Intelligent unmanned aerial vehicle communication system for communication construction

By introducing the Zhongfu Intelligent Extension System into the UAV Communication System, using wireless charging and solar power supply technology, the problem of insufficient battery life and communication distance of the UAV communication system has been solved, and the effect of long-term and long-distance stable operation of the UAV has been achieved.

CN120024534AActive Publication Date: 2025-05-23JIANGSU ZEYU ELECTRIC POWER DESIGN CO LTD
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Patent Information

Application Number
CN202510489311.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2025-05-23
Estimated Expiration
2045-04-18

AI Technical Summary

Technical Problem

The shortcomings of existing UAV communication systems in terms of battery life and communication distance are difficult to meet the needs of long-term and long-distance flights in communication construction.

Method used

An intelligent drone communication system was designed, using a Zhongfu Intelligent Extension System, which includes a wireless charging platform, a solar power supply module and a repeater. The communication distance of the drone is extended through the repeater, and the wireless charging platform is used to charge when the drone is low in power, extending the battery life.

Benefits of technology

It effectively extends the communication distance and battery life of the drone, ensures that the drone can operate stably for a long time and at a long distance, and improves the efficiency and security of communication construction.

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Abstract

The invention relates to an intelligent unmanned aerial vehicle communication system for communication construction, which is applied to the technical field of communication construction and comprises a base and a middle compensation intelligent delay system, the base is provided with an operation unmanned aerial vehicle and a control terminal, and a wireless charging receiving module is integrated at the bottom of the operation unmanned aerial vehicle; the middle compensation intelligent delay system comprises a wireless charging platform, a solar power supply module and a repeater; according to the invention, the operation unmanned aerial vehicle is used for replacing manual work to execute a communication construction task, so that the system can quickly reach a dangerous area or an area where people are difficult to reach, avoids the safety risk of the people working in a dangerous environment, remarkably improves the overall efficiency of communication construction, and improves the safety through the arrangement of the central compensation intelligent delay system. The communication distance of the operation unmanned aerial vehicle is effectively prolonged, the problems of signal attenuation and interruption caused by too long distance are solved, the problem of insufficient endurance of the unmanned aerial vehicle is solved, long-time and long-distance stable operation of the unmanned aerial vehicle is guaranteed, and a communication construction task can be efficiently carried out in a larger range.
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Description

Technical Field

[0001] The present invention relates to a communication system, and in particular to an intelligent unmanned aerial vehicle communication system for communication construction, which is applied in the technical field of communication construction. Background Art

[0002] In today's communications construction field, traditional communications construction methods face many challenges. Manual operations in communication project planning, site selection, completion acceptance, and maintenance require a lot of manpower, material resources, and time. For example, when conducting site selection and survey for communications projects in complex terrain, it is difficult for personnel to reach some dangerous areas, which is not only inefficient, but also poses safety risks.

[0003] A Chinese patent with publication number CN110190895B discloses a UAV communication system and method. In this invention, by integrating the DVB-T modulator and the sky-side GFSK transceiver into the same sky-side communication device, the integration of the UAV communication system is greatly improved without increasing the implementation cost, and the communication capability of the UAV is greatly improved.

[0004] A Chinese invention patent with publication number CN114760611B discloses a UAV communication system and communication method. The invention carries the transmission blocks to be sent repeatedly on the redundant channel resources of the UAV communication link, and sends copies of the same TB on different frequency and / or time channel resources to obtain additional frequency diversity gain and / or time diversity gain effects, thereby compensating for the adverse effects of the frequency selective fading and / or time selective fading characteristics of the wireless channel on the correct reception of the signal, and achieving the purpose of making full use of the available channel resources to improve the quality and reliability of link data transmission.

[0005] With the development of drone technology, its application in communication construction has gradually attracted attention. When carrying out communication construction, a suitable location can be selected as a base, and then the drone can be controlled from the base to go to the operation area to replace manual execution of some difficult tasks. Although the drone communication systems in the above two patents can respectively achieve the purpose of improving the communication capability of drones and improving the quality of data transmission, they ignore the problems of endurance and communication distance. When the drone communication system is applied to communication construction, the drone needs to fly for a long time and over a long distance, which requires the system to have a longer endurance and a longer communication distance. Therefore, we propose an intelligent drone communication system for communication construction. Summary of the invention

[0006] In view of the above-mentioned prior art, the technical problem to be solved by the present invention is: the shortcomings of the existing UAV communication system in terms of endurance and communication distance.

