Vehicle steering wheel having a collapsible or retractable rim

The vehicle steering wheel incorporates a compact transmission mechanism to pivot and lock the rim, addressing the bulkiness and expense of existing systems while enhancing usability and reducing costs.

JP7675821B2Active Publication Date: 2025-05-13AUTOLIV DEV AB
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Patent Information

Application Number
JP2023535794
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-18
Filing Date
2021-12-14
Publication Date
2025-05-13
Estimated Expiration
2041-12-14

AI Technical Summary

Technical Problem

Existing vehicle steering wheels with retractable rims are bulky, heavy, and expensive due to their complex locking systems.

Method used

A vehicle steering wheel with a pivotable and lockable rim, utilizing a compact and economical transmission mechanism that includes an actuator, a locking member, and a transmission mechanism to pivot and lock the rim between its drive and storage positions.

Benefits of technology

The solution provides a lightweight, cost-effective, and efficient mechanism for pivoting and locking the steering wheel rim, improving vehicle usage and reducing manufacturing costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention relates to a vehicle steering wheel (10) comprising a central portion (16), a rim (12) pivotable relative to the central portion (16) between a drive position and at least one retracted position, an actuator (18) for pivoting the rim (12), and a locking member movable between a locked position and a disengaged position of the rim (12) in its drive position, characterized in that the steering wheel (10) comprises a mechanism (20) for transmitting movement between the actuator (18) and the rim (12) and between the actuator (18) and the locking member, for continuously driving the locking member towards its disengaged position and subsequently pivoting the rim (12).
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Description

[Technical field]

[0001] The present invention relates generally to vehicle steering wheels.

[0002] More particularly, the present invention relates to a steering wheel having an orientable or retractable rim. [Background technology]

[0003] In the prior art of steering wheels for vehicles, for example from document US 10.562.558, an electric folding steering wheel system is known, which comprises a steering wheel having a rim forming a substantially continuous ring pivotally connected to a central structure arranged to be attached to a steering column, and which includes an electric motor arranged to pivot the rim from a vertical position corresponding to a state in which the vehicle is ready to drive to a substantially horizontal storage or retracted position, allowing other uses or applications of the steering wheel and its rim. In addition, the steering wheel system comprises one or more additional systems for locking the rim in its vertical drive position, each of which is presented in the form of a dedicated locking system. Such a design is particularly bulky, heavy and expensive. Summary of the Invention [Problem to be solved by the invention]

[0004] One object of the present invention is to address the drawbacks of the prior art mentioned above, in particular, first of all to propose a steering wheel for a vehicle, in which at least part of the rim is pivotable and which can be locked in the driving position by means of a compact and economical assembly for pivoting and locking.

[0005] Therefore, a first aspect of the present invention comprises: -A central portion; A movable structure, - a driving position in which the vehicle can be steered by the driver; a movable structure including at least a portion of a rim pivotally mounted relative to a center between at least one storage position; an actuator for pivoting the movable structure between its drive position and its stowed position; a locking member movably mounted between an engaged position for locking the movable structure in its drive position and a disengaged position allowing the movable structure to pivot; and a mechanism for transmitting movements between the actuator and the mobile structure on the one hand and between the actuator and the locking member on the other hand, so that the same actuator acts on the locking member to control the change of its position and allows the rim to pivot.

[0006] According to one implementation, from a locked state in the drive position of the movable structure, the transmission mechanism is configured to sequentially drive the locking member towards its disengaged position and then the movable structure towards its stored position.

[0007] According to one implementation, the transmission mechanism may include a drive member of the movable structure arranged to rotate with the movable structure with an angular clearance corresponding to a drive offset of the movable structure relative to the locking member.

[0008] According to one implementation, the steering wheel may include a hub rotatably joined to the movable structure.

