Baby walker
By designing a rotatable seat and locking mechanism, the problem of lack of fun and safety in baby walking products has been solved. This design achieves multi-directional correspondence and stability between the seat and the toy unit, enhancing the fun and safety of the baby walker.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2026-04-14
AI Technical Summary
Existing toddler products lack fun; the fixed seat and upper plate mean that toy music boxes can only be placed on one side, and they do not have features to prevent children from falling down stairs or to fold up.
The seat is designed to rotate 360 degrees, and through the cooperation of the first locking component and the segment locking part, the seat can selectively correspond to any toy unit, increasing the fun; at the same time, a locking mechanism and anti-slip block are set to ensure the stability and safety of the seat.
It achieves multi-directional correspondence between the seat and the toy unit, increasing the fun of the walker, and improves the stability and safety of the seat through locking mechanism and anti-slip block to prevent falls.
Smart Images

Figure CN224112389U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a children's product, and more particularly to a baby walker. Background Technology
[0002] With the continuous development of the economy and the continuous progress of society, all kinds of material consumer goods are provided for people's lives, and toddler products are one of them.
[0003] As we all know, toddler learning products are transportation tools for children before they can walk. They generally consist of a chassis, an upper plate with a seat, a toy music box, and a support structure connecting the chassis and the upper plate. Because the seat on the upper plate is fixed to it, the toy music box can only be placed on one side of the upper plate, which makes existing toddler learning products lack fun.
[0004] In addition, existing toddler products do not have features to prevent children from falling down stairs or folding functions.
[0005] Therefore, there is an urgent need for a baby walker to overcome one or more of the aforementioned drawbacks. Utility Model Content
[0006] The purpose of this invention is to provide a baby walker in which the seat can rotate 360 degrees, thereby allowing the seat to selectively correspond to any toy unit, thus increasing the fun of the baby walker; in addition, the cooperation of the first locking member and the segment locking part ensures that the seat remains stable after rotation and adjustment.
[0007] To achieve the above objectives, the present invention provides a baby walker comprising a seat and a hollow baby walker body. The hollow structure forms a cavity with an upper opening and a lower opening. The seat is placed within the cavity and assembled and connected to the top of the baby walker body. The seat is also rotatable. The top of the baby walker body is provided with multiple toy units arranged spaced apart from the seat in the direction of rotation. One of the top of the baby walker body and the seat is provided with a first locking member. The other of the top of the baby walker body and the seat is provided with multiple segmented locking parts arranged spaced apart in the direction of rotation of the seat. The first locking member can selectively lock or unlock with any one of the segmented locking parts.
[0008] Compared with the prior art, the rotatable arrangement of the seat, combined with multiple toy units arranged around the seat in the direction of rotation on the top of the walker body, allows the seat to be rotated to a position corresponding to any toy unit (i.e., the position where the child sitting on the seat faces the toy unit), thereby increasing the fun of the walker of this invention; at the same time, with the cooperation of the first locking member and the segment locking part, the seat is locked by the first locking member when it is rotated to the point where the first locking member is aligned with any segment locking part, ensuring the stability of the seat relative to the walker body after adjustment.
[0009] Preferably, the top of the walker body is provided with a circular guide rail located in the cavity, and the seat is slidably fitted on the circular guide rail; the segment locking part is located on the circular guide rail, and the first locking member is located on the seat.
[0010] Preferably, the seat has an annular groove extending through the bottom surface of the seat, and the seat slides onto the annular guide rail via the annular groove. The seat also has a downwardly protruding structure located next to the inner side of the annular groove. The downwardly protruding structures are multiple structures arranged at intervals in the rotation direction of the seat. At least one of the downwardly protruding structures has a hook structure that engages with the bottom surface of the annular guide rail to prevent the seat from being removed upwards.
[0011] Preferably, the seat has an upper gear position hole and a lower gear position hole located below the upper gear position hole; the first locking member includes a frame body, an elastic buckle, a plug protruding downward from the frame body, an operating cavity for the operator to insert into and pull the frame body upward, and a through cavity located above the plug, the through cavity communicating upward with the operating cavity, the operating cavity protruding upward from the side of the seat; the elastic buckle is suspended in the through cavity, and the upper end of the elastic buckle is connected to the frame body; the locking part of the gear position is a groove that penetrates upward through the circular guide rail; the plug is inserted downward into the groove when the elastic buckle is engaged with the lower gear position hole, and the plug is pulled upward out of the groove when the elastic buckle is engaged with the upper gear position hole.
