Long-range wireless communication repeater apparatus and communication method

By rotating the platform to adjust the position of the photovoltaic panels to receive clean energy power, combined with tilted installation and heat dissipation measures, the problems of repeater endurance and weak signal strength were solved, and stable signal transmission was achieved.

WO2026000906A1PCT designated stage Publication Date: 2026-01-02GUANGDONG POWER GRID CO LTD +1
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Patent Information

Application Number
PCT/CN2024/142422
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-06-25
Filing Date
2024-12-25
Publication Date
2026-01-02

AI Technical Summary

Technical Problem

Existing repeater devices have low battery life and weak signal strength, or can only amplify signals for wired fiber optic communication, failing to solve the battery life and signal strength problems of wireless communication repeaters.

Method used

A rotating platform is used to adjust the position of the power compensation and protection device, which receives clean energy and converts it into electrical energy. The power is supplied to the relay through the charge and discharge controller. The relay is used to forward the signal after the signal strength is enhanced. The photovoltaic panels are installed at an angle to prevent rainwater accumulation. Fans are used for heat dissipation. The support rod is fixed to the power tower.

Benefits of technology

It achieves stable battery life and enhanced signal strength for long-distance wireless communication relay devices, ensures stable signal transmission, prevents damage to photovoltaic panels and rain interference, and improves transmission efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN2024142422_02012026_PF_FP_ABST
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Abstract

The present invention provides a long-range wireless communication repeater apparatus and communication method. A relay and a charging and discharging controller are both horizontally mounted at the top of a rotating platform, the charging and discharging controller is located at the front end of the relay, and a power compensation and protection apparatus is fixed at the top of the relay. The long-range wireless communication repeater apparatus comprises: the power compensation and protection apparatus, used for receiving clean energy, converting the clean energy into electric energy, and transmitting the electric energy to the charging and discharging controller; the rotating platform, used for adjusting the position of the power compensation and protection apparatus, so that the power compensation and protection apparatus receives the clean energy; the charging and discharging controller, used for receiving the electric energy transmitted by the power compensation and protection apparatus and transmitting the electric energy to the relay; and the relay, used for performing signal intensity enhancement on a received signal on the basis of the electric energy received from the charging and discharging controller and then forwarding the signal. The use of the present invention can enhance the signal intensity during repeating.
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Description

Long-distance wireless communication relay device and communication method TECHNICAL FIELD

[0001] The present application relates to the technical field of wireless communication, in particular to a long-distance wireless communication relay device and a communication method. BACKGROUND

[0002] The repeater (RP) is a device that connects network lines and is commonly used for bidirectional forwarding of physical signals between two network nodes. The repeater mainly completes the function of the physical layer, is responsible for bit-by-bit transmission of information on the physical layer of two nodes, and completes the functions of signal copying, adjustment and amplification, so as to extend the length of the network.

[0003] The existing repeater device has the following defects: it cannot automatically charge, resulting in low endurance of the wireless relay, and thus weak signal strength; or the existing repeater uses an optical repeater to amplify the signal, avoiding the endurance problem of the wireless relay, but this way can only amplify the signal of wired optical fiber communication. SUMMARY

[0004] The present application aims at the deficiencies of the existing related technologies, and provides a long-distance wireless communication relay device and a communication method, which can enhance the relay signal strength.

[0005] In a first aspect, the present application provides a long-distance wireless communication relay device, comprising: a power compensation protection device, a relay, a charge-discharge controller and a rotating platform connected in sequence from top to bottom; wherein the relay and the charge-discharge controller are both horizontally installed on the top of the rotating platform, and the charge-discharge controller is located at the front end of the relay, and the power compensation protection device is fixed on the top of the relay.

[0006] The power compensation protection device is used for receiving clean energy, converting the clean energy into electric energy, and transmitting the electric energy to the charge-discharge controller; the clean energy includes solar energy.

[0007] The rotating platform is used for adjusting the position of the power compensation protection device, so that the power compensation protection device receives the clean energy.

[0008] The charge-discharge controller is used for receiving the electric energy transmitted by the power compensation protection device, and transmitting the electric energy to the relay.

