Electric power charging and discharging communication system and isolation equipment

By introducing forward and reverse isolation devices into the power communication system, unidirectional data flow between the production control area and the management information area is realized, solving the data flow bottleneck problem and improving the efficiency and safety of remote charging and discharging of power communication power supply batteries.

CN223540322UActive Publication Date: 2025-11-11STATE GRID SHANGHAI MUNICIPAL ELECTRIC POWER CO +1
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Patent Information

Application Number
CN202421488312.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-26
Publication Date
2025-11-11
Estimated Expiration
2034-06-26

AI Technical Summary

Technical Problem

In existing power communication systems, there are bottlenecks in data flow between the production control area and the management information area, and the data isolation effect is poor, resulting in insufficient safety and efficiency of charging and discharging operations.

Method used

The power production control subsystem and the management information subsystem are connected by forward isolation devices and reverse isolation devices respectively, so as to realize unidirectional flow control of control data and improve the automation level of data interaction.

Benefits of technology

By using forward and reverse isolation devices, the security and stability of data interaction are ensured, and the efficiency and safety of remote charging and discharging of power communication battery are improved.

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Abstract

The utility model discloses an electric power charging and discharging communication system and isolation equipment, and the system comprises an electric power production control large-area subsystem, a management information large-area subsystem, a forward isolation device, and a reverse isolation device. The power production control large-area subsystem is connected to the management information large-area subsystem through the forward isolation device; the management information large-area subsystem is connected to the electric power production control large-area subsystem through the reverse isolation device. According to the embodiment of the utility model, the system ensures data isolation between the electric power production control large area system and the management information large area subsystem through the forward isolation device and the reverse isolation device, realizes one-way circulation control of control data, realizes automatic data interaction, can improve the remote charging and discharging efficiency of an electric power communication power supply storage battery, and improves the reliability of the electric power communication power supply storage battery. And the safety of charging and discharging operation is ensured.
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Description

Technical Field

[0001] This utility model relates to the field of Internet of Things (IoT) technology, and in particular to a power charging and discharging communication system and isolation device. Background Technology

[0002] The remote charging and discharging system for power communication batteries enables remote charging and discharging of battery banks in power communication systems. Currently, this system primarily employs a master-slave architecture. The master station issues charging and discharging commands to the slave stations within the station, which are the battery charging and discharging hosts. The slave stations regulate the battery voltage to achieve charging and discharging. Simultaneously, the slave stations monitor the battery's operating status in real time using sensors and adjust their own operating status accordingly. Since the communication power supply is the sole power source for the communication equipment within the station, and battery charging and discharging poses a certain threat to the stable power supply of the communication power supply, remote battery charging and discharging generally needs to be implemented in conjunction with the operation of the primary power grid and the power communication network. The work order for the communication power supply is initiated by the Power Communication Management System (TMS). Based on the operating conditions of the primary power grid and power communication network, the TMS issues remote charging / discharging operation orders for the communication battery banks within the station. These orders are distributed in paper form to designated personnel responsible for the remote charging / discharging of the battery banks. These personnel convert the operation order into a charging / discharging task through the power communication power supply's remote battery charging / discharging master station and issue it to the station's battery charging / discharging host via a protocol. The host station performs remote charging / discharging through logic circuits and monitors the battery status through a data acquisition terminal. After the work is completed, the charging / discharging host station feeds back the completion status to the master station via a protocol. The master station records the completion status on the work order and submits it to the power communication management system administrator for data entry, completing the closed-loop process. Currently, signaling isolation between the production area and the management information area is mainly achieved manually, resulting in bottlenecks in data flow and poor data isolation effectiveness. Utility Model Content

[0003] This utility model provides a power charging and discharging communication system and isolation device. The system ensures data isolation between the power production control area system and the management information area subsystem through forward isolation device and reverse isolation device, realizes unidirectional flow control of control data, realizes automated data interaction, improves the remote charging and discharging efficiency of power communication power supply battery, and ensures the safety of charging and discharging operation.

