Unmanned aerial vehicle remote control antenna

By incorporating a rotatable handle assembly with a built-in antenna in the drone remote controller, the problem of insufficient horizontal coverage of traditional antennas is solved, resulting in better signal coverage and operational flexibility, and improving the safety and stability of drone flight.

CN223638604UActive Publication Date: 2025-12-05SHENZHEN ALMU INNOVATION TECH CO LTD
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Patent Information

Application Number
CN202422485190.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-12-05
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

Traditional drone remote controller antennas have a narrow horizontal coverage area, which leads to a decrease or even loss of signal strength during long-distance flight or in obstructed environments, affecting operational flexibility and safety.

Method used

Design a drone remote control antenna. The antenna is installed inside a handle assembly, which can rotate around the main body to make the antenna parallel to the remote controller, thereby enhancing horizontal signal coverage. The handle assembly also supports the remote controller and transmits signals.

Benefits of technology

It improves the flexibility and portability of the remote controller, ensures the stability and reliability of signal transmission, avoids signal blind spots, and reduces the risk of loss of control during flight.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides an unmanned aerial vehicle remote control antenna, which comprises a control rocker for controlling the flight of an unmanned aerial vehicle, and is characterized in that the remote control antenna also comprises a body which comprises a first surface and a second surface which are oppositely arranged, and the control rocker is arranged on the first surface; the handle mechanism is arranged on the second face, and the handle mechanism comprises an overturning assembly and a handle assembly; wherein an antenna is arranged in the handle assembly, the antenna is parallel to the second surface, so that the antenna is relatively parallel to the aircraft, and the handle assembly can rotate around the body, so that the handle assembly can be used for transmitting signals or supporting the body. The antenna is integrated in the handle assembly and can be rotated to adjust the angle, so that the horizontal signal coverage is enhanced. The handle assembly has supporting and signal transmission functions, the use flexibility and portability of the remote controller are improved, and meanwhile it is ensured that signals are stable and reliable.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of antennas, in particular to a remote control antenna for unmanned aerial vehicles. BACKGROUND

[0002] With the rapid development of unmanned aerial vehicle technology, the performance and reliability of the unmanned aerial vehicle remote control device, as an important tool for controlling unmanned aerial vehicles, are crucial to the safety of unmanned aerial vehicle flight. In the unmanned aerial vehicle remote control device, the antenna is one of the key components, which is responsible for receiving signals from the unmanned aerial vehicle and sending control instructions, and its design is directly related to the quality of signal transmission and coverage.

[0003] The traditional design of the antenna of the unmanned aerial vehicle remote control device mainly considers the height of the antenna and the signal transmission in the vertical direction. This design can ensure signal transmission within a certain height range to some extent. However, the traditional vertical antenna may have a narrow coverage range in the horizontal direction, which limits the operational flexibility of the unmanned aerial vehicle at certain angles. When the unmanned aerial vehicle is operated at a long distance or in an environment with obstructions, this vertical antenna design may not effectively cover the required signal area, resulting in a decrease in signal strength, and even signal loss.

[0004] Therefore, it is necessary to provide an unmanned aerial vehicle remote control antenna capable of enhancing the horizontal signal coverage range. SUMMARY

[0005] Therefore, it is necessary to provide an unmanned aerial vehicle remote control antenna capable of enhancing the horizontal signal coverage range.

[0006] The embodiment of the present application provides an unmanned aerial vehicle remote control antenna, comprising a control rocker for controlling the flight of an unmanned aerial vehicle, characterized in that the remote control device further comprises:

[0007] a body comprising a first face and a second face arranged opposite to each other, the control rocker being arranged on the first face;

[0008] a handle mechanism arranged on the second face, the handle mechanism comprising a turnover assembly and a handle assembly, one end of the turnover assembly being arranged on the second face, and the other end being detachably connected to the handle assembly;

[0009] wherein an antenna is arranged in the handle assembly, and the antenna is arranged parallel to the second face, so that the antenna is relatively parallel to the aerial vehicle, and the handle assembly can rotate around the body, so that the handle assembly can be used to transmit signals or support the body.

