Launching device and launching toy

By designing a launching toy with acceleration gears and a stop mechanism, the rotation and launch of the object to be launched are achieved, solving the problem of insufficient playability of existing launching toys and enhancing the competitive and entertainment experience.

CN223683032UActive Publication Date: 2025-12-19ALPHA GROUP CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423076406.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-12
Publication Date
2025-12-19
Estimated Expiration
2034-12-12

AI Technical Summary

Technical Problem

Existing launching toys lack playability and cannot provide sufficient entertainment and competitive experience.

Method used

A launching device was designed, including an acceleration mechanism and a launching mechanism. The acceleration gear is driven to rotate by a slider and combined with a stop mechanism and a clutch mechanism to realize the rotation and launching of the object to be launched. The slider and the release mechanism do not affect each other, and the object to be launched remains in a rotating state after launch.

Benefits of technology

It enhances the playability and fun of the toy, making it especially suitable for competitive play. The reciprocating movement of the slider drives the acceleration gear to rotate, and the projectile continues to rotate after launch, enhancing the interactive and competitive experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223683032U_ABST
    Figure CN223683032U_ABST
Patent Text Reader

Abstract

The utility model discloses a launching device and a launching toy, the launching device comprises a launcher and a main body, the launcher is suitable for an object to be launched to be installed on the launcher, the launcher comprises an acceleration mechanism and a launching mechanism, the main body is detachably connected with the launcher, the main body comprises a sliding block and a releasing mechanism, the sliding block can move in a reciprocating mode, and the releasing mechanism can release the object to be launched. The sliding block is suitable for driving the acceleration mechanism so that the acceleration mechanism can drive the to-be-launched object to rotate, and the releasing mechanism is suitable for driving the launching mechanism so that the launching mechanism can drive the to-be-launched object to be launched. According to the technical scheme, the sliding block can drive the to-be-launched object to rotate, the releasing mechanism can drive the to-be-launched object to be launched, the sliding block and the releasing mechanism do not affect each other, the to-be-launched object can still keep the rotating state after being launched, competitive confrontation is particularly facilitated, and playability and interestingness are improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of toys, in particular to a launching device and a launching toy. BACKGROUND

[0002] The launching toy can launch the to-be-launched object, and the launching toy can provide entertainment and game fun for children, improve the movement skills and coordination of children, promote the interaction and teamwork among children, and be beneficial to the growth and development of children, but the current launching toys on the market can only directly pop out the to-be-launched object for launching, and the playability needs to be improved. CONTENT OF THE INVENTION

[0003] The present application aims to at least partly solve one of the problems in the related art. To this end, the present application provides a launching device.

[0004] To achieve the above-mentioned purpose, the present application discloses a launching device, which comprises:

[0005] a launcher adapted to mount the to-be-launched object thereon, the launcher comprising an acceleration mechanism and a launching mechanism;

[0006] a main body detachably connected with the launcher, the main body comprising a sliding block and a releasing mechanism, the sliding block being reciprocally movable, the sliding block being adapted to drive the acceleration mechanism so that the acceleration mechanism drives the to-be-launched object to rotate, the releasing mechanism being adapted to drive the launching mechanism so that the launching mechanism launches the to-be-launched object.

[0007] In some embodiments of the present application, the acceleration mechanism comprises an acceleration gear, the sliding block is adapted to drive the acceleration gear to rotate, and the acceleration gear is adapted to drive the to-be-launched object to rotate.

[0008] In some embodiments of the present application, the sliding block is adapted to reciprocally move along a first direction and a second direction, the first direction and the second direction being opposite, the main body further comprising a clutch mechanism and a stop mechanism, the stop mechanism having a first stop state and a second stop state;

[0009] when the stop mechanism is in the first stop state, the sliding block is adapted to drive the clutch mechanism to rotate the acceleration gear when moving along the first direction, and the sliding block is adapted to drive the clutch mechanism to separate from the acceleration gear when moving along the second direction;

[0010] When the stop mechanism is in the second stop state, the slider is adapted to drive the clutch mechanism to separate the clutch mechanism and the acceleration gear when the slider is moved in the first direction, and the slider is adapted to drive the clutch mechanism to drive the acceleration gear to rotate reversely when the slider is moved in the second direction.

[0011] In some embodiments of the present application, the clutch mechanism comprises:

[0012] a movable member rotatably arranged;

[0013] a driving gear rotatably arranged coaxially with the movable member;

[0014] a first clutch gear rotatably arranged on the movable member and engaged with the driving gear; and

[0015] a second clutch gear rotatably arranged on the movable member and engaged with the driving gear;

[0016] When the stop mechanism is in the first stop state:

[0017] the slider is adapted to drive the driving gear to rotate when the slider is moved in the first direction, so as to swing the movable member and engage the first clutch gear and the acceleration gear to drive, and disengage the second clutch gear and the acceleration gear;

[0018] the slider is adapted to drive the driving gear to rotate reversely when the slider is moved in the second direction, so as to swing the movable member reversely and be stopped by the stop mechanism, so that the first clutch gear and the acceleration gear are disengaged, and the second clutch gear and the acceleration gear are disengaged;

[0019] When the stop mechanism is in the second stop state:

[0020] the slider is adapted to drive the driving gear to rotate when the slider is moved in the first direction, so as to swing the movable member and be stopped by the stop mechanism, so that the first clutch gear and the acceleration gear are disengaged, and the second clutch gear and the acceleration gear are disengaged;

[0021] the slider is adapted to drive the driving gear to rotate reversely when the slider is moved in the second direction, so as to swing the movable member reversely, and disengage the first clutch gear and the acceleration gear, and engage the second clutch gear and the acceleration gear to drive.

[0022] In some embodiments of the present application, the stop mechanism comprises a first stop groove and a second stop groove;

[0023] The movable piece is inserted into the first stop slot when the stop mechanism is in the first stop state, and is adapted to be stopped by the first stop slot when swinging;

[0024] The movable piece is inserted into the second stop slot when the stop mechanism is in the second stop state, and is adapted to be stopped by the second stop slot when swinging.

[0025] In some embodiments of the present application, the first stop slot and the second stop slot are communicated, and the stop mechanism is adapted to reciprocate, so that the movable piece can move from the first stop slot into the second stop slot, and move from the second stop slot into the first stop slot.

[0026] In some embodiments of the present application, the main body further comprises a rack, the sliding block and the rack are connected and can drive the rack to reciprocate, and the rack and the drive gear are in transmission connection.

[0027] In some embodiments of the present application, the main body further comprises a limiting mechanism; the sliding block comprises a first gear mechanism and a second gear mechanism, the first gear mechanism and the second gear mechanism are arranged alternately along the reciprocating direction of the sliding block, and the first gear mechanism and the second gear mechanism are adapted to move with the sliding block and can be selectively in abutment with the limiting mechanism.

[0028] In some embodiments of the present application, the main body further comprises a rack, the sliding block and the rack are movably connected and can drive the rack to reciprocate, and the rack and the acceleration mechanism are in transmission connection;

[0029] The rack is adapted to selectively drive one of the first gear mechanism and the second gear mechanism to switch to a position in abutment with the limiting mechanism when moving relative to the sliding block.

