A spinning racetrack toy

By setting a rotatable circular track on the base and using a drive mechanism to drive the rotating components, combined with detachable ornaments, the problems of high cost and large space occupation of existing track-type remote control toys are solved, realizing a rotating track toy with simple structure, low cost, small size, high playability and fun.

CN224370638UActive Publication Date: 2026-06-19GUANGZHOU LINGDONG CHUANGXIANG CULTURE & TECH

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGZHOU LINGDONG CHUANGXIANG CULTURE & TECH
Filing Date
2025-07-22
Publication Date
2026-06-19

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  • Figure CN224370638U_ABST
    Figure CN224370638U_ABST
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Abstract

This utility model relates to a rotating track toy, comprising a base, a first drive mechanism, a first rotating component, and a first annular track. The first drive mechanism is movably mounted on the base, and the first rotating component is rotatably mounted on the base. The first annular track is engaged with the first rotating component. The first drive mechanism is driven to drive the first rotating component, thereby rotating the first annular track. The rotating track toy of this utility model, which uses the first drive mechanism to rotate the first annular track, has a simple structure, low cost, and high playability and convenience.
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Description

Technical Field

[0001] This utility model relates to the field of toy technology, and in particular to a rotating track toy. Background Technology

[0002] With the development of the toy industry, toys of various styles and functions not only bring a lot of fun to people's lives but also help them relax and de-stress in their daily lives. Among them, track-type toys generally consist of a track and a remote-controlled toy car. Users control the toy car to drive and play on the track, thereby achieving the purpose of entertainment. Although these track-type remote-controlled toys are exciting, entertaining, and highly playable, they are also expensive and take up relatively much space, making their applicability and convenience limited. Utility Model Content

[0003] Based on this, the purpose of this utility model is to overcome the shortcomings of the prior art and provide a rotating track toy, which drives the first circular track to rotate through the first driving mechanism. It has a simple structure, low cost, and high playability and convenience.

[0004] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0005] A rotating track toy includes a base, a first drive mechanism, a first rotating component, and a first circular track. The first drive mechanism is movably disposed on the base, the first rotating component is rotatably disposed on the base, and the first circular track is engaged with the first rotating component. The first drive mechanism is drivenly connected to the first rotating component, and the first drive mechanism is used to drive the first rotating component to rotate the first circular track.

[0006] Therefore, the rotating track toy of this utility model, by rotatably setting the first annular track on the base and using the first driving mechanism to drive the first rotating component to rotate, thereby driving the first annular track to rotate through the first rotating component, has a simple structure, low cost, small size, easy to carry, and high playability and fun compared to traditional remote control track toys.

[0007] In one embodiment, a first insertion part is provided on the first circular track, and a first ornament is detachably inserted into the first insertion part. Thus, according to this utility model, the rotating track toy, by detachably providing the first ornament on the first circular track, uses the first circular track to drive the first ornament to move synchronously, creating a dynamic effect of the first ornament running on the first circular track, effectively improving the entertainment and fun of the rotating track toy; furthermore, the shape of the first ornament can be designed in different forms according to needs, such as toy cars, cartoon characters, etc., and the number of first ornaments can also be designed to be multiple, so as to facilitate user replacement, further improving the playability and fun of the rotating track toy.

[0008] In one embodiment, the first rotating component includes a first driving gear and a first driven gear, which are rotatably mounted on the base. The inner wall of the first annular track is provided with a first annular tooth, which meshes with the first driving gear and the first driven gear respectively. The first driving mechanism is drivenly connected to the first driving gear.

[0009] In one embodiment, the first driving mechanism includes a first pressing drive member and a first clutch gear set. The first pressing drive member is telescopically mounted on the base, and the first clutch gear set is rotatably mounted on the base. The first pressing drive member is meshed with the input end of the first clutch gear set, and the first driving gear is meshed with the output end of the first clutch gear set.

[0010] In one embodiment, the first pressing drive member is provided with a first driving rack and a first spring. The first driving rack is meshed with the input end of the first clutch gear set. One end of the first spring is connected to the first pressing drive member, and the other end of the first spring is connected to the base.

[0011] When the first pressing drive is pressed by an external force, the first driving rack drives the first clutch gear set to rotate and drives the first drive gear to rotate. At the same time, the first pressing drive compresses the first spring. When the external force is removed, the first spring drives the first pressing drive to move in the opposite direction and causes the first driving rack to drive the first clutch gear set to rotate freely. At this time, the first drive gear is not driven by the first clutch gear set.

[0012] Therefore, the rotating track toy according to this utility model can continuously accelerate the rotation of the first rotating component by repeated pressing, so that the first rotating component can drive the first circular track to rotate and play, and the continuous pressing can have a certain stress-relieving effect on the user.

[0013] In one embodiment, the first clutch gear set includes a first ratchet tooth, a second ratchet tooth, and a second spring coaxially arranged. One end of the first ratchet tooth is provided with a first ratchet portion, and the outer peripheral wall of the first ratchet tooth is provided with a first gear portion. One end of the second ratchet tooth is provided with a second ratchet portion, and the outer peripheral wall of the second ratchet tooth is provided with a second gear portion. The first ratchet portion and the second ratchet portion mesh with each other. One end of the second spring abuts against the end of the first ratchet tooth away from the first ratchet portion, and the other end of the second spring abuts against the base.

