A toy egg
By incorporating gravity-based components and elastic elements inside the toy egg, the shell is opened and the doll is launched using inertia. This solves the problem of insufficient fun and playability in existing egg-shaped blind box toys, enhancing the visual impact and enjoyment of the toy egg.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGZHOU LINGDONG CHUANGXIANG CULTURE & TECH
- Filing Date
- 2025-08-27
- Publication Date
- 2026-07-21
AI Technical Summary
Existing egg-shaped blind box toys have simple gameplay and low fun and playability, and users cannot increase visual impact and fun through simple operations.
Design a toy egg that uses first and second gravity-based components inside the shell to open the shell and launch the plush toy using inertia. This design allows for a detachable shell and a launchable plush toy, enhancing the novelty of the play experience.
By smashing the bottom of the shell to open the cover and launching the doll, the visual impact and fun of playing with the toy egg are increased. The ingenious gameplay does not require an external trigger switch, thus enhancing its playability.
Smart Images

Figure CN224523941U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of toy technology, and in particular to a toy egg. 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 people relax and de-stress in their daily lives. Among them, egg-shaped blind box toys generally contain various toy parts of different shapes inside the eggshell. Users only need to open the eggshell to find out what the hidden toy is. The gameplay is simple, but the fun and playability are relatively low. 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 toy egg with a clever design. Users can open the shell by hitting the bottom of the shell, and can launch the doll by hitting the bottom of the shell again, which increases the visual impact and fun of playing with the toy egg.
[0004] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0005] A toy egg includes a shell, a shell cover, a first twisted joint, a second twisted joint, a first gravity-operated component, a second gravity-operated component, a first elastic component, a second elastic component, a telescopic connecting block, and a doll.
[0006] The housing is a hollow structure with an open top. The first and second twisting members are respectively rotatably disposed on both sides of the inner wall of the housing. The telescopic connecting block is slidably disposed on the inner wall of the housing. One end of the first twisting member is connected to the inner wall of the shell cover, and the other end of the first twisting member abuts against one end of the telescopic connecting block. One end of the second twisting member is engaged with the shell cover. The shell cover is disposed on the upper part of the opening of the housing. The first gravity pendulum is rotatably disposed in the housing, and the first gravity pendulum abuts against the end of the second twisting member away from the shell cover.
[0007] The housing has a plug-in post inside facing its opening. The first elastic member and the second elastic member are telescopically disposed in the housing. One end of the first elastic member abuts against one end of the telescopic connecting block, and the other end of the first elastic member extends movably into the second elastic member, and the first elastic member is in a compressed state. One end of the second elastic member extends out of the plug-in post. The bottom of the doll is recessed to form a plug-in groove. A catapult is telescopically disposed in the plug-in groove. The plug-in groove is movably inserted into the plug-in post and engages with the second elastic member. The catapult stores energy and abuts against the end of the plug-in post. The second gravity pendulum is rotatably disposed in the housing, and the second gravity pendulum abuts against the second elastic member.
[0008] Therefore, according to the toy egg of this utility model, the shell cover is rotatably mounted on the shell via a first twisting member and engages with a second twisting member so that the shell cover can cover the upper part of the opening of the shell. The second twisting member cooperates with and abuts against the first gravity swing member. In this way, when the user holds the side wall of the shell and slams the bottom of the shell onto the table, the first gravity swing member is subjected to inertial force and swings, driving the second twisting member to twist and causing the second twisting member to disengage from the shell cover. At this time, the shell cover rotates and opens relative to the shell under the twisting action of the first twisting member, thus revealing the doll inside the shell. In addition, when the first twisting member twists, the first twisting member no longer abuts against the telescopic connecting block, at which point the second twisting member... When the first elastic element returns to its normal state and retracts from the second elastic element, the second elastic element is no longer constrained by the first elastic element. When the user holds the side wall of the shell again and slams the bottom of the shell onto the table, the second gravity pendulum is swayed by inertial force, which drives the second elastic element to slide back into the insertion post, thereby disengaging the second elastic element from the insertion groove. In this way, the doll is quickly ejected towards the opening of the shell under the action of the ejector in the energy storage state. That is to say, the toy egg of this utility model can open the shell when it is first smashed onto the table, and can eject the doll when it is smashed onto the table again, which increases the visual impact and fun of playing with the toy egg. Before the shell is opened, the first twisted connector abuts against the telescopic connecting block, causing the telescopic connecting block to abut against the first elastic element. This allows the first elastic element to move into the second elastic element. When the toy egg is smashed for the first time, the first gravity pendant swings due to inertia, while the second gravity pendant, constrained by the second elastic element, cannot swing. This ensures the toy won't be ejected when the egg is smashed for the first time. Only after the shell is opened does the first elastic element retract from the second elastic element, freeing the second elastic element and the second gravity pendant from the constraint of the first elastic element. The toy can then be ejected when the egg is smashed again. In other words, this toy egg is ingeniously designed with a novel and fun gameplay. It eliminates the need for a trigger switch on the outer wall of the shell, using the first and second gravity pendants as hidden trigger switches. Users open the shell by smashing the egg, and once opened, the toy pops out by smashing it again, greatly enhancing the toy egg's fun and playability.
