Launching device and launching toy
By designing a launching device with an acceleration gear and a stop mechanism, the rotation and launching of the object to be launched are realized, solving the problem of insufficient playability of existing launching toys and enhancing the competitive experience.
Patent Information
- Application Number
- CN202423076380.5
- 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
Existing launching toys lack playability and cannot provide sufficient entertainment and competitive experience.
A launching device was designed, comprising an acceleration mechanism and a launching mechanism. The acceleration gear is driven to rotate by a slider, which, in conjunction with a stop mechanism and a clutch mechanism, enables the rotation and launching of the object to be launched. The reciprocating movement of the slider and the release mechanism do not interfere with each other, keeping the object to be launched in a rotating state after launch.
It enhances the playability and fun of launching toys, and strengthens the competitive experience through the continuous rotation of the object to be launched.
Smart Images

Figure CN223683031U_ABST
Abstract
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 UTILITY MODEL
[0003] The present application aims to at least solve one of the technical 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 first main body detachably connected with the launcher, the first main body comprising a sliding block, 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; and
[0007] a second main body detachably connected with the launcher, the second main body comprising a releasing mechanism, the releasing mechanism being adapted to drive the launching mechanism so that the launching mechanism launches the to-be-launched object.
[0008] 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.
[0009] 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 first main body further comprising a clutch mechanism and a stop mechanism, the stop mechanism having a first stop state and a second stop state;
[0010] 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.
[0011] 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.
[0012] In some embodiments of the present application, the clutch mechanism comprises:
[0013] a movable member rotatably arranged;
[0014] a driving gear rotatably arranged coaxially with the movable member;
[0015] a first clutch gear rotatably arranged on the movable member and engaged with the driving gear; and
[0016] a second clutch gear rotatably arranged on the movable member and engaged with the driving gear;
[0017] When the stop mechanism is in the first stop state:
[0018] 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;
[0019] 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 as to disengage the first clutch gear and the acceleration gear, and disengage the second clutch gear and the acceleration gear;
[0020] When the stop mechanism is in the second stop state:
[0021] 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 as to disengage the first clutch gear and the acceleration gear, and disengage the second clutch gear and the acceleration gear;
[0022] 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.
[0023] In some embodiments of the present application, the stop mechanism comprises a clamping groove, and the movable member is inserted into the clamping groove;
[0024] When the stop mechanism is in the first stop state, the movable piece is adapted to be stopped by one side of the clamping groove, so that the first clutch gear and the second clutch gear are separated from the acceleration gear, respectively.
[0025] When the stop mechanism is in the second stop state, the movable piece is adapted to be stopped by the other side of the clamping groove, so that the first clutch gear and the second clutch gear are separated from the acceleration gear, respectively.
[0026] In some embodiments of the present application, the movable piece is rotatably arranged to change the position of the clamping groove.
[0027] In some embodiments of the present application, the first body further comprises a rack, the slider and the rack are connected and the rack is driven to move back and forth, and the rack and the driving gear are in transmission connection.
[0028] In some embodiments of the present application, the launching mechanism comprises:
[0029] a push plate, when the to-be-launched object is installed on the launcher, the to-be-launched object is adapted to abut against the push plate and drive the push plate to move;
[0030] a locking piece adapted to lock the push plate when the push plate moves to a preset position, and adapted to be unlocked by the releasing mechanism; and
[0031] a first elastic piece adapted to generate force on the push plate to drive the push plate to reset when the locking piece unlocks the push plate, so that the push plate drives the to-be-launched object to launch.
[0032] In some embodiments of the present application, the launching mechanism further comprises a rotating piece provided with a lug and a contact portion, the releasing mechanism can drive the lug to rotate the rotating piece, and the contact portion drives the locking piece to unlock the push plate.
[0033] In some embodiments of the present application, the releasing mechanism comprises a reciprocating pusher adapted to push the lug to rotate the rotating piece.
[0034] In some embodiments of the present application, the launching device further comprises an extension component adapted to be detachably connected with the first body, and the slider is adapted to move back and forth to the extension component when the extension component and the first body are connected.
[0035] In some embodiments of the present application, the first body further comprises a limiting mechanism, which is adapted to avoid the slider when the extension component and the first body are connected, so that the slider can reciprocate to the extension component, and is adapted to stop the slider when the extension component and the first body are disassembled, so as to prevent the slider from escaping.
[0036] In some embodiments of the present application, the extension component comprises a convex rod, and the limiting mechanism comprises a movable pin.
[0037] The convex rod is adapted to drive the movable pin to leave the moving path of the slider to avoid the slider when the extension component and the first body are connected.
[0038] The movable pin is adapted to move into the moving path of the slider under the action of the elasticity to stop the slider when the extension component and the first body are disassembled.
[0039] In some embodiments of the present application, the first body is provided with a sliding rail, and the extension component is provided with an extension sliding rail, which is adapted to communicate with the sliding rail when the extension component and the first body are connected, so that the slider can reciprocate in the sliding rail and the extension sliding rail.
[0040] In some embodiments of the present application, the first body is provided with a guide slot, and the extension component is provided with an extension guide slot, which is adapted to communicate with the guide slot when the extension component and the first body are connected, and the object to be launched is adapted to be launched along the guide slot and the extension guide slot.
[0041] In some embodiments of the present application, the launching device constitutes a knife shape.