[0014] The first gear part is meshed with the first pressing drive member. One end of the first drive gear is coaxially provided with a first annular connecting tooth. The tooth direction of the first connecting tooth is parallel to the axis of the first drive gear. The first connecting tooth is meshed with the second gear part.

[0015] In one embodiment, the first driving mechanism includes a first driving gear and a first driving rocker arm. The first driving gear is coaxially mounted on a first rotating shaft, which is rotatably mounted on the base. The first driving rocker arm is connected to the first rotating shaft. The first driving gear includes a coaxially mounted double-layer gear. One layer of the first driving gear meshes with the first ring gear, and the other layer of the first driving gear meshes with the first driving gear. The first driving rocker arm is used to drive the first rotating shaft to rotate, thereby driving the first driving gear to rotate via the first driving gear.

[0016] In one embodiment, the system further includes a second drive mechanism, a second rotating component, and a second annular track. The second drive mechanism is movably mounted on the base, the second rotating component is rotatably mounted on the base, the second annular track is engaged with the second rotating component, the second drive mechanism is drivenly connected to the second rotating component, and the second drive mechanism is used to drive the second rotating component to rotate the second annular track.

[0017] Therefore, the rotating track toy of this invention, by rotatably setting a second circular track on a base and using a second drive mechanism to drive a second rotating component to rotate, thereby causing the second circular track to rotate, offers advantages over traditional remote-controlled track toys. It features a simpler structure, lower cost, smaller size, easier portability, and higher playability and fun. Furthermore, by setting both a first and second circular track on the base, the rotating track toy allows two users to compete, further enhancing its competitive appeal and entertainment value.

[0018] In one embodiment, a second insertion part is provided on the second circular track, and a second ornament is detachably inserted into the second insertion part. Thus, according to this utility model, the rotating track toy, by detachably providing a second ornament on the second circular track, uses the second circular track to drive the second ornament to move synchronously, creating a dynamic effect of the second ornament running on the second circular track, effectively improving the entertainment and fun of the rotating track toy. Furthermore, the shape of the second ornament can be designed in different forms according to needs, such as toy cars, cartoon characters, etc., and the number of second ornaments can also be designed to be multiple, facilitating user replacement and further enhancing the playability and fun of the rotating track toy.

[0019] As one embodiment, a lid is also included, which is detachably mounted on the base.

[0020] To better understand and implement this invention, the following detailed description is provided in conjunction with the accompanying drawings. Attached Figure Description

[0021] Figure 1 This is one of the structural schematic diagrams of the rotating track toy of this utility model;

[0022] Figure 2 This is the second structural schematic diagram of the rotating track toy of this utility model;

[0023] Figure 3 This is an exploded view of the rotating track toy of this utility model;

[0024] Figure 4 This is one of the schematic diagrams of the internal structure of the rotating track toy of this utility model;

[0025] Figure 5 This is the second schematic diagram of the internal structure of the rotating track toy of this utility model;

[0026] Figure 6 This is one of the structural schematic diagrams of the first driving mechanism, the first rotating component, and the first circular track of this utility model;

[0027] Figure 7 This is a second structural schematic diagram of the first driving mechanism, the first rotating component, and the first circular track of this utility model.

[0028] Figure 8 This is one of the structural schematic diagrams of the second drive mechanism, the second rotating component, and the second circular track of this utility model;

[0029] Figure 9 This is the second schematic diagram of the structure of the second drive mechanism, the second rotating component, and the second circular track of this utility model.

[0030] Explanation of reference numerals in the attached figures:

[0031] 10. Base; 11. Cover; 12. First sleeve; 13. Second sleeve; 20. First drive mechanism; 21. First pressing drive element; 22. First drive rack; 23. First spring; 24. First ratchet tooth; 241. First ratchet portion; 242. First gear portion; 25. Second ratchet tooth; 251. Second ratchet portion; 252. Second gear portion; 26. Second spring; 30. First rotating assembly; 31. First driving gear; 32. First driven gear; 33. First connecting tooth; 40. First annular track; 41. First annular tooth; 42. 43. First insertion part; 50. Second drive mechanism; 51. Second pressing drive part; 52. Second drive rack; 53. Third spring; 54. Third ratchet tooth; 541. Third ratchet part; 542. Third gear part; 55. Fourth ratchet tooth; 551. Fourth ratchet part; 552. Fourth gear part; 56. Fourth spring; 60. Second rotating assembly; 61. Second driving gear; 62. Second driven gear; 63. Second connecting tooth; 70. Second annular track; 71. Second annular tooth; 72. Second insertion part; 73. Second ornament. Detailed Implementation

[0032] To further illustrate the various embodiments, the present invention provides accompanying drawings. These drawings are part of the disclosure of the present invention and are mainly used to illustrate the embodiments, and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these drawings, those skilled in the art should be able to understand other possible implementation methods and the advantages of the present invention.

[0033] With the development of the toy industry, toys of various styles and functions not only bring a lot of fun to people's lives but also help them relax and de-stress in their daily lives. Among them, track-type toys generally consist of a track and a remote-controlled toy car. Users control the toy car to drive and play on the track, thereby achieving the purpose of entertainment. Although these track-type remote-controlled toys are exciting, entertaining, and highly playable, they are also expensive and take up relatively much space, making their applicability and convenience limited.

[0034] In view of this, the present invention provides a rotating track toy. According to an embodiment of the present invention, the rotating track toy uses a first drive mechanism 20 to drive a first circular track 40 to rotate. Compared with traditional remote-controlled track toys, the present invention has a simple structure, low cost, small size, is easy to carry, and offers higher playability and fun.

