Routing setup method for wireless power terminals, wireless power terminals and storage media

By automatically extracting IP addresses and port numbers from service messages using wireless power terminals, automatic routing settings for wireless power terminals are achieved, solving the problem of tedious manual configuration and improving configuration efficiency.

CN115883454BActive Publication Date: 2025-12-02ZTE CORP
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Patent Information

Application Number
CN202111137326.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-09-27
Publication Date
2025-12-02
Estimated Expiration
2041-09-27

AI Technical Summary

Technical Problem

5G wireless power terminals in power systems require manual configuration of IP addresses and port information, making the configuration process cumbersome and inflexible, and unable to be completed through default settings.

Method used

Wireless power terminals can automatically extract the source and destination IP addresses or IP addresses and port numbers from service messages and automatically set up routes without manual operation.

Benefits of technology

It enables automated routing configuration of wireless power terminals in different scenarios, simplifies the configuration process, and improves operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application discloses a routing configuration method for a wireless power terminal, a wireless power terminal, and a storage medium. The method includes: receiving a service message; obtaining the IP address of the source end and the IP address of the destination end of the service message, or the IP address and port number of the source end and the IP address and port number of the destination end of the service message; and configuring the routing of the wireless power terminal based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end. In this way, this application can automatically configure the routing of the wireless power terminal without manual operation.
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Description

Technical Field

[0001] This application relates to the field of power communication technology, and in particular to a routing setting method for a wireless power terminal, a wireless power terminal, and a storage medium. Background Technology

[0002] With the deepening promotion of 5G industry applications, the application of 5G technology in power systems is gradually unfolding. For equipment such as power relay protection devices, 5G wireless power terminals require engineers to configure the IP address, port, and other information of each power device through the 5G wireless power terminal's web user interface (webUI) to complete the corresponding remote control services. Since the configuration of each power relay protection device on the wireless network side is not entirely the same, it is impossible for the 5G wireless power terminal to complete the corresponding configuration through the default factory settings. Instead, it requires manual operation one by one, resulting in a large amount of configuration work, necessitating after-sales follow-up, and making the operation quite cumbersome. Summary of the Invention

[0003] Based on this, embodiments of this application provide a routing setting method for a wireless power terminal, a wireless power terminal, and a storage medium, which can automatically set the routing of the wireless power terminal without manual operation.

[0004] In a first aspect, this application provides a method for setting the routing of a wireless power terminal, applied to a first wireless power terminal, the method comprising:

[0005] Receive service messages;

[0006] Obtain the source IP address and destination IP address of the service message, or the source IP address and port number of the service message, and the destination IP address and port number.

[0007] The first wireless power terminal is configured with routing based on the source IP address and the destination IP address, or the source IP address and port number and the destination IP address and port number.

[0008] Secondly, this application provides a wireless power terminal, which includes a communication circuit, a memory, and a processor. The communication circuit is used for communication; the memory is used for storing a computer program; and the processor is used for executing the computer program and, when executing the computer program, implementing the routing setting method of the wireless power terminal as described above.

[0009] Thirdly, this application provides a computer-readable storage medium storing a computer program that, when executed by a processor, causes the processor to implement the routing setting method for a wireless power terminal as described above.

[0010] This application provides a method for routing a wireless power terminal, a wireless power terminal, and a storage medium. The method involves receiving service packets; obtaining the source IP address and destination IP address of the service packet, or the source IP address and port number of the service packet, and the destination IP address and port number of the service packet; and configuring the routing of the wireless power terminal based on the source IP address and destination IP address, or the source IP address and port number of the source and destination IP address and port number. Because the wireless power terminal can automatically extract the source and destination IP addresses or source and destination IP addresses and port numbers from the service packet and automatically configure its own routing accordingly, no manual operation is required, and it can automatically and intelligently handle various scenarios. Attached Figure Description

[0011] Figure 1 This is a network topology diagram of an embodiment of the routing setting method for a wireless power terminal according to this application.

