Rapid folding antenna for 5G communication engineering
By designing a quick-folding antenna and utilizing a combination of mounting brackets and guide components, the antenna can be conveniently folded and installed, solving the problem of cumbersome and time-consuming installation of existing antennas and improving installation efficiency.
Patent Information
- Application Number
- CN202520194784.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-07
AI Technical Summary
Existing antennas, designed for portability, feature detachable frames and antenna arrays, resulting in cumbersome, time-consuming, and labor-intensive installation and storage processes, leading to low installation efficiency.
A fast-folding antenna for 5G communication engineering has been designed. By combining a mounting bracket, a guide assembly, and an antenna assembly, and utilizing rotatable connectors and a telescopic mounting bracket, the antenna can be folded and installed, simplifying the installation process without disassembly.
It simplifies the antenna installation process, saves time and effort, and improves installation efficiency.
Smart Images

Figure CN223785303U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of communication equipment technology, and in particular relates to a fast folding antenna for 5G communication engineering. Background Technology
[0002] Antennas, as devices that convert electromagnetic waves into electrical signals or vice versa, are mainly used in communication systems, television broadcasting, wireless networks, radar systems, vehicle communication, medical equipment, and military applications.
[0003] An antenna is a transducer that converts guided waves propagating on a transmission line into electromagnetic waves propagating in an unbounded medium, or vice versa. Engineering systems that utilize electromagnetic waves to transmit information, such as radio communication, broadcasting, television, radar, navigation, electronic warfare, remote sensing, and radio astronomy, all rely on antennas to function.
[0004] In the existing technology, most antennas are designed with detachable frames and antenna groups for easy carrying. When the frame and antenna groups are carried to the installation location, the staff needs to install several antenna groups on the frame before they can be used. When it is necessary to replace or store the antennas, the staff needs to disassemble the antenna groups one by one to store the antennas. The whole installation process is cumbersome, time-consuming, labor-intensive and inefficient. Utility Model Content
[0005] The purpose of this utility model embodiment is to provide a quick-folding antenna for 5G communication engineering. It aims to solve the problem that most antennas are designed with detachable frames and antenna groups for easy carrying. When the frame and antenna groups are carried to the installation position, workers need to install several antenna groups on the frame before they can be used. When it is necessary to replace or store the antennas, workers need to disassemble the antenna groups one by one to complete the antenna storage. The whole installation process is cumbersome, time-consuming, labor-intensive and inefficient.
[0006] This utility model embodiment is implemented as follows: a fast-folding antenna for 5G communication engineering, the fast-folding antenna for 5G communication engineering comprising:
[0007] The mounting frame is provided with a mounting rod and a support rod. The mounting rod is inserted into the support rod and is used for the installation of the guide component. The support rod is provided with a plurality of first positioning holes for positioning the mounting rod so as to adjust the height of the guide component on the mounting frame to realize the folding mounting frame.
[0008] A guide assembly is used to slide with an antenna assembly. The guide assembly is provided with a first guide group and a second guide group, which are respectively mounted on a mounting rod.
[0009] An antenna assembly is provided with a connector for connecting to a guide assembly. The connector is rotatably connected to the guide assembly to adjust the spacing between the antenna assembly and the guide assembly to achieve a folded antenna assembly.
[0010] Preferably, the mounting rod is configured as a hollow structure, with a disc-shaped first protrusion at the top for positioning a first guide group, and a second protrusion at the bottom for positioning a second guide group. A U-shaped positioning frame is provided on the bottom surface of the second protrusion, and the middle part of the positioning frame is annular with two connecting holes on the inner wall of the annular shape. The two connecting holes have the same axis and are connected to the support rod through a connecting rod.
[0011] Preferably, the outer side of the support rod is provided with a plurality of first positioning holes, which are arranged in a strip array along the length of the support rod. At most one first positioning hole is connected to the connecting hole of the positioning frame through a connecting rod. The bottom of the support rod is provided with a plurality of support plates, which are arranged in a ring array. The support plates are rotatably connected to the bottom of the support rod. The support plates are provided with first mounting holes, which are used to install the mounting frame at the target position.
[0012] Preferably, the first guide group is provided with a first base plate and a first guide frame of multiple annular arrays. The first base plate is sleeved on the first guide frame. The first base plate is provided with a first connecting frame that is slidably connected to the first guide frame. The first connecting frame is rotatably connected to the connector of the antenna assembly. The first guide frame is provided with a first limiting groove and a first damping rod. The first damping rod is used to guide the movement of the first connecting frame and the antenna assembly. The first limiting groove is used to limit the movement stroke of the first base plate and the antenna assembly.
