Informatization platform operation and maintenance management platform

By designing the user interface layer, API gateway layer, microservice layer and infrastructure layer of the operation and maintenance management platform of the information platform, the problems of low degree of automation and relying on manual operation and maintenance in the existing technology are solved, and highly automated operation and maintenance management is realized, which improves operation and maintenance efficiency and system stability.

CN120166017AActive Publication Date: 2025-06-17BEIJING BOYU TECH SERVICE CO LTD
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Patent Information

Application Number
CN202510404713.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-06-17
Estimated Expiration
2045-04-01

AI Technical Summary

Technical Problem

The existing information platform operation and maintenance management platform has low degree of automation, relies on manual execution of operation and maintenance tasks, and is not standardized script management, resulting in low operation and maintenance efficiency, inconsistent configuration management, and lack of change audit and automation failure recovery mechanisms, which affects system stability and production efficiency.

Method used

An information platform operation and maintenance management platform was designed, including the user interface layer, API gateway layer, microservice layer and infrastructure layer. The microservice layer includes monitoring and alarm modules, automated operation and maintenance modules, configuration and log management modules, fault and security management modules, and data analysis and management modules. Through these modules, real-time monitoring, automated operation and maintenance, configuration management, fault detection and recovery, data analysis and other functions are realized.

Benefits of technology

It realizes highly automated operation and maintenance management, improves operation and maintenance efficiency and system stability, ensures configuration consistency and traceability, reduces manual intervention, and supports large-scale and large-scale rapid fault detection and automated fault recovery.

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Abstract

The invention discloses an informatization platform operation and maintenance management platform, which comprises a user interface layer, an API gateway layer, a micro-service layer and an infrastructure layer, and is characterized in that the micro-service layer comprises a monitoring alarm module, an automatic operation and maintenance module, a configuration and log management module, a fault and safety management module and a data analysis management module; a troubleshooting device is arranged in the fault and safety management module, so that platform faults can be quickly detected, positioned and solved, and downtime is shortened; according to the informatization platform operation and maintenance management platform, high automation is achieved, a workflow engine is used for managing a complex operation and maintenance process, configuration files are managed in a centralized mode, configuration consistency is ensured, configuration change history is recorded, configuration rapid rollback is supported, the influence of configuration errors is reduced, large-range and large-scale rapid fault detection is achieved, and the operation and maintenance efficiency is improved. Automatic fault recovery is supported, manual intervention is reduced, and production efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of information platforms, and more specifically, to an operation and maintenance management platform for information platforms. Background Art

[0002] An information platform is a comprehensive system integrating various technologies, tools, and services, aiming to improve the operational efficiency, management level, and decision-making ability of an organization through digital means. It realizes the automation, intelligence, and visualization of business processes through data collection, processing, storage, and analysis. An operation and maintenance management platform for an information platform is a comprehensive system dedicated to managing and maintaining an information platform, aiming to ensure the efficient, stable, and secure operation of the information platform through automated, intelligent, and centralized means. It covers functions such as monitoring, alerting, configuration management, log management, fault handling, security management, and data analysis. In the existing technology field, the operation and maintenance management platform for information platforms has problems such as low automation level, relying on manual execution of daily operation and maintenance tasks, non-standard script management, difficult to reuse and maintain, resulting in low efficiency of complex operation and maintenance tasks, decentralized configuration management, difficult to ensure consistency, lack of change auditing, unable to trace the configuration change history, difficult to quickly recover configuration errors, affecting system stability, and lack of an automated fault recovery mechanism, relying on manual processing. Under the conditions of large-scale automated production, the fault detection of many devices is not timely, resulting in delayed fault handling and affecting production efficiency. Summary of the Invention

[0003] The purpose of the present invention is to provide an operation and maintenance management platform for an information platform to at least solve the problems mentioned in the above background art in the prior art.

[0004] To achieve the above purpose, the present invention provides the following technical solution: An operation and maintenance management platform for an information platform, characterized by including: a user interface layer, an API gateway layer, a microservice layer, and an infrastructure layer; The user interface layer, which can provide Web and mobile interfaces, support users to access platform functions, and interact with backend microservices through the API gateway; The API gateway layer, which can provide a unified API gateway, manage the access and invocation of each microservice, and implement access control and identity authentication; The microservice layer includes: a monitoring and alarm module, an automated operation and maintenance module, a configuration and log management module, a fault and security management module, and a data analysis management module; The monitoring and alarm module, which can monitor the running state of the platform in real time, collect performance indicators of the system, network, application, and database, detect anomalies and trigger alarms, and perform trend analysis based on historical data to predict potential faults; Automated operation and maintenance module, which can execute daily operation and maintenance tasks through automated tools and processes; Configuration and log management module, which can manage the configuration information of the platform and applications, ensure the consistency and traceability of the configuration, and collect, store and analyze the log data of the platform and applications to help troubleshoot problems; Fault and security management module, which can generate fault reports, record the fault causes, handling processes and recovery times. A fault troubleshooting device is set in the fault and security management module, which can quickly detect, locate and solve platform faults to reduce downtime; Data analysis management module, which can manage the data collection, storage and processing of the platform, ensure the integrity and availability of the data, and can generate operation and maintenance reports, provide data analysis functions to help optimize operation and maintenance strategies, and generate system performance reports and operation and maintenance task reports; Infrastructure layer, which can provide infrastructure support such as containerized deployment, distributed storage, message queue and database, and ensure the high availability, scalability and stability of the platform.