[0004] According to one aspect of this utility model, a power charging and discharging communication system is provided, wherein the system includes: a power production control area subsystem, a management information area subsystem, a forward isolation device, and a reverse isolation device, wherein...

[0005] The power production control subsystem is connected to the management information subsystem via the positive isolation device;

[0006] The management information regional subsystem is connected to the power production control regional subsystem through the reverse isolation device.

[0007] According to another aspect of the present invention, an isolation device is provided, wherein the isolation device includes: at least one processor; a memory connected to the at least one processor; and an input interface and an output interface connected to the processor and the memory via a bus; wherein the input interface and the output interface are respectively used to connect to the power production control subsystem and the management information subsystem of the power charging and discharging system as described in any one of the present invention.

[0008] The technical solution of this utility model embodiment connects the power production control subsystem and the management information subsystem through a forward isolation device and a reverse isolation device, respectively. By restricting the direction of information interaction between the production subsystem and the information management subsystem through the forward isolation device and the reverse isolation device, the unidirectional flow control of control data is realized, which can improve the automation level of data interaction, improve the remote charging and discharging efficiency of power communication power supply batteries, and ensure the safety of charging and discharging operations.

[0009] It should be understood that the description in this section is not intended to identify key or essential features of the embodiments of this utility model, nor is it intended to limit the scope of this utility model. Other features of this utility model will become readily apparent from the following description. Attached Figure Description

[0010] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0011] Figure 1 This is a schematic diagram of the structure of a power charging and discharging communication system according to an embodiment of the present utility model;

[0012] Figure 2 This is a diagram illustrating an inter-system data interaction method according to an embodiment of the present utility model;

[0013] Figure 3 This is an example diagram of a system deployment environment provided according to an embodiment of the present utility model;

[0014] Figure 4 This is an example diagram of a data traversal process within a system according to an embodiment of the present utility model;

[0015] Figure 5This is a schematic diagram of the structure of an isolation device provided according to an embodiment of the present utility model. Detailed Implementation

[0016] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0017] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this utility model are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of the utility model described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0018] Figure 1 This is a schematic diagram of a power charging and discharging communication system according to an embodiment of the present invention. See also... Figure 1 The power charging and discharging communication system includes a power production control subsystem 110, a management information subsystem 120, a forward isolation device 130, and a reverse isolation device 140. The power production control subsystem 110 is connected to the management information subsystem 120 through the forward isolation device 130, and the management information subsystem 120 is connected to the power production control subsystem 110 through the reverse isolation device 140.

[0019] In this embodiment of the present invention, the forward isolation device 130 can isolate the forward data transmission between the power production control subsystem 110 and the management information subsystem 120. The forward direction can refer to the direction in which the management information subsystem 120 transmits data to the power production control subsystem 110. The forward isolation device 130 can transmit data in the reverse direction but does not transmit data in the forward direction. Similarly, the reverse isolation device 140 can isolate the reverse data transmission between the power production control subsystem 110 and the management information subsystem 120.

[0020] Furthermore, based on the above-described embodiments of the utility model, the management information regional subsystem includes at least a power environment monitoring system master station, a power environment monitoring system substation, and a power communication management system. The power communication management system is connected to the power environment monitoring system master station, and the power environment monitoring system master station is connected to the power environment monitoring system substation.

[0021] The management information subsystem 120 can be a control system that manages the data of the production control subsystem 110. The management information subsystem 120 can include a power environment monitoring system master station, a power communication management system, and a power environment monitoring system substation. The power communication management system can be connected to the power environment monitoring system master station, and can issue key information of operation tickets to the power environment monitoring system master station and obtain the execution status feedback from the power environment monitoring system master station. The power environment monitoring system master station can be connected to the power environment monitoring substation through a data communication network, and can receive battery pack status data collected by the power environment monitoring system substation.

