Reclining device

The reclining device addresses the issue of through-hole boss breakage by pressing the bushing against the side surface of the external gear, ensuring stable and damage-free operation through a differential gear mechanism.

JP7790964B2Active Publication Date: 2025-12-23IMASEN ELECTRIC IND CO LTD
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Patent Information

Application Number
JP2021209548
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-23
Publication Date
2025-12-23
Estimated Expiration
2041-12-23

AI Technical Summary

Technical Problem

Conventional seat reclining devices have a through-hole boss portion in the external gear that is prone to breakage due to low rigidity, leading to potential damage.

Method used

The reclining device eliminates the through-hole boss portion by positioning the bushing to press against the side surface of the external gear, which has higher rigidity, using a differential gear mechanism with a cylindrical boss and internal gear to prevent damage.

Benefits of technology

This configuration stabilizes the gear mechanism, prevents damage to the external gear, and ensures smooth, immediate operation without time lag, enhancing the durability and reliability of the reclining device.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a reclining device capable of preventing damaging of a through-hole boss by eliminating the through-hole boss of an external tooth gear and pressing a bottom surface of the highly rigid external tooth gear.SOLUTION: A reclining device 100 comprises: an external tooth gear 10; an internal tooth gear 20 having a cylindrical boss coaxial to an axial direction and a bottom-up bottom surface bottomed-up more than a bottom surface around the cylindrical boss; a bush 30 having a wedge-like cam storage on an inner peripheral surface and a projected part on a front surface side; a pair of wedge-like cams 50 permitting relative rotation of the external tooth gear 10 and the internal tooth gear 20; a biasing member 70 biasing the wedge-like cams in a separating direction; a drive member 60; and a rotary shaft 40 engaged with the drive member 60 to rotate the bush 30 via the drive member 60. The bush is in contact with a side surface of the bottom surface of the internal tooth gear.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a reclining device. [Background technology]

[0002] In contrast to conventional seat cushions, seat reclining device 300, which holds the seat back tiltably, has, as shown in Figure 8, an external gear 310 connected to the seat back or the frame of the seat cushion, with external teeth formed on its outer peripheral surface, and with a through hole coaxial with the axial direction formed in its inner peripheral surface and a through hole boss portion 310a formed in this through hole, an internal gear 320 connected to the seat cushion or the seat back, with internal teeth formed on its outer peripheral surface that can mesh with the external teeth, and with a cylindrical boss portion 320a coaxial with the axial direction formed in its inner peripheral surface, a cam 350, a bushing 330, and an elastic body 370.

[0003] The bushing 330 presses against the through-hole boss portion 310a of the external gear 10, but the through-hole boss portion 310a of the external gear 10 is a protruding portion like a burring portion, and has low rigidity, making it prone to breakage, which is a problem. Summary of the Invention [Problem to be solved by the invention]

[0004] Therefore, the present invention has been made in consideration of these problems, and aims to provide a reclining device that eliminates the through-hole boss portion of the external gear and prevents the through-hole boss portion from being damaged by pressing the bottom surface portion of the highly rigid external gear. [Means for solving the problem]

[0005] In order to achieve the above object, the present invention employs the following means.

[0006] The reclining device of the present invention comprises: A seat reclining device that tiltably holds a seat back frame that constitutes a seat back relative to a seat cushion frame that constitutes a seat cushion, an externally toothed gear attached directly or indirectly to one of the seat cushion frame and the seat back frame, the externally toothed gear having external teeth formed on an outer peripheral surface and a through hole formed coaxially with the axial direction on an inner peripheral surface; an internal gear attached directly or indirectly to the other of the seat cushion frame and the seat back frame, the internal gear having internal teeth that are provided on an inner peripheral surface of the seat cushion frame and that are at least one more than the external teeth and that can mesh with the external teeth, a cylindrical boss that is coaxial with the axial direction, and a bottom-up bottom surface portion that is raised above a bottom surface portion formed around the cylindrical boss; a bushing arranged between the inner periphery of the through hole of the external gear and the outer periphery of the cylindrical boss of the internal gear, the bushing being formed in an annular shape by two arch-shaped members, a first bushing and a second bushing, the bushing being formed so that the center of the outer periphery and the center of the cylindrical boss are eccentric, the bushing having a wedge-shaped cam accommodating portion on the inner periphery side and a protrusion on the front side; a pair of wedge-shaped cams that are disposed in the wedge-shaped cam accommodating portion of the bush, and restrict relative rotation between the external gear and the internal gear by contacting an outer peripheral surface of the cylindrical boss of the internal gear and an inner peripheral surface of the wedge-shaped cam accommodating portion, and allow relative rotation between the external gear and the internal gear by sliding the outer peripheral surface of the cylindrical boss of the internal gear and the inner peripheral surface of the through hole of the external gear; a biasing member that biases the wedge-shaped cams in a direction separating the wedge-shaped cams; a drive member that is coaxially and rotatably fitted into the cylindrical boss of the internal gear, the drive member having an engagement hole on the inside and a protrusion on the outer periphery that engages with the protrusion of the bush; a rotating shaft that is fitted to the driving member and rotates the bushing via the driving member; Equipped with The bushing is characterized in that it contacts the side surface of the bottom surface portion of the external gear.