[0042] The second aspect of the present application discloses a launching toy, which comprises an object to be launched and the above-mentioned launching device.
[0043] The slider cooperates with the accelerating mechanism to drive the object to be launched to rotate, and the releasing mechanism cooperates with the launching mechanism to drive the object to be launched to launch, the operation of the slider and the operation of the releasing mechanism do not affect each other, and the object to be launched can still remain in a rotating state after launching, which is particularly beneficial to competitive confrontation and improves the playability and interestingness.
[0044] Other advantages of the present application will be partially given in the following description, partially will become obvious from the following description, or will be understood by the practice of the present application. BRIEF DESCRIPTION OF DRAWINGS
[0045] 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.
[0046] Figure 1 This is a schematic diagram of the launching device in some embodiments;
[0047] Figure 2 This is a schematic diagram of the launching device in some embodiments (the slider is located on the first body);
[0048] Figure 3 This is a schematic diagram of the launching device in some embodiments (the slider is located on the extension component);
[0049] Figure 4 This is a schematic diagram of the launch of the object to be launched in some embodiments;
[0050] Figure 5 This is an exploded view of the launching device in some embodiments;
[0051] Figure 6 This is a schematic diagram showing the cooperation between the object to be launched and the acceleration mechanism in some embodiments;
[0052] Figure 7 This is a schematic diagram of a partial structure of the launching device in some embodiments;
[0053] Figure 8 This is a schematic diagram showing the engagement of the stop mechanism, clutch mechanism, and acceleration gear in some embodiments;
[0054] Figure 9 for Figure 8 Another perspective view of the structure shown;
[0055] Figure 10 This is a schematic diagram of the reciprocating movement of the slider when the stop mechanism is in the first stop state in some embodiments;
[0056] Figure 11 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;
[0057] Figure 12 This is a schematic diagram showing the cooperation between the release mechanism and the launching mechanism in some embodiments;
[0058] Figure 13 for Figure 12 The diagram shown is an exploded view of the structure.
[0059] Figure 14 Schematic diagram of the rotating component in some embodiments;
[0060] Figure 15 Schematic view of the release mechanism driving the launching mechanism to launch the object to be launched in some embodiments;
[0061] Figure 16 Schematic view of the first body before connecting the extension component in some embodiments;
[0062] Figure 17 Schematic view of the first body when connecting the extension component in some embodiments (the extension component is omitted in the figure for clarity);
[0063] Figure 18 Schematic view of the cooperation between the extension component and the limiting mechanism in some embodiments.
[0064] Explanation of the reference signs:
[0065] The launching device 100, the object to be launched 200, the first body 2000, the sliding rail 2001, the guide slot 2002, the sliding block 2100, the rack 2101, the clutch mechanism 2200, the driving gear 2210, the movable piece 2220, the first clutch gear 2230, the second clutch gear 2240, the stop mechanism 2300, the clamping slot 2310, the limiting mechanism 2400, the movable pin 2410, the extension component 2500, the extension sliding rail 2501, the extension guide slot 2502, the protruding rod 2510, the launcher 4000, the acceleration mechanism 4100, the acceleration gear 4110, the launching mechanism 4200, the push plate 4210, the locking piece 4220, the rotating piece 4230, the contact part 4232, the central shaft part 4233, the lug 4234, the first elastic piece 4291, the second elastic piece 4292, the second body 5000, the release mechanism 5100, the pushing piece 5110.
[0066] 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
[0067] 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 some of the embodiments of the present application, but not 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.
[0068] It should be noted that all directional 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, motion condition, etc. between the components in a certain posture (as shown in the drawings), and if the certain posture changes, the directional indications will also change accordingly.
[0069] In this application, unless otherwise clearly specified and limited, the terms "connection", "fixation" and the like 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 intermediate medium; can be internal connection of two elements, or interaction relationship between two elements, unless otherwise clearly limited. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.
[0070] In addition, in this application, the description such as "first", "second" and the like is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features, or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include 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 fact that the technical solutions can be realized by those skilled in the art. When the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, nor is it within the protection scope required by this application.
[0071] The first aspect of the present application discloses a launching device 100, which is combined with Figures 1 to 9 and Figures 12 to 15 As shown in the figure, in some embodiments, the launching device 100 comprises a launcher 4000, a first body 2000 and a second body 5000, the launcher 4000 is adapted for mounting the to-be-launched object 200 thereon, the launcher 4000 comprises an acceleration mechanism 4100 and a launching mechanism 4200, the first body 2000 is arranged on the launcher 4000, the first body 2000 comprises a sliding block 2100, the sliding block 2100 is reciprocally movable, the sliding block 2100 is adapted for driving the acceleration mechanism 4100, so that the acceleration mechanism 4100 drives the to-be-launched object 200 to rotate, the second body 5000 is arranged on the launcher 4000 to be adapted for holding, the second body 5000 comprises a releasing mechanism 5100, the releasing mechanism 5100 is adapted for driving the launching mechanism 4200, so that the launching mechanism 4200 drives the to-be-launched object 200 to launch.
[0072] The transmitter 4000 has a position for mounting the to-be-launched object 200, which can have various structural forms as long as it can mount the to-be-launched object 200. The acceleration mechanism 4100 on the transmitter 4000 can drive the to-be-launched object 200 to rotate, and the launching mechanism 4200 on the transmitter 4000 can drive the to-be-launched object 200 to launch. Driving means that the relevant part is driven to move by power, which can be directly achieved or indirectly achieved. 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 first main body 2000 to drive the to-be-launched object 200 (rotate), and the launching mechanism 4200 needs to cooperate with the second main body 5000 to drive the to-be-launched object 200 (launch).