[0009] In one embodiment, a box is provided at the inner bottom of the housing, and the plug-in post is integrally formed in the middle of the top of the box. The first elastic member and the second elastic member are respectively telescopically disposed in the box, and the telescopic direction of the first elastic member is perpendicular to the telescopic direction of the second elastic member. One end of the first elastic member extends out of the box and abuts against the telescopic connecting block. A notch is provided on the side wall of the plug-in post. The upper end of the second elastic member extends into the interior of the plug-in post, and a locking block is provided at the upper end of the second elastic member. The locking block extends out of the notch and engages with the plug-in sliding groove. The second elastic member is in a compressed state, and the second gravity pendulum is rotatably disposed in the box.
[0010] In one embodiment, the locking block is provided with a first ramp inclined towards the top of the insertion post, and a slot is provided on the side wall of the insertion slide. The ejector includes an ejector slider and an ejector spring. The ejector slider is slidably disposed in the insertion slide and is connected to the inner top of the insertion slide through the ejector spring. When the doll is inserted into the insertion post through the insertion slide, the insertion post pushes the ejector slider to slide in the direction of compressing the ejector spring, and the opening of the insertion slide passes through the first ramp and pushes the locking block into the interior of the insertion post until the ejector slider slides past the slot, at which point the locking block engages with the slot.
[0011] In one embodiment, the first elastic element includes a first slider and a first spring. The first slider is telescopically disposed in the housing via the first spring. The second elastic element includes a second slider and a second spring. The second slider is provided with a limiting through hole and is telescopically disposed in the housing via the second spring. When the cover is engaged with the first twisting member, one end of the first twisting member pushes the telescopic connecting block to move, and the telescopic connecting block pushes the first elastic element to move in the direction of compressing the first spring, so that one end of the first elastic element is inserted into the limiting through hole of the second slider. When the first twisting member is disengaged from the cover, the first twisting member drives the cover to rotate and open, and the first twisting member separates from the telescopic connecting block. The first slider exits the limiting through hole under the elastic force of the first spring.
[0012] In one embodiment, the inner wall of the housing is provided with a limiting channel for the telescopic connecting block to slide. The two ends of the telescopic connecting block are respectively provided with a second slope inclined towards the middle. One end of the first twisting member abuts against one of the second slopes, and one end of the first slider abuts against the other second slope.
[0013] In one embodiment, the first torsion member includes a first torsion rod and a first torsion spring. The middle part of the first torsion rod is torsionally disposed on the inner wall of the housing through the first torsion spring. One end of the first torsion rod is connected to the housing cover, and the other end of the first torsion rod abuts against the telescopic connecting block.
[0014] In one embodiment, the second torsion member includes a second torsion rod and a second torsion spring. The middle part of the second torsion rod is rotatably disposed on the inner wall of the housing through the second torsion spring. A first hook is provided at one end of the second torsion rod, and a second hook is provided on the housing cover. The first hook and the second hook engage with each other. The side wall of the other end of the second torsion rod abuts against the first gravity pendulum.
