Launching device and launching toy
By designing a launching device with detachable accessories that connect to the launcher, and using a slider and clutch mechanism to control the rotation and launch of the object to be launched, the problem of insufficient playability of existing launching toys is solved, and diverse launching patterns and play fun are realized.
Patent Information
- Application Number
- CN202423076466.8
- 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 fail to offer diverse launching patterns and playful fun.
Design a launching device, including a launcher and detachable accessories. The launcher is connected to the launcher through different accessories to realize the rotation and launch of the object to be launched. The accessories include an acceleration position and a launch position. The rotation and launch of the object to be launched are controlled by a slider and a clutch mechanism.
It enables the rotation and launch of objects, enriching the fun of playing, suitable for various play scenarios, and improving the user experience.
Smart Images

Figure CN223683033U_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 team cooperation among children, and be beneficial to the growth and development of children, but the launching toy 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 position and a launching position, the launching position being used for mounting and launching the to-be-launched object, and the acceleration position being used for driving the to-be-launched object to rotate;
[0006] An accessory detachably mounted on the launcher, the accessory being adapted to cooperate with the launching position and / or the acceleration position to drive the launcher to drive the to-be-launched object to rotate and / or launch the to-be-launched object.
[0007] In some embodiments of the present application, the launcher further comprises at least one connection position adapted to detachably connect with the accessory, and the launching device has different launching modes according to different accessories connected on the connection position.
[0008] In some embodiments of the present application, at least one accessory is detachably mounted on the launcher, and the launching device has different launching modes according to different accessories mounted.
[0009] In some embodiments of the present application, the acceleration position comprises an acceleration gear, the accessory is adapted to drive the acceleration gear to rotate, and the acceleration gear is adapted to drive the to-be-launched object to rotate.
[0010] In some embodiments of the present application, the accessory comprises a first main body, and the first main body comprises a first slide handle, and the first slide handle is adapted to reciprocally move.
[0011] When the first main body is connected with the launcher, the first slide handle is adapted to drive the acceleration position, so that the acceleration position drives the to-be-launched object to rotate.
[0012] In some embodiments of the application, the first handle is adapted to reciprocate in a first direction and a second direction, the first direction and the second direction being opposite, the first body further comprising a first clutch mechanism and a first stop mechanism, the first stop mechanism having a first stop state and a second stop state;
[0013] When the first stop mechanism is in the first stop state, the first handle is adapted to drive the first clutch mechanism when moving in the first direction, so as to drive the first clutch mechanism to rotate the acceleration gear, the first handle is adapted to drive the first clutch mechanism when moving in the second direction, so as to separate the first clutch mechanism and the acceleration gear;
[0014] When the first stop mechanism is in the second stop state, the first handle is adapted to drive the first clutch mechanism when moving in the first direction, so as to separate the first clutch mechanism and the acceleration gear, the first handle is adapted to drive the first clutch mechanism when moving in the second direction, so as to drive the first clutch mechanism to rotate the acceleration gear reversely.
[0015] In some embodiments of the application, the first clutch mechanism comprises:
[0016] a first movable member rotatably arranged;
[0017] a first driving gear rotatably arranged coaxially with the first movable member;
[0018] a first clutch gear rotatably arranged on the first movable member and engaged with the first driving gear; and
[0019] a second clutch gear rotatably arranged on the first movable member and engaged with the first driving gear;
[0020] When the first stop mechanism is in the first stop state:
[0021] the first handle is adapted to rotate the first driving gear when moving in the first direction, so as to swing the first movable member and engage the first clutch gear and the acceleration gear in transmission, and disengage the second clutch gear and the acceleration gear;
[0022] the first handle is adapted to rotate the first driving gear reversely when moving in the second direction, so as to swing the first movable member reversely and be stopped by the first stop mechanism, so as to disengage the first clutch gear and the acceleration gear, and disengage the second clutch gear and the acceleration gear;
[0023] When the first stop mechanism is in the second stop state:
[0024] the first handle is adapted to drive the first driving gear to rotate when moving along the first direction, to swing the first movable member to be stopped by the first stopping mechanism, to separate the first clutch gear and the accelerating gear, and to separate the second clutch gear and the accelerating gear;
[0025] the first handle is adapted to drive the first driving gear to rotate reversely when moving along the second direction, to swing the first movable member reversely, to separate the first clutch gear and the accelerating gear, and to engage the second clutch gear and the accelerating gear.
[0026] In some embodiments of the present application, the first stopping mechanism comprises a clamping slot, and the first movable member is inserted in the clamping slot.
[0027] When the first stopping mechanism is in the first stopping state, the first movable member is adapted to be stopped by one side of the clamping slot, to separate the first clutch gear and the second clutch gear from the accelerating gear, respectively.
[0028] When the first stopping mechanism is in the second stopping state, the first movable member is adapted to be stopped by the other side of the clamping slot, to separate the first clutch gear and the second clutch gear from the accelerating gear, respectively.
[0029] In some embodiments of the present application, the first movable member is rotatable to switch the first stopping state and the second stopping state, so that the clamping slot changes position.
[0030] In some embodiments of the present application, the first main body further comprises a first rack, the first handle is connected with the first rack and can drive the first rack to move back and forth, and the first rack is in transmission connection with the first driving gear.
[0031] In some embodiments of the present application, the launching device further comprises a first extension component, the first extension component is adapted to be detachably connected with the first main body, and the first handle is adapted to move back and forth to the first extension component when the first extension component is connected with the first main body.
[0032] In some embodiments of the present application, the first main body further comprises a first limiting mechanism, the first limiting mechanism is adapted to avoid the first handle when the first extension component is connected with the first main body, so that the first handle can move back and forth to the first extension component, and the first limiting mechanism is adapted to stop the first handle when the first extension component is detached from the first main body, to prevent the first handle from coming out.
[0033] In some embodiments of the application, the first extension member comprises a first protruding rod, and the first limiting mechanism comprises a first movable pin;
[0034] The first protruding rod is adapted to drive the first movable pin out of the moving path of the first sliding handle to avoid the first sliding handle when the first extension member is connected with the first main body;
[0035] The first movable pin is adapted to move into the moving path of the first sliding handle to stop the first sliding handle under the action of the elasticity when the first extension member is detached from the first main body.
[0036] In some embodiments of the application, the accessory comprises a handle, the handle is adapted to be held, and the handle comprises a first releasing mechanism;
[0037] The first releasing mechanism is adapted to drive the launching position to make the launching position drive the to-be-launched object to launch when the handle is connected with the launcher.
[0038] In some embodiments of the application, the accessory comprises a second main body, the second main body comprises a second sliding block and a second releasing mechanism, and the second sliding block is adapted to move reciprocally;
[0039] The second sliding block is adapted to drive the accelerating position to make the accelerating position drive the to-be-launched object to rotate, and the second releasing mechanism is adapted to drive the launching position to make the launching position drive the to-be-launched object to launch when the second main body is connected with the launcher.
[0040] In some embodiments of the application, the second sliding block is adapted to move reciprocally along a third direction and a fourth direction, the third direction and the fourth direction are opposite, and the second main body further comprises a second clutching mechanism and a second stopping mechanism, the second stopping mechanism has a third stopping state and a fourth stopping state;
[0041] The second sliding block is adapted to drive the second clutching mechanism to make the second clutching mechanism drive the accelerating gear to rotate when the second sliding block moves along the third direction, and the second sliding block is adapted to drive the second clutching mechanism to make the second clutching mechanism and the accelerating gear separate when the second sliding block moves along the fourth direction when the second stopping mechanism is in the third stopping state;
[0042] The second sliding block is adapted to drive the second clutching mechanism to make the second clutching mechanism and the accelerating gear separate when the second sliding block moves along the third direction, and the second sliding block is adapted to drive the second clutching mechanism to make the second clutching mechanism drive the accelerating gear to rotate reversely when the second sliding block moves along the fourth direction when the second stopping mechanism is in the fourth stopping state.
[0043] In some embodiments of the application, the second clutching mechanism comprises:
[0044] a second movable member rotatably arranged;
[0045] a second driving gear rotatably arranged coaxially with the second movable member;
[0046] a third clutching gear rotatably arranged on the second movable member and engaged with the second driving gear; and
[0047] a fourth clutching gear rotatably arranged on the second movable member and engaged with the second driving gear;
[0048] when the second stop mechanism is in the third stop state:
[0049] the second slider is adapted to drive the second driving gear to rotate when moving in the third direction, so as to swing the second movable member and make the third clutching gear and the accelerating gear engaged in transmission, and the fourth clutching gear and the accelerating gear disengaged;
[0050] the second slider is adapted to drive the second driving gear to rotate reversely when moving in the fourth direction, so as to swing the second movable member reversely and be stopped by the second stop mechanism, so that the third clutching gear and the accelerating gear are disengaged, and the fourth clutching gear and the accelerating gear are disengaged;
[0051] when the second stop mechanism is in the fourth stop state:
[0052] the second slider is adapted to drive the second driving gear to rotate when moving in the third direction, so as to swing the second movable member and be stopped by the second stop mechanism, so that the third clutching gear and the accelerating gear are disengaged, and the fourth clutching gear and the accelerating gear are disengaged;
[0053] the second slider is adapted to drive the second driving gear to rotate reversely when moving in the fourth direction, so as to swing the second movable member reversely and make the third clutching gear and the accelerating gear disengaged, and the fourth clutching gear and the accelerating gear engaged in transmission.
[0054] In some embodiments of the application, the second stop mechanism comprises a first stop slot and a second stop slot;
[0055] when the second stop mechanism is in the third stop state, the second movable member is inserted into the first stop slot to be adapted to be stopped by the first stop slot when swinging;
[0056] When the second stop mechanism is in the fourth stop state, the second movable piece is inserted into the second stop groove and is adapted to be stopped by the second stop groove when swinging.
[0057] In some embodiments of the present application, the first stop groove and the second stop groove are in communication, and the second stop mechanism is adapted to reciprocate so that the second movable piece can move from the first stop groove into the second stop groove and from the second stop groove into the first stop groove.
[0058] In some embodiments of the present application, the second body further comprises a second rack, the second sliding block and the second rack are connected and can drive the second rack to reciprocate, and the second rack and the second drive gear are in transmission connection.
[0059] In some embodiments of the present application, the second body further comprises a second limiting mechanism;
[0060] The second 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 second sliding block, and the first gear mechanism and the second gear mechanism are adapted to move with the second sliding block and can be in abutment with the second limiting mechanism selectively.
[0061] In some embodiments of the present application, the second body further comprises a second rack, the second sliding block and the second rack are movably connected and can drive the second rack to reciprocate, and the second rack and the second drive gear are in transmission connection;
[0062] The second rack is adapted to selectively drive one of the first gear mechanism and the second gear mechanism to switch to the position in abutment with the second limiting mechanism when moving relative to the second sliding block.
[0063] In some embodiments of the present application, the second sliding block further comprises a sliding groove and a locking piece, the second rack is movably connected to the sliding groove, the locking piece is adapted to lock the movement of the second rack relative to the second sliding block and to unlock the movement of the second rack relative to the second sliding block;
[0064] The second 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 the position in abutment with the second limiting mechanism, and 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 the position in abutment with the second limiting mechanism.
[0065] In some embodiments of the present application, the launching device further comprises a second extension component, the second extension component is adapted to be detachably connected with the second main body, and the second slider is adapted to reciprocally move to the second extension component when the second extension component is connected with the second main body.
[0066] In some embodiments of the present application, the second main body further comprises a second limiting mechanism, the second limiting mechanism is adapted to avoid the second slider when the second extension component is connected with the second main body, so that the second slider can reciprocally move to the second extension component, and the second limiting mechanism is adapted to stop the second slider when the second extension component is detached from the second main body, so as to prevent the second slider from being pulled out.
[0067] In some embodiments of the present application, the second extension component comprises a second protruding rod, and the second limiting mechanism comprises a second movable pin;
[0068] The second protruding rod is adapted to drive the second movable pin to move away from the moving path of the second slider to avoid the second slider when the second extension component is connected with the second main body;
[0069] The second movable pin is adapted to move into the moving path of the second slider under the action of the elasticity to stop the second slider when the second extension component is detached from the second main body.
[0070] In some embodiments of the present application, the accessory comprises a pulling member, the pulling member is adapted to be inserted into and pulled out of the launcher, and the pulling member comprises an accelerating end and a launching end;
[0071] When the pulling member is connected with the launcher, the accelerating end is adapted to drive the accelerating position during the process that the pulling member is inserted into and / or pulled out of the launcher, so that the accelerating position drives the to-be-launched object to rotate, and the launching end is adapted to drive the launching position when the pulling member is inserted into and / or pulled out of the launcher, so that the launching position drives the to-be-launched object to be launched.
[0072] In some embodiments of the present application, the to-be-launched object is adapted to be launched forwardly, the launcher is provided with guide holes, the pulling member is adapted to be inserted into and pulled out of the guide holes, and at least two of the guide holes are arranged in an interval in the left-right direction.
[0073] In some embodiments of the present application, the accelerating end is adapted to drive the accelerating gear to rotate.
[0074] In some embodiments of the present application, the accelerating position further comprises a first transmission gear, the accelerating end is adapted to engage with the first transmission gear to drive the first transmission gear to rotate, and the first transmission gear engages with the accelerating gear to drive the accelerating gear to rotate.
[0075] In some embodiments of the application, the pulling member is adapted to drive the accelerating position first and then the launching position when pulling out;
[0076] Or, the pulling member is adapted to drive the accelerating position first and then the launching position when pulling in.
[0077] In some embodiments of the application, the launching position comprises:
[0078] A push plate, when the object to be launched is installed on the launcher, the object to be launched is adapted to abut against the push plate and drive the push plate to move;
[0079] A locking member adapted to lock the push plate when the push plate moves to a preset position, and adapted to be driven by the accessory to unlock the push plate;
[0080] A first elastic member adapted to generate force on the push plate to drive the push plate to reset when the locking member unlocks the push plate, so that the push plate drives the object to be launched to launch.
[0081] In some embodiments of the application, when a handle is included, a first release mechanism of the handle is adapted to drive the locking member to unlock the push plate;
[0082] And / or, when a second body is included, a second release mechanism of the second body is adapted to drive the locking member to unlock the push plate;
[0083] And / or, when a pulling member is included, a launching end of the pulling member is adapted to drive the locking member to unlock the push plate.
[0084] In some embodiments of the application, the launching position further comprises a rotating member, the rotating member is provided with a lug and a second contact portion;
[0085] When a handle is included, a first release mechanism of the handle comprises a reciprocally movable push member, the push member is adapted to push the lug to rotate the rotating member, and the second contact portion drives the locking member to unlock the push plate.
[0086] In some embodiments of the application, when a second body is included, a second release mechanism of the second body comprises a reciprocally movable trigger, the trigger is adapted to drive the locking member to unlock the push plate.