[0022] In some embodiments of the utility model, the power production control area subsystem includes at least: a master station for the remote charging and discharging system of the communication battery bank and a substation for the remote charging and discharging system of the communication battery bank, wherein the master station for the remote charging and discharging system of the communication battery bank is connected to the substation for the remote charging and discharging system of the communication battery bank.

[0023] The power generation control subsystem 110 can be a system composed of equipment used for power generation. The power generation control subsystem 110 can include a master station for a remote charging and discharging system for communication batteries and substations for a remote charging and discharging system for communication batteries. The master station for a remote charging and discharging system for communication batteries can be connected to one or more substations. The master station can issue execution commands to each substation. The substations can perform operations and analyze the battery status. The master station can receive and summarize the execution status reported by each substation. The master station and the substations can be connected via a dispatch data network.

[0024] In one exemplary implementation, remote charging and discharging of the battery pack involves control operations. The equipment enabling remote charging and discharging of the battery can be deployed in the production control area, while the TMS and power environment monitoring system are generally deployed in the management information area. Isolation devices can be deployed between the production control area and the management information area to prevent data from being forwarded via protocols. See also Figure 2The system provided in this embodiment of the utility model comprises a remote charging and discharging system for a communication power battery pack, a TMS (Transmission Management System), and a power environment monitoring system. Both the remote charging and discharging system for the communication power battery pack and the power environment monitoring system have master and slave stations, and the functional division and data interaction methods of each system are as follows:

[0025] TMS administrators are responsible for generating remote charging and discharging operation tickets for the station's communication battery banks based on the operation status of the primary power grid and power communication network. Key information in the operation tickets can be sent to the main station of the power environment monitoring system via web service. The main station of the power environment monitoring system receives the key information of the operation tickets through the service and forwards them to the main station of the remote charging and discharging system. The main station of the remote charging and discharging system parses the operation ticket information and verifies the parameters with the battery status data uploaded by the station's charging and discharging host. After verification, it generates control commands and sends them to the station's charging and discharging host. The station's charging and discharging host executes the commands and receives the battery bank status data from the substation of the station's power environment monitoring system, adjusting its own working status according to the battery status. After completing the charging and discharging task, the station's charging and discharging host feeds back the execution status to the remote charging and discharging system. The main station of the power system; simultaneously, the substations of the power environment monitoring system within the station will feed back the battery status of the entire charging and discharging process to the main station of the power environment monitoring system; the main station of the remote charging and discharging system will summarize the execution status and forward it to the main station of the power environment monitoring system. The main station of the power environment monitoring system will verify the execution status based on the battery status information sent by its substations. After confirming that the execution has been completed, the main station of the power environment monitoring system will forward the execution status and some key information to the TMS through the protocol; after receiving the battery remote charging and discharging work completion information reported by the power environment monitoring system, the relevant person in charge of the TMS will perform the relevant check-out actions on the work ticket.

[0026] Furthermore, based on the above-mentioned application embodiments, the power production control regional subsystem is connected to the management information regional subsystem via a forward isolation device, including:

[0027] The remote charging and discharging system master station of the communication battery pack of the power production control subsystem 110 is connected to the power environment monitoring system master station of the management information subsystem 120 through the forward isolation device 130.

[0028] Specifically, the power production control subsystem 110 can use the remote charging and discharging system master station of the communication battery pack as a device to transmit information to the forward isolation device 130. The remote charging and discharging system master station of the battery pack serves as the exit for information exchange, while the power environment monitoring system master station of the management information subsystem 120 serves as the entry point for information exchange. The power environment monitoring system master station is connected to the forward isolation device 130 and receives the information transmitted by the power environment monitoring system master station within the forward isolation device 130.

[0029] In other embodiments of the utility model, the management information regional subsystem is connected to the power production control regional subsystem via the reverse isolation device, including at least one of the following:

[0030] The main station of the power environment monitoring system of the management information subsystem is connected to the main station of the remote charging and discharging system of the communication battery pack of the power production control subsystem through a reverse isolation device; the substation of the power environment monitoring system of the management information subsystem is connected to the substation of the remote charging and discharging system of the communication battery pack of the power production control subsystem through a reverse isolation device.

