Automatic rotation mechanism, side collision protection device, and child seat

The automatic rotation mechanism in child seats automatically folds the side collision protection block during seat rotation, addressing the inconvenience of manual folding and preventing interference with the base's top rod, thereby enhancing user experience.

JP7839295B2Active Publication Date: 2026-04-01WONDERLAND SWITZERLAND AG
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-05-19
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing child seats with side collision protection devices require manual folding of the side collision protection block before rotating, which complicates the operation and reduces user convenience.

Method used

An automatic rotation mechanism that includes a locking mechanism, drive mechanism, and operating mechanism to automatically fold the side collision protection block during seat rotation, allowing it to switch between unfolded and folded positions without manual intervention.

Benefits of technology

Enhances user convenience by eliminating the need for manual folding of the side collision protection block during seat rotation, improving the ease of use and reducing potential interference with the base's top rod.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Providing automatic rotation mechanisms, side impact protection devices, and child seats. [Solution] The auto-rotation mechanism of the present application controls relative movement between a first object and a second object, the auto-rotation mechanism including a locking mechanism, a driving mechanism, and an operating mechanism, the locking mechanism being disposed on the first object and switchable between a locked position for preventing the relative movement and an unlocked position for allowing the relative movement, the driving mechanism being disposed on the second object and operable to switch the locking mechanism from the locked position to the unlocked position, and the operating mechanism being disposed on a third object and operable to operate the driving mechanism when the third object moves relative to a fourth object. Also provided are a side impact protection device and a child seat.
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Description

Technical Field

[0005] , ,

[0001] The present disclosure relates to an automatic rotation mechanism, a side collision protection device including the automatic rotation mechanism, and a child seat including the side collision protection device.

Background Art

[0002] A child seat is a device attached to an automobile seat. In the case of an emergency braking or an unexpected collision of an automobile, the safety seat reduces the impact on a child, restricts the body movement of the child, thereby reducing the damage suffered by the child in an accident, and ensuring the safety of the child during travel.

[0003] In some safety seats, a side collision protection device is provided to reduce the side collision received by the seat. The side collision protection device is a side flap extending from two outer sides of the seat, and has a folded position and a deployed position. In the folded position, the side collision protection device is attached to the outside of the seat, reducing the occupied space, and in the deployed position, the side collision protection device protrudes outward from the side of the seat, providing a buffer between the seat and the automobile.

[0004] In some applications of the child seat, the seat can rotate back and forth with respect to the base. When the seat rotates, the protruding side collision protection block may interfere with the top rod installed on the base, and it may be impossible to rotate the seat directly forward or backward. Before rotating the seat, it is necessary to manually fold the side collision protection block, which affects the convenience of use.

Summary of the Invention

Problems to be Solved by the Invention

[0005] Therefore, it is necessary to design an automatic rotation mechanism for the side collision protection block. When the seat rotates back and forth with respect to the base, the automatic folding structure can automatically fold the side collision protection block.

Means for Solving the Problems

[0006] The automatic rotation mechanism of the present invention controls the relative movement between a protective block body (first object) and a sheet (second object), and the automatic rotation mechanism includes a locking mechanism, a drive mechanism, and an operating mechanism, wherein the locking mechanism is located on the first object and can be switched between a locked position to prevent the relative movement and an unlocked position to allow the relative movement, the drive mechanism is located on the second object and can operate to switch the locking mechanism from the locked position to the unlocked position, and the operating mechanism is located on the rotating sheet (third object) and can operate the drive mechanism when the rotating sheet moves relative to the base (fourth object).

[0007] The advantages of the automatic rotation mechanism of this invention allow the relative movement between the protective block body and the sheet to be automatically unlocked based on the relative movement between the rotating sheet and the sheet, thereby enabling coordination between multiple objects, reducing the amount of operation required by the user, and improving the user experience.

[0008] In one embodiment, the protective block body can rotate between an unfolded position and a folded position relative to the sheet, and when the protective block body is in the unfolded position, the locking mechanism can be switched to the locked position so as to hold the protective block body in the unfolded position, and a foldable elastic member is arranged at the pivot joint between the protective block body and the sheet, and the foldable elastic member biases the protective block body to the folded position.

[0009] The protective block body is held in the deployed position and biased to the folded position by a foldable elastic member. Therefore, when the position lock of the protective block body is released, the protective block body automatically moves to the folded position.

[0010] In one embodiment, when the protective block body is in the folded position, the drive mechanism holds the locking mechanism in the unlocked position.

[0011] When the protective block is in the folded position, the locking mechanism does not prevent the protective block from moving to the unfolded position. Therefore, if the user needs to reset the protective block to the unfolded position, they only need to operate the protective block itself, and it is not necessary to operate the locking mechanism at the same time.

[0012] In one embodiment, the locking mechanism includes a locking pin, a slot portion, and a locking elastic member, wherein the locking pin is slidably disposed on the protective block body and can slide between an extended position engaging with the sheet and a retracted position disengaging from the sheet, the slot portion is disposed on the sheet and has a locking slot opening toward the locking pin, at least a portion of the locking pin is inserted into the locking slot when in the extended position, and the locking elastic member is disposed between the locking pin and the protective block body and biases the locking pin toward the extended position.

[0013] The locking mechanism provides an operable locking relationship between the protective block body and the sheet.

