Based on a three-dimensional intelligent command and control system for large-scale maintenance operations
By using intelligent command equipment to monitor and analyze the power line maintenance work site in real time, the problems of inaccurate information transmission and high safety risks in traditional power line maintenance have been solved, and efficient and safe power line maintenance work has been achieved.
Patent Information
- Application Number
- CN202411641061.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2044-11-18
AI Technical Summary
Power line maintenance work faces complex and ever-changing working environments, frequent personnel movement, long distances, and wide work areas, which leads to difficulties in on-site command, inaccurate information transmission, and high safety risks. Traditional communication methods are unstable, affecting the timeliness and accuracy of decision-making.
The system employs a three-dimensional intelligent command and control equipment device for large-scale maintenance operations, including a main unit, a handheld intelligent data acquisition terminal, and a real-time monitoring module. It integrates data acquisition, transmission, image processing, safety hazard identification, data analysis, and trunking communication functions. It achieves real-time monitoring and multi-party communication through satellite/5G/4G wireless transmission, and combines AI algorithms to predict potential faults and risks, monitor the health data of operators, and provide voice communication and early warning functions.
It enables real-time monitoring of the work site, ensures accurate information transmission, improves the safety and efficiency of power line maintenance work, reduces the incidence of safety accidents, and optimizes work processes and resource allocation.
Smart Images

Figure CN119603578B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of maintenance operation command, and more specifically, to a three-dimensional intelligent command equipment device based on large-scale maintenance operations. Background Technology
[0002] With the continuous development and expansion of the power grid, the maintenance of power lines has become increasingly important, directly affecting the stability and security of power supply. However, maintenance work itself faces many challenges, such as complex and changing working environments, frequent personnel movement, long working distances, and wide working areas. These factors increase the difficulty of on-site command and communication, thereby increasing the risk of safety accidents and reducing work efficiency.
[0003] In traditional power line maintenance, workers must perform maintenance, repair, and replacement of high-voltage power lines under various weather conditions. These tasks often need to be carried out at high altitudes, over long distances, and even in environments harmful to human health, placing high demands on workers' safety awareness and professional skills. Furthermore, due to the dispersed nature of work sites, on-site supervisors find it difficult to monitor the specific situation at each work point in real time. This leads to delays and distortions in information transmission, consequently affecting the timeliness and accuracy of decision-making.
[0004] Furthermore, while traditional communication methods, such as walkie-talkies or telephones, can meet the needs of on-site communication to some extent, they often suffer from unstable signals and inaccurate information transmission in the complex and ever-changing power grid environment. This not only increases the difficulty of coordination among operators but also raises safety risks.
[0005] Therefore, to improve the safety and efficiency of power line maintenance operations, an innovative technical solution is urgently needed. This solution should be able to monitor various parameters at the work site in real time, and also possess efficient information transmission and communication capabilities to ensure that on-site commanders can promptly and accurately grasp the specific situation at each work point and make quick and accurate decisions. Summary of the Invention
[0006] To achieve the above objectives, the present invention provides a three-dimensional intelligent command equipment device for large-scale maintenance operations, comprising: a host, a handheld intelligent data acquisition terminal, and a real-time monitoring module;
[0007] The real-time monitoring module includes a data acquisition module and a data transmission module; the data acquisition module is used to acquire on-site operation data in real time; the data transmission module is used to transmit the on-site operation data to the host and monitoring center via wireless transmission; the on-site operation data includes video of the operation site, monitoring environmental parameters, and equipment status.
[0008] The handheld intelligent data acquisition terminal includes a micro-cluster communication device, a data input module, and a handheld control module. The micro-cluster communication device can set up multi-party calls and group dialogues, enabling communication between multiple handheld intelligent data acquisition terminals, between a handheld intelligent data acquisition terminal and the host, and between a handheld intelligent data acquisition terminal and the monitoring center. The data input module is used to switch communication targets or communication groups, and also to input data and work information to send to the host. The micro-cluster communication device and the data input module are respectively connected to the handheld control module.
[0009] The host computer includes a data receiving module, an image processing module, a safety hazard identification module, a data analysis module, a trunking communication device, and a CPU. The data receiving module wirelessly receives on-site operation data acquired by the real-time monitoring module. The image processing module extracts and processes video data from the on-site operation data. The safety hazard identification module, connected to the image processing module, uses AI algorithms to identify potential safety hazards in the processed images. The data analysis module predicts potential faults and risks based on machine algorithms and acquired data, and can output preventative measures. The trunking communication device communicates with the handheld intelligent data acquisition terminal and the monitoring center. The data receiving module, image processing module, safety hazard identification module, data analysis module, and trunking communication device are all connected to the CPU.
