A network topology dynamic visualization operation and maintenance management system and a control method thereof

CN115187053BActive Publication Date: 2026-09-29JIANGSU SHUDONG XINCHUANG TECH CO LTD
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Patent Information

Application Number
CN202210803017.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-09
Publication Date
2026-09-29
Estimated Expiration
2042-07-09

AI Technical Summary

Technical Problem

现有技术有很多电网运维管理系统,但是这些运维管理系统都存在着结构庞杂、数据处理效率低等问题

Benefits of technology

[0010]采用上述技术方案所带来的有益效果在于:本发明通过优化监控数据的传输和展示前预处理的过程,有效的提高了关键数据的可视化展示占比,从而在不增加系统硬件算力的前提下,提高了运维管理系统的数据处理效率。

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a network topology structure dynamic visual operation and maintenance management system, comprising a plurality of equipment operation monitoring modules, personnel post configuration monitoring modules, material storage and transportation monitoring modules and environment monitoring modules, which are used for data collection; a plurality of regional data transfer modules and high-priority data transfer modules, which are used for data temporary storage and forwarding; a data processing module, which is used for data processing; a data visualization display module and a database module, which are used for data visualization display and storage. The application can improve the defects of the prior art and improve the data processing efficiency of the operation and maintenance management system.
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Description

Technical Field

[0001] This invention relates to the field of power grid system operation and maintenance management technology, and in particular to a dynamic visualization operation and maintenance management system for network topology and its control method. Background Technology

[0002] The power grid system is a dynamic system with many parameters and high complexity. Improving its operation and maintenance management has always been a research hotspot in this field. Many existing power grid operation and maintenance management systems exist, but these systems suffer from problems such as complex structures and low data processing efficiency. Summary of the Invention

[0003] The technical problem to be solved by the present invention is to provide a network topology dynamic visualization operation and maintenance management system and its control method, which can overcome the shortcomings of the prior art and improve the data processing efficiency of the operation and maintenance management system.

[0004] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows.

[0005] A network topology dynamic visualization operation and maintenance management system, characterized by comprising: Several equipment operation monitoring modules are used to monitor the operating status of power grid equipment; Several personnel positions are equipped with monitoring modules to monitor the on-duty status of maintenance personnel; Several material storage and transportation monitoring modules are used to monitor the storage and transportation status of materials required for power grid operation and maintenance; Several environmental monitoring modules are used to monitor the environmental conditions of the power grid. Several regional data relay modules are used to temporarily store and forward data collected by the equipment operation monitoring module, personnel job configuration monitoring module, material storage and transportation monitoring module and environmental monitoring module within the region; Several high-priority data relay modules are used to temporarily store and forward data collected from high-priority targets in the equipment operation monitoring module, personnel job configuration monitoring module, material storage and transportation monitoring module, and environmental monitoring module; A data processing module is used to process the data sent by the regional data relay module and the high-priority data relay module; A data visualization module is used to visualize the data processed by the data processing module. A database module is used to store the data processed by the data processing module.

[0006] A control method for the above-mentioned network topology dynamic visualization operation and maintenance management system includes the following steps: A. The equipment operation monitoring module, personnel job configuration monitoring module, material storage and transportation monitoring module, and environmental monitoring module respectively monitor and collect the status data of the response within the area; B. The data collected in step A is sent to the data processing module through the corresponding regional data relay module; at the same time, the monitoring data is prioritized, and data whose priority meets the preset requirements is sent to the data processing module through the high-priority data relay module. C. The data processing module processes the incoming data; D. The data processing module sends the processed data to the data visualization module and the database module for visualization and storage.

[0007] Preferably, step B, which prioritizes the monitoring data, includes the following steps: B1. Identify the priority identifier of the monitoring data. If the priority identifier is manually marked as the highest priority, the monitoring data is directly determined as high priority data, and step B ends; otherwise, proceed to step B2. B2. Filter the monitoring data according to the fluctuation range of the monitoring data, extract the monitoring data with fluctuation range greater than the set threshold, and go to step B3. B3. Input the monitoring data extracted in step B2 into the priority determination decision tree for priority determination.

[0008] Preferably, step C involves processing the received data, including the following steps: C1. Determine the data visualization display dimensions based on the priority determined in step B; C2. Perform multi-dimensional decomposition of the data based on the dimensions determined in step C1; C3. Denoise each data dimension after decomposition, and then perform data curve fitting.

[0009] As a preferred option, in step D, the data visualization module uses a continuous display method for the highest priority data and a cyclical display method for other data.

[0010] The beneficial effects of adopting the above technical solution are as follows: By optimizing the transmission and preprocessing of monitoring data, the present invention effectively increases the proportion of key data visualization, thereby improving the data processing efficiency of the operation and maintenance management system without increasing the system's hardware computing power. Attached Figure Description

[0011] Figure 1 This is a structural diagram of a specific embodiment of the present invention. Detailed Implementation

[0012] Reference Figure 1 One specific embodiment of the present invention includes, Several equipment operation monitoring modules 1 are used to monitor the operating status of power grid equipment; Several personnel positions are equipped with monitoring module 2 to monitor the on-duty status of operation and maintenance personnel; Several material storage and transportation monitoring modules 3 are used to monitor the storage and transportation status of materials required for power grid operation and maintenance; Several environmental monitoring modules 4 are used to monitor the environmental conditions of the power grid. Several regional data relay modules 5 are used to temporarily store and forward the data collected by the equipment operation monitoring module 1, personnel job configuration monitoring module 2, material storage and transportation monitoring module 3, and environmental monitoring module 4 within the region; Several high-priority data relay modules 6 are used to temporarily store and forward data collected from high-priority targets in equipment operation monitoring module 1, personnel job configuration monitoring module 2, material storage and transportation monitoring module 3 and environmental monitoring module 4. A data processing module 7 is used to process the data sent by the regional data relay module 5 and the high-priority data relay module 6; A data visualization module 8 is used to visualize the data processed by the data processing module 7. A database module 9 is used to store the data processed by the data processing module 7.

