Transforming toy
By introducing a base and drive components into transforming toys, and utilizing gear transmission and reset components, the problem of complex state switching in transforming toys is solved, achieving simple and quick transformation and stable storage, thus improving the user experience.
Patent Information
- Application Number
- CN202310742308.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-20
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2043-06-20
AI Technical Summary
Existing transformable toys have a complex state switching process, which reduces the user experience and has an unstable structure.
The design employs a base and drive assembly. The base provides support and fixation for the machine body, while the drive assembly enables simple and quick deformation of the machine body through transmission connection. This includes the cooperation between rotating parts and drive parts, and the use of gear transmission and reset parts ensures stability and smoothness.
It enables simple and quick transformation of transforming toys, improves structural stability, facilitates storage, and enhances the user experience.
Smart Images

Figure CN119158280B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of toys, in particular to a transformable toy. BACKGROUND
[0002] The transformable toy is a toy that can be transformed, which is usually composed of movable parts and can be combined together in various ways. In the related art, during the switching between different states, multiple components need to be folded or unfolded respectively, resulting in complex state switching of the transformable toy and reducing the user experience. SUMMARY
[0003] The present application aims to at least solve one of the technical problems in the related art. To this end, the present application aims to provide a transformable toy that is simple and fast to transform, facilitates storage of the transformable toy, and has a stable structure.
[0004] According to the transformable toy of the present application, the base provides support and fixation for the body, so that the transformable toy can have a stable state in different transformation states, improving the structural stability of the transformable toy. The driving assembly makes the transformation of the transformable toy simple and fast, facilitating the storage of the transformable toy.
[0005] According to the transformable toy of the present application, the base provides support and fixation for the body, so that the transformable toy can have a stable state in different transformation states, improving the structural stability of the transformable toy. The driving assembly makes the transformation of the transformable toy simple and fast, facilitating the storage of the transformable toy.
[0006] In addition, the transformable toy according to the above embodiments of the present application can also have the following additional technical features:
[0007] In some embodiments, the driving assembly includes a rotating member and a driving member, the rotating member is in driving connection with the body, and the driving member is in driving connection with the rotating member and is configured to drive the rotating member to switch the body from the unfolded state to the folded state.
[0008] In some embodiments, the driving member has a first position and a second position, the driving member is located at the first position when the body is in the unfolded state, the driving member is located at the second position when the body is in the folded state, and when the driving member moves from the first position to the second position, the rotating member can drive the body to switch from the unfolded state to the folded state.
[0009] In some embodiments, the body comprises a first deformation member, a second deformation member, and a first transmission assembly, the first deformation member is rotatably connected to the base and drivingly connected to the driving assembly, the second deformation member is rotatably connected to the first deformation member, and the first transmission assembly is connected to the base, the first deformation member and the second deformation member respectively, for the first deformation member and the second deformation member to be linked and folded synchronously.
[0010] In some embodiments, the body further comprises a first reset member connected to the base and the first deformation member respectively, and having an elastic force to drive the first deformation member to unfold, and / or a second reset member connected to the first deformation member and the second deformation member respectively, and having an elastic force to drive the second deformation member to unfold.
[0011] In some embodiments, the base has a first locking hook to releasably lock the body in the folded state, wherein the first deformation member and the second deformation member are folded on the base and locked by the first locking hook when the body is in the folded state.
[0012] In some embodiments, the first transmission assembly comprises a first transmission structure and a second transmission structure, the first transmission structure is telescopically arranged on the first deformation member, and one end of the first transmission structure is slidingly connected to the base, the first deformation member is adapted to drive the first transmission structure to extend or retract when the first deformation member rotates, and the second transmission structure is rotatably arranged on the first deformation member and drivingly connected to the first transmission structure and the second deformation member respectively.
[0013] In some embodiments, the first transmission assembly further comprises a third transmission structure rotatably arranged on the first deformation member, the third transmission structure comprises a first gear and a second gear coaxially and fixedly connected, wherein the first transmission structure has a first rack thereon, the second transmission structure has a third gear thereon, the first rack is engaged with the first gear, the third gear is engaged with the second gear, and the number of teeth of the third gear is less than the number of teeth of the second gear.
[0014] In some embodiments, the base is provided with a sliding groove, and the end of the first transmission structure is slidingly matched with the sliding groove, the sliding groove extends from one end to the other end around the rotation center of the second transmission structure, and gradually moves away from the rotation center of the second transmission structure.
[0015] In some embodiments, the fuselage further comprises a third transforming member rotatably connected to the second transforming member, and a second transmission assembly connected to the second transforming member and the third transforming member respectively, for linkage of the third transforming member and the second transforming member to fold synchronously.
[0016] In some embodiments, the fuselage further comprises a third resetting member connected to the second transforming member and the third transforming member respectively, and having an elastic force to drive the third transforming member to fold.
[0017] In some embodiments, the second transmission assembly comprises a fourth transmission structure, a fifth transmission structure and a sixth transmission structure, the fourth transmission structure is fixed in position relative to the first transforming member, the fifth transmission structure is telescopically arranged on the second transforming member and transmissionally connected to the fourth transmission structure, and the sixth transmission structure is rotatably arranged on the second transforming member and transmissionally connected to the fifth transmission structure and the third transforming member respectively.
[0018] In some embodiments, the fourth transmission structure has a fourth gear thereon, the fifth transmission structure has a second rack at one end and a third rack at the other end, and the sixth transmission structure has a fifth gear thereon, wherein the fourth gear is engaged with the second rack, the third rack is engaged with the fifth gear, and the fifth gear is adapted to drive the third transforming member to unfold.
[0019] In some embodiments, the fuselage further comprises a fourth transforming member connected to the sixth transmission structure and fixed in position relative thereto.
[0020] In some embodiments, the first transforming member and the base have a first rotation axis therebetween, the second transforming member and the first transforming member have a second rotation axis therebetween, the third transforming member and the second transforming member have a third rotation axis therebetween, the first rotation axis is parallel to the second rotation axis, and the second rotation axis is perpendicular to the third rotation axis; and / or, in the folded state, the first transforming member is folded on the base, and the second transforming member is folded with the first transforming member; and / or, in the folded state, the third transforming member is folded with the second transforming member; and / or, in the unfolded state, the first transforming member extends in an up-down direction with a lower end connected to the base, the second transforming member extends in the up-down direction with a lower end connected to an upper end of the first transforming member; and / or, in the unfolded state, the third transforming member extends in the up-down direction with an upper end connected to an upper end of the second transforming member, and a lower end spaced apart from the second transforming member in a left-right direction. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 is a schematic view of a transformable toy of an embodiment of the present invention, wherein the transformable toy is in an unfolded state.