[0030] In some embodiments of the present application, the sliding block further comprises a sliding groove and a locking piece, the rack is movably connected to the sliding groove, and the locking piece is adapted to lock the movement of the rack relative to the sliding block and to unlock the movement of the rack relative to the sliding block;

[0031] The rack is adapted to move from one end of the sliding groove to the other end when the locking piece is unlocked, to drive one of the first gear mechanism and the second gear mechanism to switch to a position in abutment with the limiting mechanism, and is adapted to move from the other end of the sliding groove to the one end when the locking piece is unlocked, to drive the other of the first gear mechanism and the second gear mechanism to switch to a position in abutment with the limiting mechanism.

[0032] In some embodiments of the present application, the launching mechanism comprises:

[0033] a push plate, the to-be-launched object being adapted to abut against and move the push plate when the to-be-launched object is installed on the launcher;

[0034] a locking member adapted to lock the push plate when the push plate moves to a preset position, and to be unlocked by the release mechanism;

[0035] a first elastic member adapted to generate a force on the push plate to reset the push plate when the locking member unlocks the push plate, so that the push plate launches the to-be-launched object.

[0036] In some embodiments of the present application, the release mechanism comprises a reciprocally movable trigger adapted to unlock the push plate by the locking member.

[0037] In some embodiments of the present application, the launcher further comprises an extension component adapted to be detachably connected with the main body, and the sliding block is adapted to reciprocally move to the extension component when the extension component is connected with the main body.

[0038] In some embodiments of the present application, the main body further comprises a limiting mechanism adapted to avoid the sliding block when the extension component is connected with the main body, so that the sliding block can reciprocally move to the extension component, and to stop the sliding block when the extension component is detached from the main body, so as to prevent the sliding block from coming out.

[0039] In some embodiments of the present application, the extension component comprises a protruding rod, and the limiting mechanism comprises a movable pin.

[0040] The protruding rod is adapted to drive the movable pin to move away from the movement path of the sliding block to avoid the sliding block when the extension component is connected with the main body.

[0041] The movable pin is adapted to move into the movement path of the sliding block under the action of the elastic force to stop the sliding block when the extension component is detached from the main body.

[0042] In some embodiments of the present application, the main body is provided with a sliding rail, and the extension component is provided with an extension sliding rail, the extension sliding rail and the sliding rail being adapted to be communicated when the extension component is connected with the main body, so that the sliding block can reciprocally move in the sliding rail and the extension sliding rail.

[0043] In some embodiments of the present application, the launcher constitutes a gun shape.

[0044] A second aspect of the present application discloses a launching toy, comprising a to-be-launched object and the above-mentioned launcher.

[0045] The slider of the technical scheme can drive the to-be-launched object to rotate, the releasing mechanism can drive the to-be-launched object to be launched, the slider and the releasing mechanism do not affect each other, and the to-be-launched object can still keep rotating after being launched, which is particularly beneficial to competitive confrontation and improves the playability and interestingness.

[0046] Other advantages of the present application will be given in part in the following description, will become apparent in part from the following description, or will be learned by practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0047] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiment or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and other designs can be obtained by those skilled in the art without creative labor on the basis of the structures shown in the drawings.

[0048] Figure 1 A schematic diagram of a launching device in some embodiments;

[0049] Figure 2 An exploded view of a launching device in some embodiments;

[0050] Figure 3 A schematic diagram of a launching device in some embodiments (the slider is in the main body);

[0051] Figure 4 A schematic diagram of a launching device in some embodiments (the slider is in the extension component);

[0052] Figure 5 A schematic diagram of a to-be-launched object in some embodiments;

[0053] Figure 6 A schematic diagram of an acceleration mechanism and a to-be-launched object in some embodiments;

[0054] Figure 7 A schematic diagram of a slider, a rack, a clutch mechanism, and an acceleration gear in some embodiments;

[0055] Figure 8 A schematic diagram of a stop mechanism and a clutch mechanism in some embodiments;

[0056] Figure 9 A schematic diagram of Figure 8 Another view of the structure shown;

[0057] Figure 10 A schematic diagram of a stop mechanism in some embodiments;

[0058] Figure 11This is a schematic diagram of the reciprocating movement of the slider when the stop mechanism is in the first stop state in some embodiments;

[0059] Figure 12 This is a schematic diagram of the reciprocating movement of the slider when the stop mechanism is in the second stop state in some embodiments;

[0060] Figure 13 This is a schematic diagram of the launching device in some embodiments (without the extension component installed);

[0061] Figure 14 This is a schematic diagram of the cooperation between the slider and the rack in some embodiments (the first gear mechanism abuts against the limiting mechanism when moving);

[0062] Figure 15 for Figure 14 Another perspective view of the structure shown;

[0063] Figure 16 This is a schematic diagram of the slider and rack in some embodiments (the second gear mechanism abuts against the limiting mechanism when moving);

[0064] Figure 17 for Figure 16 Another perspective view of the structure shown;

[0065] Figure 18 This is a schematic diagram showing the cooperation of the rack, first gear mechanism, second gear mechanism and locking element in some embodiments;

[0066] Figure 19 This is a schematic diagram showing the cooperation between the release mechanism, the launching mechanism, and the object to be launched in some embodiments;

[0067] Figure 20 for Figure 19 The diagram shown is an exploded view of the structure.

[0068] Figure 21 This is a schematic diagram illustrating the release mechanism controlling the launching mechanism to launch the object to be launched in some embodiments;

[0069] Figure 22 This is a schematic diagram of the extension component being connected to the main body in some embodiments.

[0070] Explanation of icon numbers:

[0071] The launching device 100, the object to be launched 200, the main body 3000, the sliding rail 3001, the sliding block 3100, the rack 3101, the first gear mechanism 3110, the second gear mechanism 3120, the sliding groove 3130, the locking piece 3140, the clutch mechanism 3200, the driving gear 3210, the movable piece 3220, the first clutch gear 3230, the second clutch gear 3240, the stop mechanism 3300, the first stop groove 3310, the second stop groove 3320, the limiting mechanism 3400, the movable pin 3410, the extension component 3500, the extension sliding rail 3501, the convex rod 3510, the release mechanism 3600, the trigger 3610, the launcher 4000, the acceleration mechanism 4100, the acceleration gear 4110, the launching mechanism 4200, the push plate 4210, the locking piece 4220, the first elastic piece 4291, the second elastic piece 4292, the handle 5000.

[0072] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION

[0073] The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0074] It should be noted that all the directionality indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present application are only used to explain the relative positional relationship, movement condition, etc. between components in a certain posture (as shown in the drawings), and if the certain posture changes, the directionality indications also change accordingly.

[0075] In the present application, unless otherwise explicitly specified and limited, the terms "connection", "fixation", etc. should be understood in a broad sense, for example, "fixation" can be fixed connection, or detachable connection, or integral; can be mechanical connection, or electrical connection; can be direct connection, or indirect connection through an intermediate medium; can be the internal connection of two elements or the interaction relationship between two elements, unless otherwise explicitly limited. For those skilled in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances.

