Projectile toys and toys

By designing a launching toy that combines an acceleration mechanism and a launching mechanism, the object to be launched can be rotated and launched, solving the problem of insufficient playability of existing launching toys, providing multiple ways to play, and enhancing the fun and competitiveness of the game.

CN224573218UActive Publication Date: 2026-07-31ALPHA GROUP CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ALPHA GROUP CO LTD
Filing Date
2025-06-23
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing launching toys lack playability, as they can only launch objects directly, and lack diverse ways to play.

Method used

Design a launching toy, including a launcher, a first accessory, and a second accessory. Through the combination of an acceleration mechanism and a launching mechanism, the object to be launched is rotated and launched, forming a gun shape and providing a variety of ways to play.

Benefits of technology

It improves the playability of launching toys, allowing the object to be launched to both rotate and launch, thus enhancing the fun and competitiveness of the game.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application discloses a launching toy and a toy. The launching toy includes a launcher, a first accessory, and a second accessory. The launcher is adapted to mount an object to be launched. The first accessory is connected to the launcher and is adapted to act on the launcher to cause the launcher to rotate the object to be launched. The second accessory is connected to the launcher and is adapted to act on the launcher to cause the launcher to launch the object to be launched. The launcher, the first accessory, and the second accessory are connected to form a gun shape. Through the cooperation of the launcher, the first accessory, and the second accessory, the object to be launched can not only be launched but also launched in a rotating state, which helps to improve playability. The launching toy also has multiple ways to play, satisfying more play needs.
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Description

Technical Field

[0001] This application relates to the field of toy technology, and in particular to a launching toy and a toy. Background Technology

[0002] Launching toys can launch objects, providing children with entertainment and playful fun, improving their motor skills and coordination, promoting interaction and teamwork among children, and benefiting their growth and development. However, currently available launching toys can only launch objects directly, and their playability still needs improvement. Utility Model Content

[0003] This application aims to at least partially solve one of the technical problems in the related art. To this end, this application proposes a launching toy.

[0004] To achieve the above objectives, this application discloses a launching toy, the launching toy comprising:

[0005] A transmitter, suitable for mounting an object to be launched;

[0006] A first accessory, connected to the transmitter, is adapted to act on the transmitter to cause the transmitter to rotate the object to be launched; and

[0007] The second accessory is connected to the launcher. The second accessory is adapted to act on the launcher so that the launcher drives the object to be launched. The launcher, the first accessory and the second accessory are connected to form a gun.

[0008] In some embodiments of this application, the transmitter includes an acceleration mechanism, and the first accessory is adapted to act on the acceleration mechanism to cause the acceleration mechanism to rotate the object to be launched.

[0009] In some embodiments of this application, the acceleration mechanism includes an acceleration gear adapted to mesh with the object to be launched, and the first accessory is adapted to drive the acceleration gear to rotate so as to rotate the object to be launched.

[0010] In some embodiments of this application, the first accessory includes a slider that is reciprocating to drive the acceleration gear to rotate.

[0011] In some embodiments of this application, the first accessory includes a body portion, the first accessory being adapted to be connected to the transmitter via the body portion, the slider being adapted to reciprocate along the extension direction of the body portion, and to wrap around a portion of the body portion circumferentially.

[0012] In some embodiments of this application, the first accessory includes a clutch gear;

[0013] When the slider moves in one of the reciprocating directions, it drives the clutch gear to rotate, so that the clutch gear rotates to the meshing position and is connected to the acceleration gear for transmission.

[0014] When the slider moves in the other direction of the reciprocating motion, it drives the clutch gear to rotate in the opposite direction, so that the clutch gear rotates to the disengaged position and separates from the acceleration gear.

[0015] In some embodiments of this application, the first accessory includes an arc-shaped groove, the clutch gear is rotatably disposed in the arc-shaped groove, one end of the arc-shaped groove constitutes the engagement position, and the other end constitutes the disengagement position.

[0016] In some embodiments of this application, the first accessory includes a rack and an input gear, the slider is connected to the rack and can drive the rack to reciprocate, the rack meshes with the input gear, and the input gear is connected to the clutch gear in a transmission connection.

[0017] In some embodiments of this application, the first accessory includes an intermediate gear, the intermediate gear comprising:

[0018] The first gear section is connected to the input gear transmission;

[0019] The second gear section is coaxially arranged with the first gear section and is connected to the clutch gear transmission;

[0020] An elastic part is connected to the first gear part to rotate synchronously. The elastic part and the first gear part clamp the second gear part. One of the elastic part and the second gear part is provided with a locking protrusion and the other is provided with a groove. The locking protrusion is engaged with the groove to drive the second gear part to rotate. A plurality of locking protrusions or grooves provided on the second gear part are arranged alternately along the circumference of the second gear part.

[0021] In some embodiments of this application, the first accessory includes:

[0022] The body portion, wherein the first accessory is adapted to be connected to the transmitter via the body portion, and the slider is disposed on the body portion and is reciprocating;

[0023] A rack is provided on the main body and connected to the slider so that it can be driven by the slider to reciprocate. The rack is connected to the acceleration gear in a transmission.

[0024] A limiting mechanism is provided on the main body, and the limiting mechanism is adapted to stop the rack when the slider moves to a preset position in a first direction.