[0073] The first main body 2000 is arranged on the transmitter 4000, for example, by detachable connection. The first main body 2000 includes a sliding block 2100, which can move back and forth, that is, the sliding block 2100 can move in a first direction or a second direction, and the first direction and the second direction are opposite. During the reciprocating movement of the sliding block 2100, the sliding block 2100 can drive the acceleration mechanism 4100, so that the acceleration mechanism 4100 drives the to-be-launched object 200 to rotate. The second main body 5000 is arranged on the transmitter 4000, for example, by detachable connection. The second main body 5000 includes a release mechanism 5100, which can drive the launching mechanism 4200. That is, the release mechanism 5100 is movably arranged, and the movement of the release mechanism 5100 can drive the launching mechanism 4200, so that the launching mechanism 4200 drives the to-be-launched object 200 to launch. In this embodiment, the sliding block 2100 and the release mechanism 5100 do not interfere with each other, and the to-be-launched object 200 can be controlled to rotate first and then to launch, or the to-be-launched object 200 can be directly controlled to launch without rotating.
[0074] For example, see Figure 4The user holds the second body 5000 with one hand and the slider 2100 with the other hand, controls the slider 2100 to move back and forth in the front-rear direction (the first direction is from front to back and the second direction is from back to front, or the second direction is from front to back and the first direction is from back to front), thereby driving the acceleration mechanism 4100 to rotate the to-be-launched object 200, and the hand holding the second body 5000 controls the release mechanism 5100 to drive the launching mechanism 4200, so that the to-be-launched object 200 is launched. After the to-be-launched object 200 is launched and falls to the ground, it still maintains a rotating state, at which time the to-be-launched object 200 will not fall until it stops rotating. This is advantageous to improve the playability, or multiple (two or more) to-be-launched objects 200 are launched and fall to the concave arc region, and the to-be-launched objects 200 will move towards the bottom of the concave arc region. Since the to-be-launched objects 200 can maintain rotation, collisions can occur between multiple to-be-launched objects 200, so that competitive confrontation can be formed, improving the playability.
[0075] In particular, the faster the slider 2100 moves back and forth, the more advantageous it is to accelerate the rotation of the to-be-launched object 200, and the faster the to-be-launched object 200 rotates, the more advantageous it is to competitive confrontation. 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 can rotate 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 to launch the entire top.
[0076] In combination with FIGS. 1-3, Figure 6 and Figure 7 In some embodiments, the acceleration mechanism 4100 includes an acceleration gear 4110, and the slider 2100 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.
[0077] Specifically, the reciprocating movement of the slider 2100 is converted into the rotation of the acceleration gear 4110. For example, the first body 2000 further comprises a rack 2101, the slider 2100 is connected to the rack 2101 to drive the rack 2101 to reciprocate, and the rack 2101 is in transmission connection with the acceleration gear 4110, so that the rotation of the acceleration gear 4110 is realized. 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 engaged with the acceleration gear 4110, and the acceleration gear 4110 can drive the to-be-launched object 200 to rotate when the acceleration gear 4110 rotates. 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 first body 2000 can drive the slider 2100 to reset by arranging an elastic member to provide elastic force.
[0078] In combination Figures 6 to 11 As shown in the drawings, in some embodiments, the slider 2100 is adapted to reciprocate along a first direction and a second direction, the first direction and the second direction are opposite, the first body 2000 further comprises a clutch mechanism 2200 and a stop mechanism 2300, the stop mechanism 2300 has a first stop state and a second stop state.
[0079] When the stop mechanism 2300 is in the first stop state, the slider 2100 is adapted to drive the clutch mechanism 2200 to rotate the acceleration gear 4110 when moving along the first direction, and the slider 2100 is adapted to drive the clutch mechanism 2200 to separate from the acceleration gear 4110 when moving along the second direction. When the stop mechanism 2300 is in the second stop state, the slider 2100 is adapted to drive the clutch mechanism 2200 to separate from the acceleration gear 4110 when moving along the first direction, and the slider 2100 is adapted to drive the clutch mechanism 2200 to drive the acceleration gear 4110 to rotate in the reverse direction when moving along the second direction.
[0080] By arranging the clutch mechanism 2200, only one direction of the reciprocating movement of the slider 2100 can drive the acceleration gear 4110 to rotate, and the other direction of the reciprocating movement of the slider 2100 cannot drive the acceleration gear 4110 to rotate. Thus, under the action of the reciprocating movement of the slider 2100 for multiple times, the continuous rotation and acceleration of the acceleration gear 4110 can be realized. In addition, by arranging the stop mechanism 2300, the stop mechanism 2300 switches different stop states to change the rotation direction of the acceleration gear 4110, so as to change the rotation direction of the to-be-launched object 200.
[0081] For example, refer toFigure 10 In the orientation of the stop mechanism 2300 in the first stop state, in the first reciprocating movement of the slider 2100, the slider 2100 moves in the first direction to make the clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise rotation), and the slider 2100 moves in the second direction to make the clutch mechanism 2200 away from the acceleration gear 4110; in the second reciprocating movement of the slider 2100, the slider 2100 moves in the first direction to make the clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise rotation), and the slider 2100 moves in the second direction to make the clutch mechanism 2200 away from the acceleration gear 4110, and so on.