[0013] Preferably, the second guide group is provided with a second base plate and a second guide frame of multiple annular arrays. The second base plate is sleeved on the second guide frame. The second base plate is provided with a second connecting frame that is slidably connected to the second guide frame. The second connecting frame is rotatably connected to the connector of the antenna assembly. The second guide frame is provided with a second limiting groove and a second damping rod. The second damping rod is used to guide the movement of the second connecting frame and the antenna assembly. The second limiting groove is used to limit the movement stroke of the second base plate and the antenna assembly.
[0014] Preferably, the antenna assembly is provided with multiple antenna plates, and a third connecting frame and a fourth connecting frame are provided on the back of the antenna plates. The third connecting frame is connected to the first guide group through a connector, and the third connecting frame and the connector are rotatably connected. The fourth connecting frame is connected to the second guide group through a connector, and the fourth connecting frame and the connector are rotatably connected.
[0015] Preferably, the connector is rod-shaped, and a first connecting hole and a second connecting hole are respectively provided at both ends of the connector. The first connecting hole is rotatably connected to the guide assembly through a first rotating rod, and the second connecting hole is rotatably connected to the antenna assembly through a second rotating rod.
[0016] Preferably, the 5G communication engineering quick-folding antenna further includes a lightning rod, which is installed on the top of the mounting frame and is detachably connected to the mounting rod of the mounting frame.
[0017] This utility model provides a quick-folding antenna for 5G communication engineering. It includes a mounting frame for installing a guide component, with a mounting rod inserted into a support rod. The mounting rod is used to install the guide component, and multiple first positioning holes are provided on the support rod to adjust the connection position between the mounting rod and the support rod, thereby changing the height of the guide component on the mounting rod. This facilitates folding the mounting frame, mounting the antenna component onto the guide component, and adjusting the height of the guide component to adjust the height of the antenna component. The antenna component includes a connector that rotatably connects to the guide component. The rotatable connector allows adjustment of the distance between the antenna component and the guide component, enabling the folding of the antenna component. The entire folding and storage process does not require disassembling the quick-folding antenna for 5G communication engineering. The use of a retractable mounting frame and a rotatable antenna component simplifies the installation process, saving time and effort while increasing efficiency. Attached Figure Description
[0018] Figure 1 A three-dimensional structural diagram of a fast-folding antenna for 5G communication engineering provided for an embodiment of this utility model;
[0019] Figure 2 This is a structural diagram of a folded 5G communication engineering quick-folding antenna provided in an embodiment of the present invention.
[0020] In the attached diagram: 1. Mounting bracket; 11. Mounting rod; 111. First protrusion; 112. Second protrusion; 113. Positioning bracket; 114. Connecting rod; 12. Support rod; 121. First positioning hole; 122. Support plate; 1221. First mounting hole; 2. First guide group; 21. First guide frame; 22. First base plate; 3. Second guide group; 31. Second guide frame; 32. Second base plate; 4. Antenna assembly; 41. Connector; 42. Antenna plate; 5. Lightning rod. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0022] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0023] like Figure 1-2 The diagram shown is a structural diagram of a 5G communication engineering quick-folding antenna provided by an embodiment of the present utility model, including: a mounting frame 1, the mounting frame 1 is provided with a mounting rod 11 and a support rod 12, the mounting rod 11 is inserted into the support rod 12, the mounting rod 11 is used for the installation of a guide component, and the support rod 12 is provided with a plurality of first positioning holes 121 for positioning the mounting rod 11 so as to adjust the height of the guide component on the mounting frame 1 to realize the folding mounting frame 1;
[0024] A guide assembly is provided for sliding connection with the antenna assembly 4. The guide assembly is provided with a first guide group 2 and a second guide group 3, which are respectively mounted on the mounting rod 11.
[0025] Antenna assembly 4, wherein the antenna assembly 4 is provided with a connector 41 for connecting to a guide assembly, the connector 41 being rotatably connected to the guide assembly to adjust the distance between the antenna assembly 4 and the guide assembly to realize the folding antenna assembly 4.
