Unmanned aerial vehicle positioning bearing platform

By designing a combined structure of chutes, slide bars, trapezoidal blocks, and fixing plates on the drone carrier platform, and combining them with magnets and rubber pads, the problem of unstable drone positioning was solved, achieving safe fixation and shock absorption for the drone, and improving parking safety and service life.

CN224045503UActive Publication Date: 2026-03-27隗寿齐
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing drone carrier platforms lack effective positioning restrictions, which makes drones prone to swaying and potentially falling under wind or external forces, posing a safety risk.

Method used

A drone positioning and support platform was designed, which adopts a positioning component structure including a slide groove, a slide rod, a trapezoidal block and a fixing plate. The drone is fixed by the cooperation of the slide rod and the slide hole. The design of magnets and rubber pads enhances the fixing effect, and a damping shock absorber is used to reduce vibration.

Benefits of technology

It effectively secures the drone, reduces the risk of shaking and movement, improves the safety and stability of drone parking, and extends its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of unmanned aerial vehicles, and discloses an unmanned aerial vehicle positioning and bearing platform which comprises a bearing table, an unmanned aerial vehicle body is arranged on the bearing table, a bearing plate is connected to the bearing table, and two sets of positioning assemblies which are symmetrically arranged left and right and used for fixing the unmanned aerial vehicle body are arranged on the bearing plate. Comprising a first sliding groove formed in a bearing plate, a second sliding groove is formed in the bottom of the first sliding groove, a lifting block is connected to the interior of the second sliding groove through a plurality of springs, a trapezoidal block is connected to the top of the lifting block, fixing plates are connected to the two sides of the trapezoidal block correspondingly, inclined sliding holes are symmetrically formed in the trapezoidal block, and sliding rods are connected to the fixing plates; the sliding rod is slidably inserted into the sliding hole. And by arranging the positioning assembly, the position of the unmanned aerial vehicle on the bearing table is fixed, and the risk of accidental damage caused by shaking or moving is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to unmanned plane technical field, specifically point to a kind of unmanned plane positioning bearing platform. BACKGROUND

[0002] Unmanned plane bearing platform refers to the device for supporting, stabilizing and controlling unmanned plane to take off, land and operate.

[0003] The common unmanned plane bearing platform on the market is mostly simple table body structure, and the unmanned plane is fixed when landing on the platform, so the unmanned plane without fixation may shake under the action of wind or other external force, and may fall from the platform, damaging the unmanned plane, which has certain safety risk. UTILITY MODEL CONTENT

[0004] (I) technical problem solved

[0005] The technical problem to be solved by the utility model is to overcome the defect that the unmanned plane is not positioned and limited on the above-mentioned bearing platform, and to provide an unmanned plane positioning bearing platform.

[0006] (II) technical scheme

[0007] To solve the above technical problem, the utility model provides a technical scheme of an unmanned plane positioning bearing platform, which comprises a bearing table, an unmanned plane body is arranged on the bearing table, a bearing plate is connected to the bearing table, two groups of positioning assemblies for fixing the unmanned plane body are arranged on the bearing plate in a left-right symmetrical manner, the positioning assembly comprises a sliding groove one arranged on the bearing plate, a sliding groove two is arranged at the bottom of the sliding groove one, a lifting block is connected to the sliding groove two through a plurality of springs, a trapezoidal block is connected to the top of the lifting block, a fixed plate is connected to the two sides of the trapezoidal block, respectively, an inclined sliding hole is arranged on the trapezoidal block in a symmetrical manner, a sliding rod is connected to the fixed plate, and the sliding rod is slidingly inserted into the sliding hole.

[0008] As an improvement, the fixed plate is a reverse L-shaped plate structure, the contact surface of the fixed plate and the trapezoidal block is a slope structure with the same slope as the trapezoidal block, and the inclination angle of the sliding hole is the same as the inclination angle of the slope of the trapezoidal block.

[0009] As an improvement, limit grooves are arranged on the two side walls of the sliding groove one, a limit plate is connected to one side of the fixed plate, and the limit plate is slidingly arranged in the limit groove.

[0010] As an improvement, a rubber pad is arranged on the contact surface of the fixed plate and the bottom support plate of the unmanned plane body.

[0011] As an improvement, a magnet is embedded in the top of the trapezoidal block and the bottom support plate of the unmanned plane body, respectively, and the two magnets are magnetically attracted.