[0087] In some embodiments of the application, the launching position further comprises a rotating member;
[0088] When the pulling member is included, the launching end of the pulling member is adapted to drive the rotating member to rotate when the pulling member moves in one of the inserting and pulling-off directions, so that the rotating member drives the locking member to unlock the push plate, and the launching end is adapted to drive the rotating member to rotate reversely when the pulling member moves in the other of the inserting and pulling-off directions, so that the rotating member and the locking member are separated.
[0089] In some embodiments of the present application, the rotating member is provided with a first contact part and a second contact part, and the launching end forms a groove;
[0090] The first contact part is adapted to be sequentially clamped into and out of the groove when the pulling member moves in one of the inserting and pulling-off directions, so that the rotating member rotates, and the second contact part drives the locking member to unlock the push plate;
[0091] The first contact part is adapted to be sequentially clamped into and out of the groove when the pulling member moves in the other of the inserting and pulling-off directions, so that the rotating member rotates reversely, and the second contact part and the locking member are separated.
[0092] In some embodiments of the present application, the launching position further includes a third elastic member, which is adapted to generate a force on the rotating member to make the rotating member have a rotating tendency, the rotating member is adapted to abut against the pulling member under the action of the rotating tendency, and is adapted to drive the first contact part to be clamped into the groove under the action of the rotating tendency when the groove and the first contact part correspond.
[0093] The second aspect of the present application discloses a launching toy, which includes a to-be-launched object and the launching device.
[0094] The launching device of the technical scheme of the present application can realize both rotation and launching of the to-be-launched object, and improves the fun of playing.
[0095] 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
[0096] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description. Obviously, the drawings in the following description only illustrate some embodiments of the present application, and other designs can be obtained by those skilled in the art without any creative effort on the basis of the structures shown in the drawings.
[0097] FIG. 1 It is a schematic view of the launching device in the knife shape for some embodiments.
[0098] FIG. 2 for FIG. 1 The diagram shows the launching device (the first slide is located on the first main body).
[0099] FIG. 3 for FIG. 1 The diagram shows the launching device (the first slide is located on the first extension component).
[0100] FIG. 4 for FIG. 1 The diagram shows a launching device launching an object.
[0101] FIG. 5 for FIG. 1 Exploded view of the launching device shown;
[0102] FIG. 6 This is a schematic diagram showing the coordination between the acceleration position and the object to be launched in some embodiments;
[0103] FIG. 7 for FIG. 1 The diagram shows a partial structural schematic of the launching device.
[0104] FIG. 8 for FIG. 1 A schematic diagram showing the engagement of the first stop mechanism, the first clutch mechanism, and the acceleration gear in the launching device shown.
[0105] FIG. 9 for FIG. 8 Another perspective view of the structure shown;
[0106] FIG. 10 for FIG. 1 A schematic diagram showing the reciprocating movement of the first slide handle when the first stop mechanism in the launching device is in the first stop state.
[0107] FIG. 11 for FIG. 1 A schematic diagram showing the reciprocating movement of the first slide handle when the first stop mechanism in the launching device is in the second stop state.
[0108] FIG. 12 for FIG. 1 A schematic diagram of the first release mechanism and the launch position in the launching device shown;
[0109] FIG. 13 for FIG. 12 The diagram shown is an exploded view of the structure.
[0110] FIG. 14 This is a schematic diagram of the rotating component of the transmitter position in some embodiments;
[0111] FIG. 15 for FIG. 1The first release mechanism in the shown launching device drives the launching position to launch the object to be launched.
[0112] FIG. 16 The first main body in the shown launching device before connecting the first extension component FIG. 1 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0113] FIG. 17 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 1 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0114] FIG. 18 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 1 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0115] FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0116] FIG. 20 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0117] FIG. 21 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0118] FIG. 22 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0119] FIG. 23 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0120] FIG. 24 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0121] FIG. 25 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0122] FIG. 26 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 25 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0123] FIG. 27 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure)
[0124] FIG. 28 The first main body in the shown launching device when connecting the first extension component (for the sake of clear expression, the first extension component is omitted in the figure) FIG. 19Schematic diagram of reciprocating movement of the second slider when the second stop mechanism in the launching device is in the third stop state;
[0125] FIG. 29 For FIG. 19 Schematic diagram of reciprocating movement of the second slider when the second stop mechanism in the launching device is in the fourth stop state;
[0126] FIG. 30 For FIG. 19 Schematic diagram of the launching device without the second extension component;
[0127] FIG. 31 For FIG. 19 Schematic diagram of cooperation between the second slider and the second rack in the launching device (the first gear mechanism is in movement and abuts against the second limiting mechanism);
[0128] FIG. 32 For FIG. 31 Schematic diagram of the structure from another angle;
[0129] FIG. 33 For FIG. 19 Schematic diagram of cooperation between the second slider and the second rack in the launching device (the second gear mechanism is in movement and abuts against the second limiting mechanism);
[0130] FIG. 34 For FIG. 33 Schematic diagram of the structure from another angle;
[0131] FIG. 35 For FIG. 19 Schematic diagram of cooperation between the second rack, the first gear mechanism, the second gear mechanism and the locking piece in the launching device;
[0132] FIG. 36 For FIG. 19 Schematic diagram of cooperation between the second releasing mechanism, the launching position and the object to be launched in the launching device;
[0133] FIG. 37 For FIG. 36 Exploded view of the structure;
[0134] FIG. 38 For FIG. 19 Schematic diagram of control of the launching position by the second releasing mechanism to launch the object to be launched in the launching device;
[0135] FIG. 39 For FIG. 19 Schematic diagram of connection of the second extension component to the second main body in the launching device;
[0136] FIG. 40 Schematic diagram of the launching device in some embodiments (in a basic form);
[0137] FIG. 41 Figure 1 is a perspective view of a launch device according to the present application; FIG. 40 Figure 2 is an exploded view of the launch device of Figure 1 ;
[0138] FIG. 42 Figure 3 is a schematic view of the launch device of Figure 1 launching an object to be launched; FIG. 40 Figure 4 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher;
[0139] FIG. 43 Figure 5 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher; FIG. 40 Figure 6 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher;
[0140] FIG. 44 Figure 7 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher; FIG. 40 Figure 8 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher;
[0141] FIG. 45 Figure 9 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher; FIG. 40 Figure 10 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher;
[0142] FIG. 46 Figure 11 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher; FIG. 45 Figure 12 is an exploded view of the launch device of Figure 1 ;
[0143] FIG. 47 Figure 13 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher; FIG. 40 Figure 14 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher;
[0144] FIG. 48 Figure 15 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher; FIG. 40 Figure 16 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher;
[0145] FIG. 49 Figure 17 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher; FIG. 40 Figure 18 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher;
[0146] FIG. 50 Figure 19 is a schematic view of the launch device of Figure 1 with the handle positioned to the left of the launcher; FIG. 40 Figure 20 is a schematic view of the launch device of Figure 1 with the handle positioned to the right of the launcher;
[0147] BRIEF DESCRIPTION OF THE DRAWINGS
[0148] Firing device 100, object to be fired 200, pulling member 1000, firing end 1100, accelerating end 1200, first main body 2000, first sliding rail 2001, first guide slot 2002, first sliding handle 2100, first rack 2101, first clutch mechanism 2200, first driving gear 2210, first movable member 2220, first clutch gear 2230, second clutch gear 2240, first stop mechanism 2300, clamping slot 2310, first limiting mechanism 2400, first movable pin 2410, first extension component 2500, first extension sliding rail 2501, first extension guide slot 2502, first protruding rod 2510, second main body 3000, second sliding rail 3001, second sliding block 3100, second rack 3101, first gear mechanism 3110, second gear mechanism 3120, sliding slot 3130, locking member 3140, second clutch mechanism 3200, second driving gear 3210, second movable member 3220, third clutch gear 3230, fourth clutch gear 3240, second stop mechanism 3300, first blocking slot 3310, second blocking slot 3320, second limiting mechanism 3400, second movable pin 3410, second extension component 3500, second extension sliding rail 3501, second protruding rod 3510, second release mechanism 3600, trigger 3610, emitter 4000, accelerating position 4100, accelerating gear 4110, first transmission gear 4120, firing position 4200, push plate 4210, locking member 4220, rotating member 4230, first contact portion 4231, second contact portion 4232, middle shaft portion 4233, lug 4234, first elastic member 4291, second elastic member 4292, third elastic member 4293, first connecting position 4310, second connecting position 4320, third connecting position 4330, guide hole 4400, handle 5000, first release mechanism 5100, pushing member 5110.
[0149] 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
[0150] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the 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 the other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0151] It should be noted that all directional indications, such as upper, lower, left, right, front, back, under, over, upper, lower, left, right, front, back, etc., are only used to explain the relative position relationship, movement condition, etc. between components in a certain posture (as shown in the drawings), and if the certain posture changes, the directional indications will also change accordingly.
[0152] In the present application, unless otherwise explicitly 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 explicitly limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0153] In addition, in the present 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 a person skilled in the art can realize it, when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, nor within the protection scope claimed by the present application.
[0154] The first aspect of the present application discloses a launching device 100, which is combined with FIG. 1 、 FIG. 5 、 FIG. 19 、 FIG. 20 、 FIG. 40 and FIG. 41 As shown in the drawings, the launching device 100 comprises a launcher 4000 and an accessory, the launcher 4000 is adapted for a to-be-launched object 200 to be installed thereon, the launcher 4000 comprises an acceleration position 4100 and a launching position 4200, the launching position 4200 is used for installing and launching the to-be-launched object 200, the acceleration position 4100 is used for driving the to-be-launched object 200 to rotate, the accessory is detachably installed on the launcher 4000, and the accessory is adapted to cooperate with the launching position 4200 and / or the acceleration position 4100 to drive the launcher 4000 to drive the to-be-launched object 200 to rotate and / or launch the to-be-launched object 200.
[0155] The to-be-launched object 200 can be mounted to the launcher 4000 and launched from the launcher 4000. The to-be-launched object 200 is mounted to the launcher 4000, in particular, to the launching position 4200. The launching position 4200 is a structure for mounting and launching the to-be-launched object 200. After the to-be-launched object 200 is mounted to the launcher 4000, the to-be-launched object 200 cooperates with the launching position 4200 and the accelerating position 4100. The accelerating position 4100 is a structure for driving the to-be-launched object 200 to rotate. The to-be-launched object 200 can be mounted to the launcher 4000, driven by the launching position 4200 to launch, or driven by the accelerating position 4100 to rotate and then driven by the launching position 4200 to launch.
[0156] The triggering of the accelerating position 4100 and / or the launching position 4200 is realized by an accessory. The accessory is detachably mounted to the launcher 4000 to cooperate with the launching position 4200 and / or the accelerating position 4100. The accessory can drive the launching position 4200 and / or the accelerating position 4100 to act, so that the launching position 4200 and / or the accelerating position 4100 drive the to-be-launched object 200 to act, realizing the launching and / or rotation of the to-be-launched object 200. The detachable accessory facilitates replacement, and the rotation and launching of the to-be-launched object 200 improve the fun of playing with the launching device 100. The to-be-launched object 200 can be of 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 mounted to the launcher 4000 by the fixed part and cooperates with the launching position 4200. The accelerating position 4100 can drive the rotating part of the top to rotate. The launching position 4200 can act on the fixed part of the top to launch the entire top.
[0157] In some embodiments, at least one accessory is detachably mounted to the launcher 4000. The launching device 100 has different launching modes according to different mounted accessories.
[0158] It can be understood that different accessories are not completely the same and can be considered as different. For example, different accessories have different shapes, sizes, or materials, so that the launching device 100 forms different launching modes.
[0159] The accessory can be one, two, three, or more, for example, including three accessories, respectively, the first accessory, the second accessory, and the third accessory, the first accessory can be mounted to the launcher 4000 or removed from the launcher 4000, the second accessory can be mounted to the launcher 4000 or removed from the launcher 4000, and the third accessory can be mounted to the launcher 4000 or removed from the launcher 4000, at least one of the first accessory, the second accessory, and the third accessory is detachably connected with the launcher 4000, when the first accessory is mounted to the launcher 4000, the launching device 100 forms a first launching mode, or when the second accessory is mounted to the launcher 4000, the launching device 100 forms a second launching mode, or when the third accessory is mounted to the launcher 4000, the launching device 100 forms a third launching mode, or when the first accessory and the second accessory are mounted to the launcher 4000, the launching device 100 forms a fourth launching mode, and so on.
[0160] The launcher 4000 can be mounted with different accessories, so that the launching device 100 forms different launching modes, which can enrich the gameplay, be suitable for more play scenes, and improve the play fun.
[0161] In some embodiments, the launcher 4000 further comprises at least one connection site, the connection site is suitable for detachable connection with the accessory, according to the different accessories connected on the connection site, the launching device 100 has different launching modes. The connection site is a structure for connecting with the accessory, for example, the connection site is a lock, a buckle, or the like. Since the accessory and the connection site are detachably connected, different accessories can be connected to the connection site, and the connection site is at least one, the accessory can be connected to the corresponding connection site, further enriching the gameplay.
[0162] Taking the accessories including the first body 2000, the second body 3000, the pulling member 1000, and the handle 5000 (the first body 2000 constitutes an accessory, the second body 3000 constitutes an accessory, the pulling member 1000 constitutes an accessory, and the handle 5000 constitutes an accessory, which can be detachably connected with the launcher) as an example, the connection site includes a first connection site 4310, a second connection site 4320, and a third connection site 4330, and the object to be launched 200 is launched from the launcher 4000 towards the front:
[0163] When the first body 2000 is connected with the launcher 4000, the handle 5000 is connected with the first connection site 4310 and protrudes rearward from the launcher 4000. As shown in FIG. 1 to FIG. 5 When the first body 2000 is connected with the launcher 4000, the first body 2000 protrudes forward from the launcher 4000, the handle 5000 is connected with the first connection site 4310 and protrudes rearward from the launcher 4000, so that the launching device 100 constitutes a knife mode.
[0164] When the second body 3000 is connected with the launcher 4000, the handle 5000 is connected with the second connection position 4320 and protrudes downward from the launcher 4000. In combination FIG. 19 to FIG. 23 As shown, when the second body 3000 is connected with the launcher 4000, the second body 3000 protrudes forward from the launcher 4000, the handle 5000 is connected with the second connection position 4320 and protrudes downward from the launcher 4000, so that the launching device 100 forms a gun shape.