[0082] Referring to Figure 11 In the orientation of the stop mechanism 2300 in the second stop state, in the first reciprocating movement of the slider 2100, the slider 2100 moves in the first direction to make the clutch mechanism 2200 away from the acceleration gear 4110, and the slider 2100 moves in the second direction to make the clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate in the reverse direction (counterclockwise rotation); in the second reciprocating movement of the slider 2100, the slider 2100 moves in the first direction to make the clutch mechanism 2200 away from the acceleration gear 4110, and the slider 2100 moves in the second direction to make the clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate in the reverse direction (counterclockwise rotation), and so on.
[0083] In combination with Figures 7 to 11 As shown in the figure, in some embodiments, the clutch mechanism 2200 includes a movable part 2220, a driving gear 2210, a first clutch gear 2230, and a second clutch gear 2240, the movable part 2220 is rotatably arranged, the driving gear 2210 is rotatably arranged and coaxial with the movable part 2220, the first clutch gear 2230 is rotatably arranged on the movable part 2220 and meshed with the driving gear 2210; the second clutch gear 2240 is rotatably arranged on the movable part 2220 and meshed with the driving gear 2210;
[0084] In the first stop state of the stop mechanism 2300:
[0085] The slider 2100 is adapted to drive the driving gear 2210 to rotate when moving in the first direction, so as to swing the movable member 2220 and make the first clutch gear 2230 and the accelerating gear 4110 engage in transmission, and the second clutch gear 2240 and the accelerating gear 4110 disengage; the slider 2100 is adapted to drive the driving gear 2210 to rotate reversely when moving in the second direction, so as to swing the movable member 2220 reversely and be stopped by the stopping mechanism 2300, so that the first clutch gear 2230 and the accelerating gear 4110 disengage, and the second clutch gear 2240 and the accelerating gear 4110 disengage;
[0086] When the stopping mechanism 2300 is in the second stopping state;
[0087] The slider 2100 is adapted to drive the driving gear 2210 to rotate when moving in the first direction, so as to swing the movable member 2220 and be stopped by the stopping mechanism 2300, so that the first clutch gear 2230 and the accelerating gear 4110 disengage, and the second clutch gear 2240 and the accelerating gear 4110 disengage; the slider 2100 is adapted to drive the driving gear 2210 to rotate reversely when moving in the second direction, so as to swing the movable member 2220 reversely and make the first clutch gear 2230 and the accelerating gear 4110 disengage, and the second clutch gear 2240 and the accelerating gear 4110 engage in transmission.
[0088] Specifically, the movable member 2220 is rotatably arranged and can swing within a certain range, and the certain range is limited by the stopping mechanism 2300. The driving gear 2210 is rotatably arranged and coaxial with the movable member 2220, and the driving gear 2210 can be arranged on the movable member 2220 or not. The coaxiality of the driving gear 2210 and the movable member 2220 means that the rotation axis of the driving gear 2210 is coaxial with the rotation axis of the movable member 2220. The first clutch gear 2230 is arranged on the movable member 2220 and can rotate relative to the movable member 2220, and the second clutch gear 2240 is arranged on the movable member 2220 and can rotate relative to the movable member 2220. Since the movable member 2220 is rotatably arranged, and the driving gear 2210 is coaxial with the movable member 2220, no matter how the movable member 2220 swings, the engagement of the driving gear 2210 and the first clutch gear 2230 and the engagement of the driving gear 2210 and the second clutch gear 2240 can be maintained, so that the movable member 2220 can be swung in different directions when the driving gear 2210 rotates in different directions, and the first clutch gear 2230 and the second clutch gear 2240 can be swung when the movable member 2220 is swung in different directions.
[0089] The reciprocating movement of the slider 2100 drives the driving gear 2210 to rotate in different directions. For example, the slider 2100 can drive the driving gear 2210 to rotate through the rack 2101. Since the slider 2100 can reciprocate, the driving gear 2210 rotates in a direction different from the direction in which the driving gear 2210 rotates when the slider 2100 moves in a second direction.
[0090] Referring to Figure 10 In the orientation of FIG. 10, when the stop mechanism 2300 is in the first stop state:
[0091] When the slider 2100 moves in the first direction, the slider 2100 drives the driving gear 2210 to rotate clockwise, the driving gear 2210 drives the first clutch gear 2230 and the second clutch gear 2240 to rotate counterclockwise, and the driving gear 2210 drives the movable member 2220 to swing clockwise. The first clutch gear 2230 and the second clutch gear 2240 follow the swing, so that the first clutch gear 2230 and the acceleration gear 4110 are in meshing transmission (and thus the swing of the movable member 2220 in the clockwise direction is limited) and the second clutch gear 2240 and the acceleration gear 4110 are separated. Finally, the first clutch gear 2230 drives the acceleration gear 4110 to rotate clockwise to drive the object to be launched 200 to rotate (counterclockwise). It can be understood that when the slider 2100 is moved to the limit in the first direction and is stationary, the driving gear 2210 is stationary. Since the movable member 2220 is rotatably arranged and the object to be launched 200 is still rotating, the movable member 2220 is forced to swing counterclockwise so that the first clutch gear 2230 and the acceleration gear 4110 are separated.