[0005] Preferably, the fault troubleshooting device includes: fixed guide rails, a feeding mechanism, a fault troubleshooting mechanism, a lifting mechanism, a maintenance workbench and a main controller; there are two fixed guide rails, and the two fixed guide rails are arranged parallel to each other in the front-back direction along the left-right direction; the feeding mechanism is arranged at the inner bottom end of the fixed guide rails; the fault troubleshooting mechanism is arranged below the fixed guide rails; the lifting mechanism is arranged outside the fault troubleshooting mechanism; the maintenance workbench is installed below the outside of the fixed guide rails; the main controller is arranged on the top of the maintenance workbench.

[0006] Preferably, the delivery mechanism includes: a first guide rail frame, a first track drive wheel, a second guide rail frame, a second track drive wheel, a telescopic device, a first sub-control box, a battery box, a mounting frame, and a storage component; the first guide rail frame is arranged below the fixed guide rail in the front-rear direction; the number of the first track drive wheels is four, and the four first track drive wheels are respectively installed at the four corners of the top end of the first guide rail frame, and the left and right two first track drive wheels on the front and rear sides are respectively clamped inside the front and rear two fixed guide rails; the second guide rail frame is arranged below the first guide rail frame; the number of the second track drive wheels is four, and the four second track drive wheels are respectively installed at the four corners of the top end of the first guide rail frame, and the left and right two second track drive wheels on the front and rear sides are respectively clamped at the front and rear ends of the left and right sides inside the first guide rail frame; the telescopic device is arranged inside the second guide rail frame in the up-down direction; the first sub-control box is installed on the right side of the second guide rail frame, the first sub-control box is electrically connected to the first track drive wheel, the second track drive wheel, and the telescopic device, and the first sub-control box is remotely network-connected to the main controller; the battery box is installed on the left side of the second guide rail frame, and the battery box is electrically connected to the first sub-control box; the mounting frame is installed at the rear side of the telescopic end of the telescopic device; the storage component is arranged inside the mounting frame.

[0007] Preferably, the storage component includes: a U-shaped frame, a first sprocket, a drive motor, a second sprocket, a chain, a mounting rod, and a mounting bracket; the U-shaped frame is arranged inside the mounting frame in the up-down direction; the number of the first sprockets is two, and the two first sprockets are respectively installed on the left and right sides of the inner bottom end of the U-shaped frame through a rotating shaft seat; the number of the drive motors is two, and the two drive motors are respectively installed on the left and right sides of the top end of the U-shaped frame through a bracket, and the drive motor is electrically connected to the first sub-control box; the number of the second sprockets is two, and the two second sprockets are respectively installed on the rotating ends of the left and right two drive motors; the number of the chains is two, and the two chains are respectively meshed on the outer sides of the upper and lower two second sprockets and the first sprockets; the number of the mounting rods is four, and the four mounting rods are circumferentially installed inside the left and right two chains in the left-right direction; the number of the mounting brackets is four groups, the number of each group of mounting brackets is two, and the four groups of mounting brackets are respectively installed on the left and right sides of the four mounting rods; wherein, a fixing unit is installed inside the four groups of mounting brackets.

[0008] Preferably, the fixing unit includes: a rotating shaft, fixing claws, a mounting seat, and a first electric telescopic rod; there are two rotating shafts, and the two rotating shafts are respectively installed at the inner bottom ends of the left and right mounting frames along the front-rear direction through bearings, and the front and rear ends of the rotating shafts extend out of the outer sides of the mounting frames; there are two groups of fixing claws, and the number of fixing claws in each group is two, and the two groups are respectively installed at the front and rear ends of the left and right rotating shafts; one end of the mounting seat is installed at the inner top of the rear fixing claw on the right side through a rotating shaft seat; the first electric telescopic rod is fixedly installed at the other end of the mounting seat, and the telescopic end of the first electric telescopic rod is connected to the inner top of the rear fixing claw on the left side through a rotating shaft seat, and the first electric telescopic rod is electrically connected to the first sub-control box.