[0012] Figure 2 This is a network topology diagram of another embodiment of the routing setting method for the wireless power terminal according to the present application;

[0013] Figure 3 This is a schematic diagram of an application scenario for the routing setting method of the wireless power terminal according to an embodiment of this application;

[0014] Figure 4 This is a schematic diagram of another application scenario of the routing setting method for the wireless power terminal according to an embodiment of this application;

[0015] Figure 5 This is a flowchart illustrating an embodiment of the routing setting method for the wireless power terminal of this application;

[0016] Figure 6 This is a flowchart illustrating another embodiment of the routing setting method for the wireless power terminal of this application;

[0017] Figure 7 This is a schematic diagram of the structure of an embodiment of the wireless power terminal of this application. Detailed Implementation

[0018] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0019] The flowchart shown in the attached diagram is for illustrative purposes only and does not necessarily include all content and operations / steps, nor does it necessarily have to be performed in the order described. For example, some operations / steps can be broken down, combined, or partially merged, so the actual execution order may change depending on the actual situation.

[0020] In the following description, the use of suffixes such as "module," "part," or "unit" to denote elements is solely for the purpose of illustration and has no inherent meaning. Therefore, "module," "part," or "unit" may be used interchangeably.

[0021] Before detailing the embodiments of this application, let's first introduce the network topology diagram of an embodiment of the routing setting method for wireless power terminals in this application.

[0022] See Figure 1 , Figure 1 This is a network topology diagram of an embodiment of the routing setting method for a wireless power terminal according to this application.

[0023] A first power device and a second power device are respectively connected to a first wireless power terminal and a second wireless power terminal. A first base station and a second base station are respectively deployed near the first and second wireless power terminals. The first power network includes: the first power device, the second power device, the first wireless power terminal, the second wireless power terminal, the first base station, the second base station, and a core network. The first power device and the second power device within the first power network can communicate with each other and perform traditional data services (such as differential services). At the same time, the first power device can also communicate with servers outside the first power network and perform other services (such as remote control, remote telemetry, and remote remote sensing services). The server can be a power management server. The server can be connected to the first power network through the core network, and the server can perform power management on one or more power networks, including the first power network, through the core network.

[0024] It should be noted that the first wireless power terminal can be connected to one or more power devices, including the first power device, and the second wireless power terminal can be connected to one or more power devices, including the second power device. The first power network may also include other wireless power terminals besides the first and second wireless power terminals.

[0025] See Figure 2 The server can be a remote control server (remote control, remote signaling, and remote measurement server). Both the first and second power devices can be distribution terminal units (DTUs). The core network can be a 5G core network, and both the first and second wireless power terminals can be 5G power terminals. The two 5G power terminals provide timing functionality to the two DTUs respectively, and differential protection services can be performed between the two DTUs. The remote control server can perform remote control (remote control, remote signaling, and remote measurement) services for the first DTU within the first power network. The remote control server can communicate with power devices in multiple power networks and perform remote control services for these devices. In other words, the remote control server can connect to other power networks besides the first power network through the 5G core network (5GC), thereby enabling it to perform remote control services for power devices in multiple power networks.

[0026] Based on the above network topology Figure 2 In the current testing scenario, two scenarios can occur, such as... Figure 3 As shown, one scenario is as follows: The first DTU (top) in the diagram, besides communicating with the second DTU (bottom) within the first power network, also needs to communicate with a remote monitoring server outside the first power network. Therefore, the first DTU and the first 5G power terminal have at least two service ports connected. In this scenario, the first 5G power terminal needs to enable firewall port forwarding and configure the corresponding port number; for example... Figure 4 As shown, another scenario is: the first DTU and the second DTU communicate only within the first power network and only need to support differential protection services. In this scenario, the two 5G power terminals only need to enable the Demilitarized Zone (DMZ) function and enter the corresponding IP address.

[0027] In both scenarios mentioned above, the technical operations involve engineers configuring settings on-site via the web UI; the relevant IP addresses / ports need to be obtained from the corresponding DUT / wireless engineers, making the entire process quite cumbersome. Beyond these configurations, scenarios involving a single 5G powerline terminal connecting multiple DTUs become even more complex.

[0028] In this embodiment of the application, the wireless power terminal can automatically extract the source and destination IP addresses or the source and destination IP addresses and port numbers from the service message, and automatically set the routing of the wireless power terminal itself accordingly. Therefore, no manual operation is required, and it can automatically and intelligently respond to various scenarios.

[0029] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0030] See Figure 5 , Figure 5 This is a flowchart illustrating an embodiment of the routing setting method for a wireless power terminal according to this application, applied to a first wireless power terminal. The method includes steps S101, S102, and S103.

[0031] Step S101: Receive service messages.

[0032] Step S102: Obtain the IP address of the source end and the IP address of the destination end of the service packet, or the IP address and port number of the source end and the IP address and port number of the destination end of the service packet.

