Method and apparatus for monitoring step-up substation, and electronic device and storage medium

By automatically collecting and processing events within the booster station, the problem of low efficiency in manual inspections has been solved, enabling efficient fault detection and handling, and ensuring the stability and safety of the system.

WO2026081783A1PCT designated stage Publication Date: 2026-04-23NORTH UNITED (BAYANNUR) CLEAN ENERGY POWER CO LTD +1
View PDF 5 Cites 0 Cited by

Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
NORTH UNITED (BAYANNUR) CLEAN ENERGY POWER CO LTD
Filing Date
2025-09-18
Publication Date
2026-04-23

AI Technical Summary

Technical Problem

Manual inspections of booster stations are of low quality and efficiency, leading to inconvenience in maintenance and management.

Method used

Events within the booster station, such as data anomalies and equipment malfunctions, are automatically collected and recorded by a preset data acquisition device. The corresponding preset event handling program is then invoked for processing, and the events and processing results are pushed out in a preset manner, including display on the human-machine interface or notification via email or SMS.

Benefits of technology

This improved the efficiency of fault detection and handling at the booster station, reduced manual intervention, and ensured the stable operation and safety of the system.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN2025122071_23042026_PF_FP_ABST
    Figure CN2025122071_23042026_PF_FP_ABST
Patent Text Reader

Abstract

A method and apparatus for monitoring a step-up substation, and an electronic device and a storage medium, relating to the technical field of data processing. The method comprises the following steps: automatically collecting and recording, by means of a preset data collection apparatus, events occurring in a step-up substation, which events comprise data anomalies and equipment failures; calling corresponding preset event processing procedures on the basis of event types, and processing the events; and pushing the events, the processing procedures and the processing results in a preset manner. The automatic monitoring and processing mechanism can improve the efficiency of the fault discovery and processing of a step-up substation, reduce the need for manual intervention, and ensure the stable operation and security of a system.
Need to check novelty before this filing date? Find Prior Art

Description

Monitoring methods and devices, electronic equipment and storage media for booster stations Technical Field

[0001] This disclosure relates to the field of data processing technology, and in particular to a monitoring method and apparatus, electronic equipment and storage medium for a booster station. Background Technology

[0002] Under the dual goals of carbon neutrality and carbon peaking, vigorously developing low-carbon or zero-carbon energy systems such as renewable energy and building a new type of power system with new energy as the main body has become a strategic direction for technological transformation in the energy field. Among them, photovoltaic power generation is a recognized renewable, green and clean energy source with advantages such as huge energy source, environmental protection and no pollution, safety and sustainability.

[0003] As the power collection center of a photovoltaic power plant, the inspection and maintenance of the booster station is crucial for ensuring the safe operation and improving the efficiency of the power plant. Currently, most photovoltaic power plants in my country are located in remote areas and are highly dispersed, resulting in low quality and efficiency of manual inspections of booster stations, which brings many inconveniences to maintenance and management. Summary of the Invention

[0004] This disclosure provides a monitoring method, device, electronic equipment, and storage medium for a booster substation. Its main purpose is to address the problem of low quality and efficiency in manual inspections of booster substations.

[0005] According to a first aspect of this disclosure, a monitoring method for a booster station is provided, comprising:

[0006] According to the preset data acquisition device, events occurring in the booster station are collected and recorded; wherein, the events include data anomalies and equipment malfunctions;

[0007] The corresponding preset event handler is invoked according to the event type to process the event;

[0008] The event, the preset event handler, and the event handling result are pushed out according to a preset method.

[0009] Optionally, after collecting and recording events occurring within the booster station using a preset data acquisition device, the method further includes:

[0010] Add a timestamp to the event and store the event according to the time order of the timestamp.

[0011] Optionally, pushing the event, the preset event handler, and the event handling result according to a preset method includes:

[0012] The event, the preset event handler, and the event handling result are pushed to the preset human-machine interface.