[0010] In at least one embodiment of the present application, the overturning assembly comprises a first connecting column and a second connecting column, the first connecting column and the second connecting column are arranged on the second surface in a symmetrical structure.

[0011] In at least one embodiment of the present application, the first connecting column comprises a fixed part, a rotating part and a rotating shaft, the fixed part extends along a direction perpendicular to the second surface, and the rotating shaft passes through the fixed part and the rotating part to rotate the fixed part and the rotating part.

[0012] In at least one embodiment of the present application, the fixed part comprises a fixed column and a first rotating column, one end of the first rotating column is arranged on the fixed column, the other end of the first rotating column extends along the column body of the fixed column and forms a first groove in the column body of the fixed column; the rotating part comprises a connecting rod and a second rotating column, one end of the second rotating column is arranged on the connecting rod, the other end of the second rotating column extends along the rod body of the connecting rod and forms a second groove in the rod body of the connecting rod; the first rotating column and the second rotating column are arranged oppositely, so that the first rotating column extends into the second groove and the second rotating column extends into the first groove.

[0013] In at least one embodiment of the present application, the second rotating column has a first rotating part, the fixed column has an arc-shaped second rotating part, and the first rotating part and the second rotating part are matched; wherein the first rotating part has a first tooth, the second rotating part has a second tooth, and the first tooth and the second tooth are matched.

[0014] In at least one embodiment of the present application, the rotating part further comprises a buckle shell, the buckle shell is arranged on the connecting rod and away from one end of the second rotating column, the buckle shell has a buckle opening, and the handle assembly can extend into the buckle opening.

[0015] In at least one embodiment of the present application, the handle assembly has a mounting hole and a mounting cover, the antenna is arranged in the mounting hole, and the mounting cover covers the mounting hole.

[0016] In at least one embodiment of the present application, the antenna is a radio frequency coaxial cable antenna.

[0017] In at least one embodiment of the present application, the body comprises a first connecting shell and a second connecting shell, the first connecting shell and the second connecting shell are connected in a closed manner, the first surface is arranged on the first connecting shell, and the second surface is arranged on the second connecting shell.

[0018] In at least one embodiment of the present application, the first connecting housing comprises a display screen and a key assembly, and the display screen is electrically connected to the key assembly.

[0019] The unmanned aerial vehicle remote control antenna provided above, by installing the antenna in the handle assembly, and the handle assembly can rotate around the body, so that the antenna can be adjusted to different angles; the antenna is designed to be relatively parallel to the remote controller and the aircraft, so that the antenna enhances the signal coverage range in the horizontal direction; by setting the handle mechanism that connects the handle assembly and the turnover assembly, the user can hold the handle assembly to pick up the remote controller when the remote controller is idle, or place the remote controller on the plane through the handle mechanism, thereby supporting the remote controller. The handle assembly has a dual function, on the one hand, as a handle for the user to hold and support the remote controller, on the other hand, the built-in antenna is used for signal transmission, so that not only the use flexibility and portability of the remote controller are improved, but also the stability and reliability of signal transmission are ensured. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 It is a structural schematic diagram of an unmanned aerial vehicle remote control antenna in an embodiment of the present application.

[0021] Figure 2 It is an exploded schematic diagram of the first connecting column, the second connecting column and the handle assembly in an embodiment of the present application.

[0022] Figure 3 It is an exploded schematic diagram of the handle assembly, the connecting rod and the fixed column in an embodiment of the present application.

[0023] Figure 4 It is an exploded schematic diagram of the handle assembly in an embodiment of the present application.

[0024] Figure 5 It is a rotating structure schematic diagram of a handle assembly in an embodiment of the present application.

[0025] Figure 6 It is a rotating structure schematic diagram of another handle assembly in an embodiment of the present application.