[0009] The relay is used for forwarding the received signal after signal strength enhancement according to the electric energy received from the charge-discharge controller.

[0010] The application adopts a rotating platform to adjust the position of the power compensation protection device, can collect clean energy in all directions at any time, thereby improving the efficiency of providing continuous power to the relay through the charge-discharge controller, and further can guarantee the stable endurance of the relay, so that the long-distance wireless communication relay device can enhance the signal strength of the received signal under stable function, and guarantee the stability of signal transmission.

[0011] Further, the rotating platform comprises a first platform, a bidirectional bearing, a second platform and a driving motor connected in sequence from bottom to top; wherein,

[0012] The upper end of the outer side of the bidirectional bearing is provided with a gear ring, the driving motor passes through the second platform, and a pinion disc is arranged at the bottom of the driving motor, the bottom of the pinion disc is connected with the second platform, and the gear ring is connected with the driving motor through the pinion disc; the first platform and the second platform are circular structures.

[0013] Further, the second platform remains relatively static with the first platform, and the charge-discharge controller is placed on the top of the second platform; wherein, receiving clean energy comprises:

[0014] When the driving motor operates, the first platform is rotated by the gear ring sequentially driving the pinion disc and the bidirectional bearing, when the first platform rotates, the power compensation protection device indirectly connected between the charge-discharge controller and the second platform collects the clean energy in all directions; the operation includes bidirectional rotation and limit rotation.

[0015] Further, the power compensation protection device comprises a first mounting plate, a second mounting plate and a middle plate; wherein,

[0016] The first mounting plate and the second mounting plate are provided with photovoltaic panels to receive the clean energy, and the first mounting plate and the second mounting plate are respectively installed on both sides of the middle plate in the highest inclined manner of the position of the middle plate, and a through hole is respectively installed on the upper edge position of the first mounting plate and the second mounting plate close to the middle plate, so as to transmit the transmission antenna to both ends of the relay.

[0017] The application adopts the installation mode of the inclination of the first mounting plate and the second mounting plate, can prevent rainwater accumulation and damage to the photovoltaic panel, thereby ensuring the safe work of the power compensation protection device, and the through hole is installed at the upper edge position of the first mounting plate and the second mounting plate close to the middle plate, which can prevent rainwater from irrigating the relay along the transmission antenna, improve the efficiency of the transmission antenna receiving and relaying signals, and reduce obstacle interference, thereby ensuring the safe work of the relay and stable signal transmission, and further ensuring the safe work and stable signal relay transmission of the long-distance wireless communication relay device by ensuring the safe work and stable signal relay transmission of the power compensation protection device and the relay.

[0018] Further, the signal strength enhancement of the received signal and the retransmission include:

[0019] The power transmitted by the charge and discharge controller is received and stored, the signal is received through the transmission antenna at the first end of the relay, the signal strength of the received signal is enhanced by the stored power, and the enhanced signal is relayed to the receiving end through the transmission antenna at the second end of the relay; the two ends of the relay include: the first end of the relay and the second end of the relay.

[0020] Further, in the process of signal strength enhancement and retransmission of the received signal, it includes:

[0021] If the temperature of the relay is higher than the temperature threshold, the fans installed at the heat dissipation openings of the rectangular structure at the first end of the relay and the second end of the relay are started to dissipate heat; the power of the fan is provided by the relay.

[0022] Further, the heat dissipation opening is provided with a heat dissipation protection cover, and the heat dissipation protection cover is in an arc shape structure to prevent rainwater from splashing in or dust from floating in.

[0023] Further, the rotating platform is connected with the base through the supporting rod; wherein the base includes: a supporting seat and a sleeve cylinder; the sleeve cylinder is welded on the top of the supporting seat, the top of the sleeve cylinder is a hollow structure, a plurality of groups of stable reinforcing blocks in a ring-like equidistant distribution are arranged at the connection between the sleeve cylinder and the supporting seat, the stable reinforcing blocks are in a trapezoidal shape structure, the sleeve cylinder is inserted into the supporting rod, and the bottom of the supporting rod is welded and fixed.