[0007] In order to solve the above problems, the present invention provides an intelligent UAV communication system for communication construction, including a base, the base is provided with an operating UAV and a control terminal, the control terminal remotely controls the operating UAV through an adaptive frequency hopping communication protocol, the operating UAV is configured to replace manual labor to go to the operating area to perform tasks, and a wireless charging receiving module is integrated at the bottom of the operating UAV; It also includes a Zhongbu Zhiyan system, which includes a wireless charging platform, a solar power supply module, and a repeater. The solar power supply module is electrically connected to the wireless charging platform and the repeater, the control terminal is signal-connected to the repeater, and the repeater is signal-connected to the operating drone; A relay supply point for deploying the Zhongbu Zhiyan system is selected between the base and the operating area, and the Zhongbu Zhiyan system is deployed to the relay supply point by manual operation. The operating drone is controlled to fly to the target area through the control terminal at the base. When the operating drone enters the communication coverage of the repeater, the communication link between the control terminal and the operating drone is established through the repeater. A low power threshold is set according to the power required for the operating drone to fly from the operating area to the relay supply point. When the remaining power of the operating drone is lower than the low power threshold, the operating drone is controlled to go to the relay supply point for charging.

[0008] In the above-mentioned intelligent drone communication system used for communication construction, through the setting of the Zhongbu Zhiyan system, not only the communication distance of the operating drone is effectively extended, but also the problem of insufficient drone endurance is solved, ensuring that the drone can operate stably for a long time and over long distances.

[0009] As a further improvement of the present application, a terrain information collection module is integrated on the operating drone, and the method for selecting the relay supply point is: S1. Select a location between the base and the operation area as the return point based on the communication distance and endurance of the operating drone; S2, planning the site selection flight route with the base as the starting point and the return point as the end point, and controlling the operating drone to collect landform information along the site selection flight route; S3. Select relay supply points based on the terrain information collected by the operating drone.

[0010] As another improvement of the present application, the Zhongbu Zhiyan system also includes an easily retractable support member for supporting a wireless charging platform, a solar power supply module, and a repeater. The easily retractable support member includes a support plate, a connecting column is fixedly connected to the bottom end of the support plate, a matching mounting sleeve is movably sleeved on the outer wall of the connecting column, a support block is fixedly installed in the mounting sleeve, and the bottom end of the connecting column is abutted against the top end of the support block.

[0011] As another improvement supplement to the present application, the wireless charging platform, solar power supply module, and repeater are all installed on the support plate, and the mounting sleeve and support block are made of biodegradable materials.

[0012] As another improvement supplement of the present application, the bottom end of the mounting sleeve is fixedly connected with a bottom expansion plate, the diameter of the bottom expansion plate is larger than the diameter of the mounting sleeve, and the bottom expansion plate is also made of biodegradable material.

[0013] As another improvement supplement to the present application, a connection and collection aid component is provided on the support plate, and the connection and collection aid component includes a temperature regulating box fixedly installed on the top of the support plate, a sealing partition sealed and fixedly connected to the temperature regulating box is provided inside the temperature regulating box, a semiconductor refrigerator is embedded through the middle of the sealing partition, and a connection storage cylinder is fixedly connected to the top of the temperature regulating box, the top of the connection storage cylinder is arranged to be open and the connection storage cylinder is filled with a hot melt connector, the hot melt connector is made of paraffin, and a melting-driving heat conductive rod is connected between the hot melt connector and the hot end of the semiconductor refrigerator. The Zhongbu Zhiyan system also includes an airborne connecting rod and a connection control unit integrated on the control terminal, and the connection control unit includes a melting control module, and the melting control module is connected to the semiconductor refrigerator by wireless signals.