[0015] In one embodiment, the first gravity pendulum includes a first pendulum rod and a first counterweight. The middle part of the first pendulum rod is rotatably disposed on the inner wall of the housing. The side wall of one end of the first pendulum rod abuts against the side wall of the end of the second torsion rod away from the second hook. The other end of the first pendulum rod is connected to the first counterweight, and the first pendulum rod is inclinedly disposed on the housing.
[0016] In one embodiment, the second gravity pendulum includes a second pendulum rod and a second counterweight. The middle part of the second pendulum rod is rotatably mounted on the box body. The side wall of one end of the second pendulum rod abuts against the second slider. The other end of the second pendulum rod is connected to the second counterweight, and the second pendulum rod is inclinedly mounted in the box body.
[0017] In one embodiment, the bottom of the shell is a planar structure; the shell and the cover together form an egg-shaped structure.
[0018] To better understand and implement this invention, the following detailed description is provided in conjunction with the accompanying drawings. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure of the toy egg of this utility model;
[0020] Figure 2 This is a schematic diagram showing the opening of the toy egg of this utility model;
[0021] Figure 3 This is one of the exploded view diagrams of the toy egg of this utility model;
[0022] Figure 4 This is the second exploded view of the toy egg of this utility model;
[0023] Figure 5 This is the third exploded view of the toy egg of this utility model;
[0024] Figure 6 This is the fourth exploded view of the toy egg of this utility model;
[0025] Figure 7 This is the fifth exploded view of the toy egg of this utility model.
[0026] Explanation of reference numerals in the attached figures:
[0027] 10. Shell; 11. Box body; 12. Insertion post; 13. Notch; 20. Shell cover; 21. Second hook; 30. First torsion joint; 31. First torsion rod; 32. Rotating shaft; 40. Second torsion joint; 41. Second torsion rod; 42. Second torsion spring; 43. First hook; 50. First gravity pendant; 51. First pendant rod; 52. First counterweight; 60. Second gravity pendant; 70. Telescopic connecting block; 80. Doll; 90. First elastic element; 100. Second elastic element; 101. Locking block. Detailed Implementation
[0028] 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.
[0029] 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 people relax and de-stress in their daily lives. Among them, egg-shaped blind box toys generally contain various toy parts of different shapes inside the eggshell. Users only need to open the eggshell to find out what the hidden toy is. The gameplay is simple, but the fun and playability are relatively low.
[0030] In view of this, the present invention provides a toy egg. The toy egg according to the embodiment of the present invention is ingeniously designed; the user can open the shell by hitting the bottom of the shell, and can launch the doll by hitting the bottom of the shell again, increasing the visual impact and fun of playing with the toy egg.
[0031] Please see Figures 1 to 7This utility model provides a toy egg, including a shell 10, a shell cover 20, a first twisting member 30, a second twisting member 40, a first gravity swing member 50, a second gravity swing member 60, a first elastic member 90, a second elastic member 100, a telescopic connecting block 70, and a doll 80. The shell 10 is a hollow structure with an opening at the top. The first twisting member 30 and the second twisting member 40 are respectively rotatably disposed on both sides of the inner wall of the shell 10. The telescopic connecting block 70 is slidably disposed on the inner wall of the shell 10. One end of the first twisting member 30 is connected to the inner wall of the shell cover 20, and the other end of the first twisting member 30 abuts against one end of the telescopic connecting block 70. One end of the second twisting member 40 is engaged with the shell cover 20, and the shell cover 20 covers the upper end of the opening of the shell 10. The first gravity swing member 50 is rotatably disposed in the shell 10, and the first gravity swing member 50 and the second gravity swing member 60 are connected to the shell cover 20. The end of the twisted connector 40 away from the cover 20 abuts against it; the inside of the housing 10 is provided with a plug post 12 facing its opening direction; the first elastic member 90 and the second elastic member 100 are respectively telescopically disposed in the housing 10; one end of the first elastic member 90 abuts against one end of the telescopic connecting block 70; the other end of the first elastic member 90 extends movably into the second elastic member 100; and the first elastic member 90 is in a compressed state; one end of the second elastic member 100 extends out of the plug post 12; the bottom of the doll 80 is recessed to form a plug groove; a catapult is telescopically disposed in the plug groove; the plug groove is movably inserted into the plug post 12 and engaged with the second elastic member 100; and the catapult stores energy and abuts against the end of the plug post 12; the second gravity swing member 60 is rotatably disposed in the housing 10; and the second gravity swing member 60 abuts against the second elastic member 100.
