Integrated snapshot camera equipment for electronic snapshot
By designing an electronic capture device that uses a ring cutter to cut, straighten, and absorb vine branches, the problem of vines obstructing the lens was solved, enabling the device to capture images normally and clean the filter, thus ensuring the capture effect.
Patent Information
- Application Number
- CN202511267539.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-11-18
AI Technical Summary
If vines grow around the existing electronic capture equipment in the external environment, the vines will extend to the lens of the equipment, causing obstruction and affecting the capture effect.
An integrated electronic capture imaging device was designed, comprising a camera, a cutting component, a driving component, a straightening component, and an air suction component. The device uses a ring cutter to cut vines, straightens and suctions vine branches to prevent them from extending to the lens, and combines this with a filter to ensure unobstructed flow.
It effectively prevents vines from obstructing the camera lens, ensuring normal capture and maintaining the equipment's shooting effect. It also ensures the continuity of adsorption and straightening operations by cleaning the filter.
Smart Images

Figure CN120980326A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of snapshot camera equipment, and particularly relates to an integrated snapshot camera equipment for electronic snapshot. BACKGROUND
[0002] The electronic snapshot camera equipment is intelligent hardware which realizes automatic identification and snapshot of specific targets by combining optical imaging, artificial intelligence and data communication technologies.
[0003] When the existing electronic snapshot equipment is arranged outside, if there are vines around the electronic snapshot equipment, the growing vines will extend to the equipment along the support on which the equipment is installed, and finally extend to the lens of the equipment, thereby causing shielding and affecting the snapshot effect of the equipment.
[0004] Therefore, it is necessary to provide the integrated snapshot camera equipment for electronic snapshot to solve the above problems. SUMMARY
[0005] In view of the above problems, the application provides the integrated snapshot camera equipment for electronic snapshot to solve the problems in the background art.
[0006] To achieve the above object, the application provides the following technical scheme: the integrated snapshot camera equipment for electronic snapshot comprises: a camera for snapshot; a cutting assembly arranged on the front side of the camera and used for cutting vines; The cutting assembly comprises: a ring stand connected to the front side of the camera; a ring cutter rotatably installed in the ring stand and capable of cutting vines; a driving assembly arranged on the front side of the camera and used for driving the ring cutter to rotate; a straightening assembly arranged on the ring stand and used for straightening the vines to cooperate with the ring cutter to cut the vines.
[0007] Further, the driving assembly comprises: teeth equidistantly arranged on the inner side of the ring cutter; a gear used for cooperating with the teeth to drive the ring cutter to rotate, wherein the bottom of the ring stand is provided with an opening, and the gear passes through the opening and meshes with the teeth; a motor connected to the front side of the camera, and the gear is fixedly installed on the output shaft end of the motor.
[0008] Further, the straightening assembly comprises: a ring shell symmetrically and slidably installed on the ring stand, and the outer side of the ring shell is equidistantly provided with suction ports which are in communication with the inside of the ring shell; The filter screen is fixedly fitted onto the outside of the ring shell to prevent particulate matter from entering the suction port; A pushing component, disposed on the ring frame, is used to push the ring shell to move horizontally; A suction assembly for generating suction at the suction port.
[0009] Furthermore, the actuating component includes: A slider is equidistantly connected to the inner side of the ring shell, and the slider is slidably mounted on the ring frame; A first spring connects the side of the slider away from the ring cutter to the ring frame; An electromagnet is connected to the inner wall of the ring frame on the side away from the ring cutter, and is used to attract the ring shell.
[0010] Furthermore, the intake assembly includes: A first flexible tube is used to connect the pair of said annular shells; The second flexible tube has one end connected to the ring shell near the camera, and the other end extends to the outside of the ring frame; Connecting pipe, one end of which is connected to the second flexible hose; An air pump is mounted on the support rod on which the camera is installed, and the air intake end of the air pump is connected to the connecting pipe.
[0011] Furthermore, a notch is provided on the outer side of the ring cutter, and a mounting bracket is symmetrically slidably installed inside the notch. The bottom of the mounting bracket is provided with bristles, and an extrusion assembly for driving a pair of mounting brackets to move away from each other is provided inside the notch.