[0165] When the pulling member 1000 is connected with the launcher 4000, the handle 5000 is connected with the third connection position 4330 and protrudes leftward or rightward from the launcher 4000. When the pulling member 1000 is connected with the launcher 4000, the handle 5000 is connected with the third connection position 4330 and protrudes leftward or rightward from the launcher 4000, so that the launching device 100 forms a basic shape, the handle 5000 protrudes leftward or rightward from the launcher 4000, which is beneficial to improve the force exerted on the pulling member 1000 in the holding state and improve the use experience. Alternatively, the left side and the right side of the launcher 4000 are respectively provided with the third connection position 4330, and the handle 5000 is adapted to be connected to the third connection position 4330 on the left side or the third connection position 4330 on the right side. Different users have different use habits of left hand and right hand. Therefore, in this embodiment, by respectively arranging the third connection position 4330 on the left side and the right side of the launcher 4000, the user can connect the handle 5000 to the third connection position 4330 on the left side or the third connection position 4330 on the right side according to the user's own situation and use scene, thereby improving the use experience.
[0166] By arranging the first connection position 4310, the second connection position 4320 and the third connection position 4330, the position of the handle 5000 relative to the launcher 4000 is changed. When the first body 2000 is connected with the launcher 4000, the handle 5000 is connected with the first connection position 4310, so that the launching device 100 is in a corresponding use shape. When the second body 3000 is connected with the launcher 4000, the handle 5000 is connected with the second connection position 4320, so that the launching device 100 is in a corresponding use shape. When the pulling member 1000 is connected with the launcher 4000, the handle 5000 is connected with the third connection position 4330, so that the launching device 100 is in a corresponding use shape.
[0167] It can be understood that the accessories include the first body 2000, the second body 3000, the pulling member 1000 and the handle 5000, and the connection positions include the first connection position 4310, the second connection position 4320 and the third connection position 4330, which are exemplary descriptions but are not limited to the above examples.
[0168] In combinationFIG. 1 to FIG. 7 , FIG. 19 to FIG. 24 as well as FIG. 40 to FIG. 47 As shown, in some embodiments, the acceleration position 4100 includes an acceleration gear 4110, and the accessory is adapted to drive the acceleration gear 4110 to rotate. The acceleration gear 4110 is adapted to drive the object to be launched 200 to rotate. The cooperation between the accessory and the acceleration position 4100 is reflected in the fact that the accessory can drive the acceleration gear 4110 to rotate, so that the acceleration gear 4110 drives the object to be launched 200 to rotate. The rotation of the acceleration gear 4110 drives the object to be launched 200 to rotate. For example, the object to be launched 200 has a toothed structure. When the object to be launched 200 is installed on the launcher 4000, the toothed structure of the object to be launched 200 meshes with the acceleration gear 4110. When the acceleration gear 4110 rotates, it can drive the object to be launched 200 to rotate. Furthermore, when the object to be launched 200 is launched, it facilitates the rapid separation between the object to be launched 200 and the acceleration gear 4110.
[0169] Combination FIG. 1 to FIG. 6 as well as FIG. 12 to FIG. 15 As shown, in some embodiments, the accessory includes a first body 2000, which includes a first slide 2100 that is reciprocating; when the first body 2000 is connected to the transmitter 4000, the first slide 2100 is adapted to drive the acceleration position 4100, so that the acceleration position 4100 drives the object to be launched 200 to rotate.
[0170] The first main body 2000 includes a first slide 2100, which can reciprocate. That is, the first slide 2100 can move along a first direction or along a second direction, which are opposite. During the reciprocating movement of the first slide 2100, the first slide 2100 can drive the acceleration position 4100, thereby causing the acceleration position 4100 to drive the object to be launched 200 to rotate.
[0171] When the first body 2000 and the transmitter 4000 are connected, the reciprocating movement of the first slide handle 2100 is converted into the rotation of the acceleration gear 4110. For example, the first body 2000 also includes a first rack 2101. The first slide handle 2100 and the first rack 2101 are connected to drive the first rack 2101 to reciprocate. The first rack 2101 and the acceleration gear 4110 are connected in a transmission, thereby causing the acceleration gear 4110 to rotate. In this way, the reciprocating movement of the first slide handle 2100 is converted into the rotation of the acceleration gear 4110. The first body 2000 can generate force on the first slide handle 2100 by setting an elastic element to provide elastic force for the first slide handle 2100 to return to its original position.
[0172] Combination FIG. 7 to FIG. 11In some embodiments, the first handle 2100 is adapted to reciprocate along a first direction and a second direction, the first direction and the second direction being opposite, the first main body 2000 further comprises a first clutch mechanism 2200 and a first stop mechanism 2300, the first stop mechanism 2300 has a first stop state and a second stop state;
[0173] When the first stop mechanism 2300 is in the first stop state, the first handle 2100 is adapted to drive the first clutch mechanism 2200 to rotate the acceleration gear 4110 when the first handle 2100 moves along the first direction, and the first handle 2100 is adapted to drive the first clutch mechanism 2200 to separate from the acceleration gear 4110 when the first handle 2100 moves along the second direction; when the first stop mechanism 2300 is in the second stop state, the first handle 2100 is adapted to drive the first clutch mechanism 2200 to separate from the acceleration gear 4110 when the first handle 2100 moves along the first direction, and the first handle 2100 is adapted to drive the first clutch mechanism 2200 to rotate the acceleration gear 4110 in the reverse direction when the first handle 2100 moves along the second direction.
[0174] By setting the first clutch mechanism 2200, only one direction of reciprocating movement of the first handle 2100 can drive the acceleration gear 4110 to rotate, and the other direction of reciprocating movement of the first handle 2100 cannot drive the acceleration gear 4110 to rotate, so that the acceleration gear 4110 can be continuously accelerated under the action of multiple reciprocating movements of the first handle 2100. In addition, by setting the first stop mechanism 2300, the first stop mechanism 2300 switches different stop states to change the rotation direction of the acceleration gear 4110, thereby changing the rotation direction of the to-be-launched object 200.
[0175] For example, referring to the orientation of the first handle 2100, FIG. 10 When the first stop mechanism 2300 is in the first stop state: in the first reciprocating movement of the first handle 2100, the first handle 2100 moves along the first direction to drive the first clutch mechanism 2200 to act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise), and the first handle 2100 moves along the second direction to drive the first clutch mechanism 2200 to separate from the acceleration gear 4110; in the second reciprocating movement of the first handle 2100, the first handle 2100 moves along the first direction to drive the first clutch mechanism 2200 to act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise), and the first handle 2100 moves along the second direction to drive the first clutch mechanism 2200 to separate from the acceleration gear 4110, and so on.
[0176] For example, referring to the orientation of the first handle 2100, FIG. 11the first reciprocating movement of the first handle 2100, the first handle 2100 is moved in the first direction to make the first clutch mechanism 2200 leave the acceleration gear 4110, and the first handle 2100 is moved in the second direction to make the first clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate reversely (counterclockwise); in the second reciprocating movement of the first handle 2100, the first handle 2100 is moved in the first direction to make the first clutch mechanism 2200 leave the acceleration gear 4110, and the first handle 2100 is moved in the second direction to make the first clutch mechanism 2200 act on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate reversely (counterclockwise), and so on.
[0177] In combination FIG. 7 to FIG. 11 As shown in FIG. 22, in some embodiments, the first clutch mechanism 2200 comprises a first movable member 2220, a first driving gear 2210, a first clutch gear 2230 and a second clutch gear 2240, the first movable member 2220 is rotatably arranged, the first driving gear 2210 is rotatably arranged coaxially with the first movable member 2220, the first clutch gear 2230 is rotatably arranged on the first movable member 2220 and engaged with the first driving gear 2210, and the second clutch gear 2240 is rotatably arranged on the first movable member 2220 and engaged with the first driving gear 2210.
[0178] When the first stop mechanism 2300 is in the first stop state:
[0179] When the first handle 2100 is moved in the first direction, the first handle 2100 drives the first driving gear 2210 to rotate, so as to make the first movable member 2220 swing, and make the first clutch gear 2230 and the acceleration gear 4110 engage in transmission, and the second clutch gear 2240 and the acceleration gear 4110 separate; when the first handle 2100 is moved in the second direction, the first handle 2100 drives the first driving gear 2210 to rotate reversely, so as to make the first movable member 2220 swing reversely and be stopped by the first 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.
[0180] When the first stop mechanism 2300 is in the second stop state:
[0181] The first handle 2100 is adapted to drive the first driving gear 2210 to rotate when moving in the first direction, so as to drive the first movable member 2220 to swing and be stopped by the first stop mechanism 2300, 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; the first handle 2100 is adapted to drive the first driving gear 2210 to rotate reversely when moving in the second direction, so as to drive the first movable member 2220 to swing reversely, and drive the first clutch gear 2230 and the acceleration gear 4110 to be separated, and the second clutch gear 2240 and the acceleration gear 4110 to be engaged.
[0182] Specifically, the first movable member 2220 is rotatably arranged and can swing within a certain range, and the certain range is limited by the first stop mechanism 2300. The first driving gear 2210 is rotatably arranged and coaxial with the first movable member 2220, and the first driving gear 2210 can be arranged on the first movable member 2220 or not. The coaxial of the first driving gear 2210 with the first movable member 2220 means that the rotation axis of the first driving gear 2210 is coaxial with the rotation axis of the first movable member 2220. The first clutch gear 2230 is arranged on the first movable member 2220 and can rotate relative to the first movable member 2220, and the second clutch gear 2240 is arranged on the first movable member 2220 and can rotate relative to the first movable member 2220. Since the first movable member 2220 is rotatably arranged, and the first driving gear 2210 is coaxial with the first movable member 2220, no matter how the first movable member 2220 swings, the engagement of the first driving gear 2210 with the first clutch gear 2230 and the engagement of the first driving gear 2210 with the second clutch gear 2240 can be maintained. Thus, when the first driving gear 2210 rotates in different directions, the first movable member 2220 can be driven to swing in different directions, and the first movable member 2220 can drive the first clutch gear 2230 and the second clutch gear 2240 to swing when the first movable member 2220 swings in different directions.
[0183] The reciprocating movement of the first handle 2100 drives the first driving gear 2210 to rotate in different directions. For example, the first handle 2100 can drive the first driving gear 2210 to rotate through the first rack 2101 (the first rack 2101 and the first driving gear 2210 are in transmission connection). Since the first handle 2100 can reciprocate, the rotation direction of the first driving gear 2210 when the first handle 2100 moves in the first direction is different from the rotation direction of the first driving gear 2210 when the first handle 2100 moves in the second direction.
[0184] Referring to FIG. 10the orientation of the first stop mechanism 2300 when the first stop mechanism 2300 is in the first stop state:
[0185] When the first handle 2100 is moved in the first direction, the first drive gear 2210 is rotated clockwise, the first clutch gear 2230 and the second clutch gear 2240 are rotated counterclockwise, and the first movable member 2220 is swung clockwise, and the first clutch gear 2230 and the acceleration gear 4110 are engaged (so as to limit the first movable member 2220 to continue to swing clockwise) and the second clutch gear 2240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 2230 to rotate the to-be-launched object 200 (counterclockwise). It can be understood that if the first handle 2100 is moved to the limit in the first direction and is stationary, the first drive gear 2210 is stationary, and since the first movable member 2220 is rotatably arranged and the to-be-launched object 200 is still rotating, the first movable member 2220 is forced to swing counterclockwise so that the first clutch gear 2230 and the acceleration gear 4110 are disengaged.
[0186] When the first handle 2100 is moved in the first direction, the first drive gear 2210 is rotated clockwise, the first clutch gear 2230 and the second clutch gear 2240 are rotated counterclockwise, and the first movable member 2220 is swung clockwise, and the first clutch gear 2230 and the acceleration gear 4110 are engaged (so as to limit the first movable member 2220 to continue to swing clockwise) and the second clutch gear 2240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 2230 to rotate the to-be-launched object 200 (counterclockwise). It can be understood that if the first handle 2100 is moved to the limit in the first direction and is stationary, the first drive gear 2210 is stationary, and since the first movable member 2220 is rotatably arranged and the to-be-launched object 200 is still rotating, the first movable member 2220 is forced to swing counterclockwise so that the first clutch gear 2230 and the acceleration gear 4110 are disengaged.
[0187] Referring to FIG. 11 the orientation of the first stop mechanism 2300 when the first stop mechanism 2300 is in the second stop state:
[0188] When the first handle 2100 is moved in the first direction, the first drive gear 2210 is rotated clockwise, the first clutch gear 2230 and the second clutch gear 2240 are rotated counterclockwise, and the first movable member 2220 is swung clockwise, and the first clutch gear 2230 and the acceleration gear 4110 are engaged (so as to limit the first movable member 2220 to continue to swing clockwise) and the second clutch gear 2240 and the acceleration gear 4110 are disengaged, and finally the acceleration gear 4110 is rotated clockwise by the first clutch gear 2230 to rotate the to-be-launched object 200 (counterclockwise). It can be understood that if the first handle 2100 is moved to the limit in the first direction and is stationary, the first drive gear 2210 is stationary, and since the first movable member 2220 is rotatably arranged and the to-be-launched object 200 is still rotating, the first movable member 2220 is forced to swing counterclockwise so that the first clutch gear 2230 and the acceleration gear 4110 are disengaged.
[0189] When the first handle 2100 is switched to move in the second direction after moving in the first direction, the first driving gear 2210 is driven to rotate anticlockwise, the first and second clutch gears 2230 and 2240 are driven to rotate clockwise, and the first driving gear 2210 drives the first movable member 2220 to swing anticlockwise, the first and second clutch gears 2230 and 2240 follow the swing, so that the second clutch gear 2240 and the acceleration gear 4110 are engaged in transmission (so also limit the first movable member 2220 to continue to swing anticlockwise) and the first clutch gear 2230 and the acceleration gear 4110 are separated, finally the acceleration gear 4110 is driven to rotate anticlockwise by the second clutch gear 2240 to drive the to-be-launched object 200 to rotate (clockwise). It can be understood that if the first handle 2100 is moved to the limit in the second direction and is stationary, the first driving gear 2210 is stationary, because the first movable member 2220 is rotatably arranged and the to-be-launched object 200 is still rotating, the first movable member 2220 is forced to swing clockwise to make the second clutch gear 2240 and the acceleration gear 4110 separated.
[0190] In combination FIG. 7 to FIG. 11 As shown in the figure, in some embodiments, the first stop mechanism 2300 includes a clamping groove 2310, and the first movable member 2220 is inserted in the clamping groove 2310.
[0191] When the first stop mechanism 2300 is in the first stop state, the first movable member 2220 is adapted to be stopped by one side of the clamping groove 2310, so that the first and second clutch gears 2230 and 2240 are respectively separated from the acceleration gear 4110; when the first stop mechanism 2300 is in the second stop state, the first movable member 2220 is adapted to be stopped by the other side of the clamping groove 2310, so that the first and second clutch gears 2230 and 2240 are respectively separated from the acceleration gear 4110.