[0014] As another improvement supplement to the present application, the connection and collection assistance component also includes a C-shaped heat-driving cooling rod, one end of which passes through the outer wall of the temperature regulating box, extends into the temperature regulating box and is located below the sealed partition, and the other end of the heat-driving cooling rod passes through the outer wall of the connecting storage cylinder and extends and is embedded in the hot-melt connecting body. An electric push rod is fixedly installed below the sealed partition, and the output end of the electric push rod is fixedly connected to a heat-insulating sleeve matching the heat-driving cooling rod, and the heat-insulating sleeve is movablely mounted on one end of the heat-driving cooling rod located in the temperature regulating box.

[0015] As another improvement supplement to the present application, the hot end and the cold end of the semiconductor refrigerator are respectively located on the upper and lower sides of the sealed partition, the temperature regulating box, the sealed partition, and the insulation sleeve are all made of thermal insulation materials, and the connection control unit also includes a cold solid control module, and the cold solid control module is connected to the electric push rod by wireless signal.

[0016] As another improvement in the present application, a clamping ring is fixedly provided on the outer wall of the airborne connecting rod, a heat insulating coating is applied on the outer wall of the cooling heat conducting rod located in the temperature regulating box and the part of the rod body connected to the storage cylinder, and a shutdown plate fixedly connected to the top end of the storage cylinder is provided.

[0017] To sum up, the present application utilizes working drones to replace manual labor to perform communication construction tasks, which can quickly reach dangerous areas or areas that are difficult for personnel to reach, avoiding the safety risks of personnel working in dangerous environments, and significantly improving the overall efficiency of communication construction. Moreover, through the setting of the Zhongbu Intelligent Extension System, not only the communication distance of the working drone is effectively extended, the signal attenuation and interruption problems caused by excessive distance are overcome, but also the problem of insufficient drone endurance is solved, ensuring that the drone can operate stably for a long time and over long distances, so that communication construction tasks can be carried out efficiently over a larger range; through the setting of the connection and collection components, after the task is completed, the Zhongbu Intelligent Extension System can be recovered to the base by the working drone in a hoisting manner, without the need for staff to go to the relay supply point again for manual recovery, and the working drone is easy to establish a stable fixed connection with the support plate, which not only improves the flexibility and practicality of the Zhongbu Intelligent Extension System, but also can further save time and labor costs, and further improve the overall efficiency of communication construction. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a system structure block diagram of the first implementation mode of this application; Figure 2 This is a pictographic demonstration diagram of the first embodiment of the present application when it is running; Figure 3 This is a schematic diagram of the three-dimensional structure of the easily retractable support member in the second embodiment of the present application; Figure 4 This is a schematic cross-sectional view of the installation sleeve in the second embodiment of the present application; Figure 5 This is a schematic cross-sectional view of the temperature regulating box in the second embodiment of the present application; Figure 6 This is a schematic diagram of the cross-sectional structure of the connection storage cylinder in the second embodiment of the present application; Figure 7 This is a schematic diagram of the three-dimensional structure of the airborne connecting rod in the second embodiment of the present application; Figure 8 This is a structural block diagram of the connection control unit in the second embodiment of the present application.

[0019] Description of the numbers in the figure: 101. Support plate; 102. Connecting column; 103. Mounting sleeve; 104. Support block; 105. Bottom expansion plate; 201. Temperature regulating box; 202. Sealing partition; 203. Semiconductor refrigerator; 204. Connecting storage cylinder; 205. Hot melt connector; 206. Melt-driving heat-conducting rod; 207. Cool-driving heat-conducting rod; 208. Electric push rod; 209. Insulation sleeve; 210. Shutdown plate; 301. Airborne connecting rod; 302. Snap ring. DETAILED DESCRIPTION

[0020] Two implementation modes of the present application are described in detail below with reference to the accompanying drawings.