[0013] Optionally, after pushing the event, the preset event handler, and the event handling result to the preset human-machine interface, the method further includes:

[0014] The system receives control commands based on the preset human-machine interface, and performs control operations on the equipment according to the control commands; wherein, the equipment is any equipment within the booster station;

[0015] In the event of a failure of the preset human-machine interface, the preset microcomputer control cabinet receives the control commands and performs control operations on the equipment according to the control commands.

[0016] Optionally, when the circuit breaker is 220kV, the method further includes:

[0017] In the event of a fault in the preset microcomputer control cabinet, the control command is received by the circuit breaker local operating mechanism box to perform control operations on the equipment according to the control command.

[0018] Optionally, the step of invoking the corresponding preset event handler according to the event type to process the event includes:

[0019] Based on the system voltage, the transformer tap changer is adjusted and controlled, and a dynamic reactive power compensation device is automatically switched on and off.

[0020] According to a second aspect of this disclosure, a monitoring device for a booster station is provided, comprising:

[0021] The data acquisition unit is used to acquire and record events occurring within the booster station according to a preset data acquisition device; wherein, the events include data anomalies and equipment malfunctions.

[0022] The processing unit is used to call the corresponding preset event handling program according to the event type to process the event;

[0023] The push unit is used to push the event, the preset event handling program, and the event handling result in a preset manner.

[0024] Optionally, the device further includes:

[0025] The storage unit is used to add timestamps to the events after the acquisition unit acquires and records the events that occur in the booster station according to the preset data acquisition device, and to store the events according to the time order of the timestamps.

[0026] Optionally, the push unit is further configured to:

[0027] The event, the preset event handler, and the event handling result are pushed to the preset human-machine interface.

[0028] Optionally, the device further includes:

[0029] The receiving unit is configured to receive control commands based on the preset human-machine interface after the pushing unit pushes the event, the preset event handling program, and the event handling result to the preset human-machine interface, so as to perform control operations on the equipment according to the control commands; wherein the equipment is any equipment in the booster station;

[0030] The control unit is used to receive the control commands based on the preset microcomputer control cabinet in the event of a failure of the preset human-machine interface, so as to perform control operations on the equipment according to the control commands.

[0031] Optionally, when the circuit breaker is 220kV, the device further includes:

[0032] The control unit is also used to receive the control command based on the circuit breaker local operating mechanism box in the event of a fault in the preset microcomputer control cabinet, so as to perform control operations on the equipment according to the control command.

[0033] Optionally, the processing unit is further configured to:

[0034] Based on the system voltage, the transformer tap changer is adjusted and controlled, and a dynamic reactive power compensation device is automatically switched on and off.

[0035] According to a third aspect of this disclosure, an electronic device is provided, comprising:

[0036] At least one processor; and

[0037] A memory communicatively connected to the at least one processor; wherein,

[0038] The memory stores instructions that can be executed by the at least one processor to enable the at least one processor to perform the method described in the first aspect above.

[0039] According to a fourth aspect of this disclosure, a non-transitory computer-readable storage medium is provided storing computer instructions, wherein the computer instructions are configured to cause the computer to perform the method described in the first aspect above.

[0040] According to a fifth aspect of this disclosure, a computer program product is provided, comprising a computer program that, when executed by a processor, implements the method described in the first aspect above.

[0041] The monitoring method, device, electronic equipment, and storage medium for booster stations disclosed in this application mainly include: collecting and recording events occurring within the booster station using a preset data acquisition device; wherein the events include data anomalies and equipment failures; invoking a corresponding preset event handling program according to the event type to process the event; and pushing the event, the preset event handling program, and the event processing result according to a preset method. Compared with related technologies, the embodiments of this application automatically collect and record events occurring within the booster station, including data anomalies and equipment failures, using a preset data acquisition device. The system invokes a corresponding preset event handling program according to the event type to process the event, and pushes the event, the handling program, and the processing result according to a preset method. This automated monitoring and processing mechanism greatly improves the efficiency of booster station fault detection and handling, reduces the need for manual intervention, and ensures the stable operation and security of the system.