[0022] Figure 2 is a schematic view of a transformable toy of an embodiment of the present invention, wherein the transformable toy is in a folded state.
[0023] Figure 3 is a schematic view of a transformable toy of another embodiment of the present invention, wherein the transformable toy is in an unfolded state.
[0024] Figure 4 is a schematic view of a transformable toy of another embodiment of the present invention, wherein the transformable toy is in a folded state.
[0025] Figure 5 is a schematic view of a transformable toy of an embodiment of the present invention.
[0026] Figure 6 is a schematic view of a transformable toy of an embodiment of the present invention.
[0027] Figure 7 is a schematic view of a transformable toy of an embodiment of the present invention, wherein the fuselage is hidden.
[0028] Figure 8 is an exploded schematic view of a transformable toy of an embodiment of the present invention, wherein the fuselage is hidden.
[0029] Figure 9 is a schematic view of a transformable toy of an embodiment of the present invention, wherein the fuselage is hidden.
[0030] Figure 10 is a schematic view of a transformable toy of an embodiment of the present invention.
[0031] Figure 11 is a schematic view of a transformable toy of an embodiment of the present invention.
[0032] Figure 12 is a schematic view of a transformable toy of an embodiment of the present invention.
[0033] Figure 13 is a schematic view of a transformable toy of an embodiment of the present invention.
[0034] Figure 14 is a schematic view of a transformable toy of an embodiment of the present invention.
[0035] Figure 15 is Figure 14 is a zoomed-in schematic view of circle A.
[0036] Figure 16 is a schematic view of a transformable toy of an embodiment of the present invention.
[0037] Figure 17 is Figure 16 is an enlarged schematic view at circle B.
[0038] Figure 18 is a schematic view of a transformational toy according to an embodiment of the present invention.
[0039] Figure 19 is a schematic view of a transformational toy according to an embodiment of the present invention, wherein the body is hidden.
[0040] Reference Signs:
[0041] transformational toy 1000, body 100, base 10, first hook 111, slide 12, second hook 112, roller 171, cam 172, transmission mechanism 173, first transmission member 18, fourth rack 13, first actuating tooth 131, fourth return member 141, fifth return member 142, magnetic attraction structure 15, seventh transmission structure 16, first transmission part 161, second transmission part 162, body 20, first transformation member 211, second transformation member 212, third transformation member 213, fourth transformation member 214, first transmission assembly 22, first transmission structure 221, first rack 2211, second transmission structure 222, third gear 2222, third transmission structure 223, first gear 2231, second gear 2232, second transmission assembly 23, fourth transmission structure 231, fourth gear 2311, fifth transmission structure 232, second rack 2321, third rack 2322, sixth transmission structure 233, fifth gear 2331, first connecting rod mechanism 2332, first return member 241, second return member 242, third return member 243, driving assembly 30, rotating member 31, driving member 32, second actuating tooth 331, rotating part 50, slide 51, unlocking member 500. DETAILED DESCRIPTION
[0042] Embodiments of the present invention are described in detail below with reference to the attached drawing figures, wherein the same or like reference numerals and letters indicate the same or functionally similar elements throughout the figures. The embodiments described below are exemplary in nature, and are intended to be illustrative of the present invention rather than to limit the present invention.
[0043] In connection with Figures 1 to 4According to the embodiment of the present application, the transformable toy 1000 comprises a base 10 and a body 20 connected with the base 10 and having an unfolded state and a folded state, in other words, the body 20 is deformable and can be unfolded or folded on the base 10. By arranging the base 10, the body 20 can be supported and fixed, so that the transformable toy 1000 can have a stable state in different transformable states, and the structural stability of the transformable toy 1000 is improved. A driving assembly 30 is arranged on the base 10 and in transmission connection with the body 20. The driving assembly 30 is suitable for driving the body 20 to switch from the unfolded state to the folded state, so that the transformation of the transformable toy 1000 is simple and fast, and the transformable toy 1000 is convenient to store. The driving assembly 30 is arranged on the base 10, and the base 10 is a relatively fixed component, so that the structural stability of the driving assembly 30 is improved, and the operation is convenient.
[0044] It can be understood that the transformable toy 1000 usually needs to be placed on a relatively flat plane, and the toy can stand stably. By arranging the base 10, the transformable toy 1000 is not easy to fall in different states, and can adapt to different playing environments, and the playing experience of the user is improved.
[0045] According to the embodiment of the present application, the base 10 can improve the structural stability of the transformable toy 1000, and the driving assembly 30 can realize the switching of the body 20 from the unfolded state to the folded state, so that the transformation of the transformable toy 1000 is simple and fast, and the transformable toy 1000 is convenient to store.
[0046] The body 20 is connected with the base 10, and the body 20 has an unfolded state and a folded state. The body 20 can comprise a plurality of transformable members, and the number of the transformable members can be two, three, four, etc. The number can be adjusted according to the shape of the toy. For example, the shape of the transformable toy 1000 can be a robot, an animal, a vehicle, etc. The unfolded state can be a robot, an animal, etc. The folded state can be a toy car. In the folded state, the toy can be transformed, so that the toy has multiple playing methods, and the toy is convenient to store and carry. Of course, the above-mentioned states of the transformable toy 1000 are only illustrative and not a limitation on the protection scope of the present application.
[0047] The driving assembly 30 is connected with the base 10. The driving assembly 30 can be provided in different forms and can be located at different positions of the base 10. For example, the driving assembly 30 can be provided in the form of a pop-up plate. The pop-up plate is turned to drive the body 20 to switch from the unfolded state to the folded state. Alternatively, a rotating part or a clockwork spring can be provided. The rotating part or the clockwork spring is rotated to drive the body 20 to switch from the unfolded state to the folded state. The transformation and storage of the transformable toy 1000 can be realized, and the storage of the transformable toy 1000 is more convenient. The driving assembly 30 can be provided at the bottom of the base 10, at the left and right sides of the base 10, or above the base 10. The specific arrangement can be adjusted according to the form of the transformable toy 1000. The structure of the driving assembly 30 described above is only illustrative and does not limit the protection scope of the present application. The driving assembly 30 can also be provided in other forms.