[0021] The first implementation method: Figure 1-Figure 2 An intelligent UAV communication system for communication construction is shown, including a base, the base is provided with an operating UAV and a control terminal, the control terminal remotely controls the operating UAV through an adaptive frequency hopping communication protocol, the operating UAV is configured to replace manual labor to go to the operating area to perform tasks, and a wireless charging receiving module is integrated at the bottom of the operating UAV; It also includes a Zhongbu Zhiyan system, which includes a wireless charging platform, a solar power supply module, and a repeater. The solar power supply module is electrically connected to the wireless charging platform and the repeater, the control terminal is signal-connected to the repeater, and the repeater is signal-connected to the operating drone; A relay supply point for deploying the Zhongbu Zhiyan system is selected between the base and the operating area, and the Zhongbu Zhiyan system is deployed to the relay supply point by manual operation. The operating drone is controlled to fly to the target area through the control terminal at the base. When the operating drone enters the communication coverage of the repeater, the communication link between the control terminal and the operating drone is established through the repeater. A low power threshold is set according to the power required for the operating drone to fly from the operating area to the relay supply point. When the remaining power of the operating drone is lower than the low power threshold, the operating drone is controlled to go to the relay supply point for charging.

[0022] The operating drone is integrated with a terrain information collection module. The method for selecting the relay supply point is as follows: S1. Select a location between the base and the operation area as the return point based on the communication distance and endurance of the operating drone; S2, planning the site selection flight route with the base as the starting point and the return point as the end point, and controlling the operating drone to collect landform information along the site selection flight route; S3. Select relay supply points based on the terrain information collected by the operating drone.

[0023] It should be noted that when selecting relay supply points based on terrain information, try to choose open places with less obstructions as relay supply points, such as mountain tops, sunny slopes, etc. On the one hand, it is conducive to communication, and on the other hand, it is conducive to the solar power supply module to absorb solar energy for power generation. In addition, due to the need for manual deployment of the relay supply intelligent extension system, it is also necessary to consider the difficulty of staff going to the relay supply points.

[0024] This application utilizes operating drones to replace manual labor to perform communication construction tasks, and can quickly reach dangerous or inaccessible areas. Compared with traditional manual operations, it greatly saves time and labor costs, avoids the safety risks of personnel working in dangerous environments, and significantly improves the overall efficiency of communication construction. By setting up the Zhongbu Zhiyan system, the repeater in the Zhongbu Zhiyan system can effectively extend the communication distance between the control terminal and the operating drone, overcoming the signal attenuation and interruption problems caused by excessive distance. At the same time, the wireless charging platform combined with the solar power supply module provides a convenient charging method for the operating drone. When the operating drone has little remaining power, it can go to the relay supply point for charging without returning to the base. Compared with returning to the base for charging, the distance to the relay supply point for charging is shorter and consumes less power, which solves the problem of insufficient drone endurance and ensures that the drone can operate stably for a long time and over long distances, so that communication construction tasks can be carried out efficiently over a larger range.

[0025] The second implementation method: Figure 3-Figure 8 An intelligent UAV communication system for communication construction is shown. Different from the first embodiment, the Zhongbu Zhiyan system also includes an easily retractable support member for supporting a wireless charging platform, a solar power supply module, and a repeater. The easily retractable support member includes a support plate 101. A connecting column 102 is fixedly connected to the bottom end of the support plate 101. A mounting sleeve 103 matching the connecting column 102 is movably sleeved on the outer wall of the connecting column 102. A support block 104 is fixedly installed in the mounting sleeve 103. The bottom end of the connecting column 102 is abutted against the top end of the support block 104. The wireless charging platform, the solar power supply module, and the repeater are all installed on the support plate 101. A bottom expansion plate 105 is fixedly connected to the bottom end of the mounting sleeve 103. The diameter of the bottom expansion plate 105 is larger than the diameter of the mounting sleeve 103. The mounting sleeve 103, the support block 104, and the bottom expansion plate 105 are all made of biodegradable materials.

