A multi-functional hunting camera

By designing an automatically retractable camera and lens structure in the hunting camera, the pollution problem caused by lens exposure is solved, and the waterproof, dustproof and fog-proof effects are achieved, ensuring the shooting quality.

CN115437198BActive Publication Date: 2025-10-10AUSEK LTD
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Patent Information

Application Number
CN202211247912.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-12
Publication Date
2025-10-10
Estimated Expiration
2042-10-12

AI Technical Summary

Technical Problem

The lens of existing hunting cameras is partially exposed to the air and is easily affected by external pollution, which affects the shooting effect.

Method used

A multifunctional hunting camera is designed, which adopts a built-in camera and lens in the shell. The camera can be automatically extended and retracted through a drive unit and a telescopic mechanism. The camera is waterproof, dustproof and fogproof in combination with a transmission mechanism and a protective strip.

Benefits of technology

The camera remains sealed when not in use to avoid contamination, and automatically extends out to shoot when shooting, achieving waterproof, dustproof and fogproof effects.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN115437198B_ABST
    Figure CN115437198B_ABST
Patent Text Reader

Abstract

The utility model discloses a multifunctional hunting camera, including the casing, the top of casing is equipped with the shooting hole, its characterized in that: the middle part of casing is provided with the partition, the inside of casing is provided with the sealed cavity and drive cavity through the partition, be provided with transmission mechanism in the sealed cavity, be provided with telescopic mechanism and drive unit in the drive cavity, still be provided with multiple array distribution camera in the sealed cavity, the top of camera is provided with the lens, drive unit through the rotation drive transmission mechanism intermittent rotation movement, then through telescopic mechanism jointly drive the camera in corresponding shooting hole and reach the sealed cavity inside.
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Description

Technical Field

[0001] The present invention relates to the technical field of hunting cameras, in particular to a multifunctional hunting camera. Background Art

[0002] Hunting cameras (also known as infrared sensors) are a new type of product that sits somewhere between a still camera and a surveillance camera. They utilize infrared DSP intelligent computing, including low-false-alarm automatic human (animal) recognition technology, to automatically capture high-definition images or videos. Based on their settings, the camera can automatically take photos or videos when it senses infrared heat.

[0003] Chinese patent CN214067552U discloses a waterproof hunting camera, belonging to the field of hunting camera structures. The camera comprises a hunting camera body, a front cover mounted on the surface of the hunting camera body, a display screen mounted on the body, a bottom cover mounted on the bottom of the hunting camera body, a fixed edge mounted on the surface of the bottom cover, a waterproof layer applied and bonded to the inner wall of the bottom cover, a reinforcement layer provided on one side of the waterproof layer, and a protective mechanism provided on the surface of the front cover. This invention optimizes the front cover portion of the hunting camera, combining a baffle and a water guide groove to prevent water droplets from remaining near the lens, thereby preventing moisture from affecting the shooting effect.

[0004] However, the device only provides waterproof treatment for the display screen on the surface of the hunting camera, and the lens part of the camera is still exposed to the air and thus interfered by external pollution, thereby affecting the shooting effect.

[0005] Therefore, it is necessary to provide a multifunctional hunting camera to solve the above-mentioned technical problems. Summary of the Invention

[0006] The object of the present invention is to provide a multifunctional hunting camera to solve the problem in the above background art that the lens portion of the camera is still exposed to the air and thus affected by external pollution, thereby affecting the shooting effect.

[0007] Based on the above ideas, the present invention provides the following technical solutions:

[0008] A multifunctional hunting camera comprises a shell, a shooting hole is formed on the top of the shell, a partition plate is provided in the middle of the shell, a sealed cavity and a drive cavity are provided inside the shell through the partition plate, a transmission mechanism is provided in the sealed cavity, and a telescopic mechanism and a driving unit are provided in the drive cavity; a plurality of cameras distributed in an array are also provided in the sealed cavity, and lenses are provided on the tops of the cameras; the driving unit drives the transmission mechanism to rotate intermittently by rotation, and then drives the camera corresponding to the shooting hole to extend out of the sealed cavity through the telescopic mechanism.

[0009] Furthermore, an output shaft is fixedly connected to the bottom of the camera, the output shaft is slidingly connected to the transmission mechanism, and the output shaft is rotationally connected to the telescopic mechanism.