[0092] When the slider 2100 is switched from moving in the first direction to moving in the second direction, the slider 2100 drives the driving gear 2210 to rotate counterclockwise. The driving gear 2210 drives the first clutch gear 2230 and the second clutch gear 2240 to rotate clockwise. At the same time, the driving gear 2210 drives the movable member 2220 to swing counterclockwise until the movable member 2220 is stopped by the stop mechanism 2300. The first clutch gear 2230 and the second clutch gear 2240 follow the swing, so that the first clutch gear 2230 and the acceleration gear 4110 are separated, and the second clutch gear 2240 and the acceleration gear 4110 are separated.
[0093] Referring to Figure 11 In the orientation of FIG. 10, when the stop mechanism 2300 is in the first stop state:
[0094] When the slider 2100 moves along the first direction, the driving gear 2210 rotates clockwise, the first clutch gear 2230 and the second clutch gear 2240 rotate anticlockwise, and the movable member 2220 rotates clockwise until the movable member 2220 is stopped by the stop mechanism 2300, the first clutch gear 2230 and the second clutch gear 2240 rotate with the movable member 2220, so that the first clutch gear 2230 and the acceleration gear 4110 are separated, and the second clutch gear 2240 and the acceleration gear 4110 are separated.
[0095] When the slider 2100 moves along the second direction after moving along the first direction, the driving gear 2210 rotates anticlockwise, the first clutch gear 2230 and the second clutch gear 2240 rotate clockwise, and the movable member 2220 rotates anticlockwise, the first clutch gear 2230 and the second clutch gear 2240 rotate with the movable member 2220, so that the second clutch gear 2240 and the acceleration gear 4110 are engaged and driven (so that the movable member 2220 is also limited to rotate anticlockwise), and the first clutch gear 2230 and the acceleration gear 4110 are separated, and finally the acceleration gear 4110 rotates anticlockwise through the second clutch gear 2240 to drive the to-be-launched object 200 to rotate (clockwise). It can be understood that when the slider 2100 moves to the limit along the second direction and is static, the driving gear 2210 is static, because the movable member 2220 is rotatably arranged and the to-be-launched object 200 is still rotating, the movable member 2220 is forced to rotate clockwise, so that the second clutch gear 2240 and the acceleration gear 4110 are separated.
[0096] In combination with 8 to Figure 11 As shown in FIG. 8, in some embodiments, the stop mechanism 2300 includes a clamping groove 2310, and the movable member 2220 is inserted into the clamping groove 2310.
[0097] When the stop mechanism 2300 is in the first stop state, the movable member 2220 is adapted to be stopped by one side of the clamping groove 2310, so that the first clutch gear 2230 and the second clutch gear 2240 are separated from the acceleration gear 4110, respectively; when the stop mechanism 2300 is in the second stop state, the movable member 2220 is adapted to be stopped by the other side of the clamping groove 2310, so that the first clutch gear 2230 and the second clutch gear 2240 are separated from the acceleration gear 4110, respectively.
[0098] In this embodiment, the movable member 2220 is limited in different stop states of the stop mechanism 2300 by the same clamping groove 2310, which simplifies the structure.
[0099] Since the movable piece 2220 is inserted into the clamping groove 2310 when the stop mechanism 2300 is in the first stop state and the second stop state, in order to enable the opposite sides of the clamping groove 2310 to stop the movable piece 2220 in the corresponding stop state, the position of the clamping groove 2310 is different when the stop mechanism 2300 is in the first stop state and in the second stop state. For example, the movable piece 2220 can be rotatably arranged to change the position of the clamping groove 2310. For example, the movable piece 2220 can be rotatable to swing back and forth by a certain angle, so as to change the position of the clamping groove 2310. The rotatable arrangement of the movable piece 2220 can be achieved by screwing, for example. When the screw is loosened, the movable piece 2220 can be rotated to adjust the position of the clamping groove 2310. When the screw is tightened, the movable piece 2220 is fixed to position the clamping groove 2310.
[0100] In combination Figures 12 to 15 As shown in the drawings, in some embodiments, the launching mechanism 4200 comprises a push plate 4210, a locking piece 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 piece 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 unlocked by the releasing mechanism 5100. 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 piece 4220 unlocks the push plate 4210, so that the push plate 4210 launches the object to be launched 200.
[0101] Specifically, the object to be launched 200 is movably installed on the launcher 4000, as shown in the drawings Figure 1The launch object 200 is moved backward and installed on the launcher 4000. When the launch object 200 is installed on the launcher 4000, the launch object 200 and the push plate 4210 abut together. The launch object 200 drives the push plate 4210 to move backward. During the backward movement of the push plate 4210, the first elastic element 4291 is elastically deformed and accumulates elastic potential energy. The first elastic element 4291 generates a forward force on the push plate 4210. When the push plate 4210 moves to a preset position (i.e., the position where it can be locked by the locking element 4220), it will be locked by the locking element 4220. Due to the locking by the locking element 4220, the push plate 4210 will not reset (resetting here means that the push plate 4210 moves to the position where the launch object 200 is installed in front of the launcher 4000, i.e., the push plate 4210 moves forward) and will drive the launch object 200 to be launched. It is understandable that the force generated by the first elastic element 4291 on the target can be direct or indirect. That is, the force generated by the first elastic element 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 applied by other elastic elements in this article, which will not be repeated here.