[0032] In this embodiment of the invention, the bottom of the shell 10 is a flat structure to reduce damage to the bottom of the shell 10 when it is dropped onto a table or the ground. In some embodiments, the shell 10 and the cover 20 together form an egg-shaped structure. It is worth noting that the shell 10 and the cover 20 of this invention can be designed not only as an egg-shaped structure, but also as a box or other shapes, and are not limited to the egg-shaped structure of this embodiment.
[0033] In this embodiment of the utility model, a box body 11 is provided at the inner bottom of the housing 10. The insertion post 12 is integrally formed in the middle of the top of the box body 11. The first elastic member 90 and the second elastic member 100 are respectively telescopically disposed in the box body 11, and the telescopic direction of the first elastic member 90 is perpendicular to the telescopic direction of the second elastic member 100. One end of the first elastic member 90 extends out of the box body 11 and abuts against the telescopic connecting block 70. A notch 13 is provided on the side wall of the insertion post 12. The upper end of the second elastic member 100 extends into the interior of the insertion post 12, and a locking block 101 is provided at the upper end of the second elastic member 100. The locking block 101 extends out of the notch 13 and engages with the insertion groove. The second elastic member 100 is in a compressed state. The second gravity swing member 60 is rotatably disposed in the box body 11. That is to say, the insertion post 12 is a hollow cylindrical structure, and its bottom is connected to the interior of the box body 11 so that the upper end of the second elastic member 100 can be inserted into the interior of the insertion post 12.
[0034] Furthermore, the locking block 101 is inclined with a first ramp towards the top of the insertion post 12, and a slot is provided on the side wall of the insertion slide. The ejector includes an ejector slider and an ejector spring. The ejector slider is slidably disposed in the insertion slide and is connected to the inner top of the insertion slide through the ejector spring. When the doll 80 is inserted into the insertion post 12 through the insertion slide, the insertion post 12 pushes the ejector slider to slide in the direction of compressing the ejector spring, and the slot of the insertion slide passes through the first ramp and pushes the locking block 101 into the interior of the insertion post 12 until the ejector slider slides past the slot, and the locking block 101 engages with the slot. To facilitate the engagement between the locking block 101 and the insertion groove, in this embodiment of the invention, the insertion post 12 is a square column structure, the insertion groove is a square slot structure, and the ejector slider is a square column structure. Furthermore, the bottom of the ejector slider is flush with the opening of the insertion groove. This prevents the ejector slider from protruding from the bottom of the doll 80. When the doll 80 is engaged with the insertion post 12, the opening of the insertion groove of the doll 80 is aligned with the insertion post 12 and pressed down forcefully. Under the pushing action of the insertion post 12, the ejector slider moves in the direction of compressing the ejector spring, allowing the insertion groove to insert into the insertion groove. In the column 12, and by utilizing the cooperation between the first ramp at the upper end of the locking block 101 and the insertion groove, the insertion groove can push the locking block 101 back into the insertion column 12 through the edge of the groove until the locking slot of the insertion groove corresponds to the locking block 101. Then the locking block 101 extends out of the insertion column 12 and locks into the locking slot, thereby locking the doll 80 on the insertion column 12. At the same time, the ejector spring is in a compressed and energy-storing state. In this way, when the locking block 101 is disengaged from the locking slot, the ejector slider can quickly reset under the action of the ejector spring and drive the doll 80 to be ejected quickly towards the opening of the housing 10.