[0042] It should be understood that the description in this section is not intended to identify key or essential features of the embodiments of this application, nor is it intended to limit the scope of this application. Other features of this application will become readily apparent from the following description. Attached Figure Description

[0043] The accompanying drawings are provided to better understand this solution and do not constitute a limitation of this disclosure. Wherein:

[0044] Figure 1 is a flowchart illustrating a monitoring method for a booster station provided in an embodiment of this disclosure;

[0045] Figure 2 is a flowchart illustrating a monitoring method for a booster station provided in an embodiment of this disclosure;

[0046] Figure 3 is a schematic diagram of the structure of a monitoring device for a booster station provided in an embodiment of this disclosure;

[0047] Figure 4 is a schematic diagram of the structure of a monitoring device for a booster station provided in an embodiment of this disclosure;

[0048] Figure 5 is a schematic block diagram of an example electronic device provided in an embodiment of this disclosure. Detailed Implementation

[0049] The exemplary embodiments of this disclosure are described below with reference to the accompanying drawings, including various details of the embodiments to aid understanding, and should be considered merely exemplary. Therefore, those skilled in the art will recognize that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of this disclosure. Similarly, for clarity and brevity, descriptions of well-known functions and structures are omitted in the following description.

[0050] The following description, with reference to the accompanying drawings, describes a monitoring method, apparatus, electronic device, and storage medium for a booster station according to embodiments of the present disclosure.

[0051] Figure 1 is a flowchart illustrating a monitoring method for a booster station provided in an embodiment of this disclosure.

[0052] As shown in Figure 1, the method includes the following steps:

[0053] Step 101: Collect and record events occurring within the booster station according to the preset data acquisition device; wherein, the events include data anomalies and equipment malfunctions.

[0054] In some embodiments, to achieve real-time monitoring of events within the substation, a series of high-precision data acquisition devices need to be deployed. These devices can continuously monitor key performance indicators, such as voltage, current, and temperature, as well as the operating status of the equipment. When the monitored data exceeds the normal range or a equipment fault is detected, the system automatically records these events and stores them in a database.

[0055] To ensure data integrity and traceability, each event should include detailed information such as the time of occurrence, event type, involved device identifiers, and relevant numerical parameters. Furthermore, the data acquisition device should possess high reliability and anti-interference capabilities to ensure accurate event capture even in harsh environments. Specifically, this application does not limit the acquisition device.

[0056] Step 102: Invoke the corresponding preset event handler according to the event type to process the event.

[0057] In some embodiments, preset event handlers are pre-written during the system design phase, with specific response strategies for different types of events (such as data anomalies or equipment malfunctions). For example, if a data anomaly is detected, the handler may attempt to recalibrate the sensor or adjust the data acquisition frequency; if an equipment malfunction is detected, it may trigger an alarm and notify the maintenance team for inspection and repair. The execution of the handlers should be automated to reduce the need for manual intervention and improve response speed. Specifically, the embodiments in this application do not limit the preset event handlers.

[0058] Step 103: Push the event, the preset event handler, and the event handling result according to a preset method.

[0059] After the incident is resolved, the system generates a report containing incident details, the invoked handlers, and the results. This report is then pushed to relevant personnel or systems according to a preset method. The push method can be varied, including but not limited to email, SMS, mobile application notifications, or direct display on the monitoring system's user interface.

[0060] This push mechanism ensures timely information delivery, enabling maintenance personnel to quickly understand the situation and take necessary follow-up actions. Simultaneously, it helps establish a complete incident handling and feedback loop, thereby continuously optimizing the system's monitoring and management efficiency.