[0192] In this embodiment, the restriction of the first movable member 2220 in different stop states of the first stop mechanism 2300 is realized by the same clamping groove 2310, which simplifies the structure.
[0193] Since the first movable member 2220 is inserted into the slot 2310 when the first stop mechanism 2300 is in the first stop state and the second stop state, in order to enable the opposite sides of the slot 2310 to stop the first movable member 2220 in the corresponding stop state, the position of the slot 2310 is different when the first stop mechanism 2300 is in the first stop state and the second stop state. For example, the first movable member 2220 can be rotatably configured to switch between the first stop state and the second stop state, thereby changing the position of the slot 2310. For example, the first movable member 2220 can be rotatably swung back and forth at a certain angle, thus changing the position of the slot 2310. The rotatability of the first movable member 2220 is achieved, for example, by using screws. When the screws are loosened, the first movable member 2220 can be rotated to adjust the position of the slot 2310. When the screws are tightened, the first movable member 2220 is fixed to position the slot 2310.
[0194] Combination FIG. 1 to FIG. 5 as well as FIG. 16 to FIG. 18 As shown, in some embodiments, the launching device 100 further includes a first extension member 2500, which is adapted to be detachably connected to the first body 2000, and a first slide 2100 is adapted to reciprocate to the first extension member 2500 when the first extension member 2500 and the first body 2000 are connected.
[0195] Specifically, the first extension member 2500 is adapted to be detachably connected to the first main body 2000, meaning that the first extension member 2500 and the first main body 2000 can be both connected and fixed, and can also be detached. When the first extension member 2500 and the first main body 2000 are detached, the first slider 2100 reciprocates on the first main body 2000, meaning that the reciprocating stroke of the first slider 2100 is determined by the first main body 2000 itself. When the first extension member 2500 is connected to the first main body 2000, the first slider 2100 can reciprocate to the first extension member 2500, meaning that the reciprocating stroke of the first slider 2100 is jointly determined by the first main body 2000 and the first extension member 2500. In this case, the reciprocating stroke of the first slider 2100 can be increased, which is more conducive to the rotational acceleration of the object to be launched 200.
[0196] When the first extension component 2500 and the first main body 2000 are connected, the first slider 2100 can reciprocate to the first extension component 2500. Therefore, when the first extension component 2500 and the first main body 2000 are disassembled, it is undesirable for the first slider 2100 to reciprocate to the position of the first extension component 2500; otherwise, the first slider 2100 will detach from the first main body 2000. FIG. 16 to FIG. 18As shown, in some embodiments, the first main body 2000 further comprises a first limiting mechanism 2400, which is adapted to avoid the first handlebar 2100 when the first extension component 2500 and the first main body 2000 are connected, so that the first handlebar 2100 can be reciprocally moved to the first extension component 2500, and is adapted to stop the first handlebar 2100 when the first extension component 2500 and the first main body 2000 are disassembled, so as to prevent the first handlebar 2100 from being pulled out.
[0197] Specifically, the first limiting mechanism 2400 is a movable component, which can limit the movement of the first handlebar 2100 and can also release the limitation on the movement of the first handlebar 2100.
[0198] When the first extension component 2500 and the first main body 2000 are connected, the first limiting mechanism 2400 changes accordingly, at this time, the first limiting mechanism 2400 avoids the first handlebar 2100, thereby releasing the limitation on the first handlebar 2100, and the first handlebar 2100 can be moved from the first main body 2000 to the first extension component 2500, or from the first extension component 2500 to the first main body 2000. For example, in this case, the first limiting mechanism 2400 is away from the movement path of the first handlebar 2100, so that the first handlebar 2100 will not be stopped by the first limiting mechanism 2400 when moving.
[0199] When the first extension component 2500 and the first main body 2000 are disassembled, the first limiting mechanism 2400 changes accordingly, at this time, the first limiting mechanism 2400 stops the first handlebar 2100, thereby forming a limitation on the first handlebar 2100, and the first handlebar 2100 can only be reciprocally moved in the first main body 2000, and when the first handlebar 2100 moves in the direction of moving towards the first extension component 2500, it will be stopped by the first limiting mechanism 2400 and cannot be pulled out of the first main body 2000. For example, in this case, the first limiting mechanism 2400 is located in the movement path of the first handlebar 2100, so that the first handlebar 2100 will be stopped by the first limiting mechanism 2400 when moving.
[0200] In combination FIG. 18 As shown, in some embodiments, the first extension component 2500 comprises a first protruding rod 2510, and the first limiting mechanism 2400 comprises a first movable pin 2410;
[0201] The first protruding rod 2510 is adapted to drive the first movable pin 2410 to be away from the movement path of the first handlebar 2100 to avoid the first handlebar 2100 when the first extension component 2500 and the first main body 2000 are connected, and the first movable pin 2410 is adapted to move into the movement path of the first handlebar 2100 to stop the first handlebar 2100 under the action of the elasticity when the first extension component 2500 and the first main body 2000 are disassembled.
[0202] Specifically, referring to FIG. 18 the orientation shown, when the first extension component 2500 and the first body 2000 are connected, the first protruding rod 2510 pushes the first movable pin 2410 rearward, forcing the first movable pin 2410 to be pressed downward to leave the moving path of the first handlebar 2100 (for example, the first movable pin 2410 is provided with an inclined surface, and the first protruding rod 2510 pushes against the inclined surface, forcing the first movable pin 2410 to be pressed downward), forming an avoidance to the first handlebar 2100. When the first extension component 2500 and the first body 2000 are disassembled, the first movable pin 2410 is reset (raised) to the moving path of the first handlebar 2100 under the action of the elastic force, and the first movable pin 2410 can realize the stop of the movement of the first handlebar 2100.
[0203] In combination FIG. 2 and FIG. 3 In some embodiments, the first body 2000 is provided with a first sliding rail 2001, and the first extension component 2500 is provided with a first extension sliding rail 2501, and the first extension sliding rail 2501 and the first sliding rail 2001 are adapted to be communicated when the first extension component 2500 and the first body 2000 are connected, so that the first handlebar 2100 can reciprocally move in the first sliding rail 2001 and the first extension sliding rail 2501.
[0204] The first handlebar 2100 can be clamped in the first sliding rail 2001, and in the case that the first extension component 2500 and the first body 2000 are disassembled, the first handlebar 2100 can only reciprocally move on the first sliding rail 2001, and in the case that the first extension component 2500 and the first body 2000 are connected, the first handlebar 2100 can move from the first sliding rail 2001 to the first extension sliding rail 2501, and can move from the first extension sliding rail 2501 to the first sliding rail 2001, increasing the stroke of the reciprocating movement of the first handlebar 2100.
[0205] In combination FIG. 1 to FIG. 5 In some embodiments, the first body 2000 is provided with a first guide groove 2002, and the first extension component 2500 is provided with a first extension guide groove 2502, and the first guide groove 2002 and the first extension guide groove 2502 are adapted to be communicated when the first extension component 2500 and the first body 2000 are connected, and the to-be-launched object 200 is adapted to be launched along the first guide groove 2002 and the first extension guide groove 2502, so as to play a guiding role in the launching of the to-be-launched object 200.
[0206] In combination FIG. 1 to FIG. 5 and FIG. 12 to FIG. 15 In some embodiments, the accessory includes a handle 5000 adapted to be held, and the handle 5000 includes a first release mechanism 5100;
[0207] When the handle 5000 is connected to the launcher 4000, the first release mechanism 5100 is adapted to actuate the launch position 4200, so that the launch position 4200 actuates the projectile 200 to launch.
[0208] In particular, the handle 5000 comprises the first release mechanism 5100, which is adapted to actuate the launch position 4200, i.e. the first release mechanism 5100 is movably arranged, and the movement of the first release mechanism 5100 is adapted to actuate the launch position 4200, so that the launch position 4200 actuates the projectile 200 to launch. For example, when the handle 5000 and the first body 2000 are connected to the launcher 4000, the first slide 2100 and the first release mechanism 5100 do not interfere with each other, and the projectile 200 can be controlled to rotate first and then to launch, or the projectile 200 can be directly controlled to launch without being controlled to rotate.
[0209] For example, referring to FIG. 1 to FIG. 5 the orientation, one hand of the user holds the handle 5000, and the other hand holds the first slide 2100 to control the first slide 2100 to reciprocate in the front-rear direction (from front to rear is the first direction, and from rear to front is the second direction, or from front to rear is the second direction, and from rear to front is the first direction), so as to actuate the acceleration position 4100, so that the projectile 200 rotates, and the hand holding the handle 5000 controls the first release mechanism 5100, so that the first release mechanism 5100 actuates the launch position 4200, and thus the projectile 200 is launched. After the projectile 200 is launched and falls to the ground, it still maintains a rotating state, and at this time, the projectile 200 will not fall until it stops rotating, which is beneficial to improve the playability, or after multiple (two or more) projectiles 200 are launched and fall to the concave arc region, the projectiles 200 will move towards the bottom of the concave arc region. Since the projectiles 200 can maintain rotation, collisions can occur between the multiple projectiles 200, so that competitive confrontation can be formed, and the playability can be improved. In particular, the faster the first slide 2100 reciprocates, the more beneficial it is to accelerate the rotation of the projectile 200, and the faster the projectile 200 rotates, the more beneficial it is to competitive confrontation.
[0210] In combination with FIG. 19 to FIG. 24 shown, in some embodiments, the accessory comprises a second body 3000, which comprises a second slide 3100 and a second release mechanism 3600, the second slide 3100 is reciprocally movable;
[0211] When the second body 3000 and the transmitter 4000 are connected, the second slider 3100 is adapted to drive the acceleration position 4100, so that the acceleration position 4100 drives the object to be launched 200 to rotate, and the second release mechanism 3600 is adapted to drive the launch position 4200, so that the launch position 4200 drives the object to be launched 200 to launch.
[0212] Specifically, the second body 3000 includes a second slider 3100, which is reciprocating. That is, the second slider 3100 can move in either a third or fourth direction, with the third and fourth directions being opposite. During the reciprocating movement of the second slider 3100, it drives an acceleration position 4100, which in turn causes the object to be launched 200 to rotate. The second body 3000 also includes a second release mechanism 3600, which drives a launch position 4200. The second release mechanism 3600 is movably configured, and its movement drives the launch position 4200, thereby causing the launch position 4200 to launch the object to be launched. In this embodiment, the second slider 3100 and the second release mechanism 3600 do not interfere with each other. The object to be launched 200 can be controlled to rotate first, and then launched, or it can be launched directly without controlling its rotation.
[0213] For example, see FIG. 19 to FIG. 23 With the user holding the handle 5000 in one hand and the second slider 3100 in the other, the user controls the second slider 3100 to move back and forth in the front-to-back direction (from front to back is the third direction and from back to front is the fourth direction, or from front to back is the fourth direction and from back to front is the third direction), thereby driving the acceleration position 4100, causing the object to be launched 200 to rotate. The hand holding the handle 5000 controls the second release mechanism 3600, which drives the launch position 4200, thus launching the object to be launched 200. After being launched, the launch object 200 continues to rotate upon landing. It will not tip over until it stops rotating, enhancing the fun of the game. Alternatively, multiple launch objects 200 can be launched and land in a concave area. The launch objects 200 will move towards the bottom of the concave area. Because they continue to rotate, collisions can occur between them, creating competitive situations and increasing playability. In particular, the faster the second slider 3100 reciprocates, the faster the launch object 200 rotates, thus facilitating competitive action.
[0214] When the second body 3000 is connected with the launcher 4000, the reciprocating movement of the second slider 3100 is converted into the rotation of the acceleration gear 4110. For example, the second body 3000 further comprises a second rack 3101, the second slider 3100 is connected with the second rack 3101 to drive the second rack 3101 to reciprocate, and the second rack 3101 is in transmission connection with the acceleration gear 4110, so that the acceleration gear 4110 rotates. Thus, the reciprocating movement of the second slider 3100 is converted into the rotation of the acceleration gear 4110. The second body 3000 can generate force on the second slider 3100 through the elastic member, so as to provide elastic force for resetting the second slider 3100.
[0215] In combination FIG. 24 to FIG. 29 As shown in the drawings, in some embodiments, the second slider 3100 is adapted to reciprocate in a third direction and a fourth direction, the third direction and the fourth direction are opposite, and the second body 3000 further comprises a second clutch mechanism 3200 and a second stop mechanism 3300, the second stop mechanism 3300 has a third stop state and a fourth stop state.
[0216] When the second stop mechanism 3300 is in the third stop state, the second slider 3100 is adapted to drive the second clutch mechanism 3200 when moving in the third direction, so that the second clutch mechanism 3200 drives the acceleration gear 4110 to rotate, and the second slider 3100 is adapted to drive the second clutch mechanism 3200 when moving in the fourth direction, so that the second clutch mechanism 3200 and the acceleration gear 4110 are separated.
[0217] When the second stop mechanism 3300 is in the fourth stop state, the second slider 3100 is adapted to drive the second clutch mechanism 3200 when moving in the third direction, so that the second clutch mechanism 3200 and the acceleration gear 4110 are separated, and the second slider 3100 is adapted to drive the second clutch mechanism 3200 when moving in the fourth direction, so that the second clutch mechanism 3200 drives the acceleration gear 4110 to rotate in the reverse direction.
[0218] By arranging the second clutch mechanism 3200, only one direction of reciprocating movement of the second slider 3100 can drive the acceleration gear 4110 to rotate, and the other direction of reciprocating movement of the second slider 3100 cannot drive the acceleration gear 4110 to rotate. Thus, under the action of multiple reciprocating movements of the second slider 3100, the continuous rotation and acceleration of the acceleration gear 4110 can be realized. In addition, by arranging the second stop mechanism 3300, the second stop mechanism 3300 switches different stop states to make the rotation direction of the acceleration gear 4110 different, so as to change the rotation direction of the to-be-launched object 200.
[0219] For example, referring to FIG. 28In the orientation shown, when the second stop mechanism 3300 is in the third stop state, during the first reciprocating movement of the second slider 3100, when the second slider 3100 moves in the third direction, the second clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise rotation), and when the second slider 3100 moves in the fourth direction, the second clutch mechanism 3200 is away from the acceleration gear 4110; during the second reciprocating movement of the second slider 3100, when the second slider 3100 moves in the third direction, the second clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate (clockwise rotation), and when the second slider 3100 moves in the fourth direction, the second clutch mechanism 3200 is away from the acceleration gear 4110, and so on.