[0009] According to one implementation, - the hub may have a complementary opening; the drive member (e.g. drive sprocket) may be coaxial with the hub and may comprise an eccentric catch pin arranged to cooperate with a complementary opening with angular clearance to drive the hub; The transmission mechanism may include an elastic member disposed between the hub and the drive member, which returns the drive member to its angular rest position when the movable structure is in its locked state in the drive position.

[0010] According to one implementation, the locking member can cooperate with a complementary portion of the hub to angularly secure the movable structure in its actuated position.

[0011] According to one implementation, the hub may be coaxial with the primary pivot axis of the movable structure.

[0012] According to one implementation, the steering wheel may comprise a position stop that is fixed relative to the central portion and is capable of defining an angular drive position of the movable structure via the hub.

[0013] According to one implementation, the locking member may be a locking rocker arranged to pivot about a locking axis parallel to a primary pivot axis of the movable structure.

[0014] According to one implementation, the transmission mechanism may comprise a toothed input member arranged to be driven by the actuator; The toothed input member is arranged to indirectly drive the rotation of the movable structure towards its stowed position in an offset manner relative to the drive of the locking member, so that the functional sequence for unlocking and then pivoting the rim (or vice versa) can be ensured solely by controlling the actuation of the actuator.

[0015] According to one implementation, the drive member may be a drive sprocket of the movable structure arranged to directly or indirectly mesh with the toothed input member.

[0016] According to one implementation, the toothed input member may be a toothed gear arranged to be rotated in both directions by the actuator.

[0017] According to one implementation, the transmission mechanism comprises: - forming a toothed input member and driving a drive member, or A worm may be provided on the actuator for driving the toothed input member.

[0018] According to one implementation, the transmission mechanism may comprise a drive cam of the locking member, preferably connected in direct or indirect rotation to the actuator and cooperating with a cam follower element carried by the locking member.

[0019] According to one implementation, the cam may be connected to a drive member.

[0020] According to one implementation, the steering wheel may include a lock guide, and the lock member is disposed between the movable structure and the lock guide.

[0021] According to a first exemplary implementation, the transmission mechanism may include a locking pinion that drives the locking member and may be arranged to directly mesh with the toothed input member.

[0022] According to one implementation, the actuator may belong to a category that includes a rotary electric motor, a geared motor with a rotary electric motor, an electric cylinder with axial displacement, and an electromagnet with axial displacement.

[0023] According to one implementation, the steering wheel may comprise at least one first lateral module for driving and locking the movable structure, which may comprise an actuator, a locking member, and a transmission mechanism.

[0024] According to one implementation, the steering wheel may comprise a separate actuator for pivoting the moveable structure between its driven position and its stowed position.

[0025] Another aspect of the invention relates to a vehicle comprising a steering wheel according to the first aspect. [Brief description of the drawings]

[0026] Other characteristics and advantages of the invention will become more apparent upon reading the detailed description of some embodiments of the invention, given by way of example, but in no way limiting, illustrated by the accompanying drawings, in which:

[0027] [Figure 1] FIG. 1 is a perspective view of a first embodiment of a steering wheel for a vehicle, shown with the rim in a driven position. [Diagram 2] FIG. 2 is a top view of the steering wheel shown in FIG. [Diagram 3] FIG. 3 is an enlarged detailed perspective view showing certain components of the movement transmission mechanism that is equipped with the steering wheel shown in FIGS. [Figure 4A] FIG. 4A is a front view of the components shown in FIG. [Figure 4B] FIG. 4B is a rear view of the components shown in FIG. [Diagram 5] FIG. 5 is a view similar to FIG. 3 showing certain components of a second embodiment of a movement transmission mechanism with which the steering wheel shown in FIGS. 1 and 2 can be equipped. [Figure 6A] FIG. 6A is a front view of the components shown in FIG. [Figure 6B] FIG. 6B is a rear view of the components shown in FIG. [Figure 6C] FIG. 6C is a variation of the arrangement of FIG. 6A. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0028] First embodiment Figures 1 and 2 show a steering wheel 10 comprising a rim 12 connected by an arm 14 to a central portion 16, also called a hub, which is arranged to allow the steering wheel to be coupled to a steering column or an electric steering gearbox (not shown) of a vehicle.