[0035] Please see Figures 1 to 9 This utility model provides a rotating track toy, including a base 10, a first drive mechanism 20, a first rotating component 30, and a first annular track 40. The first drive mechanism 20 is movably disposed on the base 10, the first rotating component 30 is rotatably disposed on the base 10, and the first annular track 40 is engaged with the first rotating component 30. The first drive mechanism 20 is drivenly connected to the first rotating component 30, and the first drive mechanism 20 is used to drive the first rotating component 30 to rotate the first annular track 40.

[0036] Therefore, according to the present invention, the rotating track toy has a simple structure, low cost, small size, easy to carry, and high playability and fun compared to traditional remote control track toys. The first rotating track toy is rotatably set on the base 10, and the first rotating component 30 is driven to rotate by the first driving mechanism 20. In turn, the first rotating component 30 drives the first circular track 40 to rotate.

[0037] Furthermore, in this embodiment of the present invention, a first plug-in part 42 is provided on the first circular track 40, and a first ornament 43 is detachably plugged into the first plug-in part 42; wherein, the bottom of the first ornament 43 may be provided with a first plug-in groove for plugging into the first plug-in part 42, so that the first ornament 43 can be conveniently and quickly plugged into the first plug-in part 42 through the first plug-in groove at its bottom, and when replacing the first ornament 43, it is only necessary to pull it out from the first plug-in part 42. Therefore, according to the present invention, the rotating track toy has a first ornament 43 detachably mounted on the first circular track 40. The first circular track 40 drives the first ornament 43 to move synchronously, creating a dynamic effect of the first ornament 43 running on the first circular track 40, which effectively improves the entertainment and fun of the rotating track toy. Furthermore, the shape of the first ornament 43 can be designed into different shapes according to needs, such as toy cars, cartoon characters, etc. The number of the first ornament 43 can also be designed to be multiple, so as to facilitate user replacement, further improving the playability and fun of the rotating track toy.

[0038] Specifically, in this embodiment of the invention, the first rotating component 30 includes a first driving gear 31 and a first driven gear 32. The first driving gear 31 and the first driven gear 32 are rotatably mounted on the base 10. The inner wall of the first annular track 40 is provided with a first annular tooth 41, which meshes with the first driving gear 31 and the first driven gear 32 respectively. The first driving mechanism 20 is drivenly connected to the first driving gear 31. In these embodiments, the middle portions of the first driving gear 31 and the first driven gear 32 are respectively provided with first through holes. Correspondingly, the base 10 is provided with first sleeves 12 for the first through holes of the first driving gear 31 and the first through holes of the first driven gear 32 to be movably fitted. In this way, the first driving gear 31 and the first driven gear 32 are respectively fitted into the two first sleeves 12 on the base 10, so that the first driving gear 31 and the first driven gear 32 can be rotatably mounted on the base 10.

[0039] It is worth understanding that in other embodiments of this utility model, the first driving gear 31 and the first driven gear 32 are respectively coaxially rigidly connected to a rotating shaft. Correspondingly, the base 10 is provided with a bearing portion for the rotating shaft of the first driving gear 31 and the first driven gear 32 to rotate, which can also achieve the effect that the first driving gear 31 and the first driven gear 32 are rotatably mounted on the base 10.

[0040] Optionally, in some embodiments of the present invention, the first driving mechanism 20 includes a first pressing drive member 21 and a first clutch gear set. The first pressing drive member 21 is telescopically mounted on the base 10, and the first clutch gear set is rotatably mounted on the base 10. The first pressing drive member 21 is meshed with the input end of the first clutch gear set, and the first driving gear 31 is meshed with the output end of the first clutch gear set. Furthermore, in these embodiments, the first pressing drive member 21 is provided with a first driving rack 22 and a first spring 23. The first driving rack 22 is meshed with the input end of the first clutch gear set, one end of the first spring 23 is connected to the first pressing drive member 21, and the other end of the first spring 23 is connected to the base 10. In this way, when the first pressing drive member 21 is pressed by an external force, the first driving rack 22 drives the first clutch gear set to rotate and drives the first drive gear 31 to rotate, while the first pressing drive member 21 compresses the first spring 23. When the external force is removed, the first spring 23 drives the first pressing drive member 21 to move in the opposite direction and causes the first driving rack 22 to drive the first clutch gear set to idle. At this time, the first drive gear 31 is not driven by the first clutch gear set. That is to say, in these embodiments, the first rotating component 30 can be continuously accelerated to rotate by repeated pressing, so that the first rotating component 30 can drive the first circular track 40 to rotate and play, and the continuous pressing can have a certain stress-relieving effect on the user.