[0009] Preferably, the fault troubleshooting mechanism includes: a maintenance robot and a working robotic arm; the maintenance robot is arranged below the fixed guide rail and can be stored inside the storage component, and the maintenance robot is remotely network-connected to the main controller; the working robotic arm is installed on the top of the maintenance robot, and the working robotic arm is electrically connected to the maintenance robot.

[0010] Preferably, the lifting mechanism includes: a robot chassis, a second sub-control box, a third guide rail frame, a roller seat, a support plate, a second electric telescopic rod, a fixing rod, a slotting frame, a fixing frame, and a third electric telescopic rod; the robot chassis is arranged outside the maintenance robot; the second sub-control box is installed at the rear side of the robot chassis, the robot chassis is electrically connected to the second sub-control box, and the second sub-control box is remotely network-connected to the main controller; the third guide rail frame is installed inside the robot chassis along the up-down direction; the roller seat is inserted inside the robot chassis; the support plate is installed at the rear bottom end of the roller seat; there are two second electric telescopic rods, and the two second electric telescopic rods are installed at the left and right sides of the inner top end of the third guide rail frame along the up-down direction, and the telescopic ends of the left and right second electric telescopic rods are connected to the left and right sides of the bottom end of the roller seat, and the second electric telescopic rod is electrically connected to the second sub-control box; there are two fixing rods, and the two fixing rods are installed at the middle of the rear top end of the roller seat along the front-rear direction on the left and right sides; the slotting frame is installed at the rear bottom end of the fixing rod; there are two fixing frames, and the two fixing frames are respectively inserted on the left and right sides of the slotting frame, and the shape of the fixing frame is L-shaped; there are two third electric telescopic rods, and the two third electric telescopic rods are respectively installed on the left and right sides of the slotting frame, and the telescopic ends of the left and right slotting frames are respectively fixedly connected to the inner sides of the left and right third electric telescopic rods, and the third electric telescopic rod is electrically connected to the second sub-control box.

[0011] Compared with the prior art, the beneficial effects of the present invention are: 1. The loading of hardware, operating system, and platform services is completed through the user interface layer, API gateway layer, and infrastructure layer. In the microservices layer, the monitoring and alarm module, automated operation and maintenance module, configuration and log management module, fault and security management module, and data analysis and management module are started and perform health checks to ensure normal operation. The monitoring and alarm module collects system performance data in real time, detects anomalies according to preset rules, and triggers alarms. The automated operation and maintenance module schedules and executes daily tasks and manages complex processes. The configuration and log management module centrally manages configuration files. The fault and security management module quickly detects, locates, and resolves system faults. The data analysis and management module generates performance, operation and maintenance, and security reports based on the collected data, providing visual analysis and decision-making support.

[0012] 2. The first track driving wheel moves inside the fixed guide rail to drive the first guide rail frame to move to the specified position. The second track driving wheel moves inside the first guide rail frame to drive the second guide rail frame to move in the front-back direction to the specified position. The telescopic device drives the installation frame to drive the storage component to descend to the specified height position. The driving motors on the left and right sides drive the corresponding second sprockets to rotate, so that the left and right chains move circumferentially under the action of the rotational force of the second sprockets and under the limiting action of the first sprockets, and drive the corresponding installation rods to move circumferentially to the lower side inside the U-shaped frame. The first electric telescopic rod extends to drive the fixed claws at the corresponding rear positions to rotate outward. The rear fixed claws drive the rotating shaft to drive the front fixed claws to rotate synchronously. The front and rear fixed claws rotate outward to release the clamping and fixing of the inspection robot. The inspection robot moves to the specified position according to the predetermined route. The preset program inside the inspection robot controls the working robotic arm to start. The working robotic arm performs fault detection and troubleshooting on the equipment at the specified position. The robot chassis moves to the specified position according to the predetermined route. The second electric telescopic rod extends to drive the roller seat to descend along the third guide rail frame to the ground position. The inspection robot moves to the surface of the pallet. The third electric telescopic rods on the left and right sides shorten to drive the fixing frames to move inward in the inner cavity of the slot frame, so that the left and right fixing frames clamp and fix both sides of the inspection robot. The second electric telescopic rod shortens to drive the roller seat to drive the pallet to lift the inspection robot to the specified height position.