[0026] MAIN ELEMENT SYMBOL EXPLANATION

[0027] 100. A remote control aerial vehicle antenna; 10. a body; 101. a first face; 102. a second face; 11. a first connecting housing; 111. a display screen; 112. a control joystick; 113. a key assembly; 12. a second connecting housing; 20. a handle mechanism; 21. a turnover assembly; 211. a first connecting column; 2111. a fixing piece; 2111a. a fixing column; 2111b. a first rotating column; 2111b1. a first rotating part; 2111c. a first groove; 2112. a rotating piece; 2112a. a connecting rod; 2112b. a second rotating column; 2112a1. a second rotating part; 2112c. a second groove; 2113. a rotating shaft; 1. a first tooth; 2. a second tooth; 2112d. a buckle housing; 212. a second connecting column; 3a. a buckle opening; 22. a handle assembly; 22a. a mounting hole; 221. a mounting cover; 23. an antenna. DETAILED DESCRIPTION

[0028] The embodiments of the present application will be described below in conjunction with the accompanying drawings, which are shown by way of example. It is obvious that the described embodiments are only a part of the embodiments of the present application, but not all of the embodiments of the present application.

[0029] It should be noted that when one component is considered to be "connected" to another component, it can be directly connected to the other component or can exist simultaneously with a middle component. When one component is considered to be "provided on" another component, it can be directly provided on the other component or can exist simultaneously with a middle component. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "back", and the like used herein are for illustrative purposes only.

[0030] The embodiments of the present application provide a remote control aerial vehicle antenna, which includes a control joystick for controlling the flight of an aerial vehicle, characterized in that the remote controller further comprises:

[0031] a body including a first face and a second face arranged oppositely, the control joystick being provided on the first face;

[0032] a handle mechanism provided on the second face, the handle mechanism including a turnover assembly and a handle assembly, one end of the turnover assembly extending in a direction perpendicular to the second face, and the other end being detachably connected to the handle assembly;

[0033] wherein the handle assembly is provided with an antenna, and the handle assembly is arranged in a direction parallel to the turnover assembly from the second face, so that the handle assembly is relatively parallel to the aerial vehicle, and the handle assembly can rotate around the body, so that the handle assembly can be used to transmit signals or support the body.

[0034] The unmanned aerial vehicle remote control antenna provided above, by installing the antenna in the handle assembly, and the handle assembly being capable of rotating around the body, so that the antenna can be adjusted to different angles; the antenna is designed to be relatively parallel to the remote controller and the aircraft, so that the antenna enhances the signal coverage range in the horizontal direction; by setting the handle mechanism that connects the handle assembly and the turnover assembly, the user can hold the handle assembly to pick up the remote controller, or place the remote controller on the plane through the handle mechanism when the remote controller is idle, so as to support the remote controller. The handle assembly has a dual function, on the one hand, as a handle for the user to hold and support the remote controller, and on the other hand, the built-in antenna is used for signal transmission, so that not only the use flexibility and portability of the remote controller are improved, but also the stability and reliability of signal transmission are ensured.

[0035] Some embodiments of the present application will be described in detail below with reference to the accompanying drawings. The following embodiments and features in the embodiments can be combined with each other without conflict.

[0036] According to Figures 1-6 , the unmanned aerial vehicle remote controller 100 antenna 23 provided in the embodiments of the present application includes a control rocker 112 for controlling the flight of the unmanned aerial vehicle, and the remote controller further includes a body including a first face 101 and a second face 102 arranged opposite to each other, and the control rocker 112 is arranged on the first face 101.

[0037] The handle mechanism 20 is arranged on the second face 102, and the handle mechanism 20 includes a turnover assembly 21 and a handle assembly 22, one end of the turnover assembly 21 is arranged on the second face 102, and the other end is detachably connected to the handle assembly 22; wherein the handle assembly 22 is internally provided with an antenna 23, and the antenna 23 is arranged from the second face 102 in a direction parallel to the turnover assembly 21, so that the antenna 23 is relatively parallel to the aircraft, and the handle assembly 22 is capable of rotating around the body 10, so that the handle assembly 22 can be used for signal transmission or for supporting the body 10.