[0024] Furthermore, the support base has a circular structure, and several sets of locking holes are provided on the surface of the support base. Locking bolts are installed in the locking holes, and a bottom fitting gasket is provided at the bottom of the support base. The bottom fitting gasket is made of rubber. When installing the long-distance wireless communication relay device on the power tower, the support base is fitted to the mounting surface of the power tower, and the locking bolts are inserted into the corresponding locking holes.

[0025] In a second aspect, the present invention provides a long-distance wireless communication relay method, applied to the long-distance wireless communication relay device as defined in the first aspect and further defined in the first aspect, comprising:

[0026] The signal is received through the transmission antenna at the first end of the relay. After the received signal is demodulated, decoded and restored, and the signal strength is enhanced in sequence, it is relayed to the receiving end through the transmission antenna at the second end of the relay. The received signal is obtained by the transmitting end from the initial signal, which is then encoded, modulated and radio frequency transmitted to the long-distance wireless communication relay device. Attached Figure Description

[0027] Figure 1 is a schematic diagram of the structure of a long-distance wireless communication relay device provided in this embodiment;

[0028] Figure 2 is a schematic diagram of the power compensation and protection device provided in this embodiment;

[0029] Figure 3 is a schematic diagram of the relay provided in this embodiment;

[0030] Figure 4 is a schematic diagram of the rotating platform provided in this embodiment;

[0031] Figure 5 is a structural schematic diagram of the base provided in this embodiment;

[0032] Figure 6 is a flowchart illustrating a long-distance wireless communication relay communication method provided in this embodiment;

[0033] Figure 7 is a schematic diagram of the multi-terminal communication interaction process based on a long-distance wireless communication relay device provided in this embodiment.

[0034] Numbered in the diagram: 1. Device body; 2. Base; 3. Support rod; 4. Rotating platform; 5. Relay; 6. Charge / discharge controller; 7. Power compensation and protection device; 8. Middle plate; 9. First mounting plate; 10. Second mounting plate; 11. Mounting groove; 12. Photovoltaic panel; 13. Through hole; 14. Bottom welded support column; 15. First platform; 16. Bidirectional bearing; 17. Second platform; 18. Drive motor; 19. Small gear disk; 20. Gear ring; 21. Transmission antenna; 22. Heat dissipation port; 23. Heat dissipation protective cover; 24. Support base; 25. Sleeve sleeve; 26. Stabilizing reinforcing block; 27. Bottom fitting gasket; 28. Locking hole; 29. ​​Locking bolt. DETAILED DESCRIPTION

[0035] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative effort belong to the scope of protection of the present application.

[0036] It is worth mentioning that, in order to solve the power supply problem of the wireless communication relay device and the problem of weak relay signal strength caused by the power supply problem, the present application provides a way of supplying power to the wireless communication relay device by collecting clean energy in all directions and converting the clean energy into electric energy, thereby solving the problems of difficult power supply and weak relay signal strength of the wireless communication relay device.

[0037] In order to more clearly illustrate the technical solutions of the present application, the following embodiments will be described in detail.

[0038] Embodiment 1

[0039] Referring to FIG. 1, it is a structural schematic diagram of a long-distance wireless communication relay device provided by the present embodiment. In the figure, the long-distance wireless communication relay device comprises a device body 1, which comprises, from top to bottom, a power compensation protection device 7, a relay 5, a charge-discharge controller 6 and a rotating platform 4; wherein the relay 5 and the charge-discharge controller 6 are both horizontally installed on the top of the rotating platform 4, and the charge-discharge controller 6 is located at the front end of the relay 5, and the power compensation protection device 7 is fixed on the top of the relay 5.

[0040] In some embodiments, the power compensation protection device 7 is used to receive clean energy, convert the clean energy into electric energy, and transmit the electric energy to the charge-discharge controller 6; the clean energy includes solar energy.

[0041] In some embodiments, the relay 5 is used to forward the received signal after signal strength enhancement according to the electric energy received from the charge-discharge controller 6.

[0042] In some embodiments, the charge-discharge controller 6 is used to receive the electric energy transmitted by the power compensation protection device 7, and transmit the electric energy to the relay 5.

