Camera deformation emitter
By designing a camera deformation transmitter, the problem of single shape of the existing transmitter is solved, and the diversity of playing and shooting games in the camera form is achieved, enhancing children's fun and hands-on ability.
Patent Information
- Application Number
- CN202421131372.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-22
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-05-22
AI Technical Summary
Existing launchers are usually in the shape of guns, with a small audience range, and are not suitable for children with weak hands-on ability to deform, limiting their playability.
A camera deformation launcher is designed. It is the same shape as the camera in an undeformed state. It can be used as a camera model for children to play house games. After simple deformation, it can be used as a launcher to shoot games. The bullet is launched through loading knobs, transmission components, trigger buttons and other components.
It enhances the fun and playability of the launcher, is suitable for children of different ages to play, and improves imitation and hands-on ability.
Smart Images

Figure CN223055099U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of deformable toys, and particularly relates to a camera deformable launcher. Background Art
[0002] Deformable toys are toys with strong playability. Their shapes can be transformed through deformation methods such as hiding, rotating, and assembling. This can not only effectively improve children's interest in playing, but also enhance their practical ability and perception ability of spatial transformation during the playing process. A deformable launcher is a type of deformable toy. Due to its shooting effect of bullet flying, it is highly interesting and deeply loved by children. However, the existing launchers are usually in the shape of a gun body. Launchers in the shape of a gun body usually only attract the attention of boys, and the audience range is small. If it is deformed into other shaped toys, it requires a relatively large number of deformation processes, which is not suitable for children with weak practical ability, resulting in certain limitations in its playability. Content of the Utility Model
[0003] To solve the problems in the above background art, the utility model provides a camera deformable launcher, which has the same shape as a camera in the undeformed state and can be used as a camera model for children to play house-playing games. After simple deformation and loading with bullets, it can be used as a launcher for children to play shooting games, with relatively strong interest.
[0004] The utility model adopts the following technical solutions:
[0005] A camera deformable launcher includes a camera housing. Inside the camera housing, a loading component and a firing component are arranged along the length direction. A trigger component is arranged at one end of the firing component far from the loading component. A loading knob is arranged on the outer side wall of the camera housing;
[0006] The loading knob is connected to the firing component through a transmission component. Rotating the loading knob makes the firing component move away from the loading component and engage with the trigger component;
[0007] The trigger component includes a trigger button arranged on the outer side wall of the camera housing. Pressing the trigger button releases the engagement between the firing component and the trigger component, causing the firing component to move forward to drive the bullet in the loading component to be launched from the launch port.
[0008] Further, the loading component includes a loading chamber, an end cap horizontally movably arranged at the opening of the loading chamber, and a pushing member movably arranged in the loading chamber;
[0009] One end of the loading chamber far from the pushing member is a launch chamber. The bullet to be launched is pushed into the launch chamber. A first spring is connected between the side of the pushing member facing away from the bullet and the inner side wall of the camera housing. The first spring drives the pushing member to push the bullet towards the launch chamber. The surface of the pushing member in contact with the bullet is formed with an arc surface adapted to the surface of the bullet.
[0010] Further, a limiting groove is formed at a position adjacent to the first spring inside the camera housing. A movable plate is movably arranged up and down in the limiting groove, and a second spring is arranged between the movable plate and the bottom wall of the camera housing; a hook extending towards the movable plate is arranged at the lower end of the pushing member, and a clamping block corresponding to the hook is arranged in the middle and lower part of the movable plate; when the second spring is in a natural and uncompressed state, the hook can be clamped on the clamping block, and after the movable plate compresses the second spring and moves downward, the hook is disengaged from the clamping block.
[0011] Further, a first inclined surface is arranged at one end of the upper end part of the movable plate away from the launching assembly, and a second inclined surface matching the first inclined surface is arranged at the lower end of the end cover;
[0012] When the end cover completely or partially covers the loading chamber, the second inclined surface contacts the first inclined surface, gradually pressing down the movable plate to disengage the hook and the clamping block; when opening the loading chamber, the end cover is moved outwards to make the second inclined surface away from the first inclined surface, and the movable plate moves upward under the action of the second spring.