[0035] In this embodiment of the utility model, the first elastic element 90 includes a first slider and a first spring. The first slider is telescopically disposed in the housing 11 via the first spring. The second elastic element 100 includes a second slider and a second spring. The second slider is provided with a limiting through hole and is telescopically disposed in the housing 11 via the second spring. When the cover 20 is engaged with the first twisting member 30, one end of the first twisting member 30 pushes the telescopic connecting block 70 to move, and pushes the first elastic element 90 in the direction of compressing the first spring via the telescopic connecting block 70, so that one end of the first elastic element 90 is inserted into the limiting through hole of the second slider. When the first twisting member 30 is disengaged from the cover 20, the first twisting member 30 drives the cover 20 to rotate and open, and the first twisting member 30 separates from the telescopic connecting block 70. The first slider exits the limiting through hole under the elastic force of the first spring. The inner wall of the housing 10 is provided with a limiting channel for the sliding of the telescopic connecting block 70. The two ends of the telescopic connecting block 70 are respectively provided with second ramps inclined towards the center. One end of the first twisting member 30 abuts against one of the second ramps, and one end of the first slider abuts against the other second ramp. That is, in this embodiment of the invention, the telescopic connecting block 70 cooperates with the first elastic member 90 and the first twisting member 30. When the first twisting member 30 drives the housing cover 20 to twist open, the first twisting member 30 no longer applies pressure to the telescopic connecting block 70, allowing the first slider to disengage from the second slider under the elastic force of the first spring, thereby unlocking the second slider so that it can disengage from the insertion groove.
[0036] Specifically, the first torsion joint 30 of this embodiment includes a first torsion rod 31 and a first torsion spring. The middle part of the first torsion rod 31 is rotatably mounted on the inner wall of the housing 10 via the first torsion spring. One end of the first torsion rod 31 is connected to the housing cover 20, and the other end of the first torsion rod 31 abuts against the telescopic connecting block 70. The middle part of the first torsion rod 31 is rotatably mounted on the inner wall of the housing 10 via a rotating shaft 32, and the first torsion spring is movably sleeved on the rotating shaft 32. One end of the first torsion spring is connected to the first torsion rod 31, and the other end is connected to the inner wall of the housing 10. In addition, the second torsion member 40 includes a second torsion rod 41 and a second torsion spring 42. The middle part of the second torsion rod 41 is rotatably disposed on the inner wall of the housing 10 through the second torsion spring 42. A first hook 43 is provided at one end of the second torsion rod 41, and a second hook 21 is provided on the housing cover 20. The first hook 43 and the second hook 21 are engaged and locked together. The side wall of the other end of the second torsion rod 41 abuts against the first gravity swing member 50. The inner wall of the housing 10 has protrusions for the second torsion rod 41 and the first gravity pendant 50 to be movably fitted. The first gravity pendant 50 includes a first pendant rod 51 and a first counterweight 52. The middle part of the first pendant rod 51 is rotatably mounted on the inner wall of the housing 10. One end of the first pendant rod 51 abuts against the side wall of the end of the second torsion rod 41 away from the second hook 21. The other end of the first pendant rod 51 is connected to the first counterweight 52, and the first pendant rod 51 is inclined on the housing 10. In this way, when the user plays with the egg, when the bottom of the toy egg touches the table or other surface, the first pendant rod 51 swings due to gravity and inertia. At this time, the first pendant rod 51 pushes the second torsion rod 41 to twist, so that the second torsion rod 41 disengages from the shell cover 20, thereby unlocking the shell cover 20 so that the first torsion member can drive the shell cover 20 to rotate.
[0037] Furthermore, the second gravity-operated component 60 of this embodiment includes a second pendulum rod and a second counterweight. The middle part of the second pendulum rod is rotatably mounted on the housing 11. One end of the second pendulum rod abuts against the second slider, and the other end of the second pendulum rod is connected to the second counterweight. The second pendulum rod is inclined within the housing 11. That is, when the first slider retracts from the second slider, the second slider is no longer constrained by the first slider. When the user smashes the egg again, the second pendulum rod swings under the inertia of gravity, thereby driving the second slider to move in the direction of compressing the second spring and causing the locking block 101 of the second slider to disengage from the locking groove of the insertion slide, thus unlocking the doll 80.