[0012] Preferably, the bottom of the walker body is provided with a plurality of rollers arranged around the lower cavity for the walker body to stand on, a locking mechanism for locking the rollers, a release button for releasing the locking mechanism, and a stop block located next to the rollers and protruding downward from the bottom surface of the walker body, the stop block being offset upward relative to the rollers.
[0013] Preferably, each of the rollers has a corresponding stop block on each of its two opposite sides, and each roller has a corresponding locking mechanism and a release button.
[0014] Preferably, the walker body includes an upper ring, a lower ring located below the upper ring, and a plurality of support frames arranged in a ring shape between the upper and lower rings and spaced apart from each other. The lower end of the support frame is hinged to the lower ring, and the upper end of the support frame is hinged to the upper ring, so that when the upper ring rotates in one direction along the seat, it causes the support frame to lie down or stand up relative to the lower ring. The upper cavity and the toy unit are located in the upper ring, the lower cavity is located in the lower ring, and the upper ring, the lower ring, and the support frames together define the cavity.
[0015] Preferably, the upper end of the support frame is hinged to the upper ring body via an upper hinge seat, and the upper hinge seat is fixedly connected to the upper ring body. The lower end of the support frame is hinged to the lower ring body via a lower hinge seat, and the lower hinge seat is fixedly connected to the lower ring body.
[0016] Preferably, the walker body further includes a second locking member for locking the upper end of the support frame to the upper hinge seat and a safety locking member for locking the second locking member. The second locking member is slidably mounted on the upper ring body, and the safety locking member is slidably disposed on the second locking member along the circumference of the upper ring body. When the safety locking member releases the second locking member, the second locking member can slide upward.
[0017] Preferably, the second locking member has an arc-shaped wrapping structure. 。 Attached Figure Description
[0018] Figure 1 This is a three-dimensional view of the baby walker of this utility model.
[0019] Figure 2 yes Figure 1 The diagram shown is an exploded 3D view of the baby walker when the seat is moved upwards away from the walker body.
[0020] Figure 3 yes Figure 2 Floor plan with the seats hidden and viewed from above.
[0021] Figure 4 yes Figure 1 A three-dimensional view taken from another angle.
[0022] Figure 5 This is a perspective view of the seat and the first locking component assembled together in the walker of this utility model.
[0023] Figure 6 yes Figure 5 3D exploded view.
[0024] Figure 7 yes Figure 5 A three-dimensional view taken from another angle.
[0025] Figure 8 This is a perspective view of the second locking component and the safety locking component assembled together in the walker of this utility model.
[0026] Figure 9 yes Figure 8 A stereoscopic view from another angle. Detailed Implementation
[0027] To explain the technical content and structural features of this utility model in detail, the following description is provided in conjunction with the embodiments and accompanying drawings.
[0028] Please see Figure 1 Figure 2 , Figure 3 , Figure 5 and Figure 6 The walker 100 of this utility model includes a seat 10 and a hollow walker body 20. The hollow structure forms a cavity 21 with an upper cavity 211 and a lower cavity 212. The seat 10 is placed in the cavity 21 to allow the child sitting on the seat 10 to extend their feet from the lower cavity 212 and contact the ground (floor). The seat 10 is also assembled and connected to the top of the walker body 20 (as indicated by reference numeral 20a) to provide support for the seat 10 from the walker body 20. In addition, the seat 10 is rotatably arranged to allow it to rotate relative to the walker body 20.
[0029] Meanwhile, the top of the walker body 20 is provided with three toy units 30 arranged around the seat 10 in the direction of rotation of the seat 10 (see the direction indicated by arrow A and the opposite direction), to meet the need for the toy units 30 to be arranged in multiple directions on the walker body 20; obviously, depending on actual needs, the number of toy units 30 can also be two, four or more, so it is not limited to Figures 1 to 3 As shown, this is the limit. Alternatively, it can be... Figure 3 As an example, the toy units 30 are arranged on the walker body 20 at equal central angles. That is, when there are three toy units 30, the central angle between two adjacent toy units 30 is 120 degrees; when there are two toy units 30, the central angle between two adjacent toy units 30 is 180 degrees; when there are four toy units 30, the central angle between two adjacent toy units 30 is 90 degrees, and so on.