[0048] With reference to Figure 5 and Figure 10 In some embodiments of the present application, the driving assembly 30 can include a rotating part 31 and a driving part 32. The rotating part 31 is in transmission connection with the body 20. The driving part 32 is in transmission connection with the rotating part 31 and is configured to drive the rotating part 31 to fold the body 20. Specifically, the rotating part 31 can be driven to move by rotating the driving part 32, thereby folding the body 20. By providing the driving part 32, the user can easily apply a transformation force to the transformable toy 1000, and the transformable toy 1000 can be easily folded.
[0049] The driving part 32 and the rotating part 31 can be in gear transmission or rack transmission, which has high transmission efficiency and good stability. The rotating part 31 and the body 20 can be connected by a key, a pin, or a thread, so that the driving assembly 30 can stably drive the body 20 to rotate. Preferably, the rotating part 31 and the body 20 are connected by a key. In this way, the connection between the rotating part 31 and the body 20 is firm, the stability and reliability of the connection are improved, and the rotating part 31 can withstand a large force and torque, thereby stably driving the body 20 to fold.
[0050] Further, the driving part 32 can have a first position and a second position. When the body 20 is in the unfolded state, the driving part 32 can be located at the first position. When the body 20 is in the folded state, the driving part 32 can be located at the second position. When the driving part 32 moves from the first position to the second position, the driving part 32 can drive the rotating part 31 to fold the body 20. By moving the driving part 32, the folding of the body 20 is convenient and fast, thereby facilitating the storage of the transformable toy 1000.
[0051] The driving assembly 30 can be arranged in different forms, and the driving member 32 can have different angles in the first position and the second position. The different forms of the driving assembly 30 in some embodiments of the present application are described below with reference to the accompanying drawings.
[0052] Embodiment 1
[0053] With reference to Figure 5 The driving assembly 30 includes a rotating member 31 and a driving member 32. The driving member 32 can be a flap. The rotating member 31 is rotatably arranged on the base 10 and is in driving connection with the body 20. The driving member 32 is rotatably connected with the base 10 and is configured to drive the rotating member 31 to fold the body 20. The driving member 32 is in driving connection with the rotating member 31 when moving from the first position to the second position, and drives the rotating member 31 to fold the body 20.
[0054] With reference to Figure 5 and Figure 6 Alternatively, the driving member 32 can be stacked on the bottom surface of the base 10 in the first position and the second position, and the driving member 32 can be reversibly arranged under the base 10 in the front-rear direction. When the body 20 is in the unfolded state, the driving member 32 is in the first position, and at this time, the driving member 32 can be stacked on the front position of the bottom surface of the base 10. When the driving member 32 is flipped to the rear position of the bottom surface of the base 10, the body 20 is folded. In other words, the driving member 32 is rotated by 180° in the first position relative to the second position, so that the driving member 32 is stacked on the bottom surface of the base 10 in the first position and the second position, so that the structure of the deformation toy 1000 is compact, and the base 10 is a relatively fixed structure, which can improve the structural stability of the driving member 32.
[0055] With reference to Figure 7 , Figure 8 and Figure 9 Alternatively, a fourth rack 13 can be arranged on the base 10. The fourth rack 13 is movably arranged on the base 10 and is in driving connection with the rotating member 31. The fourth rack 13 can be provided with a first driving tooth 131, and the driving member 32 can be provided with a second driving tooth 331. When the driving member 32 moves from the first position to the second position, the first driving tooth 131 and the second driving tooth 331 are in driving connection to drive the body 20 to fold. For example, when the body 20 needs to be folded, the driving member 32 can be flipped backward. During the flipping process, the first driving tooth 131 and the second driving tooth 331 are in driving connection to drive the fourth rack 13 to move forward. The fourth rack 13 drives the rotating member 31 to rotate, and the rotating member 31 drives the body 20 to rotate, thereby achieving the folding of the body 20. By arranging the fourth rack 13 between the driving member 32 and the rotating member 31 and through the gear driving mode, the reliability of the driving structure can be improved.
[0056] With reference to Figures 6 to 9Optionally, the base 10 can be provided with a fourth reset member 141, which is connected with the driving member 32 and has an elastic force to push the driving member 32 to move to the first position. Specifically, when the transformation toy 1000 is switched from the folded state to the transformed state, the driving member 32 is rotated from the second position to the first position, and by providing the fourth reset member 141, the driving member 32 can be conveniently pushed to move to the first position, and the driving member 32 can be driven to be stably maintained in the first position, thereby improving the structural stability of the driving member 32. When an external force greater than the elastic force is applied to the driving member 32, the driving member 32 can be flipped to move to the second position, thereby driving the folding of the body 20. In this way, the switching between the unfolded and folded states of the body 20 is more smooth. The base 10 can further include a second locking hook 112, which can have a locking position and an unlocking position to releasably lock the driving member 32 in the second position. When the driving member 32 moves from the first position to the second position to drive the body 20 to the folded state, the driving member 32 can be engaged with the second locking hook 112, and the second locking hook 112 is in the locking position to stably maintain the driving member 32 in the second position. When the second locking hook 112 is in the unlocking position, the driving member 32 can be released, and under the action of the fourth reset member 141, the driving member 32 is pushed to move to the first position and can be stably maintained in the first position. The fourth reset member 141 can be a spring.
[0057] Optionally, the base 10 can further include a seventh transmission structure 16 and a fifth reset member 142. The seventh transmission structure 16 can be moved to drive the second locking hook 112 to the unlocking position, and the fifth reset member 142 is connected with the seventh transmission structure 16 and is suitable for elastically driving the second locking hook 112 to the locking position. Specifically, when the driving member 32 is locked by the second locking hook 112 in the second position, the seventh transmission structure 16 can be moved backward, thereby driving the second locking hook 112 to move backward and releasing the locking of the driving member 32. Under the action of the fourth reset member 141, the driving member 32 is pushed to move to the first position. After the locking of the driving member 32 is released, the seventh transmission structure 16 is restored to the original position under the action of the fifth reset member 142, and simultaneously drives the second locking hook 112 to the locking position to prepare for the next locking of the driving member 32 by the second locking hook 112. The fifth reset member 142 can be a spring.
[0058] Embodiment 2
[0059] Reference Figure 10The driving assembly 30 comprises a rotating member 31 and a driving member 32. The rotating member 31 can be a rotating part. The driving member 32 is rotatably arranged on the base 10 and is configured to be suitable for manual driving or external driving module. The body 20 is in driving connection with the driving member 32 and is suitable for being driven to fold by the driving member 32. In other words, the body 20 can be directly driven to fold by rotating the driving member 32. Alternatively, the body 20 can be driven to fold by connecting a driving module on the driving member 32. By arranging the driving member 32 to drive the body 20 to fold, the user can operate conveniently and fold the body 20 conveniently and quickly.