[0013] Further, the launching assembly includes a pushing member, a launching tube fixedly connected to the pushing member, and a horizontally moving plate fixed above the pushing member. A third spring is arranged between one end of the launching tube far from the loading assembly and the inner side wall of the camera housing; the transmission assembly drives the horizontally moving plate to drive the launching tube and the pushing member to move in the camera housing.
[0014] Further, the outer side surface of the camera housing includes a first side surface in the thickness direction, the loading knob is rotatably arranged on the first side surface, and the transmission assembly includes a gear fixedly connected to the loading knob and a rack fixed on the horizontally moving plate.
[0015] Further, two stop grooves are circumferentially arranged at intervals on the gear, a stop block is movably arranged in the stop groove, and a fourth spring is arranged between the stop block and the camera housing.
[0016] Further, the triggering assembly includes a trigger button arranged on one side in the width direction of the camera housing, a moving plate fixedly connected to the trigger button and reciprocating with the trigger button, and a stop member movably contacting the moving plate. The horizontal movement of the moving plate drives the stop member to move up and down, and the stop member is clamped or disengaged from the launching assembly.
[0017] Further, an inclined surface is arranged in the middle of the moving plate, and a movable column moving on the inclined surface is arranged on the stop member.
[0018] Further, the outer side surface of the camera housing includes a second side surface in the thickness direction, the second side surface is oppositely arranged to the first side surface, and a cover plate covering the loading assembly is hinged on the second side surface.
[0019] Compared with the prior art, the beneficial effects of the utility model are as follows:
[0020] The camera deformation emitter of the present utility model has the same appearance as a real camera in the undeformed state. In this state, it can be used as a toy camera for children to play a make-believe photography game with each other, guiding children to pose various photographing poses and improving their imitation ability. When they get tired of playing one game, it can be deformed. At this time, open the firing port, load the bullets into the loading chamber, then rotate the loading knob. After rotating it in place, the firing assembly is engaged with the trigger assembly. At the same time, the pushing member pushes the bullets in the loading chamber into the firing chamber. Subsequently, press the trigger button, the trigger assembly disengages from the firing assembly. Finally, the bullets are shot out from the firing port. Repeating the above loading and firing actions can achieve continuous firing of the bullets. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following-described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0022] Figure 1 It is the overall structure diagram (one) of the camera deformation emitter of the present utility model;
[0023] Figure 2 It is the overall structure diagram (two) of the camera deformation emitter of the present utility model;
[0024] Figure 3 It is the loading state structure diagram (one) of the camera deformation emitter of the present utility model;
[0025] Figure 4 It is the loading state structure diagram (two) of the camera deformation emitter of the present utility model;
[0026] Figure 5 It is the firing state structure diagram of the camera deformation emitter of the present utility model;
[0027] Figure 6 It is the structure diagram of the loading assembly of the camera deformation emitter of the present utility model;
[0028] Figure 7 It is the structure diagram of the trigger assembly of the camera deformation emitter of the present utility model;
[0029] Figure 8 It is the bullet firing state diagram of the camera deformation emitter of the present utility model;
[0030] Wherein: 1 - camera housing, 11 - emission port, 12 - first side, 13 - second side, 14 - cover plate; 2 - loading assembly, 21 - loading chamber, 22 - end cap, 221 - second inclined surface, 23 - pushing member, 231 - catch, 24 - emission chamber, 25 - first spring, 26 - movable plate, 261 - latch, 262 - first inclined surface, 27 - second spring; 3 - emission assembly, 31 - pushing member, 32 - emission tube, 33 - horizontally moving plate, 34 - third spring; 4 - trigger assembly, 41 - trigger button, 42 - moving plate, 421 - inclined surface, 43 - stopper, 431 - movable post, 44 - sixth spring, 45 - fifth spring; 5 - cocking knob, 6 - transmission assembly, 61 - gear, 62 - rack, 63 - detent groove, 64 - detent block, 65 - fourth spring, 7 - bullet. Detailed implementation manners
[0031] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0032] In the description of the present application, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation to the present application. In addition, the terms "first" and "second" are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of the described features. In the description of the present application, "a plurality" means two or more, unless otherwise specifically defined.