[0014] In one embodiment, the locking mechanism further includes a release member, which is connected to the locking pin and can be operated from outside the protective block body to switch the locking pin between the extended position and the retracted position.

[0015] The user can directly unlock the protective block body by operating the release member, without having to unlock the protective block body by relative movement between the rotating seat and the base. Thus, the user is provided with an alternative method of operation for unlocking the protective block body.

[0016] In one embodiment, the drive mechanism includes a cam and a traction member, the cam being rotatably positioned on the seat and capable of contacting the lock pin, the cam comprising a drive portion and a avoidance portion provided adjacent to each other along its circumference, the cam being capable of rotating so that the drive portion contacts the lock pin, thereby driving the lock pin to slide to the retracted position, or the avoidance portion being capable of rotating so that it corresponds to the lock pin, thereby allowing the lock pin to slide to the extended position, the traction member being connected between the cam and the operating mechanism, the operating mechanism operating to rotate the cam via the traction member so that the drive portion contacts the lock pin.

[0017] By providing a cam, the lock pin can move between an extended position and a retracted position in response to the pulling motion of the traction member.

[0018] In one embodiment, the drive mechanism further includes a cam elastic member, which is positioned between the cam and the seat and provides a force to drive and rotate the cam such that the avoidance portion faces the lock pin.

[0019] The cam elastic member is used to reset the cam. If the cam is not pulled by the traction member, the cam automatically resets, allowing the lock pin to move to the extended position.

[0020] In one embodiment, the operating mechanism includes a locking member, which is connected to the traction member and includes a first end and a second end, the first end of which contacts the base and the second end of which is movably connected to the rotating seat, and when the rotating seat and the base move relative to each other, the first end of which detaches from the base and the second end of which slides in the tension direction to pull the traction member.

[0021] The locking member serves to convert the relative movement between the base and the rotating seat into the pulling action of the pulling member.

[0022] In one embodiment, the operating mechanism includes an operating mechanism elastic member, and the operating mechanism elastic member is disposed between the rotating seat and the locking member, and biases the second end of the locking member in a direction opposite to the pulling direction.

[0023] The operating mechanism elastic member is used to reset the locking member.

[0024] In one embodiment, the locking member is a locking lever, the first end of the locking member is the first end of the locking lever, the second end of the locking member is the second end of the locking lever, the second end of the locking lever is connected to the pulling member, the base includes a limiting slot opened in the rotating seat, and the locking lever extends obliquely from the rotating seat to the base in the pulling direction such that the first end of the locking lever abuts within the limiting slot. When the rotating seat and the base move relatively, the first end of the locking lever rotates out of the limiting slot toward the rotating seat. The operating mechanism further includes an auxiliary rod, the auxiliary rod includes a first end of the auxiliary rod and a second end of the auxiliary rod, the first end of the auxiliary rod is rotatably connected to an auxiliary rod joint of the locking lever between the first end of the locking lever and the second end of the locking lever, and the second end of the auxiliary rod is rotatably connected to the rotating seat.

[0025] The auxiliary rod defines the moving direction of the locking lever. Thereby, the locking lever not only rotates about the second end of the locking lever while rotating out of the limiting slot, but also pulls the pulling member at the same time.

[0026] In one embodiment, the second end of the auxiliary rod is located in a direction opposite to the pulling direction with respect to the second end of the locking lever, and the first end (321) of the auxiliary rod is connected to a substantially middle position of the locking lever.

[0027] By arranging the auxiliary rod as described above, the movement of the lock lever can be effectively restricted without causing a large resistance.

[0028] In one embodiment, the first end of the lock lever presents a triangle protruding towards the base, and the two inclined surfaces of the triangle respectively form two guide inclined surfaces. The limiting slot has portions corresponding to the two guide inclined surfaces respectively, and when the rotating sheet moves relative to the base in different directions, the two guide inclined surfaces are separated from the limiting slot so that the first end of the lock lever rotates from the limiting slot towards the rotating sheet.

[0029] According to the structure of the first end of the lock lever and the limiting slot described above, when the base rotates clockwise or counterclockwise relative to the rotating sheet, the operating mechanism can also move in the same way.

[0030] [[ID=##]] In one embodiment, the locking member is a lock slider, the first end of the locking member is the first end of the slider, the second end of the locking member is the second end of the slider, the base has a limiting slot opened in the rotating sheet, the lock slider is located in the slider slot of the rotating sheet and can slide close to or away from the base. When the rotating sheet and the base move relatively, the limiting slot pushes the first end of the slider, and the lock slider slides away from the base. The lock slider has an operating slot extending obliquely with respect to the sliding direction of the lock slider, and the towing head of the towing member is slidably inserted into the operating slot. When the lock slider slides away from the base, the lock slider pulls the towing member. [[ID=##]]

[0031] [[ID=##]] The lock slider provides another way to implement the locking member and can also pull the towing member according to the relative movement between the base and the rotating sheet.

[0032] In one embodiment, the rotating seat is provided with a guide slot, which is positioned vertically below the lock slider and extends in the tensile direction, and the traction head is also slidably inserted into the guide slot and restricted to sliding in the tensile direction.

[0033] Guide slots can restrict the direction of movement of the towing head, thereby preventing unexpected movements of the towing head.

[0034] In one embodiment, the foldable elastic member is a torsion spring.

[0035] The aforementioned torsion spring can simply provide a folding force to a foldable member.