[0010] Furthermore, the driving unit includes: a motor, a driving shaft and an incomplete gear. The motor is arranged on a side of the driving cavity away from the shooting hole, and the motor is arranged corresponding to the shooting hole. The output end of the motor is connected to the driving shaft, and the driving shaft is arranged corresponding to the shooting hole. The incomplete gear is sleeved on the outer side of the driving shaft, and the incomplete gear is fixedly connected to the driving shaft. After the driving shaft drives one of the output shafts to rotate to the bottom of the shooting hole through the transmission mechanism, the driving shaft drives the output shaft through the telescopic mechanism to drive the camera to extend out of the shooting hole.

[0011] Furthermore, the telescopic mechanism includes: a moving gear, a threaded rod, a torsion spring, a connecting rod and an annular groove; the end of the driving shaft away from the center of the driving chamber is connected to the moving gear through a gear meshing method, the moving gear is set as a complete gear, the rotation center position of the moving gear is connected to the threaded rod through a threaded meshing method, the top of the threaded rod passes through the driving chamber and extends to the inside of the sealed chamber, the top of the threaded rod is connected to the connecting rod, the end of the connecting rod is set corresponding to one of the output shafts at the bottom of the shooting hole, the torsion spring is set between the moving gear and the bottom wall of the driving chamber, and the torsion spring is set as a reset torsion spring.

[0012] Furthermore, the annular groove is formed at the bottom of the outer side of the output shaft, and when one of the output shafts rotates to the bottom of the shooting hole, the end of the connecting rod away from the threaded rod is in contact with the inner wall of the annular groove.

[0013] Furthermore, the telescopic mechanism also includes: a vertical rod and a limiting ring; the vertical rod is symmetrically arranged at the bottom of the movable gear, the limiting ring is opened on the bottom wall of the driving cavity, and the vertical rod is slidably arranged inside the limiting ring.

[0014] Furthermore, the driving unit also includes: a rotating gear and a rotating shaft, the side of the driving shaft away from the moving gear is connected to the rotating gear through gear meshing, the rotating gear is set as a complete gear, the rotating shaft is set at the rotation center of the rotating gear, and the top of the rotating shaft passes through the driving cavity and extends to the inside of the sealed cavity.

[0015] Furthermore, the transmission mechanism includes: a central gear, planetary gears and transmission gears. The central gear is arranged inside the sealed cavity, and the central gear is sleeved on the outside of the rotating shaft. The planetary gears are also fixedly arranged in the sealed cavity. A plurality of transmission gears are connected between the central gear and the planetary gears through gear meshing. The transmission gears are evenly distributed in an array with the central gear as the center, and the output shaft is provided in the middle of the plurality of transmission gears.

[0016] Furthermore, the transmission mechanism also includes: a rotation groove and a rotation key, the rotation key is symmetrically and fixedly connected at the rotation center of the transmission gear, the rotation groove is symmetrically opened in the middle of the outer wall of the output shaft, the rotation key is slidably arranged inside the rotation groove, and the length of the rotation groove is greater than the length of the rotation key.

[0017] Furthermore, the transmission mechanism also includes: a sliding key and a sliding ring, the sliding key is provided at the bottom of the plurality of output shafts, the sliding ring is opened at the bottom of the sealing cavity, and the plurality of sliding keys are slidably provided inside the sliding ring.

[0018] Furthermore, the cantilever lugs are symmetrically arranged on the outer side of the shell, and the cantilever lugs are used to fix the shell.

[0019] Furthermore, the protective strip is symmetrically provided on the side of the shell corresponding to the shooting hole, the sealing plate is slidingly provided in the protective strip, and the sealing plate slides to seal the shooting hole, and the end of the protective strip away from the shooting hole is also fixedly connected to the fixing seat, and the tension spring is provided between the fixing seat and the sealing plate, and the tension spring makes the sealing plate tend to move away from the fixing seat, and the bottom is fixedly connected to the fixing rope, and the other end of the fixing rope passes through the shell and extends to the top of the shell, and the other end of the fixing rope passes through the fixing seat and is fixedly connected to the sealing plate.