[0038] Specifically, one end of the flip assembly 21 is fixed on the bottom of the remote controller by welding or bolt fixing, etc. Rotating the flip assembly 21 can flexibly adjust the handle assembly 22 to different angles to meet the signal coverage requirements in different scenarios. The rotation angle of the handle assembly 22 can be in the range of 0-180°, and the antenna 23 inside the handle assembly 22 is relatively parallel to the aircraft, so that the handle assembly 22 can rotate at different positions on the bottom of the remote controller, all of which can keep parallel direction with the aircraft, thereby changing the position of the antenna 23 to improve the signal coverage range. When using the remote controller, the antenna 23 arranged in the handle assembly 22 can maximize the signal radiation capability of the antenna 23 in the horizontal direction, which helps to ensure that the aircraft is always in the area with strong signal of the antenna 23 during flight, thereby obtaining better signal receiving effect. In the horizontal position, the antenna 23 can better cover the signal in the horizontal direction, improving the communication quality and stability. At the same time, the handle assembly 22 can also be used as a support structure to facilitate the user to use the remote controller in different environments. For example, when used outdoors, the handle mechanism 20 can be unfolded as a support to place the remote controller on the ground or other platform, or hold the handle assembly 22, thereby facilitating the placement of the overall remote controller.

[0039] Further, when the aircraft is above the remote controller, the antenna 23 needs to be adjusted to a horizontal state to obtain the best signal coverage range. The antenna 23 parallel to the aircraft can provide better signal quality, so that the signal strength of the antenna 23 in the horizontal direction is larger, which can more effectively cover the operating range of the unmanned aerial vehicle. This design is particularly suitable for application occasions that require extensive coverage and high signal stability.

[0040] In summary, when in use, the user rotates the handle assembly 22 by rotating the flip assembly 21, so that the handle assembly 22 rotates around the body 10, and the handle assembly 22 is rotated to a position parallel to the bottom of the remote controller, i.e. when viewed along the extension direction of the bottom of the remote controller, the angle between the handle assembly 22 and the bottom of the remote controller is 0° or 180°, at this time the antenna 23 in the handle assembly 22 is in parallel position with the aircraft, which maximizes the aircraft in the area with the strongest signal of the antenna 23, which helps to avoid signal blind area caused by improper direction of the antenna 23, thereby reducing the risk of loss of control during flight. In another embodiment, when the handle assembly 22 is rotated to a rotation angle of 0° to 90° with the bottom of the remote controller, the handle assembly 22 serves as a hand-held handle. In another embodiment, the handle assembly 22 can be placed on a table or the ground to facilitate the user to place the body 10, so that when the remote controller is placed on the table or the ground, in case of emergency, the user can easily pick up the remote controller from the table or the ground.

[0041] In a specific embodiment, the overturning assembly 21 comprises a first connecting column 211 and a second connecting column 212, which are arranged adjacently at the bottom of the remote controller body 10 and are symmetrically structured.

[0042] Specifically, one end of the first connecting column 211 and the second connecting column 212 is arranged on the left and right sides of the bottom of the remote controller respectively by welding, bolting or other fixing methods, for fixing and supporting the handle assembly 22. The other end of the first connecting column 211 and the second connecting column 212 is detachably connected with the handle assembly 22, ensuring that the handle assembly 22 remains stable during rotation. The first connecting column 211 and the second connecting column 212 are symmetrically structured, which means that they are corresponding to each other in shape, size and function, which helps to ensure that the handle assembly 22 can remain stable and evenly stressed during rotation or support.