[0029] To improve the ergonomics of use and utilization of the vehicle, the rim 12 is at least partially hinged to the central portion 16 so as to be able to pivot in both directions about a primary axis A1 perpendicular to the axis of rotation of the steering wheel. the so-called driving position, in which the plane of the rim 12 is typically perpendicular to the axial direction of the central part 16, which coincides with the axis of rotation of the steering wheel and steering column when the vehicle is being driven; - or in a storage position, also called a console position, in which the plane of the rim 12 is therefore inclined relative to the direction of the central part 16, in particular so that a user can place, for example, a computer on the rim 12.

[0030] The possibility of changing the angular position is not necessarily limited to pivoting the entire rim 12, but can also concern only a part of the rim 12, for example only half of the rim, such a rim part constituting a movable structure of the rim within the meaning of the present invention.

[0031] By convention, the primary pivot axis A1 of the rim 12 is oriented axially from rear to front.

[0032] As a non-limiting example, in order to pivot the rim 12 in both directions, the steering wheel 10 here includes a side module M for driving and locking the rim 12. The side module M is here arranged adjacent to the rear arm 14 of the steering wheel 10.

[0033] The module M essentially combines an electric actuator 18, a mechanism 20 for transmission between the actuator and the rim 12, and a member 22 for locking the rim 12 in its driven position.

[0034] Figure 3 shows a moving input gear 24 belonging to the transmission mechanism rotated about the secondary axis A2 by the actuator 18; a gear 26 for pivoting the rim 12 (as a non-limiting example, the drive sprocket 26 is rotatably mounted about the primary pivot axis A1 of the rim 12), which is in permanent mesh with the input gear 24; FIG. 2 shows a locking rocker 22 including a proximal portion shaped as a locking pinion 28 mounted for rotation about a locking axis A3 and permanently meshing with the input gear 24, and a distal arm 30 extending radially from the locking pinion 28 and having a free end section 32 shaped into a convex locking surface substantially in the form of an arc of a cylinder.

[0035] For the bidirectional rotational connection between the drive sprocket 24 and the rim 12, Figure 3 also shows a hub 34 which can be rotatably fixed to the rim 12 and which extends axially through the drive sprocket 26. At its rear, the hub is rotatably fixed to a radial plate 36, the peripheral edge 37 of which has an opening, here in the form of a radially outwardly opening notch 38, a concave locking surface 40 in the form of a substantially cylindrical arc, and an abutment 42.

[0036] In order to allow the hub 34 to be pivoted in an offset manner relative to the drive of the locking member 22, the rear radial face of the drive sprocket 26 has a catch pin 44 which extends axially towards the rear and is permanently received in a notch 38 with an angular clearance "J" which allows a relative angular movement between the drive sprocket 26 and the hub 34. Furthermore, a spring 46, here made in the form of a spiral spring, is interposed between the rim 27 of the drive sprocket 26 extending axially forward and the hub 34, to permanently ensure the elastic return of the drive sprocket 26 relative to the radial plate 36 of the hub 34 in the angular position shown in Figures 3, 4A and 4B, referred to as the rest position.

[0037] 1 and 2, the module M has two parallel stiffening plates 50 between which the input gear 24 and the drive sprocket 26, as well as the radial plate 36 of the hub 34 and the locking member 22 are disposed, these various components also being mounted for rotation relative to these two stiffening plates 50. Also mounted to the front stiffening plate 50 is the electric actuator 18.

[0038] Furthermore, a fixed axial abutment pin 48 is arranged between two reinforcing plates 50 and is capable of engaging with an abutment portion 42 facing the peripheral edge of the radial plate 36 of the hub 34 .

[0039] 3, 4A and 4B, the rim 12 and associated component set is shown in its so-called angular drive position, locked by locking member 22. In FIG.