[0060] The driving member 32 has a first position and a second position. When the body is in the unfolded state, the driving member 32 is located at the first position. When the body is in the folded state, the driving member 32 is located at the second position. For example, the driving member 32 can be rotated 90° around the rotation center of the driving member 32 in the first position relative to the second position.
[0061] Optionally, the rotating member 31 can be in key connection with the body 20. The rotating member 31 can be driven to rotate synchronously to drive the body 20 to fold. Specifically, the driving member 32 drives the rotating member 31 to rotate, and the rotating member 31 drives the body 20 to fold. By arranging the rotating member 31, the reliability and stability of the transmission structure of the transformable toy 1000 are improved.
[0062] Referring to Figure 10 Optionally, the driving member 32 and the rotating member 31 can have a gear transmission structure. The gear transmission structure improves the smoothness of the transformable toy 1000 when switching from the unfolded state to the folded state. The gear transmission structure has high transmission efficiency and good stability. Thus, the driving member 32 can stably drive the transformable toy 1000 to fold, and the user experience is improved. For example, the driving member 32 and the rotating member 31 can have a first transmission member 18. The first transmission member 18 can be in key connection with the driving member 32. The first transmission member 18 and the rotating member 31 are in gear transmission. When the driving member 32 is rotated, the first transmission member 18 can be driven to rotate. The first transmission member 18 drives the rotating member 31 to rotate, and thus drives the body 20 to fold. By arranging the gear transmission structure, the smoothness of the body 20 when switching from the unfolded state to the folded state is improved. The gear transmission has high transmission efficiency and good stability. Thus, the rotating part can stably drive the transformable toy 1000 to fold, and the reliability of the transformable toy 1000 is improved.
[0063] Referring to Figure 10Optionally, the driving member 32 can include two arranged on the left and right sides of the base 10, and the two driving members 32 are in transmission connection with the same rotating member 31. When it is needed to fold the body 20, the folding of the body 20 can be realized by rotating any one of the driving members 32. Meanwhile, a driving handle can be externally connected to the driving member 32, the driving handle can be connected to the two driving members 32 at the same time, and when the driving handle is rotated, the two driving members 32 are synchronously rotated, and the body 20 is driven to fold, so that the folding of the body 20 is convenient and fast, and the labor is saved.
[0064] Optionally, the driving member 32 can include a sliding block 51, which is configured in a long strip shape extending in a direction perpendicular to the rotation center axis of the driving member 32. The sliding block 51 facilitates the hand holding of the driving member 32 for operation, and can also facilitate the external connection of a driving module through the sliding block 51, and the adaptability of the driving member 32 is improved.
[0065] Optionally, the rotation center of the driving member 32 passes through the center of the sliding block 51, and the stability during the rotation of the driving member 32 is improved.
[0066] Referring to Figure 11 and Figure 12 In some embodiments of the present application, the body 20 can include a first deformation member 211, a second deformation member 212 and a first transmission assembly 22. The first deformation member 211 is rotatably connected to the base 10 and in transmission connection with the rotating member 31. The second deformation member 212 is rotatably connected to the first deformation member 211. The first transmission assembly 22 is connected to the base 10, the first deformation member 211 and the second deformation member 212 respectively, and is used for the linkage of the first deformation member 211 and the second deformation member 212 to be synchronously folded. In other words, the first deformation member 211 and the second deformation member 212 can be synchronously linked and folded through the transmission assembly, and the one-key folding of the body 20 is realized, so that the state switching and storage of the deformation toy 1000 are simple and convenient, and the use experience of the user is improved.
[0067] The driving assembly 30 and the first deformation member 211 can be in transmission connection, and the driving assembly 30 and the first deformation member 211 can be in key connection, so that the connection fastening of the driving assembly 30 and the first deformation member 211 is good, the stability and reliability of the connection are improved, and the folding of the body 20 is stably driven.
[0068] Referring to Figure 13In some embodiments of the present application, the body 20 can comprise a first reset member 241 connected to the base 10 and the first deformation member 211 respectively, and having an elastic force to drive the first deformation member 211 to unfold. Specifically, the body 20 has an unfolded state and a folded state. By providing the first reset member 241, the body 20 can be stably maintained in the unfolded state, improving the structural stability of the transformation toy 1000, and also facilitating the switching of the body 20 from the unfolded state to the folded state. When the driving assembly 30 moves, the driving assembly 30 applies a force to the first deformation member 211, and the applied force is greater than the elastic force of the first reset member 241, thereby driving the first deformation member 211 to rotate, and switching the body 20 from the unfolded state to the folded state. The first reset member 241 can be a spring or the like.
[0069] With reference to Figure 10 In some embodiments of the present application, the body 20 can comprise a second reset member 242 connected to the first deformation member 211 and the second deformation member 212 respectively, and having an elastic force to drive the second deformation member 212 to unfold. Specifically, the body 20 has an unfolded state and a folded state. By providing the second reset member 242, the body 20 can be stably maintained in the unfolded state, improving the structural stability of the transformation toy 1000, and also facilitating the switching of the body 20 from the unfolded state to the folded state. When the driving assembly 30 moves, the first deformation member 211 is folded, and the first transmission assembly 22 is driven to rotate, thereby applying a force to the second deformation member 212. The applied force is greater than the elastic force of the second reset member 242, thereby driving the second deformation member 212 to rotate, and switching the body 20 from the unfolded state to the folded state. The second reset member 242 can be a spring or the like.
[0070] With reference to Figure 12 and Figure 13In some embodiments of the present application, the base 10 can be provided with a first locking hook 111, which can releasably lock the body 20 in the folded state, wherein when the body 20 is in the folded state, the first deformed member 211 and the second deformed member 212 are folded on the base 10 and locked by the first locking hook 111. In this way, after the body 20 is folded, the body 20 can be locked by the first locking hook 111, so that the body 20 can be stably maintained in the folded state, thereby improving the structural stability of the transformable toy 1000. When the transformable toy 1000 needs to be switched to the unfolded state, the first locking hook 111 can be released. In combination with the foregoing embodiments, the transformable toy 1000 can be provided with a first reset member 241 and / or a second reset member 242. After the first locking hook 111 releases the locking of the body 20, the reset member can drive the body 20 to unfold, so that the body 20 can be stably maintained in the unfolded state. The transformable toy 1000 can realize one-key folding or one-key unfolding, and after switching between different states, it can be stably maintained in the corresponding state.