[0025] In some embodiments of this application, the first accessory includes an extension portion adapted to connect with the main body portion. When the extension portion is connected to the main body portion, it drives the limiting mechanism to avoid the rack, so that the rack passes over the limiting mechanism when the slider moves in the first direction.

[0026] In some embodiments of this application, the limiting mechanism includes a baffle, and the extended portion includes a push rod, which is adapted to drive the baffle to avoid the rack when the extended portion and the main body are connected.

[0027] In some embodiments of this application, the extended portion includes a power supply module, the first accessory includes a power consumption module disposed on the main body, the power supply module and the power consumption module are adapted to be connected to form a circuit loop when the extended portion and the main body are connected, and the power consumption module is adapted to emit light and / or sound when energized.

[0028] In some embodiments of this application, one of the power supply module and the power consumption module is provided with a pin and the other is provided with a socket, and the pin is adapted to be inserted into the socket.

[0029] In some embodiments of this application, the transmitter includes a launching mechanism, and the second accessory includes a release mechanism adapted to act on the launching mechanism to cause the launching mechanism to drive the object to be launched.

[0030] In some embodiments of this application, the launching mechanism includes:

[0031] A push plate, wherein the object to be launched is adapted to move the push plate when installed in the launcher;

[0032] A locking element is adapted to lock the push plate when the push plate moves to a preset position, and is adapted to be unlocked by the release mechanism;

[0033] When the locking member unlocks the push plate, the push plate is adapted to reset under the action of elastic force to drive the object to be launched.

[0034] In some embodiments of this application, the launching mechanism further includes a push rod, and the releasing mechanism is adapted to drive the push rod to move so that the push rod drives the locking member to move and unlock the push plate, wherein the direction of movement of the push rod intersects the direction of movement of the locking member.

[0035] In some embodiments of this application, the transmitter and the first accessory are detachably connected;

[0036] And / or, the transmitter and the second accessory are detachably connected.

[0037] A second aspect of this application discloses a toy comprising a launch object and the aforementioned launching toy.

[0038] Other advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description or may be learned by practice of this application. Attached Figure Description

[0039] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other designs can be obtained based on the structures shown in these drawings without creative effort.

[0040] Figure 1 This is a schematic diagram of a launching toy in some embodiments;

[0041] Figure 2 Exploded views of the launching toy in some embodiments;

[0042] Figure 3 This is a schematic diagram of the object to be launched being installed on the transmitter in some embodiments;

[0043] Figure 4 This is a schematic diagram of the transmitter in some embodiments;

[0044] Figure 5 This is another schematic diagram of the transmitter in some embodiments;

[0045] Figure 6 This is a third schematic diagram of the transmitter in some embodiments;

[0046] Figure 7 This is a schematic diagram showing the cooperation between the object to be launched, the launching mechanism, and the acceleration mechanism in some embodiments;

[0047] Figure 8 This is a schematic diagram showing the cooperation between the object to be launched and the acceleration mechanism in some embodiments;

[0048] Figure 9 This is a schematic diagram showing the cooperation between the object to be launched and the launching mechanism in some embodiments;

[0049] Figure 10 for Figure 9 The diagram shown is an exploded view of the structure.

[0050] Figure 11 This is a schematic diagram of the first component in some embodiments;

[0051] Figure 12 This is an exploded view of the first component in some embodiments;

[0052] Figure 13 This is a schematic diagram of the rack and gear engagement in some embodiments (the extended part has not yet been installed into the main body);

[0053] Figure 14 A schematic diagram of the rack and accelerator gear engagement in some embodiments (showing the arcuate groove);

[0054] Figure 15 This is a schematic diagram showing the clutch gear in the disengaged position in some embodiments;

[0055] Figure 16 This is a schematic diagram showing the clutch gear in the meshing position in some embodiments;

[0056] Figure 17 This is a schematic diagram of the intermediate gear in some embodiments;

[0057] Figure 18 Here is an exploded view of the intermediate gear in some embodiments;

[0058] Figure 19 Another exploded view of the intermediate gear in some embodiments;

[0059] Figure 20 This is a schematic diagram of the extension portion being installed onto the main body portion in some embodiments;

[0060] Figure 21 These are schematic diagrams of partial structures of the extended portion in some embodiments;

[0061] Figure 22 This is a schematic diagram of the body portion in some embodiments;

[0062] Figure 23 This is a schematic diagram of the second component in some embodiments;

[0063] Figure 24 This is another schematic diagram of the second accessory in some embodiments;

[0064] Figure 25 This is a schematic diagram of the release mechanism in some embodiments;

[0065] Figure 26 This is another schematic diagram of the release mechanism in some embodiments;

[0066] Figure 27 This is an exploded view of the release mechanism in some embodiments.

[0067] Explanation of icon numbers:

[0068] First component 1000, slider 1100, body 1200, rack 1300, input gear 1400, intermediate gear 1500, first gear part 1510, second gear part 1520, elastic part 1530, locking protrusion 1541, groove 1542, clutch gear 1600, arc groove 1700, meshing position 1710, disengagement position 1720, limiting mechanism 1800, baffle 1810, power module 1900, socket 1910, second component Component 2000, release mechanism 2100, trigger 2110, transmission component 2120, lever 2130, launcher 3000, acceleration mechanism 3100, acceleration gear 3110, speed measuring gear 3120, launching mechanism 3200, push plate 3210, locking component 3220, push rod 3230, push rod inclined surface 3231, object to be launched 4000, extension part 5000, push rod 5100, push rod inclined surface 5110, power supply module 5200, pin 5210.