[0036] In one embodiment, the drive unit has an arcuate surface that protrudes outward relative to the pivot of the cam, and the avoidance unit has an arcuate surface that is recessed inward relative to the pivot of the cam.

[0037] The cam shape described above is advantageous for the smooth movement of the lock pin.

[0038] The side impact protection device of this disclosure includes the automatic rotation mechanism described above and a protective block body.

[0039] Therefore, this application enables the automatic folding function of the side collision protection blocks.

[0040] The child seat of the present invention includes a base, a rotating seat, a seat, and the above-mentioned side impact protection device, wherein the rotating seat is rotatably positioned on the base, the seat is positioned on the rotating seat, and the side impact protection block of the side impact protection device is positioned on one or both sides of the seat.

[0041] The application's automatic folding function for side impact protection blocks can also be applied to child car seats.

[0042] In one embodiment, the sheet is fixed to the rotating sheet, or is slidable or swingable back and forth relative to the rotating sheet.

[0043] The seat is capable of sliding or swinging forward and backward, and is equipped with a pitch angle adjustment function. In this invention, a traction member is used to connect the locking mechanism and the drive mechanism, so that adjusting the seat's pitch angle does not affect the connection between the locking mechanism and the drive mechanism. [Brief explanation of the drawing]

[0044] [Figure 1] This is a front view of the child seat in the present invention with the side impact protection block in the deployed position. [Figure 2] This is a side view of a child car seat with the side impact protection blocks in the folded position. [Figure 3] This is a side view of a child car seat with the side impact protection blocks deployed. [Figure 4] This diagram shows the case where the side impact protection blocks, which deploy when the seat rotates relative to the base, are relative to the base top rod. [Figure 5] This diagram shows the case where the folded side impact protection block is relative to the base top rod when the seat rotates relative to the base. [Figure 6] These are front and rear perspective views of the housing and cam of the side impact protection block. [Figure 7] These are front and rear perspective views of the housing and cam of the side impact protection block. [Figure 8] Figures 8 to 11 are upper cross-sectional views of the side impact protection block, showing the four states of the side impact protection block during the process from deployment to folding. The side impact protection block is in the deployed position, the cam is in the avoidance position, and the lock pin is in the extended position. [Figure 9]Figures 8 to 11 are upper cross-sectional views of the side impact protection block, showing the four states of the side impact protection block during the process from deployment to folding. The side impact protection block is in the deployed position, the cam is in the contact position, and the lock pin is in the retracted position. [Figure 10] Figures 8 to 11 are upper cross-sectional views of the side impact protection block, showing four states of the side impact protection block during the process from deployment to folding. The side impact protection block is in the folded position, the cam is in the contact position, and the lock pin is in the retracted position. [Figure 11] Figures 8 to 11 are upper cross-sectional views of the side impact protection block, showing the four states of the side impact protection block during the process from deployment to folding. The side impact protection block is in the folded position, the cam is back in the avoidance position, and the lock pin is in the retracted position. [Figure 12] This is a plan view of the base and operating mechanism of a child seat according to the first embodiment of the present application, with the seat in a forward or backward position relative to the base. [Figure 13] This is a magnified view of a portion of the block shown in Figure 12. [Figure 14] This is a plan view of the base and operating mechanism, showing how the seat rotates counterclockwise relative to the base from the position shown in Figure 12. [Figure 15] This is a magnified view of a portion of the block shown in Figure 14. [Figure 16] This is a plan view of the base and operating mechanism, showing the seat rotating further counterclockwise relative to the base from the position shown in Figure 14. [Figure 17] This is a magnified view of a portion of the block shown in Figure 16. [Figure 18] This is a plan view of an operating mechanism in which the seat is positioned forward or backward relative to the base according to the second embodiment of the present application. [Figure 19] This is a magnified view of a portion of the block shown in Figure 18. [Figure 20]This is a plan view of the operating mechanism showing a slider cut along a horizontal-vertical plane, with the sheet in a forward or backward position relative to the base. [Figure 21] This is a magnified view of a portion of the block shown in Figure 20. [Figure 22] This is a plan view of the operating mechanism, with the slider removed and the traction head and guide slot clearly visible, and the seat in a forward or backward position relative to the base. [Figure 23] This is a magnified view of a portion of the block shown in Figure 22. [Figure 24] This is a plan view of the mechanism by which the seat rotates relative to the base. [Figure 25] This is a magnified view of a portion of the block shown in Figure 24. [Figure 26] This is a plan view of the operating mechanism, showing the slider cut along the horizontal-vertical plane, with the sheet rotating relative to the base. [Figure 27] This is a magnified view of a portion of the block shown in Figure 26. [Figure 28] This is a perspective view of the mechanism that allows the seat to rotate relative to the base. [Figure 29] This is a partially enlarged view of the block portion in Figure 28. [Modes for carrying out the invention]

[0045] While the present invention will be described with reference to specific embodiments, the invention should not be limited to the illustrated details. Specifically, these details can be modified in various ways within the equivalent scope of the claims without departing from the invention.

[0046] The descriptions of directions such as "front," "back," "up," and "down" used herein are for the sole purpose of facilitating understanding. The present invention is not limited to the relevant directions and can be adapted to the actual situation. While this application is described with reference to a typical embodiment, the terminology used is illustrative and not limiting.

[0047] Referring to Figures 1 to 5, we will outline the child seat 1 according to this application.