[0041] Optionally, in some embodiments of this utility model, the first clutch gear set includes a first ratchet tooth 24, a second ratchet tooth 25, and a second spring 26 coaxially arranged. One end of the first ratchet tooth 24 is provided with a first ratchet portion 241, and the outer peripheral wall of the first ratchet tooth 24 is provided with a first gear portion 242. One end of the second ratchet tooth 25 is provided with a second ratchet portion 251, and the outer peripheral wall of the second ratchet tooth 25 is provided with a second gear portion 252. The first ratchet portion 241 and the second ratchet portion 251 mesh with each other. One end of the second spring 26 abuts against the end of the first ratchet tooth 24 away from the first ratchet portion 241, and the other end of the second spring 26 abuts against the base 10. The first gear portion 242 is meshed with the first pressing drive member 21. One end of the first drive gear 31 is coaxially provided with an annular first connecting tooth 33. The tooth direction of the first connecting tooth 33 is parallel to the axis of the first drive gear 31, and the first connecting tooth 33 is meshed with the second gear portion 252. In other words, in these embodiments, the first clutch gear set uses a ratchet structure to achieve the clutch effect. Thus, when the user plays, pressing the first pressing drive member 21 with their finger causes the first drive rack 22 to drive the first gear section 242 to rotate. Simultaneously, the first spring 23 is compressed and stores energy. During rotation, the meshing action of the first ratchet section 241 and the second ratchet section 251 causes the first gear section 242 to drive the second gear section 252 to rotate synchronously. This, in turn, drives the first drive gear 31 to rotate, and finally, the first drive gear 31 drives the first ring gear 41 to rotate. The first ring track 40 is rotated and played with by moving the first finger. Furthermore, when the user releases his finger, the first pressing drive 21 moves in the opposite direction under the elastic force of the first spring 23, so that the first drive rack 22 drives the first gear part 242 to rotate in the opposite direction. During this process, since the first ratchet part 241 and the second ratchet part 251 are engaged, and under the action of the second spring 26, the first ratchet tooth 24 continuously disengages from the second ratchet tooth 25. That is, the first ratchet tooth 24 does not exert force on the second ratchet tooth 25, so that the second ratchet tooth 25 can still maintain the original rotation effect with the first drive gear 31. In other words, when the first pressing drive 21 is pressed by an external force, the first driving rack 22 drives the first drive gear 31 to rotate through the first clutch gear set. When the first pressing drive 21 is reset in the reverse direction, the first driving rack 22 engages with the first ratchet tooth 24 and the second ratchet tooth 25 through ratchet meshing, so that the first driving rack 22 does not exert force on the first drive gear 31, thereby ensuring that the first drive gear 31 rotates along the original rotation direction; so that the user can continuously press the first pressing drive 21 to drive the first drive gear 31 to rotate.

[0042] It is worth understanding that in some other embodiments, the first clutch gear set can also adopt a sliding clutch gear structure. For example, in these embodiments, the first clutch gear set includes a first rotating gear, a first sliding gear, and a first output gear. An arc-shaped groove is provided on the base 10, and the shaft of the first sliding gear is slidably disposed in the arc-shaped groove. The first rotating gear is meshed with the first drive rack 22 and the first sliding gear respectively. The first sliding gear is disengaged from the first output gear, and the first output gear is meshed with the first driving gear 31. In this way, when the first drive rack 22 drives the first rotating gear to rotate in the forward direction, the first rotating gear synchronously... The first sliding gear is driven to rotate and slide to the end of the arc groove near the first output gear so that the first sliding gear meshes with the first output gear, thereby driving the first output gear to rotate; when the first drive rack 22 drives the first rotating gear to rotate in the opposite direction, the first rotating gear synchronously drives the first sliding gear to rotate in the opposite direction and slides to the end of the arc groove away from the first output gear so that the first sliding gear and the first output gear are spaced apart. At this time, the first sliding gear no longer exerts a force on the first output gear, so that the first output gear and the first drive gear 31 continue to rotate in the original direction.

[0043] Optionally, in some embodiments of this utility model, the first driving mechanism 20 includes a first driving gear and a first driving rocker. The first driving gear is coaxially arranged with a first rotating shaft, which is rotatably mounted on the base 10. The first driving rocker is connected to the first rotating shaft. The first driving gear 31 includes a coaxially arranged double-layer gear. One layer of the gear of the first driving gear 31 meshes with the first ring gear 41, and the other layer of the gear of the first driving gear 31 meshes with the first driving gear. The first driving rocker is used to drive the first rotating shaft to rotate, thereby driving the first driving gear 31 to rotate through the first driving gear.

[0044] In other words, the first drive mechanism 20 of this utility model can be a push-type automatic reset drive structure, a hand-cranked gear drive structure, or other common drive structures, which will not be elaborated here.

[0045] Optionally, in some embodiments of this utility model, the rotating track toy further includes a second drive mechanism 50, a second rotating component 60, and a second circular track 70. The second drive mechanism 50 is movably mounted on the base 10, the second rotating component 60 is rotatably mounted on the base 10, and the second circular track 70 is engaged with the second rotating component 60. The second drive mechanism 50 is drivenly connected to the second rotating component 60, and the second drive mechanism 50 is used to drive the second rotating component 60 to rotate the second circular track 70. In these embodiments, the structures of the second drive mechanism 50, the second rotating component 60, and the second circular track 70 are the same as those of the first drive mechanism 20, the second rotating component 60, and the second circular track 70, respectively. That is, two sets of rotating track structures for users to play on can be arranged side by side on the base 10, so that two users can compete and play, further improving the competitive fun and entertainment value of the rotating track toy of this utility model.

[0046] Furthermore, in some embodiments of this utility model, a second insertion part 72 is provided on the second circular track 70, and a second ornament 73 is detachably inserted into the second insertion part 72. Thus, according to this utility model, the rotating track toy, by detachably providing the second ornament 73 on the second circular track 70, utilizes the second circular track 70 to drive the second ornament 73 to move synchronously, creating a dynamic effect of the second ornament 73 running on the second circular track 70, effectively improving the entertainment and fun of the rotating track toy of this utility model; moreover, the shape of the second ornament 73 can be designed in different forms according to needs, such as toy cars, cartoon characters, etc., and the number of second ornaments 73 can also be designed to be multiple, so as to facilitate user replacement, further improving the playability and fun of the rotating track toy of this utility model.