[0069] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0070] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0071] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0072] In this application, unless otherwise expressly specified and limited, the terms "connection," "fixed," etc., should be interpreted broadly. For example, "fixed" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0073] Furthermore, the use of terms such as "first" and "second" in this application is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. If the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed in this application.

[0074] The first aspect of this application discloses a launching toy, which, in some embodiments, combines... Figures 1 to 3 As shown, the launching toy includes a launcher 3000, a first accessory 1000, and a second accessory 2000. The launcher 3000 is adapted to mount an object 4000 to be launched. The first accessory 1000 is connected to the launcher 3000 and is adapted to act on the launcher 3000 to make the launcher 3000 rotate the object 4000 to be launched. The second accessory 2000 is connected to the launcher 3000 and is adapted to act on the launcher 3000 to make the launcher 3000 launch the object 4000. The launcher 3000, the first accessory 1000, and the second accessory 2000 are connected to form a gun.

[0075] The transmitter 3000 has a position for mounting the object to be launched 4000. The structure of this position can be of various types, as long as it can accommodate the object to be launched 4000. The transmitter 3000 can rotate and launch the object to be launched 4000. The rotation of the object to be launched 4000 requires the cooperation of the transmitter 3000 and the first accessory 1000. The launch of the object to be launched 4000 requires the cooperation of the transmitter 3000 and the second accessory 2000.

[0076] The launcher 3000, first accessory 1000, and second accessory 2000 can be assembled together for play. When assembled, they form a gun; that is, first accessory 1000 and launcher 3000 constitute the gun body, and second accessory 2000 constitutes the gun handle. First accessory 1000 and launcher 3000 are roughly arranged in a straight line, with an angle between them. Launcher 3000 can be detachably connected to first accessory 1000, and also detachably connected to second accessory 2000, allowing for easy assembly and disassembly for convenient storage. The user needs to control the first accessory 1000, so that the first accessory 1000 acts on the transmitter 3000. The so-called acting on means that the first accessory 1000 can cause the transmitter 3000 to change accordingly. This change generates a rotational force on the object to be launched 4000, thereby causing the object to be launched 4000 to rotate. The user needs to control the second accessory 2000, so that the second accessory 2000 acts on the transmitter 3000, thereby causing the transmitter 3000 to change accordingly. This change generates a launching force on the object to be launched 4000, thereby causing the object to be launched 4000 to be launched and detached from the transmitter 3000.

[0077] The rotation of the launch object 4000 is transmitted to the launcher 3000 via the first accessory 1000, while the launch of the launch object 4000 is transmitted to the launcher 3000 via the second accessory 2000. This ensures that the rotation and launch of the launch object 4000 do not interfere with each other. Users can rotate the launch object 4000 using only the first accessory 1000, at which point the launch object 4000 will rotate on the launcher 3000. Alternatively, the launch object 4000 can be launched using only the second accessory 2000, or it can be rotated first using the first accessory 1000 and then launched in a rotating state using the second accessory 2000. Through the cooperation of the launcher 3000, the first accessory 1000, and the second accessory 2000, the launch object 4000 can not only be launched but also launched in a rotating state, enhancing playability and providing multiple ways to play, satisfying a wider range of play needs.

[0078] In some embodiments, combined with Figures 1 to 10 As shown, the transmitter 3000 includes an acceleration mechanism 3100, and the first accessory 1000 is adapted to act on the acceleration mechanism 3100 so that the acceleration mechanism 3100 drives the object to be launched 4000 to rotate.

[0079] The first component 1000 acts on the transmitter 3000, specifically on the acceleration mechanism 3100. The acceleration mechanism 3100 is used to drive the object to be launched 4000 to rotate. Driving means causing the relevant parts to move accordingly. This can be achieved directly or indirectly. That is to say, when the first component 1000 acts on the acceleration mechanism 3100, the acceleration mechanism 3100 can generate a rotational force on the object to be launched 4000, thereby causing the object to be launched 4000 to rotate.

[0080] Optionally, combined Figure 7 and Figure 8 As shown, the acceleration mechanism 3100 includes an acceleration gear 3110, which is adapted to mesh with the object to be launched 4000. The first accessory 1000 is adapted to drive the acceleration gear 3110 to rotate so that the object to be launched 4000 rotates.

[0081] When the first component 1000 acts on the acceleration mechanism 3100, it is converted into the rotation of the acceleration gear 3110. Since the acceleration gear 3110 meshes with the object to be launched 4000, the rotation of the acceleration gear 3110 can drive the object to be launched 4000 to rotate. In other words, the object to be launched 4000 has a toothed structure. When the object to be launched 4000 is installed on the launcher 3000, the toothed structure of the object to be launched 4000 meshes with the acceleration gear 3110. When the acceleration gear 3110 rotates, it can drive the object to be launched 4000 to rotate. Through this cooperation, when the object to be launched 4000 is launched, it is also easy to quickly separate the object to be launched 4000 and the acceleration gear 3110.

[0082] For example, the object to be launched 4000 is a gyroscope. The gyroscope has a rotating part and a fixed part. The rotating part can rotate relative to the fixed part and has a gear structure. The gyroscope is installed on the launcher 3000 through the fixed part. The rotating part meshes with the acceleration gear 3110 through the gear structure. Thus, when the acceleration gear 3110 rotates, it can drive the rotating part of the gyroscope to rotate.