[0220] Referring to FIG. 29 In the orientation shown, when the second stop mechanism 3300 is in the fourth stop state, during the first reciprocating movement of the second slider 3100, when the second slider 3100 moves in the third direction, the second clutch mechanism 3200 is away from the acceleration gear 4110, and when the second slider 3100 moves in the fourth direction, the second clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate in the reverse direction (counterclockwise rotation); during the second reciprocating movement of the second slider 3100, when the second slider 3100 moves in the third direction, the second clutch mechanism 3200 is away from the acceleration gear 4110, and when the second slider 3100 moves in the fourth direction, the second clutch mechanism 3200 acts on the acceleration gear 4110, thereby driving the acceleration gear 4110 to rotate in the reverse direction (counterclockwise rotation), and so on.
[0221] In combination FIG. 24 to FIG. 29 In some embodiments, the second clutch mechanism 3200 includes a second movable piece 3220, a second drive gear 3210, a third clutch gear 3230, and a fourth clutch gear 3240, the second movable piece 3220 is rotatably arranged, the second drive gear 3210 is rotatably arranged and coaxial with the second movable piece 3220, the third clutch gear 3230 is rotatably arranged on the second movable piece 3220 and meshed with the second drive gear 3210, and the fourth clutch gear 3240 is rotatably arranged on the second movable piece 3220 and meshed with the second drive gear 3210.
[0222] When the second stop mechanism 3300 is in the third stop state:
[0223] The second slider 3100 is adapted to drive the second driving gear 3210 to rotate when moving in the third direction, so as to swing the second movable member 3220, and make the third clutch gear 3230 and the acceleration gear 4110 mesh transmission, and the fourth clutch gear 3240 and the acceleration gear 4110 separate; the second slider 3100 is adapted to drive the second driving gear 3210 to rotate reversely when moving in the fourth direction, so as to swing the second movable member 3220 reversely and be stopped by the second stop mechanism 3300, so that the third clutch gear 3230 and the acceleration gear 4110 separate, and the fourth clutch gear 3240 and the acceleration gear 4110 separate;
[0224] When the second stop mechanism 3300 is in the fourth stop state;
[0225] The second slider 3100 is adapted to drive the second driving gear 3210 to rotate when moving in the third direction, so as to swing the second movable member 3220 and be stopped by the second stop mechanism 3300, so that the third clutch gear 3230 and the acceleration gear 4110 separate, and the fourth clutch gear 3240 and the acceleration gear 4110 separate; the second slider 3100 is adapted to drive the second driving gear 3210 to rotate reversely when moving in the fourth direction, so as to swing the second movable member 3220 reversely, and make the third clutch gear 3230 and the acceleration gear 4110 separate, and the fourth clutch gear 3240 and the acceleration gear 4110 mesh transmission.
[0226] Specifically, the second movable member 3220 is rotatably arranged and can swing within a certain range, which is limited by the second stop mechanism 3300. The second drive gear 3210 is rotatably arranged and coaxial with the second movable member 3220, and the second drive gear 3210 can be arranged on the second movable member 3220 or not. The coaxial of the second drive gear 3210 and the second movable member 3220 means that the rotation axis of the second drive gear 3210 is coaxial with the rotation axis of the second movable member 3220. The third clutch gear 3230 is arranged on the second movable member 3220 and can rotate relative to the second movable member 3220. The fourth clutch gear 3240 is arranged on the second movable member 3220 and can rotate relative to the second movable member 3220. Since the second movable member 3220 is rotatably arranged, and the second drive gear 3210 is coaxial with the second movable member 3220, no matter how the second movable member 3220 swings, the second drive gear 3210 can always mesh with the third clutch gear 3230 and the fourth clutch gear 3240. Thus, when the second drive gear 3210 rotates in different directions, the second movable member 3220 can be driven to swing in different directions, and when the second movable member 3220 swings in different directions, the third clutch gear 3230 and the fourth clutch gear 3240 can be driven to follow the swing. The reciprocating movement of the second slider 3100 can drive the second drive gear 3210 to rotate in different directions. The second slider 3100 can drive the second drive gear 3210 to rotate through the second rack 3101 (the second rack 3101 and the second drive gear 3210 are in transmission connection). Since the second slider 3100 can reciprocate, the rotation direction of the second drive gear 3210 when the second slider 3100 moves in the third direction is different from the rotation direction of the second drive gear 3210 when the second slider 3100 moves in the fourth direction.
[0227] Referring to FIG. 28 In the orientation of the second stop mechanism 3300 in the third stop state:
[0228] When the second slider 3100 moves along the third direction, the second driving gear 3210 is rotated clockwise, the second driving gear 3210 drives the third clutch gear 3230 and the fourth clutch gear 3240 to rotate counterclockwise, and the second driving gear 3210 drives the second movable member 3220 to swing clockwise, the third clutch gear 3230 and the fourth clutch gear 3240 follow the swing, so that the third clutch gear 3230 and the acceleration gear 4110 are engaged and transmitted (so also limit the second movable member 3220 to continue to swing clockwise) while the fourth clutch gear 3240 and the acceleration gear 4110 are separated, finally the third clutch gear 3230 drives the acceleration gear 4110 to rotate clockwise to drive the to-be-launched object 200 to rotate (counterclockwise). It can be understood that if the second slider 3100 moves to the limit along the third direction, the second driving gear 3210 is stationary, because the second movable member 3220 is rotatably arranged and the to-be-launched object 200 is still rotating, so the second movable member 3220 is forced to swing counterclockwise to separate the third clutch gear 3230 and the acceleration gear 4110.
[0229] When the second slider 3100 moves along the third direction, the second driving gear 3210 is rotated clockwise, the second driving gear 3210 drives the third clutch gear 3230 and the fourth clutch gear 3240 to rotate counterclockwise, and the second driving gear 3210 drives the second movable member 3220 to swing clockwise until the second movable member 3220 is stopped by the second stop mechanism 3300, the third clutch gear 3230 and the fourth clutch gear 3240 follow the swing, so that the third clutch gear 3230 and the acceleration gear 4110 are separated, and the fourth clutch gear 3240 and the acceleration gear 4110 are separated.
[0230] Referring to FIG. 29 When the second stop mechanism 3300 is in the fourth stop state:
[0231] When the second slider 3100 moves along the third direction, the second driving gear 3210 is rotated clockwise, the second driving gear 3210 drives the third clutch gear 3230 and the fourth clutch gear 3240 to rotate counterclockwise, and the second driving gear 3210 drives the second movable member 3220 to swing clockwise until the second movable member 3220 is stopped by the second stop mechanism 3300, the third clutch gear 3230 and the fourth clutch gear 3240 follow the swing, so that the third clutch gear 3230 and the acceleration gear 4110 are separated, and the fourth clutch gear 3240 and the acceleration gear 4110 are separated.
[0232] When the second slider 3100 is switched to move in the fourth direction after moving in the third direction, the second driving gear 3210 is driven to rotate counterclockwise, the third clutch gear 3230 and the fourth clutch gear 3240 are driven to rotate clockwise by the second driving gear 3210, and the second movable member 3220 is driven to swing counterclockwise by the second driving gear 3210, the third clutch gear 3230 and the fourth clutch gear 3240 are swung to follow, so that the fourth clutch gear 3240 and the acceleration gear 4110 are engaged to drive (and the second movable member 3220 is also limited to continue to swing counterclockwise) and the third clutch gear 3230 and the acceleration gear 4110 are separated, and finally the acceleration gear 4110 is driven to rotate counterclockwise by the fourth clutch gear 3240 to drive the to-be-launched object 200 to rotate (clockwise). It can be understood that if the second slider 3100 moves to the limit in the fourth direction, the second driving gear 3210 is stationary, and since the second movable member 3220 is rotatably arranged and the to-be-launched object 200 is still rotating, the second movable member 3220 is forced to swing clockwise to separate the fourth clutch gear 3240 and the acceleration gear 4110.
[0233] In combination FIG. 25 to FIG. 29 As shown in FIG. 13, in some embodiments, the second stop mechanism 3300 includes a first stop slot 3310 and a second stop slot 3320.
[0234] When the second stop mechanism 3300 is in the third stop state, the second movable member 3220 is inserted into the first stop slot 3310 to be stopped by the first stop slot 3310 when swinging; when the second stop mechanism 3300 is in the fourth stop state, the second movable member 3220 is inserted into the second stop slot 3320 to be stopped by the second stop slot 3320 when swinging.
[0235] Specifically, the swing range of the second movable member 3220 when the second stop mechanism 3300 is in the third stop state is limited by the width of the first stop slot 3310. The swing range of the second movable member 3220 when the second stop mechanism 3300 is in the fourth stop state is limited by the width of the second stop slot 3320. Since the second stop mechanism 3300 is in the third stop state and the fourth stop state to form different stops for the second movable member 3220, the positions of the first stop slot 3310 and the second stop slot 3320 are different, for example, as shown in FIG. 13, the first stop slot 3310 and the second stop slot 3320 are arranged in a Z shape to stagger. FIG. 27
[0236] Further, in combination FIG. 27 As shown in FIG. 13, in some embodiments, the first stop slot 3310 and the second stop slot 3320 are connected, and the second stop mechanism 3300 is adapted to reciprocate to move the second movable member 3220 from the first stop slot 3310 into the second stop slot 3320, and from the second stop slot 3320 into the first stop slot 3310.
[0237] Specifically, the second movable member 3220 is inserted into the second stop mechanism 3300, and the user can control the second stop mechanism 3300 to move back and forth, for example, the user directly operates the second stop mechanism 3300, when the second stop mechanism 3300 moves in one direction of its back and forth movement, the second movable member 3220 is thus moved into the first stop groove 3310, and when the second stop mechanism 3300 moves in the other direction of its back and forth movement, the second movable member 3220 is thus moved into the second stop groove 3320, which is convenient and fast.
[0238] In combination with FIG. 30 to FIG. 35 As shown, in some embodiments, the second main body 3000 further comprises a second limiting mechanism 3400;
[0239] The second 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 second sliding block 3100, and the first gear mechanism 3110 and the second gear mechanism 3120 are adapted to move with the second sliding block 3100 and can be in abutment with the second limiting mechanism 3400 alternately.
[0240] Referring to FIG. 31 to FIG. 35 In the orientation, the second 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 second sliding block 3100 when the second sliding block 3100 moves back and forth, and the first gear mechanism 3110 and the second gear mechanism 3120 can be in abutment with the second limiting mechanism 3400 alternately, that is, the second sliding block 3100 can be in abutment with the second limiting mechanism 3400 through the first gear mechanism 3110 when moving, or can be in abutment with the second limiting mechanism 3400 through the second gear mechanism 3120.
[0241] For example, when the second sliding block 3100 moves from back to front, the first gear mechanism 3110 can be in abutment with the second limiting mechanism 3400, thus blocking the second sliding block 3100 from continuing to move from back to front. For another example, when the second sliding block 3100 moves from back to front, the second gear mechanism 3120 can be in abutment with the second limiting mechanism 3400, thus blocking the second 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 second sliding block 3100 can be changed, so that the launching device 100 can adapt to different playing scenes.
[0242] The selection of the first gear mechanism 3110 and the second gear mechanism 3120 is realized by cooperating with the second rack 3101, in combination with FIG. 31 to FIG. 35As shown, in some embodiments, the second body 3000 further comprises a second rack 3101, the second slider 3100 and the second rack 3101 are movably connected and the second rack 3101 is driven to move reciprocally, the second rack 3101 is in transmission connection with the acceleration position 4100; the second rack 3101 is suitable for selectively driving one of the first gear position mechanism 3110 and the second gear position mechanism 3120 to switch to a position abutting against the second limiting mechanism 3400 when moving relative to the second slider 3100.
[0243] For example, the second rack 3101 can move relative to the second slider 3100 along the reciprocating movement direction of the second slider 3100, see FIG. 35 In the orientation of the first gear position mechanism 3110 is located in front of the second gear position mechanism 3120, the first gear position mechanism 3110 has a tendency to switch to a position avoiding the second limiting mechanism 3400 under the action of the elasticity, and the second gear position mechanism 3120 has a tendency to switch to a position avoiding the second limiting mechanism 3400 under the action of the elasticity. When the second rack 3101 moves forward relative to the second slider 3100, the first gear position mechanism 3110 is driven to switch to a position abutting against the second limiting mechanism 3400, and when the second slider 3100 moves forward, the first gear position mechanism 3110 abuts against the second limiting mechanism 3400, thereby preventing the second slider 3100 from continuing to move forward. When the second rack 3101 moves backward relative to the second slider 3100, the second gear position mechanism 3120 is driven to switch to a position abutting against the second limiting mechanism 3400, and when the second slider 3100 moves forward, the first gear position mechanism 3110 avoids the second limiting mechanism 3400, and the second gear position mechanism 3120 abuts against the second limiting mechanism 3400, thereby preventing the second slider 3100 from continuing to move forward.
[0244] In combination with FIG. 31 to FIG. 35 As shown, in some embodiments, the second slider 3100 further comprises a sliding groove 3130 and a locking piece 3140, the second rack 3101 is movably connected to the sliding groove 3130, and the locking piece 3140 is suitable for locking the movement of the second rack 3101 relative to the second slider 3100 and unlocking the movement of the second rack 3101 relative to the second slider 3100;
[0245] The second rack 3101 is suitable for moving from one end of the sliding groove 3130 to the other end when the locking piece 3140 is unlocked, so as to drive one of the first gear position mechanism 3110 and the second gear position mechanism 3120 to switch to a position abutting against the second limiting mechanism 3400, and suitable for moving from the other end of the sliding groove 3130 to the one end when the locking piece 3140 is unlocked, so as to drive the other one of the first gear position mechanism 3110 and the second gear position mechanism 3120 to switch to a position abutting against the second limiting mechanism 3400.
[0246] Specifically, when the locking member 3140 locks the second rack 3101, the second rack 3101 cannot move relative to the second 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 second rack 3101, the second rack 3101 can move relative to the second slider 3100, specifically, can reciprocate in the sliding groove 3130 of the second 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 activity of the second rack 3101 by pressing.
[0247] When the locking member 3140 is unlocked, the second 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 subsequently locks to prevent the second rack 3101 from moving from the front end of the sliding groove 3130 to the rear end of the sliding groove 3130, at this time, the first gear mechanism 3110 is switched to the position abutting against the second limiting mechanism 3400, and the second slider 3100 moves forward by abutting against the second limiting mechanism 3400 through the first gear mechanism 3110, thereby preventing the second slider 3100 from continuing to move forward.
[0248] When the locking member 3140 is unlocked, the second 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 subsequently locks to prevent the second rack 3101 from moving from the rear end of the sliding groove 3130 to the front end of the sliding groove 3130, at this time, the second gear mechanism 3120 is switched to the position abutting against the second limiting mechanism 3400, and the second slider 3100 moves forward by abutting against the second limiting mechanism 3400 through the second gear mechanism 3120, thereby preventing the second slider 3100 from continuing to move forward.
