Efficient and flexible carbon fiber camera supporting frame
By integrating the driving net bag, potion storage tank, mist spray head and shield in the drone camera support frame, the problem of flying insect interference during high-speed flight of the drone is solved, effectively preventing and driving the flying insects, and improving the task efficiency and reliability.
Patent Information
- Application Number
- CN202421858021.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-01
AI Technical Summary
When a drone performs high-speed visual missions, flying insects and other creatures may intersect with the trajectory of the camera, affecting the normal operation and operation of the camera.
A highly efficient and flexible carbon fiber camera support frame is designed, including a net bag, a potion storage tank, a mist spray head, a shield and a driving member. By driving the up and down movement of the net bag, the potion spray and the coverage of the shield, it effectively prevents and drives away insects.
It effectively prevents the interference of flying insects, ensures the normal operation of the drone during flight missions, and improves the efficiency and reliability of the mission.
Smart Images

Figure CN222988387U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of carbon fiber camera support, and in particular to an efficient and flexible carbon fiber camera support frame. Background Art
[0002] As a hot spot for interdisciplinary research and commercial applications, drones have shown great potential in many fields such as military reconnaissance, logistics distribution, film and television shooting, disaster relief, and geographic surveying and mapping. The development of drone technology, especially the advancement of miniaturization and intelligence, has put forward higher requirements for materials, not only to ensure the lightweight structure, but also to ensure sufficient strength and stability. In this context, carbon fiber, as a high-performance composite material, has gradually become the preferred material in drone design and manufacturing due to its high strength, low density, excellent corrosion resistance and thermal stability, and overall excellent physical and mechanical properties, bringing revolutionary changes to drones.
[0003] When a drone needs to perform various visual tasks, a camera will be installed on the body. The installation of the camera requires the use of a carbon fiber camera support frame. The application of carbon fiber camera support frames on drones is very common. As the main frame for installing cameras, there are still some problems in the application of the support frame. For example, when the drone is working at high speed, because the operating environment is in a high-altitude position, flying insects and other creatures may accidentally intersect with the trajectory of the camera during its flight, thereby affecting the normal operation and operation of the camera.
[0004] Therefore, in response to the above problems, an efficient and flexible carbon fiber camera support frame that can effectively prevent flying insects is proposed. Utility Model Content
[0005] In order to overcome the shortcomings of the above-mentioned prior art, the utility model provides a high-efficiency and flexible carbon fiber camera support frame that can effectively prevent flying insects.
[0006] Technical solution: An efficient and flexible carbon fiber camera support frame, including an unmanned aerial vehicle, a support frame, a guide rail, a camera, a slider, an elastic member, a driving member, a guide rod, a mobile frame and a driving net bag. The support frame is arranged at the bottom of the unmanned aerial vehicle, and guide rails are arranged on both sides of the frame of the support frame. A camera is slidably arranged between all the guide rails. At least two slide grooves are opened on both sides of the front part of the support frame, and sliders are slidably arranged in all the slide grooves. The sliders are fitted with the surface of the camera, and an elastic member is arranged between the sliders and the inner wall of the support frame. The driving member is arranged at the bottom of the unmanned aerial vehicle, and a guide rod is arranged at each of the four surrounding positions of the support frame. A mobile frame surrounding the support frame is slidably arranged between the four guide rods, and the mobile frame is connected to the output end of the driving member. A driving net bag is arranged at the front of the mobile frame.
[0007] In a preferred embodiment of the utility model, the driving member includes a small motor and a screw rod. The small motor is arranged on the rear side of the bottom of the drone. The output shaft of the small motor is connected to the screw rod. The screw rod passes through the movable frame and slides with the movable frame.
[0008] In a preferred embodiment of the utility model, it also includes a medicine water storage tank and a mist nozzle. The medicine water storage tank is arranged on the front side of the bottom of the drone, and the mist nozzles are arranged on both sides of the medicine water storage tank.