[0083] Optionally, combined Figure 8As shown, the transmitter 3000 also includes a speed measuring gear 3120, which meshes with an acceleration gear 3110. When the acceleration gear 3110 rotates, it drives the speed measuring gear 3120 to rotate. The rotation of the speed measuring gear 3120 enables speed measurement, helping to visually present the rotational speed to the user. The speed of the speed measuring gear 3120 can be achieved using photoelectric detection technology. For example, the end face of the central shaft of the speed measuring gear 3120 can be set to be half black and half white. When light emitted from the photoelectric sensor illuminates the end face of the central shaft of the speed measuring gear 3120, the black and white portions of the speed measuring gear 3120 will alternately pass through the photoelectric sensor once, generating a pulse signal. By measuring the number of pulse signals per unit time, the rotational speed of the speed measuring gear 3120 can be calculated.

[0084] In some embodiments, combined with Figure 1 , Figure 2 , Figure 11 , Figure 12 and Figure 13 As shown, the first component 1000 includes a slider 1100, which is reciprocating to drive the acceleration gear 3110 to rotate.

[0085] The reciprocating motion of slider 1100 acts on acceleration gear 3110, causing acceleration gear 3110 to rotate. In other words, slider 1100 and acceleration gear 3110 are connected by a transmission mechanism. The slider 1100 facilitates user operation to achieve continuous acceleration of the launch object 4000. For example, the user holds the second accessory 2000 with one hand and the slider 1100 with the other, controlling the slider 1100 to reciprocate in the back-and-forth direction. This drives the acceleration gear 3110 to rotate. The hand holding the second accessory 2000 controls its action on the launcher 3000, causing the launcher 3000 to launch the launch object 4000. After launch, the launch object 4000 remains rotating upon landing. After launching multiple launch objects 4000 into a specific area, collisions can occur between them, thus creating a competitive battle. In particular, the faster the slider 1100 reciprocates, the more advantageous it is for accelerating the rotation of the object to be launched 4000. The faster the object to be launched 4000 rotates, the more advantageous it is for competitive combat.

[0086] Optionally, combined Figure 12 and Figure 13 As shown, the first accessory 1000 includes a body portion 1200. The first accessory 1000 is adapted to be connected to the transmitter 3000 via the body portion 1200. The slider 1100 is adapted to reciprocate along the extension direction of the body portion 1200 and to wrap around a portion of the body portion 1200 in the circumferential direction.

[0087] Since the slider 1100 needs to reciprocate, the body part 1200 provides support for the slider 1100. The slider 1100 wraps around part of the body part 1200 in the circumference, thus achieving a semi-wrapped state. This makes it easier for the user to hold the slider 1100 and drive it to reciprocate when the launcher 3000, the first accessory 1000 and the second accessory 2000 are connected to form a gun.

[0088] In some embodiments, combined with Figures 13 to 16 As shown, the first component 1000 includes a clutch gear 1600, a slider 1100, and a drive connection between the clutch gear 1600 and the slider 1100. When the slider 1100 moves in one direction of reciprocating motion, it drives the clutch gear 1600 to rotate, so that the clutch gear 1600 rotates to the engagement position 1710 and is drively connected to the acceleration gear 3110. When the slider 1100 moves in the other direction of reciprocating motion, it drives the clutch gear 1600 to rotate in the opposite direction, so that the clutch gear 1600 rotates to the disengagement position 1720 and is separated from the acceleration gear 3110.

[0089] By setting the clutch gear 1600, during the reciprocating movement of the slider 1100, only one direction of the reciprocating movement can drive the acceleration gear 3110 to rotate, while the other direction of the reciprocating movement cannot drive the acceleration gear 3110 to rotate. For example, when the slider 1100 reciprocates in the front-to-back direction, when the slider 1100 moves in one of the two directions, front-to-back or back-to-front, it drives the clutch gear 1600 to rotate to the engagement position 1710. At this time, the clutch gear 1600 and the acceleration gear 3110 are connected (they can be directly engaged or indirectly engaged), thus driving the acceleration gear 3110 to rotate. When the slider 1100 moves in the other of the two directions, front-to-back or back-to-front, it drives the clutch gear 1600 to rotate in the opposite direction to the disengagement position 1720. At this time, the clutch gear 1600 and the acceleration gear 3110 are separated, and thus the rotation of the clutch gear 1600 cannot drive the rotation of the acceleration gear 3110. Thus, through the reciprocating motion of the slider 1100 times, the acceleration gear 3110 can achieve continuous rotation and acceleration.

[0090] To facilitate the switching of the engagement position 1710 and disengagement position 1720 when the clutch gear 1600 is driven by the slider 1100, in some embodiments, combined with Figures 14 to 16As shown, the first component 1000 includes an arc-shaped groove 1700, and a clutch gear 1600 is rotatably disposed in the arc-shaped groove 1700. One end of the arc-shaped groove 1700 constitutes an engagement position 1710, and the other end constitutes a disengagement position 1720. When rotating, the clutch gear 1600 can move along the arc-shaped groove 1700. Since the slider 1100 can reciprocate, the clutch gear 1600 has two directions of rotation. When rotating in one direction, the clutch gear 1600 moves along the arc-shaped groove 1700 to the engagement position 1710, and when rotating in the other direction, it moves along the arc-shaped groove 1700 to the disengagement position 1720. This arrangement helps to simplify the structure while ensuring that the clutch gear 1600 can switch between the engagement position 1710 and the disengagement position 1720.

