) and inner (6) peripheries, said interface being equipped with a path (7) for the circulation of a plurality of rolling bodies which is arranged to actuate the translation of the screw (3) by rotation of the nut (1), said system being characterized in that the nut (1) has a rear radial bearing surface (20) which is disposed in axial support on a complementary radial bearing surface (21) of the housing (2), a sliding element (22) being interposed between said bearing surfaces to allow their relative rotation.
2. Actuation system according to claim 1, characterized in that the sliding element (22) is further interposed between a rear axial peripheral bearing surface (23) of the nut (1) and a complementary axial bearing surface (24) of the housing (2).
3. Actuation system according to any one of claims 1 or 2, characterized in that the sliding element (22) comprises at least one layer of material having a coefficient of friction lower than that of the material forming respectively the nut (1) and the housing (2).
4. Actuation system according to any one of claims 1 to 3, characterized in that the sliding element (22) comprises a self-lubricating plain bearing having a rigid frame (26) on which an antifriction material is deposited.
5. Actuation system according to claim 4, characterized in that the rigid frame (26) is associated with the nut (1).
6. Actuation system according to any one of claims 1 to 5, characterized in that the rear radial bearing surface (20) extends internally from a rear axial peripheral bearing surface (23) of the nut (1).
7. An actuation system according to any one of claims 1 to 6, characterized in that the outer periphery of the nut (1) has a front axial bearing surface (15) on which the inner ring (16) of a bearing (25) is fixed, said bearing comprising an outer ring (17) fixed on a complementary bearing surface (18) of the casing (2) and a row of rolling bodies (19) allowing the rotation of the nut (1) in the casing (2).
8. Actuation system according to claims 6 and 7, characterized in that the rear axial peripheral bearing surfaces (23) and front axial bearing surfaces (15) of the nut (1) extend substantially along the same diameter (D).
9. Actuation system according to any one of claims 1 to 8, characterized in that the nut (1) has a rear edge (27) which is equipped with means (28) for rotational drive.
10. Actuation system according to claim 9, characterized in that the drive means (28) are formed radially inside the rear radial bearing (20).
11. Actuation system according to any one of claims 1 to 10, characterized in that each of the outer (5) and inner (6) peripheries of respectively the screw (3) and the nut (1) is provided with a helical thread (5a, 6a), said threads being arranged opposite each other to form a helical circulation path (7).
12. Actuation system according to any one of claims 1 to 11, characterized in that the traffic path (7) has at least one portion (7a) of recirculation of rolling bodies from a downstream area to an upstream area of said path.
13. Actuation system according to claim 12 when it depends on claim 11, characterized in that the circulation path (7) has several portions (7a) of internal recirculation between two portions (8) of adjacent threads (5a).
14. Actuation system according to claim 13, characterized in that the nut (1) has cavities (9) each extending between the outer periphery and the thread (6a) of said nut, each of said cavities being equipped with an insert (10) on which a recirculation portion (7a) is formed.
15. Actuation system according to claim 14, characterized in that the insert (10) is fixed in the cavity (9) with an inner face (11) disposed opposite the thread (5a), said face having a portion (7a) of recirculating thread which connects the two adjacent portions (8) of threads (5a).
Citation Information
Patent Citations
Rotary-to-linear converter with rolling balls, and feed mechanisms incorporating the same
US4557156A
Screw with recirculating ball arrangement
US6202498B1