[0249] In combination FIG. 19 to FIG. 23 and FIG. 30 As shown in FIG. 10, in some embodiments, the launching device 100 further comprises a second extension component 3500, the second extension component 3500 is suitable for detachable connection with the second main body 3000, and the second slider 3100 is suitable for reciprocating movement to the second extension component 3500 when the second extension component 3500 and the second main body 3000 are connected.
[0250] Specifically, the second extension member 3500 is adapted to be detachably connected to the second main body 3000, meaning that the second extension member 3500 and the second main body 3000 can be both connected and fixed, and can also be detached. When the second extension member 3500 and the second main body 3000 are detached, the second slider 3100 reciprocates on the second main body 3000, meaning that the reciprocating stroke of the second slider 3100 is determined by the second main body 3000 itself. When the second extension member 3500 is connected to the second main body 3000, the second slider 3100 can reciprocate to the second extension member 3500, meaning that the reciprocating stroke of the second slider 3100 is jointly determined by the second main body 3000 and the second extension member 3500. In this case, the reciprocating stroke of the second slider 3100 can be increased, which is more conducive to the rotational acceleration of the object to be launched 200.
[0251] When the second extension member 3500 and the second main body 3000 are connected, the second slider 3100 can reciprocate to the second extension member 3500. Therefore, when the second extension member 3500 and the second main body 3000 are disassembled, it is undesirable for the second slider 3100 to reciprocate to the position of the second extension member 3500; otherwise, the second slider 3100 will detach from the second main body 3000. FIG. 21 and FIG. 30 As shown, in some embodiments, the second body 3000 further includes a second limiting mechanism 3400, which is adapted to avoid the second slider 3100 when the second extension member 3500 and the second body 3000 are connected, so that the second slider 3100 can reciprocate to the second extension member 3500. It is also adapted to stop the second slider 3100 when the second extension member 3500 and the second body 3000 are disassembled, so as to prevent the second slider 3100 from coming out.
[0252] Specifically, the second limiting mechanism 3400 is a movable component that can both restrict the movement of the second slider 3100 and release the restriction on the movement of the second slider 3100.
[0253] When the second extension member 3500 is connected to the second main body 3000, the second limiting mechanism 3400 undergoes a corresponding change. At this time, the second limiting mechanism 3400 avoids the second slider 3100, thereby releasing the restriction on the second slider 3100. The second slider 3100 can move from the second main body 3000 to the second extension member 3500, or vice versa. For example, in this case, the second limiting mechanism 3400 leaves the movement path of the second slider 3100, so that the second slider 3100 is not stopped by the second limiting mechanism 3400 when it moves.
[0254] When the second extension component 3500 and the second main body 3000 are detached, the second limiting mechanism 3400 presents corresponding changes, at this time the second limiting mechanism 3400 stops the second sliding block 3100, thereby forming a limitation to the second sliding block 3100, the second sliding block 3100 can only reciprocate in the second main body 3000, when the second sliding block 3100 moves in the direction of moving towards the second extension component 3500, it will be stopped by the second limiting mechanism 3400 and cannot be detached from the second main body 3000. For example, in this case, the second limiting mechanism 3400 is located in the moving path of the second sliding block 3100, so that the second sliding block 3100 is stopped by the second limiting mechanism 3400 when moving.
[0255] In combination FIG. 39 As shown in some embodiments, the second extension component 3500 comprises a second protruding rod 3510, and the second limiting mechanism 3400 comprises a second movable pin 3410.
[0256] The second protruding rod 3510 is adapted to drive the second movable pin 3410 out of the moving path of the second sliding block 3100 to avoid the second sliding block 3100 when the second extension component 3500 and the second main body 3000 are connected, and the second movable pin 3410 is adapted to move into the moving path of the second sliding block 3100 under the action of the elastic force to stop the second sliding block 3100 when the second extension component 3500 and the second main body 3000 are detached.
[0257] Specifically, referring to the position shown in FIG. 39 When the second extension component 3500 and the second main body 3000 are connected, the second protruding rod 3510 pushes the second movable pin 3410 backward, forcing the second movable pin 3410 to press down and thus out of the moving path of the second sliding block 3100 (for example, the second movable pin 3410 is provided with an inclined surface, and the second protruding rod 3510 pushes the inclined surface, forcing the second movable pin 3410 to press down), forming an avoidance to the second sliding block 3100. When the second extension component 3500 and the second main body 3000 are detached, the second movable pin 3410 resets (rises) to the moving path of the second sliding block 3100 under the action of the elastic force, and the second movable pin 3410 can stop the movement of the second sliding block 3100.
[0258] In combination FIG. 21 and FIG. 22 As shown in some embodiments, the second main body 3000 is provided with a second sliding rail 3001, and the second extension component 3500 is provided with a second extension sliding rail 3501, the second extension sliding rail 3501 and the second sliding rail 3001 are adapted to be communicated when the second extension component 3500 and the second main body 3000 are connected, so that the second sliding block 3100 can reciprocate in the second sliding rail 3001 and the second extension sliding rail 3501.
[0259] The second slider 3100 can be clamped to the second slide rail 3001. When the second extension member 3500 and the second main body 3000 are detached, the second slider 3100 can only move back and forth on the second slide rail 3001. When the second extension member 3500 and the second main body 3000 are connected, the second slider 3100 can move from the second slide rail 3001 to the second extension slide rail 3501 and can move from the second extension slide rail 3501 to the second slide rail 3001, thereby increasing the stroke of the second slider 3100 moving back and forth.
[0260] In combination FIG. 40 to FIG. 42 and FIG. 45 to FIG. 47 As shown in FIG. 10, in some embodiments, the accessory includes a pulling member 1000 adapted to be inserted into and pulled out of the launcher 4000, the pulling member 1000 including an acceleration end 1200 and a launching end 1100.
[0261] When the pulling member 1000 is connected to the launcher 4000, the acceleration end 1200 is adapted to drive the acceleration site 4100 during the process of inserting and / or pulling out the pulling member 1000 into and out of the launcher 4000, so that the acceleration site 4100 drives the to-be-launched object 200 to rotate, and the launching end 1100 is adapted to drive the launching site 4200 when the pulling member 1000 is inserted and / or pulled out of the launcher 4000, so that the launching site 4200 drives the to-be-launched object 200 to launch.
[0262] Specifically, the pulling member 1000 can be inserted into the launcher 4000 or pulled out of the launcher 4000. The rotation of the to-be-launched object 200 can be achieved by the insertion process of the pulling member 1000, i.e., the acceleration end 1200 drives the acceleration site 4100 during the process of inserting the pulling member 1000 into the launcher 4000, so that the acceleration site 4100 drives the to-be-launched object 200 to rotate. The rotation of the to-be-launched object 200 can also be achieved by the pulling process of the pulling member 1000, i.e., the acceleration end 1200 drives the acceleration site 4100 during the process of pulling the pulling member 1000 out of the launcher 4000, so that the acceleration site 4100 drives the to-be-launched object 200 to rotate. The launching of the to-be-launched object 200 can be achieved by the insertion process of the pulling member 1000, i.e., the launching end 1100 drives the launching site 4200 during the process of inserting the pulling member 1000 into the launcher 4000, so that the launching site 4200 drives the to-be-launched object 200 to launch. The launching of the to-be-launched object 200 can also be achieved by the pulling process of the pulling member 1000, i.e., the launching end 1100 drives the launching site 4200 during the process of pulling the pulling member 1000 out of the launcher 4000, so that the launching site 4200 drives the to-be-launched object 200 to launch.
[0263] Optionally, the pulling member 1000 is adapted to drive the accelerating position 4100 first and then the launching position 4200 when being pulled out, so that the accelerating position 4100 drives the to-be-launched object 200 to rotate and then the launching position 4200 drives the to-be-launched object 200 to launch.
[0264] When the pulling member 1000 is pulled out of the launcher 4000 (i.e. the pulling member 1000 is pulled out of the launcher 4000 from the state of being inserted into the launcher 4000), the pulling member 1000 drives the accelerating position 4100 through the accelerating end 1200 first and then drives the launching position 4200 through the launching end 1100, the accelerating end 1200 drives the accelerating position 4100 so that the accelerating position 4100 drives the to-be-launched object 200 to rotate, and the launching end 1100 drives the launching position 4200 so that the launching position 4200 drives the to-be-launched object 200 to launch. Since the pulling member 1000 drives the accelerating position 4100 first and then the launching position 4200 when being pulled out, the to-be-launched object 200 rotates on the launcher 4000 under the action of the accelerating end 1200 as the pulling member 1000 is pulled out, until the pulling member 1000 is pulled out to a preset position, the launching end 1100 drives the launching position 4200, so that the launching position 4200 drives the to-be-launched object 200 to launch, and the to-be-launched object 200 still maintains a rotating state when being launched, which is conducive to improving the playability and interest. Similarly, the pulling member 1000 can also be adapted to drive the accelerating position 4100 first and then the launching position 4200 when being inserted, which will not be repeated.
[0265] The to-be-launched object 200 still maintains a rotating state after being launched and falling to the ground, and the to-be-launched object 200 will not be tilted until it stops rotating, which is conducive to improving the play interest. For example, a plurality of (two or more) to-be-launched objects 200 are launched and fall to the concave arc region, and 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 to-be-launched objects 200, which can form a competitive confrontation and improve the playability. In particular, the faster the pulling member 1000 is pulled out, the more conducive to accelerating the to-be-launched object 200, and the faster the to-be-launched object 200 rotates, the more conducive to the competitive confrontation.
[0266] In combination with FIG. 40 to FIG. 44 As shown in FIG. 8, in some embodiments, the to-be-launched object 200 is adapted to be launched forward; the launcher 4000 is provided with guide holes 4400, and the pulling member 1000 is adapted to be inserted into and pulled out of the guide holes 4400. At least two guide holes 4400 are arranged alternately in the left-right direction. When the user holds the handle 5000, different operation experiences can be generated by inserting the pulling member 1000 into different guide holes 4400 without changing the holding point, and the user can select according to the actual situation.
[0267] In combination with FIG. 47As shown, in some embodiments, the accelerating end 1200 is adapted to drive the accelerating gear 4110 to rotate.
[0268] When the pulling member 1000 is connected to the launcher 4000, the pulling member 1000 drives the accelerating gear 4110 to rotate through the accelerating end 1200, so that the linear movement of the pulling member 1000 is converted into the rotation of the accelerating gear 4110, the accelerating end 1200 can directly drive the accelerating gear 4110 to rotate or indirectly drive the accelerating gear 4110 to rotate.
[0269] For example, the accelerating position 4100 further comprises a first transmission gear 4120, the accelerating end 1200 is adapted to engage with the first transmission gear 4120 to drive the first transmission gear 4120 to rotate, the first transmission gear 4120 engages with the accelerating gear 4110 to drive the accelerating gear 4110 to rotate, the accelerating end 1200 is adapted to engage with the first transmission gear 4120, i.e. the accelerating end 1200 has a gear structure, the movement of the pulling member 1000 is linear movement, which can be converted into the rotation of the first transmission gear 4120 through the cooperation of the accelerating end 1200 and the first transmission gear 4120, through such arrangement, the pulling member 1000 can be moved more quickly, so that the rotation speed of the first transmission gear 4120 is faster, and the rotation speed of the to-be-launched object 200 is faster. The first transmission gear 4120 engages with the accelerating gear 4110, so that the accelerating end 1200 drives the first transmission gear 4120 to rotate, the first transmission gear 4120 drives the accelerating gear 4110 to rotate, and the accelerating gear 4110 drives the to-be-launched object 200 to rotate.
[0270] In combination FIG. 45 to FIG. 46 As shown, in some embodiments, the launching position 4200 comprises a pushing plate 4210, a locking member 4220 and a first elastic member 4291, when the to-be-launched object 200 is installed on the launcher 4000, the to-be-launched object 200 is adapted to abut against the pushing plate 4210 and drive the pushing plate 4210 to move, the locking member 4220 is adapted to lock the pushing plate 4210 when the pushing plate 4210 moves to a preset position, and is adapted to be driven by a matched part to unlock the pushing plate 4210, the first elastic member 4291 is adapted to generate a force on the pushing plate 4210 to drive the pushing plate 4210 to reset when the locking member 4220 unlocks the pushing plate 4210, so that the pushing plate 4210 drives the to-be-launched object 200 to launch.
[0271] Specifically, the to-be-launched object 200 is installed on the launcher 4000 in a moving manner, see FIG. 40The 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 the 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 at this time (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 drive the launch object 200 to be launched. It is understandable that the force exerted by the first elastic element 4291 on the target can be direct or indirect. That is, the force exerted by the first elastic element 4291 on the push plate 4210 can be applied directly to the push plate 4210 or indirectly. The same applies to the forces exerted by other elastic elements in this article, and will not be repeated here. The launching position 4200 can also be provided with a second elastic element 4292. The second elastic element 4292 acts on the locking element 4220 to drive the locking element 4220 to reset after the launch object 200 is launched, so as to facilitate locking the push plate 4210 when the launch object 200 is installed again.
[0272] The locking member 4220 can be driven by the first release mechanism 5100, the second release mechanism 3600 and the launching end 1100 of the pulling member 1000, thereby unlocking the push plate 4210.
[0273] Specifically, when the handle 5000 is included, the first release mechanism 5100 of the handle 5000 is adapted to actuate the locking member 4220 to unlock the push plate 4210.
[0274] When the second body 3000 is included, the second release mechanism 3600 of the second body 3000 is adapted to drive the locking member 4220 to unlock the push plate 4210.
[0275] When the pull member 1000 is included, the launching end 1100 of the pull member 1000 is adapted to drive the locking member 4220 to unlock the push plate 4210.
[0276] Combination FIG. 12 to FIG. 15As shown, when the first body 2000 and the launcher 4000 are connected, the launching of the to-be-launched object 200 is achieved by the first releasing mechanism 5100 driving the locking member 4220 to unlock the push plate 4210. The user can operate the first releasing mechanism 5100, the first releasing mechanism 5100 drives 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 (move forward). When the push plate 4210 resets, it supports the to-be-launched object 200, thereby generating a force on the to-be-launched object 200, so that the to-be-launched object 200 is launched.
[0277] In combination FIG. 36 to FIG. 38 As shown, when the second body 3000 and the launcher 4000 are connected, the launching of the to-be-launched object 200 is achieved by the second releasing mechanism 3600 driving the locking member 4220 to unlock the push plate 4210. The user can operate the second releasing mechanism 3600, the second releasing mechanism 3600 drives 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 second elastic member 4292 is released, and the second elastic member 4292 can drive the push plate 4210 to reset (move forward). When the push plate 4210 resets, it supports the to-be-launched object 200, thereby generating a force on the to-be-launched object 200, so that the to-be-launched object 200 is launched.