[0030] Furthermore, the top of the walker body 20 is provided with three segment locking parts 22 arranged spaced apart in the rotation direction of the seat 10. The seat 10 is provided with a first locking member 40, which can selectively lock or unlock with any one of the segment locking parts 22, thereby satisfying the need for the seat 10 to be able to rotate relative to the walker body 20. It should be noted that although the attached drawings show the seat 10 with the first locking member 40 and the walker body 20 with the segment locking parts 22, obviously, depending on actual needs, the seat 10 can also have the segment locking parts 22 and the walker body 20 can also have the first locking member 40, so it is not limited to what is shown in the attached drawings; also, although the attached drawings show that the number of toy units 30 and segment locking parts 22 are the same, obviously, depending on actual needs, the number of segment locking parts 22 can also be greater than the number of toy units 30, so it is not limited to what is shown in the attached drawings. More specifically, as follows:
[0031] Combination Figure 2 and Figure 3 As an example, the top of the walker body 20 is provided with a circular guide rail 23 located in the cavity 21, and the segment locking part 22 is located on the circular guide rail 23; the seat 10 is slidably fitted on the circular guide rail 23, and the first locking member 40 is located on the seat 10; on the one hand, this can improve the smoothness and stability of the seat 10 rotating relative to the walker body 20, and on the other hand, the first locking member 40 can be unlocked with one hand, and the seat 10 can rotate relative to the walker body 20 after unlocking. Specifically, combined with Figure 7 As an example, the seat 10 has an annular groove 12 that penetrates the bottom surface 11 of the seat 10. The seat 10 slides on the annular guide rail 23 via the annular groove 12. The seat 10 also has a downwardly protruding structure 13 located next to the inner side of the annular groove 12. There are three downwardly protruding structures 13 arranged at intervals in the rotation direction of the seat 10. Obviously, depending on actual needs, the number of downwardly protruding structures 13 can also be one, two, four or more, so it is not limited to one. Figure 7 As shown, each of the protruding structures 13 is provided with a hook structure 14 that engages with the bottom surface 231 of the circular guide rail 23 to prevent the seat 10 from being removed upwards; this design makes the seat 10 detachable relative to the walker body 20, thereby facilitating the installation and removal of the seat 10 relative to the walker body 20.
[0032] like Figure 5 and Figure 6As shown, as an example, the seat 10 has an upper gear position hole 15 and a lower gear position hole 16 located below the upper gear position hole 15. The first locking member 40 includes a frame body 41, an elastic buckle 42, a plug 43 protruding downward from the frame body 41, an operating cavity 44 for the operator to insert into and lift the frame body 41 upward, and a through cavity 45 located above the plug 43. The through cavity 45 communicates upward with the operating cavity 44, which protrudes upward from the side of the seat 10 to facilitate the operator's access to and from the side of the seat 10. The elastic buckle 42 is suspended in the through cavity 45, and the upper end 421 of the elastic buckle 42 is connected to the frame body 41 to meet the requirement that the elastic buckle 42 can elastically deform relative to the frame body 41. At this time, the locking part 22 is a groove that passes upward through the circular guide rail 23. Therefore, when the elastic buckle 42 is engaged with the lower gear hole 16, the plug 43 is inserted downward into the groove, locking the seat 10 and the walker body 20, thus preventing the seat 10 from rotating relative to the walker body 20. When the elastic buckle 42 is engaged with the upper gear hole 15, the plug 43 is pulled upward out of the groove, releasing the seat 10 and the walker body 20, thus allowing the seat 10 to rotate relative to the walker body 20. Since the engagement of the elastic buckle 42 with the upper gear hole 15 or the lower gear hole 16 is achieved by the elastic force of the elastic buckle 42 itself, during the disengagement process of the elastic buckle 42 with the upper gear hole 15 or the lower gear hole 16, it is only necessary to make the elastic buckle 42 elastically deform away from the upper gear hole 15 or the lower gear hole 16, thus simplifying the structure of the first locking member 40 adjusting up and down relative to the seat 10.
[0033] Combination Figures 1 to 4 As an example, the walker body 20 includes an upper ring 20a, a lower ring 20b located below the upper ring 20a, and three support frames 20c arranged in a ring shape between the upper ring 20a and the lower ring 20b and spaced apart from each other. The lower end of the support frame 20c is hinged to the lower ring 20b, and the upper end of the support frame 20c is hinged to the upper ring 20a, so that when the upper ring 20a rotates in one direction along the seat 10, it causes the support frame 20c to lie downward relative to the lower ring 20b. The upper ring 20a can be rotated downwards or upwards. For example, when the upper ring 20a rotates in the direction indicated by arrow A, it will cause the support frame 20c to lie down relative to the lower ring 20b, so that the upper ring 20a and the lower ring 20b are stacked together. Conversely, when the upper ring 20a, which is stacked with the lower ring 20b, rotates in the opposite direction indicated by arrow A, it will cause the support frame 20c to stand up relative to the lower ring 20b, so that the upper ring 20a and the lower ring 20b are opened. Therefore, the walker body 20 has a folding function.