[0012] Furthermore, the extrusion assembly includes: A movable block is connected to the mounting bracket, and the movable block is slidably mounted on the inner wall of the notch; A second spring connects one side of the movable block to the inner wall of the notch; An extrusion block is slidably installed within the notch, the extrusion block having a triangular cross-sectional shape, and the top of the extrusion block abutting against a pair of the mounting brackets.
[0013] Furthermore, the bristles are stiff bristles, and when the mounting bracket extends beyond the notch, the bristles can contact the filter screen, and the length of the bristles is the same as the width of the filter screen.
[0014] Furthermore, when the ring cutter rotates at its fastest speed, it can drive the extrusion block to overcome the elastic force of the second spring and push the mounting bracket to extend outside the notch through centrifugal force.
[0015] Furthermore, the ring frame and the ring shell are connected by a telescopic cover.
[0016] The technical effects and advantages of this invention are as follows: 1. This invention can adsorb and straighten vine branches, and cut the vine branches with a rotating ring blade, so that the vines cannot extend over the ring frame to the camera lens, thereby avoiding the vines from blocking the camera lens and ensuring normal shooting of the camera. 2. This invention can clean the filter screen, ensuring its unobstructed flow, thereby guaranteeing the adsorption effect on branches, enabling the straightening of branches, and ensuring the cutting effect on vine branches. Attached Figure Description
[0017] Figure 1 A schematic diagram of the structure of an integrated electronic capture imaging device according to an embodiment of the present invention is shown; Figure 2 A schematic diagram of the ring frame structure according to an embodiment of the present invention is shown; Figure 3 A cross-sectional view of the ring frame according to an embodiment of the present invention is shown; Figure 4 An embodiment of the present invention is shown. Figure 3 Enlarged structural diagram at point A in the middle; Figure 5 An embodiment of the present invention is shown. Figure 3 Enlarged structural diagram at point B; In the diagram: 1. Camera; 2. Ring frame; 3. Ring cutter; 4. Tooth; 5. Gear; 6. Motor; 7. Ring housing; 8. Filter screen; 9. Slider; 10. First spring; 11. Electromagnet; 12. First hose; 13. Second hose; 14. Connecting pipe; 15. Suction pump; 16. Mounting bracket; 17. Moving block; 18. Second spring; 19. Brush bristles; 20. Extrusion block; 21. Telescopic cover. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.
[0019] This invention provides an integrated electronic capture imaging device, such as... Figures 1 to 5 As shown, it includes: camera 1, and a cutting component; Camera 1 is used for capturing images. Camera 1 is an integrated electronic capture imaging device in the prior art. The cutting component is set on the front side of camera 1 and is used to cut vines. The cutting assembly includes: ring frame 2, ring cutter 3, drive assembly, and straightening assembly; The ring frame 2 is fixedly connected to the front side of the camera 1. The ring cutter 3 is rotatably installed inside the ring frame 2 and can cut the vines. The drive component is located on the front side of the camera 1 and is used to drive the ring cutter 3 to rotate. The straightening component is located on the ring frame 2 and is used to straighten the vines to cooperate with the ring cutter 3 for cutting.
[0020] In use, the drive component drives the ring cutter 3 to rotate, and then the straightening component straightens the vine. The gradually straightened vine comes into contact with the ring cutter 3 and is cut by the ring cutter 3, which cuts the vine and prevents the vine from extending across the ring frame 2 to the lens of the camera 1, thereby preventing the vine from blocking the lens of the camera 1. The above operation is performed once a day to prevent the vine from blocking the lens and ensure that the camera 1 can capture images normally.
[0021] like Figure 1 and Figure 5 As shown, the drive components include: teeth 4, gears 5, and motor 6; The teeth 4 are equidistantly arranged around the inner side of the ring cutter 3. The gear 5 is used to cooperate with the teeth 4 to drive the ring cutter 3 to rotate. The bottom of the ring frame 2 has an opening, through which the gear 5 passes and meshes with the teeth 4. The motor 6 is fixedly connected to the front side of the camera 1. The gear 5 is fixedly installed at the end of the output shaft of the motor 6. The motor 6 is a brushless motor, which makes the vibration of the motor 6 very small and will not affect the shooting of the camera 1.
