Anti-skid mounting seat for unmanned aerial vehicle
By designing the anti-slip mount of the drone, the limiting grooves and adjustable foot structure on the top of the box are used to solve the stability of the drone taking off and landing in outdoor slope environments, and achieve stable support and convenient operation on uneven surfaces.
Patent Information
- Application Number
- CN202422529319.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-19
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-10-19
AI Technical Summary
Existing drones are prone to slide and offset when taking off and landing, especially in environments with large outdoor slopes, and it is difficult to take off and land stably on uneven surfaces.
A drone anti-slip mount is designed, including a box and a support mechanism. The top of the box is equipped with grooves and limiting grooves. The cover plate can be slid open to expose the limiting grooves. The support mechanism adjusts the length of the support foot through the adjustment button and spring structure to ensure that the box remains flat on the inclined surface and a support ring at the bottom of the support foot increases stability.
In outdoor large slope environments, it can effectively stabilize the takeoff and landing of the drone, avoid sliding, and improve the convenience of the drone on uneven surfaces.
Smart Images

Figure CN223162011U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of UAV components, in particular to an anti-slip mounting seat for a UAV. Background Technique
[0002] The unmanned aerial vehicle, abbreviated as UAV, is an unpiloted aircraft controlled by a radio remote control device and a self-contained program control device, or is completely or intermittently autonomously operated by an on-vehicle computer. With the continuous development of UAV technology, its automation and intelligence levels are getting higher and higher, and it has been widely used in many fields such as high-altitude exploration, surveying and mapping, and aerial photography.
[0003] The existing UAVs have the following drawbacks during takeoff and landing: The takeoff and landing of UAVs usually need to be carried out on a flat ground. For example, when a surveying and mapping UAV is in use, it is often necessary to use it in outdoor mountain environments, etc., where it is inconvenient to find a flat ground. Usually, the UAV is directly placed on the surface of the packaging box for takeoff and landing, and the smooth surface of the box body causes the UAV to be prone to slipping and deviation during takeoff and landing. Especially when used in outdoor environments with a large slope, it is very inconvenient. Therefore, we propose an anti-slip mounting seat for a UAV. Content of the Utility Model
[0004] The main purpose of the utility model is to provide an anti-slip mounting seat for a UAV. By modifying the UAV packaging box, it can meet the takeoff and landing requirements of the UAV under large slope conditions outdoors, improve the stability of the UAV during takeoff and landing, and can effectively solve the problems in the background technique.
[0005] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] An anti-slip mounting seat for a UAV, including a box body, and further including a supporting mechanism. The supporting mechanism is arranged on the top of the box body. The supporting mechanism includes a chute, a cover plate, end plates, a groove and a limiting groove. The upper surface of the box body is provided with a groove, and both sides of the inner wall of the groove are horizontally provided with chutes. The box body is slidably connected with the cover plate through the chutes, and end plates are integrally formed at one ends of the cover plate away from the box body. Limiting grooves corresponding to the positions of the UAV bracket structure are opened on both sides inside the groove.
[0007] Furthermore, it further includes a support mechanism. The support mechanism is arranged at the bottom of the box body. The support mechanism includes a slot, spring A, a support foot, spring B, an arc-shaped rubber ring and an adjustment button. Slots are opened at the four corners of the inner bottom end of the box body, and support feet are movably connected inside the slots through spring A. Spring B is installed on one side of the box body close to the slot and is movably connected through spring B with an arc-shaped rubber ring that fits on the surface of the support foot. Adjustment buttons are arranged at positions corresponding to the slots on the surface of the box body; when the box body is supported in a large-slope outdoor environment, the inclination of the box body is relatively large. At this time, the adjustment button can be pressed. The adjustment button drives the arc-shaped rubber ring to move through a connecting rod. After the support foot loses the clamping force, it pops out under the elastic force of spring A. After reaching the appropriate height, the adjustment button is released, and spring B drives the arc-shaped rubber ring to reset and fix the position of the support foot. By adjusting the extension length of the support feet at the four corners, the flatness of the top of the box body after placement can be adjusted in a large-slope environment, thereby facilitating the takeoff and landing of the drone.
[0008] Furthermore, sliding blocks inserted into the inside of the sliding grooves are integrally formed on both sides of the surface of the cover plate; through the cooperation of the sliding blocks and the sliding grooves, it is convenient to smoothly adjust the sliding of the cover plate.
[0009] Furthermore, damping rotating shafts are installed on both sides of the surface of the box body close to the end plates, and the box body is movably connected through the damping rotating shafts with buckles that are clamped on the surface of the end plates; the buckles can be flipped along the damping rotating shafts, and their positions are fixed by using the buckles in the closed state of the cover plate.