[0013] Thus, high automation is achieved. The workflow engine is used to manage complex operation and maintenance processes, centrally manage configuration files, ensure configuration consistency, record the configuration change history, support rapid configuration rollback, reduce the impact of configuration errors, and achieve large-scale and large-scale rapid fault detection, support automated fault recovery, reduce manual intervention, and improve production efficiency. Brief Description of the Drawings

[0014] Figure 1 It is a schematic diagram of the present invention; Figure 2 It is a schematic diagram of the fault troubleshooting device of the present invention; Figure 3 For Figure 2 explosion view of the delivery mechanism; Figure 4 For Figure 3 explosion view of the storage component; Figure 5 For Figure 4 enlarged view of location A of Figure 6 For Figure 2 enlarged view of the fault troubleshooting mechanism of Figure 7 For Figure 2 explosion view of the lifting mechanism; Figure 8 For Figure 7 enlarged view of location B of

[0015] In the figure: 1, fixed guide rail; 2, delivery mechanism; 21, first guide rail frame; 22, first track drive wheel; 23, second guide rail frame; 24, second track drive wheel; 25, telescopic device; 26, first sub-control box; 27, battery box; 28, installation frame; 3, storage component; 31, U-shaped frame; 32, first sprocket; 33, drive motor; 34, second sprocket; 35, chain; 36, installation rod; 37, mounting bracket; 38, rotating shaft; 39, fixed claw; 310, mounting seat; 311, first electric telescopic rod; 4, fault troubleshooting mechanism; 41, maintenance robot; 42, working robotic arm; 5, lifting mechanism; 51, robot chassis; 52, second sub-control box; 53, third guide rail frame; 54, roller seat; 55, support plate; 56, second electric telescopic rod; 57, fixed rod; 58, slot bracket; 59, fixing bracket; 510, third electric telescopic rod; 6, maintenance workbench; 7, main controller. Detailed implementation manners

[0016] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0017] Please refer to Figures 1-8 , the present invention provides a technical solution: an information platform operation and maintenance management platform, which is characterized by including: a user interface layer, an API gateway layer, a microservice layer, and an infrastructure layer; User interface layer, the user interface layer can provide Web and mobile interfaces, support users to access platform functions, and interact with the backend microservices through the API gateway; API Gateway Layer, which can provide a unified API gateway to manage the access and invocation of each microservice and implement access control and identity authentication; The microservice layer includes: a monitoring and alarm module, an automated operation and maintenance module, a configuration and log management module, a fault and security management module, and a data analysis and management module; Monitoring and Alarm Module, which can monitor the platform operation status in real time, collect performance metrics of the system, network, applications, and databases, detect anomalies and trigger alarms, and perform trend analysis based on historical data to predict potential faults. The monitoring and alarm module provides a visual dashboard to display monitoring data, and sends alarm notifications via email, SMS, or instant messaging tools according to preset alarm rules, and supports integration with third-party monitoring tools; Automated Operation and Maintenance Module, which can execute daily operation and maintenance tasks through automated tools and processes. The automated operation and maintenance module uses a workflow engine to manage processes, integrates robotic process automation tools to simulate manual operations, provides a script library, and supports the writing, testing, and deployment of scripts; Configuration and Log Management Module, which can manage the configuration information of the platform and applications to ensure the consistency and traceability of configurations, and collect, store, and analyze the log data of the platform and applications to help troubleshoot problems. The configuration and log management module supports version control and rollback of configurations, records the configuration change history, provides audit logs, implements a change approval process, and supports integration with configuration management tools; Fault and Security Management Module, which can generate fault reports, record the fault causes, handling processes, and recovery times. A fault troubleshooting device is set in the fault and security management module to quickly detect, locate, and solve platform faults, reducing downtime; Data Analysis and Management Module, which can manage the data collection, storage, and processing of the platform to ensure the integrity and availability of data, and can generate operation and maintenance reports, provide data analysis functions to help optimize operation and maintenance strategies, and generate system performance reports and operation and maintenance task reports. The data analysis and management module collects data from multiple data sources such as logs and monitoring data, cleans, transforms, and aggregates the data, stores the data using a distributed database, and backs up the data regularly to ensure data security; Infrastructure Layer, which can provide infrastructure support such as containerized deployment, distributed storage, message queues, and databases, and ensure the high availability, scalability, and stability of the platform.

[0018] As a preferred solution, furthermore, as Figure 2As shown in the figure, the fault troubleshooting device includes: a fixed guide rail 1, a feeding mechanism 2, a fault troubleshooting mechanism 4, a lifting mechanism 5, a maintenance workbench 6, and a main controller 7; there are two fixed guide rails 1, and the two fixed guide rails 1 are arranged parallel to each other in the front-back direction along the left-right direction; the feeding mechanism 2 is arranged at the inner bottom end of the fixed guide rail 1; the fault troubleshooting mechanism 4 is arranged below the fixed guide rail 1; the lifting mechanism 5 is arranged outside the fault troubleshooting mechanism 4; the maintenance workbench 6 is installed below the outside of the fixed guide rail 1; the main controller 7 is arranged on the top of the maintenance workbench 6, and a preset program is set inside the main controller 7, which can be controlled manually by the staff or automatically according to actual needs.