[0012] As an improvement: the bearing table is provided with a through slot, and a plurality of damping shock absorbers are arranged in the through slot; the bottom surface of the bearing plate is connected with one end of the damping shock absorber.

[0013] (Three), beneficial effects

[0014] Compared with the prior art, the utility model has the advantages of:

[0015] Through the setting of the positioning assembly, when the unmanned aerial vehicle body bottom support plate contacts the trapezoidal block stone, the trapezoidal block is pressed down, the fixed plate is lifted under the cooperation of the slide rod and the inclined slide hole and is buckled above the support plate of the unmanned aerial vehicle, the position of the unmanned aerial vehicle body on the bearing table is fixed, the accidental risk caused by shaking or moving is reduced, and the safety of the unmanned aerial vehicle parking is improved. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 is a use state structure schematic diagram of the utility model of an unmanned aerial vehicle positioning bearing platform.

[0017] Figure 2 is Figure 1 the bearing table structure schematic diagram in.

[0018] Figure 3 is Figure 2 the front view local section structure schematic diagram of.

[0019] Figure 4 is Figure 2 the structure schematic diagram of removing a group of positioning assemblies in.

[0020] Figure 5 is Figure 2 the positioning assembly structure schematic diagram in.

[0021] Figure 6 is Figure 5 the explosion structure schematic diagram of.

[0022]

BRIEF DESCRIPTION OF DRAWINGS

[0023] 1, bearing table;2, unmanned aerial vehicle body;3, bearing plate;4, sliding groove one;5, sliding groove two;6, lifting block;7, trapezoidal block;8, fixed plate;9, slide hole;10, slide rod;11, limit groove;12, limit plate;13, rubber pad;14, magnet;15, through slot;16, damping shock absorber. DETAILED DESCRIPTION

[0024] The utility model makes further detailed description in combination with the drawings. Same parts are indicated with same reference numerals.

[0025] It should be noted that the words "front", "back", "left", "right", "upper" and "lower" used in the following description refer to the directions in the drawings, and the words "inner" and "outer" refer to the directions towards or away from the geometric center of a particular component.

[0026] In order to make the content of the utility model more easily understood clearly, the technical solutions in the utility model embodiments will be described clearly and completely below in combination with the drawings in the utility model embodiments.

[0027] In combination with the drawings shown in Figures 1 to 3 , Figure 5 and Figure 6 , a positioning bearing platform for unmanned aerial vehicle includes a bearing table 1, the bearing table 1 is provided with an unmanned aerial vehicle body 2, the bearing table 1 is connected with a bearing plate 3, the bearing plate 3 is provided with two groups of positioning assemblies for fixing the unmanned aerial vehicle body 2 which are symmetrically arranged left and right, the positioning assembly includes a sliding groove one 4 opened on the bearing plate 3, the bottom of the sliding groove one 4 is provided with a sliding groove two 5, a plurality of springs are connected in the sliding groove two 5 to provide a lifting block 6, the top of the lifting block 6 is connected with a trapezoidal block 7, the trapezoidal block 7 is connected with a fixed plate 8 on both sides, wherein the fixed plate 8 is a reverse L-shaped plate structure, the contact surface of the fixed plate 8 and the trapezoidal block 7 is a slope structure with the same slope as the trapezoidal block 7, the trapezoidal block 7 is provided with a symmetrically arranged inclined sliding hole 9, the inclination angle of the sliding hole 9 is the same as the inclination angle of the slope of the trapezoidal block 7, a sliding rod 10 is connected on the fixed plate 8, and the sliding rod 10 is slidingly inserted into the sliding hole 9.

[0028] When the unmanned aerial vehicle body 2 is parked, the unmanned aerial vehicle bottom support plate is aligned with the trapezoidal block 7 and is lowered, when the unmanned aerial vehicle body 2 presses the trapezoidal block 7 downward, the trapezoidal block 7 moves downward, at this time, the fixed plate 8 is pushed upward under the cooperation of the sliding hole 9 and the sliding rod 10, until it is buckled above the support plate of the unmanned aerial vehicle body 2, at this time, the fixing and limiting of the unmanned aerial vehicle body 2 are completed, and the safety of parking is ensured.