[0076] In addition, the descriptions such as "first", "second" and the like in the present application are only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the technical features or implicitly indicating the number of the technical features indicated. Therefore, the features defined as "first", "second" can be explicitly or implicitly included at least one of the features. In addition, the technical solutions of various embodiments can be combined with each other, but it must be based on the realization of ordinary skilled in the art, when the combination of technical solutions appears contradictory or cannot be realized, it should be considered that the combination of technical solutions does not exist, nor within the protection scope required by the present application.

[0077] The first aspect of the present application discloses a launching device 100, in combination with Figures 1 to 7 and Figures 19 to 21 As shown in the figure, in some embodiments, the launching device 100 includes a launcher 4000, a main body 3000 and a handle 5000, the launcher 4000 is adapted to install the to-be-launched object 200 thereon, the launcher 4000 includes an acceleration mechanism 4100 and a launching mechanism 4200, the main body 3000 is arranged on the launcher 4000, the main body 3000 includes a slider 3100 and a release mechanism 3600, the slider 3100 is reciprocally movable, the slider 3100 is adapted to drive the acceleration mechanism 4100, so that the acceleration mechanism 4100 drives the to-be-launched object 200 to rotate, the release mechanism 3600 is adapted to drive the launching mechanism 4200, so that the launching mechanism 4200 drives the to-be-launched object 200 to launch.

[0078] The launcher 4000 has a position for installing the to-be-launched object 200, the structure of the position can be various, as long as it can install the to-be-launched object 200, the acceleration mechanism 4100 on the launcher 4000 can drive the to-be-launched object 200 to rotate, the launching mechanism 4200 on the launcher 4000 can drive the to-be-launched object 200 to launch, drive means that the relevant part is driven by power, which can be directly realized or indirectly realized, the same below. That is, the acceleration mechanism 4100 can drive the relevant part of the to-be-launched object 200 to move (rotate), and the launching mechanism 4200 can drive the relevant part of the to-be-launched object 200 to move (launch). The acceleration mechanism 4100 needs to cooperate with the main body 3000 to realize the driving (rotation, launching) of the to-be-launched object 200.

[0079] The main body 3000 is arranged on the launcher 4000, for example, by detachable connection. The main body 3000 comprises a slider 3100. The slider 3100 is movable back and forth, that is, the slider 3100 is movable in a first direction and a second direction. The first direction and the second direction are opposite. During the back and forth movement of the slider 3100, the slider 3100 can drive the acceleration mechanism 4100, so that the acceleration mechanism 4100 drives the to-be-launched object 200 to rotate. The main body 3000 comprises a release mechanism 3600. The release mechanism 3600 can drive the launching mechanism 4200. That is, the release mechanism 3600 is movably arranged. The movement of the release mechanism 3600 can drive the launching mechanism 4200, so that the launching mechanism 4200 drives the to-be-launched object 200 to be launched. The handle 5000 is arranged on the launcher 4000, for example, by detachable connection.

[0080] In the embodiment, the slider 3100 and the release mechanism 3600 do not interfere with each other. The to-be-launched object 200 can be controlled to rotate first, and then to be launched. Alternatively, the to-be-launched object 200 can be directly controlled to be launched without being controlled to rotate.

[0081] For example, referring to the orientation of Figures 3 to 5 The launcher 4000 further comprises a handle 5000. The handle 5000 is arranged on the launcher 4000 to be suitable for holding. One hand of a user holds the handle 5000, and the other hand holds the slider 3100 to control the slider 3100 to move back and forth in the front-rear direction (the first direction is from front to rear, and the second direction is from rear to front, or the first direction is from rear to front, and the second direction is from front to rear). The slider 3100 drives the acceleration mechanism 4100, so that the to-be-launched object 200 rotates. The hand holding the handle 5000 controls the release mechanism 3600, so that the release mechanism 3600 drives the launching mechanism 4200. In this way, the to-be-launched object 200 is launched. After the to-be-launched object 200 is launched and falls to the ground, the to-be-launched object 200 still maintains a rotating state. At this time, the to-be-launched object 200 will not be tilted until the to-be-launched object 200 stops rotating. This is beneficial to improve the play interest. Alternatively, after a plurality of (two or more) to-be-launched objects 200 are launched and fall to the concave arc region, the to-be-launched objects 200 move towards the bottom of the concave arc region. Since the to-be-launched objects 200 can maintain rotation, collisions can occur between the plurality of to-be-launched objects 200. In this way, competitive confrontation can be formed, and the playability can be improved.

[0082] In particular, the faster the slider 3100 reciprocates, the faster the rotation of the to-be-launched object 200 is accelerated, and the faster the to-be-launched object 200 rotates, the more favorable the competitive confrontation is. It can be understood that the to-be-launched object 200 has various types, for example, the to-be-launched object 200 is a top, the top has a rotating part and a fixed part, the rotating part is rotatable relative to the fixed part, the top is installed to the launcher 4000 through the fixed part, the acceleration mechanism 4100 can drive the rotating part of the top to rotate, and the launching mechanism 4200 can act on the fixed part of the top so as to launch the whole top.

[0083] In combination with FIGS. 3 and 4, Figure 6 and Figure 7 As shown in FIG. 4, in some embodiments, the acceleration mechanism 4100 includes an acceleration gear 4110, and the slider 3100 is adapted to drive the acceleration gear 4110 to rotate, and the acceleration gear 4110 is adapted to drive the to-be-launched object 200 to rotate.

[0084] Specifically, the reciprocation of the slider 3100 is converted into the rotation of the acceleration gear 4110, for example, the main body 3000 further includes a rack 3101, the slider 3100 is connected to the rack 3101 to drive the rack 3101 to reciprocate, and the rack 3101 is in transmission connection with the acceleration gear 4110, so that the acceleration gear 4110 rotates, and thus the reciprocation of the slider 3100 is converted into the rotation of the acceleration gear 4110. The rotation of the acceleration gear 4110 needs to drive the to-be-launched object 200 to rotate, for example, the to-be-launched object 200 has a gear structure, when the to-be-launched object 200 is installed to the launcher 4000, the gear structure of the to-be-launched object 200 is in mesh with the acceleration gear 4110, the acceleration gear 4110 can drive the to-be-launched object 200 to rotate when the acceleration gear 4110 rotates, and when the to-be-launched object 200 is launched, the to-be-launched object 200 and the acceleration gear 4110 can be quickly separated. The main body 3000 can generate a force on the slider 3100 through the elastic member to provide a spring force for resetting the slider 3100.

[0085] In combination with FIGS. 3 and 4, Figures 7 to 12 As shown in FIG. 3, in some embodiments, the slider 3100 is adapted to reciprocate along a first direction and a second direction, the first direction and the second direction are opposite, the main body 3000 further includes a clutch mechanism 3200 and a stop mechanism 3300, the stop mechanism 3300 has a first stop state and a second stop state;

[0086] When the stop mechanism 3300 is in the first stop state, the slider 3100 is adapted to drive the clutch mechanism 3200 to rotate the accelerating gear 4110 when moving in the first direction, and the slider 3100 is adapted to drive the clutch mechanism 3200 to separate from the accelerating gear 4110 when moving in the second direction; when the stop mechanism 3300 is in the second stop state, the slider 3100 is adapted to drive the clutch mechanism 3200 to separate from the accelerating gear 4110 when moving in the first direction, and the slider 3100 is adapted to drive the clutch mechanism 3200 to rotate the accelerating gear 4110 in the reverse direction when moving in the second direction.