[0061] The monitoring method for booster stations disclosed herein mainly includes the following technical solutions: collecting and recording events occurring within the booster station using a preset data acquisition device; wherein the events include data anomalies and equipment failures; invoking a corresponding preset event handling program according to the event type to process the event; and pushing the event, the preset event handling program, and the event processing result according to a preset method. Compared with related technologies, this application embodiment automatically collects and records events occurring within the booster station, including data anomalies and equipment failures, using a preset data acquisition device. The system invokes the corresponding preset event handling program according to the event type to process the event, and pushes the event, the handling program, and the processing result according to a preset method. This automated monitoring and processing mechanism greatly improves the efficiency of booster station fault detection and handling, reduces the need for manual intervention, and ensures the stable operation and security of the system.

[0062] In some embodiments, after step 103, the method further includes the following steps: adding a timestamp to the event and storing the event according to the chronological order of the timestamps.

[0063] In some embodiments, to further optimize the event management process, the system can add a precise timestamp to each recorded event. This timestamp not only marks the specific moment the event occurred but can also be used to track the event's development and frequency. By analyzing the timestamp data, potential patterns or trends can be identified, such as whether certain types of events tend to occur within specific time periods, thus allowing for proactive preventative measures.

[0064] In addition, sorting and storing events according to timestamps can help operations and maintenance personnel quickly locate recent events or review the order of historical events.

[0065] In some embodiments, when making a push, the method further includes: pushing the event, the preset event handler, and the event handling result to a preset human-machine interface.

[0066] After the incident is resolved, the system generates a report containing incident details, the invoked handlers, and the results. This report is then pushed to relevant personnel or systems according to a preset method. The push method can be varied, including but not limited to email, SMS, mobile application notifications, or direct display on the monitoring system's user interface.

[0067] Please refer to Figure 2, which is a flowchart illustrating a monitoring method for a booster station provided in an embodiment of this disclosure, including:

[0068] Step 201: Based on the preset human-machine interface, receive control commands to perform control operations on the equipment according to the control commands; wherein, the equipment is any equipment in the booster station.

[0069] Through an intuitive and user-friendly human-machine interface, operators can send control commands to manage various devices within the substation. This interface allows users to select specific devices and perform operations such as starting, stopping, or adjusting parameters. The control commands are then sent to the corresponding control system, which executes them and provides feedback on the results.

[0070] To ensure the accuracy and security of control, the human-machine interface should have access control and operation confirmation mechanisms to ensure that only authorized users can perform sensitive operations and that confirmation steps are required before any control command is executed.

[0071] Step 202: In the event of a failure of the preset human-machine interface, the preset microcomputer control cabinet receives the control command and performs control operations on the equipment according to the control command.

[0072] To improve system reliability and redundancy, when the human-machine interface malfunctions, the system automatically switches to a backup control mode—the microcomputer-controlled control cabinet. This control cabinet is pre-configured and can receive control commands from other sources (such as a backup operator panel or remote terminal) and execute control operations on the equipment based on these commands.

[0073] The design of the microcomputer-controlled measurement and control cabinet should consider ease of use and stability, ensuring continuous control and management of the equipment even when the main control interface is unavailable. Furthermore, it should possess self-diagnostic capabilities to quickly locate and repair problems in the event of a malfunction.

[0074] Step 203: In the event of a fault in the preset microcomputer control cabinet, the control command is received by the circuit breaker local operating mechanism box to perform control operations on the equipment according to the control command.

[0075] In some embodiments, certain models of devices also have a third operating mode for control. For example, 220kV circuit breakers also have a local operating mechanism box. This is a physical interface that allows maintenance personnel to manually operate the circuit breaker directly on-site. In some embodiments, the above-mentioned operations typically require a special key or password to access, and all operations are recorded for post-event review.

[0076] In some embodiments, optionally, the step of invoking a corresponding preset event handler according to the event type to process the event includes:

[0077] Based on the system voltage, the transformer tap changer is adjusted and controlled, and a dynamic reactive power compensation device is automatically switched on and off.