[0038] Therefore, according to the toy egg of this utility model, the shell cover 20 is rotatably mounted on the shell 10 via the first twisting member 30 and engages with the second twisting member 40 so that the shell cover 20 can cover the upper end of the opening of the shell 10. The second twisting member 40 cooperates with the first gravity swing member 50 to abut. In this way, when the user holds the side wall of the shell 10 and smashes the bottom of the shell 10 onto the table, the first gravity swing member 50 is subjected to inertial force and swings, driving the second twisting member 40 to twist, causing the second twisting member 40 to disengage from the shell cover 20. At this time, the shell cover 20 rotates and opens relative to the shell 10 under the twisting action of the first twisting member 30, thereby revealing the doll 80 inside the shell 10. In addition, when the first twisting member 30 twists, the first twisting member 30 no longer abuts against the telescopic connecting block 70. At this time, the first elastic element 90 returns to its normal state and exits the second elastic element 100, thereby freeing the second elastic element 100 from the constraint of the first elastic element 90. When the user holds the side wall of the shell 10 again and smashes the bottom of the shell 10 onto the table, the second gravity pendulum 60 is subjected to inertial force and swings, driving the second elastic element 100 to slide so that the second elastic element 100 retracts into the insertion post 12, thereby realizing the disengagement between the second elastic element 100 and the insertion groove. In this way, the doll 80 is quickly ejected towards the opening of the shell 10 under the action of the ejector in the energy storage state. That is to say, the toy egg of this utility model can open the shell cover 20 when it is smashed onto the table for the first time, and can eject the doll 80 when it is smashed onto the table again, increasing the visual impact and fun of playing with the toy egg. Before the shell 20 is opened, the first twisted connector 30 abuts against the telescopic connecting block 70, causing the telescopic connecting block 70 to abut against the first elastic member 90. This allows the first elastic member 90 to move into the second elastic member 100. Therefore, when the toy egg is smashed for the first time, the first gravity pendant 50 swings due to inertia, while the second gravity pendant 60 cannot swing due to the constraint of the second elastic member 100. This ensures that the toy 80 will not be triggered and ejected when the toy egg is smashed for the first time. Only when the shell 20 is opened does the first elastic member 90 retract from the second elastic member 100. This allows the second elastic element 100 and the second gravity ornament 60 to be freed from the constraint of the first elastic element 90, enabling the doll 80 to be ejected when the toy egg is smashed again. In other words, the toy egg of this invention is ingeniously designed and has a novel and interesting way of playing. It does not require a trigger switch on the outer wall of the shell 10. Instead, the first gravity ornament 50 and the second gravity ornament 60 are used as hidden trigger switches. Users can open the shell 20 by smashing the egg. Once the shell 20 is open, the doll 80 can be ejected by smashing the egg again, greatly improving the fun and playability of the toy egg.
[0039] 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.
[0040] 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 utility model toy egg. It should be noted that those skilled in the art can make several modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model.
Claims
1. A toy egg, characterized in that: Includes a shell, a shell cover, a first twisted connector, a second twisted connector, a first gravity pendant, a second gravity pendant, a first elastic component, a second elastic component, a telescopic connecting block, and a doll; The housing is a hollow structure with an open top. The first and second twisting members are respectively rotatably disposed on both sides of the inner wall of the housing. The telescopic connecting block is slidably disposed on the inner wall of the housing. One end of the first twisting member is connected to the inner wall of the shell cover, and the other end of the first twisting member abuts against one end of the telescopic connecting block. One end of the second twisting member is engaged with the shell cover. The shell cover is disposed on the upper part of the opening of the housing. The first gravity pendulum is rotatably disposed in the housing, and the first gravity pendulum abuts against the end of the second twisting member away from the shell cover. The housing has a plug-in post inside facing its opening. The first elastic member and the second elastic member are telescopically disposed in the housing. One end of the first elastic member abuts against one end of the telescopic connecting block, and the other end of the first elastic member extends movably into the second elastic member, and the first elastic member is in a compressed state. One end of the second elastic member extends out of the plug-in post. The bottom of the doll is recessed to form a plug-in groove. A catapult is telescopically disposed in the plug-in groove. The plug-in groove is movably inserted into the plug-in post and engages with the second elastic member. The catapult stores energy and abuts against the end of the plug-in post. The second gravity pendulum is rotatably disposed in the housing, and the second gravity pendulum abuts against the second elastic member.