[0007] In the reclining device according to the present invention, the bushing is positioned higher than the bottom surface of the internal gear, so that the position where the bushing contacts the external gear is in contact with the side of the bottom surface of the external gear. By adopting this configuration, the bushing presses against the side of the bottom surface, which has high rigidity, rather than pressing against the through-hole boss portion, which is vulnerable to stress in the direction of tilt, as in the conventional case, preventing damage to the external gear.

[0008] Furthermore, in the reclining device according to the present invention, the upper bottom surface portion may be raised to at least a position corresponding to the bottom surface portion of the external gear.

[0009] By adopting such a configuration, the entire bushing presses against the side surface of the bottom surface of the external gear, further preventing damage to the external gear.

[0010] In addition, in the reclining device according to the present invention, A seat reclining device that tiltably holds a seat back frame that constitutes a seat back relative to a seat cushion frame that constitutes a seat cushion, an externally toothed gear attached directly or indirectly to one of the seat cushion frame and the seat back frame, with external teeth formed on its outer peripheral surface and a cylindrical boss formed on its inner peripheral surface coaxial with the axial direction, and with an upper bottom surface portion raised higher than a bottom surface portion formed around the cylindrical boss; an internal gear attached directly or indirectly to the other of the seat cushion frame and the seat back frame, the internal gear having internal teeth on an inner circumferential surface that are capable of meshing with the external teeth, the internal teeth being at least one more than the external teeth, and having a through hole formed therein that is coaxial with the axial direction; a first bushing and a second bushing, the first bushing being disposed between the inner periphery of the through hole of the internal gear and the outer periphery of the cylindrical boss of the external gear, the first bushing being formed in an annular shape by two arch-shaped members, the second bushing being formed so that the center of the outer periphery and the center of the cylindrical boss are eccentric, the first bushing having a wedge-shaped cam accommodating portion on the inner periphery side and a protrusion on the front side; a pair of wedge-shaped cams that are arranged in the wedge-shaped cam accommodating portion of the bushing, and that restrict relative rotation between the external gear and the internal gear by contacting the outer circumferential surface of the cylindrical boss of the external gear and the inner circumferential surface of the wedge-shaped cam accommodating portion, and allow relative rotation between the external gear and the internal gear by sliding the outer circumferential surface of the cylindrical boss of the external gear and the inner circumferential surface of the through hole of the internal gear; a biasing member that biases the wedge-shaped cams in a direction separating the wedge-shaped cams; a drive member that is coaxially and rotatably fitted into the cylindrical boss of the external gear, and has an engagement hole on the inside and a protrusion on the outer circumferential side that engages with the protrusion of the bush; a rotating shaft that is fitted to the driving member and rotates the bushing via the driving member; Equipped with The bushing is characterized in that it contacts the side surface of the bottom surface of the internal gear.

[0011] This invention differs from the above-mentioned inventions in that the external gear is provided with a cylindrical boss and the internal gear is formed with a through hole, but similarly, by arranging the bushing at a position higher than the bottom surface of the external gear, the position where the bushing comes into contact with the internal gear comes into contact with the side of the bottom surface of the internal gear. By adopting this configuration, the side surface of the bottom surface, which has high rigidity, is pressed, thereby preventing damage to the external gear.

[0012] In the reclining device according to the present invention, the upper bottom surface portion may be raised to at least a position corresponding to the bottom surface portion of the internal gear.