[0009] In a preferred embodiment of the utility model, a push switch is also included. The front side of the bottom of the medicine storage water tank is provided with a push switch, and the push switch is in contact with the driving net bag.
[0010] In a preferred embodiment of the utility model, it also includes a motor, a rotating shaft, a connecting shaft and a shielding cover. The bottom of the drone is equipped with a motor located in front of the medicine storage tank. The output shaft of the motor is connected to the rotating shaft through a coupling. The rotating shaft is rotatably connected to the bottom end of the drone. A connecting shaft is provided on the rotating shaft, and a shielding cover is hingedly provided on the connecting shaft.
[0011] In a preferred embodiment of the utility model, a groove ring is also included. A groove ring is arranged below the lens of the camera and is engaged with the shielding cover.
[0012] Compared with the prior art, the utility model has the following advantages: 1. The utility model enables the drone to drive away mosquitoes by moving the driving net bag up and down during flight, thereby ensuring that the drone avoids interference from mosquitoes when performing flight missions, and further interferes with the flight of mosquitoes, thereby achieving the effect of preventing mosquito interference;
[0013] 2. The utility model controls the opening of the medicine storage tank by cooperating with the driving net bag and the press switch, so that the medicine storage tank can spray out the medicine, which cooperates with the movement of the driving net bag to achieve a double mosquito repelling effect;
[0014] 3. The utility model uses a shielding cover to cover and shield the lens in an emergency, so that mosquitoes can be repelled in time when they touch the lens, and at the same time the operation of the lens is protected, thereby achieving a more significant insect repellent effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a three-dimensional structural schematic diagram of the utility model.
[0016] Figure 2 It is a three-dimensional structural sectional view of the supporting frame, guide rails, camera and other components of the utility model.
[0017] Figure 3 For this utility model Figure 2Schematic perspective view of the enlarged part A.
[0018] Figure 4 Schematic perspective view of the parts such as the lead screw, guide rod and guide rod of the present utility model.
[0019] Figure 5 Schematic perspective view of the parts such as the medicine storage water tank, push switch and shielding cover of the present utility model.
[0020] Figure 6 Schematic cross-sectional view of the medicine storage water tank, push switch and mist nozzle of the present utility model.
[0021] Figure 7 Schematic perspective view of the motor, rotating shaft, connecting shaft and shielding cover of the present utility model.
[0022] Figure 8 Schematic perspective view of the connecting shaft and shielding cover of the present utility model.
[0023] Among them, the above-mentioned drawings include the following reference numerals: 1, unmanned aerial vehicle; 2, support frame; 21, guide rail; 3, camera; 4, chute; 5, slider; 6, elastic member; 7, small motor; 8, lead screw; 9, guide rod; 10, moving frame; 11, driving net pocket; 12, medicine storage water tank; 13, push switch; 14, mist nozzle; 15, motor; 16, rotating shaft; 17, connecting shaft; 18, shielding cover; 181, groove ring. Detailed implementation manners
[0024] Although the present utility model may be described with respect to a specific application or industry, those skilled in the art will recognize the broader applicability of the present utility model. Those of ordinary skill in the art will recognize that terms such as: above, below, upward, downward, etc. are used to describe the drawings and do not represent a limitation on the scope of the present utility model defined by the appended claims. Any numerical labels such as: first or second are merely illustrative and are not intended to limit the scope of the present utility model in any way.