[0031] Specifically, data exchange between the management information regional subsystem and the power production control regional subsystem can be achieved through the power environment monitoring system master station and the communication battery remote charging and discharging system master station. A reverse isolation device can be configured between these two stations, blocking information flow from the power environment monitoring system master station to the communication battery remote charging and discharging system master station. This reverse isolation device allows the communication battery remote charging and discharging system master station to transmit information back to the power environment monitoring system master station. Furthermore, the power environment monitoring system substation and the communication battery remote charging and discharging system substation can also exchange data. Specifically, the power environment monitoring system substation collects battery operating status data from the communication battery remote charging and discharging system substation. A reverse isolation device can be configured between these two substations to prevent data transmission from the power environment monitoring system substation to the communication battery remote charging and discharging system substation, ensuring the operational safety of the communication battery remote charging and discharging system substation.

[0032] Furthermore, based on the above embodiments, the forward isolation device is connected to the power production control subsystem and the management information subsystem via network cables, and the reverse isolation device is connected to the management information subsystem and the power production control subsystem via network cables.

[0033] In the utility model embodiment, both the forward isolation device and the reverse isolation device can be connected to the power production control subsystem and the management information subsystem via network cables. The network connection ensures the stability of information transmission, reduces the impact of the environment on data transmission between the power production control subsystem and the management information subsystem, and improves system stability.

[0034] Furthermore, based on the above embodiments, the network cable includes at least a SOAP protocol message network cable.

[0035] Specifically, network cables can support SOAP protocol type data transmission, and SOAP protocol message network cables can include Category 5 network cables, Category 6 network cables, etc.

[0036] In one exemplary implementation, see Figure 3 Remote charging and discharging of communication battery packs falls under the category of control information. Therefore, the remote charging and discharging system for communication battery packs should be deployed in the production control area, while the power environment monitoring system and TMS are both deployed in the management information area. During data exchange, on the plant side, the remote charging and discharging system substation needs to exchange data with the power environment monitoring system substation; on the master station side, the remote charging and discharging system master station needs to exchange data with the power environment monitoring system master station. Both types of data exchange need to pass through isolation devices.

[0037] On the plant side, data exchange is unidirectional. The power environment monitoring system substation sends battery status information to the communication battery pack remote charging and discharging system substation. Data needs to pass through a reverse isolation device to travel from a low-security-level network area to a high-security-level network area. On the master station side, data exchange is bidirectional. The power environment monitoring system master station needs to send charging and discharging commands to the communication battery pack remote charging and discharging system master station. The communication battery pack remote charging and discharging system master station needs to provide feedback on the charging and discharging execution status to the power environment monitoring system master station. Specifically, the data sent from the power environment monitoring system master station to the communication battery pack remote charging and discharging system master station is data traveling from a low-security-level network area to a high-security-level network area and needs to pass through a reverse isolation device. The data sent from the communication battery pack remote charging and discharging system master station to the power environment monitoring system master station is data traveling from a high-security-level network area to a low-security-level network area and needs to pass through a forward isolation device.

[0038] In this embodiment of the utility model, the specific deployment method of the power charging and discharging communication system may include the following:

[0039] 1) Software deployment:

[0040] Communication battery pack remote charging and discharging system substation: Deploy a dedicated reverse isolation file transfer program;

[0041] Power and Environmental Monitoring System Substation: Deploy a dedicated file transfer program for reverse isolation;

[0042] The master station of the remote charging and discharging system for communication battery packs is equipped with a dedicated file transfer program for forward isolation, a dedicated file transfer program for reverse isolation, and a file message conversion program (F2MP).

[0043] The power environment monitoring system master station needs to deploy: a dedicated file transfer program for forward isolation, a dedicated file transfer program for reverse isolation, and a file-to-message conversion program (F2MP).