[0033] In the description of the present application, it should be noted that, unless otherwise clearly defined and limited, the terms "mounted", "connected" and "connected" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection or an integral connection; it may be a mechanical connection, an electrical connection or a communication with each other; it may be directly connected, or indirectly connected through an intermediate medium, and it may be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.
[0034] In this application, unless otherwise clearly specified and defined, the first feature being "above" or "below" the second feature may include the first and second features being in direct contact, or may include the first and second features not being in direct contact but being in contact through additional features therebetween. Moreover, the first feature being "above", "over" and "on top of" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the first feature has a higher horizontal height than the second feature. The first feature being "below", "beneath" and "underneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the first feature has a lower horizontal height than the second feature.
[0035] The following combines the appended Figure 1 to the appended Figure 8 and specific embodiments to elaborate on the present utility model in detail.
[0036] The camera deformation launcher provided by the present utility model is a deformation toy, which presents the appearance of a camera in the undeformed state. The loading assembly 2, the launching assembly 3 and the triggering assembly 4 are all hidden inside the camera housing 1, making the overall appearance consistent with that of a camera, and can be used by children to play house-playing games; in the deformed state, bullets are installed therein, and are loaded by rotating the loading knob 5 to make it a launcher toy. After installing bullets inside, the bullets are launched by pressing the triggering assembly 4, and can be used by children to play shooting games or firing games, etc., increasing the diversity of playing methods and enhancing the fun.
[0037] Please refer to the appended Figure 1 to the appended Figure 8 In the embodiments of the present application, a camera deformation launcher is provided. Its overall shape is that of a camera, including a camera housing 1. Inside the camera housing 1, a loading assembly 2 and a launching assembly 3 are arranged along the length direction. The launching assembly 3 is used to launch the bullets in the loading assembly 1, so the two need to be arranged adjacent to each other. At one end of the launching assembly 3 far from the loading assembly 2, a triggering assembly 4 is provided. The triggering assembly 4 is used to release the launching assembly 3 so that the launching assembly 3 can eject the bullets in the loading assembly 2; on the outer side wall of the camera housing 1, a loading knob 5 is provided. The loading knob 5 is connected to the launching assembly 3 through a transmission assembly 6. Rotating the loading knob 5 can make the launching assembly 3 move away from the loading assembly 2 and be engaged with the triggering assembly 4; the triggering assembly 4 includes a trigger button 41 provided on the outer side wall of the camera housing 1. After loading, the launching assembly 3 is engaged and connected with the triggering assembly 4. When firing a bullet, pressing the trigger button 41 can release the engagement between the launching assembly 3 and the triggering assembly 4, so that the launching assembly 3 moves forward to drive the bullets in the loading assembly 2 to be launched from the launching port 11. The launching port 11 is provided on a side wall of the camera housing 1 adjacent to the loading assembly 2.
[0038] It should be noted that the loading assembly 2, the firing assembly 3, and the trigger assembly 4 of the present application are all hidden and arranged in the narrow camera housing 1, making full use of the space inside the camera housing 1, making the overall size of the emitter more delicate, and facilitating cost reduction.