[0013] By adopting such a configuration, the entire bushing presses against the side surface of the bottom surface of the internal gear, further preventing damage to the internal gear. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 is a schematic diagram of a vehicle seat 200 to which a reclining device 100 according to the first embodiment is attached. [Figure 2] FIG. 2 is a front view showing the internal structure of the reclining device 100 according to the first embodiment. [Figure 3] FIG. 3 is an exploded perspective view of the reclining device 100 according to the first embodiment. [Figure 4] FIG. 4 is a cross-sectional view of the reclining device 100 taken along line AA according to the first embodiment. [Figure 5] FIG. 5 is a perspective view of the external gear 10 of the reclining device 100 according to the first embodiment. [Figure 6] FIG. 6 is a front view showing the relationship between the bushing 30 and the wedge-shaped cam 50 of the reclining device 100 according to the first embodiment. [Figure 7] FIG. 7 is an exploded perspective view of the reclining device 100 according to the second embodiment. [Figure 8] FIG. 8 is a cross-sectional view of a conventional reclining device 300. DETAILED DESCRIPTION OF THE INVENTION

[0015] A reclining device 100 according to an embodiment of the present invention will be described in detail below with reference to the drawings. FIG. 1 is a schematic diagram of a vehicle seat 200, FIG. 2 is a front view showing the internal structure of the reclining device 100, and FIG. 3 is an exploded perspective view of the reclining device 100. FIG. 4 is a cross-sectional view taken along line AA in FIG. 2. Note that the embodiments and drawings described below exemplify some of the embodiments of the present invention and are not intended to be used to limit the present invention to these configurations. Note that corresponding components in each drawing are denoted by the same or similar reference numerals. In addition, in FIG. 3, the directions indicated by the arrows in the drawing are referred to as the "front" and "rear," respectively.

[0016] (First embodiment) 1, the reclining device 100 according to the first embodiment is a device attached to a seat cushion 210 of a vehicle seat 200 at a tilting center position of a seat back 220 that is tiltably attached to the seat cushion 210, and provides a tilting function to the seat back 220. Specifically, the reclining device 100 is attached between a seat cushion frame disposed inside the seat cushion 210 and a seat back frame disposed inside the seat back 220, either directly or indirectly via another attachment plate 230 (hereinafter referred to as "attachment plate or the like").

[0017] 2 to 4, the reclining device 100 according to the present invention mainly comprises an external gear 10, an internal gear 20, a bushing 30 consisting of a first bushing 31 and a second bushing 32, a rotating shaft 40, a wedge-shaped cam 50, a driving member 60, a spring 70 as a biasing member, a plate cover 80, and a shaft locking member 90. Note that in FIG. 2, the rotating shaft 40 and driving member 60 are omitted to make the internal structure easier to see.

[0018] As shown in Fig. 3, the external gear 10 is formed in a disk shape, with external teeth 11 formed on its outer periphery and a through hole 12 in its center. The external gear 10 is provided with a protruding portion 13 which is fitted into a fitting hole formed in a mounting plate or the like 230 and is attached to the vehicle seat by welding or the like. As shown in Fig. 5, the external gear 10 has a standing portion 16 formed on its outer periphery, but no cylindrical boss (so-called burring portion in the conventional example) is formed on its inside.

[0019] The internal gear 20 is formed in a disk shape with a larger diameter than the external gear 10. A recess 10a is formed so that the external gear 10 can be fitted inside, and internal teeth 21 are formed on the inner circumferential surface of this recess 10a. The number of internal teeth 21 is at least one more than the number of external teeth 11 of the external gear 10. As shown in FIG. 2 , the external gear 10 and the internal gear 20 are eccentrically arranged, as indicated by arrow d, so that they mesh with the internal teeth 21 and the external teeth 11. Therefore, the external gear 10 and the internal gear 20 form a differential gear, and when the internal gear 20 makes one revolution around the external teeth 11, it rotates by the difference in teeth between the internal teeth 21 and the external teeth 11. That is, for example, if there is a difference in only one tooth, when the external gear 10 makes one revolution around the internal gear 20, it rotates by one tooth. As shown in FIG. 3, a cylindrical boss 22 is provided at the center of the internal gear 20, and the periphery of this cylindrical boss 22 has a raised bottom surface portion 23. This raised bottom surface portion 23 is the portion that contacts the bushing 30, which will be described later. The raised bottom surface portion 23 is formed so that its outer periphery is circular, and preferably is raised above a position corresponding to the bottom surface 18 of the external gear 10 (see FIG. 5) when assembled. In other words, as shown in FIG. 4, it is preferable that the raised amount of the raised bottom surface portion 23 is raised above position f of the bottom surface 18 of the external gear 10. This is because, by fabricating the internal gear 20 in this manner, the entire thickness of the bushing 30 can come into contact with the side surface of the external gear. The internal gear 20 is provided with a protrusion 26, which is fitted into a fitting hole provided in a mounting plate or the like 230 and attached to the vehicle seat by welding or the like.