[0087] By setting the clutch mechanism 3200, only one direction of the reciprocating movement of the slider 3100 can drive the accelerating gear 4110 to rotate, and the other direction of the reciprocating movement of the slider 3100 cannot drive the accelerating gear 4110 to rotate, so that the continuous rotation and acceleration of the accelerating gear 4110 can be realized under the action of multiple reciprocating movements of the slider 3100. In addition, by setting the stop mechanism 3300, the stop mechanism 3300 switching different stop states can make the rotating direction of the accelerating gear 4110 different, so as to change the rotating direction of the to-be-launched object 200.

[0088] For example, referring to the orientation of Figure 11 When the stop mechanism 3300 is in the first stop state: in the first reciprocating movement of the slider 3100, the slider 3100 moves in the first direction to make the clutch mechanism 3200 act on the accelerating gear 4110, thereby driving the accelerating gear 4110 to rotate (clockwise), and the slider 3100 moves in the second direction to make the clutch mechanism 3200 separate from the accelerating gear 4110; in the second reciprocating movement of the slider 3100, the slider 3100 moves in the first direction to make the clutch mechanism 3200 act on the accelerating gear 4110, thereby driving the accelerating gear 4110 to rotate (clockwise), and the slider 3100 moves in the second direction to make the clutch mechanism 3200 separate from the accelerating gear 4110, and so on.

[0089] For example, referring to the orientation of Figure 12In the first reciprocating movement of the slider 3100, when the slider 3100 moves in the first direction, the clutch mechanism 3200 is away from the acceleration gear 4110, and when the slider 3100 moves in the second direction, the clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate reversely (counterclockwise); in the second reciprocating movement of the slider 3100, when the slider 3100 moves in the first direction, the clutch mechanism 3200 is away from the acceleration gear 4110, and when the slider 3100 moves in the second direction, the clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate reversely (counterclockwise), and so on.

[0090] In combination with 8 to Figure 12 As shown in FIG. 8, in some embodiments, the clutch mechanism 3200 comprises a movable piece 3220, a driving gear 3210, a first clutch gear 3230 and a second clutch gear 3240, the movable piece 3220 is rotatably arranged, the driving gear 3210 is rotatably arranged coaxially with the movable piece 3220, the first clutch gear 3230 is rotatably arranged on the movable piece 3220 and meshes with the driving gear 3210; the second clutch gear 3240 is rotatably arranged on the movable piece 3220 and meshes with the driving gear 3210.

[0091] When the stop mechanism 3300 is in the first stop state:

[0092] When the slider 3100 moves in the first direction, the slider 3100 drives the driving gear 3210 to rotate, so that the movable piece 3220 swings and the first clutch gear 3230 meshes with the acceleration gear 4110 to drive, and the second clutch gear 3240 is separated from the acceleration gear 4110; when the slider 3100 moves in the second direction, the slider 3100 drives the driving gear 3210 to rotate reversely, so that the movable piece 3220 swings reversely and is stopped by the stop mechanism 3300, so that the first clutch gear 3230 is separated from the acceleration gear 4110, and the second clutch gear 3240 is separated from the acceleration gear 4110.

[0093] When the stop mechanism 3300 is in the second stop state:

[0094] When the slider 3100 moves in the first direction, the slider 3100 drives the driving gear 3210 to rotate, so that the movable piece 3220 swings and is stopped by the stop mechanism 3300, so that the first clutch gear 3230 is separated from the acceleration gear 4110, and the second clutch gear 3240 is separated from the acceleration gear 4110; when the slider 3100 moves in the second direction, the slider 3100 drives the driving gear 3210 to rotate reversely, so that the movable piece 3220 swings reversely, and the first clutch gear 3230 is separated from the acceleration gear 4110, and the second clutch gear 3240 meshes with the acceleration gear 4110 to drive.

[0095] Specifically, the movable member 3220 is rotatably arranged and can swing within a certain range, which is limited by the stop mechanism 3300. The driving gear 3210 is rotatably arranged and coaxial with the movable member 3220, and the driving gear 3210 can or can not be arranged on the movable member 3220, and the coaxiality of the driving gear 3210 and the movable member 3220 means that the rotation axis of the driving gear 3210 is coaxial with the rotation axis of the movable member 3220. The first clutch gear 3230 is arranged on the movable member 3220 and can rotate relative to the movable member 3220, and the second clutch gear 3240 is arranged on the movable member 3220 and can rotate relative to the movable member 3220. Since the movable member 3220 is rotatably arranged, and the driving gear 3210 is coaxial with the movable member 3220, no matter how the movable member 3220 swings, the engagement between the driving gear 3210 and the first clutch gear 3230 and the engagement between the driving gear 3210 and the second clutch gear 3240 can be maintained, so that when the driving gear 3210 rotates in different directions, the movable member 3220 can be driven to swing in different directions, and when the movable member 3220 swings in different directions, the first clutch gear 3230 and the second clutch gear 3240 can be driven to follow the swinging. The reciprocating movement of the slider 3100 can drive the driving gear 3210 to rotate in different directions, and the slider 3100 can drive the driving gear 3210 to rotate through the rack 3101. Since the slider 3100 can reciprocate, the rotation direction of the driving gear 3210 when the slider 3100 moves in the first direction is different from the rotation direction of the driving gear 3210 when the slider 3100 moves in the second direction.

[0096] Referring to Figure 11 In the orientation of the stop mechanism 3300 in the first stop state:

[0097] When the slider 3100 is moved in the first direction, the driving gear 3210 is rotated clockwise, the first clutch gear 3230 and the second clutch gear 3240 are rotated counterclockwise, and the movable member 3220 is swung clockwise, and the first clutch gear 3230 and the second clutch gear 3240 are swung, so that the first clutch gear 3230 and the acceleration gear 4110 are engaged (and the movable member 3220 is limited to continue to swing clockwise) and the second clutch gear 3240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 3230 to rotate (counterclockwise) the object to be launched 200. It can be understood that if the slider 3100 is moved to the limit in the first direction, the driving gear 3210 is stationary, and since the movable member 3220 is rotatably arranged and the object to be launched 200 is still rotating, the movable member 3220 is forced to swing counterclockwise so that the first clutch gear 3230 and the acceleration gear 4110 are disengaged.

[0098] Referring to Figure 12 When the slider 3100 is moved in the first direction, the driving gear 3210 is rotated clockwise, the first clutch gear 3230 and the second clutch gear 3240 are rotated counterclockwise, and the movable member 3220 is swung clockwise, and the first clutch gear 3230 and the second clutch gear 3240 are swung, so that the first clutch gear 3230 and the acceleration gear 4110 are engaged (and the movable member 3220 is limited to continue to swing clockwise) and the second clutch gear 3240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 3230 to rotate (counterclockwise) the object to be launched 200. It can be understood that if the slider 3100 is moved to the limit in the first direction, the driving gear 3210 is stationary, and since the movable member 3220 is rotatably arranged and the object to be launched 200 is still rotating, the movable member 3220 is forced to swing counterclockwise so that the first clutch gear 3230 and the acceleration gear 4110 are disengaged.