[0043] In a specific embodiment, the first connecting column 211 comprises a fixing part 2111, a rotating part 2112 and a rotating shaft 2113, the fixing part 2111 extends along the vertical direction of the bottom of the remote controller body 10, and the rotating shaft 2113 penetrates the fixing part 2111 and the rotating part 2112 for rotatingly connecting the fixing part 2111 and the rotating part 2112.

[0044] Specifically, the fixing part 2111 is a connecting part directly fixed to the bottom of the remote controller, which is a columnar structure in the embodiment of the present application. The rotating part 2112 and the rotating shaft 2113 are used in cooperation to realize the rotating function of the handle assembly 22. When the user needs to adjust the angle of the antenna 23, the handle assembly 22 can be rotated around the rotating shaft 2113 by operating the rotating part 2112. The rotating shaft 2113 is the central axis penetrating the fixing part 2111 and the rotating part 2112, which provides support and guidance for the rotation of the handle assembly 22. When the rotating part 2112 is operated, the rotating shaft 2113 will rotate, thereby driving the handle assembly 22 to rotate around the axis of the rotating shaft 2113.

[0045] Further, when it is needed to enhance the horizontal signal coverage, the handle assembly 22 is rotated from the vertical position to the horizontal position by operating the flipping assembly 21. Specifically, the handle assembly 22 is held and rotated around the axis of the rotation shaft 2113 of the first connecting post 211 and the second connecting post 212. Since the first connecting post 211 is designed with the fixed part 2111, the rotating part 2112 and the rotation shaft 2113, when the handle assembly 22 is rotated, the rotating part 2112 rotates around the rotation shaft 2113 with the fixed part 2111, so that the handle assembly 22 can be kept stable and uniform in force during the rotation. At the same time, the stable connection and relative movement between the rotating part 2112 and the fixed part 2111 also ensure the stability and reliability of the whole system.

[0046] In a specific embodiment, the fixed part 2111 includes a fixed post 2111a and a first rotating post 2111b, one end of the first rotating post 2111b is arranged on the fixed post 2111a, the other end continues to extend along the column body of the fixed post 2111a and forms a first groove 2111c on the column body of the fixed post 2111a; the rotating part 2112 includes a connecting rod 2112a and a second rotating post 2112b, one end of the second rotating post 2112b is arranged on the connecting rod 2112a, the other end continues to extend along the rod body of the connecting rod 2112a and forms a second groove 2112c on the rod body of the connecting rod 2112a; the first rotating post 2111b and the second rotating post 2112b are arranged oppositely, so that the first rotating post 2111b extends into the second groove 2112c and the second rotating post 2112b extends into the first groove 2111c.

[0047] Specifically, the fixed post 2111a and the first rotating post 2111b can be an integrated structure or fixed by welding. The fixed post 2111a and the first rotating post 2111b are fixed to form the first groove 2111c for accommodating the second rotating post 2112b of the connecting rotating part 2112. The connecting rod 2112a and the second rotating post 2112b can be an integrated structure or fixed by welding. The second groove 2112c is used to accommodate the first rotating post 2111b of the connecting fixed part 2111. The rotation shaft 2113 passes through the first rotating post 2111b and the second rotating post 2112b, when the rotating part 2112 is operated to rotate, the second rotating post 2112b moves with the connecting rod 2112a around the rotation shaft 2113, so that the second rotating post 2112b of the rotating part 2112 rotates around the rotation shaft 2113.

[0048] In an embodiment, the second rotating column 2112b has a first rotating part 2111b1, the fixed column 2111a has an arc-shaped second rotating part 2112a1, and the first rotating part 2111b1 matches the second rotating part 2112a1; wherein the first rotating part 2111b1 has a first tooth 1, and the second rotating part 2112a1 has a second tooth 2, and the first tooth 1 matches the second tooth 2.