[0091] The slider 1100 can drive the clutch gear 1600 to rotate through the following scheme: in some embodiments, combined with... Figure 13 As shown, the first component 1000 includes a rack 1300 and an input gear 1400. The slider 1100 is connected to the rack 1300 and can drive the rack 1300 to reciprocate. The rack 1300 meshes with the input gear 1400, and the input gear 1400 is connected to the clutch gear 1600 for transmission.

[0092] The slider 1100 and rack 1300 are connected, so that the reciprocating movement of the slider 1100 drives the reciprocating movement of the rack 1300. Since the rack 1300 meshes with the input gear 1400, it drives the input gear 1400 to rotate. The input gear 1400 is connected to the clutch gear 1600, which can be directly or indirectly meshed. This arrangement facilitates the layout of the components. Optionally, the rack 1300 can be connected to an elastic element such as a tension spring, which provides the force for the rack 1300 and slider 1100 to return to their original positions.

[0093] In some embodiments, combined with Figure 13 as well as Figures 17 to 19As shown, the first component 1000 includes an intermediate gear 1500. An input gear 1400 is connected to a clutch gear 1600 via the intermediate gear 1500. The intermediate gear 1500 includes a first gear section 1510, a second gear section 1520, and an elastic section 1530. The first gear section 1510 is connected to the input gear 1400. The second gear section 1520 is coaxially arranged with the first gear section 1510 and is connected to the clutch gear 1600. The elastic section 1530 is connected to the first gear section 1510. The gear section 1510 is connected to rotate synchronously. The elastic section 1530 and the first gear section 1510 clamp the second gear section 1520. One of the elastic section 1530 and the second gear section 1520 is provided with a locking protrusion 1541 and the other is provided with a groove 1542. The locking protrusion 1541 is engaged with the groove 1542 to drive the second gear section 1520 to rotate. A plurality of locking protrusions 1541 or grooves 1542 provided on the second gear section 1520 are arranged alternately along the circumference of the second gear section 1520.

[0094] When the slider 1100 reciprocates, the input gear 1400 drives the first gear section 1510 to rotate. Since the elastic section 1530 is connected to the first gear section 1510 (e.g., via a spline connection), it can follow the rotation of the first gear section 1510. Through the engagement of the latching protrusion 1541 and the groove 1542, it drives the second gear section 1520 to rotate, thus causing the clutch gear 1600 to rotate. If an overload occurs, such as if the launch object 4000 is incorrectly installed, or if the transmission between the slider 1100 and the clutch gear 1600 is obstructed, the elastic section 1530 will be subjected to a large force and deform. This causes the latching protrusion 1541 to disengage from the groove 1542, preventing the first gear section 1510 and the elastic section 1530 from rotating synchronously relative to the second gear section 1520, resulting in slippage. In this case, the clutch gear 1600 cannot be driven normally, thus preventing structural damage.

[0095] In some embodiments, combined with Figure 11 , Figure 12 and Figure 13 As shown, the first accessory 1000 includes a body 1200, a rack 1300, and a limiting mechanism 1800. The first accessory 1000 is adapted to be connected to the transmitter 3000 via the body 1200. The slider 1100 is disposed on the body 1200 and is reciprocating. The rack 1300 is disposed on the body 1200 and is connected to the slider 1100 so that it can be driven by the slider 1100 to reciprocate. The rack 1300 is connected to the acceleration gear 3110 for transmission. The limiting mechanism 1800 is disposed on the body 1200 and is adapted to stop the rack 1300 when the slider 1100 moves to a preset position in a first direction.

[0096] The first component 1000 is connected to the launcher 3000 via the main body 1200, so that the first component 1000 and the launcher 3000 have a certain length after assembly, which facilitates the launch of the object 4000 from the launcher 3000 along the first component 1000. Since the slider 1100 drives the rack 1300 to reciprocate, a limit mechanism 1800 is provided to limit the reciprocating movement of the rack 1300. For example, when the rack 1300 moves from back to front, it will be stopped by the limit mechanism 1800, and the limit mechanism 1800 restricts the reciprocating stroke of the rack 1300.

[0097] In some embodiments, combined with Figure 11 , Figure 12 , Figure 13 and Figure 20 As shown, the first accessory 1000 includes an extension 5000, which is adapted to be connected to the main body 1200. When the extension 5000 is connected to the main body 1200, it drives the limiting mechanism 1800 to avoid the rack 1300, so that the rack 1300 passes over the limiting mechanism 1800 when the slider 1100 moves in the first direction.

[0098] The extension portion 5000 is suitable for detachable connection with the main body portion 1200. The extension portion 5000 can be connected to the main body portion 1200 or detached from it. When the extension portion 5000 and the main body portion 1200 are detached from each other, due to the stop of the limit mechanism 1800, the rack 1300 can only reciprocate on the main body portion 1200, forming a first reciprocating stroke. After the extension portion 5000 and the main body portion 1200 are connected and fixed together, the extension portion 5000 drives the limit mechanism 1800 to avoid the rack 1300. In this way, the rack 1300 can reciprocate on the main body portion 1200 and the extension portion 5000, forming a second reciprocating stroke. The second reciprocating stroke is longer than the first reciprocating stroke, that is, the reciprocating stroke of the slider 1100 is also longer. This is more conducive to accelerating the object 4000 to be launched and improving playability.