[0043] In some embodiments, the rotating platform 4 is used to adjust the position of the power compensation protection device 7, so that the power compensation protection device 7 receives clean energy.

[0044] In some embodiments, the device body 1 further comprises a base 2 and a support rod 3. The support rod 3 is welded on the top of the base 2, the rotating platform 4 is fixed on the top of the support rod 3, the relay 5 and the charge and discharge controller 6 are both installed on the top of the rotating platform 4, the charge and discharge controller 6 is located in front of the relay 5, and the power compensation protection device 7 is fixed on the top of the relay 5.

[0045] In this embodiment, the rotating platform is used to adjust the position of the power compensation protection device, which can collect clean energy in all directions at any time, thereby improving the efficiency of the relay provided with continuous power by the charge and discharge controller, and further ensuring the stable endurance of the relay, so that the long-distance wireless communication relay device can enhance the signal strength of the received signal under stable function, and ensure the stability of signal transmission.

[0046] In order to more clearly illustrate the structure of the long-distance wireless communication relay device, the structure of the power compensation protection device 7, the relay 5, the rotating platform 4 and the base 2 will be introduced in detail.

[0047] Structure of the power compensation protection device 7

[0048] In some embodiments, referring to FIG. 2, it is a structural schematic diagram of the power compensation protection device provided in this embodiment. In the figure, the power compensation protection device 7 comprises a first mounting plate 9, a second mounting plate 10 and a middle plate 8; wherein the first mounting plate 9 and the second mounting plate 10 are installed with photovoltaic panels 12 to receive clean energy, and the first mounting plate 9 and the second mounting plate 10 are respectively installed on both sides of the middle plate 8 in the highest inclined manner of the middle plate 8, and a through hole 13 is respectively installed on the upper edge of the first mounting plate 9 and the second mounting plate 10 close to the middle plate 8, so as to make the transmission antenna 21 of the relay 5 pass through both ends.

[0049] In some embodiments, the first mounting plate 9 is installed in an inclined manner on the left end of the middle plate 8, the second mounting plate 10 is installed in an inclined manner on the right end of the middle plate 8, the bottom of the middle plate 8 is provided with a bottom welding support column 14, the top of the first mounting plate 9 and the second mounting plate 10 are both provided with an installation groove 11 and a through hole 13, the installation groove 11 of the first mounting plate 9 and the second mounting plate 10 is used to install the photovoltaic panel 12, and the first mounting plate 9 and the second mounting plate 10 are in an inclined manner, so as to achieve the purpose of drainage, and the through hole 13 on the first mounting plate 9 and the second mounting plate 10 is used to facilitate the transmission antenna 21 of the relay 5 to pass out.

[0050] In some embodiments, the mounting groove 11 is in a square shape structure, the photovoltaic panel 12 is installed in the mounting groove 11, a group of photovoltaic panels 12 are connected with the charge and discharge controller 6 through connecting wires, the photovoltaic panel 12 converts light energy into electric energy, and then the electric power is transmitted to the relay 5 for use and storage of electric power through the charge and discharge controller 6.

[0051] The first mounting plate and the second mounting plate are installed in a tilted manner, rainwater accumulation and damage to the photovoltaic panel can be prevented, the safe operation of the power compensation protection device is ensured, the through hole is installed at the upper edge of the first mounting plate and the second mounting plate close to the middle plate, rainwater pouring along the transmission antenna to the relay can be prevented, the efficiency of signal reception and relay of the transmission antenna is improved, and the interference of obstacles is reduced, the safe operation of the relay and stable signal transmission are ensured, and then the safe operation and stable signal relay transmission of the long-distance wireless communication relay device are ensured through the safe operation and stable signal relay transmission of the power compensation protection device and the relay.

[0052] In some embodiments, the long-distance wireless communication relay device senses through the light sensor, and then starts the driving motor 18, so as to drive the pinion disc 19 and the double bearing 16 through the gear ring 20 to rotate the first platform 15, when the first platform 15 rotates, the power compensation protection device 7 indirectly connected between the charge and discharge controller 6 and the second platform 17 is used to collect clean energy in all directions; wherein the working principle of the light sensor can also be based on the thermoelectric effect principle, mainly using a detection component with high response to weak light to sense the light source and adjust the photovoltaic panel.