[0026] When deploying the Zhongbu Intelligent Extension System, a pit matching the bottom expansion plate 105 can be dug at the relay supply point, the bottom of the pit can be leveled, and then the bottom expansion plate 105 is placed in the pit, and the top of the installation sleeve 103 is exposed to the ground. The pit is filled with soil and the soil is compacted to complete the deployment of the Zhongbu Intelligent Extension System. Although the installation sleeve 103 and the bottom expansion plate 105 are fixed in the soil, the connection column 102 and the installation sleeve 103 are movably connected, so after the task is completed, it can be hoisted by an operating drone The support plate 101 can be retracted in this way, and then the Zhongbu Intelligent Extension System can be retracted, without the need for staff to go to the relay supply point again to manually retract it. On the one hand, the flexibility and practicality of the Zhongbu Intelligent Extension System are improved, and on the other hand, time and labor costs can be further saved, and the overall efficiency of communication construction can be further improved. In addition, although the installation sleeve 103, the support block 104, and the bottom expansion plate 105 will be left at the relay supply point, since the installation sleeve 103, the support block 104, and the bottom expansion plate 105 are made of biodegradable materials, they will not cause pollution.

[0027] A connection and collection-aiding component is provided on the support plate 101, and the connection and collection-aiding component includes a temperature regulating box 201 fixedly installed on the top of the support plate 101, a sealing partition 202 is provided in the temperature regulating box 201 and sealed and fixedly connected thereto, a semiconductor refrigerator 203 is embedded through the middle of the sealing partition 202, and a connection storage cylinder 204 is fixedly connected to the top of the temperature regulating box 201, the top of the connection storage cylinder 204 is arranged in an open shape and the connection storage cylinder 204 is filled with a hot melt connector 205, the hot melt connector 205 is made of paraffin, and a melting-driving heat conductive rod 206 is connected between the hot melt connector 205 and the hot end of the semiconductor refrigerator 203, the Zhongbu Zhiyan system also includes an airborne connecting rod 301 and a connection control unit integrated on the control terminal, the connection control unit includes a melting control module, and the melting control module is connected to the semiconductor refrigerator 203 by wireless signals.

[0028] After the mission is completed, the operating drone can be controlled to fly back to the base first (if the remaining power of the operating drone is not enough to fly back to the base directly, it can first go to the relay supply point for transfer and charging, and then fly back to the base). After the operating drone flies back, the airborne connecting rod 301 is vertically installed on the bottom of the operating drone, and then the operating drone is controlled to go to the relay supply point. At the appropriate time, the semiconductor refrigerator 203 is remotely started through the melting control module. After the semiconductor refrigerator 203 is started, its hot end will heat up and the melting heat conducting rod 206 can guide the heat at the hot end of the semiconductor refrigerator 203 to the hot melt connector 205, causing the hot melt connector 205 to melt due to the heat (according to the time required for the hot melt connector 205 to melt and the time required for the operating drone to go to the relay supply point, the timing of starting the semiconductor refrigerator 203 is controlled to ensure that the hot melt connector 205 has melted when the operating drone reaches the relay supply point). After the hot melt connector 205 melts, the semiconductor refrigerator 203 is turned off through the cold solidification control module (according to the time required for the hot melt connector 205 to melt and the time required for the operating drone to go to the relay supply point). The time required for the connector 205 to melt is used to control the timing of closing the semiconductor refrigerator 203). After the operating drone reaches the relay supply point, the operating drone is controlled to stop just above the connection storage cylinder 204, and then the operating drone is controlled to move downward, so that the airborne connecting rod 301 is inserted into the melted hot-melt connector 205. After the hot-melt connector 205 is cooled and fixed again, the airborne connecting rod 301 can be fixedly inserted into the hot-melt connector 205, so that the operating drone and the support plate 101 establish a fixed connection, and then the mid-replenishment intelligent extension system can be hoisted back to the base by the operating drone. Therefore, by setting up the connection auxiliary collection component, after the task is completed, the mid-replenishment intelligent extension system can be recovered to the base by hoisting by the operating drone, without the need for staff to go to the relay supply point again for manual recovery, and the operating drone is convenient to establish a stable fixed connection with the support plate 101, which not only improves the flexibility and practicality of the mid-replenishment intelligent extension system, but also can further save time and labor costs, and further improve the overall efficiency of communication construction.