[0020] Furthermore, the water outlet groove is also provided on the top of the shell, and the water outlet groove is arranged in an inverted U shape and is surrounded by the outside of the protective strip.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] 1. When the infrared sensing device senses traces of biological activity, the infrared sensing device drives the motor to work. The rotation of the motor drives the drive shaft to rotate, so that the incomplete gear first engages with the rotating gear, and the rotating gear drives the rotating shaft to rotate intermittently. The rotating shaft rotates through the central gear and the star gear, so that one of the output shafts rotates to the bottom of the shooting hole. At this time, the rotating shaft stops rotating, realizing automatic replacement of the camera;

[0023] 2. When one of the output shafts rotates to the bottom of the shooting hole, the end of the connecting rod away from the threaded rod contacts the inner wall of the annular groove, and the incomplete gear meshes with the moving gear, thereby driving the threaded rod to rise, thereby causing the connecting rod to rise, and then the connecting rod drives the output shaft to rise, thereby extending out of the shooting hole; after the shooting is completed, the motor continues to rotate to drive the incomplete gear to release the lock on the moving gear, and the moving gear reverses under the torsion spring, thereby driving the threaded rod to descend, and then resetting the camera, thereby achieving the goal of always being inside the sealed chamber when not shooting, and automatically extending out of the sealed chamber to shoot when shooting;

[0024] 3. During this process, when the infrared sensing device senses traces of biological activity, the infrared sensing device drives the driving unit to rotate, and then drives the transmission mechanism to rotate intermittently through the rotation, so that a suitable camera can be selected according to different distances; then the telescopic mechanism jointly drives the camera in the corresponding shooting hole to extend out of the sealed cavity to shoot the organism; when the camera is not in operation, it is in the sealed cavity, which protects the camera and lens to achieve the effect of being waterproof, dustproof and fogproof. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 This is a schematic diagram of the three-dimensional structure of the present invention after removing the shell;

[0026] Figure 2 It is a schematic diagram of the cross-sectional structure of the present invention;

[0027] Figure 3 It is a schematic diagram of the top view of the structure of the present invention;

[0028] Figure 4 This is a schematic diagram of the structure inside the driving cavity of the present invention;

[0029] Figure 5 This is a schematic diagram of the structure in the driving cavity of the present invention when viewed from above;

[0030] Figure 6 Schematic diagram of the top view of the sealed cavity of the present invention;

[0031] Figure 7 This is a schematic diagram of the top view of the structure of the present invention after removing the protective components;

[0032] Figure 8 It is a structural schematic diagram of the driving unit and telescopic mechanism of the present invention;

[0033] Figure 9 This is a schematic diagram of the structure of the output shaft and camera of the present invention;

[0034] Figure 10 It is a structural schematic diagram of the transmission mechanism of the present invention.

[0035] In the figure: 11. Shell; 12. Sealing chamber; 13. Drive chamber; 14. Partition plate; 15. Shooting hole; 16. Overhang; 21. Motor; 22. Drive shaft; 23. Incomplete gear; 24. Rotating gear; 25. Rotating shaft; 31. Camera; 32. Lens; 41. Center gear; 42. Planetary gear; 43. Transmission gear; 44. Output shaft; 45. Sliding key; 46. Sliding ring; 51. Moving gear; 52. Threaded rod; 53. Torsion spring; 54. Connecting rod; 55. Annular groove; 56. Rotating groove; 57. Rotating key; 61. Vertical pole; 62. Limiting ring; 71. Fixing rope; 72. Closing plate; 73. Protective strip; 74. Tension spring; 75. Fixing seat; 76. Water outlet. DETAILED DESCRIPTION

[0036] Example 1:

[0037] See also Figure 1-10 A multifunctional hunting camera includes a housing 11, a shooting hole 15 is formed at the top of the housing 11, a partition plate 14 is provided in the middle of the housing 11, a sealed chamber 12 and a drive chamber 13 are provided inside the housing 11 through the partition plate 14, the transmission mechanism is provided in the sealed chamber 12, and the telescopic mechanism and the drive unit are provided in the drive chamber 13; a plurality of cameras 31 distributed in an array are also provided in the sealed chamber 12, and a lens 32 is provided on the top of each camera 31;

[0038] In this embodiment, an infrared sensing device (not shown in the figure) is further provided in the driving cavity 13. The infrared sensing device is electrically connected to the driving unit, and the infrared sensing device is also electrically connected to the camera.