[0026] In a preferred embodiment of this utility model, the quick-folding antenna for 5G communication engineering mainly consists of a mounting bracket, a guide assembly, and an antenna assembly 4. The mounting bracket 1 consists of a mounting rod 11 and a support rod 12. The support rod 12 is inserted into the mounting rod 11. Several first positioning holes 121 for positioning the mounting rod 11 are provided on the support rod 12. The antenna assembly 4 is installed on the mounting rod 11 through the guide assembly. The support rod 12 inserted into the mounting rod 11 can adjust the height of the mounting rod 11, the guide assembly of the mounting rod 11, and the antenna assembly 4 to achieve folding of the mounting bracket 1 for easy carrying of the antenna. The first guide group 2 and the second guide group 3 installed on the mounting rod 11 are respectively connected to the antenna assembly 4 through the connector 41. The guide assembly is used to guide the movement of the antenna assembly 4 to adjust the signal receiving direction of the antenna assembly 4. The guide assembly and the connector 41 are rotatably connected. The included angle between the antenna assembly and the guide assembly can also be adjusted to fold and store the antenna assembly 4. The antenna assembly 4 and the guide assembly can be folded without disassembling them, simplifying the antenna installation steps and saving time, effort, and efficiency during use.
[0027] In one embodiment of this utility model, a mounting frame 1 for installing a guide component is provided. The mounting frame 1 is provided with a mounting rod 11 that is inserted into a support rod 12. The mounting rod 11 is used for installing the guide component, and multiple first positioning holes 121 are provided on the support rod 12 to adjust the connection position between the mounting rod 11 and the support rod 12, thereby changing the height of the guide component on the mounting rod 11. This facilitates folding the mounting frame 1, installing the antenna component 4 on the guide component, and adjusting the height of the guide component to adjust the height of the antenna component 4. The antenna component 4 is provided with a connector 41 that is rotatably connected to the guide component. The rotatable connector 41 is used to adjust the distance between the antenna component 4 and the guide component to achieve folding of the antenna component 4. The entire folding and storage process does not require disassembling the 5G communication engineering quick-folding antenna. The telescopic mounting frame 1 and the rotatable antenna component 4 are used to achieve folding or installation of the antenna, simplifying the installation steps, saving time and effort, and increasing efficiency.
[0028] like Figure 1 As shown, in a preferred embodiment of this utility model, the mounting rod 11 is configured as a hollow structure. The top of the mounting rod 11 is provided with a disc-shaped first protrusion 111, which is used to position the first guide group 2. The bottom of the mounting rod 11 is provided with a second protrusion 112 for positioning the second guide group 3. The bottom surface of the second protrusion 112 is provided with a U-shaped positioning frame 113. The middle part of the positioning frame 113 is annular and the inner wall of the annular shape is provided with two connecting holes. The two connecting holes have the same axis and are connected to the support rod 12 through a connecting rod 114.
[0029] In this embodiment of the present invention, preferably, the mounting rod 11 can be a cylindrical rod with a certain length and a hollow structure. A first protrusion 111 and a second protrusion 112 with a certain thickness are respectively provided at both ends of the mounting rod 11. The second protrusion 112 has a central hole at its center to facilitate the insertion of the support rod 12. A U-shaped positioning frame 113 is provided on the bottom surface of the second protrusion 112 to facilitate the positioning of the support rod 12. The inner diameter of the annular middle part is not less than the outer diameter of the support rod 12. The support rod 12 is inserted into the connecting hole and the first positioning hole 121 of the support rod 12 through the connecting rod 114 so that the support rod 12 is connected to the mounting rod 11 in place.
[0030] like Figure 1As shown, in a preferred embodiment of the present invention, the outer side of the support rod 12 is provided with a plurality of first positioning holes 121, which are arranged in a strip array along the length of the support rod 12. At most one first positioning hole 121 is connected to the connecting hole of the positioning frame 113 through the connecting rod 114. The bottom of the support rod 12 is provided with a plurality of support plates 122, which are arranged in a circular array. The support plates 122 are rotatably connected to the bottom of the support rod 12. The support plates 122 are provided with first mounting holes 1221, which are used to install the mounting frame 1 at the target position.
[0031] In this embodiment of the present invention, preferably, the support rod 12 can also be a column with a certain length, and a plurality of first positioning holes 121 arranged in a strip array are provided on its outer side. Any first positioning hole 121 is connected to the connecting hole through a connecting rod 114, so that the support rod 12 and the mounting rod 11 are completely connected. The connecting rod 114 is inserted into the first positioning hole 121 and the connecting hole. The connecting rod 114 is inserted into different first positioning holes 121 to adjust the connection between the support rod 12 and the mounting rod 11, thereby adjusting the height of the mounting frame 1. A plurality of circumferentially arrayed support plates 122 are provided at the bottom of the support rod 12 to stabilize the entire mounting frame 1. The first mounting holes 1221 provided on the support plates 122 can be used to fix the mounting frame 1 to the target position using screws or other fasteners during use.