[0099] In some embodiments, combined with Figures 20 to 22 As shown, the limiting mechanism 1800 includes a baffle 1810, and the extension part 5000 includes a push rod 5100. The push rod 5100 is adapted to drive the baffle 1810 to avoid the rack 1300 when the extension part 5000 and the main body part 1200 are connected.

[0100] In other words, before the extension part 5000 is installed on the main body 1200, the baffle 1810 is located on the movement path of the rack 1300, thus stopping the rack 1300 from continuing to move. When the extension part 5000 is installed on the main body 1200, the baffle 1810 is moved away from the movement path of the rack 1300 by the cooperation of the push rod 5100 and the baffle 1810. In this way, the rack 1300 can pass over the baffle 1810 during reciprocating movement, thereby extending the reciprocating stroke.

[0101] For example, the baffle 1810 can reciprocate linearly, and the push rod 5100 is provided with a push rod inclined surface 5110. When the extension part 5000 is installed on the main body part 1200, the push rod 5100 abuts against the corresponding part of the baffle 1810 through the push rod inclined surface 5110. In this way, a component force that causes the baffle 1810 to move can be generated through the push rod inclined surface 5110. At this time, the direction of movement of the baffle 1810 intersects with the direction of movement of the push rod 5100, for example, they are perpendicular. Of course, the baffle 1810 can also be designed to be rotatable, and can rotate out of the movement path of the rack 1300 by the push of the push rod 5100.

[0102] In some embodiments, combined with Figure 21 and Figure 22 As shown, the extension part 5000 includes a power supply module 5200, and the first accessory 1000 includes a power consumption module 1900 disposed on the main body part 1200. The power supply module 5200 and the power consumption module 1900 are adapted to connect to form a circuit loop when the extension part 5000 and the main body part 1200 are connected. The power consumption module 1900 is adapted to emit light and / or sound when powered on. A switch can be provided on the power supply module 5200 to control the connection and disconnection of the circuit loop. The power consumption module 1900 includes, but is not limited to, a speaker, an LED light, etc., thereby enhancing the functionality and fun of the launching toy.

[0103] For example, one of the power supply module 5200 and the power consumption module 1900 is provided with a pin 5210 and the other is provided with a socket 1910. The pin 5210 is suitable for insertion into the socket 1910, so that the power supply module 5200 and the power consumption module 1900 are connected to form a circuit loop. The setting of the socket 1910 and the pin 5210 facilitates the electrical connection between the power supply module 5200 and the power consumption module 1900.

[0104] In some embodiments, combined with Figures 1 to 10 , Figures 23 to 27 As shown, the transmitter 3000 includes a launching mechanism 3200, and the second accessory 2000 includes a release mechanism 2100. The release mechanism 2100 is adapted to act on the launching mechanism 3200 so that the launching mechanism 3200 drives the object to be launched 4000 to launch.

[0105] The launching mechanism 3200 is used to launch the object 4000. The second accessory 2000 acts on the launching mechanism 3200, specifically on the launching mechanism 3200. The second accessory 2000 acts on the launching mechanism 3200 through a release mechanism 2100. The user operates the release mechanism 2100, causing it to act on the launching mechanism 3200. In other words, when the release mechanism 2100 acts on the launching mechanism 3200, the launching mechanism 3200 generates a launching force on the object 4000, thus launching the object 4000.

[0106] Taking the gyroscope 4000 as an example, the gyroscope is mounted to the transmitter 3000 via its fixed part, which cooperates with the launching mechanism 3200. The rotating part of the gyroscope cooperates with the acceleration mechanism 3100. The user holds the second accessory 2000 with one hand and the slider 1100 of the first accessory 1000 with the other hand, controlling the slider 1100 to move back and forth. This drives the acceleration gear 3110 of the acceleration mechanism 3100 to rotate, thereby making the rotating part of the gyroscope rotate. The hand holding the second accessory 2000 controls the release mechanism 2100 to act on the launching mechanism 3200, causing the launching mechanism 3200 to generate force on the fixed part of the gyroscope 4000, thus launching the gyroscope 4000.

[0107] It is understandable that, in addition to the corresponding action produced by the user operating the release mechanism 2100, the launching mechanism 3200 can also be equipped with an electric mechanism, which acts on the launching mechanism 3200 to meet more play needs.

[0108] The launching mechanism 3200 can be implemented using the following scheme. In some embodiments, combined with Figure 4 , Figures 9 to 10 As shown, the launching mechanism 3200 includes a push plate 3210 and a locking member 3220. When the object to be launched 4000 is installed on the launcher 3000, it is adapted to drive the push plate 3210 to move. The locking member 3220 is adapted to lock the push plate 3210 when the push plate 3210 moves to a preset position, and is adapted to be driven by the release mechanism 2100 to unlock the push plate 3210. When the locking member 3220 unlocks the push plate 3210, the push plate 3210 is adapted to reset under the action of elastic force to drive the object to be launched 4000 to launch.