[0053] Structure of the relay 5

[0054] In some embodiments, referring to FIG. 3, it is a structural schematic diagram of the relay provided by the embodiment. The relay 5 receives the electric energy transmitted by the charge and discharge controller 6, enhances the signal strength of the received signal, and then relays the enhanced signal to the receiving end through the transmission antenna 21 at the second end of the relay 5, including: receiving the electric energy transmitted by the charge and discharge controller 6 and storing it, receiving the signal through the transmission antenna 21 at the first end of the relay 5, enhancing the signal strength of the received signal through the stored electric energy, and relaying the enhanced signal to the receiving end through the transmission antenna 21 at the second end of the relay 5; the two ends of the relay 5 include: the first end of the relay 5 and the second end of the relay 5.

[0055] It is worth noting that when the signal strength of the received signal is enhanced by the stored electric energy, the remaining electric energy of the relay is greater than the minimum electric energy required for the operation of the device itself, the signal can be relayed at the maximum power, the signal strength is enhanced, and the stability of the relay signal transmission of the long-distance wireless communication relay device is improved.

[0056] In some embodiments, in the process of forwarding the signal strength enhanced received signal, if the temperature of the relay 5 is higher than the temperature threshold, the fans installed at the rectangular-shaped heat dissipation ports 22 of the first end of the relay 5 and the second end of the relay 5 are started to dissipate heat, respectively; the electric energy of the fans is provided by the relay 5.

[0057] In some embodiments, the heat dissipation ports 22 are provided with heat dissipation protective covers 23 in an arc-shaped structure to prevent rainwater from splashing in or dust from floating in.

[0058] In some embodiments, the relay 5 is provided with transmission antennas 21 on both left and right sides, and is provided with heat dissipation ports 22 on both left and right sides, the heat dissipation ports 22 are in a rectangular-shaped structure, the outer end of the heat dissipation ports 22 is provided with heat dissipation protective covers 23 in an arc-shaped structure, the relay 5 transmits signals through a set of transmission antennas 21, which can improve the stability and strength of signal transmission, when the relay 5 overheats, the relay 5 can dissipate heat through the heat dissipation ports 22, and the heat dissipation ports 22 can be installed with fans to assist in heat dissipation, and the heat dissipation protective covers 23 outside the heat dissipation ports 22 can prevent rainwater or dust from entering the relay 5 through the heat dissipation ports 22.

[0059] Structure of the rotating platform 4

[0060] In some embodiments, referring to FIG. 4, it is a structural schematic diagram of the rotating platform provided in the embodiment. In the figure, the rotating platform 4 includes: a first platform 15, a bidirectional bearing 16, a second platform 17 and a driving motor 18 connected in sequence from bottom to top; wherein the outer side of the upper end of the bidirectional bearing 16 is provided with a gear ring 20, the driving motor 18 passes through the second platform 17, and a pinion disc 19 is arranged at the bottom of the driving motor 18, the bottom of the pinion disc 19 is connected with the second platform 17, and the gear ring 20 is connected with the driving motor 18 through the pinion disc 19; the first platform 15 and the second platform 17 are in a circular-shaped structure.

[0061] In some embodiments, the second platform 17 remains relatively stationary with the first platform 15, and a charge and discharge controller 6 is placed on the top of the second platform 17; wherein receiving clean energy includes: when the driving motor 18 operates, the first platform 15 is rotated by the gear ring 20 sequentially driving the pinion disc 19 and the bidirectional bearing 16, and clean energy is collected in all directions through the power compensation protection device 7 indirectly connected between the charge and discharge controller 6 and the second platform 17; operation includes: bidirectional rotation and limit rotation.