[0049] Specifically, the first rotating part 2111b1 is a cylindrical surface part on the second rotating column 2112b, and the second rotating part 2112a1 is an arc-shaped groove surface on the fixed column 2111a, so that the first rotating part 2111b1 moves along the arc-shaped track of the second rotating part 2112a1, thereby realizing the rotating rotation of the rotating part 2112. The first tooth 1 is a part of the first rotating part 2111b1, which has a specific shape and size and matches the second tooth 2. When the rotating part 2112 is operated to rotate, the first tooth 1 will engage with the second tooth 2, thereby realizing the rotation of the rotating part 2112. The first tooth 1 and the second tooth 2 increase the contact area and contact points between the fixed part 2111 and the rotating part 2112 by engaging with each other, thereby increasing the friction. The relative sliding between the fixed part 2111 and the rotating part 2112 is effectively prevented, and stability can be maintained even when subjected to external vibration or impact. The mutual engagement of the teeth can prevent accidental rotation of the rotating part 2112 when no external force is applied, and ensure that the antenna 23 remains in the set direction.

[0050] In an embodiment, the rotating part 2112 further comprises a buckle shell 2112d, which is arranged on the connecting rod 2112a and away from one end of the second rotating column 2112b, and the buckle shell 2112d has a buckle opening 3a, and the handle assembly 22 can be inserted into the buckle opening 3a.

[0051] Specifically, the buckle shell 2112d is added to the rotating part 2112, and the buckle shell 2112d and the rotating part 2112 are in a welded or integrated structure, and the buckle shell 2112d is used to connect the handle assembly 22, thereby realizing quick fixing and unlocking. The design of the buckle opening 3a enables the handle assembly 22 to be stably inserted and locked in the buckle shell 2112d, thereby preventing loosening caused by vibration or impact. When the handle assembly 22 needs to be disassembled, the handle assembly 22 is taken out of the buckle opening 3a.

[0052] In an embodiment, the handle assembly 22 has a mounting hole 22a and a mounting cover 221, the antenna 23 is arranged in the mounting hole 22a, and the mounting cover 221 covers the mounting hole 22a.

[0053] Specifically, the mounting hole 22a is used to accommodate the antenna 23, and the mounting cover 221 is used to close the mounting hole 22a, further fixing the antenna 23. The design of the mounting cover 221 not only increases the fixing strength of the antenna 23, but also protects the antenna 23 from the external environment, such as dust, moisture, etc., thereby prolonging the service life of the antenna 23.

[0054] In an embodiment, the antenna 23 is a radio frequency coaxial cable antenna 23.

[0055] Specifically, the radio frequency coaxial cable antenna 23 has low signal loss and high anti-interference ability, can effectively transmit high-frequency signals, and ensure the quality and stability of communication. The signal is transmitted to the remote controller and the aircraft through the radio frequency coaxial cable antenna 23.

[0056] In an embodiment, the body 10 includes a first connecting shell 11 and a second connecting shell 12, the first connecting shell 11 and the second connecting shell 12 are connected in a surrounding manner, the first surface 101 is arranged on the first connecting shell 11, and the second surface 102 is arranged on the second connecting shell 12.

[0057] Specifically, the body 10 includes two main parts, i.e. the first connecting shell 11 and the second connecting shell 12. The two shells are combined together by surrounding connection through fixing methods such as buckling or bolting, forming a complete remote controller structure. This design makes the assembly and maintenance of the remote controller simple and convenient, and is also conducive to improving the overall strength and durability of the remote controller.

[0058] In an embodiment, the first connecting shell 11 includes a display screen 111 and a key assembly 113, and the display screen 111 is electrically connected to the key assembly 113.

[0059] Specifically, the first connecting shell 11 is the end surface of the remote controller, and the second connecting shell 12 is the bottom of the remote controller, i.e. the handle mechanism 20 is arranged on the second connecting shell 12, and the display screen and the key assembly 113 on the first connecting shell 11 are arranged opposite to each other. The display screen 111 is an interface on the remote controller for displaying various information and parameters. Through electrical connection, the display screen 111 can display the state of the unmanned aerial vehicle, flight data, and user operation instructions in real time. The control rocker 112 is a key component on the remote controller for controlling the flight direction and speed of the unmanned aerial vehicle. The user can send instructions to the unmanned aerial vehicle by operating the rocker 112 to realize flight actions such as ascending, descending, left turning, right turning, etc. The key assembly 113 is a group of keys on the remote controller for executing specific functions or operations. These keys may include power on / off keys, photographing and video recording keys, homing keys, etc., and the user can quickly execute related operations by pressing the corresponding keys.