[0010] Furthermore, support rings are installed at the bottoms of the support feet, and connecting rods are installed between the surfaces of the adjustment buttons on one side inside the box body and the arc-shaped rubber rings; the support ring structure can increase the ground contact area at the bottom of the support feet and improve stability. When the adjustment button is pressed, the arc-shaped rubber ring is driven to move through the connecting rod.
[0011] Compared with the prior art, the utility model has the following beneficial effects: A groove structure and a cover plate structure are provided on the top of the box body. In the normal use state, the drone is loaded inside the box body, and the cover plate is in a closed state, making the top of the box body flat, which is convenient for carrying. When it is necessary to take off the drone in an outdoor environment, the drone can be taken out and the cover plate on the top of the box body can be opened. After the cover plate is opened, the groove is exposed. It has a certain depth and is provided with a limit groove structure aligned with the support frame of the drone inside. After the drone is assembled, the support frame at its bottom can be aligned with the limit groove and inserted. The limit groove structure is used to position the drone, which is convenient for taking off and landing the drone. Even if the box body is placed with a certain slope in the outdoor environment, it can still maintain stable support for the drone and prevent it from slipping; When the box body is supported in a large-slope outdoor environment and the inclination of the box body is large, the adjustment button can be pressed at this time. The adjustment button drives the arc-shaped rubber ring to move through the connecting rod. After the support feet lose their clamping force, they pop out under the elastic force of spring A. After reaching the appropriate height, the adjustment button is released, and spring B drives the arc-shaped rubber ring to reset and fix the position of the support feet. By adjusting the extension length of the support feet at the four corners, the flatness of the top of the box body after placement can be adjusted in a large-slope environment, which is convenient for the takeoff and landing of the drone. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 FIG. is a schematic diagram of the overall structure of an anti-slip mounting seat for a drone of the utility model.
[0013] Figure 2 FIG. is a schematic diagram of the structure after the cover plate of an anti-slip mounting seat for a drone of the utility model is opened.
[0014] Figure 3 FIG. is a schematic side view of the installation of the support feet of an anti-slip mounting seat for a drone of the utility model.
[0015] Figure 4 FIG. is a schematic top view of the installation of the support feet of an anti-slip mounting seat for a drone of the utility model.
[0016] In the figure: 1. Box body; 2. Supporting mechanism; 201. Slide groove; 202. Cover plate; 203. End plate; 204. Slide block; 205. Groove; 206. Limit groove; 207. Damping rotating shaft; 208. Buckle; 3. Support mechanism; 301. Slot; 302. Spring A; 303. Support foot; 304. Support ring; 305. Spring B; 306. Arc-shaped rubber ring; 307. Adjustment button; 308. Connecting rod. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] In order to make the technical means, creative features, achieved purposes and effects of the utility model easy to understand, the utility model will be further described below in conjunction with specific embodiments.
[0018] As shown Figures 1-4 in the figure, an anti-slip mounting base for a drone includes a box body 1 and a supporting mechanism 2. The supporting mechanism 2 is arranged on the top of the box body 1. The supporting mechanism 2 includes a chute 201, a cover plate 202, end plates 203, a groove 205 and a limiting groove 206. The groove 205 is formed on the upper surface of the box body 1, and the chute 201 is horizontally formed on both sides of the inner wall of the groove 205. The box body 1 is slidably connected with the cover plate 202 through the chute 201, and end plates 203 are integrally formed at one end of the cover plate 202 away from the box body 1. The limiting grooves 206 corresponding to the positions of the drone bracket structure are formed on both sides inside the groove 205.
[0019] Moreover, a supporting mechanism 3 is included. The supporting mechanism 3 is arranged at the bottom of the box body 1. The supporting mechanism 3 includes a slot 301, a spring A 302, a support foot 303, a spring B 305, an arc-shaped rubber ring 306 and an adjustment button 307. Slots 301 are formed at the four corners of the inner bottom end of the box body 1, and the support feet 303 are movably connected inside the slots 301 through the spring A 302. A spring B 305 is installed on one side of the box body 1 close to the slot 301 and is movably connected with the arc-shaped rubber ring 306 attached to the surface of the support foot 303 through the spring B 305. Adjustment buttons 307 are arranged at the positions corresponding to the slots 301 on the surface of the box body 1; when the box body 1 is supported in a large-slope outdoor environment, the inclination of the box body 1 is large. At this time, the adjustment button 307 can be pressed. The adjustment button 307 drives the arc-shaped rubber ring 306 to move through the connecting rod 308. After the clamping of the support foot 303 is released, the support foot 303 pops out under the elastic force of the spring A 302. After reaching the appropriate height, the adjustment button 307 is released, and the spring B 305 drives the arc-shaped rubber ring 306 to reset and fix the position of the support foot 303. By adjusting the extending length of the support feet 303 at the four corners, the flatness of the top of the box body 1 after placement can be adjusted in a large-slope environment, thereby facilitating the takeoff and landing of the drone.