[0033] Step S103: Configure the routing for the first wireless power terminal based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end.

[0034] In this embodiment, "port" can refer to a logical port, generally referring to the communication protocol port for connection-oriented and connectionless services in a network. It is an abstract software structure that includes some data structures and I / O (basic input / output) buffers. Depending on the service type, it can be divided into ports in the connection-oriented TCP protocol and ports in the connectionless UDP protocol. For example, port 80 is used for web browsing, and port 21 is used for FTP services, etc.

[0035] The TCP / IP protocol uses 16-bit port numbers to represent and distinguish different applications on the network. Each TCP header contains the source port and destination port, used to identify and differentiate the application processes on the source and destination devices. In the TCP / IP protocol stack, the source and destination port numbers, along with the source and destination IP addresses respectively, form a socket, uniquely identifying a TCP connection. If you think of an IP address as a house, the port is the door to that house. An IP address can have one port (i.e., it can provide only one service or business) or many ports (i.e., it can provide multiple services or businesses); ports are identified by port numbers.

[0036] In this embodiment, the service message includes the source IP address and port number, and the destination IP address and port number. Upon receiving the service message, parsing it yields either the source IP address and destination IP address, or both. If the first wireless power terminal supports only one service, parsing the service message only requires obtaining the source and destination IP addresses. If the first wireless power terminal supports two or more services, parsing the service message requires obtaining both the source and destination IP addresses.

[0037] The first wireless power terminal can be configured for routing based on the source IP address and destination IP address, or the source IP address and port number, and the destination IP address and port number. Configuring the routing for the first wireless power terminal can refer to setting the port of the first wireless power terminal to forward corresponding service packets. These corresponding service packets include the specific source and destination IP addresses, or the corresponding service packets include both the source and destination IP addresses and port numbers.

[0038] In this embodiment, the first wireless power terminal may be: a wireless router, a 5G power terminal, a customer pre-installed equipment (CPE) supporting 5G power services, etc.

[0039] For example, for a first wireless power terminal supporting more than two services, upon receiving service message 1, the source IP address A, port a, and destination IP address B, port b of service message 1 are obtained. A complete route is set as follows: port 2404 of the first wireless power terminal forwards service message 1. That is, all service messages 1 with source IP address A, port a, and destination IP address B, port b are forwarded through port 2404 of the first wireless power terminal. When the first wireless power terminal receives service message 1, it automatically obtains the source IP address A, port a, and destination IP address B, port b of service message 1, sends it to port 2404, and port 2404 forwards service message 1.

[0040] For example, for a first wireless power terminal that supports two or more services, upon receiving service message 2, the source IP address A, port b, and destination IP address C, port c of service message 2 are obtained. A complete route is set as follows: port 2403 of the first wireless power terminal forwards service message 2; upon receiving service message 2, the first wireless power terminal automatically obtains the source IP address A, port b, and destination IP address C, port c of service message 2, sends it to port 2403, and port 2403 forwards service message 2.

[0041] For example, for a first wireless power terminal that supports a certain service, upon receiving service message 3, the source IP address D and destination IP address E of service message 3 are obtained. A complete route is set as follows: the first wireless power terminal forwards service message 3 on all ports except ports 2404 and 2403; the first wireless power terminal receives service message 3, automatically obtains the source IP address D and destination IP address E of service message 3, and sends it to all ports except ports 2404 and 2403, and the all ports except ports 2404 and 2403 forward service message 3.

[0042] This application embodiment receives service packets; obtains the source IP address and destination IP address of the service packet, or the source IP address and port number of the service packet, and the destination IP address and port number of the service packet; and performs routing settings on the first wireless power terminal based on the source IP address and destination IP address, or the source IP address and port number of the source and destination IP address and port number of the service packet. Since the wireless power terminal can automatically extract the source and destination IP addresses or source and destination IP addresses and port numbers from the service packet and automatically set its own routing accordingly, no manual operation is required, and it can automatically and intelligently respond to various scenarios.

[0043] In one embodiment, the source end includes a first power device connected to a first power network, and the destination end includes a second power device connected to the first power network. The first power network includes the first wireless power terminal, the first power device, and the second power device.