[0099] When the stop mechanism 3300 is in the second stop state:

[0100] When the slider 3100 is moved in the first direction, the driving gear 3210 is rotated clockwise, the first clutch gear 3230 and the second clutch gear 3240 are rotated counterclockwise, and the movable member 3220 is swung clockwise, and the first clutch gear 3230 and the second clutch gear 3240 are swung, so that the first clutch gear 3230 and the acceleration gear 4110 are engaged (and the movable member 3220 is limited to continue to swing clockwise) and the second clutch gear 3240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 3230 to rotate (counterclockwise) the object to be launched 200. It can be understood that if the slider 3100 is moved to the limit in the first direction, the driving gear 3210 is stationary, and since the movable member 3220 is rotatably arranged and the object to be launched 200 is still rotating, the movable member 3220 is forced to swing counterclockwise so that the first clutch gear 3230 and the acceleration gear 4110 are disengaged.

[0101] When the slider 3100 is switched to move in the second direction after moving in the first direction, the driving gear 3210 is driven to rotate anticlockwise, the first clutch gear 3230 and the second clutch gear 3240 are driven to rotate clockwise by the driving gear 3210, and the movable member 3220 is driven to swing anticlockwise by the driving gear 3210, the first clutch gear 3230 and the second clutch gear 3240 follow the swing, so that the second clutch gear 3240 and the accelerating gear 4110 are engaged in transmission (so also limit the movable member 3220 to continue to swing anticlockwise) and the first clutch gear 3230 and the accelerating gear 4110 are separated, finally the accelerating gear 4110 is driven to rotate anticlockwise by the second clutch gear 3240 to drive the to-be-launched object 200 to rotate (clockwise). It can be understood that if the slider 3100 moves to the limit in the second direction, the driving gear 3210 is stationary, because the movable member 3220 is rotatably arranged and the to-be-launched object 200 is still rotating, the movable member 3220 is forced to swing clockwise so that the second clutch gear 3240 and the accelerating gear 4110 are separated.

[0102] In combination Figures 10 to 12 As shown in the drawings, in some embodiments, the stop mechanism 3300 includes a first stop slot 3310 and a second stop slot 3320.

[0103] When the stop mechanism 3300 is in the first stop state, the movable member 3220 is inserted into the first stop slot 3310 to be stopped by the first stop slot 3310 when swinging; when the stop mechanism 3300 is in the second stop state, the movable member 3220 is inserted into the second stop slot 3320 to be stopped by the second stop slot 3320 when swinging.

[0104] Specifically, the swing range of the movable member 3220 when the stop mechanism 3300 is in the first stop state is limited by the width of the first stop slot 3310. The swing range of the movable member 3220 when the stop mechanism 3300 is in the second stop state is limited by the width of the second stop slot 3320. Because the stop mechanism 3300 forms different stops for the movable member 3220 when it is in the first stop state and the second stop state, the positions of the first stop slot 3310 and the second stop slot 3320 are different, for example, the first stop slot 3310 and the second stop slot 3320 are arranged in a zigzag manner to stagger in the drawings. Figure 10

[0105] Further, in combination Figure 10 As shown in the drawings, in some embodiments, the first stop slot 3310 and the second stop slot 3320 are connected, and the stop mechanism 3300 is adapted to reciprocate so that the movable member 3220 can move from the first stop slot 3310 to the second stop slot 3320, and from the second stop slot 3320 to the first stop slot 3310.

[0106] ​Specifically, the movable member 3220 is inserted into the stop mechanism 3300, and the user can control the stop mechanism 3300 to move back and forth, for example, the user directly operates the stop mechanism 3300, when the stop mechanism 3300 moves in one direction of its back and forth movement, the movable member 3220 is thus moved into the first stop slot 3310, and when the stop mechanism 3300 moves in the other direction of its back and forth movement, the movable member 3220 is thus moved into the second stop slot 3320, which is convenient and fast.

[0107] In combination Figures 13 to 18 As shown in the drawings, in some embodiments, the main body 3000 further comprises a limiting mechanism 3400; the sliding block 3100 comprises a first gear mechanism 3110 and a second gear mechanism 3120, the first gear mechanism 3110 and the second gear mechanism 3120 are arranged alternately along the back and forth movement direction of the sliding block 3100, and the first gear mechanism 3110 and the second gear mechanism 3120 are adapted to move with the sliding block 3100 and can alternatively abut against the limiting mechanism 3400.

[0108] Referring to Figure 18 the orientation of the drawings, the sliding block 3100 moves back and forth along the front and back direction, then the first gear mechanism 3110 and the second gear mechanism 3120 are arranged alternately along the front and back direction, the first gear mechanism 3110 and the second gear mechanism 3120 move with the sliding block 3100 when the sliding block 3100 moves back and forth, and the first gear mechanism 3110 and the second gear mechanism 3120 can alternatively abut against the limiting mechanism 3400, that is, the sliding block 3100 can abut against the limiting mechanism 3400 through the first gear mechanism 3110 when moving, or can abut against the limiting mechanism 3400 through the second gear mechanism 3120.

[0109] For example, the sliding block 3100 moves from back to front can abut against the limiting mechanism 3400 through the first gear mechanism 3110, thus blocking the sliding block 3100 from continuing to move from back to front. For another example, the sliding block 3100 moves from back to front can abut against the limiting mechanism 3400 through the second gear mechanism 3120, thus blocking the sliding block 3100 from continuing to move from back to front. Since the first gear mechanism 3110 and the second gear mechanism 3120 are arranged alternately along the front and back direction, the stroke of the sliding block 3100 can be changed, so that the launching device 100 can adapt to different play scenes.

[0110] The selection of the first gear mechanism 3110 and the second gear mechanism 3120 is realized by cooperating with the rack 3101, in combination Figures 13 to 18 As shown in the drawings, in some embodiments, the sliding block 3100 and the rack 3101 are movably connected, and the rack 3101 is adapted to selectively drive one of the first gear mechanism 3110 and the second gear mechanism 3120 to switch to the position abutting against the limiting mechanism 3400 when moving relative to the sliding block 3100.

[0111] For example, the rack 3101 can move relative to the slider 3100 along the reciprocating movement direction of the slider 3100, see Figure 18 In the orientation shown, the first gear mechanism 3110 is located in front of the second gear mechanism 3120, the first gear mechanism 3110 has a tendency to switch to the position of the avoidance limiting mechanism 3400 under the action of the elasticity, the second gear mechanism 3120 has a tendency to switch to the position of the avoidance limiting mechanism 3400 under the action of the elasticity. When the rack 3101 moves forward relative to the slider 3100, the first gear mechanism 3110 is switched to the position of abutting against the limiting mechanism 3400, when the slider 3100 moves forward, the first gear mechanism 3110 abuts against the limiting mechanism 3400, thereby preventing the slider 3100 from continuing to move forward. When the rack 3101 moves backward relative to the slider 3100, the second gear mechanism 3120 is switched to the position of abutting against the limiting mechanism 3400, when the slider 3100 moves forward, the first gear mechanism 3110 avoids the limiting mechanism 3400, the second gear mechanism 3120 abuts against the limiting mechanism 3400, thereby preventing the slider 3100 from continuing to move forward.