[0060] The above merely provides the implementation ways of the present application, and should not be regarded as limitations to the present application. In addition, for those skilled in the art, the modifications made without departing from the spirit of the present application shall be covered by the present application.

Claims

1. A drone remote control antenna comprising a control joystick for controlling the flight of a drone, characterized in that, The remote control antenna further comprises: a body comprising a first face and a second face arranged oppositely, the control rocker is arranged on the first face; a handle mechanism arranged on the second face, the handle mechanism comprises a turnover assembly and a handle assembly, one end of the turnover assembly is arranged on the second face, and the other end is detachably connected with the handle assembly; wherein, an antenna is arranged in the handle assembly, and the antenna is arranged in parallel with the second face, so that the antenna is relatively parallel with the aircraft, and the handle assembly can rotate around the body, so that the handle assembly can be used for signal transmission or for supporting the body.

2. The unmanned aerial vehicle remote control antenna of claim 1, wherein, The turnover assembly comprises a first connecting column and a second connecting column, the first connecting column and the second connecting column are arranged adjacent to each other on the second face, and the first connecting column and the second connecting column are symmetrical structures.

3. The unmanned aerial vehicle remote control antenna of claim 2, wherein, The first connecting column comprises a fixed part, a rotating part and a rotating shaft, the fixed part extends along a direction perpendicular to the second face, and the rotating shaft penetrates the fixed part and the rotating part for rotationally connecting the fixed part and the rotating part.

4. The unmanned aerial vehicle remote control antenna of claim 3, wherein, The fixed part comprises a fixed column and a first rotating column, one end of the first rotating column is arranged on the fixed column, and the other end continues to extend along the column body of the fixed column and forms a first recess in the column body of the fixed column; The rotating part comprises a connecting rod and a second rotating column, one end of the second rotating column is arranged on the connecting rod, and the other end continues to extend along the rod body of the connecting rod and forms a second recess in the rod body of the connecting rod; The first rotating column and the second rotating column are arranged oppositely, so that the first rotating column extends into the second recess, and the second rotating column extends into the first recess.

5. The unmanned aerial vehicle remote control antenna of claim 4, wherein, The second rotating column has a first rotating part, and the fixed column has an arc-shaped second rotating part, the first rotating part and the second rotating part are matched; wherein, the first rotating part has a first tooth, the second rotating part has a second tooth, and the first tooth and the second tooth are matched.

6. The unmanned aerial vehicle remote control antenna of claim 4, wherein, The rotating part further comprises a buckle shell, the buckle shell is arranged on the connecting rod and away from one end of the second rotating column, the buckle shell has a buckle opening, and the handle assembly can extend into the buckle opening.

7. The unmanned aerial vehicle remote control antenna of claim 1, wherein, The handle assembly has a mounting hole and a mounting cover, the antenna is arranged in the mounting hole, and the mounting cover covers the mounting hole.

8. The unmanned aerial vehicle remote control antenna of claim 1, wherein, The antenna is a radio frequency coaxial cable antenna.

9. The unmanned aerial vehicle remote control antenna of claim 1, wherein, The body comprises a first connecting shell and a second connecting shell, the first connecting shell and the second connecting shell are connected in a surrounding manner, the first face is arranged on the first connecting shell, and the second face is arranged on the second connecting shell.

10. The unmanned aerial vehicle remote control antenna of claim 9, wherein, The first connecting shell comprises a display screen and a key assembly, and the display screen is electrically connected with the key assembly.