[0039] In this embodiment, preferably, the plurality of cameras 31 can be configured as cameras with different focal lengths, thereby adapting to organisms at different distances.

[0040] In this embodiment, preferably, an output shaft 44 is fixedly connected to the bottom of the camera 31, the output shaft 44 is slidably connected to the transmission mechanism, and the output shaft 44 is rotationally connected to the telescopic mechanism.

[0041] In this embodiment, preferably, the shell 11 is provided with the hanging ears 16 on the outside symmetrically, and the hanging ears 16 are used for fixing the shell 11.

[0042] In this embodiment, when the infrared sensing device senses the biological activity trace, the infrared sensing device drives the driving unit to rotate, and then drives the transmission mechanism to rotate intermittently through rotation, so that the appropriate camera 31 can be selected according to different distances; then the telescopic mechanism is driven together to drive the camera 31 corresponding to the shooting hole 15 to extend into the inside of the sealed cavity 12 to take pictures of the biological; so that the camera 31 is in a non-working state, and the camera 31 and the lens 32 are protected in the sealed cavity 12, achieving the effects of waterproof, dustproof, anti-fog and anti-impact.

[0043] Embodiment 2:

[0044] The driving unit comprises a motor 21, a driving shaft 22 and an incomplete gear 23, the inside of the driving cavity 13 is provided with the motor 21 away from one side of the shooting hole 15, the motor 21 is provided corresponding to the shooting hole 15, the output end of the motor 21 is connected with the driving shaft 22, the driving shaft 22 is provided corresponding to the shooting hole 15, the outside of the driving shaft 22 is sleeved with the incomplete gear 23, the incomplete gear 23 is fixedly connected with the driving shaft 22, and the infrared sensing device is electrically connected with the motor 21.

[0045] Preferably, the number of teeth of the incomplete gear 23 is provided corresponding to the number of the cameras 31, as shown in the figure, there are four cameras 31, and the incomplete gear 23 is provided with one-fourth of a tooth, so that after the motor 21 rotates one circle, one camera 31 rotates through the bottom of the shooting hole 15 or is just located at the position of the shooting hole 15; when the initial position is set, one of the cameras 31 is located at the bottom of the shooting hole 15, so that after the motor 21 rotates one circle, one camera 31 rotates to the bottom of the shooting hole 15.

[0046] As a further scheme of this embodiment, the driving unit further comprises a rotating gear 24 and a rotating shaft 25, the driving shaft 22 is connected with the rotating gear 24 through gear meshing on the side away from the moving gear 51, the rotating gear 24 is provided as a complete gear, the rotating shaft 25 is provided at the rotating center of the rotating gear 24, the top of the rotating shaft 25 penetrates the driving cavity 13 and extends into the inside of the sealed cavity 12, the incomplete gear 23 is driven to rotate through the driving shaft 22, and then the rotating shaft 25 is driven to rotate intermittently through the rotating gear 24, so as to realize the intermittent movement of the transmission mechanism.

[0047] As a further solution of this embodiment, the transmission mechanism includes: a center gear 41, a planetary gear 42 and a transmission gear 43. The center gear 41 is arranged inside the sealed cavity 12, and the center gear 41 is sleeved on the outside of the rotating shaft 25. The planetary gear 42 is also fixedly arranged in the sealed cavity 12. A plurality of transmission gears 43 are connected between the center gear 41 and the planetary gears 42 through gear meshing. The transmission gears 43 are evenly distributed in an array with the center gear 41 as the center, and the output shaft 44 is provided in the middle of the plurality of transmission gears 43. Through the setting of the gear planetary gear system, the rotation replacement of the camera 31 is realized, thereby making the camera 31 more stable during rotation.

[0048] As a further solution of this embodiment, the transmission mechanism also includes: a sliding key 45 and a sliding ring 46. The sliding key 45 is provided at the bottom of multiple output shafts 44, and the sliding ring 46 is opened at the bottom of the sealing cavity 12. Multiple sliding keys 45 are slidably set inside the sliding ring 46. Through the setting of the sliding key 45 and the sliding ring 46, the rotation of the rotating shaft 44 is more stable.