[0112] In combination with the orientation shown in Figures 13 to 18 In some embodiments, the slider 3100 further comprises a sliding groove 3130 and a locking member 3140, the rack 3101 is movably connected to the sliding groove 3130, the locking member 3140 is adapted to lock the movement of the rack 3101 relative to the slider 3100, and is also adapted to unlock the movement of the rack 3101 relative to the slider 3100.

[0113] The rack 3101 is adapted to move from one end of the sliding groove 3130 to the other end when the locking member 3140 is unlocked, so as to drive one of the first gear mechanism 3110 and the second gear mechanism 3120 to switch to the position of abutting against the limiting mechanism 3400, and is also adapted to move from the other end of the sliding groove 3130 to the one end when the locking member 3140 is unlocked, so as to drive the other of the first gear mechanism 3110 and the second gear mechanism 3120 to switch to the position of abutting against the limiting mechanism 3400.

[0114] Specifically, when the locking member 3140 locks the rack 3101, the rack 3101 cannot move relative to the slider 3100, at this time, the first gear mechanism 3110 and the second gear mechanism 3120 cannot be switched, when the locking member 3140 unlocks the rack 3101, the rack 3101 can move relative to the slider 3100, specifically, can reciprocate in the sliding groove 3130 of the slider 3100, at this time, the first gear mechanism 3110 and the second gear mechanism 3120 can be switched. The locking member 3140 can unlock the movement of the rack 3101 by pressing.

[0115] When the locking member 3140 is unlocked, the rack 3101 can move from the rear end of the sliding groove 3130 to the front end of the sliding groove 3130, and the locking member 3140 is then locked to prevent the rack 3101 from moving from the front end of the sliding groove 3130 to the rear end of the sliding groove 3130, at which time the first gear mechanism 3110 is switched to the position abutting against the limiting mechanism 3400, and the sliding block 3100 is prevented from continuing to move forward by abutting against the limiting mechanism 3400 through the first gear mechanism 3110.

[0116] When the locking member 3140 is unlocked, the rack 3101 can move from the front end of the sliding groove 3130 to the rear end of the sliding groove 3130, and the locking member 3140 is then locked to prevent the rack 3101 from moving from the rear end of the sliding groove 3130 to the front end of the sliding groove 3130, at which time the second gear mechanism 3120 is switched to the position abutting against the limiting mechanism 3400, and the sliding block 3100 is prevented from continuing to move forward by abutting against the limiting mechanism 3400 through the second gear mechanism 3120.

[0117] In combination Figures 19 to 21 As shown, in some embodiments, the launching mechanism 4200 includes a push plate 4210, a locking member 4220, and a first elastic member 4291, when the object to be launched 200 is installed on the launcher 4000, the object to be launched 200 is adapted to abut against and move the push plate 4210, the locking member 4220 is adapted to lock the push plate 4210 when the push plate 4210 moves to a preset position, and is also adapted to be released by the releasing mechanism 3600 to unlock the push plate 4210, and the first elastic member 4291 is adapted to generate a force on the push plate 4210 to reset the push plate 4210 when the locking member 4220 unlocks the push plate 4210, so that the push plate 4210 drives the object to be launched 200 to be launched.

[0118] Specifically, the object to be launched 200 is movably installed on the launcher 4000, as shown in Figure 1The orientation of the launching device 4000 is shown in FIG. 4A. The launching device 4000 is in a state of being ready to launch the object 200. The object 200 is moved from the front to the back of the launching device 4000. When the object 200 is installed in the launching device 4000, the object 200 and the push plate 4210 abut against each other. The object 200 drives the push plate 4210 to move backward. In the process of the push plate 4210 moving backward, the first elastic member 4291 is elastically deformed to accumulate elastic potential energy. The first elastic member 4291 generates a forward force on the push plate 4210. When the push plate 4210 moves to a preset position (i.e., a position where the push plate 4210 can be locked by the locking member 4220), the push plate 4210 is locked by the locking member 4220. Because of the locking of the locking member 4220, the push plate 4210 does not reset (i.e., the push plate 4210 moves forward) to drive the object 200 to be launched. It can be understood that the force generated by the first elastic member 4291 on the target can be direct or indirect. That is, the force generated by the first elastic member 4291 on the push plate 4210 can be directly applied to the push plate 4210 or indirectly applied to the push plate 4210. The same applies to the force generated by other elastic members in this document, which will not be repeated here.

[0119] The launching of the object 200 needs to be achieved by releasing the locking member 4220 to unlock the push plate 4210 through the releasing mechanism 3600. The user can operate the releasing mechanism 3600 to drive the locking member 4220, so that the locking member 4220 unlocks the push plate 4210. In the case of unlocking the push plate 4210, the elastic potential energy of the first elastic member 4291 is released, and the first elastic member 4291 can drive the push plate 4210 to reset (i.e., move forward). When the push plate 4210 resets, it supports the object 200, thereby generating a force on the object 200 to launch the object 200. It can be understood that the launching mechanism 4200 can also be provided with a second elastic member 4292 acting on the locking member 4220 to drive the locking member 4220 to reset after launching the object 200, thereby facilitating the locking of the push plate 4210 when the object 200 is installed next time.

[0120] In combination with FIGS. 3A and 3B, Figure 19 and Figure 20 In some embodiments, the releasing mechanism 3600 includes a trigger 3610 that is reciprocally movable, and the trigger 3610 is adapted to drive the locking member 4220 to unlock the push plate 4210. Referring to FIG. 4B, the trigger 3610 moves reciprocally in the front-back direction. When the trigger 3610 moves backward, it drives the locking member 4220 to unlock the push plate 4210. The trigger 3610 can directly contact the locking member 4220, or an additional component can be provided for transmission. Figure 21

[0121] In combination with FIGS. 3A and 3B, Figure 1 ,​Figure 2 、 Figure 3 and Figure 22 As shown in Figs. 12 and 13, in some embodiments, the launching device 100 further comprises an extension component 3500, which is adapted to be detachably connected with the main body 3000, and the slider 3100 is adapted to reciprocate to the extension component 3500 when the extension component 3500 is connected with the main body 3000.

[0122] Specifically, the extension component 3500 is adapted to be detachably connected with the main body 3000, i.e. the extension component 3500 and the main body 3000 can be connected and fixed or detached and separated. When the extension component 3500 and the main body 3000 are detached, the slider 3100 reciprocates on the main body 3000, i.e. the reciprocating stroke of the slider 3100 is determined by the main body 3000 itself. When the extension component 3500 is connected to the main body 3000, the slider 3100 can reciprocate to the extension component 3500, i.e. the reciprocating stroke of the slider 3100 is determined by the main body 3000 and the extension component 3500 together, in which case, the reciprocating stroke of the slider 3100 can be increased, which is more conducive to accelerating the rotation of the object to be launched 200.