[0019] As a preferred solution, furthermore, as Figure 3 shown, the feeding mechanism 2 includes: a first guide rail frame 21, a first track driving wheel 22, a second guide rail frame 23, a second track driving wheel 24, a telescopic device 25, a first sub-control box 26, a battery box 27, a mounting frame 28, and a storage component 3; the first guide rail frame 21 is arranged below the fixed guide rail 1 in the front-back direction; the number of the first track driving wheels 22 is four, and the four first track driving wheels 22 are respectively installed at the four corners of the top end of the first guide rail frame 21. The left and right two first track driving wheels 22 on the front and back sides are respectively clamped inside the front and back two fixed guide rails 1. The second track driving wheel 24 is controlled by the first sub-control box 26, and the second track driving wheel 24 can move in the left-right direction inside the fixed guide rail 1; the second guide rail frame 23 is arranged below the first guide rail frame 21; the number of the second track driving wheels 24 is four, and the four second track driving wheels 24 are respectively installed at the four corners of the top end of the first guide rail frame 21. The left and right two second track driving wheels 24 on the front and back sides are respectively clamped at the front and back ends of the left and right sides inside the first guide rail frame 21. The second track driving wheel 24 is controlled by the first sub-control box 26, and the second track driving wheel 24 can move in the front-back direction inside the first guide rail frame 21; the telescopic device 25 is arranged inside the second guide rail frame 23 in the up-down direction; the first sub-control box 26 is installed on the right side of the second guide rail frame 23. The first sub-control box 26 is electrically connected to the first track driving wheel 22, the second track driving wheel 24, and the telescopic device 25. The first sub-control box 26 is remotely network-connected to the main controller 7, and the first sub-control box 26 is remotely controlled by the main controller 7 to start. A preset program is set inside the first sub-control box 26; the battery box 27 is installed on the left side of the second guide rail frame 23, and the battery box 27 is electrically connected to the first sub-control box 26; the mounting frame 28 is installed at the rear side of the telescopic end of the telescopic device 25, and the battery box 27 can supply power to the electrical components inside the feeding mechanism 2; the storage component 3 is arranged inside the mounting frame 28.

[0020] As a preferred solution, furthermore, as Figure 4 and Figure 5As shown in the figure, the storage component 3 includes: a U-shaped frame 31, a first sprocket 32, a drive motor 33, a second sprocket 34, a chain 35, a mounting rod 36, and a mounting bracket 37; the U-shaped frame 31 is arranged inside the mounting frame 28 in the vertical direction; the number of the first sprockets 32 is two, and the two first sprockets 32 are respectively installed on the left and right sides of the inner bottom end of the U-shaped frame 31 through shaft seats; the number of the drive motors 33 is two, and the two drive motors 33 are respectively installed on the top ends of the left and right sides of the U-shaped frame 31 through brackets. The drive motor 33 is electrically connected to the first sub-control box 26, and the drive motor 33 can be controlled by the first sub-control box 26 to drive the second sprocket 34 to rotate clockwise or counterclockwise; the number of the second sprockets 34 is two, and the two second sprockets 34 are respectively installed on the rotating ends of the left and right drive motors 33; the number of the chains 35 is two, and the two chains 35 are respectively meshed on the outer sides of the upper and lower second sprockets 34 and the first sprockets 32; the number of the mounting rods 36 is four, and the four mounting rods 36 are circumferentially installed inside the left and right chains 35 in the horizontal direction; the number of the mounting brackets 37 is four groups, and the number of each group of mounting brackets 37 is two. The four groups of mounting brackets 37 are respectively installed on the left and right sides of the four mounting rods 36; among them, a fixing unit is installed inside the four groups of mounting brackets 37, and the fixing unit includes: a rotating shaft 38, a fixing claw 39, a mounting seat 310, and a first electric telescopic rod 311; the number of the rotating shafts 38 is two, and the two rotating shafts 38 are respectively installed at the inner bottom ends of the left and right mounting brackets 37 in the front-rear direction through bearings, and the front and rear ends of the rotating shaft 38 extend out of the outer side of the mounting bracket 37; the number of the fixing claws 39 is two groups, and the number of each group of fixing claws 39 is two. The two groups are respectively installed at the front and rear ends of the left and right rotating shafts 38; one end of the mounting seat 310 is installed at the inner top of the right rear fixing claw 39 through a shaft seat; the first electric telescopic rod 311 is fixedly installed at the other end of the mounting seat 310, and the telescopic end of the first electric telescopic rod 311 is connected to the inner top of the left rear fixing claw 39 through a shaft seat. The first electric telescopic rod 311 is electrically connected to the first sub-control box 26, and the first electric telescopic rod 311 can be controlled by the first sub-control box 26 to extend and shorten. During the process of the first electric telescopic rod 311 extending and shortening itself, it can rotate in cooperation with the mounting seat 310.