[0049] In this embodiment, the driving shaft 22 drives the rotating shaft 25 to rotate intermittently through the incomplete gear 23, and then drives the output shaft 44 to rotate to the bottom of the shooting hole 15 through the cooperation of the planetary gear train. The motor 31 rotates one circle, and the camera 31 is replaced once, thereby realizing the replacement of the camera 31.

[0050] Example 3:

[0051] The transmission mechanism also includes: a rotation groove 56 and a rotation key 57. The rotation key 57 is symmetrically and fixedly connected to the rotation center of the transmission gear 43. The rotation groove 56 is symmetrically opened in the middle of the outer wall of the output shaft 44. The rotation key 57 is slidably set inside the rotation groove 56. The length of the rotation groove 56 is greater than the length of the rotation key 57. Through the setting of the rotation groove 56 and the rotation key 57, the possibility of sliding of the camera 31 is provided.

[0052] As a further solution of this embodiment, the telescopic mechanism includes: a moving gear 51, a threaded rod 52, a torsion spring 53, a connecting rod 54 and an annular groove 55; the end of the driving shaft 22 away from the center of the driving chamber 13 is connected to the moving gear 51 through a gear meshing manner, and the moving gear 51 is set to be a complete gear. The rotation center position of the moving gear 51 is connected to the threaded rod 52 through a threaded meshing manner, and the top of the threaded rod 52 passes through the driving chamber 13 and extends to the inside of the sealed chamber 12. The top of the threaded rod 52 is connected to the connecting rod 54, and the end of the connecting rod 54 is set corresponding to one of the output shafts 44 at the bottom of the shooting hole 15. The torsion spring 53 is set between the moving gear 51 and the bottom wall of the driving chamber 13, and the torsion spring 53 is set to a reset torsion spring.

[0053] As a further solution of this embodiment, the annular groove 55 is opened at the bottom of the outer side of the output shaft 44. When one of the output shafts 44 rotates to the bottom of the shooting hole 15, the end of the connecting rod 54 away from the threaded rod 52 is in contact with the inner wall of the annular groove 55.

[0054] In this embodiment, based on Examples 1 and 2, the motor 21 rotates, and the incomplete gear 23 first engages with the rotating gear 24, so that when one of the output shafts 44 rotates to the bottom of the shooting hole 15, the connecting rod 54 is in contact with the annular groove 55 on the output shaft 44, and the rotating unit stops moving; the incomplete gear 23 then engages with the moving gear 51, and then drives the threaded rod 52 to rise, thereby causing the connecting rod 54 to rise, and then the connecting rod 54 drives the output shaft 44 to rise, and then extends out of the shooting hole 15; after the shooting is completed, the motor 21 continues to rotate to drive the incomplete gear 23 to release the lock on the moving gear 51, and the moving gear 51 reverses under the torsion spring 53, thereby driving the threaded rod 52 to descend, and then the camera 31 is reset, so that the camera 31 is always inside the sealed cavity 12 when not shooting, and automatically extends out of the sealed cavity 12 for shooting when shooting.

[0055] In this embodiment, it is preferred that the telescopic mechanism further includes: a vertical rod 61 and a limiting ring 62; the vertical rod 61 is symmetrically arranged at the bottom of the movable gear 51, and the limiting ring 62 is opened on the bottom wall of the driving cavity 13, and the vertical rod 61 is slidably arranged inside the limiting ring 62. By arranging the vertical rod 61 and the limiting ring 62, the sliding of the threaded rod 52 is provided with feasibility.

[0056] Example 4:

[0057] The shell 11 is symmetrically provided with the protective strip 73 on the side corresponding to the shooting hole 15, and the sealing plate 72 is slidingly provided in the protective strip 73, and the sealing plate 72 slides to seal the shooting hole 15. The end of the protective strip 73 away from the shooting hole 15 is also fixedly connected to the fixing seat 75, and the tension spring 74 is provided between the fixing seat 75 and the sealing plate 72. The tension spring 74 makes the sealing plate 72 tend to move away from the fixing seat 75. The bottom of the 52 is fixedly connected with the fixing rope 71, and the other end of the fixing rope 71 passes through the shell 11 and extends to the top of the shell 11. The other end of the fixing rope 71 passes through the fixing seat 75 and is fixedly connected to the sealing plate 72.