[0034] When the walker body 20 includes an upper ring 20a, a lower ring 20b, and a support frame 20c, the upper cavity opening 211 and the toy unit 30 are located in the upper ring 20a, and the lower cavity opening 212 is located in the lower ring 20b. The upper ring 20a, lower ring 20b, and support frame 20c together define the cavity 21. The upper ring 20a forms the top of the walker body 20, and the lower ring 20b forms the bottom of the walker body 20. That is to say, the top of the walker body 20 is the upper ring 20a, and the bottom of the walker body 20 is the lower ring 20b. Specifically, in conjunction with... Figure 1 , Figure 2 and Figure 4 As an example, the upper end of the support frame 20c is hinged to the upper ring body 20a via the upper hinge seat 20d, and the upper hinge seat 20d is fixedly connected to the upper ring body 20a. The lower end of the support frame 20c is hinged to the lower ring body 20b via the lower hinge seat 20e, and the lower hinge seat 20e is fixedly connected to the lower ring body 20b. Therefore, by using the upper hinge seat 20d and the lower hinge seat 20e, the reliability of the support frame 20c being hinged to the upper ring body 20a and the lower ring body 20b respectively is improved.
[0035] Combination Figure 4 , Figure 8 and Figure 9 As an example, the walker body 20 also includes a second locking member 20f for locking the upper end of the support frame 20c to the upper hinge seat 20d, and a safety locking member 20g for locking the second locking member 20f. The second locking member 20f is slidably mounted on the upper ring body 20a, and the safety locking member 20g slides circumferentially on the second locking member 20f along the upper ring body 20a. The second locking member 20f can slide upward when the safety locking member 20g releases the second locking member 20f. This design prevents the walker body 20 from folding due to accidental contact with the second locking member 20f by a child; therefore, the folding function of the walker body 20 has a safety lock function. Specifically, in Figure 8 and Figure 9 As an example, the second locking member 20f has an arc-shaped encircling structure 25 to better hold and lock the upper end of the support frame 20c and the upper hinge seat 20d, thereby improving the reliability of the lock. More specifically, as an example, when the safety locking member 20g slides to the position of releasing the second locking member 20f, the safety locking member 20g is no longer blocked by the upper ring body 20a, thus allowing the safety locking member 20g to slide upward together with the second locking member 20f; however, when the safety locking member 20g slides to the position of locking the second locking member 20f, it is blocked by the upper ring body 20a, thus preventing the second locking member 20f and the safety locking member 20g from sliding upward together.
[0036] Combination Figures 1 to 4The bottom of the walker body 20 is provided with four rollers 50 arranged around the lower cavity 212 for the walker body 20 to stand on, a locking mechanism 60 for locking the rollers 50, a release button 70 for releasing the locking mechanism 60, and a stop block 80 located next to the rollers 50 and protruding downward from the bottom surface 24 of the walker body 20. The stop block 80 is offset upward relative to the rollers 50; therefore, the stop block 80 can prevent children from falling down stairs during sliding, improving safety. With the cooperation of the release button 70 and the locking mechanism 60, the walker 100 of this utility model becomes a fixed center of movement after locking, and restores its walking function after unlocking, making it more flexible to use. Specifically, in Figure 4 As an example, each roller 50 has a corresponding stop block 80 on each of its opposite sides. Each roller 50 has a corresponding locking mechanism 60 and a release button 70, so as to realize the need for each roller 50 to be locked by the corresponding locking mechanism 60 and released by the corresponding release button 70. It should be noted that since the specific structure of the locking mechanism 60 and the release button 70 is well known in the art, it will not be described in detail here. It should also be noted that although the attached drawing shows four rollers 50, obviously, depending on actual needs, there can be three, five or more, so it is not limited to what is shown in the attached drawing.