[0078] Corresponding to the aforementioned monitoring method for booster substations, this invention also proposes a monitoring device for booster substations. Since the device embodiments of this invention correspond to the aforementioned method embodiments, details not disclosed in the device embodiments can be referred to the aforementioned method embodiments, and will not be repeated here.

[0079] Figure 3 is a schematic diagram of the structure of a monitoring device for a booster station provided in an embodiment of this disclosure. As shown in Figure 3, it includes:

[0080] The data acquisition unit 31 is used to acquire and record events occurring within the booster station according to a preset data acquisition device; wherein, the events include data anomalies and equipment malfunctions.

[0081] Processing unit 32 is used to call the corresponding preset event handling program according to the event type to process the event;

[0082] The push unit 33 is used to push the event, the preset event handling program and the event handling result in a preset manner.

[0083] The monitoring device for the booster station disclosed herein mainly includes the following technical solution: collecting and recording events occurring within the booster station using a preset data acquisition device; wherein the events include data anomalies and equipment failures; invoking a corresponding preset event handling program according to the event type to process the event; and pushing the event, the preset event handling program, and the event processing result according to a preset method. Compared with related technologies, the embodiments of this application automatically collect and record events occurring within the booster station, including data anomalies and equipment failures, through a preset data acquisition device. The system invokes the corresponding preset event handling program according to the event type to process the event, and pushes the event, the handling program, and the processing result according to a preset method. This automated monitoring and processing mechanism greatly improves the efficiency of booster station fault detection and handling, reduces the need for manual intervention, and ensures the stable operation and security of the system.

[0084] Furthermore, in one possible implementation of this disclosure embodiment, as shown in FIG4, the apparatus further includes:

[0085] The storage unit 34 is used to add timestamps to the events after the acquisition unit 31 acquires and records the events that occur in the booster station according to the preset data acquisition device, and to store the events according to the time order of the timestamps.

[0086] Furthermore, in one possible implementation of this disclosure embodiment, as shown in FIG4, the push unit 33 is further configured to:

[0087] The event, the preset event handler, and the event handling result are pushed to the preset human-machine interface.

[0088] Furthermore, in one possible implementation of this disclosure embodiment, as shown in FIG4, the apparatus further includes:

[0089] The receiving unit 35 is configured to receive control commands based on the preset human-machine interface after the pushing unit 33 pushes the event, the preset event handling program, and the event handling result to the preset human-machine interface, so as to perform control operations on the equipment according to the control commands; wherein the equipment is any equipment in the booster station;

[0090] The control unit 36 ​​is used to receive the control command based on the preset microcomputer control cabinet in the event of a failure of the preset human-machine interface, so as to perform control operations on the equipment according to the control command.

[0091] Furthermore, in one possible implementation of this disclosure, as shown in FIG4, when the circuit breaker is 220KV, the device further includes:

[0092] The control unit 37 is also used to receive the control command based on the circuit breaker local operating mechanism box in the event of a fault in the preset microcomputer control cabinet, so as to perform control operations on the equipment according to the control command.

[0093] Furthermore, in one possible implementation of this disclosure embodiment, as shown in FIG4, the processing unit 32 is further configured to:

[0094] Based on the system voltage, the transformer tap changer is adjusted and controlled, and a dynamic reactive power compensation device is automatically switched on and off.

[0095] It should be noted that the foregoing explanation of the method embodiments also applies to the apparatus of the embodiments of this disclosure, and the principle is the same. Therefore, the embodiments of this disclosure are not limited thereto.

[0096] According to embodiments of this disclosure, this disclosure also provides an electronic device, a readable storage medium, and a computer program product.

[0097] Figure 5 illustrates a schematic block diagram of an example electronic device 400 that can be used to implement embodiments of the present disclosure. The electronic device is intended to represent various forms of digital computers, such as laptop computers, desktop computers, workstations, personal digital assistants, servers, blade servers, mainframe computers, and other suitable computers. The electronic device may also represent various forms of mobile devices, such as personal digital processors, cellular phones, smartphones, wearable devices, 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 disclosure described and / or claimed herein.