[0044] The forward / reverse isolation dedicated software transmission program is used to transfer files to and from the forward / reverse isolation device, while the file-to-message conversion program (F2MP) is used to convert between files and messages.

[0045] See Figure 4 The data traversal process in the system provided by this utility model embodiment includes the following:

[0046] 1. The data transfer process from the power environment monitoring system substation to the communication battery pack remote charging and discharging system substation is as follows:

[0047] The power environment monitoring system substation encapsulates the battery status information into a JSON file and sends the file to the reverse isolation device via a dedicated reverse isolation file transfer program. The reverse isolation device forwards the file to the communication battery pack remote charging and discharging system substation's dedicated reverse isolation file transfer software and stores the file in a designated file directory. The communication battery pack remote charging and discharging system substation retrieves the file from the directory, parses the file content, and sends the parsed data to the host control program, thereby realizing data interaction.

[0048] 2. The data transfer process from the power environment monitoring system master station to the communication battery pack remote charging and discharging system master station is as follows:

[0049] The power environment monitoring system master station converts the SOAP protocol message containing operation ticket information received from the TMS into a file format using the F2MP program, and then sends the file to the reverse isolation device through the reverse isolation dedicated file transfer program. The reverse isolation device forwards the file to the communication battery pack remote charging and discharging system master station. After receiving the file through the reverse isolation dedicated file transfer program, the communication battery pack remote charging and discharging system master station sends it to the F2MP program. The program converts the file into SOAP protocol, and the master station parses the protocol to obtain the operation ticket information, realizing downlink data interaction.

[0050] 3. The data transfer process from the master station of the remote charging and discharging system for the communication battery pack to the master station of the power environment monitoring system is as follows:

[0051] The master station of the remote charging and discharging system for the communication battery pack encapsulates the charging and discharging operation execution information into SOAP protocol messages via web service. The messages are converted into file format by the F2MP program and then sent to the forward isolation device via a dedicated forward isolation file transfer program. The forward isolation device forwards the file to the power environment monitoring system master station. After receiving the file via the dedicated forward isolation file transfer program, the power environment monitoring system master station sends it to the F2MP program. The program converts the file into SOAP protocol, and the master station parses the protocol to obtain the charging and discharging execution information, thus realizing data uplink interaction.

[0052] In some embodiments of the utility model, the forward isolation device includes at least a processor, a memory, an input interface, and an output interface. The processor, memory, input interface, and output interface are interconnected via a bus. The input interface is connected to the power production control subsystem, and the output interface is connected to the management information subsystem.

[0053] In this embodiment, the forward isolation device can consist of a processor, a memory, an input interface, and an output interface. The input interface of the forward isolation device can receive information transmitted from the power production control subsystem, while the output interface of the forward isolation device can transmit information to the management information subsystem. The forward isolation device achieves forward data transmission isolation by transmitting information from the power production control subsystem to the management information subsystem.

[0054] In some other embodiments of the utility model, the reverse isolation device includes at least a processor, a memory, an input interface, and an output interface. The processor, memory, input interface, and output interface are connected to each other via a bus. The input interface is connected to the management information subsystem, and the output interface is connected to the power production control subsystem.

[0055] Specifically, the reverse isolation device can consist of a processor, memory, input interface, and output interface. The forward isolation device can have the same hardware configuration as the reverse isolation device. The connection method of the input interface and output interface of the reverse isolation device can be different from that of the forward isolation device. The output interface is connected to the management information subsystem, while the input interface is connected to the power production control subsystem.

[0056] Figure 4 A schematic diagram of an isolation device 10, which can be used to implement embodiments of the present invention, is shown. The isolation device is intended to represent various forms of digital terminals, such as laptop computers, desktop computers, workstations, personal digital assistants, servers, blade servers, mainframe computers, and other similar computing devices. The components shown herein, their connections and relationships, and their functions are merely illustrative and are not intended to limit the implementation of the present invention described and / or claimed herein.