[0039] Specifically, the loading assembly 2 includes a loading chamber 21, an end cover 22 horizontally movably arranged at the opening of the loading chamber 21, and a pushing member 23 movably arranged in the loading chamber 21. When multiple bullets are loaded in the loading chamber 21, covering the end cover 22 can prevent the mutual extrusion force between the bullets from causing the bullets to pop out; the end of the loading chamber 21 far from the pushing member 23 is a firing chamber 24, and the bullet to be fired is pushed into the firing chamber 24 to wait for firing. A first spring 25 is connected between the side of the pushing member 23 facing away from the bullet and the inner side wall of the camera housing 1. The first spring 25 can drive the pushing member 23 to push the bullet towards the firing chamber 24. An arc surface adapted to the surface of the bullet is formed on the side of the pushing member 23 in contact with the bullet. It can be understood that in order to realize the pushing effect of the pushing member 23 on any bullet in the loading chamber 21, when the first spring 25 is in an uncompressed state, the arc surface of the pushing member 23 and the firing chamber 24 form a receiving space for the bullet to be fired. In other words, when there is only one bullet in the loading chamber 21, the pushing member 23 can still push it into the firing chamber 24.
[0040] It is worth mentioning that as Figure 3 shown, multiple bullets can be installed in the loading chamber 21 of the present application at one time. The bullet farthest from the pushing member 23 is located in the firing chamber 24. After the bullet in the firing chamber 24 is fired, the pushing member 23 can push the adjacent bullet into the firing chamber 24 under the action of the first spring 25, thereby realizing continuous firing until all the bullets in the loading chamber 21 are fired.
[0041] Preferably, as Figure 3 、 Figure 5 、 Figure 6As shown, a limiting groove is provided in the position adjacent to the first spring 25 in the camera housing 1, and a movable plate 26 is provided in the limiting groove to be movable up and down. The setting of the limiting groove enables the movable plate 26 to move only up and down but not in other directions. A second spring 27 is provided between the movable plate 26 and the bottom wall of the camera housing 1, and the movable plate 26 can move up and down under the action of the second spring 27; the lower end of the pusher 23 is provided with a hook 231 extending toward the movable plate 25, and the middle and lower part of the movable plate 26 is provided with a block 261 corresponding to the hook 231; when the end cover is opened 22 and after the pusher 23 is moved in the direction away from the firing chamber 24, the second spring 27 is in a natural uncompressed state, the hook 231 can be connected to the block 261, and the child can load the bullet into the loading chamber 21; after the loading is completed, the movable plate 26 is pressed downward, and the movable plate 26 compresses the second spring 27 downward to make the block 261 move downward and disengage from the hook 231. The pusher 23 applies a force in the direction of the bullet under the action of the first spring 25 to ensure close contact between the bullets, and at the same time, the bullets can be sequentially entered into the firing chamber 24. The present application does not limit the downward movement of the movable plate 26, and the pusher 23 can be manually pressed to release the pusher 23, or it can be automatically released in conjunction with other components.
[0042] In a preferred embodiment, a first inclined surface 262 is provided at one end of the upper end of the movable plate 26 away from the firing assembly 3, and a second inclined surface 221 matching the first inclined surface 262 is provided at the lower end of the end cover 22; when the end cover 22 is fully or partially covered on the loading chamber 21, the second inclined surface 221 contacts the first inclined surface 262, gradually pressing down the movable plate 26 to release the engagement between the hook 231 and the block 261; when opening the loading chamber 21, the end cover 22 is moved outward to move the second inclined surface 221 away from the first inclined surface 262, and the movable plate 26 moves upward under the action of the second spring 27.
[0043] In order to facilitate the description of the inclination direction and positional relationship between the first inclined surface 262 and the second inclined surface 221, the length direction of the camera housing 1 is defined as the X-axis and the width direction as the Y-axis in this application, then the first inclined surface 262 is set to be inclined downward along the X-axis direction toward the side of the launch port 11, and the second inclined surface 221 is also set to be inclined downward along the X-axis direction toward the side of the launch port 11. Since the end cover 22 can only move horizontally and cannot move up and down, when the second inclined surface 221 moves along the first inclined surface 262 in the covering direction, it will gradually press the movable plate 26 downward, so that the block 261 on the movable plate 26 moves downward, and then disengages from the hook 231, thereby achieving the purpose of automatically releasing the push member 23.