[0047] It is worth understanding that in some embodiments of this utility model, the structure of the second drive mechanism 50 is the same as that of the first drive mechanism 20, the structure of the second rotating component 60 is similar to that of the first rotating component 30, and the structure of the second circular track 70 is similar to that of the first circular track 40. Specifically, in these embodiments, the second rotating component 60 includes a second driving gear 61 and a second driven gear 62. The outer diameters of both the second driving gear 61 and the second driven gear 62 are larger than the outer diameters of the first driving gear 31 and the first driven gear 32. One end of the second driving gear 61 is provided with a second connecting tooth 63, the diameter of which is larger than the outer diameter of the first connecting tooth 33. A second through hole is provided through the middle of both the second driving gear 61 and the second driven gear 62. Correspondingly, the base 10 is provided with a second set of gears for the second through hole of the second driving gear 61 and the second through hole of the second driven gear 62 to be movably fitted. The second drive gear 61 and the second driven gear 62 are respectively fitted into the two second sleeves 13 on the base 10, so that the second drive gear 61 and the second driven gear 62 can be rotatably mounted on the base 10. Furthermore, the ratio of the outer diameter of the first connecting tooth 33 to the outer diameter of the second connecting tooth 63 is equal to the ratio of the outer diameter of the first drive gear 31 to the outer diameter of the second drive gear 61. In this way, the number of presses required for the first drive mechanism 20 to drive the first circular track 40 to rotate one revolution is the same as the number of presses required for the second drive mechanism 50 to drive the second circular track 70 to rotate one revolution, so that users can compete by adjusting their hand speed. In other words, in these embodiments, the circumference of the second circular track 70 is greater than that of the first circular track 40, the outer diameter of the second driving gear 61 is greater than that of the first driving gear 31, and the second driving gear 61 is coaxially arranged with the first driving gear 31. The outer diameter of the second driven gear 62 is greater than that of the first driven gear 32, and the second driven gear 62 is coaxially arranged with the first driven gear 32. The first drive mechanism 20 and the second drive mechanism 50 are located on both sides of the first rotating assembly 30 and the second rotating assembly 60, respectively. This structural design allows the first circular track 40 and the second circular track 70 to occupy relatively less space, and the base 10 to have a relatively smaller volume. Furthermore, the two focal points of the second circular track 70 and the first circular track 40 overlap. Therefore, when users are playing a competitive game, if the hand speeds of the two users are roughly the same, the positions of the first ornament 43 and the second ornament 73 during rotation will also be relatively close, thus creating a more intense competitive process.

[0048] Optionally, in some embodiments of the present invention, the rotating track toy also includes a cover 11, which is detachably mounted on the base 10.

[0049] The following is combined Figures 1 to 7The following is a detailed description of a specific embodiment of the rotating track toy according to the present invention. It is worth understanding that the following is merely an illustrative description and should not be construed as limiting the present invention.

[0050] This embodiment provides a rotating track toy, including a base 10, a first drive mechanism 20, a first rotating component 30, and a first annular track 40. The first drive mechanism 20 is movably mounted on the base 10, and the first rotating component 30 is rotatably mounted on the base 10. The first annular track 40 is engaged with the first rotating component 30. The first drive mechanism 20 is drivenly connected to the first rotating component 30, and the first drive mechanism 20 is used to drive the first rotating component 30 to rotate the first annular track 40. The first annular track 40 is rotatably mounted on the upper surface of the base 10, and a first insertion part 42 is provided on the top of the first annular track 40. A first ornament 43 is detachably inserted into the first insertion part 42.

[0051] Specifically, the first rotating component 30 in this embodiment includes a first driving gear 31 and a first driven gear 32. The first driving gear 31 and the first driven gear 32 are rotatably mounted on the base 10. The inner wall of the first annular track 40 is provided with a first annular tooth 41, which meshes with the first driving gear 31 and the first driven gear 32 respectively. The first driving gear 31 and the first driven gear 32 are spaced apart and have basically the same structure. The difference is that the end face of the first driving gear 31 is provided with an annular first connecting tooth 33 vertically downward. The first connecting tooth 33 is used to mesh with the first driving mechanism 20. Further, the middle part of the first driving gear 31 and the middle part of the first driven gear 32 are respectively provided with a first through hole. Correspondingly, the base 10 is provided with a first sleeve 12 for the first through hole of the first driving gear 31 and the first through hole of the first driven gear 32 to be movably fitted.