[0022] The motor 6 is started so that its output shaft drives the gear 5 to rotate, which in turn drives the ring cutter 3 to rotate in conjunction with the teeth 4, thus achieving the driving of the ring cutter 3.
[0023] like Figure 3 and Figure 4 As shown, the straightening assembly includes: a ring shell 7, a filter screen 8, a pushing assembly, and an air intake assembly; The ring shell 7 is symmetrically slidably mounted on the ring frame 2. The ring blade 3 is located between a pair of ring shells 7. The outer side of the ring shell 7 is equidistantly surrounded by suction ports that communicate with its interior. The filter screen 8 is fixedly sleeved on the outside of the ring shell 7 to prevent particles from entering the suction port. The pushing component is set on the ring frame 2 to push the ring shell 7 to move horizontally. The suction component is used to generate suction at the suction port.
[0024] The suction component generates suction at the suction port, which draws the vine branches toward the suction port. At this point, the vine branches pass over the ring cutter 3, and the parts on both sides of the ring cutter 3 are sucked in. Then, the pushing component pushes the ring shell 7 to move horizontally. The movement of the pair of ring shells 7 away from each other gradually straightens the vine branches, which are then cut in conjunction with the rotating ring cutter 3.
[0025] like Figure 4 As shown, the pushing component includes: slider 9, first spring 10, and electromagnet 11; The slider 9 is fixedly connected to the inner side of the ring shell 7 at equal intervals. The slider 9 is slidably mounted on the ring frame 2. The first spring 10 fixes the side of the slider 9 away from the ring cutter 3 to the ring frame 2. The electromagnet 11 is fixedly connected to the inner wall of the ring frame 2 away from the ring cutter 3 to attract the ring shell 7. The ring shell 7 is made of iron and its surface is electroplated with zinc to prevent rust.
[0026] When the electromagnet 11 is energized, it becomes magnetic, thereby attracting the ring shell 7 to move closer to the electromagnet 11. The ring shell 7, along with the slider 9, moves accordingly, causing the first spring 10 to deform. Finally, the ring shell 7 and the electromagnet 11 are attracted and fixed. When the electromagnet 11 is de-energized, it loses its magnetism, and the first spring 10 pushes the slider 9 and the ring shell 7 to reset.
[0027] like Figure 1 and Figure 4 As shown, the air intake assembly includes: a first hose 12, a second hose 13, a connecting pipe 14, and an air intake pump 15; The first flexible hose 12 is used to connect a pair of ring shells 7. One end of the second flexible hose 13 is connected to the ring shell 7 near the camera 1, and the other end extends to the outside of the ring frame 2. One end of the connecting pipe 14 is connected to the second flexible hose 13. The suction pump 15 is fixed on the support rod on which the camera 1 is installed. The suction end of the suction pump 15 is connected to the connecting pipe 14. The suction pump 15 is a diaphragm pump, so that the vibration generated when it works is small, so as to avoid affecting the shooting of the camera 1.
[0028] Start the suction pump 15 to draw in air, thereby drawing out the air from the two annular shells 7 through the connecting pipe 14, the second hose 13, and the first hose 12, so as to generate suction at the suction port and thus adsorb the vine branches.
[0029] like Figure 5 As shown, a notch is provided on the outer side of the ring cutter 3, and a mounting bracket 16 is symmetrically slidably installed inside the notch. The bottom of the mounting bracket 16 is provided with bristles 19, and an extrusion assembly for driving a pair of mounting brackets 16 to move away from each other is provided inside the notch.
[0030] After the cutting is completed, the ring shell 7 is reset, and the pair of mounting brackets 16 are driven to move away from each other by the squeezing assembly, so that the bristles 19 move with them. Finally, the bristles 19 move to contact the surface of the filter screen 8. Then the ring blade 3 rotates to cooperate with the bristles 19 to clean the surface of the filter screen 8, ensuring the filter screen 8 is unobstructed, thereby ensuring the adsorption effect on the branches and ensuring the straightening operation of the branches.