[0071] With reference to Figure 12 In some embodiments of the present application, the first transmission assembly 22 can include a first transmission structure 221 and a second transmission structure 222. The first transmission structure 221 is telescopically arranged on the first deformed member 211, and one end of the first transmission structure 221 is slidably connected with the base 10. The first deformed member 211 is adapted to drive the first transmission structure 221 to telescopically extend or retract when the first deformed member 211 rotates. The second transmission structure 222 is rotatably arranged on the first deformed member 211 and is in transmission connection with the first transmission structure 221 and the second deformed member 212, respectively. Specifically, the second transmission structure 222 and the first transmission structure 221 can be in gear transmission, and the second transmission structure 222 and the second deformed member 212 can be in key connection. The driving assembly 30 drives the first deformed member 211 to rotate, thereby driving the first transmission structure 221 to telescopically extend or retract. The first transmission structure 221 drives the second transmission structure 222 to rotate, thereby driving the second deformed member 212 to rotate. The second transmission structure 222 realizes linkage between the first deformed member 211 and the second deformed member 212, thereby realizing synchronous folding of the first deformed member 211 and the second deformed member 212.
[0072] With reference to Figure 12The first transmission structure 221 can be slidably connected with the sliding groove 12. For example, the first transmission structure 221 can be provided with a rack, and the end of the rack can be slidably connected with the sliding groove 12. In addition, the first transmission structure 221 is in transmission connection with the second transmission structure 222, which can be in the form of gear and rack transmission. For example, the other end of the rack can be provided with a tooth, the second transmission structure 222 can be provided with a gear, and the other end of the rack can be engaged with the second transmission structure 222. The sliding groove 12 can extend around the rotation center of the second transmission structure 222 from one end to the other end and gradually away from the rotation center of the second transmission structure 222. In this way, when the first transmission structure 221 slides along the sliding groove 12, the rack can be converted into a gear rotation movement, so as to drive the second transmission structure 222 to rotate around the rotation center, and further drive the second deformed part 212 to rotate and fold. By arranging the sliding groove 12 on the base 10, the first transmission structure 221 can move in a predetermined direction, avoiding deviation of the movement direction, and improving the stability of the first transmission assembly 22 during movement.
[0073] With reference to Figures 14 to 17 In some embodiments of the present application, the first transmission assembly 22 can further include a third transmission structure 223, which is rotatably arranged on the first deformed part 211. With reference to Figure 15 The third transmission structure 223 can include a first gear 2231 and a second gear 2232 which are coaxial and fixedly connected. With reference to Figure 17 The second transmission structure 222 can be provided with a third gear 2222. With reference to Figure 15 The first rack 2211 is engaged with the first gear 2231, and the third gear 2222 is engaged with the second gear 2232. The number of teeth of the third gear 2222 is less than the number of teeth of the second gear 2232. In other words, the third transmission structure 223 is in transmission connection with the first transmission structure 221 and the second transmission structure 222 respectively. By arranging the third transmission structure 223, the transmission ratio can be changed. Specifically, the first gear 2231 and the second gear 2232 which are coaxial and fixedly connected serve as a transition gear between the first transmission structure 221 and the second transmission structure 222, and are engaged with each other, so as to achieve the effect of speed reduction and torque increase, that is, to reduce the rotation speed of the third gear 2222, and further increase the output torque of the second transmission structure 222, so as to avoid insufficient force of the second deformed part 212 during rotation, thereby enabling the second deformed part 212 to be smoothly rotated when the first deformed part 211 is rotated, and improving the stability of the fuselage 20 during folding.
[0074] Specifically, the driving assembly 30 rotates, driving the first deformation member 211 to rotate backward, and the first deformation member 211 simultaneously drives the first transmission structure 221 to slide forward along the sliding groove 12 on the base 10, and the first transmission structure 221 simultaneously drives the third transmission structure 223 (the first gear 2231 and the second gear 2232) to rotate, the third transmission structure 223 transmits force, driving the second transmission structure 222 to rotate, and the second transmission structure 222 drives the second deformation member 212 to rotate, completing the synchronous linkage of the first deformation member 211 and the second deformation member 212 and folding on the base 10.
[0075] With reference to Figures 14 to 17 In some embodiments of the present application, the body 20 can further include a third deformation member 213 and a second transmission assembly 23, the third deformation member 213 is rotatably connected with the second deformation member 212, and the second transmission assembly 23 is connected with the second deformation member 212 and the third deformation member 213 respectively, for linkage of the third deformation member 213 and the second deformation member 212 to be folded synchronously. Specifically, when the second deformation member 212 rotates, it drives the second transmission assembly 23 to move, and then drives the third deformation member 213 to rotate, thereby realizing the linkage and synchronous folding of the third deformation member 213 and the second deformation member 212.
[0076] By setting the second transmission assembly 23, linkage of the second deformation member 212 and the third deformation member 213 is realized, in combination with the foregoing embodiments, the first transmission assembly 22 realizes linkage of the first deformation member 211 and the second deformation member 212, and the second transmission assembly 23 realizes linkage of the second deformation member 212 and the third deformation member 213, that is, through movement of the driving assembly 30 and cooperation of the first transmission assembly 22 and the second transmission assembly 23, linkage of the first deformation member 211, the second deformation member 212 and the third deformation member 213 can be realized, linkage of multiple deformation members realizes one-key folding of the body 20 driven by the driving assembly 30, making the transformation of the transformation toy 1000 convenient and fast, and facilitating storage of the transformation toy 1000.
[0077] With reference to Figure 17 Further, the body 20 further includes a third reset member 243, the third reset member 243 is connected with the second deformation member 212 and the third deformation member 213 respectively, and has an elastic force for driving the third deformation member 213 to fold. When the second transmission assembly 23 moves downward, the force of the second transmission assembly 23 on the third deformation member 213 is eliminated, at this time the third deformation member 213 is urged to approach the second deformation member 212 by the elastic force of the third reset member 243, realizing folding of the third deformation member 213.