[0032] like Figure 1 As shown, in a preferred embodiment of the present invention, the first guide group 2 is provided with a first base plate 22 and a plurality of annular array first guide frames 21. The first base plate 22 is sleeved on the first guide frame 21. The first base plate 22 is provided with a first connecting frame that is slidably connected to the first guide frame 21. The first connecting frame is rotatably connected to the connector 41 of the antenna assembly 4. The first guide frame 21 is provided with a first limiting groove and a first damping rod. The first damping rod is used to guide the first connecting frame and the antenna assembly 4 to move. The first limiting groove is used to limit the movement stroke of the first base plate 22 and the antenna assembly 4.
[0033] In this embodiment of the present invention, preferably, the first guide group 2 mainly consists of a first base plate 22 sleeved on the mounting rod 11 and a first guide frame 21 with a ring array mounted on the first base plate 22. The first base plate 22 and the first guide frame 21 are connected by a first connecting frame. The first connecting frame is connected to the connector 41 of the antenna assembly 4. The antenna assembly 4 is guided to move along the length direction of the mounting rod 11 by the first guide frame 21. The first damping rod on the first guide frame 21 moves along the first limiting groove. The user can directly pull the first damping rod to drive the antenna assembly 4 to move. The first damping rod can restrict the free movement of the antenna assembly 4 and prevent the antenna assembly 4 from shifting due to gravity, which would affect the reception and transmission of signals.
[0034] like Figure 1 As shown, in a preferred embodiment of the present invention, the second guide group 3 is provided with a second base plate 32 and a plurality of annular arrays of second guide frames 31. The second base plate 32 is sleeved on the second guide frame 31. The second base plate 32 is provided with a second connecting frame that is slidably connected to the second guide frame 31. The second connecting frame is rotatably connected to the connecting piece 41 of the antenna assembly 4. The second guide frame 31 is provided with a second limiting groove and a second damping rod. The second damping rod is used to guide the movement of the second connecting frame and the antenna assembly 4. The second limiting groove is used to limit the movement stroke of the second base plate 32 and the antenna assembly 4.
[0035] In this embodiment of the present invention, preferably, the explanation of the second guide group 3 can be referred to the explanation of the first guide group 2, and will not be repeated in this embodiment.
[0036] like Figure 1 As shown, in a preferred embodiment of the present invention, the antenna assembly 4 is provided with a plurality of antenna plates 42. A third connecting frame and a fourth connecting frame are provided on the back of the antenna plate 42. The third connecting frame is connected to the first guide group 2 through a connecting piece 41. The third connecting frame and the connecting piece 41 are rotatably connected. The fourth connecting frame is connected to the second guide group 3 through a connecting piece 41. The fourth connecting frame and the connecting piece 41 are rotatably connected.
[0037] In this embodiment of the present invention, preferably, the antenna assembly 4 is provided with a plurality of arc-shaped antenna plates 42, which are connected to the guide assembly via the third and fourth connecting frames on the back of the antenna plates 42. The plurality of antenna plates 42 can be arranged in a ring array. When the antenna is not in use, the edges of the plurality of antenna plates 42 can abut and be assembled into a cylindrical structure. When the antenna needs to be deployed for use, the connecting piece 41 can be rotated to adjust the position of the antenna plates 42. The orientation and position of the antenna plates 42 can be adjusted according to the usage requirements. When the third and fourth connecting frames on the back of the antenna plates 42 are connected to the first guide group 2 and the second guide group 3 respectively, their rotation directions can be asynchronous to adjust the orientation of the antenna plates 42 and enhance the transmission or reception of signals in different directions.
[0038] like Figure 1 As shown, in a preferred embodiment of the present invention, the connector 41 is rod-shaped, and a first connecting hole and a second connecting hole are respectively provided at both ends of the connector 41. The first connecting hole is rotatably connected to the guide assembly through a first rotating rod, and the second connecting hole is rotatably connected to the antenna assembly 4 through a second rotating rod.