[0029] The connection and collection assembly also includes a C-shaped heat-conducting rod 207 for cooling. One end of the heat-conducting rod 207 penetrates the outer wall of the temperature regulating box 201 and extends into the temperature regulating box 201 and is located below the sealing partition 202. The other end of the heat-conducting rod 207 penetrates the outer wall of the connecting storage cylinder 204 and extends to be embedded in the hot-melt connector 205. An electric push rod 208 is fixedly installed below the sealing partition 202. The output end of the electric push rod 208 is fixedly connected to the drive The heat-insulating sleeve 209 matches the cold heat-conducting rod 207, and the heat-insulating sleeve 209 is movably mounted on one end of the cold heat-conducting rod 207 located in the temperature regulating box 201. The hot end and the cold end of the semiconductor refrigerator 203 are respectively located on the upper and lower sides of the sealed partition 202. The temperature regulating box 201, the sealed partition 202, and the heat-insulating sleeve 209 are all made of heat-insulating materials. The connection control unit also includes a cold solid control module, and the cold solid control module is connected to the electric push rod 208 by wireless signals.

[0030] After the onboard connecting rod 301 is inserted into the melted hot-melt connector 205, the electric push rod 208 is controlled by the cold-setting control module to pull the heat-insulating sleeve 209, so that the heat-insulating sleeve 209 is separated from the cooling heat-conducting rod 207. During the startup of the semiconductor refrigerator 203, the temperature at the cold end of the semiconductor refrigerator 203 will be significantly reduced, so that the temperature of the area below the sealing partition 202 will be relatively low. After the heat-insulating sleeve 209 is separated from the cooling heat-conducting rod 207, the hot-melt connector can be quickly fused under the heat conduction of the cooling heat-conducting rod 207. The connector 205 is cooled, thereby significantly improving the efficiency of cooling and fixing the hot melt connector 205, thereby improving the efficiency of the recovery and extension system. In addition, after the hot melt connector 205 is cooled and fixed, since one end of the cooling heat conductive rod 207 is inserted into the hot melt connector 205, it can play a role of clamping the hot melt connector 205, thereby improving the firmness of the connection between the hot melt connector 205 and the connecting storage cylinder 204, thereby improving the stability of the connection between the operating drone and the support plate 101.

[0031] A clamping ring 302 is fixedly sleeved on the outer wall of the airborne connecting rod 301, and the clamping ring 302 can improve the stability of the connection between the airborne connecting rod 301 and the cooled and solidified hot-melt connector 205. The outer wall of the cold-driving heat-conducting rod 207 located outside the temperature regulating box 201 and the connecting storage cylinder 204 is coated with a heat-insulating coating to reduce the loss of cold. The top end of the connecting storage cylinder 204 is sleeved with a shutdown plate 210 fixedly connected to it. After the airborne connecting rod 301 is inserted into the melted hot-melt connector 205, while waiting for the hot-melt connector 205 to cool and solidify again, the operating drone can be parked on the shutdown plate 210 without hovering above the connecting storage cylinder 204. This can not only improve stability but also reduce the energy consumption of the operating drone.

[0032] In view of current practical needs, the above-mentioned implementation mode adopted in this application is not limited to the scope of protection. Various changes made within the knowledge scope of technical personnel in this field without departing from the concept of this application still fall within the scope of protection of the present invention.

Claims

1. An intelligent UAV communication system for communication construction, comprising a base, characterized in that: The base is provided with an operating drone and a control terminal. The control terminal remotely controls the operating drone through an adaptive frequency hopping communication protocol. The operating drone is configured to replace manual labor to go to the operating area to perform tasks. A wireless charging receiving module is integrated at the bottom of the operating drone. It also includes a Zhongbu Zhiyan system, which includes a wireless charging platform, a solar power supply module, and a repeater. The solar power supply module is electrically connected to the wireless charging platform and the repeater, the control terminal is signal-connected to the repeater, and the repeater is signal-connected to the operating drone; A relay supply point for deploying the Zhongbu Zhiyan system is selected between the base and the operating area, and the Zhongbu Zhiyan system is deployed to the relay supply point by manual operation. The operating drone is controlled to fly to the target area through the control terminal at the base. When the operating drone enters the communication coverage of the repeater, the communication link between the control terminal and the operating drone is established through the repeater. A low power threshold is set according to the power required for the operating drone to fly from the operating area to the relay supply point. When the remaining power of the operating drone is lower than the low power threshold, the operating drone is controlled to go to the relay supply point for charging.

2. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 1, characterized in that: The operating drone is integrated with a terrain information collection module, and the method for selecting a relay supply point is: S1. Select a location between the base and the operation area as the return point based on the communication distance and endurance of the operating drone; S2, planning the site selection flight route with the base as the starting point and the return point as the end point, and controlling the operating drone to collect landform information along the site selection flight route; S3. Select relay supply points based on the terrain information collected by the operating drone.

3. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 2, characterized in that: The Zhongbu Zhiyan system also includes an easily retractable support member for supporting a wireless charging platform, a solar power supply module, and a repeater, the easily retractable support member including a support plate (101), the bottom end of the support plate (101) being fixedly connected to a connecting column (102), a matching mounting sleeve (103) being movably sleeved on the outer wall of the connecting column (102), a supporting block (104) being fixedly mounted inside the mounting sleeve (103), and the bottom end of the connecting column (102) abutting against the top end of the supporting block (104).

4. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 3 is characterized in that: The wireless charging platform, solar power supply module and repeater are all mounted on a support plate (101), and the mounting sleeve (103) and support block (104) are all made of biodegradable materials.

5. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 4, characterized in that: A bottom expansion plate (105) is fixedly connected to the bottom end of the installation sleeve (103); the diameter of the bottom expansion plate (105) is larger than the diameter of the installation sleeve (103); and the bottom expansion plate (105) is also made of biodegradable material.

6. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 5, characterized in that: The support plate (101) is provided with a connection and collection-aiding assembly, the connection and collection-aiding assembly comprising a temperature regulating box (201) fixedly mounted on the top of the support plate (101), the temperature regulating box (201) being provided with a sealing baffle (202) sealed and fixedly connected thereto, the middle of the sealing baffle (202) being penetrated and embedded with a semiconductor refrigerator (203), the top of the temperature regulating box (201) being fixedly connected with a connection storage cylinder (204), the top of the connection storage cylinder (204) being arranged in an open shape and the connection storage cylinder (204) being filled with a hot melt connector (205), the hot melt connector (205) being made of paraffin, a melting-driving heat-conducting rod (206) being connected between the hot melt connector (205) and the hot end of the semiconductor refrigerator (203), the Zhongbu Zhiyan system further comprising an onboard connection rod (301) and a connection control unit integrated on a control terminal, the connection control unit comprising a melting control module, the melting control module being connected to the semiconductor refrigerator (203) by a wireless signal.

7. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 6, characterized in that: The connection and receiving assistance component also includes a cooling-driving heat-conducting rod (207) arranged in a C shape, one end of the cooling-driving heat-conducting rod (207) penetrates the outer wall of the temperature regulating box (201), extends into the temperature regulating box (201) and is located below the sealing partition (202), the other end of the cooling-driving heat-conducting rod (207) penetrates the outer wall of the connecting storage cylinder (204) and extends to be embedded in the hot-melt connecting body (205), an electric push rod (208) is fixedly installed below the sealing partition (202), and the output end of the electric push rod (208) is fixedly connected to a heat-insulating sleeve (209) matching the cooling-driving heat-conducting rod (207), and the heat-insulating sleeve (209) is movably sleeved on one end of the cooling-driving heat-conducting rod (207) located in the temperature regulating box (201).

8. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 7, characterized in that: The hot end and the cold end of the semiconductor refrigerator (203) are respectively located on the upper side and the lower side of the sealed baffle (202); the temperature regulating box (201), the sealed baffle (202), and the heat insulating sleeve (209) are all made of heat insulating materials; the connection control unit further comprises a cold solidification control module, and the cold solidification control module is connected to the electric push rod (208) via a wireless signal.

9. The intelligent unmanned aerial vehicle communication system for communication construction according to claim 8, characterized in that: A clamping ring (302) is fixedly sleeved on the outer wall of the onboard connecting rod (301), a heat insulating coating is applied on the outer wall of a portion of the rod body of the cooling and heat conducting rod (207) located outside the temperature regulating box (201) and the connecting storage cylinder (204), and a shutdown plate (210) fixedly connected thereto is sleeved on the top end of the connecting storage cylinder (204).

Citation Information

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