[0044] The specific loading process is as follows: Push the end cap 22 outwards to make the second inclined surface 221 away from the first inclined surface 262. The movable plate 26 moves upwards under the action of the second spring 27 until the second spring 27 is in an uncompressed state. Then, dial the pushing member 23 in the direction away from the firing chamber 24. The pushing member 23 moves backwards against the acting force of the first spring 25 until the hook 231 on the pushing member 23 is clamped on the block 261 on the movable plate 26. Then, load the bullets into the loading chamber 21 in sequence. After that, start to close the end cap 22. During the process that the end cap 22 is fully or partially closed on the loading chamber 21, the second inclined surface 221 contacts the first inclined surface 262, gradually pressing down the movable plate 26 to release the clamping between the hook 231 and the block 261. After the clamping is released, the pushing member 23 pushes the bullet towards the firing chamber 24 under the action of the first spring 25, thus completing the loading process.
[0045] The loading component of this application is ingeniously designed. The linkage among the end cap 22, the movable plate 26, and the pushing member 23 makes the loading process simpler. The loading can be easily completed without the assistance of others, which is more suitable for children to play with.
[0046] Specifically, as Figure 3 , Figure 5 shown, the firing component 3 includes a pushing member 31, a firing tube 32 fixedly connected to the pushing member 31, and a horizontally moving plate 33 fixed above the pushing member 31. A third spring 34 is provided between one end of the firing tube 32 away from the loading component 2 and the inner side wall of the camera housing 1. The transmission component 6 drives the horizontally moving plate 33 to drive the firing tube 32 and the pushing member 31 to move in the camera housing 1 to realize the chambering and firing of the bullet. In order to prevent the horizontal movement of the horizontally moving plate 33 in a narrow space from affecting the loading component 2, in this application, the horizontally moving plate 33 is arranged on the back of the loading component 2 and the firing component 3, so that the horizontally moving plate 33 can freely move on the back of the loading component 2 and the back of the firing component 2. At the same time, the chambering knob 5 is also arranged on one side of the horizontally moving plate 33 to drive the horizontally moving plate 33 to move along the length direction.
[0047] In an optional embodiment, as Figure 1 , Figure 4As shown in the figure, the outer side surface of the camera housing 1 includes a first side surface 12 in the thickness direction of the camera emitter. The first side surface 12 faces away from the open end of the loading assembly 2. The loading knob 5 is rotatably arranged on the first side surface 12. The transmission assembly 6 includes a gear 61 fixedly connected to the loading knob 5 and a rack 62 fixed on the horizontal moving plate 33. The gear 61 and the rack 62 are meshed and driven. It can be understood that the reciprocating movement of the horizontal moving plate 33 in this application is achieved through the meshing of the gear 61 and the rack 62. During the loading process, the gear 61 is rotated by manually rotating the loading knob 5, and then the backward movement of the horizontal moving plate 33 is achieved through the meshing of the gear 61 and the rack 62. During the firing process, the horizontal moving plate 33 moves forward under the elastic force of the third spring 34. Due to the limitation of the moving distance of the horizontal moving plate 33 in this application, the gear 61 can be designed in a non-full-tooth shape as long as the requirements of loading and firing can be met.
[0048] In a preferred embodiment, two stop grooves 63 are circumferentially spaced on the gear 61. A stop block 64 is movably arranged in the stop groove 63. A fourth spring 65 is arranged between the stop block 64 and the camera housing 1. During the loading process, when the horizontal moving plate 33 moves backward in place, the stop block 64 is inserted into one of the stop grooves 63 under the action of the fourth spring 65. During the firing process, when the horizontal moving plate 33 moves forward in place, the stop block 64 is inserted into the other stop groove 63 under the action of the fourth spring 65. The setting of the stop grooves 63 limits the moving distance of the horizontal moving plate 33. After moving in place, it cannot move forward or backward anymore, avoiding the unlimited rotation of the loading knob during children's play and damaging the toy.