[0031] like Figure 5 As shown, the extrusion assembly includes: a moving block 17, a second spring 18, and an extrusion block 20; The movable block 17 is fixedly connected to the mounting bracket 16. The movable block 17 is slidably installed on the inner wall of the notch. The second spring 18 connects one side of the movable block 17 to the inner wall of the notch. The extrusion block 20 is slidably installed in the notch. The cross-sectional shape of the extrusion block 20 is triangular. The top of the extrusion block 20 abuts against a pair of mounting brackets 16.
[0032] Adjust the motor 6 to make its output shaft rotate at high speed, so that the ring cutter 3 rotates at high speed, thereby moving the extrusion block 20. The centrifugal force generated pushes the extrusion block 20 to move away from the ring frame 2, thereby cooperating with the inclined surface of the extrusion block 20 to squeeze a pair of mounting brackets 16 to move away from each other. As the mounting brackets 16 move, they also move the moving block 17, which compresses the second spring 18 and deforms it. Finally, the mounting bracket 16 moves with the brush bristles 19 to contact the filter screen 8, stops the ring cutter 3, the centrifugal force disappears, and the second spring 18 returns to its original position with the moving block 17 and the mounting bracket 16. Conversely, the extrusion block 20 returns to its original position.
[0033] like Figure 5 As shown, the bristles 19 are hard bristles. When the mounting bracket 16 extends beyond the notch, the bristles 19 can contact the filter screen 8. The length of the bristles 19 is the same as the width of the filter screen 8.
[0034] This allows the bristles 19 to better clean the filter 8.
[0035] When the ring cutter 3 rotates at its fastest speed, it can drive the extrusion block 20 to overcome the elastic force of the second spring 18 and push the mounting bracket 16 to extend outside the notch through centrifugal force.
[0036] like Figure 5 As shown, the ring frame 2 and the ring shell 7 are connected by a telescopic cover 21.
[0037] The telescopic cover 21 prevents external dust and impurities from entering the ring frame 2, ensuring that the ring shell 7 is not affected by dust and impurities and that the ring shell 7 can slide normally.
[0038] Working principle: In use, the motor 6 is started, causing its output shaft to rotate with the gear 5, which in turn drives the ring cutter 3 to rotate in conjunction with the gear 4, thus driving the ring cutter 3. The suction pump 15 is started to draw in air, which is then drawn out from the two ring shells 7 through the connecting pipe 14, the second hose 13, and the first hose 12, creating a suction force at the suction port, thereby attracting the vine branches. The suction force causes the vine branches to be attracted to the suction port. At this time, the vine branches pass over the ring cutter 3, and the parts on both sides of the ring cutter 3 are attracted. The electromagnet 11 is energized to make it magnetic, thereby attracting the ring shell 7. The ring housing 7 moves towards the electromagnet 11, and the slider 9 moves accordingly, causing the first spring 10 to deform. Finally, the ring housing 7 is attracted and fixed to the electromagnet 11. As the ring housing 7 moves, the vine branches are gradually straightened. The gradually straightened vines come into contact with the ring blade 3 and are cut by the ring blade 3, which can cut the vines and prevent them from extending beyond the ring frame 2 to the lens of the camera 1, thereby preventing the vines from blocking the lens of the camera 1. The above operation is performed once a day to prevent the vines from blocking the lens and ensure that the camera 1 can capture images normally. After cutting is completed, stop motor 6 and suction pump 15, de-energize electromagnet 11 to demagnetize it, and first spring 10 pushes slider 9 and ring housing 7 to reset. Adjust motor 6 to make its output shaft rotate at high speed, so that ring blade 3 rotates at high speed, thereby moving extrusion block 20. The centrifugal force generated pushes extrusion block 20 to move away from ring frame 2, thereby cooperating with the inclined surface of extrusion block 20 to squeeze a pair of mounting brackets 16 to move away from each other. With the movement of mounting bracket 16, the moving block 17 moves with it, which compresses second spring 18 to deform it. Finally, mounting bracket 16 moves with brush bristles 19 to contact filter screen 8. Then ring blade 3 rotates to clean the surface of filter screen 8 with brush bristles 19 to ensure the filter screen 8 is unobstructed, thereby ensuring the adsorption effect on branches and ensuring the straightening operation of branches. Stop motor 6, ring blade 3 stops rotating, centrifugal force disappears, second spring 18 resets with moving block 17 and mounting bracket 16, and extrusion block 20 resets accordingly.