[0020] Moreover, sliding blocks 204 inserted into the chute 201 are integrally formed on both sides of the surface of the cover plate 202, and damping rotating shafts 207 are installed on both sides of the surface of the box body 1 close to the end plates 203. The box body 1 is movably connected with a buckle 208 clamped on the surface of the end plate 203 through the damping rotating shaft 207; through the cooperation of the sliding blocks 204 and the chute 201, the sliding adjustment of the cover plate 202 can be conveniently and smoothly carried out, and the buckle 208 can be flipped along the damping rotating shaft 207 to fix its position in the closed state of the cover plate 202.
[0021] Wherein, support rings 304 are installed at the bottoms of the feet 303, and connecting rods 308 are installed between one side of the interior of the box body 1 and the arc-shaped rubber ring 306 on the surface of the adjustment button 307; the structure of the support ring 304 can increase the ground contact area of the bottom of the feet 303 and improve stability. When the adjustment button 307 is pressed, the connecting rod 308 drives the movement of the arc-shaped rubber ring 306.
[0022] It should be noted that the present utility model is an anti-slip mounting seat for a drone. During use, a groove 205 structure and a cover plate 202 structure are provided at the top of the box body 1. Under normal use conditions, the drone is loaded inside the box body 1, and the cover plate 202 is in a closed state, making the top of the box body 1 flat and convenient for carrying. When it is necessary to take off the drone in an outdoor environment, the drone can be taken out and the cover plate 202 at the top of the box body 1 can be opened. After the cover plate 202 is opened, the groove 205 is exposed. It has a certain depth and a limiting groove 206 structure aligned with the drone support frame is provided inside. After the drone is assembled, the support frame at its bottom can be aligned with the limiting groove 206 and inserted. The position of the drone can be positioned by using the limiting groove 206 structure, which is convenient for the takeoff and landing of the drone. Even if the box body 1 is placed with a certain slope in the outdoor environment, it can still maintain stable support for the drone and prevent it from slipping; when supporting the box body 1 in a large-slope outdoor environment, the inclination of the box body 1 is large. At this time, the adjustment button 307 can be pressed. The adjustment button 307 drives the arc-shaped rubber ring 306 to move through the connecting rod 308. After the feet 303 lose their clamping force, they pop out under the elastic force of the spring A 302. After reaching the appropriate height, the adjustment button 307 is released, and the spring B 305 drives the arc-shaped rubber ring 306 to reset and fix the position of the feet 303. By adjusting the extension lengths of the feet 303 at the four corners, the flatness of the top of the box body 1 after placement can be adjusted in a large-slope environment, thereby facilitating the takeoff and landing of the drone.
[0023] The above has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art of this industry should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. A non-slip mounting base for a drone, comprising a box body (1), characterized in that, It further includes a supporting mechanism (2). The supporting mechanism (2) is arranged on the top of the box body (1). The supporting mechanism (2) includes a sliding groove (201), a cover plate (202), end plates (203), a groove (205) and a limiting groove (206). A groove (205) is formed on the upper surface of the box body (1), and sliding grooves (201) are horizontally formed on both sides of the inner wall of the groove (205). The box body (1) is slidably connected with the cover plate (202) through the sliding groove (201), and end plates (203) are integrally formed at one end of the cover plate (202) away from the box body (1). Limiting grooves (206) corresponding to the positions of the drone bracket structure are formed on both sides inside the groove (205).
2. The anti-slip mounting base for a drone according to claim 1, wherein: It further includes a supporting mechanism (3). The supporting mechanism (3) is arranged at the bottom of the box body (1). The supporting mechanism (3) includes a slot (301), a spring A (302), a supporting leg (303), a spring B (305), an arc-shaped rubber ring (306) and an adjustment button (307). Slots (301) are formed at the four corners of the inner bottom end of the box body (1), and the supporting legs (303) are movably connected inside the slots (301) through the spring A (302). A spring B (305) is installed on one side of the box body (1) close to the slot (301) and is movably connected with the arc-shaped rubber ring (306) attached to the surface of the supporting leg (303) through the spring B (305). Adjustment buttons (307) are arranged at the positions corresponding to the slots (301) on the surface of the box body (1).
3. The anti-slip mounting base for a drone according to claim 1, characterized in that: Sliders (204) inserted into the inside of the sliding groove (201) are integrally formed on both sides of the surface of the cover plate (202).
4. A non-slip mounting base for a drone according to claim 1, characterized in that: Damping rotating shafts (207) are installed at positions close to the end plates (203) on both sides of the surface of the box body (1), and the box body (1) is movably connected with a buckle (208) clamped on the surface of the end plate (203) through the damping rotating shaft (207).
5. The anti-slip mounting base for a drone according to claim 2, wherein: Supporting rings (304) are installed at the bottoms of the supporting legs (303), and connecting rods (308) are installed between the surface of the adjustment button (307) on one side inside the box body (1) and the arc-shaped rubber ring (306).