[0058] In this embodiment, on the basis of embodiments one to three, a sealing plate 72 and a fixing rope 71 are provided, so that when the device is not in use, the sealing plate 72 automatically seals the shooting hole 15 under the action of the tension spring 74. After the infrared sensing device is activated, the device is driven by the motor 21, and when the threaded rod 52 rises, it drives the fixing rope 71 to move, thereby realizing the automatic opening of the sealing plate 72, providing the feasibility of extending the camera 31, and at the same time, the sealing protection effect is better.

[0059] In this embodiment, preferably, the fixing rope 71 does not pass through the sealing cavity 12, further strengthening

[0060] In this embodiment, preferably, the fixing rope 71 can pass through the limiting ring 62, and the rotation of the vertical rod 61 drives the fixing rope 71 to be wound, further enhancing the effect of the automatic opening of the sealing plate 72.

[0061] In this embodiment, preferably, the water outlet groove 76 is further provided on the top of the shell 11. The water outlet groove 76 is set to an inverted U shape and is surrounded by the outside of the protective strip 73. Through the protruding protective strip 73 and the recessed water outlet groove 76, when it rains, rainwater will not enter the sealed cavity 12 from the sealing plate 72, thereby further protecting the camera 31.

[0062] The working principle of the present invention is as follows: when the infrared sensing device senses traces of biological activity, the infrared sensing device drives the motor 21 to work, and the rotation of the motor 21 drives the driving shaft 22 to rotate, so that the incomplete gear 23 first engages with the rotating gear 24, and the rotating gear 24 drives the rotating shaft 25 to rotate intermittently. The rotating shaft 25 realizes the rotation replacement of the camera 31 through the setting of the planetary gear system. The rotating shaft 25 rotates through the central gear 41 and the star gear 42, so that one of the output shafts 44 rotates to the bottom of the shooting hole 15. At this time, the rotating shaft 25 stops rotating, and the camera 31 is automatically replaced; when one of the output shafts 44 rotates to the bottom of the shooting hole 15, the rotating shaft 25 stops rotating, and the camera 31 is automatically replaced; when one of the output shafts 44 rotates to the bottom of the shooting hole 15, the rotating shaft 25 stops rotating. When the shooting hole 15 is at the bottom, the end of the connecting rod 54 away from the threaded rod 52 is in contact with the inner wall of the annular groove 55, and the incomplete gear 23 is then engaged with the moving gear 51, and then drives the threaded rod 52 to rise, thereby causing the connecting rod 54 to rise, and then the connecting rod 54 drives the output shaft 44 to rise, and then extends out of the shooting hole 15; after the shooting is completed, the motor 21 continues to rotate to drive the incomplete gear 23 to release the lock on the moving gear 51, and the moving gear 51 reverses under the torsion spring 53, thereby driving the threaded rod 52 to descend, and then the camera 31 is reset, so that the camera 31 is always inside the sealed cavity 12 when not shooting, and automatically extends out of the sealed cavity 12 for shooting when shooting. During this process, when the infrared sensor detects traces of biological activity, the infrared sensor drives the drive unit to rotate, which then drives the transmission mechanism to intermittently rotate, allowing the appropriate camera 31 to be selected based on different distances. The telescopic mechanism then jointly drives the camera 31 corresponding to the shooting hole 15 to extend from the sealed chamber 12 to capture the biological activity. When the camera 31 is not in operation, it remains within the sealed chamber 12, protecting the camera 31 and lens 32 from water, dust, fog, and impact. Furthermore, when the threaded rod 52 rises, it drives the fixed rope 71 to move, thereby automatically opening the sealing plate 72, providing the feasibility of extending the camera 31 and achieving a better sealing and protective effect.

[0063] In summary, a multifunctional hunting camera with the functions of being waterproof, dustproof, fogproof, automatically opening and closing, and capable of shooting is realized.