[0025] Embodiment: An efficient and flexible carbon fiber camera support frame, as Figures 1 - 8As shown, it includes a drone 1, a support frame 2, a guide rail 21, a camera 3, a slider 5, an elastic member 6, a driving member, a guide rod 9, a movable frame 10 and a driving net bag 11. The support frame 2 is fixedly arranged at the bottom center of the drone 1. Two guide rails 21 are arranged on both left and right sides of the frame of the support frame 2. A camera 3 is slidably arranged between the four guide rails 21. The arrangement of the guide rails 21 enables the camera 3 to be conveniently installed inside the support frame 2 to achieve a quick installation effect. Two slide grooves 4 are arranged on the left and right sides of the front part of the support frame 2. Slide blocks 5 are slidably arranged in the four slide grooves 4. The slide blocks 5 are fitted with the surface of the camera 3 to assist in positioning the position of the camera 3, so as to achieve a more stable installation effect. The ends of the four slide blocks 5 that are close to each other are all inclined surfaces. The camera 3 can be pushed by entering the matching inclined surface to achieve a more convenient installation effect, and an elastic member 6 is arranged between the slider 5 and the inner wall of the support frame 2. This design not only speeds up the installation process of the camera, but also provides a reliable fixing effect. A driving member is arranged at the bottom of the drone 1, and a guide rod 9 is arranged at each of the four surrounding positions of the support frame 2. A movable frame 10 is slidably arranged around the support frame 2 between the four guide rods 9, and the movable frame 10 is connected to the output end of the driving member. A repelling net bag 11 is arranged at the front of the movable frame 10, and the repelling net bag 11 is driven to move up and down to achieve the effect of repelling mosquitoes and insects, which effectively solves the problem of rapid installation of the camera 3 and insect interference of the drone 1 in a complex environment, and greatly improves the efficiency and reliability of the drone 1 in performing tasks.
[0026] like Figure 4 As shown, the driving part includes a small motor 7 and a screw 8. The small motor 7 is arranged on the rear side of the bottom of the drone 1. The output shaft of the small motor 7 is connected to the screw 8. The screw 8 passes through the moving frame 10 and slides with it.
[0027] like Figure 5 and Figure 6 As shown, it also includes a medicine water tank 12 and a mist nozzle 14. The medicine water tank 12 is arranged on the front side of the bottom of the drone 1, and the mist nozzles 14 are arranged on the left and right sides of the medicine water tank 12, so that the drone 1 has the ability to spray medicine and can release insecticide when necessary to further remove insects in the environment.
[0028] like Figure 5 and Figure 6 As shown, a push switch 13 is also included. The front bottom side of the medicine water storage tank 12 is provided with the push switch 13. The push switch 13 contacts and cooperates with the driving net bag 11. The push switch 13 and the driving net bag 11 are linked and cooperated, so that when the driving net bag 11 contacts the push switch 13, the medicine spraying is automatically started, thereby enhancing the insect repellent effect.
[0029] like Figure 1 , Figure 5, Figure 7 and Figure 8 As shown in Figure 7 and Figure 8 , it further includes a motor 15, a rotating shaft 16, a connecting shaft 17, a shielding cover 18 and a groove ring 181. The motor 15 is installed at the bottom of the drone 1 and is located on the front side of the medicine storage water tank 12. The output shaft of the motor 15 is connected to the rotating shaft 16 through a coupling. The rotating shaft 16 is rotatably connected to the bottom end of the drone 1. A connecting shaft 17 is arranged on the rotating shaft 16, and a shielding cover 18 is articulated on the connecting shaft 17. A groove ring 181 that is engaged with the shielding cover 18 is arranged below the lens of the camera 3. When it is detected that there is an insect in front of the lens, the motor 15 drives the shielding cover 18 to descend and snap into the groove ring 181 below the camera lens, forming a temporary protection to prevent the insect from approaching the lens and ensuring the shooting quality.