[0037] Compared with the prior art, the rotatable arrangement of the seat 10, combined with the multiple toy units 30 arranged around the seat 10 in the rotation direction of the seat 10 on the top of the walker body 20, allows the seat 10 to be rotated to a position corresponding to any toy unit 30 (i.e., the position where the child sitting on the seat 10 faces the toy unit 30), thereby increasing the fun of the walker 100 of this utility model; at the same time, with the cooperation of the first locking member 40 and the segment locking part 22, the seat 10 is locked by the first locking member 40 when it is rotated to the point where the first locking member 40 is aligned with any segment locking part 44, ensuring the stability of the seat 10 relative to the walker body 20 after adjustment.
[0038] The above-disclosed examples are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Therefore, any equivalent variations made in accordance with the claims of the present utility model shall still fall within the scope of the present utility model.
Claims
1. A baby walker, comprising a seat and a hollow structure baby walker body, the hollow structure forming a cavity with an upper opening and a lower opening, the seat being placed in the cavity and assembled and connected to the top of the baby walker body, characterized in that, The seat is also rotatable. The top of the walker body is provided with a plurality of toy units arranged around the seat in the direction of rotation of the seat. One of the top of the walker body and the seat is provided with a first locking member. The other of the top of the walker body and the seat is provided with a plurality of segment locking parts arranged in the direction of rotation of the seat. The first locking member can selectively lock or unlock with any of the segment locking parts.
2. The baby walker according to claim 1, characterized in that, The top of the walker body is provided with a circular guide rail located in the cavity, and the seat slides on the circular guide rail; the segment locking part is located on the circular guide rail, and the first locking member is located on the seat.
3. The baby walker according to claim 2, characterized in that, The seat has a circular groove that penetrates the bottom surface of the seat. The seat slides onto the circular guide rail via the circular groove. The seat also has a downward protruding structure located next to the inner side of the circular groove. There are multiple downward protruding structures arranged at intervals in the rotation direction of the seat. At least one of the downward protruding structures has a hook structure that limits and cooperates with the bottom surface of the circular guide rail to prevent the seat from being removed upward.
4. The baby walker according to claim 3, characterized in that, The seat has an upper gear position hole and a lower gear position hole located below the upper gear position hole; the first locking member includes a frame body, an elastic buckle, a plug protruding downward from the frame body, an operating cavity for the operator to insert into and pull the frame body upward, and a through cavity located above the plug, the through cavity communicating upward with the operating cavity, the operating cavity protruding upward from the side of the seat; the elastic buckle is suspended in the through cavity, and the upper end of the elastic buckle is connected to the frame body; the locking part of the segment is a groove that penetrates upward through the circular guide rail; when the elastic buckle is engaged with the lower gear position hole, the plug is inserted downward into the groove, and when the elastic buckle is engaged with the upper gear position hole, the plug is pulled upward out of the groove.
5. The baby walker according to claim 1, characterized in that, The bottom of the walker body is provided with multiple rollers arranged around the lower cavity for the walker body to stand on, a locking mechanism for locking the rollers, a release button for releasing the locking mechanism, and a stop block located next to the rollers and protruding downward from the bottom surface of the walker body. The stop block is offset upward relative to the rollers.
6. The baby walker according to claim 5, characterized in that, Each of the rollers has a corresponding stop block on each of its two opposite sides, and each roller has a corresponding locking mechanism and a release button.
7. The baby walker according to claim 1, characterized in that, The walker body includes an upper ring, a lower ring located below the upper ring, and multiple support frames arranged in a ring shape between the upper and lower rings and spaced apart from each other. The lower end of each support frame is hinged to the lower ring, and the upper end of each support frame is hinged to the upper ring, so that when the upper ring rotates in one direction along the seat, it causes the support frames to lie down or stand up relative to the lower ring. The upper cavity and the toy unit are located in the upper ring, and the lower cavity is located in the lower ring. The upper ring, the lower ring, and the support frames together define the cavity.
8. The baby walker according to claim 7, characterized in that, The upper end of the support frame is hinged to the upper ring body via an upper hinge seat, and the upper hinge seat is fixedly connected to the upper ring body. The lower end of the support frame is hinged to the lower ring body via a lower hinge seat, and the lower hinge seat is fixedly connected to the lower ring body.
9. The baby walker according to claim 8, characterized in that, The walker body also includes a second locking member for locking the upper end of the support frame to the upper hinge seat and a safety locking member for locking the second locking member. The second locking member is slidably mounted on the upper ring body. The safety locking member is slidably mounted on the second locking member along the circumference of the upper ring body. When the safety locking member releases the second locking member, the second locking member can slide upward.
10. The baby walker according to claim 9, characterized in that, The second locking element has an arc-shaped wrapping structure.