[0010] Specifically, it also includes a health data collection device for workers, which is a smart bracelet that is wirelessly connected to the host computer. It is used to collect workers' blood pressure, blood oxygen, and heart rate information and send it to the host computer.
[0011] Specifically, the host computer transmits video to the monitoring center via satellite / 5G / 4G wireless transmission.
[0012] Specifically, the safety hazards identified by the safety hazard identification module include: workers not wearing safety helmets, wearing safety helmets incorrectly, and not wearing work clothes and safety belts correctly.
[0013] In particular, the host also includes an early warning module, which is connected to issue an alarm when a security hazard is detected.
[0014] Specifically, the real-time monitoring module includes several cameras and sensors installed at the work site, as well as a data processing module, a data controller, and a data transmission module; the cameras and sensors are respectively connected to the data processing module; the data processing module and the data transmission module are respectively connected to the data controller.
[0015] Specifically, the host is equipped with a touch screen, which is a high-resolution reflective TFT-LCD capacitive liquid crystal screen.
[0016] Specifically, the host is equipped with several buttons for switching communication targets or communication groups.
[0017] Specifically, the data input module is a keyboard.
[0018] The beneficial effects of this invention are as follows: Through a real-time monitoring module, the command and control center can monitor the work site and command area in real time, enabling the identification and resolution of safety hazards; through voice communication, real-time communication between on-site command personnel and workers, and between on-site personnel and the command center, ensures accurate information transmission; through data analysis, it provides a scientific basis for maintenance operations, optimizes work processes, and improves maintenance efficiency. This invention effectively improves the safety and efficiency of power line maintenance operations, reduces the incidence of safety accidents, and provides strong support for the development of the power industry. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a structural diagram of the intelligent command equipment device for large-scale maintenance operations based on the present invention.
[0021] Figure 2 This is a schematic diagram illustrating the working principle of the three-dimensional intelligent command equipment device for large-scale maintenance operations based on the present invention.
[0022] Figure label:
[0023] 1. Main unit; 2. Display screen; 3. Intelligent data acquisition terminal; 4. Handheld microphone; 5. Control buttons. Detailed Implementation
[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0025] In the description of this invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0026] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. Furthermore, the technical features involved in the different embodiments of this invention described below can be combined with each other as long as they do not conflict with each other.
[0027] like Figure 1 , Figure 2 As shown, this embodiment of the invention provides a three-dimensional intelligent command equipment device for large-scale maintenance operations, including: a host, a handheld intelligent data acquisition terminal, and a real-time monitoring module.
[0028] The real-time monitoring module includes a data acquisition module and a data transmission module. The data acquisition module collects on-site operation data in real time; the data transmission module transmits the on-site operation data wirelessly to the host computer and monitoring center. The on-site operation data includes video footage of the work site, monitored environmental parameters, and equipment status. The real-time monitoring module includes several high-definition cameras and sensors installed at the work site, as well as a data processing module, a data controller, and a data transmission module. The high-definition cameras and sensors are connected to the data processing module. The data processing module and the data transmission module are connected to the data controller.
[0029] The handheld intelligent data acquisition terminal includes a miniature trunking communication device, a data input module, and a handheld control module. The miniature trunking communication device can be configured for multi-party calls and group conversations, enabling communication between multiple handheld intelligent data acquisition terminals, between a handheld intelligent data acquisition terminal and a host computer, and between a handheld intelligent data acquisition terminal and a monitoring center. The data input module is used to switch communication targets or communication groups, and also for inputting data and work information to send to the host computer. The miniature trunking communication device and the data input module are respectively connected to the handheld control module; the data input module is a keyboard.
[0030] The host computer includes a data receiving module, an image processing module, a safety hazard identification module, a data analysis module, a trunking communication device, and a CPU. The data receiving module wirelessly receives on-site operation data acquired by the real-time monitoring module. The image processing module extracts and processes video data from the on-site operation data. The safety hazard identification module, connected to the image processing module, uses AI algorithms to identify potential safety hazards in the processed images. The data analysis module predicts potential faults and risks based on machine algorithms and acquired data, and can output preventative measures. The trunking communication device communicates with the handheld intelligent data acquisition terminal and the monitoring center. The data receiving module, image processing module, safety hazard identification module, data analysis module, and trunking communication device are all connected to the CPU. The host computer transmits video to the monitoring center wirelessly via satellite / 5G / 4G. The host computer also includes an early warning module, which sounds an alarm when a safety hazard is detected. The host computer has a touchscreen display, which uses a high-resolution reflective TFT-LCD capacitive touchscreen. Several buttons are provided on the host computer for switching communication targets or communication groups. The safety hazards identified by the safety hazard identification module include: workers not wearing safety helmets, wearing safety helmets incorrectly, and not wearing work clothes and safety belts correctly.