[0062] In some embodiments, the bidirectional bearing 16 is mounted on the top of the first platform 15, the second platform 17 is mounted on the top of the bidirectional bearing 16, the first platform 15 and the second platform 17 are both circular in shape, the driving motor 18 is mounted on the top of the second platform 17 outside, the gear ring 20 is arranged on the outside of the upper end of the bidirectional bearing 16, the pinion disc 19 is arranged on the bottom of the driving motor 18, the driving motor 18 is connected with the gear ring 20 through the pinion disc 19, when adjusting the position of the photovoltaic panel 12, the driving motor 18 in the rotating platform 4 is driven to rotate, the driving motor 18 drives the pinion disc 19 to rotate, the pinion disc 19 is engaged with the gear ring 20, then the upper part of the bidirectional bearing 16 can be driven to rotate, the first platform 15 fixed on the bidirectional bearing 16 can be rotated, and the power compensation protection device 7 on the top of the relay 5 can be driven, so as to adjust the position of the photovoltaic panel 12.

[0063] In some embodiments, the working principle of the long-distance wireless communication relay device for collecting clean energy to convert into electric energy includes: during operation, the worker pastes the supporting seat 24 in the base 2 to the mounting surface of the electric tower, the worker inserts the locking bolt 29 into the locking hole 28 of the supporting seat 24, so as to fix the device body 1 on the electric tower through the locking bolt 29, during operation, the photovoltaic panel 12 converts light energy into electric energy, and then the electric power is delivered to the relay 5 through the charge and discharge controller 6 for use and storage, the relay 5 can continue to operate through the supplemented electric energy, and through sufficient electric power, the efficiency of the relay 5 can be ensured, when the photovoltaic panel 12 needs to be adjusted according to the angle of sunlight, the driving motor 18 in the rotating platform 4 is driven to rotate, the driving motor 18 drives the pinion disc 19 to rotate, the pinion disc 19 is engaged with the gear ring 20, then the upper part of the bidirectional bearing 16 can be driven to rotate, the first platform 15 fixed on the bidirectional bearing 16 can be rotated, and the power compensation protection device 7 on the top of the relay 5 can be driven, so as to adjust the position of the photovoltaic panel 12, when the power compensation protection device 7 is driven, it can rotate without dead angle for 360 degrees, but attention should be paid to the winding of the connecting line, so the driving motor 18 is bidirectional and limited in rotation to prevent the winding of the wire harness.

[0064] Structure of the base 2

[0065] In some embodiments, referring to Figure 5, it is a structural schematic diagram of the base provided by the embodiment. In the figure, the rotating platform 4 is connected with the base 2 through the support rod 3; wherein the base 2 comprises: a support seat 24 and a sleeve-in cylinder 25; the sleeve-in cylinder 25 is welded on the top of the support seat 24, the top of the sleeve-in cylinder 25 is a hollow structure, a plurality of groups of stable reinforcing blocks 26 in a ring-like equidistant distribution are arranged at the connection between the sleeve-in cylinder 25 and the support seat 24, the stable reinforcing blocks 26 are in a trapezoidal structure, the sleeve-in cylinder 25 is inserted into the support rod 3, and the bottom of the support rod 3 is welded and fixed.

[0066] In some embodiments, the sleeve-in cylinder 25 is welded on the top of the support seat 24, the top of the sleeve-in cylinder 25 is a hollow structure, a plurality of groups of stable reinforcing blocks 26 in a ring-like equidistant distribution are arranged at the connection between the sleeve-in cylinder 25 and the support seat 24, the stable reinforcing blocks 26 are in a trapezoidal structure, the sleeve-in cylinder 25 on the top of the support seat 24 is for the convenience of inserting the bottom of the support rod 3, and then welding and fixing.

[0067] In some embodiments, the support seat 24 is in a circular structure, a plurality of groups of locking holes 28 are arranged on the surface of the support seat 24, locking bolts 29 are installed in the locking holes 28, the bottom of the support seat 24 is provided with a bottom adhering gasket 27, and the bottom adhering gasket 27 is made of rubber; wherein when the long-distance wireless communication relay device is installed on the electric tower, the support seat 24 is adhered to the mounting surface of the electric tower, and the locking bolts 29 are inserted into the corresponding locking holes 28.