[0052] In this embodiment, the first drive mechanism 20 includes a first pressing drive member 21 and a first clutch gear set. The first pressing drive member 21 is retractably mounted on the base 10. A first drive rack 22 and a first spring 23 are mounted on the first pressing drive member 21. The first drive rack 22 is meshed with the input end of the first clutch gear set. One end of the first spring 23 is connected to the first pressing drive member 21, and the other end of the first spring 23 is connected to the base 10. Furthermore, the first clutch gear set includes a first ratchet tooth 24, a second ratchet tooth 25, and a second spring 26 coaxially arranged. One end of the first ratchet tooth 24... The first ratchet portion 241 is provided at one end, and the outer peripheral wall of the first ratchet tooth 24 is provided with a first gear portion 242. The second ratchet tooth 25 is provided with a second ratchet portion 251 at one end, and the outer peripheral wall of the second ratchet tooth 25 is provided with a second gear portion 252. The first ratchet portion 241 and the second ratchet portion 251 mesh with each other. One end of the second spring 26 abuts against the end of the first ratchet tooth 24 away from the first ratchet portion 241, and the other end of the second spring 26 abuts against the base 10. The first gear portion 242 is meshed with the first drive rack 22, and the first connecting tooth 33 is meshed with the second gear portion 252. In other words, in this embodiment, the first clutch gear set uses a ratchet structure to achieve the clutch effect. When the user plays, pressing the first pressing drive member 21 with their finger causes the first drive rack 22 to drive the first gear section 242 to rotate. Simultaneously, the first spring 23 is compressed and stores energy. During rotation, the meshing action of the first ratchet section 241 and the second ratchet section 251 causes the first gear section 242 to drive the second gear section 252 to rotate synchronously. This, in turn, drives the first drive gear 31 to rotate, and finally, the first drive gear 31 drives the first ring gear 41 to engage. The first ring track 40 rotates, thus achieving the effect of rotating and playing. When the user releases their finger, the first pressing drive 21 moves in the opposite direction under the elastic force of the first spring 23, so that the first drive rack 22 drives the first gear part 242 to rotate in the opposite direction. During this process, since the first ratchet part 241 and the second ratchet part 251 are engaged, and under the action of the second spring 26, the first ratchet tooth 24 continuously disengages from the second ratchet tooth 25. That is, the first ratchet tooth 24 does not exert force on the second ratchet tooth 25, so that the second ratchet tooth 25 can still maintain the original rotation effect with the first drive gear 31.

[0053] Therefore, according to the present invention, the rotating track toy has a first ornament 43 detachably mounted on the first circular track 40. The first circular track 40 drives the first ornament 43 to move synchronously, creating a dynamic effect of the first ornament 43 running on the first circular track 40, which effectively improves the entertainment and fun of the rotating track toy. Furthermore, the shape of the first ornament 43 can be designed into different shapes according to needs, such as toy cars, cartoon characters, etc. The number of the first ornament 43 can also be designed to be multiple, so as to facilitate user replacement, further improving the playability and fun of the rotating track toy.

[0054] The following is combined Figures 1 to 9 The following is a detailed description of a specific embodiment of the rotating track toy according to the present invention. It is worth understanding that the following is merely an illustrative description and should not be construed as limiting the present invention.

[0055] This embodiment provides a rotating track toy, including a base 10, a first drive mechanism 20, a first rotating component 30, and a first annular track 40. The first drive mechanism 20 is movably mounted on the base 10, and the first rotating component 30 is rotatably mounted on the base 10. The first annular track 40 is engaged with the first rotating component 30. The first drive mechanism 20 is drivenly connected to the first rotating component 30, and the first drive mechanism 20 is used to drive the first rotating component 30 to rotate the first annular track 40. The first annular track 40 is rotatably mounted on the upper surface of the base 10, and a first insertion part 42 is provided on the top of the first annular track 40. A first ornament 43 is detachably inserted into the first insertion part 42.

[0056] Specifically, the first rotating component 30 in this embodiment includes a first driving gear 31 and a first driven gear 32. The first driving gear 31 and the first driven gear 32 are rotatably mounted on the base 10. The inner wall of the first annular track 40 is provided with a first annular tooth 41, which meshes with the first driving gear 31 and the first driven gear 32 respectively. The first driving gear 31 and the first driven gear 32 are spaced apart and have basically the same structure. The difference is that the end face of the first driving gear 31 is provided with an annular first connecting tooth 33 vertically downward. The first connecting tooth 33 is used to mesh with the first driving mechanism 20. Further, the middle part of the first driving gear 31 and the middle part of the first driven gear 32 are respectively provided with a first through hole. Correspondingly, the base 10 is provided with a first sleeve 12 for the first through hole of the first driving gear 31 and the first through hole of the first driven gear 32 to be movably fitted.

[0057] In this embodiment, the first drive mechanism 20 includes a first pressing drive member 21 and a first clutch gear set. The first pressing drive member 21 is retractably mounted on the base 10. A first drive rack 22 and a first spring 23 are mounted on the first pressing drive member 21. The first drive rack 22 is meshed with the input end of the first clutch gear set. One end of the first spring 23 is connected to the first pressing drive member 21, and the other end of the first spring 23 is connected to the base 10. Furthermore, the first clutch gear set includes a first ratchet tooth 24, a second ratchet tooth 25, and a second spring 26 coaxially arranged. One end of the first ratchet tooth 24... The first ratchet portion 241 is provided at one end, and the outer peripheral wall of the first ratchet tooth 24 is provided with a first gear portion 242. The second ratchet tooth 25 is provided with a second ratchet portion 251 at one end, and the outer peripheral wall of the second ratchet tooth 25 is provided with a second gear portion 252. The first ratchet portion 241 and the second ratchet portion 251 mesh with each other. One end of the second spring 26 abuts against the end of the first ratchet tooth 24 away from the first ratchet portion 241, and the other end of the second spring 26 abuts against the base 10. The first gear portion 242 is meshed with the first drive rack 22, and the first connecting tooth 33 is meshed with the second gear portion 252. In other words, in this embodiment, the first clutch gear set uses a ratchet structure to achieve the clutch effect. When the user plays, pressing the first pressing drive member 21 with their finger causes the first drive rack 22 to drive the first gear section 242 to rotate. Simultaneously, the first spring 23 is compressed and stores energy. During rotation, the meshing action of the first ratchet section 241 and the second ratchet section 251 causes the first gear section 242 to drive the second gear section 252 to rotate synchronously. This, in turn, drives the first drive gear 31 to rotate, and finally, the first drive gear 31 drives the first ring gear 41 to engage. The first ring track 40 rotates, thus achieving the effect of rotating and playing. When the user releases their finger, the first pressing drive 21 moves in the opposite direction under the elastic force of the first spring 23, so that the first drive rack 22 drives the first gear part 242 to rotate in the opposite direction. During this process, since the first ratchet part 241 and the second ratchet part 251 are engaged, and under the action of the second spring 26, the first ratchet tooth 24 continuously disengages from the second ratchet tooth 25. That is, the first ratchet tooth 24 does not exert force on the second ratchet tooth 25, so that the second ratchet tooth 25 can still maintain the original rotation effect with the first drive gear 31.