[0040] The angular drive position of the rim 12 about its primary pivot axis A1 is determined by the angular abutment of the abutment portion 42 of the peripheral edge 37 of the radial plate 36 of the hub 34 against the fixed axial abutment portion 48.

[0041] In this same position, the locking is ensured by the complementary locking surfaces 32 and 40 which bear against each other by a clamping effect, thus ensuring locking without angular clearance of the steering wheel rim 12, including after it has moved into the clearance between the teeth of the different pinions.

[0042] Starting from the position shown in Figures 4A and 4B, it is necessary to drive the input gear 24 in the direction of the arrow F1 shown in those figures to unlock the rim 12 and then pivot the rim 12 towards the console position.

[0043] The first part of the angular movement of the input gear 24 through F1 immediately causes the rotation of the locking member through arrow F1, thereby unlocking or releasing the radial plate 36 and thus the hub 34. During this first part of the angular movement of the input gear 24 through F1, the input gear 24 drives the drive sprocket 26 and its axial catch pin 44, which then moves within the notch 38. This is done against the elastic return force exerted by the spring 46.

[0044] As soon as the catch pin 44 reaches the other angular end of the notch 38, after compensating for the gap "J", the first part of the movement of the angular movement of the input gear 24 according to F1 ends and its rotation, always according to the arrow F1, continues along the second part of its movement, then driving the radial plate 36 and thus the hub 34 and the rim 12.

[0045] Thus, the rim 12 is pivoted towards its console or stowed position in an offset manner relative to the actuation of the locking member 22 being pivoted first by the input gear 24 to ensure the unlocking of the rim 12 first.

[0046] Through engagement of the axial catch pin 44 with the notch 38 in the radial plate 36 of the hub 34, the toothed input gear 24 indirectly meshes with the rim 12 to pivot the rim 12 towards its stored position in an offset manner relative to the actuation of the locking member 22.

[0047] Subsequently, starting from the console position, to return to the drive position, the input gear 24 is rotated in the direction of arrow F2 so that the abutment portion 42 of the peripheral portion 37 of the radial plate 36 of the hub 34 returns into contact with the fixed axial abutment pin 48, after which the locking member 22 is pivoted only in the direction of arrow F2 to allow the catch pin 44 to return into the notch 38.

[0048] Second embodiment Figures 5, 6A and 6B, similar to Figures 3, 4A and 4B, show a second embodiment of some of the components of the transmission mechanism and its locking locker, which will be described in comparison with what has been described above with reference to Figures 3 to 4B, and in which like or similar identical elements and components are indicated by the same numerical or alphanumeric reference signs.

[0049] More specifically, the locking rocker 22 is formed in a fork shape with a central hub 23 pivotally mounted to a reinforcing plate 50 about a locking axis A3 parallel to the primary and secondary axes A1 and A2 of the drive sprocket 26 and input gear 24, respectively.

[0050] The locking rocker 22 has two opposing radial arms extending from its central hub 23, including a lower arm 22i, as viewed in the figure, the so-called control arm, and an upper arm 22s, the so-called locking arm.

[0051] The control arm 22 i has at its free end a circumferential cam follower element 52 which engages an L-shaped cam profile 54 supported and rotated by the rim 27 of the drive sprocket 26 .

[0052] The cam follower element 52 is permanently resiliently biased against the L-shaped cam profile 54 by a locking spring 56 which permanently biases the locking rocker 22 to rotate in a clockwise direction as viewed in Figures 5 and 6A.

[0053] The locking arm 22s has at its free end a circumferential locking lip 60 which can engage with a locking portion 62 on the peripheral portion 37 of the radial plate 36 of the hub 34, the locking portion 62 here being substantially at right angles in two successive portions 62-1 and 62-2.