[0031] This embodiment also includes a worker health data collection device, which is a smart bracelet that is wirelessly connected to the host computer. It is used to collect workers' blood pressure, blood oxygen, and heart rate information and send it to the host computer.
[0032] The working principle of this invention is as follows:
[0033] The real-time monitoring module is responsible for continuously collecting on-site operational data from high-definition cameras and intelligent acquisition terminals. This data is transmitted to the command and control center in real time via wireless communication technology.
[0034] The intelligent data acquisition terminal is specifically designed to collect precise location information of workers and key environmental parameters, such as wind speed and temperature, which are important factors affecting operational safety. Simultaneously, the intelligent data acquisition terminal can also monitor workers' vital signs, including heart rate, blood pressure, blood oxygen saturation, and body temperature—key indicators for assessing workers' health status.
[0035] The voice communication module enables real-time voice communication between on-site commanders and operators, as well as between on-site commanders and the command and control center, ensuring effective and accurate information transmission.
[0036] On-site commanders and operators communicate via a full-duplex communication system capable of clear communication over distances up to 1000 meters. The system boasts a compact size, lightweight design, and excellent anti-interference capabilities. This communication solution provides comprehensive support for communication between on-site personnel and commanders, effectively improving operational efficiency and enhancing the safety and standardization of the operational process.
[0037] The voice communication module between on-site commanders and the command center utilizes a 5G / 4G network, supporting multi-party and group calls to facilitate coordination and dispatch between the command center and multiple work teams. Through speech recognition and speech synthesis technologies, real-time voice communication between on-site personnel and the command center is achieved, ensuring the accuracy of information transmission and the effectiveness of communication.
[0038] The data analysis module analyzes and processes the collected data, and uses machine learning algorithms to predict potential faults and risks, allowing for preventative measures to be taken in advance.
[0039] The early warning system performs in-depth analysis of the collected data and triggers an alarm once a potential safety risk is detected. This system utilizes advanced AI algorithms to monitor the workplace environment and equipment conditions to ensure operational safety. It can identify whether workers are correctly wearing safety helmets, prescribed work clothes, and safety belts. Simultaneously, an alarm is triggered if workers fail to reach a preset location within a preset time to prevent potential accidents. These detection functions can quickly identify potential unsafe factors. Furthermore, this embodiment of the invention can also monitor workers' heart rate, blood pressure, blood oxygen saturation, and body temperature. When these vital signs become abnormal, the early warning system immediately issues an alarm, reminding relevant personnel to take timely measures. Through this comprehensive monitoring, the early warning system can promptly remind workers to pay attention to safety, prevent accidents, and thus ensure the safety of the work site.
[0040] The working principle of this embodiment is as follows:
[0041] The voice communication module enables real-time voice communication between on-site commanders and operators, and between on-site commanders and the command and control center, ensuring effective and accurate information transmission.
[0042] The data analysis module analyzes and processes the collected data, and uses machine learning algorithms to predict potential faults and risks, and take preventive measures in advance.
[0043] The early warning module analyzes the collected data, detects potential safety hazards, and issues an alarm.
[0044] The technical effects of this embodiment are as follows:
[0045] 1. Deploy Real-Time Monitoring: Install high-definition cameras and various sensors at power line maintenance sites to capture video and data information. Transmit the video and data to the emergency command and monitoring center via wireless transmission technologies (such as satellite, 5G, or 4G networks). The real-time monitoring module not only provides real-time images of the work site but also monitors environmental parameters (such as temperature, humidity, and wind speed) and equipment status, ensuring a safe working environment.
[0046] 2. Establish Voice Communication: Utilize wireless communication technology to establish a real-time voice communication link between on-site personnel and the command center. Support multi-party calls and group calls, enabling the command center to coordinate and dispatch multiple work teams simultaneously. Employ speech recognition and speech synthesis technologies to ensure accurate information transmission and effective communication.
[0047] 3. Implement a data analysis module: Analyze and process the collected data to generate reports and charts, providing a scientific basis for maintenance operations. Utilize historical data and pattern recognition algorithms to predict potential faults and risks, allowing for proactive preventative measures. Analyze work processes and resource allocation to optimize work plans and improve maintenance efficiency.