[0057] like Figure 4As shown, the isolation device 10 includes at least one processor 11 and a memory, such as a read-only memory (ROM) 12 or a random access memory (RAM) 13, communicatively connected to the at least one processor 11. The memory stores computer programs executable by the at least one processor. The processor 11 can perform various appropriate actions and processes based on the computer program stored in the ROM 12 or loaded from storage unit 18 into the RAM 13. The RAM 13 can also store various programs and data required for the operation of the isolation device 10. The processor 11, ROM 12, and RAM 13 are interconnected via a bus 14. An input / output (I / O) interface 15 is also connected to the bus 14.

[0058] Multiple components in the isolation device 10 are connected to the I / O interface 15, including: an input unit 16, such as a keyboard, mouse, etc.; an output unit 17, such as various types of displays, speakers, etc.; a storage unit 18, such as a disk, optical disk, etc.; and a communication unit 19, such as a network interface card, modem, wireless transceiver, etc. The communication unit 19 allows the isolation device 10 to exchange information / data with other devices through computer networks such as the Internet and / or various telecommunications networks.

[0059] Processor 11 can be a variety of general-purpose and / or special-purpose processing components with processing and computing capabilities. Some examples of processor 11 include, but are not limited to, a central processing unit (CPU), a graphics processing unit (GPU), various special-purpose artificial intelligence (AI) computing chips, various processors running machine learning model algorithms, a digital signal processor (DSP), and any suitable processor, controller, microcontroller, etc. Processor 11 performs the various functions described above.

[0060] In some embodiments, the isolation device may be configured with a computer program tangibly contained in a computer-readable storage medium, such as storage unit 18. In some embodiments, part or all of the computer program may be loaded and / or installed onto the isolation device 10 via ROM 12 and / or communication unit 19. When the computer program is loaded into RAM 13 and executed by processor 11, the functions described above may be performed.

[0061] Various embodiments of the systems and techniques described above herein can be implemented in digital electronic circuit systems, integrated circuit systems, field-programmable gate arrays (FPGAs), application-specific integrated circuits (ASICs), application-specific standard products (ASSPs), systems-on-a-chip (SoCs), payload-programmable logic devices (CPLDs), computer hardware, firmware, software, and / or combinations thereof. These various embodiments may include implementations in one or more computer programs that can be executed and / or interpreted on a programmable system including at least one programmable processor, which may be a dedicated or general-purpose programmable processor, capable of receiving data and instructions from a storage system, at least one input device, and at least one output device, and transmitting data and instructions to the storage system, the at least one input device, and the at least one output device.

[0062] Computer programs for implementing this invention can be written in any combination of one or more programming languages. These computer programs can be provided to the processor of a general-purpose computer, a special-purpose computer, or other programmable data processing device, such that when executed by the processor, the functions / operations specified in the flowcharts and / or block diagrams are performed. The computer programs can be executed entirely on a machine, partially on a machine, as a standalone software package partially on a machine and partially on a remote machine, or entirely on a remote machine or server.

[0063] In the context of this invention, a computer-readable storage medium can be a tangible medium that may contain or store a computer program for use by or in conjunction with an instruction execution system, apparatus, or device. A computer-readable storage medium may include, but is not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the foregoing. Alternatively, a computer-readable storage medium may be a machine-readable signal medium. More specific examples of machine-readable storage media include electrical connections based on one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fibers, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.

[0064] To provide interaction with a user, the systems and techniques described herein can be implemented on an isolation device having: a display device for displaying information to the user (e.g., a CRT (cathode ray tube) or LCD (liquid crystal display) monitor); and a keyboard and pointing device (e.g., a mouse or trackball) through which the user provides input to the isolation device. Other types of devices can also be used to provide interaction with the user; for example, feedback provided to the user can be any form of sensory feedback (e.g., visual feedback, auditory feedback, or tactile feedback); and input from the user can be received in any form (including sound input, voice input, or tactile input).