[0109] The object to be launched 4000 is movably mounted on the transmitter 3000, see [link / reference]. Figure 3The launch object 4000 is mounted on the launcher 3000 from front to back. When the launch object 4000 is mounted on the launcher 3000, it abuts against the push plate 3210. The launch object 4000 drives the push plate 3210 to move backward. During the backward movement of the push plate 3210, the elastic element that cooperates with the push plate 3210 undergoes elastic deformation and accumulates elastic potential energy. When the push plate 3210 moves to a preset position (i.e., the position where it can be locked by the locking element 3220), it will be locked by the locking element 3220. Due to the locking by the locking element 3220, the push plate 3210 will not reset and will launch the launch object 4000. It can be understood that the force generated by the elastic element on the push plate 3210 can be direct or indirect. The same applies to the force applied by other elastic elements in this article, which will not be repeated here.

[0110] The user can operate the release mechanism 2100, which drives the locking member 3220, thereby unlocking the push plate 3210. When the push plate 3210 is unlocked, the elastic potential energy of the elastic member is released, that is, the elastic member generates elastic force on the push plate 3210, thereby driving the push plate 3210 to reset (move forward). When the push plate 3210 is reset, it supports the object to be launched 4000, thereby generating force on the object to be launched 4000, causing the object to be launched 4000 to be launched.

[0111] In some embodiments, combined with Figure 9 and Figure 10 As shown, the launching mechanism 3200 also includes a push rod 3230, and the releasing mechanism 2100 is adapted to drive the push rod 3230 to move so that the push rod 3230 drives the locking member 3220 to move and unlock the push plate 3210. The direction of movement of the push rod 3230 and the direction of movement of the locking member 3220 intersect.

[0112] The release mechanism 2100 does not act directly on the locking member 3220, but rather on the push rod 3230. The push rod 3230 acts on the locking member 3220, intersecting the direction of movement of the push rod 3230 and the locking member 3220, which contributes to a more rational structural arrangement. For example, the push rod 3230 is provided with a push rod inclined surface 3231. When the release mechanism 2100 moves the push rod 3230, the push rod 3230 abuts against the corresponding part of the locking member 3220 through the push rod inclined surface 3231. This generates a component force through the push rod inclined surface 3231 that causes the locking member 3220 to move. At this time, the direction of movement of the push rod 3230 and the direction of movement of the locking member 3220 can intersect, for example, be perpendicular.

[0113] The release mechanism 2100 only needs to be able to drive the push rod 3230 to move. There are various structural forms. For example, the release mechanism 2100 includes a lever 2130, a transmission component 2120 and a trigger 2110. By pressing the trigger 2110, the trigger 2110 drives the transmission component 2120 to rotate, thereby causing the transmission component 2120 to drive the lever 2130 to extend. The extended lever 2130 can push the push rod 3230. Alternatively, the release mechanism 2100 can include a reciprocating lever 2130, which the user can directly drive to move to push the push rod 3230. Of course, the release mechanism 2100 can also adopt other structural types.

[0114] The second aspect of this application discloses a toy, combined with Figures 1 to 27 As shown, the toy includes a launchable object 4000 and the aforementioned launching toy. The launching toy includes a launcher 3000, a first accessory 1000, and a second accessory 2000. The launcher 3000 is adapted to mount the launchable object 4000. The first accessory 1000 is connected to the launcher 3000 and is adapted to act on the launcher 3000 to cause the launcher 3000 to rotate the launchable object 4000. The second accessory 2000 is connected to the launcher 3000 and is adapted to act on the launcher 3000 to cause the launcher 3000 to launch the launchable object 4000. The launcher 3000, the first accessory 1000, and the second accessory 2000 are connected to form a gun-like configuration. It is understood that the launching toy of this embodiment adopts the technical solution of the above embodiment, and therefore has at least the beneficial effects brought by the technical solution of the above embodiment, which will not be repeated here.

[0115] The above description is merely a preferred embodiment of this application and does not limit the patent scope of this application. Any equivalent structural transformations made based on the concept of this application and the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.

Claims

1. A launching toy characterized by, The launching toy includes: A transmitter (3000) is adapted for mounting an object to be launched (4000) thereon; A first accessory (1000) is connected to the transmitter (3000), and the first accessory (1000) is adapted to act on the transmitter (3000) to cause the transmitter (3000) to rotate the object to be launched (4000); and The second accessory (2000) is connected to the launcher (3000). The second accessory (2000) is adapted to act on the launcher (3000) so that the launcher (3000) drives the object to be launched (4000) to be launched. The launcher (3000), the first accessory (1000) and the second accessory (2000) are connected to form a gun.

2. The launching toy of claim 1, wherein, The transmitter (3000) includes an acceleration mechanism (3100), and the first accessory (1000) is adapted to act on the acceleration mechanism (3100) to cause the acceleration mechanism (3100) to drive the object to be launched (4000) to rotate.

3. The launching toy of claim 2, wherein, The acceleration mechanism (3100) includes an acceleration gear (3110) adapted to mesh with the object to be launched (4000), and the first accessory (1000) is adapted to drive the acceleration gear (3110) to rotate so that the object to be launched (4000) rotates.

4. The launching toy of claim 3, wherein The first accessory (1000) includes a slider (1100) which is reciprocating to drive the acceleration gear (3110) to rotate.

5. The launching toy of claim 4, wherein, The first accessory (1000) includes a body portion (1200), the first accessory (1000) is adapted to be connected to the transmitter (3000) via the body portion (1200), the slider (1100) is adapted to reciprocate along the extension direction of the body portion (1200), and wrap around a portion of the body portion (1200) circumferentially.