[0048] Child seat 1 includes a base 500, a swivel seat 700, a seat 600, and a side impact protection device 400. The base 500 is for mounting child seat 1 to a carrier seat 600, such as a car seat. The swivel seat 700 is rotatably positioned above the base 500 and is rotatable about an axis 710 substantially perpendicular to the base 500, allowing the seat 600 to switch between a forward position (shown in Figures 1 to 3) and a rearward position (not shown). The seat 600 is positioned above the swivel seat 700 and rotates with the swivel seat 700 relative to the base 500. In some applications, the seat 600 can be fixed to the swivel seat 700, and in other applications, the seat 600 can slide or swing back and forth relative to the base 500 so that the seat 600 performs a pitch adjustment function. The present invention is suitable for these two applications. The side impact protection blocks 400 are arranged one or two on one or both sides of the sheet 600 and may extend laterally from the sides of the sheet 600.

[0049] The rear surface of the base 500 is provided with a top rod 540 that extends almost vertically upward to contact the backrest of the car seat and enhance the stability of the child seat 1. As shown in Figure 4, when the seat 600 and the swivel seat 700 rotate relative to the base 500, if the side impact protection block 400 is in the deployed position, the side impact protection block 400 may be obstructed by the top rod 540, potentially preventing the seat 600 and the swivel seat 700 from rotating to a predetermined position.

[0050] The child seat 1 according to this invention is equipped with an automatic rotation mechanism, and when the seat 600 and the rotating seat 700 rotate relative to the base 500, the side impact protection block 400 automatically rotates from the deployed position to the folded position relative to the seat 600. In this way, interference and collision between the side impact protection block 400 and the top rod 640 can be effectively avoided, and damage to the child seat 1 can be prevented. At the same time, since it is not necessary to manually fold the side impact protection block 400 and then rotate the seat 600, the convenience of using and operating the child seat 1 is greatly improved, as shown in Figure 5.

[0051] As shown in Figures 6 to 12, the automatic rotation mechanism according to the present invention includes a locking mechanism 100, a drive mechanism 200, and an operating mechanism 300. The locking mechanism 100 is located on the side impact protection block 400 and is switchable between a locked position that prevents relative movement of the side impact protection block 400 with respect to the seat 600 and an unlocked position that allows this relative movement. The drive mechanism 200 is located on the seat 600 and is operable to switch the locking mechanism 100 from the locked position to the unlocked position. The operating mechanism 300 is located on the rotating seat 700 and acts on the drive mechanism 200 when the rotating seat 700 (and the seat 600 as well) moves relative to the base 500, thereby causing the drive mechanism 200 to unlock the locking mechanism 100.

[0052] The side impact protection block 400 includes a housing 410 and a protection block body 420, as shown in Figures 8 to 11. The housing 410 is attached to the side of the seat 600 or is formed as part of the seat 600. The housing 410 has a housing space 411 for accommodating the protection block body 420.

[0053] The protective block body 420 is rotatable relative to the housing 410 (and the sheet 600) between an extended position and a folded position. When the protective block body 420 is in the extended position, the locking mechanism 100 can be switched to the locked position so that the protective block body 420 is maintained in the extended position. A foldable elastic member, such as a torsion spring, is positioned at the pivot joint between the protective block body 420 and the sheet 600, and the torsion spring constantly applies an inward folding force to the protective block body 420 in order to bias it into the folded position. Also, when the protective block body 420 is in the folded position, the drive mechanism 200 holds the locking mechanism 100 in the unlocked position.

[0054] Therefore, as shown in Figures 8 and 9, when the protective block body 420 is in the deployed position, the locking mechanism 100 locks the protective block body 420 in the deployed position. As shown in Figure 10, when the rotating sheet 700 (and similarly the sheet 600) rotates relative to the base 500, the drive mechanism 200 drives the operating mechanism 300, which in turn drives the locking mechanism 100, thereby disengaging the locking mechanism 100 from locking the protective block body 420 in the deployed position. At this time, the protective block body 420 is biased to the folded position by the torsion spring, and automatic folding is achieved. If it is necessary to deploy the protective block body 420, the locking mechanism 100 does not lock the protective block body 420 in the folded position, so the protective block body 420 can be manually pulled to the deployed position.

[0055] Referring again to Figures 6 through 11, the locking mechanism 100 and the drive mechanism 200 according to the present invention will be described.

[0056] The locking mechanism 100 includes a locking pin 120, a slot portion 110, a locking elastic member 130, and may further include a release member 140.

[0057] The locking pin 120 is slidably positioned within the protective block body 420 and is slidable between an extended position in which it engages with the sheet 600 and a retracted position in which it disengages from the sheet 600. More specifically, the locking pin 120 has a substantially cylindrical shape. In the extended position, the locking pin 120 extends at least partially from the protective block body 420.

[0058] As shown in Figure 6, the slot portion 110 is located on the seat 600 (in other words, on the housing 410) and has a lock slot 111 that opens toward the lock pin 120. The lock pin 120 is inserted at least partially into the lock slot 111 when it is in the extended position. The slot portion 110 may be formed as part of the side surface of the seat 600. The extending direction of the lock slot 111 faces the protective block body 420 in the deployed position, thus allowing the lock pin 120 to be inserted into the lock slot 111 when the protective block body 420 rotates to the deployed position, thereby allowing the protective block body 420 to rotate and then lock. The cam 210 of the drive mechanism 200 can effectively prevent the lock pin 120 from entering the slot portion 110, which will be described in detail later.