[0078] With reference to Figure 12In some embodiments of the present application, the second transmission assembly 23 can include a fourth transmission structure 231, a fifth transmission structure 232 and a sixth transmission structure 233. The fourth transmission structure 231 is fixed in position relative to the first deformation member 211. The fifth transmission structure 232 is telescopically arranged on the second deformation member 212 and is in transmission connection with the fourth transmission structure 231. The sixth transmission structure 233 is rotatably arranged on the second deformation member 212 and is in transmission connection with the fifth transmission structure 232 and the third deformation member 213, respectively. Specifically, the fourth transmission structure 231 can be in keyed connection with the first deformation member 211 and is fixed on the second deformation member 212. When the first deformation member 211 rotates, it drives the fourth transmission structure 231 to rotate, and at the same time, it drives the second deformation member 212 to fold. The fourth transmission structure 231 drives the fifth transmission structure 232 to move downward, and the fifth transmission structure 232 drives the sixth transmission structure 233 to rotate, thereby synchronously realizing the folding of the third deformation member 213. In this way, the one-key synchronous folding of multiple deformation members is realized, which facilitates the deformation and storage of the transformable toy 1000.
[0079] With reference to Figure 17 Further, the fourth transmission structure 231 can have a fourth gear 2311 thereon. The fifth transmission structure 232 can have a second rack 2321 at one end and a third rack 2322 at the other end. The sixth transmission structure 233 can have a fifth gear 2331 thereon. The fourth gear 2311 is in meshing connection with the second rack 2321. The third rack 2322 is in meshing connection with the fifth gear 2331, and the fifth gear 2331 is adapted to drive the third deformation member 213 to unfold. The fourth transmission structure 231 can be in transmission connection with the first deformation member 211 and is fixed on the second deformation member 212. The relative position of the fourth transmission structure 231 is unchanged. When the first deformation member 211 is folded, it can synchronously drive the fourth gear 2311 to rotate and drive the second rack 2321 to move downward. The second rack 2321 drives the third rack 2322 to move downward, thereby synchronously driving the fifth gear 2331 to move, and further realizing the linkage of multiple deformation members. The transmission structure is reliable and stable.
[0080] With reference to Figure 18In some embodiments of the present application, the body 20 can further include a fourth transformation member 214 to further enrich the shape of the transformation toy 1000. The fourth transformation member 214 is connected to the sixth transmission structure 233 and has a fixed relative position. In other words, when the sixth transmission structure 233 rotates, it can simultaneously drive the rotation of the fourth transformation member 214 to achieve the folding of the fourth transformation member 214. The fourth transformation member 214 and the sixth transmission structure 233 can be connected by a key. The key connection can simplify the structure and improve the stability and reliability of the connection between the fourth transformation member 214 and the sixth transmission structure 233, thereby stably driving the folding of the fourth transformation member 214. In addition, the fourth transformation member 214 can enrich the shape of the transformation toy 1000 and improve the interest of the transformation toy 1000.
[0081] The transformation toy 1000 according to the embodiments of the present application has two shapes of an unfolded state and a folded state. The shape of the transformation toy 1000 can be a robot, an animal, a vehicle, etc. For example, the unfolded state can be a robot or an animal, and the folded state can be a toy car. The different state switching can enrich the interest of the transformation toy 1000, and the folded state is convenient for the storage of the transformation toy 1000. In the following, the unfolded state is taken as a robot, and the folded state is taken as a toy car as an example. In the unfolded state, the transformation toy 1000 can include a first transformation member 211 and a second transformation member 212. The first transformation member 211 can be a leg, and the second transformation member 212 can be a body. In order to enrich the shape and interest of the transformation toy 1000, the transformation toy 1000 can further include a third transformation member 213 and a fourth transformation member 214. The third transformation member 213 can be an arm, and the fourth transformation member 214 can be a wing.
[0082] In some embodiments of the present application, the first transformation member 211 and the base 10 can have a first rotation axis, the second transformation member 212 and the first transformation member 211 can have a second rotation axis, and the third transformation member 213 and the second transformation member 212 can have a third rotation axis. The first rotation axis can be parallel to the second rotation axis, and the second rotation axis can be perpendicular to the third rotation axis. For example, the first rotation axis and the second rotation axis can extend along the left-right direction of the transformation toy 1000, and the third rotation axis can extend along the front-rear direction of the transformation toy 1000. After the transformation toy 1000 is folded, the first transformation member 211 and the second transformation member 212 can be stacked on the base 10, and the third transformation member 213 can be folded on both sides of the second transformation member 212. In this way, the transformation toy 1000 can be compact after being folded, which can save space and facilitate the storage and carrying of the toy.
[0083] In some embodiments of the present application, the first transformation part 211 can be folded on the base 10, and the second transformation part 212 can be folded with the first transformation part 211. In this way, when the transformation toy 1000 is switched to the folded state, the structure of the body 20 is compact, which can save space and facilitate the storage and carrying of the toy. In some embodiments of the present application, the third transformation part 213 can be folded with the second transformation part 212 in the folded state. In this way, when the transformation toy 1000 is switched to the folded state, the structure of the body 20 is compact, which can save space and facilitate the storage and carrying of the toy.
[0084]
[0085] In some embodiments of the present application, in the unfolded state, the first transformation part 211 can extend in the up-down direction, and the lower end is connected to the base 10. The second transformation part 212 can extend in the up-down direction, and the lower end is connected to the upper end of the first transformation part 211. For example, the unfolded state of the transformation toy 1000 can be a robot, the first transformation part 211 can be a leg, and the second transformation part 212 can be a body. The robot is connected to the base 10, so that the overall structure of the robot is stable, which can maintain a good standing posture and adapt to different playing environments. When the unfolded state is switched to the folded state, the first transformation part 211 and the second transformation part 212 can be folded synchronously to change different shapes and forms, which increases the interest of the toy.
[0086] In some embodiments of the present application, in the unfolded state, the third transformation part 213 can extend in the up-down direction, and the upper end is connected to the upper end of the second transformation part 212. The lower end is spaced apart from the second transformation part 212 in the left-right direction. For example, the unfolded state of the transformation part can be a robot, the second transformation part 212 can be a body, and the third transformation part 213 can be an arm. One end of the arm is connected to the body and located on both sides of the body, which enriches the shape of the transformation toy 1000. When the unfolded state is switched to the folded state, the second transformation part 212 and the third transformation part 213 can be folded synchronously to change different shapes and forms, which increases the interest of the toy.