[0058] Furthermore, the rotating track toy in this embodiment also includes a second drive mechanism 50, a second rotating component 60, and a second annular track 70. The second drive mechanism 50 is movably mounted on the base 10, the second rotating component 60 is rotatably mounted on the base 10, and the second annular track 70 is engaged with the second rotating component 60. The second drive mechanism 50 is drivenly connected to the second rotating component 60, and the second drive mechanism 50 is used to drive the second rotating component 60 to rotate the second annular track 70. The second annular track 70 is rotatably mounted on the upper surface of the base 10, and a second insertion part 72 is provided on the top of the second annular track 70. A second ornament 73 is detachably inserted into the second insertion part 72. In addition, the circumference of the second annular track 70 is greater than the circumference of the first annular track 40, and the second annular track 70 is spaced apart from the outer side of the first annular track 40.

[0059] Specifically, in this embodiment, the structure of the second driving mechanism 50 is the same as that of the first driving mechanism 20, and the structure of the second rotating component 60 is similar to that of the first rotating component 30. The second rotating component 60 includes a second driving gear 61 and a second driven gear 62. The outer diameters of the second driving gear 61 and the second driven gear 62 are both larger than the outer diameters of the first driving gear 31 and the first driven gear 32. A second connecting tooth 63 is provided at one end of the second driving gear 61. The diameter of the second connecting tooth 63 is larger than the outer diameter of the first connecting tooth 33. A second through hole is provided through the middle of both the second driving gear 61 and the second driven gear 62. Correspondingly, the base 10 is provided with second through holes for the second driving gear 61. The second sleeve 13 is movably fitted into the second through hole of the second driven gear 62 and the second driven gear 62. This allows the second driving gear 61 and the second driven gear 62 to be respectively fitted into the two second sleeves 13 on the base 10, enabling them to be rotatably mounted on the base 10. Furthermore, the ratio of the outer diameter of the first connecting tooth 33 to the outer diameter of the second connecting tooth 63 is equal to the ratio of the outer diameter of the first driving gear 31 to the outer diameter of the second driving gear 61. Therefore, the number of presses required for the first driving mechanism 20 to drive the first circular track 40 to rotate one revolution is the same as the number of presses required for the second driving mechanism 50 to drive the second circular track 70 to rotate one revolution, allowing users to compete based on hand speed. In other words, in this embodiment, both the first circular track 40 and the second circular track 70 are elliptical tracks, and their focal points overlap.

[0060] Further, the second drive mechanism 50 of this embodiment includes a second pressing drive member 51 and a second clutch gear set. The second pressing drive member 51 is retractably mounted on the base 10. A second drive rack 52 and a third spring 53 are mounted on the second pressing drive member 51. The second drive rack 52 is meshed with the input end of the second clutch gear set. One end of the third spring 53 is connected to the second pressing drive member 51, and the other end of the third spring 53 is connected to the base 10. In addition, the second clutch gear set includes a third ratchet tooth 54, a fourth ratchet tooth 55, and a fourth spring 56 coaxially arranged. The third ratchet tooth 54... A third ratchet portion 541 is provided at one end, and a third gear portion 542 is provided on the outer peripheral wall of the third ratchet tooth 54. A fourth ratchet portion 551 is provided at one end of the fourth ratchet tooth 55, and a fourth gear portion 552 is provided on the outer peripheral wall of the fourth ratchet tooth 55. The third ratchet portion 541 and the fourth ratchet portion 551 mesh with each other. One end of the fourth spring 56 abuts against the end of the third ratchet tooth 54 away from the third ratchet portion 541, and the other end of the fourth spring 56 abuts against the base 10. The third gear portion 542 is meshed with the second drive rack 52, and the second connecting tooth 63 is meshed with the fourth gear portion 552. In other words, in this embodiment, the second clutch gear set uses a ratchet structure to achieve the clutch effect. Thus, when the user plays, pressing the second pressing drive 51 with their finger causes the second drive rack 52 to drive the third gear 542 to rotate. Simultaneously, the third spring 53 is compressed and stores energy. During rotation, the meshing of the third ratchet 541 and the fourth ratchet 551 causes the third gear 542 to drive the fourth gear 552 to rotate synchronously. This, in turn, drives the second drive gear 61 to rotate, and finally, the second drive gear 61 drives the second ring gear 71 to engage. The second ring track 70 rotates, thus achieving the effect of rotating and playing. When the user releases their finger, the second pressing drive 51 moves in the opposite direction under the elastic force of the third spring 53, so that the second drive rack 52 drives the third gear part 542 to rotate in the opposite direction. During this process, since the third ratchet part 541 and the fourth ratchet part 551 are engaged, and under the action of the fourth spring 56, the third ratchet tooth 54 continuously disengages from the fourth ratchet tooth 55. That is, the third ratchet tooth 54 does not exert force on the fourth ratchet tooth 55, so that the fourth ratchet tooth 55 can still maintain the original rotation effect with the second drive gear 61.