[0020] The bushing 30 is an annular member formed by combining a first bushing 31 and a second bushing 32 and is disposed between the inner peripheral surface 12a of the through hole 12 of the external gear 10 and the outer peripheral surface 22a of the cylindrical boss 22 of the internal gear 20. As shown in FIG. 6, the bushing 30 is eccentrically formed so that the center C3 of the circularly formed outer peripheral surface 33 and the center C4 of the outer peripheral surface 22a of the cylindrical boss 22 are approximately equal to the amount of eccentricity between the centers of the external gear 10 and the internal gear 20. The first bushing 31 of the bushing 30 is an arch- or crescent-shaped member disposed in the direction in which the through hole 12 of the external gear 10 is eccentric (the direction of the arrow in FIG. 6). A wedge-shaped cam housing portion 35 is formed on its inner peripheral side and is disposed so as to have a gap between each of a pair of wedge-shaped cams 50 (described later) as shown in FIG. 6. The wedge angle of the wedge-shaped cam housing portion 35 is set so that the gap between the bushing 30 and the cylindrical boss 22 narrows as it moves away from the opposing side. The bushing 30 can press and move the external gear 10 and the internal gear 20 in the eccentric direction by a wedge-shaped cam 50 described below, preventing rattle in the locked state. The second bushing 32 is a bow-shaped or crescent-shaped member located on the opposite side of the direction in which the through hole 12 of the external gear 10 is eccentric (the direction of the arrow), and is located close enough to both side ends of the first bushing 31 that there is a slight gap between them. A protrusion 36 is provided at or near the end of the first bushing 31, and is the part to which the rotation of a rotating shaft 40 described below is transmitted.

[0021] 3 or 6, the wedge-shaped cams 50a and 50b are formed symmetrically with respect to a plane, with the concave surface 51 (inner surface) of the wedge-shaped cam 50 having the same curve as the curved surface of the outer peripheral surface 22a of the cylindrical boss 22, and the convex surface 52 (outer surface) being formed so that the thickness gradually decreases from the opposing side. The wedge-shaped cams 50a and 50b are arranged so that their near-side ends 53, which are the thicker sides, face each other and, as described above, are disposed within the wedge-shaped cam accommodating portion 35 of the bushing 30 so as to contact the inner peripheral surface 12a of the through hole 12 of the external gear 10.

[0022] 3, the spring 70 serving as the biasing member is made of an elastic body and has an annular portion 71 and end portions 72a and 72b that rise up so as to be bent at 90 degrees from the annular portion 71. The end portions 72a and 72b are in contact with the proximal end portion 53 of the wedge-shaped cam 50, and bias the pair of wedge-shaped cams 50a and 50b in directions that move them apart.

[0023] The rotating shaft 40 is arranged coaxially and rotatably relative to the cylindrical boss 22 of the internal gear 20. The rotating shaft 40 is driven to rotate when adjusting the tilt of the seat back 220, and has serrations 41 on its inner cylindrical surface to receive the rotational force of the tilt motor. The rotating shaft 40 has a cylindrical shaft portion 42 that is inserted into a drive member 60 (described later), and is provided with a plurality of locking portions 43 that rotate synchronously with the drive member 60.

[0024] The drive member 60 has a fitting hole 61 formed on its inner periphery to fit into the locking portion 43 of the rotary shaft 40, and is rotated as the rotary shaft 40 rotates. The drive member 60 also has two engagement portions 63 formed to sandwich the protrusions 36 provided on the bushing 30 from both sides, and the drive member 60, which is rotated by the rotation of the rotary shaft 40, can rotate by pressing the protrusions 36 of the bushing 30 with the engagement portions 63.

[0025] The plate cover 80 is a member that secures the external gear 10, internal gear 20, bushing 30, rotating shaft 40, bushing 30, wedge-shaped cam 50, driving member 60, and spring 70 so that they do not come off, and its shape is not particularly limited.

[0026] The shaft locking member 90 is a member that fixes the rotary shaft 40.