2. The toy egg according to claim 1, characterized in that: The inner bottom of the housing is provided with a box body, and the plug-in post is integrally formed in the middle of the top of the box body. The first elastic member and the second elastic member are respectively telescopically disposed in the box body, and the telescopic direction of the first elastic member is perpendicular to the telescopic direction of the second elastic member. One end of the first elastic member extends out of the box body and abuts against the telescopic connecting block. The side wall of the plug-in post is provided with a notch. The upper end of the second elastic member extends into the interior of the plug-in post, and the upper end of the second elastic member is provided with a locking block. The locking block extends out of the notch and engages with the plug-in sliding groove. The second elastic member is in a compressed state, and the second gravity pendulum is rotatably disposed in the box body.
3. The toy egg according to claim 2, characterized in that: The locking block is inclined with a first ramp towards the top of the insertion post, and a slot is provided on the side wall of the insertion slide. The ejector includes an ejector slider and an ejector spring. The ejector slider is slidably disposed in the insertion slide and is connected to the inner top of the insertion slide through the ejector spring. When the doll is inserted into the insertion post through the insertion slide, the insertion post pushes the ejector slider to slide in the direction of compressing the ejector spring, and the opening of the insertion slide passes through the first ramp and pushes the locking block into the interior of the insertion post until the ejector slider slides past the slot, at which point the locking block engages with the slot.
4. The toy egg according to claim 2, characterized in that: The first elastic element includes a first slider and a first spring. The first slider is telescopically disposed in the housing via the first spring. The second elastic element includes a second slider and a second spring. The second slider is provided with a limiting through hole and is telescopically disposed in the housing via the second spring. When the cover is engaged with the first twisting member, one end of the first twisting member pushes the telescopic connecting block to move, and the telescopic connecting block pushes the first elastic element to move in the direction of compressing the first spring, so that one end of the first elastic element is inserted into the limiting through hole of the second slider. When the first twisting member is disengaged from the cover, the first twisting member drives the cover to rotate and open, and the first twisting member separates from the telescopic connecting block. The first slider exits the limiting through hole under the elastic force of the first spring.
5. The toy egg according to claim 4, characterized in that: The inner wall of the housing is provided with a limiting channel for the telescopic connecting block to slide. The two ends of the telescopic connecting block are respectively provided with a second slope inclined towards the middle. One end of the first twisting member abuts against one of the second slopes, and one end of the first slider abuts against the other second slope.
6. The toy egg according to claim 1, characterized in that: The first torsion joint includes a first torsion rod and a first torsion spring. The middle part of the first torsion rod is torsionally disposed on the inner wall of the housing through the first torsion spring. One end of the first torsion rod is connected to the housing cover, and the other end of the first torsion rod abuts against the telescopic connecting block.
7. The toy egg according to claim 1, characterized in that: The second torsion member includes a second torsion rod and a second torsion spring. The middle part of the second torsion rod is rotatably disposed on the inner wall of the housing through the second torsion spring. A first hook is provided at one end of the second torsion rod, and a second hook is provided on the housing cover. The first hook and the second hook are engaged and locked together. The side wall of the other end of the second torsion rod abuts against the first gravity pendulum.
8. The toy egg according to claim 7, characterized in that: The first gravity pendulum includes a first pendulum rod and a first counterweight. The middle part of the first pendulum rod is rotatably disposed on the inner wall of the housing. The side wall of one end of the first pendulum rod abuts against the side wall of the end of the second torsion rod away from the second hook. The other end of the first pendulum rod is connected to the first counterweight, and the first pendulum rod is inclinedly disposed on the housing.
9. The toy egg according to claim 4, characterized in that: The second gravity pendulum includes a second pendulum rod and a second counterweight. The middle part of the second pendulum rod is rotatably mounted on the box body. The side wall of one end of the second pendulum rod abuts against the second slider. The other end of the second pendulum rod is connected to the second counterweight, and the second pendulum rod is inclinedly mounted in the box body.
10. The toy egg according to claim 1, characterized in that: The bottom of the shell is a planar structure; the shell and the cover together form an egg-shaped structure.