[0059] Referring to Figure 8, the locking elastic member 130 is positioned between the locking pin 120 and the protective block body 420, biasing the locking pin 120 to the extended position. Therefore, when the protective block body 420 rotates to the deployed position, the locking pin 120 automatically locks the protective block body 420. In this embodiment, the locking elastic member 130 may be a spring with one end sleeved to one end of the locking pin 120, and the other end of the spring is connected inside the protective block body 420.

[0060] Referring also to Figure 8, the release member 140 is positioned on the surface of the protective block body 420 facing outward or toward the housing 410 and is connected to the lock pin 120. By pressing and sliding the release member 140 from the outside of the protective block body 420, the lock pin 120 can be switched between an extended position and a retracted position relative to the protective block body 420. Thus, the user can release the rotation of the protective block body 420 relative to the sheet 600 by directly operating the lock pin 120 with the release member 140 (rather than the actuation mechanism 300).

[0061] As shown in Figures 7 to 11, the drive mechanism 200 includes a cam 210 and a traction member 220, and may also include a cam elastic member 214.

[0062] The cam 210 is rotatably positioned on the sheet 600 and is capable of contacting the lock pin 120. The cam 210 comprises a drive portion 211 and a avoidance portion 212, which are circumferentially adjacent to each other. The drive portion 211 has an arcuate surface that protrudes outward relative to the pivot 215 of the cam 210, and the avoidance portion 212 has an arcuate surface that is recessed inward relative to the pivot 215 of the cam 210. When the protective block body 420 is in the deployed position, the cam 210 can be rotated so that the drive portion 211 contacts the lock pin 120, thereby driving the lock pin 120 to slide into the retracted position (as shown in Figure 9), or the avoidance portion 212 can be pivoted so as to face the lock pin 120, thereby allowing the lock pin 120 to slide into the extended position (as shown in Figure 8). When the protective block body 420 is in the folded position, the cam 210 holds the lock pin 120 in the retracted position by resisting the biasing force of the lock elastic member 130 that biases the lock pin 120.

[0063] More specifically, the cam 210 is located within the cam slot 112 of the slot portion 110. The axial direction of the cam 210 is substantially perpendicular to the sliding direction of the lock pin 120. The cam slot 112 and the lock slot 111 are substantially orthogonal; that is, the cam slot 112 is substantially parallel to the radial direction of the cam 210, and the lock slot 111 is substantially parallel to the axial direction of the cam 210 or to the pivot 215. The drive unit 211 is spaced approximately 90 degrees circumferentially from the avoidance unit 212, and this circumferential distance can be set to a range of, for example, between 30 and 150 degrees, depending on the circumstances.

[0064] The cable slot 213 opens on the outer circumference of the cam 210 to allow the traction member 220 to pass through. The cable slot 213 is provided at least partially along the outer circumference of the cam 210 and is designed to guide the cable 221 which extends along the outer circumference of the cam 210 and engages with the cam 210.

[0065] The traction member 220 is connected between the cam 210 and the operating mechanism 300, and the operating mechanism 300 can be operated by the traction member 220 to rotate the cam 210 so that the drive unit 211 contacts the lock pin 120.

[0066] As shown in Figure 7, the cam elastic member 214 is positioned between the cam 210 and the seat 600 and biases the cam 210 to rotate so that the avoidance portion 212 faces the lock pin 120. Therefore, when the actuation mechanism 300 is not driving the drive mechanism 200, the avoidance portion 212 of the cam 210 always faces the lock pin 120, allowing the lock pin 120 to slide into its locked position.

[0067] An operating mechanism 300 according to the first embodiment of the present application will be described with reference to Figures 12 to 16. The operating mechanism 300 of the first embodiment includes a locking member (in this embodiment, a locking lever 310) and an operating mechanism elastic member 330, and may also include an auxiliary rod 320.

[0068] The lock lever 310 includes a first end 311 of the lock lever and a second end 312 of the lock lever. The first end 311 of the lock lever abuts against the base 500. The second end 312 of the lock lever is pivotally and slidably connected to the rotating sheet 700 (specifically, the chute 730 provided on the rotating sheet 700) and is connected to the traction member 220. As shown in FIG. 15, when the rotating sheet 700 moves relative to the base 500, the first end 311 of the lock lever disengages from the base 500, and the second end 312 of the lock lever slides in the tension direction 314 to pull the traction member 220.

[0069] The traction member 220 includes a cable sheath 222 and a cable 221 slidably disposed within the cable sheath 222. One end of the cable sheath 222 is connected to the rotating sheet 700 at the cable sheath fixing portion 720, and the other end is connected to the housing 410 (not shown) of the protection block body 420. One end of the cable 221 is connected to the second end 312 of the lock lever, and the other end is connected to the cam 210 (see FIGS. 8 to 11). Therefore, when the second end 312 of the lock lever pulls the cable 221, the cable 221 correspondingly pulls the cam 210, causing the cam 210 to rotate in a direction toward abutting against the lock pin 120. The cable sheath 222 defines the extended length of the cable 221 between the protection block body 420 and the rotating sheet 700, so that when the sheet 600 (similarly for the side collision protection block 400) moves relative to the rotating sheet 700, the tension of the cable 221 does not change.