[0044] In this embodiment, two power devices (the first power device and the second power device) within the first power network communicate via a first wireless power terminal. The first power network includes the first wireless power terminal, the first power device, and the second power device. Two scenarios are possible:

[0045] One approach involves a first power device wirelessly connected to a first wireless power terminal actively engaging in service communication with a second power device wirelessly connected to a second wireless power terminal. The source end includes the first power device wirelessly connected to the first wireless power terminal, and the destination end includes the second power device wirelessly connected to the second wireless power terminal. The first power network further includes the second wireless power terminal, a first base station deployed near the first wireless power terminal, a second base station deployed near the second wireless power terminal, and a core network. Communication between the first wireless power terminal and the second wireless power terminal occurs through the base station and the core network, such as... Figure 4 As shown.

[0046] It should be noted that the first wireless power terminal can wirelessly connect to one or more power devices, including the first power device, and the second wireless power terminal can wirelessly connect to one or more power devices, including the second power device. The first power network may also include other wireless power terminals besides the first and second wireless power terminals.

[0047] Another approach involves a second power device wirelessly connected to a second wireless power terminal actively engaging in service communication with a first power device wirelessly connected to a first wireless power terminal. The source end includes the second power device wirelessly connected to the second wireless power terminal, and the destination end includes the first power device wirelessly connected to the first wireless power terminal. The first power network further includes the second wireless power terminal, a first base station deployed near the first wireless power terminal, a second base station deployed near the second wireless power terminal, and a core network. Communication between the first wireless power terminal and the second wireless power terminal occurs through the base station and the core network, such as... Figure 4 As shown.

[0048] It should be noted that the first wireless power terminal can wirelessly connect to one or more power devices including the first power device, and the second wireless power terminal can wirelessly connect to one or more power devices including the second power device. The first power network may also include other wireless power terminals besides the first and second wireless power terminals.

[0049] In one embodiment, the source end includes a first power device connected to a first power network, and the destination end includes other devices outside the first power network. The first power network includes the first wireless power terminal and the first power device. That is, the first power device within the first power network actively communicates with other devices outside the first power network through the first wireless power terminal.

[0050] The source end includes a first power device wirelessly connected to the first wireless power terminal; the destination end includes a server connected to a core network, and the first power network is connected to the server through the core network. The core network is a device outside the first power network. A first base station is located near the first wireless power terminal, and the first wireless power terminal and the server communicate through the first base station and the core network, as shown below. Figure 3 As shown.

[0051] In one embodiment, the source end includes other devices outside the first power network, and the destination end includes a first power device connected to the first power network. That is, other devices outside the first power network actively communicate with the first power device within the first power network through a first wireless power terminal.

[0052] The source end includes a server connected to the core network, and the first power network is connected to the server through the core network. The destination end includes a first power device wirelessly connected to the first wireless power terminal.

[0053] It should be noted that the server can communicate with other power networks besides the first power network via the core network. The first wireless power terminal can wirelessly connect to one or more power devices, including the first power device.

[0054] The first power equipment and / or the second power equipment include relay protection equipment. Relay protection equipment is an automated device capable of detecting faults or abnormalities in a power system. If a fault or abnormality is detected, it can promptly issue an alarm signal or directly isolate or disconnect the faulty or abnormal portion to terminate the development of these events.

[0055] The relay protection equipment includes a distribution terminal unit (DTU), and the service messages include differential protection service messages. The principle of differential protection is that the sum of the currents flowing into a node in the circuit equals zero. Differential protection treats the protected equipment as a node; under normal conditions, the current flowing into and out of the protected equipment is equal, and the differential current is zero. When a fault occurs in the protected equipment, the current flowing into and out of the protected equipment is not equal, and the differential current is greater than zero. When the differential current exceeds the setting value of the differential protection device, the host computer alarm protection output activates, tripping the circuit breakers on each side of the protected equipment, thus disconnecting the power supply to the faulty equipment. Differential protection services have very high latency requirements; the corresponding first and second wireless power terminals can be 5G power terminals, and the core network is a 5G core network.

[0056] The server includes a three-remote server, and the service message includes a three-remote service message. The three-remote functions can refer to telemetry, remote signaling, and remote control. Telemetry refers to using communication technology to transmit the measured value of the variable being measured; remote signaling refers to using communication technology to monitor equipment status information, such as alarm status, switch position, or valve position; and remote control refers to using communication technology to issue commands to change the status of operating equipment.

[0057] In one embodiment, the method further includes: step S104, as follows Figure 6 As shown.

[0058] Step S104: Send the service message to the destination according to the configured route.