[0049] Specifically, as Figure 7 shown, the trigger assembly 4 includes a trigger button 41 arranged on one side in the width direction of the camera housing 1, a moving plate 42 fixedly connected to the trigger button 41 and reciprocating with the trigger button 41, and a stopper 43 in movable contact with the moving plate 42. The position of the trigger button 41 in this application is the same as the position of the shooting button of a real camera. The moving plate 42 moves along the width direction of the camera housing 1, and the moving plate 42 can only move horizontally. The horizontal movement of the moving plate 42 can drive the stopper 43 to move up and down, so that the stopper 43 is engaged or disengaged with the firing assembly 3.
[0050] In one embodiment, as Figure 3 、 Figure 5As shown in the figure, the stopper 43 is arranged on the side away from the horizontal moving plate 33. The stopper 43 moves downward to be engaged with the launching assembly 3, and moves upward to be disengaged from the launching assembly 3. In order to realize the upward movement of the stopper 43 driven by the movement of the moving plate 42, an inclined surface 421 is provided in the middle of the moving plate 42, and a movable column 431 that moves on the inclined surface 421 is provided on the stopper 43. By pressing the trigger button 41, the horizontal movement of the inclined surface 421 can make the stopper 43 move upward to be disengaged from the launching assembly 3.
[0051] It is worth mentioning that, as Figure 5 shown, in order to realize the automatic reset of the trigger button 41, a fifth spring 45 is provided between the trigger button 41 and the side wall of the camera housing 1. After the engagement with the launching assembly 3 is released, the trigger button 41 automatically resets to the initial state under the action of the fifth spring 45; at the same time, a sixth spring 44 is provided between the stopper 43 and the inner wall of the camera housing 1. When the stopper 43 moves upward under the action of the inclined surface 421, the sixth spring 44 is in a compressed state. After the launching assembly 3 launches, the stopper 43 resets under the action of the sixth spring 44. After resetting, rotating the loading knob 5 can make the launching assembly 3 engage with the trigger assembly 4.
[0052] Specifically, as Figure 1 、 Figure 2 shown, the outer side surface of the camera housing 1 includes a second side surface 13 in the thickness direction. The second side surface 13 is arranged opposite to the first side surface 12. A cover plate 14 covering the loading assembly 2 is hinged on the second side surface 13. The position and size of the cover plate 14 are set to be the same as those of the display screen of a real camera, so that the appearance of the camera launcher is closer to that of a real camera, increasing the fun of children playing.
[0053] The camera deformation launcher of the present utility model has the same appearance as a real camera in the undeformed state, and the launch port 11 is also covered by a baffle hinged on the side. In this state, it can be used as a toy camera for children to play shooting games with each other, guiding children to pose various taking pictures postures and improving children's imitation ability; when they get tired of playing one game, it can be deformed. At this time, open the baffle at the launch port 11, the cover plate 14 at the opening of the loading chamber 21, the end cover 22, and the pushing member 23, load bullets into the loading chamber 21, then close the cover plate 14 and the end cover 22, and then rotate the loading knob 5. After rotating in place, the launching assembly 3 engages with the stopper 43. At the same time, the pushing member 23 pushes the bullets in the loading chamber 21 into the launching chamber 24. Subsequently, press the trigger button 41, the moving plate 42 moves to push the stopper 43 upward to be disengaged from the launching assembly 3. Finally, the bullets are shot out from the launch port 11 (as Figure 8 shown). Repeating the above loading and launching actions can realize the continuous launching of bullets.
[0054] The above further describes the present utility model by means of specific embodiments. However, it should be understood that this specific description should not be construed as a limitation on the essence and scope of the present utility model. Various modifications made by those of ordinary skill in the art to the above embodiments after reading this specification all fall within the scope protected by the present utility model.