[0070] As shown in FIGS. 14 and 15, the first end 311 of the lock lever is arranged such that when the rotating sheet 700 rotates relative to the base 500 (that is, when the rotating sheet 700 is in the forward position or the rearward position), the first end 311 of the lock lever receives a force that abuts against the base 500, and this force is converted into a force that pushes the second end 312 of the lock lever to slide in the tension direction 314.

[0071] The actuation mechanism elastic member 330 is positioned between the rotating seat 700 and the lock lever 310 and biases the second end 312 of the lock lever in the direction opposite to the tensile direction 314. Specifically, one end of the actuation mechanism elastic member 330 is connected to a fixing pin or fixing lug (not shown) of the rotating seat 700, and the other end of the actuation mechanism elastic member 330 is connected to the second end 312 of the lock lever 310 and slides within the chute 730 following the second end 312 of the lock lever. Therefore, when there is no relative rotation between the rotating seat 700 and the base 500 (i.e., when the rotating seat 700 is positioned between the forward and rearward positions), the actuation mechanism elastic member resets the second end 312 of the lock lever and simultaneously resets the first end 311 of the lock lever.

[0072] More specifically, the base 500 is provided with a limiting slot 510 that is opened in the rotating seat 700. The locking lever 310 extends diagonally from the rotating seat 700 toward the base 500 with respect to the tensile direction 314 so that the first end 311 of the locking lever can contact the limiting slot 510. As the rotating seat 700 and the base 500 move relative to each other, the first end 311 of the locking lever rotates toward the rotating seat 700 away from the limiting slot 510.

[0073] The base 500 can be provided with multiple limiting slots 510 along the direction of rotation; for example, two limiting slots 510 can be provided at 180-degree intervals. Therefore, when the rotating seat 700 (and the seat 600 as well) rotates to the forward or rearward position, the first end 311 of the locking lever can be brought into contact with different limiting slots 510. In this way, when the rotating seat 700 is in the forward or rearward position, the actuation mechanism 300 cannot actuate the drive mechanism 200, and thus the lock pin 120 in the cam 210 cannot be released, thereby holding the protective block body 420 in the deployed position.

[0074] The first end 311 of the locking lever may be triangular in shape projecting toward the base 500, with the two inclined surfaces of the triangle each forming two guide inclined surfaces 311a. The limiting slot 510 has portions corresponding to the two guide inclined surfaces 311a, respectively. As shown in Figure 15, when the rotating seat 700 moves in different directions relative to the base 500, the two guide inclined surfaces 311a move substantially apart from the limiting slot 510, thereby causing the first end 311 of the locking lever to rotate away from the limiting slot 510 toward the rotating seat 700.

[0075] The auxiliary rod 320 includes an auxiliary rod first end 321 and an auxiliary rod second end 322. The auxiliary rod first end 321 is rotatably connected to the auxiliary rod joint 313 of the lock lever 310 between the first end 311 and the second end 312 of the lock lever. The auxiliary rod second end 322 is rotatably connected to the swivel seat 700. More specifically, the auxiliary rod second end 322 is positioned opposite to the tensile direction 314 relative to the second end 312 of the lock lever. In the embodiment, the auxiliary rod joint 313 is positioned substantially midway along the lock lever 310.

[0076] As shown in Figures 14 and 15, when the rotating seat 700 rotates relative to the base 500, the first end 311 of the locking lever is pushed by the limiting slot 510, causing the first end 311 of the locking lever to swing toward the rotating seat 700. Due to the presence of the auxiliary rod 320, the swinging of the first end 311 of the locking lever causes the second end 312 of the locking lever to slide in the tensile direction 314. This is because if the first end 311 of the locking lever were to swing without the second end 312 of the locking lever sliding, it would be necessary to compress the auxiliary rod 320, but the auxiliary rod 320 is incompressible. Therefore, as the first end 311 of the locking lever swings, the second end 312 of the locking lever slides toward the tensile direction 314.

[0077] Figures 12 to 16 show the case where the rotating sheet 700 rotates counterclockwise relative to the base 500. Please note that the operation method of the operating mechanism 300 is the same even when the rotating sheet 700 rotates clockwise relative to the base 500.

[0078] The operating mechanism 300 according to the second embodiment of the present application will be described with reference to Figures 18 to 29.

[0079] Similar to the first embodiment, the base 500 of the second embodiment is also provided with a limiting slot 510 that opens into the rotating seat 700. The shape of the limiting slot 510 in the second embodiment can be the same as in the first embodiment, so the description of the base 500 and the limiting slot 510 will be omitted in the description of the second embodiment.

[0080] The operating mechanism 300 of the second embodiment includes a locking member (in this embodiment, a lock slider 350) and a slider elastic member 360.

[0081] The rotating seat 700 is provided with a slider slot 740 that extends radially (in this embodiment, laterally) and opens toward the base 500. The lock slider 350 is positioned within the slider slot 740 and is slidable toward or toward the base 500. The first slider end 351 of the lock slider 350 is located within the slider slot 740, and the second slider end 352, opposite to the first slider end 351, faces the base 500. The lock slider 350 extends from the slider slot 740 and can abut into the limiting slot 510 of the base 500 via the second slider end 352 (as shown in Figures 18 to 23).

[0082] The second end 352 of the slider may have a triangular or other shape that coincides with the limiting slot 510. Thus, as the rotating sheet 700 and the base 500 move relative to each other, the limiting slot 510 pushes the first end 311 of the slider, thereby causing the locking slider 350 to slide away from the base 500 and retract into the slider slot 740 (as shown in Figures 24 to 29).