[0102] Launching the object 200 requires the release mechanism 5100 to unlock the push plate 4210 by driving the locking member 4220. The user can operate the release mechanism 5100, which drives the locking member 4220, thereby unlocking the push plate 4210. With the push plate 4210 unlocked, the elastic potential energy of the first elastic member 4291 is released, causing the push plate 4210 to reset (move forward). When the push plate 4210 resets, it supports the object 200, thus generating force and launching it. It is understood that the launching mechanism 4200 can also be equipped with a second elastic member 4292. This second elastic member 4292 acts on the locking member 4220 to reset the locking member 4220 after launching the object 200, facilitating locking the push plate 4210 during the next installation of the object 200.
[0103] Combination Figures 12 to 15 As shown, in some embodiments, the launching mechanism 4200 further includes a rotating member 4230, which is provided with a lug 4234 and a contact portion 4232. The releasing mechanism 5100 can drive the lug 4234 to rotate the rotating member 4230 and cause the contact portion 4232 to drive the locking member 4220 to unlock the push plate 4210.
[0104] Specifically, the rotating member 4230 is designed to be rotatably arranged, the lug 4234 and the contact portion 4232 are designed to be rotatable about the rotation axis of the rotating member 4230, for example, the rotating member 4230 comprises a middle shaft portion 4233 and the lug 4234 and the contact portion 4232 arranged on the middle shaft portion 4233, and the rotation axis of the rotating member 4230 is formed by the middle shaft portion 4233. The release mechanism 5100 comprises a reciprocating push member 5110, see Figure 15 When the push member 5110 moves forward, the push lug 4234 is pushed, and the rotating member 4230 is forced to rotate counterclockwise, and the counterclockwise rotation of the rotating member 4230 causes the contact portion 4232 to push the locking member 4220, and the locking member 4220 is pressed down to unlock the push plate 4210. By arranging the rotating member 4230, the arrangement and cooperation between the structures are facilitated.
[0105] In combination with Figures 1 to 5 As shown in FIG. 10, in some embodiments, the launching device 100 further comprises an extension member 2500, which is adapted to be detachably connected with the first main body 2000, and the slider 2100 is adapted to reciprocate to the extension member 2500 when the extension member 2500 and the first main body 2000 are connected.
[0106] Specifically, the extension member 2500 is adapted to be detachably connected with the first main body 2000, that is, the extension member 2500 and the first main body 2000 can be connected and fixed or detached and separated. When the extension member 2500 and the first main body 2000 are detached, the slider 2100 reciprocates on the first main body 2000, that is, the reciprocating stroke of the slider 2100 is determined by the first main body 2000 itself. When the extension member 2500 is connected to the first main body 2000, the slider 2100 can reciprocate to the extension member 2500, that is, the reciprocating stroke of the slider 2100 is determined by the first main body 2000 and the extension member 2500 together, in which case, the reciprocating stroke of the slider 2100 can be increased, which is more conducive to accelerating the rotation of the object to be launched 200.
[0107] When the extension member 2500 and the first main body 2000 are connected, the slider 2100 can reciprocate to the extension member 2500, and when the extension member 2500 and the first main body 2000 are detached, it is not desirable for the slider 2100 to reciprocate to the position where the extension member 2500 is located, otherwise the slider 2100 will be detached from the first main body 2000. Therefore, in some embodiments, in combination with Figure 16 and Figure 17As shown, the first body 2000 further comprises a limiting mechanism 2400, which is adapted to avoid the slider 2100 when the extension component 2500 and the first body 2000 are connected, so that the slider 2100 can be reciprocally moved to the extension component 2500, and is adapted to stop the slider 2100 when the extension component 2500 and the first body 2000 are disassembled, so as to prevent the slider 2100 from being taken out.
[0108] Specifically, the limiting mechanism 2400 is a movable part, which can limit the movement of the slider 2100 and can also release the limitation on the movement of the slider 2100.
[0109] When the extension component 2500 and the first body 2000 are connected, the limiting mechanism 2400 is changed accordingly, at this time, the limiting mechanism 2400 avoids the slider 2100, thereby releasing the limitation on the slider 2100, and the slider 2100 can be moved from the first body 2000 to the extension component 2500 or from the extension component 2500 to the first body 2000. For example, in this case, the limiting mechanism 2400 leaves the movement path of the slider 2100, so that the slider 2100 will not be stopped by the limiting mechanism 2400 when moving.
[0110] When the extension component 2500 and the first body 2000 are disassembled, the limiting mechanism 2400 is changed accordingly, at this time, the limiting mechanism 2400 stops the slider 2100, thereby forming a limitation on the slider 2100, and the slider 2100 can only be reciprocally moved in the first body 2000, and when the slider 2100 moves in the direction of moving towards the extension component 2500, it will be stopped by the limiting mechanism 2400 and cannot be taken out of the first body 2000. For example, in this case, the limiting mechanism 2400 is located in the movement path of the slider 2100, so that the slider 2100 will be stopped by the limiting mechanism 2400 when moving.
[0111] In combination Figures 16 to 18 As shown, in some embodiments, the extension component 2500 comprises a protruding rod 2510, and the limiting mechanism 2400 comprises a movable pin 2410; the protruding rod 2510 is adapted to drive the movable pin 2410 to leave the movement path of the slider 2100 to avoid the slider 2100 when the extension component 2500 and the first body 2000 are connected; and the movable pin 2410 is adapted to move into the movement path of the slider 2100 to stop the slider 2100 under the action of the elasticity when the extension component 2500 and the first body 2000 are disassembled.