[0068] In some embodiments, the support seat 24 is in a circular structure, a plurality of groups of locking holes 28 are arranged on the surface of the support seat 24, locking bolts 29 are installed in the locking holes 28, the bottom of the support seat 24 is provided with a bottom adhering gasket 27, and the bottom adhering gasket 27 is made of rubber; wherein when the long-distance wireless communication relay device is installed on the electric tower, the support seat 24 is adhered to the mounting surface of the electric tower, and the locking bolts 29 are inserted into the corresponding locking holes 28.

[0069] The embodiment can effectively supplement the power of the wireless relay 5 through the solar energy, thereby improving the endurance of the wireless relay 5 and ensuring the strength of the relay 5 signal. The power compensation protection device 7 can further maximize the absorption of sunlight by adjusting and rotating the photovoltaic panel 12, thereby improving the power generation amount. The long-distance wireless communication relay device is very convenient to install and can be directly installed on the electric tower or the electric lamp post, thereby further improving the convenience of equipment installation.

[0070] Embodiment 2

[0071] Referring to FIG. 6, it is a flow diagram of a long-distance wireless communication relay communication method provided by the embodiment, applied to the long-distance wireless communication relay device as described in Embodiment 1. When the long-distance wireless communication relay device relays and forwards the received signal, the signal is received by the transmission antenna at the first end of the relay, and after the received signal is sequentially subjected to signal demodulation, decoding recovery, and signal strength enhancement, the signal is relayed to the receiving end by the transmission antenna at the second end of the relay. The received signal is the initial signal transmitted by the sending end to the long-distance wireless communication relay device after being sequentially subjected to signal encoding, modulation, and radio frequency transmission.

[0072] The long-distance wireless communication relay device based on Embodiment 1 is used to relay signals in this embodiment, which can provide stable long-distance wireless signal interaction.

[0073] Those skilled in the art should understand that the embodiments of the present application can also provide a computer program product. Therefore, the present application can take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present application can take the form of a computer program product implemented on one or more computer usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer usable program code.

[0074] The present application is described with reference to flowcharts and / or block diagrams of the methods, devices (systems), and computer program products according to the embodiments of the present application. It should be understood that each flow and / or block in the flowcharts and / or block diagrams, and the combination of the flows and / or blocks in the flowcharts and / or block diagrams can be implemented by computer program instructions. These computer program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing device to produce a machine, so that the instructions executed by the processor of the computer or other programmable data processing device produce a device that implements the functions specified in one or more flows in the flowcharts and / or one or more blocks in the block diagrams.

[0075] These computer program instructions can also be stored in a computer readable storage medium that can guide the computer or other programmable data processing device to work in a specific way, so that the instructions stored in the computer readable storage medium produce a product including instruction devices, which implement the functions specified in one or more flows in the flowcharts and / or one or more blocks in the block diagrams.

[0076] These computer program instructions can also be loaded into a computer or other programmable data processing devices, so that a series of operational steps are performed on the computer or other programmable devices to generate a computer implemented process, so that the instructions executed on the computer or other programmable devices provide steps for implementing the functions specified in one or more flows of a flowchart and / or one or more blocks of a block diagram.

[0077] The above description is only preferred embodiments of the present application, it should be pointed out that for those skilled in the art, without departing from the technical principles of the present application, a number of improvements and modifications can be made, these improvements and modifications should also be considered as the protection scope of the present application.

Claims

1. A long-distance wireless communication relay device, characterized in that, include: The components connected in sequence from top to bottom are a power compensation and protection device, a relay, a charge and discharge controller, and a rotating platform; wherein, the relay and the charge and discharge controller are both horizontally mounted on the top of the rotating platform, and the charge and discharge controller is located at the front end of the relay, and the power compensation and protection device is fixed on the top of the relay; The power compensation and protection device is used to receive clean energy, convert the clean energy into electrical energy, and transmit the electrical energy to the charge and discharge controller; the clean energy includes: solar energy; The rotating platform is used to adjust the position of the power compensation and protection device so that the power compensation and protection device can receive the clean energy; The charge / discharge controller is used to receive electrical energy transmitted by the power compensation and protection device and transmit the electrical energy to the relay; The relay is used to amplify the signal strength of the received signal and then forward it based on the electrical energy received from the charge / discharge controller.