[0013] A control method for the above-mentioned network topology dynamic visualization operation and maintenance management system includes the following steps: A. The equipment operation monitoring module 1, personnel job configuration monitoring module 2, material storage and transportation monitoring module 3, and environmental monitoring module 4 respectively monitor and collect the status data of the response within the area; B. The data collected in step A is sent to the data processing module 7 via the corresponding regional data relay module 5; simultaneously, the monitoring data is prioritized, and data whose priority meets the preset requirements is sent to the data processing module 7 via the high-priority data relay module 6; the prioritization of monitoring data includes the following steps. B1. Identify the priority identifier of the monitoring data. If the priority identifier is manually marked as the highest priority, the monitoring data is directly determined as high priority data, and step B ends; otherwise, proceed to step B2. B2. Filter the monitoring data according to the fluctuation range of the monitoring data, extract the monitoring data with fluctuation range greater than the set threshold, and go to step B3. B3. Input the monitoring data extracted in step B2 into the priority determination decision tree for priority determination; C. Data processing module 7 processes the received data, including the following steps: C1. Determine the data visualization display dimensions based on the priority determined in step B; C2. Perform multi-dimensional decomposition of the data based on the dimensions determined in step C1; C3. Denoise each data dimension after decomposition, and then perform data curve fitting. D. The data processing module 7 sends the processed data to the data visualization module 8 and the database module 9 for visualization and storage. The data visualization module 8 uses a continuous display method for the highest priority data and a cyclic display method for other data.

[0014] This invention improves the processing flow of visualized data, dynamically increasing the proportion of key data displayed, thereby making the operation and maintenance system more effective in monitoring key points of the power grid.

[0015] In the description of this invention, it should be understood that the terms "longitudinal", "lateral", "up", "down", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this invention, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.

[0016] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A control method for a network topology dynamic visualization operation and maintenance management system, the network topology dynamic visualization operation and maintenance management system comprising: Several equipment operation monitoring modules (1) are used to monitor the operating status of power grid equipment; Several personnel positions are configured with monitoring modules (2) to monitor the on-duty status of operation and maintenance personnel; Several material storage and transportation monitoring modules (3) are used to monitor the storage and transportation status of materials required for power grid operation and maintenance; Several environmental monitoring modules (4) are used to monitor the environmental status of the power grid. Several regional data transfer modules (5) are used to temporarily store and forward the data collected by the equipment operation monitoring module (1), personnel job configuration monitoring module (2), material storage and transportation monitoring module (3) and environmental monitoring module (4) within the region; Several high-priority data transfer modules (6) are used to temporarily store and forward the data collected by high-priority targets in the equipment operation monitoring module (1), personnel job configuration monitoring module (2), material storage and transportation monitoring module (3) and environmental monitoring module (4); A data processing module (7) is used to process the data sent by the regional data relay module (5) and the high-priority data relay module (6); A data visualization module (8) is used to visualize the data processed by the data processing module (7); A database module (9) is used to store the data processed by the data processing module (7); Its characteristics include the following steps: A. The equipment operation monitoring module (1), personnel post configuration monitoring module (2), material storage and transportation monitoring module (3) and environmental monitoring module (4) respectively monitor and collect the status data of the response within the area; B. The data collected in step A is sent to the data processing module (7) through the corresponding regional data transfer module (5); at the same time, the monitoring data is prioritized, and the data whose priority meets the preset requirements is sent to the data processing module (7) through the high-priority data transfer module (6); the priority determination of the monitoring data includes the following steps, B1. Identify the priority identifier of the monitoring data. If the priority identifier is manually marked as the highest priority, the monitoring data is directly determined as high priority data, and step B ends; otherwise, proceed to step B2. B2. Filter the monitoring data according to the fluctuation range of the monitoring data, extract the monitoring data with fluctuation range greater than the set threshold, and go to step B3. B3. Input the monitoring data extracted in step B2 into the priority determination decision tree for priority determination; C. The data processing module (7) processes the sent data, including the following steps: C1. Determine the data visualization display dimensions based on the priority determined in step B; C2. Perform multi-dimensional decomposition of the data based on the dimensions determined in step C1; C3. Denoise each data dimension after decomposition, and then perform data curve fitting; D. The data processing module (7) sends the processed data to the data visualization module (8) and the database module (9) for visualization and storage.

2. The control method for the network topology dynamic visualization operation and maintenance management system according to claim 1, characterized in that: In step D, the data visualization module (8) uses a continuous display method for the highest priority data and a cyclic display method for the other data.

Citation Information

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