[0027] The reclining device 100 thus manufactured operates as follows: When no force is applied to the rotating shaft 40 and it is not rotating, the pair of wedge-shaped cams 50a and 50b are urged apart by the spring 70, pressing the outer peripheral surface 22a of the cylindrical boss 22 of the internal gear 20 against the wedge-shaped cam housing portion 35 of the bushing 30, causing the bushing 30 to be in pressing contact with the inner peripheral surface 12a of the through hole 12 of the external gear 10. As a result, the relative movement between the internal gear 20 and the external gear 10 is locked, and the seat back 220 is in a locked state.

[0028] When the rotating shaft 40 is rotated counterclockwise from this locked state, for example, as shown in FIG. 2, the driving member 60 fitted to the rotating shaft 40 rotates first. The torque of the driving member 60 is transmitted from the engaging portion 63 to the protrusion 36, causing the bushing 30 to rotate. A wedge angle is set between the wedge-shaped cam 50b and the inner wall of the wedge-shaped cam housing portion 35 of the bushing 30, and the inner wall of the wedge angle is in contact with the wedge-shaped cam 50. As the bushing 30 rotates, a gap is created between the inner wall of the wedge angle and the wedge-shaped cam 50, causing the wedge to disengage. As a result, gaps are created between the bushing 30 and the cylindrical boss 22 and between the bushing 30 and the through hole 12 of the internal gear 20, allowing the external gear 10 to rotate relative to the internal gear 20. Accordingly, the wedge-shaped cam 50a rotates counterclockwise due to the biasing force of 70, filling the gap. The wedge-shaped cam 50 rotates counterclockwise while sliding together with the rotating shaft 40 and bushing 30. In this way, the external gear 10, the internal gear 20, and the rotating shaft 40 constitute a differential gear mechanism. Clockwise rotation can also be achieved in the same way.

[0029] In the reclining device 100 manufactured in this manner, the bushing 30 is formed in a ring shape, so when an external force is applied to the internal gear 20 or the external gear 10, the internal gear 20 or the external gear 10 will try to move in the direction of the external force or the reaction force.However, in the direction of the attempted movement, the bushing 30 is sandwiched perpendicular to the outer surface 22a of the cylindrical boss 22 of the internal gear 20 and the through hole 12 of the external gear 10, and can act as a bearing by minimizing the component force components, thereby stabilizing sliding and ensuring smooth rotation.

[0030] Furthermore, when the rotating shaft 40 is rotated, the engagement portion 63 of the bushing 30 engages with the projection 36 of the bushing 30, with no gap in the rotational direction, so the gear mechanism can be operated immediately without any time lag. At this time, the rotation of the bushing 30 is transmitted from the engagement portion 63 to the projection 36, so the bushing 30 rotates to follow the eccentric direction of the internal gear 20 and the external gear 10, and during rotation, the bushing 30 contacts most of the outer circumferential surface 22a of the cylindrical boss 22, which stabilizes sliding and ensures smooth rotation. Meanwhile, the wedge-shaped cam 50 biases the external gear 10 to move in the eccentric direction relative to the internal gear 20, preventing rattling in the locked state.

[0031] Furthermore, the recliner 100 according to the first embodiment does not have a boss portion around the through hole 12 of the external gear 10, and the bushing 30 is positioned at a position raised by the raised bottom surface portion 23 of the internal gear 20 and directly presses against the side of the bottom surface of the external gear 10, eliminating the possibility of the boss portion being pressed and damaged as in the past. Furthermore, because the raised bottom surface portion 23 of the internal gear 20 raises the bottom, the height of the cylindrical boss 22 of the internal gear 20 can be made lower than in the past, and the rigidity of the cylindrical boss portion can also be increased.

[0032] (Second embodiment) An exploded perspective view of a reclining device 100 according to the second embodiment is shown in Figure 7. The reclining device 100 according to the second embodiment is the same as the first embodiment except that a through hole 25 is formed in the internal gear 20 and a cylindrical boss 15 is provided on the external gear 10, and therefore a description thereof will be omitted.

[0033] As shown in Figure 7, the external gear 10 is formed in a disk shape, with external teeth 11 formed on its outer circumferential surface and a cylindrical boss 15 provided in the center. The periphery of the cylindrical boss 15 has a raised bottom surface portion 17. This raised bottom surface portion 17 is the portion that comes into contact with the bushing 30. The raised bottom surface portion 17 is formed so that its outer periphery is circular, and preferably is raised above a position that corresponds to the bottom surface of the internal gear 20 (see Figure 4) when assembled.