[0029] In order to ensure the stable lifting of the fixed plate 8, in combination with the drawings shown in Figure 4 and Figure 5 , the two side walls of the sliding groove one 4 are both provided with a limiting groove 11, one side of the fixed plate 8 is connected with a limiting plate 12, the limiting plate 12 is slidingly located in the limiting groove 11, and the limiting groove 11 and the limiting plate 12 cooperate to limit the displacement of the fixed plate 8, so that the fixed plate 8 stably lifts along the limiting groove 11.

[0030] In combination with the drawings shown in Figure 5 and Figure 6 , the two side walls of the sliding groove one 4 are both provided with a limiting groove 11, one side of the fixed plate 8 is connected with a limiting plate 12, the limiting plate 12 is slidingly located in the limiting groove 11, and the limiting groove 11 and the limiting plate 12 cooperate to limit the displacement of the fixed plate 8, so that the fixed plate 8 stably lifts along the limiting groove 11.As shown, the fixing plate 8 is in contact with the bottom support plate of the UAV body 2, and a rubber pad 13 is arranged on the contact surface of the fixing plate 8, which can reduce the damage caused by the direct contact between the fixing plate 8 and the UAV body 2, and a magnet 14 is embedded in the top of the trapezoidal block 7 and the bottom support plate of the UAV body 2 respectively, and the two magnets 14 are magnetically attracted to each other, which can further fix the UAV body 2 and improve the safety of the UAV body 2.

[0031] The accompanying drawings are referred to in the description of the application. Figure 3 As shown, the bearing table 1 is provided with a through slot 15, and a plurality of damping shock absorbers 16 are arranged in the through slot 15, and the bottom surface of the bearing plate 3 is connected with one end of the damping shock absorber 16, and the design of the damping shock absorber 16 can reduce the vibration of the UAV during taking off and landing, and improve the accuracy of parking positioning and the service life of the UAV.

[0032] The above describes the present application and its embodiments, which are not limited, and the drawings only show one of the embodiments of the present application, and the actual structure is not limited thereto. In summary, if a person skilled in the art is inspired by the above description, without departing from the creative purpose of the present application, similar structural modes and embodiments can be designed without creativity, which should belong to the protection scope of the present application.

Claims

1. An unmanned aerial vehicle positioning bearing platform, comprising a bearing table (1), wherein an unmanned aerial vehicle body (2) is arranged on the bearing table (1), and characterized in that: a bearing plate (3) is arranged on the bearing table (1), and two groups of positioning assemblies for fixing the unmanned aerial vehicle body (2) are arranged on the bearing plate (3) in a left-right symmetrical manner; the positioning assembly comprises a chute one (4) arranged on the bearing plate (3), a chute two (5) arranged at the bottom of the chute one (4), a lifting block (6) connected to the chute two (5) by a plurality of springs, a trapezoidal block (7) connected to the top of the lifting block (6), a fixed plate (8) arranged on both sides of the trapezoidal block (7), an inclined slide hole (9) arranged on the trapezoidal block (7) in a symmetrical manner, a slide rod (10) arranged on the fixed plate (8), and the slide rod (10) is slidingly inserted into the slide hole (9).

2. The unmanned aerial vehicle positioning and carrying platform according to claim 1, wherein: The fixed plate (8) is an inverted L-shaped plate structure, the contact surface between the fixed plate (8) and the trapezoidal block (7) is a slope structure with the same slope as the trapezoidal block (7), and the inclination angle of the slide hole (9) is the same as the inclination angle of the slope of the trapezoidal block (7).

3. The unmanned aerial vehicle positioning and carrying platform according to claim 2, characterized in that: Limiting grooves (11) are arranged on both side walls of the chute one (4), a limiting plate (12) is arranged on one side of the fixed plate (8), and the limiting plate (12) is slidingly arranged in the limiting groove (11).

4. The unmanned aerial vehicle positioning and carrying platform according to claim 1, wherein: A rubber pad (13) is arranged on the contact surface between the fixed plate (8) and the bottom support plate of the unmanned aerial vehicle body (2).

5. The unmanned aerial vehicle positioning and carrying platform according to claim 4, characterized in that: Magnets (14) are respectively embedded in the top of the trapezoidal block (7) and the bottom support plate of the unmanned aerial vehicle body (2), and the two magnets (14) are magnetically attracted to each other.

6. The unmanned aerial vehicle positioning and carrying platform according to claim 1, wherein: A through groove (15) is arranged in the bearing table (1), a plurality of damping shock absorbers (16) are arranged in the through groove (15) in an array, and the bottom surface of the bearing plate (3) is connected to one end of the damping shock absorber (16).