[0059] When a service message is subsequently received, the corresponding route is determined based on the source IP address and destination IP address, or the source IP address and port number and the destination IP address and port number of the service message. If the route has been set, the message is directly sent to the port corresponding to the first wireless power terminal, and the port forwards the service message.

[0060] In one embodiment, step S103, which involves configuring the routing of the first wireless power terminal based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end, may further include sub-steps S1031 and S1032, such as... Figure 6 As shown.

[0061] Sub-step S1031: Determine whether the first wireless power terminal has a corresponding routing setting based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end.

[0062] Sub-step S1032: If no corresponding routing setting exists, then the first wireless power terminal is configured with routing based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end.

[0063] In one embodiment, the method further includes step S105.

[0064] Step S105: Synchronize the routes already configured on the first wireless power terminal to the network product interface design. This makes it convenient for users to view.

[0065] See also Figure 3The following uses DTU, 5G power terminal, remote control server, differential protection service, and remote control service as examples to describe in detail the complete process of the routing setting method for wireless power terminal in the embodiments of this application.

[0066] Step 1: When the data service connection is normal and the first DTU is working normally, the first DTU will send a differential protection service message to the first 5G power terminal. The differential protection service message includes the IP address and port number of the first DTU (source end) and the second DTU (destination end). If there is a remote control service, the remote control server will also send a remote control service message to the first 5G power equipment. The remote control service message includes the IP address and port number of the remote control server (source end) and the first DTU (destination end).

[0067] Step 2: After receiving the differential protection service message and the three-remote service message, the first 5G power terminal needs to send the differential protection service message and the three-remote service message to the second DTU and the first DTU respectively according to the routing settings:

[0068] (1) If it is found that there is no corresponding setting in the existing routing settings, the first 5G power terminal will start automatic setting, which includes:

[0069] a) Extract the IP addresses and port numbers of the first DTU (source) and second DTU (destination) of the differential protection service message in step 1, and the IP addresses and port numbers of the three-remote server (source) and first DTU (destination) of the three-remote service message.

[0070] b) Combining with step 2, based on the IP addresses and port numbers of the first DTU (source) and second DTU (destination) of the differential protection service message, and the IP addresses and port numbers of the three-remote service message's three-remote server (source) and first DTU (destination), the corresponding complete routes will be automatically matched, enabling one port of the first 5G power terminal to forward the differential protection service message to the second DTU, and enabling the other port of the first 5G power terminal to forward the three-remote service message to the first DTU.

[0071] The complete route is recorded in the corresponding routing module information of the webUI; then, the differential protection service message is sent to the first base station through one port, then to the second base station through the core network, then to the second 5G power terminal, and finally to the second DTU through the second 5G power terminal; the three-remote service message is sent to the first DTU through another port.

[0072] (2) If there is a corresponding complete route in the routing settings at this time, the differential protection service message is sent directly to the second DTU through one port, and the three-remote service message is sent to the first DTU through another port to complete the transmission of this message.

[0073] See Figure 7 , Figure 7 This is a schematic diagram of the structure of an embodiment of the wireless power terminal of this application. It should be noted that the wireless power terminal of this embodiment can implement the routing setting method of the wireless power terminal described above. For a detailed description of the relevant content, please refer to the method section above, which will not be repeated here.

[0074] The wireless power terminal 100 includes a communication circuit 30, a memory 10, and a processor 20. The communication circuit 30 is used for communication; the memory 10 is used to store a computer program; and the processor 20 is used to execute the computer program and, when executing the computer program, implement the routing setting method of the wireless power terminal as described above. The communication circuit 30, the memory 10, and the processor 20 are connected via a bus.

[0075] The processor 20 can be a microcontroller unit, a central processing unit, or a digital signal processor, etc. The memory 10 can be a flash chip, a read-only memory, a disk, an optical disk, a USB flash drive, or a portable hard drive, etc.

[0076] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, causes the processor to implement the routing setting method for a wireless power terminal as described in any of the preceding claims.

[0077] The computer-readable storage medium can be an internal storage unit of the aforementioned wireless power terminal, such as a hard disk or memory. Alternatively, it can be an external storage device for the aforementioned wireless power terminal, such as a plug-in hard disk, smart memory card, secure digital card, flash memory card, etc.

[0078] Those skilled in the art will understand that all or some of the steps in the methods disclosed above, as well as the functional modules / units in the systems and devices, can be implemented as software, firmware, hardware, or suitable combinations thereof.