[0034] The internal gear 20 is formed in the shape of a disk with a larger diameter than the external gear 10, and has a cylindrical recess formed therein so that the external gear 10 can be fitted inside, with internal teeth 21 formed on the inner circumferential surface of this recess. The number of internal teeth is at least one more than the number of external teeth 11 of the external gear 10, and the external gear 10 and the internal gear 20 are engaged with the internal teeth 21 and the external teeth 11 so that the centers of the external gear 10 and the internal gear 20 are eccentric, respectively, as in the first embodiment. A through hole 25 is formed in the center of the internal gear 20, as shown in FIG. 7. No boss portion is provided in this through hole 25.

[0035] As in the first embodiment, the reclining device 100 of the second embodiment moves in the following manner: When no force is applied to the rotating shaft 40 and the rotating shaft 40 is not rotating, the pair of wedge-shaped cams 50a and 50b are biased by the spring 70 in directions separating them, and the inner circumferential surface of the bushing 30 is in contact with the outer circumferential surface 15a of the cylindrical boss 15 of the external gear 10. Therefore, the relative motion between the internal gear 20 and the external gear 10 is locked, and the seat back 220 is in a locked state. When the rotating shaft 40 is rotated counterclockwise from this locked state, the drive member 60 fitted to the rotating shaft 40 first rotates, and the rotational force of the drive member 60 is transmitted from the engagement portion 63 to the protrusion 36, causing the bushing 30 to rotate. A wedge angle is set between the wedge-shaped cam 50b and the inner wall of the wedge-shaped cam housing portion 35 of the bushing 30, and the inner wall of the wedge angle contacts the wedge-angled ... As the bushing 30 rotates, a gap is created between the inner wall of the wedge angle and the wedge-shaped cam 50, causing the wedge to disengage. As a result, gaps are created between the bushing 30 and the cylindrical boss 15 of the external gear 10, and between the bushing 30 and the through-hole 25 of the internal gear 20, allowing the external gear 10 to rotate relative to the internal gear 20. Accordingly, the wedge-shaped cam 50a rotates counterclockwise to fill the gap due to the biasing force of the spring 70. The wedge-shaped cam 50 rotates counterclockwise, sliding together with the rotating shaft 40 and bushing 30. In this way, the external gear 10, the internal gear 20, and the rotating shaft 40 constitute a differential gear mechanism. Clockwise rotation is also possible in the same way. Clockwise rotation is also possible in the same way.

[0036] The present invention is not limited to the above-described embodiment, and can be embodied in various forms as long as they fall within the technical scope of the present invention. [Industrial Applicability]

[0037] As shown in the above-described embodiment, the present invention is industrially applicable mainly as a reclining device for a vehicle seat. [Explanation of symbols]

[0038] 10...external gear, 10a...recess, 11...external teeth, 12...through hole, 12a...inner peripheral surface, 13...protrusion, 15...cylindrical boss, 15a...outer peripheral surface, 16...standing portion, 17...raised bottom portion, 18...bottom, 20...internal gear, 21...internal teeth, 22...cylindrical boss, 22a...outer peripheral surface, 23...raised bottom portion, 25...through hole, 26...protrusion, 30...bush, 31...first bush, 32...second bush, 33...outer peripheral surface, 35...wedge-shaped cam accommodating portion, 36...protrusion, 40...rotating shaft, 41...cell ion, 42...shaft portion, 43...engagement portion, 50...wedge-shaped cam, 50a...wedge-shaped cam, 50b...wedge-shaped cam, 51...concave surface, 52...convex surface, 53...proximal end portion, 60...driving member, 61...fitting hole, 63...engagement portion, 70...spring, 71...annular portion, 72a, 72b...end portion, 80...plate cover, 90...shaft engagement member, 100...recliner device, 200...vehicle seat, 210...seat cushion, 220...seat back, 230...mounting plate,