[0123] When the extension component 3500 and the main body 3000 are connected, the slider 3100 can reciprocate to the extension component 3500, and when the extension component 3500 and the main body 3000 are detached, it is not desirable for the slider 3100 to reciprocate to the position where the extension component 3500 is located, otherwise the slider 3100 will be detached from the main body 3000. Therefore, in some embodiments, as shown in Figs. 14 and 15, the main body 3000 further comprises a limiting mechanism 3400, which is adapted to avoid the slider 3100 when the extension component 3500 and the main body 3000 are connected, so that the slider 3100 can reciprocate to the extension component 3500, and is also adapted to stop the slider 3100 when the extension component 3500 and the main body 3000 are detached, so as to prevent the slider 3100 from being detached. Figure 3 Figure 22 Specifically, the limiting mechanism 3400 is a movable component, which can limit the movement of the slider 3100 and also can release the limitation on the movement of the slider 3100.

[0124] Specifically, the limiting mechanism 3400 is a movable component, which can limit the movement of the slider 3100 and also can release the limitation on the movement of the slider 3100.

[0125] ​When the extension component 3500 and the main body 3000 are connected, the limiting mechanism 3400 presents corresponding changes, at this time the limiting mechanism 3400 avoids the slider 3100, thereby releasing the restriction on the slider 3100, and the slider 3100 can move from the main body 3000 to the extension component 3500, or from the extension component 3500 to the main body 3000. For example, in this case, the limiting mechanism 3400 leaves the moving path of the slider 3100, so that the slider 3100 is not stopped by the limiting mechanism 3400 when moving.

[0126] When the extension component 3500 and the main body 3000 are disassembled, the limiting mechanism 3400 presents corresponding changes, at this time the limiting mechanism 3400 stops the slider 3100, thereby forming a restriction on the slider 3100, and the slider 3100 can only reciprocate in the main body 3000, and when the slider 3100 moves in the direction of moving towards the extension component 3500, it will be stopped by the limiting mechanism 3400 and cannot be separated from the main body 3000. For example, in this case, the limiting mechanism 3400 is located in the moving path of the slider 3100, so that the slider 3100 is stopped by the limiting mechanism 3400 when moving.

[0127] In combination Figure 22 As shown in some embodiments, the extension component 3500 includes a convex rod 3510, and the limiting mechanism 3400 includes a movable pin 3410; the convex rod 3510 is suitable for leading the movable pin 3410 to leave the moving path of the slider 3100 to avoid the slider 3100 when the extension component 3500 and the main body 3000 are connected; and the movable pin 3410 is suitable for moving into the moving path of the slider 3100 to stop the slider 3100 under the action of the elasticity when the extension component 3500 and the main body 3000 are disassembled.

[0128] Specifically, referring to Figure 22 As shown in the orientation, when the extension component 3500 and the main body 3000 are connected, the convex rod 3510 pushes the movable pin 3410 rearward, forcing the movable pin 3410 to press downward to leave the moving path of the slider 3100 (for example, the movable pin 3410 is provided with an inclined surface, and the convex rod 3510 stops the inclined surface, forcing the movable pin 3410 to press downward), forming an avoidance of the slider 3100. When the extension component 3500 and the main body 3000 are disassembled, the movable pin 3410 is reset (raised) to the moving path of the slider 3100 under the action of the elasticity, and the movable pin 3410 can achieve the stop of the movement of the slider 3100.

[0129] In combination Figure 3 and Figure 4As shown, in some embodiments, the main body 3000 is provided with a sliding rail 3001, the extension component 3500 is provided with an extension sliding rail 3501, and the extension sliding rail 3501 and the sliding rail 3001 are adapted to be communicated when the extension component 3500 and the main body 3000 are connected, so that the slider 3100 can reciprocally move in the sliding rail 3001 and the extension sliding rail 3501.

[0130] The slider 3100 can be clamped in the sliding rail 3001, in the case that the extension component 3500 and the main body 3000 are disassembled, the slider 3100 can only reciprocally move in the sliding rail 3001, in the case that the extension component 3500 and the main body 3000 are connected, the slider 3100 can move from the sliding rail 3001 to the extension sliding rail 3501, and can move from the extension sliding rail 3501 to the sliding rail 3001, so as to increase the stroke of the reciprocating movement of the slider 3100.

[0131] In combination with Figure 1 As shown, in some embodiments, the launching device 100 is in the shape of a gun, that is, the launching device 100 is shaped like a gun, so as to improve the fun of the competitive confrontation. For example, the handle 5000 is shaped like a gun handle, and the extension component 3500, the main body 3000 and the launcher 4000 are shaped like a gun body.

[0132] The application also discloses a launching toy, in combination with Figures 1 to 22 As shown, the launching toy comprises the to-be-launched object 200 and the launching device 100 described above, and it can be understood that the launching device 100 of the launching toy of the embodiment adopts the technical solutions of the above-mentioned embodiments, and thus at least has the beneficial effects brought by the technical solutions of the above-mentioned embodiments, which will not be repeated here.

[0133] The above-mentioned is only the preferred embodiments of the application, and does not limit the patent scope of the application, and any equivalent structural transformation made by using the content of the application specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection scope of the application.

Claims

1. A transmitting device (100), characterized by The application relates to a launcher, comprising: a launcher (4000) adapted for mounting a to-be-launched object (200) thereon, the launcher (4000) comprising an acceleration mechanism (4100) and a launching mechanism (4200); a main body (3000) detachably connected with the launcher, the main body (3000) comprising a slider (3100) and a releasing mechanism (3600), the slider (3100) being reciprocally movable, the slider (3100) being adapted for driving the acceleration mechanism (4100) to rotate the to-be-launched object (200), the releasing mechanism (3600) being adapted for driving the launching mechanism (4200) to launch the to-be-launched object (200).

2. The transmitting apparatus (100) of claim 1, characterized by The acceleration mechanism (4100) comprises an acceleration gear (4110), the slider (3100) is adapted for driving the acceleration gear (4110) to rotate, and the acceleration gear (4110) is adapted for driving the to-be-launched object (200) to rotate.

3. The transmitting apparatus (100) according to claim 2, characterized in that The slider (3100) is adapted for reciprocally moving along a first direction and a second direction, the first direction and the second direction being opposite, the main body (3000) further comprising a clutch mechanism (3200) and a stop mechanism (3300), the stop mechanism (3300) having a first stop state and a second stop state; When the stop mechanism (3300) is in the first stop state, the slider (3100) is adapted for driving the clutch mechanism (3200) to rotate the acceleration gear (4110) when moving along the first direction, and the slider (3100) is adapted for driving the clutch mechanism (3200) to separate from the acceleration gear (4110) when moving along the second direction; When the stop mechanism (3300) is in the second stop state, the slider (3100) is adapted for driving the clutch mechanism (3200) to separate from the acceleration gear (4110) when moving along the first direction, and the slider (3100) is adapted for driving the clutch mechanism (3200) to reversely rotate the acceleration gear (4110) when moving along the second direction.