[0039] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it.
Claims
1. An integrated electronic capture imaging device, characterized in that, include: Camera (1), used for capturing images; A cutting component, located on the front side of the camera (1), is used to cut vines; The cutting component includes: A ring frame (2) is connected to the front side of the camera (1); The ring cutter (3) is rotatably installed inside the ring frame (2) and can cut the vines; A drive assembly is disposed on the front side of the camera (1) for driving the ring cutter (3) to rotate; A straightening assembly is provided on the ring frame (2) for straightening the vines to cooperate with the ring cutter (3) for cutting.
2. The integrated electronic capture imaging device according to claim 1, characterized in that: The driving component includes: Teeth (4) are equidistantly arranged around the inner side of the ring cutter (3); The gear (5) is used to drive the ring cutter (3) to rotate in conjunction with the teeth (4). The bottom of the ring frame (2) is provided with an opening, through which the gear (5) passes and meshes with the teeth (4). The motor (6) is connected to the front side of the camera (1), and the gear (5) is fixedly installed at the end of the output shaft of the motor (6).
3. The integrated electronic capture imaging device according to claim 2, characterized in that: The straightening component includes: The ring shell (7) is symmetrically slidably mounted on the ring frame (2), and the outer side of the ring shell (7) is provided with suction ports that communicate with its interior at equal intervals; The filter screen (8) is fixedly sleeved on the outside of the ring shell (7) to prevent particulate matter from entering the suction port; A pushing component, disposed on the ring frame (2), is used to push the ring shell (7) to move horizontally; A suction assembly for generating suction at the suction port.
4. The integrated electronic capture imaging device according to claim 3, characterized in that: The actuating component includes: The slider (9) is equidistantly connected to the inner side of the ring shell (7), and the slider (9) is slidably mounted on the ring frame (2); The first spring (10) connects the side of the slider (9) away from the ring cutter (3) to the ring frame (2); An electromagnet (11) is connected to the inner wall of the ring frame (2) on the side away from the ring cutter (3) for attracting the ring shell (7).
5. The integrated electronic capture imaging device according to claim 4, characterized in that: The intake assembly includes: A first flexible tube (12) is used to connect the pair of said annular shells (7); The second flexible tube (13) has one end connected to the ring shell (7) near the camera (1) and the other end extends to the outside of the ring frame (2); Connecting pipe (14), one end of which is connected to the second flexible hose (13); An air pump (15) is installed on the support rod on which the camera (1) is mounted, and the air intake end of the air pump (15) is connected to the connecting pipe (14).
6. The integrated electronic capture imaging device according to claim 5, characterized in that: The outer side of the ring cutter (3) has a notch, and a mounting bracket (16) is symmetrically slidably installed inside the notch. The bottom of the mounting bracket (16) is provided with bristles (19), and the notch is provided with a pressing component for driving a pair of mounting brackets (16) to move away from each other.
7. The integrated capture and imaging device for electronic capture according to claim 6, characterized in that: The extrusion assembly includes: A movable block (17) is connected to the mounting bracket (16), and the movable block (17) is slidably mounted on the inner wall of the notch; The second spring (18) connects one side of the moving block (17) to the inner wall of the notch; An extrusion block (20) is slidably installed in the notch. The cross-sectional shape of the extrusion block (20) is triangular. The top of the extrusion block (20) abuts against a pair of the mounting brackets (16).
8. The integrated electronic capture imaging device according to claim 7, characterized in that: The bristles (19) are hard bristles. When the mounting bracket (16) extends beyond the notch, the bristles (19) can contact the filter screen (8). The length of the bristles (19) is the same as the width of the filter screen (8).
9. The integrated capture and imaging device for electronic capture according to claim 8, characterized in that: When the ring cutter (3) rotates at its fastest speed, it can drive the extrusion block (20) to overcome the elastic force of the second spring (18) and push the mounting bracket (16) to extend outside the notch through centrifugal force.
10. The integrated capture imaging device for electronic capture according to claim 9, characterized in that: The ring frame (2) and the ring shell (7) are connected by a telescopic cover (21).