[0048] 4. Research and apply safety early warning technology: Monitor the environment and equipment status at the work site using AI algorithms to identify safety hazards, such as not wearing a safety helmet, not wearing work clothes or safety belts correctly, etc. When an unsafe hazard is detected, issue an early warning to on-site personnel through voice and image methods to ensure operational safety. Develop portable, multi-network integrated, three-dimensional intelligent command equipment: Design portable command equipment that integrates video command and dispatch, trunked voice intercom, electronic map command, and other functions. The equipment can be quickly deployed to the front-end mobile command center through various wireless transmission methods (such as satellite, 5G, 4G), suitable for emergency scenarios such as "public network blind spots" and "too many public network users focusing on personnel".
[0049] 5. Construct a multi-converged command system: Based on cross-network communication, multimedia convergence, and microservice architecture technologies, integrate traditional audio, video, and modern networked data transmission methods. It is compatible with text, location, and various sensor data, providing multi-data fusion video conferencing capabilities and direct command and dispatch capabilities to the front end.
[0050] 6. Achieve three-dimensional intelligent data processing: Analyze real-time monitoring data and historical data to uncover patterns and characteristics in line maintenance operations, providing a scientific basis for optimizing work processes. Design an operation control system to achieve automatic monitoring and scheduling of the operation process, including functions such as work process optimization, resource allocation, and risk warning. The system can communicate with the operating equipment in real time, promptly report operational status and environmental changes, and dynamically adjust and optimize the work plan.
[0051] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A three-dimensional intelligent command and control equipment device for large-scale maintenance operations, characterized in that... ,include: Main unit, handheld intelligent data acquisition terminal, real-time monitoring module; The real-time monitoring module includes a data acquisition module and a data transmission module; the data acquisition module is used to acquire on-site operation data in real time; the data transmission module is used to transmit the on-site operation data to the host and monitoring center via wireless transmission; the on-site operation data includes video of the operation site, monitoring environmental parameters, and equipment status. The handheld intelligent data acquisition terminal includes a micro cluster communication device, a data input module, and a handheld control module; The micro cluster communication device can set up multi-party calls and group dialogues to enable communication between multiple handheld intelligent data acquisition terminals, between handheld intelligent data acquisition terminals and the host, and between handheld intelligent data acquisition terminals and the monitoring center. The data input module is used to switch communication objects or communication groups, and also to input data and work information to send to the host; the micro cluster communication device and the data input module are respectively connected to the handheld control module; The host computer includes a data receiving module, an image processing module, a safety hazard identification module, a data analysis module, a trunking communication device, and a CPU. The data receiving module wirelessly receives on-site operation data acquired by the real-time monitoring module. The image processing module extracts and processes video data from the on-site operation data. The safety hazard identification module, connected to the image processing module, uses AI algorithms to identify potential safety hazards in the processed images. The data analysis module predicts potential faults and risks based on machine algorithms and acquired data, and can output preventative measures. The trunking communication device communicates with the handheld intelligent data acquisition terminal and the monitoring center. The data receiving module, image processing module, safety hazard identification module, data analysis module, and trunking communication device are all connected to the CPU.
2. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: It also includes a health data collection device for workers, which is a smart bracelet that is wirelessly connected to the host and is used to collect workers' blood pressure, blood oxygen, and heart rate information and send it to the host.
3. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: The host computer transmits video to the monitoring center via satellite / 5G / 4G wireless transmission.
4. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: The safety hazards identified by the safety hazard identification module include: workers not wearing safety helmets, wearing safety helmets incorrectly, and not wearing work clothes and safety belts correctly.
5. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: The host also includes an early warning module, which is connected to issue an alarm when a safety hazard is detected.
6. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: The real-time monitoring module includes several cameras and sensors installed at the work site, as well as a data processing module, a data controller, and a data transmission module; the cameras and sensors are respectively connected to the data processing module; the data processing module and the data transmission module are respectively connected to the data controller.
7. The intelligent command and control equipment based on large-scale maintenance operations according to claim 1, characterized in that: The host is equipped with a touch screen, which is a high-resolution reflective TFT-LCD capacitive screen.
8. The intelligent command and control equipment based on large-scale maintenance operations according to claim 1, characterized in that: The host is equipped with several buttons for switching communication targets or communication groups.
9. The intelligent command equipment device based on large-scale maintenance operations according to claim 1, characterized in that: The data input module is a keyboard.
Citation Information
Patent Citations
Major network maintenance safety management platform based on knowledge graph
CN118657507A
Systems and methods for collecting, monitoring, and analyzing vehicle data from a plurality of vehicles using edge computing
US20200233650A1