2. The long-distance wireless communication relay device as described in claim 1, characterized in that, The rotating platform includes, from bottom to top, a first platform, a bidirectional bearing, a second platform, and a drive motor; wherein... A gear ring is provided on the outer side of the upper end of the bidirectional bearing. The drive motor passes through the second platform and a small gear disk is provided at the bottom of the drive motor. The bottom of the small gear disk is connected to the second platform. The gear ring is connected to the drive motor through the small gear disk. The first platform and the second platform are circular structures.

3. The long-distance wireless communication relay device as described in claim 2, characterized in that, The second platform remains relatively stationary compared to the first platform, and the charge / discharge controller is placed on top of the second platform; wherein receiving clean energy includes: When the drive motor is operating, it drives the pinion and the bidirectional bearing to rotate the first platform in sequence through the gear ring. When the first platform rotates, the power compensation and protection device, which is indirectly connected to the second platform through the charge and discharge controller, collects the clean energy from all directions. The operation includes bidirectional rotation and limit rotation.

4. The long-distance wireless communication relay device as described in claim 1, characterized in that, The power compensation and protection device includes: a first mounting plate, a second mounting plate, and a central plate; wherein... The first mounting plate and the second mounting plate are equipped with photovoltaic panels to receive the clean energy. The first mounting plate and the second mounting plate are respectively installed on both sides of the middle plate with the middle plate at the highest tilt position. A through hole is installed on the first mounting plate and the second mounting plate near the upper edge of the middle plate to allow the transmission antennas at both ends of the relay to pass through.

5. The long-distance wireless communication relay device as described in claim 4, characterized in that, The step of enhancing the signal strength of the received signal based on the electrical energy received from the charge / discharge controller before forwarding it includes: The relay receives and stores electrical energy transmitted by the charge / discharge controller, receives signals through the transmission antenna at the first end of the relay, amplifies the signal strength of the received signals using the stored electrical energy, and relays the amplified signal to the receiving end through the transmission antenna at the second end of the relay; the relay has two ends: the first end of the relay and the second end of the relay.

6. The long-distance wireless communication relay device as described in claim 5, characterized in that, The process of enhancing the signal strength of the received signal before forwarding includes: If the temperature of the relay is higher than the temperature threshold, the fans installed at the heat dissipation vents of the rectangular structures at the first and second ends of the relay will be activated to dissipate heat; the power of the fans is provided by the relay.

7. The long-distance wireless communication relay device as described in claim 6, characterized in that, The heat dissipation vent is equipped with a heat dissipation protective cover, which has an arc-shaped structure to prevent rainwater from splashing in or dust from entering.

8. The long-distance wireless communication relay device as described in claim 1, characterized in that, The rotating platform is connected to the base via a support rod; wherein the base includes a support seat and a sleeve; the sleeve is welded to the top of the support seat, the top of the sleeve is a hollow structure, and several sets of stabilizing reinforcing blocks are arranged in a ring-shaped equidistant manner at the connection between the sleeve and the support seat. The stabilizing reinforcing blocks are trapezoidal in shape, and are inserted into the support rod through the sleeve, and the bottom of the support rod is welded and fixed.

9. The long-distance wireless communication relay device as described in claim 8, characterized in that, The support base has a circular shape and several sets of locking holes are provided on its surface. Locking bolts are installed in the locking holes. The bottom of the support base is provided with a bottom fitting gasket, which is made of rubber. When installing the long-distance wireless communication relay device on the power tower, the support base is attached to the mounting surface of the power tower, and the locking bolts are inserted into the corresponding locking holes.

10. A long-distance wireless communication relay method, applied to the long-distance wireless communication relay device as described in any one of claims 1-9, characterized in that, include: The signal is received through the transmission antenna at the first end of the relay. After the received signal is demodulated, decoded and restored, and the signal strength is enhanced in sequence, it is relayed to the receiving end through the transmission antenna at the second end of the relay. The received signal is obtained by the transmitting end from the initial signal, which is then encoded, modulated and radio frequency transmitted to the long-distance wireless communication relay device.

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