[0083] The lock slider 350 is provided with an operating slot 353 that extends diagonally with respect to the sliding direction of the lock slider 350. The towing head 223 of the towing member 220 is slidably inserted into the operating slot 353, so that the towing member 220 is pulled when the lock slider 350 slides away from the base 500. More specifically, the operating slot 353 is closer to the base 500 at the front in the tensile direction (longitudinal direction in this embodiment) and away from the base 500 at the rear in the tensile direction.

[0084] The rotating seat 700 may also include a guide slot 750 (shown in Figures 22 to 23). The guide slot 750 may be positioned vertically below the lock slider 350 and extend in the tensile direction. The traction head 223 is also slidably inserted into the guide slot 750 and is therefore restricted by the guide slot 750 to slide in the tensile direction. More specifically, when the lock slider 350 slides away from the base 500, the traction head 223 begins to slide under the pull of the operating slot 353, while the traction head 223 can only slide in the direction of the guide slot 750 because it is restricted by the guide slot 750.

[0085] The slider elastic member 360 is positioned between the second slider end 352 of the lock slider 350 and the slider slot 740, biasing the lock slider 350 toward the base 500. More specifically, the end of the slider slot 740 away from the base 500 may include a slider elastic member biasing portion 741, which may be formed to be recessed from the end of the slider slot 740 away from the base 500. The slider elastic member 360 may be a compression spring, with one end in contact with the slider elastic member biasing portion 741 and the other end in contact with the second slider end 352.

[0086] In conclusion, this application provides an automatic rotation mechanism, a side impact protection block, and a child seat using the automatic rotation mechanism. It should be understood that the automatic rotation mechanism can also be applied to other devices.

[0087] It should be understood that this application can be embodied in various forms without departing from its spirit and essence. The embodiments described above are not limited to the details set forth herein and should be interpreted as broadly as possible within the scope defined by the claims, and therefore all modifications that fall within the scope of the claims or their equivalents should be covered by the claims. [Explanation of symbols]

[0088] 1: Child car seat 100: Locking mechanism 110: Slot section 111: Lock Slot 112: Cam Slot 120: Lock pin 130: Lock elastic member 140: Release member 200: Drive mechanism 210: Cam 211: Drive unit 212: Evasion part 213: Cable slot 214: Cam elastic member 215: Pivot 220: Towing component 221: Cable 222: Cable sheath 223: Towing head 300: Operating mechanism 310: Lock lever (locking component) 311: First end of lock lever (first end of lock member) 311a: Guide slope 312: Second end of lock lever (second end of lock member) 313: Auxiliary rod joint 314: Tensile direction 320: Auxiliary rod 321: First end of auxiliary rod 322: Second end of auxiliary rod 330: Elastic member of the operating mechanism 350: Lock slider (locking component) 351: Slider first end (locking member first end) 352: Slider second end (locking member second end) 353: Operation slot 360: Slider elastic member 400: Side impact protection block 410: Housing 411: Storage space 420: Protective block body (first object) 500: Base (4th object) 510: Limited Slot 540: Top Rod 600: Sheet (second object) 700: Rotating Sheet (Third Object) 710: Axis 720: Cable sheath fixing part 730: Shoot 740: Slider Slot 741: Slider elastic member biasing section 750: Guide slot

Claims

1. An automatic rotation mechanism for controlling the relative movement between a first object (400) and a second object (600), The automatic rotation mechanism includes a locking mechanism (100), a drive mechanism (200), and an operating mechanism (300). The locking mechanism (100) is positioned on the first object (400) and can be switched between a locked position to prevent the relative movement and an unlocked position to allow the relative movement. The drive mechanism (200) is positioned on the second object (600) and can operate to switch the locking mechanism (100) from the locked position to the unlocked position. The operating mechanism (300) is positioned on the third object (700) and can operate the drive mechanism (200) when the third object (700) moves relative to the fourth object (500). The first object (400) can rotate between an unfolded position and a folded position relative to the second object (600), and when the first object (400) is in the unfolded position, the locking mechanism (100) can be switched to the locked position so that the first object (400) is held in the unfolded position. A foldable elastic member is positioned at the pivot joint between the first object (400) and the second object (600), and the foldable elastic member biases the first object (400) to the folded position. An automatic rotation mechanism characterized by the following features.

2. When the first object (400) is in the folded position, the drive mechanism (200) holds the locking mechanism (100) in the unlocked position. The automatic rotation mechanism according to feature 1.

3. The locking mechanism (100) includes a locking pin (120), a slot portion (110), and a locking elastic member (130). The locking pin (120) is slidably positioned on the first object (400) and can slide between an extended position that engages with the second object (600) and a retracted position that disengages from the second object (600). The slot portion (110) is positioned in the second object (600) and has a lock slot (111) that opens toward the lock pin (120), and when the lock pin (120) is in the extended position, at least a portion of it is inserted into the lock slot (111). The locking elastic member (130) is positioned between the locking pin (120) and the first object (400), and biases the locking pin (120) to the extended position. The locking mechanism (100) further includes a release member (140), The release member (140) is connected to the lock pin (120) and can be operated from outside the first object (400) to switch the lock pin (120) between the extended position and the retracted position. The automatic rotation mechanism according to feature 1 or 2.