[0087] Reference Figure 19 Optionally, the transformable toy 1000 can further comprise an unlocking piece 500, which can be separate from the body 20 and the base 10, or can be embedded between the body 20 and the base 10, and can be adjusted according to the shape of the transformable toy. The seventh transmission structure 16 can comprise a first transmission part 161, and the base 10 can further comprise a magnetic attraction structure 15 connected with the first transmission part 161, which is used to attract the unlocking piece 500 and drive the first transmission part 161 to move to unlock the second locking hook 112. Specifically, the unlocking piece 500 can be made of metal. Taking the structure that the unlocking piece 500 is separate from the main body (the body 20 and the base 10) of the transformable toy 1000 as an example, the unlocking piece 500 can be pushed to move towards the transformable toy 1000, and the transformable toy 1000 can also be pushed to move towards the unlocking piece 500. When the transformable toy 1000 approaches the unlocking piece 500, the unlocking piece 500 approaches the magnetic attraction structure 15, the magnetic attraction structure 15 attracts the unlocking piece 500, and the magnetic attraction structure 15 is pushed by the unlocking piece 500, driving the first transmission part 161 to move backward, driving the second locking hook 112 to move backward, and releasing the driving piece 32.
[0088] Referring to Figures 7 to 9 Optionally, the base 10 can be provided with a roller 171, the seventh transmission structure 16 can comprise a second transmission part 162, and the base 10 can further comprise a cam 172 and a transmission mechanism 173, the cam 172 being connected with the second transmission part 162 to drive the second transmission part 162 to move to unlock the second locking hook 112, and the transmission mechanism 173 being in transmission connection with the roller 171 and the cam 172 respectively. Specifically, the roller 171 can be rotatably fixed on the base 10, the roller 171 can be in transmission connection with the transmission mechanism 173, the roller 171 can drive the transmission mechanism to rotate when rotating, the transmission mechanism can drive the cam 172 to rotate, and when the cam 172 rotates to a certain position, the second transmission part 162 is driven to move backward, and the second locking hook 112 is driven to move backward, thereby releasing the driving piece 32.
[0089] Optionally, the base 10 can comprise a first locking hook 111 and a second locking hook 112, the first locking hook 111 can releasably lock the body 20 in the folded state, and the second locking hook 112 can releasably lock the driving piece 32 in the second position, the second locking hook 112 and the first locking hook 111 can be unlocked synchronously, in other words, when the body 20 is switched from the folded state to the unfolded state, the driving piece 32 is synchronously moved from the second position to the first position. The first locking hook 111 can be fixed above the seventh transmission structure 16, and when the seventh transmission structure 16 moves, the first locking hook 111 is synchronously moved, the body 20 is released from the folded state, and the second locking hook 112 and the first locking hook 111 can be unlocked synchronously.
[0090] In combination with the foregoing embodiments, the movement of the rollers 171 on the base 10, i.e. the travel of the transformation toy 1000, can trigger the synchronous unlocking of the first locking hook 111 and the second locking hook 112, or the unlocking of the first locking hook 111 and the second locking hook 112 can be triggered under the action of the unlocking member 500. After the first locking hook 111 and the second locking hook 112 are unlocked, the driving member 32 is released, and under the elastic force of the fourth reset member 141, the driving member 32 moves to the first position, and the body 20 is synchronously released, switching from the folded state to the unfolded state. By setting multiple different forms to trigger the unlocking of the first locking hook 111 and the second locking hook 112, the play of the transformation toy 1000 is enriched, and the interest of the transformation toy 1000 is improved.
[0091] The switching process of the transformation toy 1000 from the unfolded state to the folded state will be described below with reference to the accompanying drawings. The transformation toy 1000 is in the unfolded state, i.e., the robot state. When it is necessary to transform the transformation toy 1000 into the toy car form or to store the transformation toy 1000 for convenient carrying, the driving member 32 can be rotated, the second driving tooth 331 is in transmission cooperation with the first driving tooth 131, the fourth rack 13 is driven to move forward, the fourth rack 13 is in mesh with the rotating member 31, the rotating member 31 is driven to rotate in the clockwise direction, the rotating member 31 is in transmission connection with the first transformation member 211 (leg), the first transformation member 211 (leg) is driven to rotate backward and fold onto the base 10, the first transformation member 211 (leg) drives the first transmission structure 221 to move upward during the rotation process, the upper end of the first rack 2211 is in mesh with the first gear 2231, the first gear 2231 is coaxially fixedly connected with the second gear 2232, the second gear 2232 is in mesh with the third gear 2222, the first rack 2211 drives the first gear 2231 and the second gear 2232 to rotate in the clockwise direction, the first gear 2231 and the second gear 2232 serve to reduce speed and increase torque, and the third gear 2222 is driven to rotate in the counterclockwise direction, the third transmission structure 222 simultaneously drives the second transformation member 212 (body) to rotate forward and fold onto the base 10, because the fourth transmission structure 231 is fixed on the second transformation member 212 (body), the fourth transmission structure 231 does not rotate relative to the second transformation member 212, to drive the second rack 2321 to move downward and drive the third rack 2322 to move downward, the fifth gear 2331 is in mesh with the third rack 2322, the third rack 2322 moves downward to drive the fifth gear 2331 to rotate in the counterclockwise direction, the sixth transmission structure 233 simultaneously drives the fourth transformation member 214 (wing) to rotate and fold in front of the second transformation member 212 (body), at the same time, the third transformation member 213 (arm) is driven to fold on both sides of the second transformation member 212 (body) by the sixth transmission structure 233 under the elastic action of the third return member 243, through the cooperation of the plurality of racks and gears, the synchronous linkage folding of the transformation members of the fuselage 20 is realized under the driving of the driving assembly 30, i.e., one-key folding of the fuselage 20 is realized under the driving of the driving assembly 30, the switching of the folded state of the transformation toy 1000 is fast and convenient, and after folding, the structure of the transformation toy 1000 is compact, the transformation toy 1000 is transformed into the toy car form, convenient for storage or carrying of the transformation toy 1000, and the user's playing experience is improved.
[0092] In the description of the application, it should be understood that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like is based on the orientation or positional relationship shown in the drawings, and is only for the purpose of facilitating the description of the application and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the application.
[0093] In addition, the terms "first", "second" are only for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features. In the description of the application, the meaning of "a plurality of" is at least two, such as two, three, etc., unless otherwise explicitly specified and limited.
[0094] In the present application, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting", "fixing" and the like should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements, unless otherwise explicitly limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0095] In the present application, unless otherwise explicitly specified and limited, the first feature "on" or "under" the second feature can be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature "above", "over" and "on" the second feature can be that the first feature is directly above or obliquely above the second feature, or it can only mean that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "under" and "under" the second feature can be that the first feature is directly below or obliquely below the second feature, or it can only mean that the horizontal height of the first feature is less than that of the second feature.
[0096] In the description of the specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are contained in at least one embodiment or example of the present application. In the specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any suitable manner in any one or more embodiments or examples. In addition, the person skilled in the art can combine and combine the different embodiments or examples described in the specification and the features of the different embodiments or examples without contradiction.