[0030] When the drone 1 needs to be used for visual tasks, first, the user installs the camera 3 into the support frame 2. During this process, as the camera 3 enters, the side of the camera 3 will contact the inclined surface of the slider 5, thereby pushing the two sliders 5 to slide away from each other. The elastic member 6 is compressed and deformed accordingly, and the camera 3 also snaps into the guide rail 21 on the support frame 2 and is embedded in the support frame 2, that is, the position of the camera 3 is stabilized. Then, the medicine storage water tank 12 is filled with insecticidal drugs. Subsequently, the drone 1 can be started for operation. As the drone 1 flies, the staff can start the small motor 7, drive the lead screw 8 to rotate through the small motor 7, and then drive the moving frame 10 to slide up and down on the guide rod 9, so that the driving net pocket 11 is driven to move accordingly, driving away mosquitoes around the lens of the camera 3 to create a more suitable shooting environment. At the same time, as the driving net pocket 11 moves upward, the driving net pocket 11 will contact and press the pressing switch 13, starting the medicine storage water tank 12, so that the liquid medicine can be sprayed out from the mist nozzle 14 to further remove the mosquitoes in the surrounding environment of the shooting. Then, the staff can stop the overall insecticidal operation and start the shooting task of the camera 3; if there is a situation where mosquitoes block the lens, that is, the staff starts the motor 15, drives the rotating shaft 16 to rotate through the motor 15, and then pushes the connecting shaft 17 thereon to rotate accordingly, driving the connected shielding cover 18 to swing downward. The shielding cover 18 snaps into the groove ring 181 to block the lens of the camera 3 and drive away the mosquitoes. After the mosquitoes are driven away, the shielding cover 18 can be driven to reset.
[0031] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.
Claims
1. An efficient and flexible carbon fiber camera support frame, characterized by: The invention comprises an unmanned aerial vehicle (1), a supporting frame (2), a guide rail (21), a camera (3), a slider (5), an elastic member (6), a driving member, a guide rod (9), a movable frame (10) and a driving net bag (11), wherein the bottom of the unmanned aerial vehicle (1) is provided with a supporting frame (2), both sides of the frame of the supporting frame (2) are provided with guide rails (21), a camera (3) is slidably arranged between all the guide rails (21), at least two slide grooves (4) are provided on both sides of the front part of the supporting frame (2), and all the slide grooves (4) are slidably arranged with a plurality of guide rails (21). A slider (5) is arranged, the slider (5) is fitted with the surface of the camera (3), and an elastic member (6) is arranged between the slider (5) and the inner wall of the support frame (2). A driving member is arranged at the bottom of the drone (1), and a guide rod (9) is arranged at each of the four positions around the support frame (2). A movable frame (10) surrounding the support frame (2) is slidably arranged between the four guide rods (9), the movable frame (10) is connected to the output end of the driving member, and a driving net bag (11) is arranged at the front of the movable frame (10).
2. The high-efficiency and flexible carbon fiber camera support frame according to claim 1, characterized in that: The driving member comprises a small motor (7) and a screw rod (8). The small motor (7) is arranged on the rear side of the bottom of the drone (1). The output shaft of the small motor (7) is connected to the screw rod (8). The screw rod (8) passes through the moving frame (10) and is slidably matched therewith.
3. The high-efficiency and flexible carbon fiber camera support frame according to claim 2, characterized in that: It also includes a medicine water storage tank (12) and a mist nozzle (14); the medicine water storage tank (12) is arranged on the front side of the bottom of the drone (1), and the mist nozzles (14) are arranged on both sides of the medicine water storage tank (12).
4. The high-efficiency and flexible carbon fiber camera support frame according to claim 3, characterized in that: It also includes a push switch (13), which is arranged on the front side of the bottom of the medicine water storage tank (12), and the push switch (13) is in contact with the driving net bag (11).
5. The high-efficiency and flexible carbon fiber camera support frame according to claim 4, characterized in that: The unmanned aerial vehicle (1) further comprises a motor (15), a rotating shaft (16), a connecting shaft (17) and a shielding cover (18). The motor (15) located in front of the medicine storage tank (12) is installed at the bottom of the unmanned aerial vehicle (1). The output shaft of the motor (15) is connected to the rotating shaft (16) via a coupling. The rotating shaft (16) is rotatably connected to the bottom end of the unmanned aerial vehicle (1). The connecting shaft (17) is provided on the rotating shaft (16). The shielding cover (18) is hingedly provided on the connecting shaft (17).
6. The high-efficiency and flexible carbon fiber camera support frame according to claim 5, characterized in that: Also includes A groove ring (181) is provided below the lens of the camera (3) and is provided with a groove ring (181) that is clamped with the shielding cover (18).