[0054] With the rim 12 locked in the drive position shown in Figures 5, 6A and 6B, the cam follower element 52 abuts against the radially outermost portion 54-1 of the cam profile 54 and the locking lip 60 engages with the portion 62-1 of the locking portion 62. In this position of the various components, it is not possible for the radial plate 36 and the hub 34 to rotate in a clockwise direction (arrow F1) when looking at Figures 5 and 6A.

[0055] Starting from this position shown in Figures 6A and 6B, it is necessary to drive the input gear 24 in the direction of the arrow F1 shown in those figures in order to unlock the rim 12 and then pivot it towards the console position.

[0056] A first portion of the angular movement of the input gear 24 through F1 causes instantaneous rotation of the drive sprocket 26 and the cam profile 54. The cam follower element 52 then leaves the radially outermost portion 54-1 of the cam profile 54 and moves down along the sloped radially innermost portion 54-2 of the cam profile 54. Under the action of the locking spring 56, this causes the locking fork 22 to pivot in the direction of arrow F1, releasing the locking lip 60.

[0057] During this first portion of the angular movement of the input gear 24 through F1, the input gear 24 drives the drive sprocket 26 and its axial catch pin 44, which then moves within the notch 38. This is done against the elastic return force exerted by the spring 46.

[0058] As soon as the catch pin 44 reaches the other angular end of the notch 38, after compensating for the gap "J", the first part of the movement of the angular movement of the input gear 24 according to F1 ends and its rotation, always according to the arrow F1, continues along the second part of its movement, then driving the radial plate 36 and thus the hub 34 and the rim 12.

[0059] This rotation is possible because the locking lip 60 abuts against the arc-forming portion 62-2 of the cylinder of the locking portion 62.

[0060] Thus, the rim 12 is pivoted towards its console or stowed position in an offset manner relative to actuation of the locking member 22 which is first actuated by the input gear 24 to ensure unlocking of the rim 12 first.

[0061] Through engagement of the axial catch pin 44 with the notch 38 in the radial plate 36 of the hub 34, the toothed input gear 24 indirectly meshes with the rim 12 to pivot the rim 12 towards its stored position in an offset manner relative to the actuation of the locking member 22.

[0062] Regardless of the embodiment, in the sense of the present invention, the input gear 24 constitutes a toothed input member for the movement transmitted at least to the drive sprocket 26 .

[0063] Alternatively, the input gear 24 could be replaced by a toothed internal crown gear or possibly by a straight toothed rack.

[0064] Actuator 18 may be, for example, a rotary electric motor optionally associated with a gearbox or gear reducer to form an electric gear motor, in which case the rotary output shaft directly or indirectly drives a toothed input member, such as an input gear 24.

[0065] Figure 6C shows a variant of the mechanism shown in figure 6A or only the differences will be described. In figure 6C, a locking guide 63 is provided on the locking lip 60 of the locking fork 22. In particular, the locking lip 60 is arranged between the locking guide 63 and the locking portion 62 on the peripheral portion 37 of the radial plate 36, so that in the shown locked position, the locking guide 63 presses the locking lip 60 back without clearance against the locking portion 62, ensuring that there is no clearance when the rim 12 is in the driven position.

[0066] Alternatively, the output shaft may drive a worm-nut style screw to drive a toothed input member in both directions via a rack-shaped member.

[0067] It will be understood that various modifications and / or improvements, apparent to those skilled in the art, can be made to the various embodiments of the invention described herein without departing from the scope of the invention.