4. The drive mechanism (200) includes a cam (210) and a traction member (220), The cam (210) is rotatably positioned on the second object (600) and can contact the lock pin (120), and the cam (210) comprises a drive portion (211) and a avoidance portion (212) provided adjacent to each other along the circumference, and the cam (210) can rotate so that the drive portion (211) contacts the lock pin (120), thereby driving the lock pin (120) to slide to the retracted position, or the avoidance portion (212) can rotate so that it faces the lock pin (120), thereby allowing the lock pin (120) to slide to the extended position. The traction member (220) is connected between the cam (210) and the operating mechanism (300), and the operating mechanism (300) operates to rotate the cam (210) via the traction member (220) such that the drive unit (211) contacts the lock pin (120). The automatic rotation mechanism according to feature 3.

5. The drive mechanism (200) further includes a cam elastic member (214), The cam elastic member (214) is positioned between the cam (210) and the second object (600) and provides a force to drive and rotate the cam (210) such that the avoidance portion (212) faces the lock pin (120). The automatic rotation mechanism according to feature 4.

6. The aforementioned operating mechanism (300) includes a locking member, The locking member is connected to the traction member (220) and includes a first end of the locking member and a second end of the locking member. The first end of the locking member abuts against the fourth object (500), The second end of the locking member is movably connected to the third object (700), As the third object (700) and the fourth object (500) move relative to each other, the first end (311) of the locking member detaches from the fourth object (500), and the second end (312) of the locking member slides in the tensile direction, pulling the traction member (220). The aforementioned operating mechanism (300) includes an operating mechanism elastic member (330), The operating mechanism elastic member (330) is positioned between the third object (700) and the locking member (310), and biases the second end (312) of the locking member in a direction opposite to the tensile direction (314). The automatic rotation mechanism according to feature 5.

7. The locking member is a locking lever (310), the first end of the locking member is the first end of the locking lever (311), the second end of the locking member is the second end of the locking lever (312), and the second end of the locking lever (312) is connected to the traction member (220). The fourth object (500) has a limiting slot (510) opening in the third object (700), and the locking lever (310) extends obliquely with respect to the tensile direction (314) from the third object (700) to the fourth object (500) such that the first end (311) of the locking lever abuts into the limiting slot (510), and as the third object (700) and the fourth object (500) move relative to each other, the first end (311) of the locking lever rotates away from the limiting slot (510) toward the third object (700). The aforementioned operating mechanism (300) further includes an auxiliary rod (320), The auxiliary rod (320) includes a first end (321) and a second end (322), The first end (321) of the auxiliary rod is rotatably connected to the auxiliary rod joint (313) of the lock lever (310) between the first end (311) and the second end (312) of the lock lever. The second end (322) of the auxiliary rod is rotatably connected to the third object (700). The automatic rotation mechanism according to feature 6.

8. The second end (322) of the auxiliary rod is positioned in a direction opposite to the tension direction (314) with respect to the second end (312) of the lock lever. The first end (321) of the auxiliary rod is connected to the lock lever (310) at approximately the middle position. The automatic rotation mechanism according to feature 7.

9. The first end (311) of the locking lever has a triangular shape projecting toward the fourth object (500), the two slopes of the triangle each form two guide slopes (311a), and the limiting slot (510) each has portions corresponding to the two guide slopes (311a), and when the third object (700) moves relative to the fourth object (500) in different directions, the two guide slopes (311a) separate from contact with the limiting slot (510) such that the first end (311) of the locking lever rotates toward the third object (700) from the limiting slot (510). The automatic rotation mechanism according to feature 7.

10. The locking member is a lock slider (350), the first end of the locking member is the first end of the slider (351), and the second end of the locking member is the second end of the slider (352). The fourth object (500) comprises a limited slot (510) opened in the third object (700), The lock slider (350) is located within the slider slot (740) of the third object (700) and can slide toward or away from the fourth object (500), and when the third object (700) and the fourth object (500) move relative to each other, the limiting slot (510) pushes the first end (311) of the slider, causing the lock slider (350) to slide away from the fourth object (500). The lock slider (350) is provided with an operating slot (353) that extends obliquely to the sliding direction of the lock slider (350), the towing head (223) of the towing member (220) is slidably inserted into the operating slot (353), and when the lock slider (350) slides away from the fourth object (500), the lock slider (350) pulls the towing member (220). The automatic rotation mechanism according to feature 6.

11. The third object (700) comprises a guide slot (750), the guide slot (750) being positioned vertically below the rock slider (350) and extending in the tensile direction, The traction head (223) is also slidably inserted into the guide slot (750) and is restricted to sliding in the tensile direction. The automatic rotation mechanism according to feature 10.

12. The automatic rotation mechanism according to claim 1 or 2, The first object (400) includes a protective block body (420), A side-impact protection device characterized by the following features.

13. A child seat (1) comprising a base (500), a rotating seat (700), a seat (600), and a side impact protection device as described in claim 12, The rotating seat (700) is rotatably positioned above the base (500). The aforementioned sheet (600) is positioned above the rotating sheet (700), The side impact protection device has a side impact protection block (400) as the first object (400), the side impact protection block (400) is positioned on one or both sides of the sheet (600), The second object (600) is the sheet (600), the third object (700) is the rotating sheet (700), and the fourth object (500) is the base (500). A child car seat characterized by the following features.

14. The sheet (600) is fixed to the rotating sheet (700), or is slidable or swingable back and forth relative to the rotating sheet (700). The child car seat according to claim 13.

Citation Information

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