[0039] In this embodiment of the utility model, preferably, the connector 41 can be a rod with a certain length, and multiple connectors 41 can be provided. Each antenna plate 42 is provided with two connectors 41, wherein one end of the first connector 41 is connected to the third connecting frame and the other end is connected to the first connecting frame of the first guide group 2, and one end of the second connector 41 is connected to the fourth connecting frame and the other end is connected to the second connecting frame of the second guide group 3.
[0040] like Figure 1 As shown in the preferred embodiment of this utility model, the 5G communication engineering quick-folding antenna also includes a lightning rod 5, which is installed on the top of the mounting frame 1, and the lightning rod 5 is detachably connected to the mounting rod 11 of the mounting frame 1.
[0041] In this embodiment of the utility model, preferably, a lightning rod 5 can be installed on the top of the mounting frame 1, and the lightning rod 5 can be installed on the top of the mounting rod 11 by bolts. When it is necessary to fold and store the antenna, it can be disassembled and placed on the mounting position surrounded by the support plate 122, which is convenient for use and easy to carry.
[0042] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A fast-folding antenna for 5G communication engineering, characterized in that, The fast-folding antenna for 5G communication engineering includes: The mounting frame is provided with a mounting rod and a support rod. The mounting rod is inserted into the support rod and is used for the installation of the guide component. The support rod is provided with a plurality of first positioning holes for positioning the mounting rod so as to adjust the height of the guide component on the mounting frame to realize the folding mounting frame. A guide assembly is used to slide with an antenna assembly. The guide assembly is provided with a first guide group and a second guide group, which are respectively mounted on a mounting rod. An antenna assembly is provided with a connector for connecting to a guide assembly. The connector is rotatably connected to the guide assembly to adjust the spacing between the antenna assembly and the guide assembly to achieve a folded antenna assembly.
2. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The mounting rod is configured as a hollow structure. The top of the mounting rod is provided with a disc-shaped first protrusion, which is used to position the first guide group. The bottom of the mounting rod is provided with a second protrusion for positioning the second guide group. The bottom surface of the second protrusion is provided with a U-shaped positioning frame. The middle part of the positioning frame is annular and the inner wall of the annular shape is provided with two connecting holes. The two connecting holes have the same axis and are connected to the support rod through a connecting rod.
3. The fast-folding antenna for 5G communication engineering according to claim 2, characterized in that, The outer side of the support rod is provided with a plurality of first positioning holes, which are arranged in a strip array along the length of the support rod. At most one first positioning hole is connected to the connecting hole of the positioning frame through a connecting rod. The bottom of the support rod is provided with a plurality of support plates, which are arranged in a ring array. The support plates are rotatably connected to the bottom of the support rod. The support plates are provided with first mounting holes, which are used to install the mounting frame at the target position.
4. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The first guide group is provided with a first base plate and a first guide frame of multiple annular arrays. The first base plate is sleeved on the first guide frame. The first base plate is provided with a first connecting frame that is slidably connected to the first guide frame. The first connecting frame is rotatably connected to the connector of the antenna assembly. The first guide frame is provided with a first limiting groove and a first damping rod. The first damping rod is used to guide the movement of the first connecting frame and the antenna assembly. The first limiting groove is used to limit the movement stroke of the first base plate and the antenna assembly.
5. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The second guide group is provided with a second base plate and a second guide frame with multiple annular arrays. The second base plate is sleeved on the second guide frame. The second base plate is provided with a second connecting frame that is slidably connected to the second guide frame. The second connecting frame is rotatably connected to the connector of the antenna assembly. The second guide frame is provided with a second limiting groove and a second damping rod. The second damping rod is used to guide the movement of the second connecting frame and the antenna assembly. The second limiting groove is used to limit the movement stroke of the second base plate and the antenna assembly.
6. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The antenna assembly is provided with multiple antenna plates. A third connecting frame and a fourth connecting frame are provided on the back of the antenna plates. The third connecting frame is connected to the first guide group through a connector and is rotatably connected to the connector. The fourth connecting frame is connected to the second guide group through a connector and is rotatably connected to the connector.
7. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The connector is rod-shaped, and a first connecting hole and a second connecting hole are respectively provided at both ends of the connector. The first connecting hole is rotatably connected to the guide assembly through a first rotating rod, and the second connecting hole is rotatably connected to the antenna assembly through a second rotating rod.
8. The fast-folding antenna for 5G communication engineering according to claim 1, characterized in that, The 5G communication engineering quick-folding antenna also includes a lightning rod, which is installed on the top of the mounting frame and is detachably connected to the mounting rod of the mounting frame.