Claims
1. A camera deformation emitter, characterized in that, It includes a camera housing, in which a loading component and a firing component are arranged along the length direction. A triggering component is arranged at one end of the firing component away from the loading component, and a cocking knob is arranged on the outer side wall of the camera housing. The cocking knob is connected to the firing component through a transmission component. Rotating the cocking knob makes the firing component move away from the loading component and engage with the triggering component. The triggering component includes a trigger button arranged on the outer side wall of the camera housing. Pressing the trigger button releases the engagement between the firing component and the triggering component, and makes the firing component move forward to drive the bullet in the loading component to be fired out from the firing port.
2. The camera deformation transmitter according to claim 1, characterized in that, The loading component includes a loading chamber, an end cover horizontally movably arranged at the opening of the loading chamber, and a pushing member movably arranged in the loading chamber. One end of the loading chamber away from the pushing member is a firing chamber. The bullet to be fired is pushed into the firing chamber. A first spring is connected between the side of the pushing member facing away from the bullet and the inner side wall of the camera housing. The first spring drives the pushing member to push the bullet towards the firing chamber. An arc surface adapted to the surface of the bullet is formed on the side of the pushing member in contact with the bullet.
3. The camera deformation emitter according to claim 2, characterized in that A limiting groove is opened at a position adjacent to the first spring in the camera housing. A movable plate is vertically movably arranged in the limiting groove, and a second spring is arranged between the movable plate and the bottom wall of the camera housing. A hook extending towards the movable plate is arranged at the lower end of the pushing member, and a clamping block corresponding to the hook is arranged in the middle and lower part of the movable plate. In the natural non-compressed state of the second spring, the hook can be engaged with the clamping block. After the movable plate compresses the second spring and moves downward, the hook is disengaged from the clamping block.
4. The camera deformation emitter according to claim 3, characterized in that One end of the upper end part of the movable plate away from the firing component is provided with a first inclined surface, and the lower end of the end cover is provided with a second inclined surface matching the first inclined surface. When the end cover completely or partially covers the loading chamber, the second inclined surface contacts the first inclined surface, gradually pressing down the movable plate to disengage the hook and the clamping block. When the loading chamber is opened, the end cover is moved outwards to make the second inclined surface away from the first inclined surface, and the movable plate moves upward under the action of the second spring.
5. The camera deformation emitter according to claim 1, characterized in that, The firing component includes a pushing member, a firing cylinder fixedly connected to the pushing member, and a horizontally movable plate fixed above the pushing member. A third spring is arranged between the end of the firing cylinder away from the loading component and the inner side wall of the camera housing. The transmission component drives the horizontally movable plate to drive the firing cylinder and the pushing member to move in the camera housing.
6. The camera deformation emitter according to claim 5, characterized in that, The outer side surface of the camera housing includes a first side surface in the thickness direction. The cocking knob is rotatably arranged on the first side surface. The transmission component includes a gear fixedly connected to the cocking knob and a rack fixed on the horizontally movable plate.
7. The camera deformation emitter according to claim 6, characterized in that, Two stop grooves are circumferentially spaced on the gear. A stop block is movably arranged in the stop groove, and a fourth spring is arranged between the stop block and the camera housing.
8. The camera deformation emitter according to claim 1, wherein The trigger assembly includes a trigger button disposed on one side in the width direction of the camera housing, a moving plate fixedly connected to the trigger button and reciprocating with the trigger button, and a stopper in movable contact with the moving plate. The horizontal movement of the moving plate drives the up and down movement of the stopper, and the stopper is engaged or disengaged with the firing assembly.
9. The camera deformation emitter according to claim 8, wherein, An inclined surface is provided in the middle of the moving plate, and a movable post is provided on the stopper and moves on the inclined surface.
10. The camera deformation transmitter according to claim 6, characterized in that, The outer side surface of the camera housing includes a second side surface in the thickness direction, the second side surface is disposed opposite to the first side surface, and a cover plate covering the loading assembly is hinged on the second side surface.