[0278] In combination FIG. 45 to FIG. 47 As shown, when the puller 1000 and the launcher 4000 are connected, the launching of the to-be-launched object 200 needs to be achieved by the launching end 1100 of the puller 1000 driving the locking member 4220 to unlock the push plate 4210. When the puller 1000 moves, the launching end 1100 drives 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 (move forward). When the push plate 4210 resets, it supports the to-be-launched object 200, thereby generating a force on the to-be-launched object 200, so that the to-be-launched object 200 is launched.
[0279] In combination FIG. 12 to FIG. 15 As shown, in some embodiments, the launching site 4200 further comprises a rotating member 4230, the rotating member 4230 is provided with a lug 4234 and a second contact portion 4232, the first releasing mechanism 5100 comprises a reciprocating push member 5110, the push member 5110 is suitable for pushing the lug 4234 to rotate the rotating member 4230, and the second contact portion 4232 drives the locking member 4220 to unlock the push plate 4210.
[0280] Specifically, the rotating member 4230 is designed to be rotatable, the lug 4234 and the second 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 shaft portion 4233 and the lug 4234 and the second contact portion 4232 are arranged on the shaft portion 4233, and the rotation axis of the rotating member 4230 is formed by the shaft portion 4233. The first release mechanism 5100 comprises a push member 5110 which is reciprocable, as shown in FIG. 15 When the push member 5110 moves forward, the push lug 4234 pushes the rotating member 4230 to rotate counterclockwise, and the counterclockwise rotation of the rotating member 4230 pushes the second contact portion 4232 to push the locking member 4220, and the locking member 4220 is pressed to unlock the push plate 4210. By arranging the rotating member 4230, the arrangement and cooperation between the structures are facilitated.
[0281] In combination with FIG. 36 to FIG. 38 , in some embodiments, the second release mechanism 3600 comprises a trigger 3610 which is reciprocable, and the trigger 3610 is adapted to drive the locking member 4220 to unlock the push plate 4210. As shown in FIG. 38 , the trigger 3610 is reciprocable in the front-rear direction, and when the trigger 3610 moves rearward, the trigger 3610 drives the locking member 4220 to unlock the push plate 4210. The trigger 3610 and the locking member 4220 can be in direct contact, or an additional component can be arranged to transmit the drive.
[0282] In combination with FIG. 14 , FIG. 45 and FIG. 46 , in some embodiments, the launching site 4200 further comprises a rotating member 4230, and the launching end 1100 is adapted to drive the rotating member 4230 to rotate when the pulling member 1000 moves in one of the inserting and pulling directions, so that the rotating member 4230 drives the locking member 4220 to unlock the push plate 4210, and the launching end 1100 is adapted to drive the rotating member 4230 to rotate reversely (reversely means that the rotating direction of the rotating member 4230 when the pulling member 1000 is inserted is opposite to the rotating direction of the rotating member 4230 when the pulling member 1000 is pulled out) when the pulling member 1000 moves in the other of the inserting and pulling directions, so that the rotating member 4230 and the locking member 4220 are separated.
[0283] Hereinafter, the case that the launching end 1100 drives the rotating member 4230 to rotate to drive the locking member 4220 to unlock the push plate 4210 when the pulling member 1000 is pulled out, and drives the rotating member 4230 to rotate reversely to separate the rotating member 4230 and the locking member 4220 when the pulling member 1000 is inserted is taken as an example for description.
[0284] For example, the to-be-launched object 200 is first installed on the launcher 4000, at this time the push plate 4210 is locked by the locking member 4220, then the pulling member 1000 is inserted into the launcher 4000, when the pulling member 1000 is inserted, the pulling member 1000 drives the rotating member 4230 to rotate through the launching end 1100 and makes the rotating member 4230 and the locking member 4220 separate, the rotating member 4230 does not act on the locking member 4220 to unlock the push plate 4210, and when the pulling member 1000 is pulled out, the pulling member 1000 drives the rotating member 4230 to rotate (in the opposite direction) through the launching end 1100, so that the rotating member 4230 acts on the locking member 4220 to unlock the push plate 4210. The pulling member 1000 can drive the rotating member 4230 to rotate when it is inserted and pulled out, and the rotating direction of the rotating member 4230 when the pulling member 1000 is inserted is opposite to the rotating direction of the rotating member 4230 when the pulling member 1000 is pulled out, so that the locking member 4220 can be kept from being unlocked when the pulling member 1000 is inserted, and the locking member 4220 can be unlocked when the pulling member 1000 is pulled out.
[0285] Alternatively, the pulling member 1000 and the rotating member 4230 are matched through the following scheme. As shown in FIG. 10, in some embodiments, the rotating member 4230 is provided with a first contact portion 4231 and a second contact portion 4232, and the launching end 1100 constitutes a groove; FIG. 45 to FIG. 48
[0286] The first contact portion 4231 is adapted to be sequentially clamped into and out of the groove when the pulling member 1000 moves in one of the insertion and pulling-out directions, so that the rotating member 4230 rotates and the second contact portion 4232 drives the locking member 4220 to unlock the push plate 4210; the first contact portion 4231 is adapted to be sequentially clamped into and out of the groove when the pulling member 1000 moves in the other of the insertion and pulling-out directions, so that the rotating member 4230 reversely rotates and the second contact portion 4232 and the locking member 4220 separate.
[0287] Hereinafter, the case that the launching end 1100 drives the rotating member 4230 to rotate when the pulling member 1000 is pulled out, so that the rotating member 4230 drives the locking member 4220 to unlock the push plate 4210, and drives the rotating member 4230 to reversely rotate when the pulling member 1000 is inserted, so that the rotating member 4230 and the locking member 4220 separate, is taken as an example for description.
[0288] The first contact portion 4231 and the second contact portion 4232 are adapted to rotate around the rotation axis of the rotating member 4230, for example, the rotating member 4230 comprises a middle shaft portion 4233 and the first contact portion 4231 and the second contact portion 4232 are arranged on the middle shaft portion 4233, the rotation axis of the rotating member 4230 is formed by the middle shaft portion 4233, and the first contact portion 4231 and the second contact portion 4232 present a certain included angle in space.
[0289] Referring to the orientation shown in FIG. 49 and FIG. 50 , when the pulling member 1000 is inserted, the first contact portion 4231 is clamped into the groove, and with the continuous insertion of the pulling member 1000, the first contact portion 4231 is disengaged from the groove, and in the process of disengaging the first contact portion 4231 from the groove, the rotating member 4230 is rotated (clockwise), and the rotation of the rotating member 4230 causes the second contact portion 4232 to rotate to separate the second contact portion 4232 from the locking member 4220, and because the second contact portion 4232 is separated from the locking member 4220, the second contact portion 4232 cannot drive the locking member 4220 to unlock the push plate 4210, so that the locking member 4220 remains locked to the push plate 4210. When the pulling member 1000 is pulled out, the first contact portion 4231 is clamped into the groove, and with the continuous pulling out of the pulling member 1000, the first contact portion 4231 is disengaged from the groove, and in the process of disengaging the first contact portion 4231 from the groove, the rotating member 4230 is rotated (counterclockwise), and the rotation of the rotating member 4230 causes the second contact portion 4232 to rotate to drive the locking member 4220 to unlock the push plate 4210.
[0290] Referring to the orientation shown in FIG. 45 to FIG. 50 , in some embodiments, the launching site 4200 further comprises a third elastic member 4293 adapted to generate a force on the rotating member 4230 to make the rotating member 4230 have a rotation tendency, the rotating member 4230 is adapted to abut against the pulling member 1000 under the action of the rotation tendency, and is adapted to drive the first contact portion 4231 to be clamped into the groove under the action of the rotation tendency when the groove and the first contact portion 4231 correspond.
[0291] Hereinafter, the rotating member 4230 is driven to rotate by the launching end 1100 when the pulling member 1000 is pulled out to drive the locking member 4220 to unlock the push plate 4210, and the rotating member 4230 is driven to rotate in the opposite direction by the launching end 1100 when the pulling member 1000 is inserted to separate the rotating member 4230 and the locking member 4220.
[0292] Referring to the orientation shown in FIG. 49 and FIG. 50The first contact portion 4231 is protruded downward before the pulling member 1000 is inserted into the launcher 4000, and the locking member 4220 is located on the anticlockwise rotation path of the second contact portion 4232. When the rotating member 4230 rotates clockwise, the second contact portion 4232 is away from the locking member 4220. When the rotating member 4230 rotates anticlockwise, the second contact portion 4232 drives the locking member 4220 to unlock the push plate 4210.
[0293] That is, when the pulling member 1000 is inserted into the launcher 4000, the pulling member 1000 pushes the first contact portion 4231 to make the rotating member 4230 rotate clockwise until the groove corresponds to the first contact portion 4231. The third elastic member 4293 drives the rotating member 4230 to rotate anticlockwise to make the first contact portion 4231 be clamped in the groove (at this time, the first contact portion 4231 is protruded downward). With the continuous insertion of the pulling member 1000, the first contact portion 4231 is pushed to make the rotating member 4230 rotate clockwise to make the first contact portion 4231 be out of the groove, and the first contact portion 4231 and the pulling member 1000 slide and abut under the action of the third elastic member 4293.
[0294] When the pulling member 1000 is pulled out of the launcher 4000, the first contact portion 4231 and the pulling member 1000 slide and abut under the action of the third elastic member 4293 until the groove corresponds to the first contact portion 4231. The third elastic member 4293 drives the rotating member 4230 to rotate anticlockwise to make the first contact portion 4231 be clamped in the groove (at this time, the first contact portion 4231 is protruded downward). With the continuous pulling of the pulling member 1000, the first contact portion 4231 is pushed to make the rotating member 4230 rotate anticlockwise to make the first contact portion 4231 be out of the groove. In this process, the rotating member 4230 drives the locking member 4220 to unlock the push plate 4210 through the second contact portion 4232. When the pulling member 1000 is completely pulled out, the rotating member 4230 is driven to rotate clockwise by the third elastic member 4293 to reset the first contact portion 4231 to protrude downward.
[0295] The application further discloses a launching toy, which combines the above-mentioned launching device 100 with the to-be-launched object 200. FIG. 1 to FIG. 50 As shown in the figure, the launching toy comprises the to-be-launched object 200 and the launching device 100. 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.
[0296] The above-mentioned is only the preferred embodiment of the application, and does not limit the patent scope of the application. 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 launching device (100) comprising: a launcher (4000) adapted for mounting a to-be-launched object (200) thereon, the launcher (4000) comprising an accelerating position (4100) and a launching position (4200), the launching position (4200) being used for mounting and launching the to-be-launched object (200), and the accelerating position (4100) being used for driving the to-be-launched object (200) to rotate; an accessory detachably mounted on the launcher (4000), the accessory being adapted to cooperate with the launching position (4200) and / or the accelerating position (4100) so that the launcher (4000) drives the to-be-launched object (200) to rotate and / or launches the to-be-launched object (200).
2. The transmitting apparatus (100) of claim 1, characterized by The launcher (4000) further comprises at least one connecting position adapted for detachable connection with the accessory, and the launching device (100) has different launching modes according to different accessories connected on the connecting position.
3. The transmitting apparatus (100) of claim 1, characterized by At least one accessory is detachably mounted on the launcher (4000), and the launching device (100) has different launching modes according to different accessories mounted.
4. The transmitting apparatus (100) of claim 1, characterized by The accelerating position (4100) comprises an accelerating gear (4110), and the accessory is adapted to drive the accelerating gear (4110) to rotate, and the accelerating gear (4110) is adapted to drive the to-be-launched object (200) to rotate.
5. The transmitting apparatus (100) of claim 1, characterized by The accessory comprises a first main body (2000), and the first main body (2000) comprises a first sliding handle (2100) which is adapted to reciprocate. When the first main body (2000) is connected with the launcher (4000), the first sliding handle (2100) is adapted to drive the accelerating position (4100) so that the accelerating position (4100) drives the to-be-launched object (200) to rotate.
6. The transmitting apparatus (100) of claim 5, characterized by The first sliding handle (2100) is adapted to reciprocate along a first direction and a second direction, the first direction and the second direction being opposite, and the first main body (2000) further comprises a first clutch mechanism (2200) and a first stop mechanism (2300), the first stop mechanism (2300) having a first stop state and a second stop state. When the first stop mechanism (2300) is in the first stop state, the first sliding handle (2100) is adapted to drive the first clutch mechanism (2200) to rotate the accelerating gear (4110) of the accelerating position (4100) when the first sliding handle (2100) moves along the first direction, and the first sliding handle (2100) is adapted to drive the first clutch mechanism (2200) to separate from the accelerating gear (4110) of the accelerating position (4100) when the first sliding handle (2100) moves along the second direction. When the first stop mechanism (2300) is in the second stop state, the first handlebar (2100) is adapted to drive the first clutch mechanism (2200) to move in the first direction, so as to separate the first clutch mechanism (2200) and the acceleration gear (4110) of the acceleration position (4100), and the first handlebar (2100) is adapted to drive the first clutch mechanism (2200) to move in the second direction, so as to drive the acceleration gear (4110) of the acceleration position (4100) to rotate reversely.
7. The transmitting apparatus (100) according to claim 6, characterized in that The first clutch mechanism (2200) comprises: a first movable member (2220) rotatably arranged; a first driving gear (2210) rotatably arranged coaxially with the first movable member (2220); a first clutch gear (2230) rotatably arranged on the first movable member (2220) and engaged with the first driving gear (2210); and a second clutch gear (2240) rotatably arranged on the first movable member (2220) and engaged with the first driving gear (2210); When the first stop mechanism (2300) is in the first stop state: the first handlebar (2100) is adapted to drive the first driving gear (2210) to rotate in the first direction, so as to swing the first movable member (2220) and make the first clutch gear (2230) and the acceleration gear (4110) engaged in transmission, and the second clutch gear (2240) and the acceleration gear (4110) separated; the first handlebar (2100) is adapted to drive the first driving gear (2210) to rotate reversely in the second direction, so as to swing the first movable member (2220) reversely and be stopped by the first stop mechanism (2300), 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; When the first stop mechanism (2300) is in the second stop state: the first handlebar (2100) is adapted to drive the first driving gear (2210) to rotate in the first direction, so as to swing the first movable member (2220) and be stopped by the first stop mechanism (2300), 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; the first handlebar (2100) is adapted to drive the first driving gear (2210) to rotate reversely in the second direction, so as to swing the first movable member (2220) reversely, and make the first clutch gear (2230) and the acceleration gear (4110) separated in transmission, and the second clutch gear (2240) and the acceleration gear (4110) engaged in transmission.
8. The transmitting apparatus (100) according to claim 7, characterized in that The first stop mechanism (2300) comprises a clamping groove (2310), and the first movable piece (2220) is inserted into the clamping groove (2310); When the first stop mechanism (2300) is in the first stop state, the first 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 separated from the acceleration gear (4110) respectively; When the first stop mechanism (2300) is in the second stop state, the first 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 separated from the acceleration gear (4110) respectively.