[0021] As a preferred solution, further, as Figure 6As shown in the figure, the fault troubleshooting mechanism 4 includes: a maintenance robot 41 and a working robotic arm 42; the maintenance robot 41 is arranged below the fixed guide rail 1 and can be stored inside the storage component 3. The maintenance robot 41 is remotely network-connected to the main controller 7 and is remotely controlled by the main controller 7 to start. The maintenance robot 41 can perform mobile inspections along a predetermined route, and a control module is arranged inside the maintenance robot 41; the working robotic arm 42 is installed on the top of the maintenance robot 41, the working robotic arm 42 is electrically connected to the maintenance robot 41, the working robotic arm 42 is controlled by the maintenance robot 41, and an operation module or a detection module is installed on the working robotic arm 42 according to actual needs.

[0022] As a preferred solution, furthermore, as Figure 7 and Figure 8 shown in the figure, the lifting mechanism 5 includes: a robot chassis 51, a second sub-control box 52, a third guide rail frame 53, a roller seat 54, a support plate 55, a second electric telescopic rod 56, a fixed rod 57, a slot frame 58, a fixed frame 59 and a third electric telescopic rod 510; the robot chassis 51 is arranged outside the maintenance robot 41; the second sub-control box 52 is installed at the rear side of the robot chassis 51, the robot chassis 51 is electrically connected to the second sub-control box 52, the second sub-control box 52 is remotely network-connected to the main controller 7, the second sub-control box 52 is remotely controlled by the main controller 7 to start, and a preset program is arranged inside the second sub-control box 52; the third guide rail frame 53 is installed inside the robot chassis 51 in the up and down direction; the roller seat 54 is inserted inside the robot chassis 51 and can move up and down along the third guide rail frame 53; the support plate 55 is installed at the rear bottom end of the roller seat 54; the number of the second electric telescopic rods 56 is two, and the two second electric telescopic rods 56 are installed on the left and right sides at the inner top end of the third guide rail frame 53 in the up and down direction. The telescopic ends of the left and right second electric telescopic rods 56 are connected to the left and right bottom sides of the roller seat 54. The second electric telescopic rod 56 is electrically connected to the second sub-control box 52, and the second electric telescopic rod 56 is controlled by the second sub-control box 52 to extend and retract; the number of the fixed rods 57 is two, and the two fixed rods 57 are installed on the left and right sides at the middle part of the rear top end of the roller seat 54 in the front and rear direction; the slot frame 58 is installed at the rear bottom end of the fixed rod 57; the number of the fixed frames 59 is two, and the two fixed frames 59 are respectively inserted on the left and right sides of the slot frame 58. The shape of the fixed frame 59 is L-shaped; the number of the third electric telescopic rods 510 is two, and the two third electric telescopic rods 510 are respectively installed on the left and right sides of the slot frame 58. The telescopic ends of the left and right slot frames 58 are respectively fixedly connected to the inner sides of the left and right third electric telescopic rods 510. The third electric telescopic rod 510 is electrically connected to the second sub-control box 52, and the third electric telescopic rod 510 is controlled by the second sub-control box 52 to extend and retract.

[0023] The working principle is as follows: Step 1: The user interface layer, API gateway layer, and infrastructure layer complete the loading of hardware, operating system, and platform services. In the microservices layer, the monitoring and alarming module, automated operation and maintenance module, configuration and log management module, fault and security management module, and data analysis and management module are started and perform health checks to ensure normal operation. The monitoring and alarming module collects system performance data in real time, detects anomalies according to preset rules, and triggers alarms. The automated operation and maintenance module schedules and executes daily tasks and manages complex processes. The configuration and log management module centrally manages configuration files, supports version control, change auditing, and quick rollback. The log management module collects, stores, and analyzes log data to help troubleshoot problems and trigger alarms based on log content. The fault and security management module quickly detects, locates, and resolves system faults, generates fault reports for analysis. The data analysis and management module generates performance, operation and maintenance, and security reports based on the collected data, provides visual analysis and decision support, and stores and backs up the collected data to ensure data integrity and availability; Step 2: Before use, the staff place several fault troubleshooting mechanisms 4 inside the storage component 3, and control the main controller 7 to remotely start the first sub-control box 26. The pre-set program inside the first sub-control box 26 controls the start of the first track drive wheel 22, the second track drive wheel 24, the telescopic device 25, the drive motor 33, and the first electric telescopic rod 311. The first track drive wheel 22 moves along the inside of the fixed guide rail 1 to drive the first guide rail frame 21 to move to a specified position. The second track drive wheel 24 moves along the inside of the first guide rail frame 21 to drive the second guide rail frame 23 to move back and forth to a specified position. The telescopic device 25 drives the installation frame 28 to drive the storage component 3 to descend to a specified height position. The drive motors 33 on the left and right sides drive the corresponding second sprockets 34 to rotate, so that the left and right chains 35 move circumferentially under the action of the rotational force of the second sprockets 34 and under the limiting action of the first sprockets 32, and drive the corresponding mounting rods 36 to move circumferentially to the lower side inside the U-shaped frame 31. The first electric telescopic rod 311 extends to drive the rear corresponding fixed claw 39 to rotate outward. The rear fixed claw 39 drives the rotating shaft 38 to drive the front fixed claw 39 to rotate synchronously. The front and rear fixed claws 39 rotate outward to release the clamping and fixing of the maintenance robot 41. The staff control the main controller 7 to remotely start the maintenance robot 41. The maintenance robot 41 moves to a specified position according to a predetermined route. The pre-set program inside the maintenance robot 41 controls the start of the working robotic arm 42. The working robotic arm 42 performs fault detection and troubleshooting on the equipment at the specified position. When it is necessary for the fault troubleshooting mechanism 4 to move to a high position, the staff control the main controller 7 to remotely start the second sub-control box 52. The pre-set program inside the second sub-control box 52 controls the robot chassis 51, the second electric telescopic rod 56, and the third electric telescopic rod 510. The robot chassis 51 moves to a specified position according to a predetermined route. The second electric telescopic rod 56 extends to drive the roller seat 54 to descend to the ground position along the third guide rail frame 53. The maintenance robot 41 moves to the surface of the pallet 55. The third electric telescopic rods 510 on the left and right sides shorten to drive the fixed frames 59 to move inward in the inner cavity of the slot frame 58, so that the left and right fixed frames 59 clamp and fix both sides of the maintenance robot 41. The second electric telescopic rod 56 shortens to drive the roller seat 54 to drive the pallet 55 to lift the maintenance robot 41 to a specified height position.