Claims

1. A multifunctional hunting camera, comprising a housing, a top of which is provided with a shooting hole, characterized in that: A partition plate is provided in the middle of the shell, a sealing cavity and a driving cavity are provided inside the shell through the partition plate, a transmission mechanism is provided in the sealing cavity, and a telescopic mechanism and a driving unit are provided in the driving cavity. A plurality of cameras distributed in an array are also provided in the sealed cavity, and a lens is provided on the top of the camera; The driving unit drives the transmission mechanism to rotate intermittently, and then drives the camera corresponding to the shooting hole to extend out of the sealed cavity through the telescopic mechanism. The multifunctional hunting camera further includes an output shaft. An output shaft is fixedly connected to the bottom of the camera, the output shaft is slidably connected to the transmission mechanism, and the output shaft is rotatably connected to the telescopic mechanism; The driving unit includes: a motor, a driving shaft and an incomplete gear, The motor is provided on a side of the driving chamber away from the shooting hole, the motor is provided corresponding to the shooting hole, the output end of the motor is connected to the driving shaft, the driving shaft is provided corresponding to the shooting hole, the outer side of the driving shaft is sleeved with the incomplete gear, the incomplete gear is fixedly connected to the driving shaft, After the driving shaft drives one of the output shafts to rotate to the bottom of the shooting hole through the transmission mechanism, the driving shaft drives the output shaft through the telescopic mechanism to drive the camera to extend out of the shooting hole.

2. The multifunctional hunting camera according to claim 1, characterized in that: The telescopic mechanism comprises: a moving gear, a threaded rod, a torsion spring, a connecting rod and an annular groove; One end of the driving shaft away from the center of the driving chamber is connected to the moving gear through a gear meshing manner, and the moving gear is set to be a complete gear. The rotation center position of the moving gear is connected to the threaded rod through a threaded meshing manner. The top of the threaded rod passes through the driving chamber and extends to the inside of the sealed chamber. The top of the threaded rod is connected to the connecting rod, and the end of the connecting rod is set to correspond to one of the output shafts at the bottom of the shooting hole. The torsion spring is set between the moving gear and the bottom wall of the driving chamber, and the torsion spring is set to a reset torsion spring.

3. The multifunctional hunting camera according to claim 2, characterized in that: The annular groove is formed at the bottom of the outer side of the output shaft. When one of the output shafts rotates to the bottom of the shooting hole, the end of the connecting rod away from the threaded rod is in contact with the inner wall of the annular groove.

4. The multifunctional hunting camera according to claim 2, characterized in that: The telescopic mechanism further comprises: a vertical rod and a limiting ring; The vertical rods are symmetrically arranged at the bottom of the moving gear, the bottom wall of the driving cavity is provided with the limiting ring, and the vertical rods are slidably arranged inside the limiting ring.

5. The multifunctional hunting camera according to claim 2, characterized in that: The driving unit further comprises: a rotating gear and a rotating shaft, The side of the driving shaft away from the moving gear is connected to the rotating gear through gear meshing. The rotating gear is set as a complete gear. The rotating shaft is set at the rotation center of the rotating gear. The top of the rotating shaft passes through the driving cavity and extends to the inside of the sealing cavity.

6. The multifunctional hunting camera according to claim 5, characterized in that: The transmission mechanism includes: a central gear, planetary gears and transmission gears, a rotating groove and a rotating key, The central gear is provided inside the sealed cavity, and the central gear is sleeved on the outside of the rotating shaft. The planetary gears are also fixedly provided in the sealed cavity. A plurality of transmission gears are connected between the central gear and the planetary gears through gear meshing. The transmission gears are evenly distributed in an array with the central gear as the center, and the output shaft is provided in the middle of the plurality of transmission gears. The rotation key is symmetrically and fixedly connected to the rotation center of the transmission gear, and the rotation groove is symmetrically opened in the middle of the outer wall of the output shaft. The rotation key is slidably arranged inside the rotation groove, and the length of the rotation groove is greater than the length of the rotation key.

7. The multifunctional hunting camera according to claim 6, characterized in that: The transmission mechanism further includes: a sliding key and a sliding ring, The bottom of each of the output shafts is provided with the sliding key, the bottom of the sealing cavity is provided with the sliding ring, and the sliding keys are all slidably arranged inside the sliding ring.

8. The multifunctional hunting camera according to claim 1, characterized in that: The outer side of the shell is symmetrically provided with hanging ears, and the hanging ears are used to fix the shell.

Citation Information

Patent Citations

  • Hunting camera with waterproof function

    CN214067552U

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