[0112] Specifically, referring to Figure 18As shown, when the extension component 2500 and the first body 2000 are connected, the convex rod 2510 pushes the movable pin 2410 rearward, forcing the movable pin 2410 to press downward and thus to leave the moving path of the slider 2100 (for example, the movable pin 2410 is provided with an inclined surface, and the convex rod 2510 pushes the inclined surface, forcing the movable pin 2410 to press downward), forming an avoidance to the slider 2100. When the extension component 2500 and the first body 2000 are disassembled, the movable pin 2410 is reset (lifted) to the moving path of the slider 2100 under the action of the elastic force, and the movable pin 2410 can achieve the stop of the movement of the slider 2100.
[0113] In combination Figure 2 And Figure 3 As shown, in some embodiments, the first body 2000 is provided with a sliding rail 2001, and the extension component 2500 is provided with an extension sliding rail 2501, and the extension sliding rail 2501 and the sliding rail 2001 are adapted to be communicated when the extension component 2500 and the first body 2000 are connected, so that the slider 2100 can reciprocate in the sliding rail 2001 and the extension sliding rail 2501.
[0114] The slider 2100 can be clamped in the sliding rail 2001, and in the case that the extension component 2500 and the first body 2000 are disassembled, the slider 2100 can only reciprocate on the sliding rail 2001, and in the case that the extension component 2500 and the first body 2000 are connected, the slider 2100 can move from the sliding rail 2001 to the extension sliding rail 2501, and can move from the extension sliding rail 2501 to the sliding rail 2001, increasing the stroke of the reciprocating movement of the slider 2100.
[0115] In combination Figures 1 to 5 As shown, in some embodiments, the first body 2000 is provided with a guide groove 2002, and the extension component 2500 is provided with an extension guide groove 2502, and the guide groove 2002 and the extension guide groove 2502 are adapted to be communicated when the extension component 2500 and the first body 2000 are connected, and the to-be-launched object 200 is adapted to be launched along the guide groove 2002 and the extension guide groove 2502, so as to guide the launching of the to-be-launched object 200.
[0116] In combination Figure 1 As shown, in some embodiments, the launching device 100 is formed in a knife shape, that is, the launching device 100 is shaped like a knife, improving the fun of competitive confrontation. For example, the second body 5000 is formed as a knife handle, and the extension component 2500, the first body 2000 and the launcher 4000 are formed as a knife body.
[0117] The application also discloses a launching toy, in combination Figure 1As 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 in the embodiment adopts the technical solutions in the above-described embodiments, and thus at least has the beneficial effects brought by the technical solutions in the above-described embodiments, which will not be repeated here.
[0118] The above merely describes the preferred embodiments of the present application, and does not limit the patent scope of the present application, and any equivalent structural transformation made by using the content of the present application specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection scope of the present application.
Claims
1. A transmitting device (100), characterized by The application relates to a launching device, comprising: a transmitter (4000) adapted for mounting a to-be-launched object (200) thereon, the transmitter (4000) comprising an acceleration mechanism (4100) and a launching mechanism (4200); a first main body (2000) detachably connected with the transmitter (4000), the first main body (2000) comprising a slider (2100) capable of reciprocating movement, the slider (2100) being adapted to drive the acceleration mechanism (4100) to rotate the to-be-launched object (200); and a second main body (5000) detachably connected with the transmitter, the second main body (5000) comprising a releasing mechanism (5100) adapted to drive the launching mechanism (4200) to launch the to-be-launched object (200). The acceleration mechanism (4100) comprises an acceleration gear (4110), the slider (2100) 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.
2. The transmitting apparatus (100) of claim 1, characterized by The slider (2100) is adapted to reciprocate in a first direction and a second direction, the first direction and the second direction being opposite, the first main body (2000) further comprising a clutch mechanism (2200) and a stop mechanism (2300), the stop mechanism (2300) having a first stop state and a second stop state; 3. The transmitting apparatus (100) according to claim 2, characterized in that when the stop mechanism (2300) is in the first stop state, the slider (2100) is adapted to drive the clutch mechanism (2200) to rotate the acceleration gear (4110) when moving in the first direction, and the slider (2100) is adapted to drive the clutch mechanism (2200) to separate from the acceleration gear (4110) when moving in the second direction; when the stop mechanism (2300) is in the second stop state, the slider (2100) is adapted to drive the clutch mechanism (2200) to separate from the acceleration gear (4110) when moving in the first direction, and the slider (2100) is adapted to drive the clutch mechanism (2200) to reversely rotate the acceleration gear (4110) when moving in the second direction. The clutch mechanism (2200) comprises:
4. The transmitting apparatus (100) of claim 3, characterized by a movable piece (2220) rotatably arranged; a driving gear (2210) rotatably arranged coaxially with the movable piece (2220); a first clutch gear (2230) rotatably arranged on the movable piece (2220) and meshing with the driving gear (2210); and a second clutch gear (2240) rotatably arranged on the movable piece (2220) and meshing with the driving gear (2210). When the stop mechanism (2300) is in the first stop state: The slider (2100) is adapted to drive the driving gear (2210) to rotate when moving in the first direction, so as to swing the movable piece (2220) and make the first clutch gear (2230) and the acceleration gear (4110) mesh transmission, and the second clutch gear (2240) and the acceleration gear (4110) separate; The slider (2100) is adapted to drive the driving gear (2210) to rotate reversely when moving in the second direction, so as to swing the movable piece (2220) reversely and be stopped by the stop mechanism (2300), so that the first clutch gear (2230) and the acceleration gear (4110) separate, and the second clutch gear (2240) and the acceleration gear (4110) separate; When the stop mechanism (2300) is in the second stop state: The slider (2100) is adapted to drive the driving gear (2210) to rotate when moving in the first direction, so as to swing the movable piece (2220) and be stopped by the stop mechanism (2300), so that the first clutch gear (2230) and the acceleration gear (4110) separate, and the second clutch gear (2240) and the acceleration gear (4110) separate; The slider (2100) is adapted to drive the driving gear (2210) to rotate reversely when moving in the second direction, so as to swing the movable piece (2220) reversely and make the first clutch gear (2230) and the acceleration gear (4110) separate, and the second clutch gear (2240) and the acceleration gear (4110) mesh transmission.