[0079] In hardware implementations, the division between functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed collaboratively by several physical components. Some or all physical components may be implemented as software executed by a processor, such as a central processing unit, digital signal processor, or microprocessor, or as hardware, or as an integrated circuit, such as an application-specific integrated circuit. Such software may be distributed on a computer-readable medium, which may include computer storage media (or non-transitory media) and communication media (or transient media). As is known to those skilled in the art, the term computer storage media includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules, or other data). Computer storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disc (DVD) or other optical disc storage, magnetic cartridges, magnetic tape, disk storage or other magnetic storage devices, or any other medium that can be used to store desired information and is accessible to a computer. Furthermore, as is known to those skilled in the art, communication media typically contain computer-readable instructions, data structures, program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms, and may include any information delivery medium.

[0080] The preferred embodiments of this application have been described above with reference to the accompanying drawings, but this does not limit the scope of the claims. Any modifications, equivalent substitutions, and improvements made by those skilled in the art without departing from the scope and spirit of this application shall be within the scope of the claims.

Claims

1. A routing setting method for a wireless power terminal, characterized in that, Applied to a first wireless power terminal, the method includes: Receive service messages; the service messages include differential protection service messages and remote control service messages; Obtain the source IP address and destination IP address of the service message, or the source IP address and port number of the service message, and the destination IP address and port number. Based on the IP address of the source end and the IP address of the destination end, or the IP address and port number of the source end and the IP address and port number of the destination end, determine whether the first wireless power terminal already has a corresponding routing setting; If no corresponding routing configuration exists, the first wireless power terminal is configured with routing based on the IP addresses of the source and destination of the differential protection service message and the IP addresses of the source and destination of the three-remote service message, or based on the IP addresses and port numbers of the source and destination of the differential protection service message and the IP addresses and port numbers of the three-remote service message, so that one port of the first wireless power terminal forwards the differential protection service message to the destination of the differential protection service message, and the other port forwards the three-remote service message to the destination of the three-remote service message.

2. The method according to claim 1, characterized in that, The source end includes a first power device connected to a first power network, and the destination end includes a second power device connected to the first power network. The first power network includes the first wireless power terminal, the first power device, and the second power device. Alternatively, the source end includes a first power device connected to a first power network, and the destination end includes other devices outside the first power network, wherein the first power network includes the first wireless power terminal and the first power device; Alternatively, the source end may include other devices outside the first power network, and the destination end may include a first power device connected to the first power network, wherein the first power network includes the first wireless power terminal and the first power device.

3. The method according to claim 2, characterized in that, The source end includes a first power device wirelessly connected to the first wireless power terminal, the destination end includes a second power device wirelessly connected to the second wireless power terminal, and the first power network further includes the second wireless power terminal, a first base station deployed near the first wireless power terminal, a second base station deployed near the second wireless power terminal, and a core network; Alternatively, the source end includes a second power device wirelessly connected to the second wireless power terminal, the destination end includes a first power device wirelessly connected to the first wireless power terminal, and the first power network further includes the second wireless power terminal, a first base station deployed near the first wireless power terminal, a second base station deployed near the second wireless power terminal, and a core network; Alternatively, the source end includes a first power device wirelessly connected to the first wireless power terminal, and the destination end includes a server connected to the core network, with the first power network connected to the server through the core network; Alternatively, the source end includes a server connected to the core network, the first power network being connected to the server via the core network, and the destination end includes a first power device wirelessly connected to the first wireless power terminal.

4. The method according to claim 3, characterized in that, The first power equipment and / or the second power equipment includes relay protection equipment; the relay protection equipment includes a distribution terminal unit.

5. The method according to claim 3, characterized in that, The server includes a three-remote server.

6. The method according to claim 1, characterized in that, The method further includes: The service message is sent to the destination according to the configured route.

7. The method according to claim 1, characterized in that, The method further includes: Synchronize the routes already set on the first wireless power terminal to the network product interface design.

8. A wireless power terminal, characterized in that, The wireless power terminal includes a communication circuit, a memory, and a processor. The communication circuit is used for communication; the memory is used for storing a computer program; and the processor is used for executing the computer program and, when executing the computer program, implementing the routing setting method of the wireless power terminal as described in any one of claims 1-7.

9. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, causes the processor to implement the routing setting method for a wireless power terminal as described in any one of claims 1-7.

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