4. The transmitting apparatus (100) of claim 3, characterized by The clutch mechanism (3200) comprises: a movable element (3220) rotatably arranged; a driving gear (3210) rotatably arranged coaxially with the movable element (3220); a first clutch gear (3230) rotatably arranged on the movable element (3220) and meshing with the driving gear (3210); and a second clutch gear (3240) rotatably arranged on the movable element (3220) and meshing with the driving gear (3210); When the stop mechanism (3300) is in the first stop state: The slider (3100) is adapted to drive the driving gear (3210) to rotate when moving along the first direction, so as to swing the movable element (3220) and make the first clutch gear (3230) and the accelerating gear (4110) mesh transmission, and the second clutch gear (3240) and the accelerating gear (4110) separate; The slider (3100) is adapted to drive the driving gear (3210) to rotate reversely when moving along the second direction, so as to swing the movable element (3220) reversely and be stopped by the stop mechanism (3300), so that the first clutch gear (3230) and the accelerating gear (4110) separate, and the second clutch gear (3240) and the accelerating gear (4110) separate. When the stop mechanism (3300) is in the second stop state; The slider (3100) is adapted to drive the driving gear (3210) to rotate when moving along the first direction, so as to swing the movable element (3220) and be stopped by the stop mechanism (3300), so that the first clutch gear (3230) and the accelerating gear (4110) separate, and the second clutch gear (3240) and the accelerating gear (4110) separate. The slider (3100) is adapted to drive the driving gear (3210) to rotate reversely when moving along the second direction, so as to swing the movable element (3220) reversely and make the first clutch gear (3230) and the accelerating gear (4110) separate, and the second clutch gear (3240) and the accelerating gear (4110) mesh transmission.

5. The transmitting apparatus (100) according to claim 4, characterized in that The stop mechanism (3300) comprises a first stop groove (3310) and a second stop groove (3320); When the stop mechanism (3300) is in the first stop state, the movable element (3220) is inserted into the first stop groove (3310) to be adapted to be stopped by the first stop groove (3310) when swinging; When the stop mechanism (3300) is in the second stop state, the movable element (3220) is inserted into the second stop groove (3320) to be adapted to be stopped by the second stop groove (3320) when swinging.

6. The transmitting apparatus (100) of claim 5, characterized by The first stop groove (3310) and the second stop groove (3320) are communicated, and the stop mechanism (3300) is adapted to reciprocate, so that the movable element (3220) can move from the first stop groove (3310) into the second stop groove (3320), and from the second stop groove (3320) into the first stop groove (3310).

7. The transmitting apparatus (100) according to claim 4, characterized in that The main body (3000) further comprises a rack (3101), the slider (3100) and the rack (3101) are connected and can drive the rack (3101) to reciprocate, and the rack (3101) and the driving gear (3210) are in transmission connection.

8. The transmitting apparatus (100) of claim 1, characterized by The main body (3000) further comprises a limiting mechanism (3400); the sliding block (3100) comprises a first gear mechanism (3110) and a second gear mechanism (3120), the first gear mechanism (3110) and the second gear mechanism (3120) are arranged alternately along the reciprocating movement direction of the sliding block (3100), and the first gear mechanism (3110) and the second gear mechanism (3120) are adapted to move with the sliding block (3100) and can be selectively in abutment with the limiting mechanism (3400).

9. The transmitting apparatus (100) according to claim 8, characterized in that The main body (3000) further comprises a rack (3101), the sliding block (3100) and the rack (3101) are movably connected and can drive the rack (3101) to move reciprocatingly, and the rack (3101) and the acceleration mechanism (4100) are in transmission connection; The rack (3101) is adapted to selectively drive one of the first gear mechanism (3110) and the second gear mechanism (3120) to switch to a position in abutment with the limiting mechanism (3400) when moving relative to the sliding block (3100).

10. The transmitting apparatus (100) according to claim 9, characterized by The sliding block (3100) further comprises a sliding groove (3130) and a locking member (3140), the rack (3101) is movably connected to the sliding groove (3130), and the locking member (3140) is adapted to lock the movement of the rack (3101) relative to the sliding block (3100) and to unlock the movement of the rack (3101) relative to the sliding block (3100); The rack (3101) is adapted to move from one end of the sliding groove (3130) to the other end when the locking member (3140) is unlocked, so as to drive one of the first gear mechanism (3110) and the second gear mechanism (3120) to switch to a position in abutment with the limiting mechanism (3400), and is adapted to move from the other end of the sliding groove (3130) to the one end when the locking member (3140) is unlocked, so as to drive the other of the first gear mechanism (3110) and the second gear mechanism (3120) to switch to a position in abutment with the limiting mechanism (3400).

11. The transmitting apparatus (100) according to claim 1, characterized in that The launching mechanism (4200) comprises: a push plate (4210), when the object to be launched (200) is installed on the launcher (4000), the object to be launched (200) is adapted to abut against and drive the push plate (4210) to move; a locking member (4220) adapted to lock the push plate (4210) when the push plate (4210) moves to a preset position, and to be unlocked by the release mechanism (3600); and a first elastic member (4291) adapted to generate a force on the push plate (4210) to drive the push plate (4210) to reset when the locking member (4220) unlocks the push plate (4210), so that the push plate (4210) drives the object to be launched (200) to be launched.

12. The transmitting apparatus (100) according to claim 11, characterized by The release mechanism (3600) comprises a reciprocally movable trigger (3610) adapted to drive the locking member (4220) to unlock the push plate (4210).

13. The transmitting apparatus (100) according to claim 1, characterized in that The launching device (100) further comprises an extension component (3500) adapted to be detachably connected with the main body (3000), and the slider (3100) is adapted to reciprocally move to the extension component (3500) when the extension component (3500) is connected with the main body (3000).

14. The transmitting apparatus (100) according to claim 13, characterized in that The main body (3000) further comprises a limiting mechanism (3400) adapted to avoid the slider (3100) when the extension component (3500) is connected with the main body (3000) so that the slider (3100) can reciprocally move to the extension component (3500), and adapted to stop the slider (3100) when the extension component (3500) is detached from the main body (3000) to prevent the slider (3100) from being pulled out.

15. The transmitting apparatus (100) according to claim 14, characterized in that The extension component (3500) comprises a protruding rod (3510), and the limiting mechanism (3400) comprises a movable pin (3410). The protruding rod (3510) is adapted to drive the movable pin (3410) to move away from the moving path of the slider (3100) to avoid the slider (3100) when the extension component (3500) is connected with the main body (3000). The movable pin (3410) is adapted to move into the moving path of the slider (3100) to stop the slider (3100) under the action of elasticity when the extension component (3500) is detached from the main body (3000).

16. The transmitting apparatus (100) according to claim 13, characterized by The main body (3000) is provided with a slide rail (3001), and the extension component (3500) is provided with an extension slide rail (3501), and the extension slide rail (3501) and the slide rail (3001) are adapted to be communicated when the extension component (3500) is connected with the main body (3000) so that the slider (3100) can reciprocally move in the slide rail (3001) and the extension slide rail (3501).

17. The transmitting apparatus (100) according to any one of claims 1 to 16, characterized in that The launching device (100) is in the shape of a gun.

18. A launching toy, characterized in that The launching device (100) comprises a to-be-launched object (200) and any one of the launching devices (100) according to claims 1 to 17.