9. The transmitting apparatus (100) according to claim 8, characterized in that The first movable piece (2220) is rotatably arranged to switch the first stop state and the second stop state, so that the clamping groove (2310) changes position.
10. The transmitting apparatus (100) according to claim 7, characterized in that The first main body (2000) further comprises a first rack (2101), the first handle (2100) is connected with the first rack (2101) and can drive the first rack (2101) to move back and forth, and the first rack (2101) is in transmission connection with the first drive gear (2210).
11. The transmitting apparatus (100) according to claim 5, characterized in that The launching device (100) further comprises a first extension component (2500), the first extension component (2500) is adapted to be detachably connected with the first main body (2000), and the first handle (2100) is adapted to move back and forth to the first extension component (2500) when the first extension component (2500) and the first main body (2000) are connected.
12. The transmitting apparatus (100) according to claim 11, characterized by The first main body (2000) further comprises a first limiting mechanism (2400), the first limiting mechanism (2400) is adapted to avoid the first handle (2100) when the first extension component (2500) and the first main body (2000) are connected, so that the first handle (2100) can move back and forth to the first extension component (2500), and the first limiting mechanism (2400) is also adapted to stop the first handle (2100) when the first extension component (2500) and the first main body (2000) are detached, so as to prevent the first handle (2100) from being pulled out.
13. The transmitting apparatus (100) according to claim 12, characterized in that The first extension component (2500) comprises a first protruding rod (2510), and the first limiting mechanism (2400) comprises a first movable pin (2410); The first protruding rod (2510) is adapted to drive the first movable pin (2410) to move away from the movement path of the first handle (2100) to avoid the first handle (2100) when the first extension component (2500) and the first main body (2000) are connected; The first movable pin (2410) is adapted to move into the movement path of the first handle (2100) under the action of the elasticity to stop the first handle (2100) when the first extension component (2500) and the first main body (2000) are detached.
14. The transmitting apparatus (100) according to claim 1, characterized in that The accessory comprises a handle (5000) adapted for holding, the handle (5000) comprising a first release mechanism (5100); When the handle (5000) is connected with the launcher (4000), the first release mechanism (5100) is adapted to drive the launching position (4200) so that the launching position (4200) drives the object (200) to launch.
15. The transmitting apparatus (100) according to claim 1, characterized in that The accessory comprises a second body (3000), the second body (3000) comprising a second slider (3100) and a second release mechanism (3600), the second slider (3100) being reciprocally movable; When the second body (3000) is connected with the launcher (4000), the second slider (3100) is adapted to drive the accelerating position (4100) so that the accelerating position (4100) drives the object (200) to rotate, and the second release mechanism (3600) is adapted to drive the launching position (4200) so that the launching position (4200) drives the object (200) to launch.
16. The transmitting apparatus (100) according to claim 15, characterized by The second slider (3100) is adapted to reciprocally move along a third direction and a fourth direction, the third direction being opposite to the fourth direction, the second body (3000) further comprising a second clutch mechanism (3200) and a second stop mechanism (3300), the second stop mechanism (3300) having a third stop state and a fourth stop state; When the second stop mechanism (3300) is in the third stop state, the second slider (3100) is adapted to drive the second clutch mechanism (3200) when moving along the third direction, so that the second clutch mechanism (3200) drives the accelerating gear (4110) of the accelerating position (4100) to rotate, and the second slider (3100) is adapted to drive the second clutch mechanism (3200) when moving along the fourth direction, so that the second clutch mechanism (3200) is separated from the accelerating gear (4110) of the accelerating position (4100); When the second stop mechanism (3300) is in the fourth stop state, the second slider (3100) is adapted to drive the second clutch mechanism (3200) when moving along the third direction, so that the second clutch mechanism (3200) is separated from the accelerating gear (4110) of the accelerating position (4100), and the second slider (3100) is adapted to drive the second clutch mechanism (3200) when moving along the fourth direction, so that the second clutch mechanism (3200) drives the accelerating gear (4110) of the accelerating position (4100) to rotate reversely.
17. The transmitting apparatus (100) according to claim 16, characterized by The second clutch mechanism (3200) comprises: a second movable member (3220) rotatably arranged; a second driving gear (3210) rotatably arranged coaxially with the second movable member (3220); a third clutch gear (3230) rotatably arranged on the second movable member (3220) and meshing with the second driving gear (3210); and a fourth clutch gear (3240) rotatably arranged on the second movable member (3220) and meshing with the third clutch gear (3230). A fourth clutch gear (3240) rotatably arranged on the second movable member (3220) and engaged with the second driving gear (3210); When the second stop mechanism (3300) is in the third stop state: The second slider (3100) is adapted to drive the second driving gear (3210) to rotate when moving in the third direction, so as to make the second movable member (3220) swing and make the third clutch gear (3230) and the acceleration gear (4110) engage transmission, and the fourth clutch gear (3240) and the acceleration gear (4110) separate; The second slider (3100) is adapted to drive the second driving gear (3210) to rotate in reverse when moving in the fourth direction, so as to make the second movable member (3220) swing in reverse and be stopped by the second stop mechanism (3300), so that the third clutch gear (3230) and the acceleration gear (4110) separate, and the fourth clutch gear (3240) and the acceleration gear (4110) separate; When the second stop mechanism (3300) is in the fourth stop state: The second slider (3100) is adapted to drive the second driving gear (3210) to rotate when moving in the third direction, so as to make the second movable member (3220) swing and be stopped by the second stop mechanism (3300), so that the third clutch gear (3230) and the acceleration gear (4110) separate, and the fourth clutch gear (3240) and the acceleration gear (4110) separate; The second slider (3100) is adapted to drive the second driving gear (3210) to rotate in reverse when moving in the fourth direction, so as to make the second movable member (3220) swing in reverse and make the third clutch gear (3230) and the acceleration gear (4110) separate, and the fourth clutch gear (3240) and the acceleration gear (4110) engage transmission.
18. The transmitting apparatus (100) according to claim 17, characterized in that The second stop mechanism (3300) comprises a first stop groove (3310) and a second stop groove (3320); When the second stop mechanism (3300) is in the third stop state, the second movable member (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 second stop mechanism (3300) is in the fourth stop state, the second movable member (3220) is inserted into the second stop groove (3320) to be adapted to be stopped by the second stop groove (3320) when swinging.
19. The transmitting apparatus (100) according to claim 18, characterized by The first stop groove (3310) and the second stop groove (3320) are connected, and the second stop mechanism (3300) is adapted to reciprocate, so that the second movable member (3220) can move from the first stop groove (3310) to the second stop groove (3320), and from the second stop groove (3320) to the first stop groove (3310).
20. The transmitting apparatus (100) according to claim 17, characterized by The second main body (3000) further comprises a second rack (3101), the second slider (3100) and the second rack (3101) are connected and can drive the second rack (3101) to move reciprocatingly, and the second rack (3101) and the second drive gear (3210) are in transmission connection.
21. The transmitting apparatus (100) according to claim 15, characterized by The second main body (3000) further comprises a second limiting mechanism (3400). The second slider (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 second slider (3100), and the first gear mechanism (3110) and the second gear mechanism (3120) are adapted to move with the second slider (3100) and can be in abutment with the second limiting mechanism (3400) selectively.
22. The transmitting apparatus (100) according to claim 21, characterized by The second main body (3000) further comprises a second rack (3101), the second slider (3100) and the second rack (3101) are movably connected and can drive the second rack (3101) to move reciprocatingly, and the second rack (3101) and the acceleration position (4100) are in transmission connection. The second 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 second limiting mechanism (3400) when moving relative to the second slider (3100).
23. The transmitting apparatus (100) according to claim 22, characterized in that The second slider (3100) further comprises a sliding groove (3130) and a locking member (3140), the second rack (3101) is movably connected to the sliding groove (3130), and the locking member (3140) is adapted to lock and unlock the movement of the second rack (3101) relative to the second slider (3100). The second rack (3101) is adapted to move from one end of the sliding groove (3130) to the other end to drive one of the first gear mechanism (3110) and the second gear mechanism (3120) to switch to a position in abutment with the second limiting mechanism (3400) when the locking member (3140) is unlocked, and is adapted to move from the other end of the sliding groove (3130) to the one end 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 second limiting mechanism (3400) when the locking member (3140) is unlocked.
24. The transmitting apparatus (100) according to claim 15, characterized by The launching device (100) further comprises a second extension component (3500), the second extension component (3500) is adapted to be detachably connected with the second main body (3000), and the second slider (3100) is adapted to move reciprocatingly to the second extension component (3500) when the second extension component (3500) and the second main body (3000) are connected.
25. The transmitting apparatus (100) according to claim 24, characterized by The second main body (3000) further comprises a second limiting mechanism (3400) adapted to avoid the second slider (3100) when the second extension component (3500) and the second main body (3000) are connected, so that the second slider (3100) can reciprocally move to the second extension component (3500), and adapted to stop the second slider (3100) when the second extension component (3500) and the second main body (3000) are detached, so as to prevent the second slider (3100) from coming out.
26. The transmitting apparatus (100) according to claim 25, characterized by The second extension component (3500) comprises a second protruding rod (3510), and the second limiting mechanism (3400) comprises a second movable pin (3410). The second protruding rod (3510) is adapted to drive the second movable pin (3410) to move away from the moving path of the second slider (3100) to avoid the second slider (3100) when the second extension component (3500) and the second main body (3000) are connected. The second movable pin (3410) is adapted to move into the moving path of the second slider (3100) to stop the second slider (3100) under the action of the elasticity when the second extension component (3500) and the second main body (3000) are detached.
27. The transmitting apparatus (100) according to claim 1, characterized in that The accessory comprises a pulling member (1000) adapted to be inserted into and pulled out of the launcher (4000), and the pulling member (1000) comprises an accelerating end (1200) and a launching end (1100). When the pulling member (1000) and the launcher (4000) are connected, the accelerating end (1200) is adapted to drive the accelerating position (4100) in the process of inserting and / or pulling out the pulling member (1000) into and / or out of the launcher (4000), so that the accelerating position (4100) drives the to-be-launched object (200) to rotate, and the launching end (1100) is adapted to drive the launching position (4200) when the pulling member (1000) is inserted into and / or pulled out of the launcher (4000), so that the launching position (4200) drives the to-be-launched object (200) to launch.
28. The transmitting apparatus (100) according to claim 27, characterized by The to-be-launched object (200) is adapted to be launched forward, and the launcher (4000) is provided with guide holes (4400), the pulling member (1000) is adapted to be inserted into and pulled out of the guide holes (4400), and at least two of the guide holes (4400) are arranged alternately in the left-right direction.
29. The transmitting apparatus (100) according to claim 27, characterized by The accelerating end (1200) is adapted to drive the accelerating gear (4110) of the accelerating position (4100) to rotate.
30. The transmitting apparatus (100) according to claim 29, characterized by The accelerating position (4100) further comprises a first transmission gear (4120), and the accelerating end (1200) is adapted to mesh with the first transmission gear (4120) to drive the first transmission gear (4120) to rotate, and the first transmission gear (4120) meshes with the accelerating gear (4110) to drive the accelerating gear (4110) to rotate.
31. The transmitting apparatus (100) according to claim 27, characterized by The pulling member (1000) is adapted to drive the accelerating position (4100) first and then the launching position (4200) when pulling out. Or, the pulling member (1000) is adapted to drive the accelerating position (4100) first and then the launching position (4200) when pulling in.
32. The transmitting apparatus (100) according to any one of claims 1 to 31, characterized in that The launching position (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 the push plate (4210) 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 adapted to be driven by the accessory to unlock the push plate (4210); a first elastic member (4291) adapted to generate 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 launch.
33. The transmitting apparatus (100) according to claim 32, characterized by When the handle (5000) is included, the first release mechanism (5100) of the handle (5000) is adapted to drive the locking member (4220) to unlock the push plate (4210); and / or, when the second body (3000) is included, the second release mechanism (3600) of the second body (3000) is adapted to drive the locking member (4220) to unlock the push plate (4210); and / or, when the pulling member (1000) is included, the launching end (1100) of the pulling member (1000) is adapted to drive the locking member (4220) to unlock the push plate (4210).
34. The transmitting apparatus (100) according to claim 32, characterized by The launching position (4200) further comprises a rotating member (4230), the rotating member (4230) is provided with a lug (4234) and a second contact portion (4232); When the handle (5000) is included, the first release mechanism (5100) of the handle (5000) comprises a reciprocating push member (5110) adapted to push the lug (4234) to rotate the rotating member (4230) and drive the second contact portion (4232) to unlock the push plate (4210) of the locking member (4220).
35. The transmitting apparatus (100) according to claim 32, characterised in that When the second body (3000) is included, the second release mechanism (3600) of the second body (3000) comprises a reciprocating trigger (3610) adapted to drive the locking member (4220) to unlock the push plate (4210).
36. The transmitting apparatus (100) according to claim 32, characterised in that The launching position (4200) further comprises a rotating member (4230); When the pulling member (1000) is included, the launching end (1100) of the pulling member (1000) is adapted to drive the rotating member (4230) to rotate when the pulling member (1000) moves in one of the directions of insertion and disengagement, so that the rotating member (4230) drives the locking member (4220) to unlock the push plate (4210), and the launching end (1100) is adapted to drive the rotating member (4230) to rotate reversely when the pulling member (1000) moves in the other of the directions of insertion and disengagement, so that the rotating member (4230) and the locking member (4220) are separated.
37. The transmitting apparatus (100) according to claim 36, characterised in that The rotating member (4230) is provided with a first contact portion (4231) and a second contact portion (4232), and the launching end (1100) forms a groove; The first contact portion (4231) is adapted to be sequentially clamped into and out of the groove when the pulling member (1000) moves in one of the directions of insertion and disengagement, so as to drive the rotating member (4230) to rotate, and the second contact portion (4232) drives the locking member (4220) to unlock the push plate (4210); The first contact portion (4231) is adapted to be sequentially clamped into and out of the groove when the pulling member (1000) moves in the other of the directions of insertion and disengagement, so as to drive the rotating member (4230) to rotate reversely, and the second contact portion (4232) and the locking member (4220) are separated.
38. The transmitting apparatus (100) according to claim 37, characterized by The launching position (4200) further comprises a third elastic member (4293) adapted to generate a force on the rotating member (4230) to make the rotating member (4230) have a tendency to rotate, and the rotating member (4230) is adapted to abut against the pulling member (1000) under the action of the rotating tendency, and adapted to drive the first contact portion (4231) to be clamped into the groove under the action of the rotating tendency when the groove and the first contact portion (4231) correspond.
39. A launching toy comprising: The launching device (100) of any one of claims 1 to 38 is included. The launching device (100) of any one of claims 1 to 38 is included.