[0097] Although the embodiments of the present application have been shown and described above, it is understood that the above-described embodiments are exemplary and are not to be construed as limiting the present application, and those skilled in the art can make changes, modifications, replacements and variations to the above-described embodiments within the scope of the present application.
Claims
1. A transformable toy (1000) characterized in that, The utility model relates to a folding machine, comprising: a base (10) provided with a driving assembly (30); a body (20) connected with the base (10) and having an unfolded state and a folded state; the driving assembly (30) is in transmission connection with the body (20), and the driving assembly (30) is suitable for driving the body (20) to switch from the unfolded state to the folded state, and the body (20) comprises: a first deformation part (211) rotatably connected with the base (10) and in transmission connection with the driving assembly (30); a second deformation part (212) rotatably connected with the first deformation part (211); a first transmission assembly (22) connected with the base (10), the first deformation part (211) and the second deformation part (212) respectively, for linkage of the first deformation part (211) and the second deformation part (212) to fold synchronously.
2. The transformable toy (1000) according to claim 1, characterized in that, the driving assembly (30) comprises: a rotating part (31) in transmission connection with the body (20); a driving part (32) in transmission connection with the rotating part (31) and configured to be suitable for driving the rotating part (31) and folding the body (20).
3. The transformable toy (1000) according to claim 2, characterized in that, the driving part (32) has a first position and a second position, the driving part (32) is located at the first position when the body (20) is in the unfolded state, the driving part (32) is located at the second position when the body (20) is in the folded state, and the driving part (32) is driven to switch the body (20) from the unfolded state to the folded state when moving from the first position to the second position.
4. The transformable toy (1000) according to claim 1, characterized in that, the body (20) further comprises: a first reset part (241) connected with the base (10) and the first deformation part (211) respectively and having an elastic force for driving the first deformation part (211) to unfold; and / or a second reset part (242) connected with the first deformation part (211) and the second deformation part (212) respectively and having an elastic force for driving the second deformation part (212) to unfold.
5. The transformable toy (1000) according to claim 4, characterized in that, the base (10) has a first locking hook (111) for releasably locking the body (20) in the folded state, wherein the first deformation part (211) and the second deformation part (212) are folded on the base (10) and locked by the first locking hook (111) when the body (20) is in the folded state.
6. The transformable toy (1000) according to claim 1, characterized in that, the first transmission assembly (22) comprises: a first transmission structure (221) telescopically provided on the first deformation part (211) and having one end in sliding connection with the base (10), and the first deformation part (211) is suitable for driving the first transmission structure (221) to telescope when rotating; A second transmission structure (222) is rotatably arranged on the first deformation member (211) and is in transmission connection with the first transmission structure (221) and the second deformation member (212) respectively.
7. The transformable toy (1000) according to claim 6, characterized in that, The first transmission assembly (22) further comprises: A third transmission structure (223) is rotatably arranged on the first deformation member (211), and the third transmission structure (223) comprises coaxially and fixedly connected first and second gears (2231, 2232), The first transmission structure (221) has a first rack (2211) thereon, the second transmission structure (222) has a third gear (2222) thereon, the first rack (2211) is in meshing connection with the first gear (2231), the third gear (2222) is in meshing connection with the second gear (2232), and the third gear (2222) has a smaller number of teeth than the second gear (2232).
8. The transformable toy (1000) according to claim 6, characterized in that, The machine base (10) is provided with a sliding groove (12), the end of the first transmission structure (221) is slidably connected with the sliding groove (12), and the sliding groove (12) extends from one end to the other end around the rotation center of the second transmission structure (222) and gradually moves away from the rotation center of the second transmission structure (222).
9. The transformable toy (1000) according to claim 1, characterized in that, The machine body (20) further comprises: A third deformation member (213) is rotatably connected with the second deformation member (212); A second transmission assembly (23) is connected with the second deformation member (212) and the third deformation member (213) respectively, and is used for linkage of the third deformation member (213) and the second deformation member (212) to realize synchronous folding.
10. The transformable toy (1000) according to claim 9, characterized in that, The machine body (20) further comprises: A third reset member (243) is connected with the second deformation member (212) and the third deformation member (213) respectively, and has an elastic force for driving the third deformation member (213) to fold.
11. The transformable toy (1000) according to claim 9, characterized in that, The second transmission assembly (23) comprises: A fourth transmission structure (231) is fixed in position relative to the first deformation member (211); A fifth transmission structure (232) is telescopically arranged on the second deformation member (212) and is in transmission connection with the fourth transmission structure (231); A sixth transmission structure (233) is rotatably arranged on the second deformation member (212) and is in transmission connection with the fifth transmission structure (232) and the third deformation member (213) respectively.
12. The transformable toy (1000) according to claim 11, characterized in that, The fourth transmission structure (231) has a fourth gear (2311) thereon, the fifth transmission structure (232) has a second rack (2321) at one end and a third rack (2322) at the other end, and the sixth transmission structure (233) has a fifth gear (2331) thereon, wherein the fourth gear (2311) meshes with the second rack (2321), the third rack (2322) meshes with the fifth gear (2331), and the fifth gear (2331) is adapted to drive the third deformation member (213) to unfold.
13. The transformable toy (1000) according to claim 11, characterized in that, The fuselage (20) further comprises: A fourth deformation member (214) connected to the sixth transmission structure (233) and fixed in position.
14. The transformable toy (1000) according to claim 9, characterized in that, The first deformation member (211) and the machine base (10) have a first rotation axis therebetween, the second deformation member (212) and the first deformation member (211) have a second rotation axis therebetween, and the third deformation member (213) and the second deformation member (212) have a third rotation axis therebetween, wherein the first rotation axis is parallel to the second rotation axis, and the second rotation axis is perpendicular to the third rotation axis; And / or, in the folded state, the first deformation member (211) is folded on the machine base (10), and the second deformation member (212) is folded with the first deformation member (211); And / or, in the folded state, the third deformation member (213) is folded with the second deformation member (212); And / or, in the unfolded state, the first deformation member (211) extends in the up-down direction with the lower end connected to the machine base (10), and the second deformation member (212) extends in the up-down direction with the lower end connected to the upper end of the first deformation member (211); And / or, in the unfolded state, the third deformation member (213) extends in the up-down direction with the upper end connected to the upper end of the second deformation member (212), and the lower end is spaced apart from the second deformation member (212) in the left-right direction.
Citation Information
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