Claims

1. A steering wheel (10) for a vehicle, comprising: a central portion (16), a mobile structure (12), - a driving position in which the vehicle can be steered by the driver; a mobile structure (12) including at least a portion of a rim pivotally mounted relative to said central portion (16) between at least one storage position; an actuator (18) for pivoting said mobile structure (12) between its drive position and its storage position; a locking member (22) movably mounted between an engaged position for locking the movable structure (12) in its drive position and a disengaged position allowing the movable structure (12) to pivot, the vehicle steering wheel (10) further comprising: a transmission mechanism (20) for transmitting movement between the actuator (18) and the movable structure (12) on the one hand, and between the actuator (18) and the locking member (22) on the other hand; - a hub (34) joined for rotation with said mobile structure (12), the transmission mechanism (20) is configured to continuously drive the locking member (22) toward its disengaged position and then the movable structure (12) toward its stored position from a locked state in the drive position of the movable structure (12), the transmission mechanism (20) includes a drive member of the movable structure (12) arranged to rotate together with the movable structure (12) with an angular gap (J) corresponding to a drive offset of the movable structure (12) relative to the lock member (22); - said hub (34) includes a complementary opening (38); - said drive member includes an eccentric catch pin (44) coaxial with said hub and arranged to cooperate with said complementary opening (38) with an angular clearance to drive said hub (34); The steering wheel for a vehicle, wherein the transmission mechanism (20) includes an elastic member (46) disposed between the hub (34) and the driving member, which returns the driving member to an angular rest position when the movable structure (12) is in its locked state at the driving position.

2. 2. A steering wheel according to claim 1, characterized in that the locking member (22) cooperates with a complementary portion (40) of the hub (34) to angularly fix the movable structure (12) in its drive position without any clearance.

3. 3. A steering wheel according to claim 1 or 2, characterized in that it includes a position stop (48) fixed relative to the central portion (16) and defining the drive position of the movable structure (12) via the hub (34).

4. A steering wheel (10) for a vehicle, comprising: a central portion (16), a mobile structure (12), - a driving position in which the vehicle can be steered by the driver; a mobile structure (12) including at least a portion of a rim pivotally mounted relative to said central portion (16) between at least one storage position; an actuator (18) for pivoting said mobile structure (12) between its drive position and its storage position; a locking member (22) movably mounted between an engaged position for locking the movable structure (12) in its drive position and a disengaged position allowing the movable structure (12) to pivot, the vehicle steering wheel (10) further comprising: a transmission mechanism (20) for transmitting movement between the actuator (18) and the movable structure (12) on the one hand, and between the actuator (18) and the locking member (22) on the other hand; A steering wheel, characterized in that the locking member (22) is a locking rocker arranged to pivot about a locking axis (A3) parallel to a primary pivot axis (A1) of the movable structure (12).

5. the transmission mechanism (20) includes a toothed input member arranged to be driven by the actuator (18); 4. A steering wheel as claimed in any one of claims 1 to 3, wherein the toothed input member is arranged to directly or indirectly drive the rotation of the movable structure (12) towards its stored position in an offset manner relative to the drive of the locking member (22).

6. A steering wheel according to claim 5 dependent on claim 1, characterized in that the drive member is a drive sprocket (26) of the movable structure (12) arranged to mesh directly or indirectly with the toothed input member.

7. The transmission mechanism (20) - forming the toothed input member and driving the drive member, or A steering wheel (10) according to any one of claims 5 or 6, characterised in that it comprises a worm arranged on the actuator (18) for driving the toothed input member.

8. A steering wheel according to any one of claims 1 to 7, characterized in that the transmission mechanism (20) includes a drive cam (54, 54-1, 54-2) for driving the locking member (22), the drive cam being connected, preferably in direct or indirect rotation, to the actuator (18) and cooperating with a cam follower element (52) carried by the locking member (22).

9. 9. A steering wheel according to claim 8, further comprising a lock guide (63), said locking member being arranged between said movable structure (12) and said lock guide (63).

10. 6. A steering wheel according to claim 5, characterized in that the transmission mechanism (20) includes a lock pinion (28) arranged to drive the lock member (22) and to directly mesh with the toothed input member.

11. 11. A steering wheel according to any one of claims 1 to 10, characterized in that the actuator (18) belongs to the category comprising: a rotary electric motor, a geared motor with a rotary electric motor, an electric cylinder with axial displacement, and an electromagnet with axial displacement.

12. A vehicle comprising a steering wheel according to any one of claims 1 to 11.

Citation Information

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