[0098] As shown in Figure 5, device 400 includes a computing unit 401, which can perform various appropriate actions and processes based on a computer program stored in ROM (Read-Only Memory) 402 or a computer program loaded from storage unit 408 into RAM (Random Access Memory) 403. RAM 403 can also store various programs and data required for the operation of device 400. The computing unit 401, ROM 402, and RAM 403 are interconnected via bus 404. I / O (Input / Output) interface 405 is also connected to bus 404.

[0099] Multiple components in device 400 are connected to I / O interface 405, including: input unit 406, such as keyboard, mouse, etc.; output unit 407, such as various types of monitors, speakers, etc.; storage unit 408, such as disk, optical disk, etc.; and communication unit 409, such as network card, modem, wireless transceiver, etc. Communication unit 409 allows device 400 to exchange information / data with other devices through computer networks such as the Internet and / or various telecommunications networks.

[0100] The computing unit 401 can be a variety of general-purpose and / or special-purpose processing components with processing and computing capabilities. Some examples of the computing unit 401 include, but are not limited to, CPUs (Central Processing Units), GPUs (Graphics Processing Units), various special-purpose AI (Artificial Intelligence) computing chips, various computing units running machine learning model algorithms, DSPs (Digital Signal Processors), and any suitable processor, controller, microcontroller, etc. The computing unit 401 performs the various methods and processes described above, such as the method for monitoring a booster station. For example, in some embodiments, the method for monitoring a booster station may be implemented as a computer software program tangibly contained in a machine-readable medium, such as storage unit 408. In some embodiments, part or all of the computer program may be loaded and / or installed on device 400 via ROM 402 and / or communication unit 409. When the computer program is loaded into RAM 403 and executed by the computing unit 401, one or more steps of the methods described above may be performed. Alternatively, in other embodiments, the computing unit 401 may be configured to perform the aforementioned monitoring method for the booster station by any other suitable means (e.g., by means of firmware).

[0101] Various implementations of the systems and techniques described above herein can be implemented in digital electronic circuit systems, integrated circuit systems, FPGAs (Field Programmable Gate Arrays), ASICs (Application-Specific Integrated Circuits), ASSPs (Application-Specific Standard Products), SOCs (System-on-Chips), CPLDs (Complex Programmable Logic Devices), computer hardware, firmware, software, and / or combinations thereof. These various implementations 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.

[0102] The program code used to implement the methods of this disclosure may be written in any combination of one or more programming languages. This program code may be provided to a processor or controller of a general-purpose computer, special-purpose computer, or other programmable data processing apparatus, such that when executed by the processor or controller, the program code causes the functions / operations specified in the flowcharts and / or block diagrams to be implemented. The program code may 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.

[0103] In the context of this disclosure, a machine-readable medium can be a tangible medium that may contain or store a program for use by or in conjunction with an instruction execution system, apparatus, or device. A machine-readable medium can be a machine-readable signal medium or a machine-readable storage medium. A machine-readable medium can be, but is not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the foregoing. More specific examples of machine-readable storage media include electrical connections based on one or more wires, portable computer disks, hard disks, RAM, ROM, EPROM (Electrically Programmable Read-Only Memory) or flash memory, optical fiber, CD-ROM (Compact Disc Read-Only Memory), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.

[0104] To provide interaction with a user, the systems and techniques described herein can be implemented on a computer 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 computer. 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).

[0105] The systems and technologies described herein can be implemented in computing systems that include backend components (e.g., as data servers), or middleware components (e.g., application servers), or 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 LANs (Local Area Networks), WANs (Wide Area Networks), the Internet, and blockchain networks.