5. The transmitting apparatus (100) according to claim 4, characterized in that The stop mechanism (2300) comprises a clamping groove (2310), and the movable piece (2220) is inserted in the clamping groove (2310); When the stop mechanism (2300) is in the first stop state, the movable piece (2220) is adapted to be stopped by one side of the clamping groove (2310), so that the first clutch gear (2230) and the second clutch gear (2240) are respectively separated from the acceleration gear (4110); When the stop mechanism (2300) is in the second stop state, the movable piece (2220) is adapted to be stopped by the other side of the clamping groove (2310), so that the first clutch gear (2230) and the second clutch gear (2240) are respectively separated from the acceleration gear (4110).
6. The transmitting apparatus (100) of claim 5, characterized by The movable piece (2220) is rotatably arranged to change the position of the clamping groove (2310).
7. The transmitting apparatus (100) according to claim 4, characterized in that The first main body (2000) further comprises a rack (2101), the slider (2100) and the rack (2101) are connected and can drive the rack (2101) to move back and forth, and the rack (2101) and the driving gear (2210) are in transmission connection.
8. The transmitting apparatus (100) according to claim 1, characterized in that The launching mechanism (4200) comprises: a push plate (4210) adapted to abut against and move with the to-be-launched object (200) when the to-be-launched object (200) is installed on the launcher (4000); a locking member (4220) adapted to lock the push plate (4210) when the push plate (4210) moves to a preset position, and adapted to be unlocked by the release mechanism (5100); and a first elastic member (4291) 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 to-be-launched object (200) to be launched.
9. The transmitting apparatus (100) according to claim 8, characterized in that The launching mechanism (4200) further comprises a rotating member (4230) provided with a lug (4234) and a contact portion (4232), and the release mechanism (5100) is adapted to drive the lug (4234) to rotate the rotating member (4230) and drive the contact portion (4232) to unlock the push plate (4210).
10. The transmitting apparatus (100) according to claim 9, characterized by The release mechanism (5100) comprises a reciprocating push member (5110) adapted to push the lug (4234) to rotate the rotating member (4230).
11. The transmitting apparatus (100) according to claim 1, characterized in that The launching device (100) further comprises an extension component (2500) adapted to be detachably connected to the first main body (2000), and the sliding block (2100) is adapted to reciprocate to the extension component (2500) when the extension component (2500) is connected to the first main body (2000).
12. The transmitting apparatus (100) according to claim 11, characterized by The first main body (2000) further comprises a limiting mechanism (2400) adapted to avoid the sliding block (2100) when the extension component (2500) is connected to the first main body (2000), so that the sliding block (2100) can reciprocate to the extension component (2500), and adapted to stop the sliding block (2100) when the extension component (2500) is detached from the first main body (2000), so as to prevent the sliding block (2100) from being pulled out.
13. The transmitting apparatus (100) according to claim 12, characterized in that The extension component (2500) comprises a protruding rod (2510), and the limiting mechanism (2400) comprises a movable pin (2410); The protruding rod (2510) is adapted to drive the movable pin (2410) to move away from the movement path of the sliding block (2100) to avoid the sliding block (2100) when the extension component (2500) is connected to the first main body (2000); The movable pin (2410) is adapted to move into the movement path of the sliding block (2100) under the action of the elastic force to stop the sliding block (2100) when the extension component (2500) is detached from the first main body (2000).
14. The transmitting apparatus (100) according to claim 12, characterized in that The first body (2000) is provided with a sliding rail (2001), and the extension component (2500) is provided with an extension sliding rail (2501), the extension sliding rail (2501) and the sliding rail (2001) are adapted to be communicated when the extension component (2500) and the first body (2000) are connected, so that the sliding block (2100) can reciprocatingly move in the sliding rail (2001) and the extension sliding rail (2501); And / or, the first body (2000) is provided with a guide groove (2002), and the extension component (2500) is provided with an extension guide groove (2502), the guide groove (2002) and the extension guide groove (2502) are adapted to be communicated when the extension component (2500) and the first body (2000) are connected, and the object to be launched (200) is adapted to be launched along the guide groove (2002) and the extension guide groove (2502).
15. The transmitting apparatus (100) according to any one of claims 1 to 14, characterized in that The launching device (100) is in the shape of a knife.
16. A launching toy characterized by The object to be launched (200) and the launching device (100) according to any one of claims 1 to 15 are included.