Claims

1. A seat reclining device that tiltably holds a seat back frame that constitutes a seat back relative to a seat cushion frame that constitutes a seat cushion, an externally toothed gear attached directly or indirectly to one of the seat cushion frame and the seat back frame, the externally toothed gear having external teeth formed on an outer peripheral surface and a through hole formed coaxially with the axial direction on an inner peripheral surface; an internal gear attached directly or indirectly to the other of the seat cushion frame and the seat back frame, the internal gear having internal teeth that are provided on an inner peripheral surface of the seat cushion frame and that are at least one more than the external teeth and that can mesh with the external teeth, a cylindrical boss that is coaxial with the axial direction, and a bottom-up bottom surface portion that is raised above a bottom surface portion formed around the cylindrical boss; a bushing arranged between the inner periphery of the through hole of the external gear and the outer periphery of the cylindrical boss of the internal gear, the bushing being formed in an annular shape by two arch-shaped members, a first bushing and a second bushing, the bushing being formed so that the center of the outer periphery and the center of the cylindrical boss are eccentric, the bushing having a wedge-shaped cam accommodating portion on the inner periphery side and a protrusion on the front side; a pair of wedge-shaped cams that are disposed in the wedge-shaped cam accommodating portion of the bush, and restrict relative rotation between the external gear and the internal gear by contacting an outer peripheral surface of the cylindrical boss of the internal gear and an inner peripheral surface of the wedge-shaped cam accommodating portion, and allow relative rotation between the external gear and the internal gear by sliding the outer peripheral surface of the cylindrical boss of the internal gear and the inner peripheral surface of the through hole of the external gear; a biasing member that biases the wedge-shaped cams in a direction separating the wedge-shaped cams; a drive member that is coaxially and rotatably fitted into the cylindrical boss of the internal gear, the drive member having an engagement hole on the inside and a protrusion on the outer periphery that engages with the protrusion of the bush; a rotating shaft that is fitted to the driving member and rotates the bushing via the driving member; Equipped with The reclining device is characterized in that the bushing is in contact with a side surface of a bottom portion of the external gear.

2. 2. The reclining device according to claim 1, wherein the upper bottom surface portion is raised to at least a position corresponding to the bottom surface portion of the external gear.

3. A seat reclining device that tiltably holds a seat back frame that constitutes a seat back relative to a seat cushion frame that constitutes a seat cushion, an externally toothed gear attached directly or indirectly to one of the seat cushion frame and the seat back frame, with external teeth formed on its outer peripheral surface and a cylindrical boss formed on its inner peripheral surface coaxial with the axial direction, and with an upper bottom surface portion raised higher than a bottom surface portion formed around the cylindrical boss; an internal gear attached directly or indirectly to the other of the seat cushion frame and the seat back frame, the internal gear having internal teeth on an inner circumferential surface that are capable of meshing with the external teeth, the internal teeth being at least one more than the external teeth, and having a through hole formed therein that is coaxial with the axial direction; a first bushing and a second bushing, the first bushing being disposed between the inner periphery of the through hole of the internal gear and the outer periphery of the cylindrical boss of the external gear, the first bushing being formed in an annular shape by two arch-shaped members, the second bushing being formed so that the center of the outer periphery and the center of the cylindrical boss are eccentric, the first bushing having a wedge-shaped cam accommodating portion on the inner periphery side and a protrusion on the front side; a pair of wedge-shaped cams that are arranged in the wedge-shaped cam accommodating portion of the bushing, and that restrict relative rotation between the external gear and the internal gear by contacting the outer circumferential surface of the cylindrical boss of the external gear and the inner circumferential surface of the wedge-shaped cam accommodating portion, and allow relative rotation between the external gear and the internal gear by sliding the outer circumferential surface of the cylindrical boss of the external gear and the inner circumferential surface of the through hole of the internal gear; a biasing member that biases the wedge-shaped cams in a direction separating the wedge-shaped cams; a drive member that is coaxially and rotatably fitted into the cylindrical boss of the external gear, and has an engagement hole on the inside and a protrusion on the outer circumferential side that engages with the protrusion of the bush; a rotating shaft that is fitted to the driving member and rotates the bushing via the driving member; Equipped with A reclining device, wherein the bushing is in contact with a side surface of a bottom surface of the internal gear.

4. 4. The reclining device according to claim 3, wherein the upper bottom surface portion is raised at least to a position corresponding to the bottom surface portion of the internal gear.

Citation Information

Patent Citations

  • fitting for a vehicle seat

    DE102005054489A1

  • Reclining device

    JP2011207253A

  • Continuously engaging reclining freeplay system and precision stamped gear hub

    JP2013501683A

  • Seat reclining device for vehicle

    JP2018069938A

  • Vehicle seat reclining device

    JP2021529640A