[0024] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An information platform operation and maintenance management platform, characterized in that: include: User interface layer, API gateway layer, microservice layer, and infrastructure layer; User interface layer: The user interface layer can provide web and mobile interfaces; API gateway layer: The API gateway layer can provide a unified API gateway; The microservice layer includes: monitoring and alarm module, automated operation and maintenance module, configuration and log management module, fault and safety management module and data analysis management module; Monitoring and alarm module: the monitoring and alarm module can monitor the platform operation status in real time; Automated operation and maintenance module: The automated operation and maintenance module can perform daily operation and maintenance tasks through automated tools and processes; Configuration and log management module, which can manage the configuration information of the platform and applications; Fault and safety management module, which can generate fault reports, record fault causes, handling processes and recovery time. The fault and safety management module is equipped with a fault troubleshooting device that can quickly detect, locate and solve platform faults, reducing downtime; Data analysis and management module, which can manage the data collection, storage and processing of the platform; The infrastructure layer can provide infrastructure support such as containerized deployment, distributed storage, message queues, and databases; The fault troubleshooting device comprises: A fixed guide rail (1), wherein the number of the fixed guide rails (1) is two, and the two fixed guide rails (1) are arranged in parallel in a front-to-back direction along a left-right direction; A delivery mechanism (2) is arranged at the inner bottom end of the fixed guide rail (1); A fault troubleshooting mechanism (4) is arranged below the fixed guide rail (1); A lifting mechanism (5) is arranged outside the fault detection mechanism (4); A maintenance workbench (6) installed below the exterior of the fixed guide rail (1); A main controller (7) is arranged on the top of the maintenance workbench (6).

2. The information platform operation and maintenance management platform according to claim 1, characterized in that: The delivery mechanism (2) comprises: A first guide rail frame (21) is arranged below the fixed guide rail (1) along the front-rear direction; First track driving wheels (22), the number of the first track driving wheels (22) being four, the four first track driving wheels (22) being respectively mounted at the four corners of the top end of the first guide rail frame (21), and the two first track driving wheels (22) on the left and right sides of the front and rear sides being respectively clamped in the interior of the two front and rear fixed guide rails (1); A second guide rail frame (23) is arranged below the first guide rail frame (21); Second track driving wheels (24), the number of the second track driving wheels (24) being four, the four second track driving wheels (24) being respectively mounted at the four corners of the top end of the first guide rail frame (21), and the two second track driving wheels (24) on the left and right sides of the front and rear sides being respectively clamped at the front and rear ends of the left and right sides of the interior of the first guide rail frame (21); A telescopic device (25) arranged on the inner side of the second guide rail frame (23) in the up-down direction; a first sub-control box (26) installed on the right side of the second guide rail frame (23), the first sub-control box (26) being electrically connected to the first track driving wheel (22), the second track driving wheel (24) and the telescopic device (25), and the first sub-control box (26) being remotely connected to the main controller (7) via a network; A battery box (27) is installed on the left side of the second guide rail frame (23), and the battery box (27) is electrically connected to the first sub-control box (26); A mounting frame (28) mounted on the rear side of the telescopic end of the telescopic device (25); The storage component (3) is arranged on the inner side of the installation frame (28).