[0061] Therefore, according to this utility model, the rotating track toy, by rotatably setting a second circular track 70 on the base 10 and using a second drive mechanism 50 to drive the second rotating component 60 to rotate, thereby driving the second circular track 70 to rotate, has a simpler structure, lower cost, smaller size, and is easier to carry than traditional remote-controlled track toys, and offers higher playability and fun. Furthermore, by setting a first circular track 40 and a second circular track 70 on the base 10, this rotating track toy can also allow two users to compete, further enhancing the competitive fun and entertainment value of this rotating track toy.

[0062] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "left", "right", "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on this utility model.

[0063] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the rotating racetrack toy of this utility model. It should be noted that for those skilled in the art, several modifications and improvements can be made without departing from the concept of this utility model, and these all fall within the protection scope of this utility model.

Claims

1. A rotating racetrack toy, characterized in that: The device includes a base, a first drive mechanism, a first rotating component, and a first circular track. The first drive mechanism is movably disposed on the base, and the first rotating component is rotatably disposed on the base. The first circular track is engaged with the first rotating component. The first drive mechanism is drivenly connected to the first rotating component, and the first drive mechanism is used to drive the first rotating component to rotate the first circular track.

2. The rotating racetrack toy according to claim 1, characterized in that: The first circular track is provided with a first plug-in part, and a first ornament is detachably plugged into the first plug-in part.

3. The rotating racetrack toy according to claim 1, characterized in that: The first rotating component includes a first driving gear and a first driven gear, which are rotatably mounted on the base. The inner wall of the first annular track is provided with a first annular tooth, which meshes with the first driving gear and the first driven gear respectively. The first driving mechanism is drivenly connected to the first driving gear.

4. The rotating racetrack toy according to claim 3, characterized in that: The first driving mechanism includes a first pressing drive member and a first clutch gear set. The first pressing drive member is telescopically mounted on the base, and the first clutch gear set is rotatably mounted on the base. The first pressing drive member is meshed with the input end of the first clutch gear set, and the first driving gear is meshed with the output end of the first clutch gear set.

5. The rotating racetrack toy according to claim 4, characterized in that: The first pressing drive component is provided with a first driving rack and a first spring. The first driving rack is meshed with the input end of the first clutch gear set. One end of the first spring is connected to the first pressing drive component, and the other end of the first spring is connected to the base. When the first pressing drive is pressed by an external force, the first driving rack drives the first clutch gear set to rotate and drives the first drive gear to rotate. At the same time, the first pressing drive compresses the first spring. When the external force is removed, the first spring drives the first pressing drive to move in the opposite direction and causes the first driving rack to drive the first clutch gear set to rotate freely. At this time, the first drive gear is not driven by the first clutch gear set.

6. The rotating racetrack toy according to claim 4, characterized in that: The first clutch gear set includes a first ratchet tooth, a second ratchet tooth, and a second spring arranged coaxially. One end of the first ratchet tooth is provided with a first ratchet portion, and the outer peripheral wall of the first ratchet tooth is provided with a first gear portion. One end of the second ratchet tooth is provided with a second ratchet portion, and the outer peripheral wall of the second ratchet tooth is provided with a second gear portion. The first ratchet portion and the second ratchet portion mesh with each other. One end of the second spring abuts against the end of the first ratchet tooth away from the first ratchet portion, and the other end of the second spring abuts against the base. The first gear part is meshed with the first pressing drive member. One end of the first drive gear is coaxially provided with a first annular connecting tooth. The tooth direction of the first connecting tooth is parallel to the axis of the first drive gear. The first connecting tooth is meshed with the second gear part.

7. The rotating racetrack toy according to claim 3, characterized in that: The first driving mechanism includes a first driving gear and a first driving rocker arm. The first driving gear is coaxially provided with a first rotating shaft, which is rotatably mounted on the base. The first driving rocker arm is connected to the first rotating shaft. The first driving gear includes a double-layer gear coaxially provided. One layer of the first driving gear meshes with the first ring gear, and the other layer of the first driving gear meshes with the first driving gear. The first drive rocker arm is used to drive the first rotating shaft to rotate, which in turn drives the first drive gear to rotate.

8. The rotating racetrack toy according to claim 1, characterized in that: It also includes a second drive mechanism, a second rotating component, and a second circular track. The second drive mechanism is movably mounted on the base, the second rotating component is rotatably mounted on the base, the second circular track is engaged with the second rotating component, the second drive mechanism is drivenly connected to the second rotating component, and the second drive mechanism is used to drive the second rotating component to rotate the second circular track.

9. The rotating racetrack toy according to claim 8, characterized in that: The second circular track is provided with a second insertion part, and a second ornament is detachably inserted into the second insertion part.

10. The rotating racetrack toy according to claim 1, characterized in that: It also includes a lid, which is detachably mounted on the base.