[0106] Computer systems can include clients and servers. Clients and servers are generally geographically separated and typically interact via 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. A server can be a cloud server, also known as a cloud computing server or cloud host, a hosting product within the cloud computing service ecosystem, addressing the shortcomings of traditional physical hosts and VPS (Virtual Private Server, or simply "VPS") services, such as high management difficulty and weak business scalability. Servers can also be servers for distributed systems or servers incorporating blockchain technology.

[0107] It's important to note that artificial intelligence (AI) is the study of enabling computers to simulate certain human thought processes and intelligent behaviors (such as learning, reasoning, thinking, and planning). It encompasses both hardware and software technologies. AI hardware technologies generally include sensors, dedicated AI chips, cloud computing, distributed storage, and big data processing. AI software technologies primarily include computer vision, speech recognition, natural language processing, machine learning / deep learning, big data processing, and knowledge graph technologies.

[0108] It should be understood that the various forms of processes shown above can be used to rearrange, add, or delete steps. For example, the steps described in this disclosure can be executed in parallel, sequentially, or in different orders, as long as the desired result of the technical solution disclosed in this disclosure can be achieved, and this is not limited herein.

[0109] The specific embodiments described above do not constitute a limitation on the scope of protection of this disclosure. 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 disclosure should be included within the scope of protection of this disclosure.

Claims

1. A method of monitoring a step-up station, characterized in that, include: According to the preset data acquisition device, events occurring in the booster station are collected and recorded; wherein, the events include data anomalies and equipment malfunctions; The corresponding preset event handler is invoked according to the event type to process the event; The event, the preset event handler, and the event handling result are pushed out according to a preset method.

2. The method of claim 1, wherein, After collecting and recording events occurring within the booster station using a preset data acquisition device, the method further includes: Add a timestamp to the event and store the event according to the time order of the timestamp.

3. The method of claim 1, wherein, The step of pushing the event, the preset event handler, and the event handling result in a preset manner includes: The event, the preset event handler, and the event handling result are pushed to the preset human-machine interface.

4. The method of claim 3, wherein, After pushing the event, the preset event handler, and the event handling result to the preset human-machine interface, the method further includes: The system receives control commands based on the preset human-machine interface, and performs control operations on the equipment according to the control commands; wherein, the equipment is any equipment within the booster station; In the event of a failure of the preset human-machine interface, the preset microcomputer control cabinet receives the control commands and performs control operations on the equipment according to the control commands.

5. The method of claim 4, wherein, When the circuit breaker is 220kV, the method further includes: In the event of a fault in the preset microcomputer control cabinet, the control command is received by the circuit breaker local operating mechanism box to perform control operations on the equipment according to the control command.

6. The method of claim 1, wherein, The step of calling the corresponding preset event handler according to the event type to process the event includes: Based on the system voltage, the transformer tap changer is adjusted and controlled, and a dynamic reactive power compensation device is automatically switched on and off.

7. A monitoring device of a step-up station, characterized by include: The data acquisition unit is used to acquire and record events occurring within the booster station according to a preset data acquisition device; wherein, the events include data anomalies and equipment malfunctions. The processing unit is used to call the corresponding preset event handling program according to the event type to process the event; The push unit is used to push the event, the preset event handling program, and the event handling result in a preset manner.

8. An electronic device, comprising: include: At least one processor; as well as A memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor to enable the at least one processor to perform the method of any one of claims 1-6.

9. A non-transitory computer-readable storage medium having stored thereon computer instructions, wherein, The computer instructions are used to cause the computer to perform the method according to any one of claims 1-6.

10. A computer program product, characterised in that, Includes a computer program that, when executed by a processor, implements the method according to any one of claims 1-6.

Citation Information

Patent Citations

  • Photovoltaic power station monitoring system and method

    CN105703708A

  • Alarm signal action and time sequence logic relationship analysis method of intelligent substation

    CN106532940A

  • Auxiliary monitoring system for transformer substation

    CN117791852A

  • Monitoring method and device of booster station, electronic equipment and storage medium

    CN119420024A

  • Apparatus monitoring and diagnosing system and control program thereof

    JP2010088277A