3. The information platform operation and maintenance management platform according to claim 2 is characterized by: The storage component (3) comprises: A U-shaped frame (31) disposed on the inner side of the mounting frame (28) in the up-down direction; A first sprocket (32), wherein the number of the first sprocket (32) is two, and the two first sprockets (32) are respectively mounted on the left and right sides of the inner bottom end of the U-shaped frame (31) via a rotating shaft seat; A driving motor (33), wherein the number of the driving motors (33) is two, and the two driving motors (33) are respectively mounted on the top ends of the left and right sides of the U-shaped frame (31) through brackets, and the driving motors (33) are electrically connected to the first sub-control box (26); A second sprocket (34), the number of the second sprocket (34) being two, and the two second sprockets (34) being respectively mounted on the rotating ends of the left and right driving motors (33); Chains (35), the number of the chains (35) being two, the two chains (35) being respectively meshed with the outer sides of the upper and lower second sprockets (34) and the first sprocket (32); Mounting rods (36), the number of the mounting rods (36) being four, and the four mounting rods (36) being mounted on the inner sides of the left and right chains (35) in a circumferential direction along the left-right direction; Mounting frames (37), the number of the mounting frames (37) being four groups, the number of the mounting frames (37) in each group being two, and the four groups of mounting frames (37) being respectively mounted on the left and right sides of four mounting rods (36); Wherein, fixing units are installed on the inner sides of the four groups of mounting frames (37).

4. The information platform operation and maintenance management platform according to claim 3 is characterized by: The fixing unit comprises: A rotating shaft (38), wherein the number of the rotating shafts (38) is two, and the two rotating shafts (38) are respectively mounted on the inner bottom ends of the left and right mounting frames (37) along the front-back direction through bearings, and the front and rear ends of the rotating shaft (38) extend out of the outer side of the mounting frame (37); Fixed claws (39), the number of the fixed claws (39) being two groups, the number of the fixed claws (39) in each group being two, and the two groups being respectively mounted on the front and rear ends of the left and right rotating shafts (38); A mounting seat (310), one end of which is mounted on the inner top of the right rear end fixing claw (39) through a rotating shaft seat; A first electric telescopic rod (311) is fixedly mounted on the other end of the mounting seat (310); the telescopic end of the first electric telescopic rod (311) is connected to the inner top of the left rear end fixing claw (39) via a rotating shaft seat; and the first electric telescopic rod (311) is electrically connected to the first sub-control box (26).

5. The information platform operation and maintenance management platform according to claim 4 is characterized by: The fault troubleshooting mechanism (4) comprises: A maintenance robot (41) is arranged below the fixed guide rail (1) and can be stored inside the storage component (3), and the maintenance robot (41) and the main controller (7) are remotely connected via a network; A working mechanical arm (42) is mounted on the top of the maintenance robot (41), and the working mechanical arm (42) and the maintenance robot (41) are electrically connected.

6. The information platform operation and maintenance management platform according to claim 5, characterized in that: The lifting mechanism (5) comprises: A robot chassis (51) arranged outside the maintenance robot (41); A second sub-control box (52) is installed on the rear side of the robot chassis (51), the robot chassis (51) and the second sub-control box (52) are electrically connected, and the second sub-control box (52) and the main controller (7) are remotely connected via a network; A third guide rail frame (53) is installed on the inner side of the robot chassis (51) along the up-down direction; A roller seat (54) inserted into the inner side of the robot chassis (51); A support plate (55) mounted on the rear bottom end of the roller seat (54); a second electric telescopic rod (56), the number of the second electric telescopic rod (56) being two, the two second electric telescopic rods (56) being mounted on the left and right sides of the inner top end of the third guide rail frame (53) in the up-down direction, the telescopic ends of the two left and right second electric telescopic rods (56) being connected to the left and right sides of the bottom end of the roller seat (54), and the second electric telescopic rod (56) being electrically connected to the second sub-control box (52); A fixing rod (57), wherein the number of the fixing rods (57) is two, and the two fixing rods (57) are installed on the left and right sides of the middle of the top end of the rear side of the roller seat (54) along the front-to-back direction; A slot frame (58) mounted on the rear side of the bottom end of the fixing rod (57); A fixing frame (59), wherein the number of the fixing frames (59) is two, and the two fixing frames (59) are respectively plugged into the left and right sides of the slot frame (58), and the shape of the fixing frames (59) is L-shaped; A third electric telescopic rod (510), the number of the third electric telescopic rods (510) is two, the two third electric telescopic rods (510) are respectively installed on the left and right sides of the slot frame (58), the telescopic ends of the left and right slot frames (58) are respectively fixedly connected to the inner sides of the left and right third electric telescopic rods (510), and the third electric telescopic rod (510) is electrically connected to the second sub-control box (52).

Citation Information

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