[0065] The systems and technologies described herein can be implemented in computing systems that include backend components (e.g., as data servers), or computing systems that include middleware components (e.g., application servers), or computing systems that include frontend components (e.g., user computers with graphical user interfaces or web browsers through which users can interact with implementations of the systems and technologies described herein), or any combination of such backend, middleware, or frontend components. The components of the system can be interconnected via digital data communication of any form or medium (e.g., communication networks). Examples of communication networks include local area networks (LANs), wide area networks (WANs), blockchain networks, and the Internet.

[0066] A computing system can include clients and servers. Clients and servers are generally located far apart and typically interact through communication networks. The client-server relationship is created by computer programs running on the respective computers and having a client-server relationship with each other. The server can be a cloud server, also known as a cloud computing server or cloud host, which is a hosting product within the cloud computing service system to address the shortcomings of traditional physical hosts and VPS services, such as high management difficulty and weak business scalability.

[0067] It should be understood that the various forms of the process shown above can be used, with steps reordered, added, or deleted. For example, the steps described in this utility model can be executed in parallel, sequentially, or in different orders, as long as the desired result of the technical solution of this utility model can be achieved, and this is not limited herein.

[0068] The specific embodiments described above do not constitute a limitation on the scope of protection of this utility model. Those skilled in the art should understand that various modifications, combinations, sub-combinations, and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the scope of protection of this utility model.

Claims

1. A power charging and discharging communication system, characterized in that, The system includes: a power production control subsystem, a management information subsystem, a forward isolation device, and a reverse isolation device, wherein... The power production control subsystem is connected to the management information subsystem via the positive isolation device; The management information regional subsystem is connected to the power production control regional subsystem through the reverse isolation device; The management information regional subsystem includes at least a power environment monitoring system master station, a power environment monitoring system substation, and a power communication management system. The power communication management system is connected to the power environment monitoring system master station, and the power environment monitoring system master station is connected to the power environment monitoring system substation. The power production control area subsystem includes at least: a master station for a remote charging and discharging system for communication battery banks and a substation for a remote charging and discharging system for communication batteries, wherein the master station for the remote charging and discharging system for communication battery banks is connected to the substation for the remote charging and discharging system for communication batteries. The power production control regional subsystem is connected to the management information regional subsystem through the forward isolation device, including: the communication battery remote charging and discharging system master station of the power production control regional subsystem is connected to the power environment monitoring system master station of the management information regional subsystem through the forward isolation device; The management information regional subsystem is connected to the power production control regional subsystem through the reverse isolation device, including at least one of the following: The main station of the power environment monitoring system of the management information subsystem is connected to the main station of the remote charging and discharging system of the communication battery pack of the power production control subsystem through the reverse isolation device; the substation of the power environment monitoring system of the management information subsystem is connected to the substation of the remote charging and discharging system of the communication battery pack of the power production control subsystem through the reverse isolation device.

2. The system according to claim 1, characterized in that, The forward isolation device is connected to the power production control subsystem and the management information subsystem via network cables, respectively, and the reverse isolation device is connected to the management information subsystem and the power production control subsystem via network cables, respectively.

3. The system according to claim 1, characterized in that, The forward isolation device includes at least a processor, a memory, an input interface, and an output interface. The processor, the memory, the input interface, and the output interface are connected to each other via a bus. The input interface is connected to the power production control regional subsystem, and the output interface is connected to the management information regional subsystem.

4. The system according to claim 1, characterized in that, The reverse isolation device includes at least a processor, a memory, an input interface, and an output interface. The processor, the memory, the input interface, and the output interface are connected to each other via a bus. The input interface is connected to the management information regional subsystem, and the output interface is connected to the power production control regional subsystem.

5. The system according to claim 2, characterized in that, The network cable includes at least a SOAP protocol message network cable.

6. An isolation device, characterized in that, The isolation device includes: At least one processor; a memory connected to said at least one processor; And input and output interfaces connected to the processor and the memory via a bus; The input interface and the output interface are respectively used to connect to the power production control subsystem and the management information subsystem of the power charging and discharging communication system as described in any one of claims 1-5.