6. The launching toy of claim 4, wherein, The first component (1000) includes a clutch gear (1600); The slider (1100) is adapted to drive the clutch gear (1600) to rotate when it moves in one of the reciprocating directions, so that the clutch gear (1600) rotates to the meshing position (1710) and is connected to the acceleration gear (3110) for transmission. When the slider (1100) moves in the other direction of the reciprocating motion, it drives the clutch gear (1600) to rotate in the opposite direction, so that the clutch gear (1600) rotates to the disengaged position (1720) and separates from the acceleration gear (3110).

7. The launching toy of claim 6, wherein The first component (1000) includes an arc-shaped groove (1700), and the clutch gear (1600) is rotatably disposed in the arc-shaped groove (1700). One end of the arc-shaped groove (1700) constitutes the engagement position (1710), and the other end constitutes the disengagement position (1720).

8. The launching toy of claim 6, wherein, The first component (1000) includes a rack (1300) and an input gear (1400). The slider (1100) is connected to the rack (1300) and can drive the rack (1300) to reciprocate. The rack (1300) meshes with the input gear (1400), and the input gear (1400) is connected to the clutch gear (1600) in a transmission connection.

9. The launching toy of claim 8, wherein, The first component (1000) includes an intermediate gear (1500), the intermediate gear (1500) comprising: The first gear section (1510) is connected to the input gear (1400) in a transmission connection; The second gear section (1520) is coaxially arranged with the first gear section (1510) and is connected to the clutch gear (1600) in a transmission. An elastic part (1530) is connected to the first gear part (1510) to rotate synchronously. The elastic part (1530) and the first gear part (1510) clamp the second gear part (1520). One of the elastic part (1530) and the second gear part (1520) is provided with a locking protrusion (1541) and the other is provided with a groove (1542). The locking protrusion (1541) is engaged with the groove (1542) to drive the second gear part (1520) to rotate. A plurality of locking protrusions (1541) or grooves (1542) provided on the second gear part (1520) are arranged alternately along the circumference of the second gear part (1520).

10. The launching toy of claim 4, wherein, The first accessory (1000) includes: The main body (1200) is adapted to be connected to the transmitter (3000) via the main body (1200), and the slider (1100) is provided on the main body (1200) and is reciprocating. A rack (1300) is provided on the main body (1200) and connected to the slider (1100) so that it can be driven by the slider (1100) to reciprocate. The rack (1300) is connected to the acceleration gear (3110) in a transmission connection. A limiting mechanism (1800) is provided on the main body (1200), and the limiting mechanism (1800) is adapted to stop the rack (1300) when the slider (1100) moves to a preset position in a first direction.

11. The launching toy of claim 10, wherein, The first accessory (1000) includes an extension (5000) adapted to connect with the main body (1200). When the extension (5000) is connected to the main body (1200), it drives the limiting mechanism (1800) to avoid the rack (1300), so that the rack (1300) passes over the limiting mechanism (1800) when the slider (1100) moves in the first direction.

12. The launching toy of claim 11, wherein, The limiting mechanism (1800) includes a baffle (1810), and the extension part (5000) includes a push rod (5100). The push rod (5100) is adapted to drive the baffle (1810) to avoid the rack (1300) when the extension part (5000) and the main body part (1200) are connected.

13. The launching toy of claim 11, wherein, The extended portion (5000) includes a power supply module (5200), and the first accessory (1000) includes a power consumption module (1900) disposed on the main body portion (1200). The power supply module (5200) and the power consumption module (1900) are adapted to be connected to form a circuit loop when the extended portion (5000) and the main body portion (1200) are connected. The power consumption module (1900) is adapted to emit light and / or sound when powered on.

14. The launching toy of claim 13, wherein, One of the power supply module (5200) and the power consumption module (1900) is provided with a pin (5210) and the other is provided with a socket (1910), the pin (5210) being adapted to be inserted into the socket (1910).

15. The launching toy of claim 1, wherein, The transmitter (3000) includes a launching mechanism (3200), and the second accessory (2000) includes a release mechanism (2100), which is adapted to act on the launching mechanism (3200) to cause the launching mechanism (3200) to drive the object to be launched (4000) to launch.

16. The launching toy of claim 15, wherein, The launching mechanism (3200) includes: A push plate (3210) is provided, wherein the object to be launched (4000) is adapted to move the push plate (3210) when it is installed on the launcher (3000); The locking member (3220) is adapted to lock the push plate (3210) when the push plate (3210) moves to a preset position, and is adapted to be driven by the release mechanism (2100) to unlock the push plate (3210); When the locking member (3220) unlocks the push plate (3210), the push plate (3210) is adapted to reset under the action of elastic force to drive the object to be launched (4000) to be launched.

17. The launching toy of claim 16, wherein, The launching mechanism (3200) further includes a push rod (3230), and the releasing mechanism (2100) is adapted to drive the push rod (3230) to move so that the push rod (3230) drives the locking member (3220) to move and unlock the push plate (3210). The direction of movement of the push rod (3230) intersects the direction of movement of the locking member (3220).

18. The launching toy of claim 1, wherein, The transmitter (3000) and the first accessory (1000) are detachably connected; And / or, the transmitter (3000) and the second accessory (2000) are detachably connected.

19. A toy characterized by Includes the object to be launched (4000) and the launching toy as described in any one of claims 1 to 18.