Intelligent risk dynamic monitoring analyzer
The intelligent risk dynamic monitoring and analysis instrument solves the problems of insufficient real-time performance and coverage of traditional monitoring methods, realizes accurate collection and flexible monitoring of key monitoring data, expands the monitoring scope, and improves the flexibility and adaptability of monitoring.
Patent Information
- Application Number
- CN202520536808.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-03-25
AI Technical Summary
Traditional risk monitoring methods rely on manual inspections and static data analysis, which suffer from poor real-time performance, narrow coverage, and low accuracy. In particular, single-point sensor systems for small and medium-sized enterprises cannot fully reflect the risk situation.
The system employs an intelligent risk dynamic monitoring and analysis instrument, which includes a sensor module, a data processing module, a communication module, a display and interaction module, a power supply module, and a drive module. The sensor module is installed at key monitoring points, the data processing module has a built-in data quality control mechanism, the communication module enables rapid data transmission, the display and interaction module provides a user interface, and the drive module can move the sensor module according to operation commands to expand the monitoring range.
It enables targeted collection of key monitoring data, ensuring data accuracy and reliability, provides flexible adjustment of monitoring locations, enhances the flexibility and adaptability of monitoring, increases the monitoring range and coverage, and facilitates user operation and management.
Smart Images

Figure CN223910296U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of monitoring, and in particular to an intelligent risk dynamic monitoring analyzer. BACKGROUND
[0002] With the acceleration of industrialization and urbanization, various potential risks such as environmental pollution, equipment failure and natural disasters are increasing. Traditional risk monitoring methods mainly rely on manual inspection and static data analysis, which have the problems of poor real-time performance, narrow coverage and low accuracy. In recent years, with the development of sensor technology, Internet of Things technology and big data analysis technology, dynamic risk monitoring has gradually become a research hotspot. These technologies can realize real-time monitoring and prediction of risks, but how to effectively integrate multi-source data and improve the accuracy of analysis is still a challenge.
[0003] In related technologies, common risk monitoring methods include local monitoring systems based on single-point sensors, wide-area monitoring systems based on satellite remote sensing and risk prediction models based on big data analysis. For some small and medium-sized enterprises, a local monitoring system based on single-point sensors is usually used. Although the single-point sensor system has the advantages of low cost and flexible deployment, its coverage is limited and it is difficult to fully reflect the risk situation. CONTENT OF THE UTILITY MODEL
[0004] In order to expand the detection range of the sensor, the application provides an intelligent risk dynamic monitoring analyzer, which adopts the following technical solutions:
[0005] An intelligent risk dynamic monitoring analyzer comprises:
[0006] A sensor module is installed at a key monitoring point and is used to collect monitoring data of the key monitoring point.
[0007] A data processing module is internally provided with a data quality control mechanism and is used to process the monitoring data to ensure the accuracy of the monitoring data.
[0008] A communication module is used to send the processed monitoring data.
[0009] A display and interaction module is used to display the monitoring data and provide a user operation interface.
[0010] A power module is used to supply power to each module.
[0011] A driving module is used to drive the movement of the sensor module according to the operation instructions input by the user through the display and interaction module.
[0012] By adopting the above technical solutions, the sensor module is installed at the key monitoring point, can collect key monitoring data in a targeted manner, ensures that the most valuable and representative information is obtained, and provides a reliable basis for subsequent analysis. The data quality control mechanism built-in the data processing module can process the collected monitoring data, timely find the abnormalities in the data, and ensure the accuracy and reliability of the data, providing more effective support for decision-making. The communication module can timely send the processed monitoring data, realizing the rapid transmission of data, facilitating relevant personnel or system to timely obtain information and make a response. The display and interaction module can not only visually display the monitoring data, but also provides a user operation interface, facilitating users to operate and manage the system, and enhancing the interactivity and convenience between the users and the system. The power module provides stable power support for each module, ensuring that the entire system can continuously and stably operate. The driving module can drive the sensor module to move according to the operation instruction, which enables the system to flexibly adjust the monitoring position according to the actual demand, expands the monitoring range, and improves the flexibility and adaptability of the monitoring, and can better cope with different monitoring scenes and demands.
[0013] Optionally, the intelligent risk dynamic monitoring analyzer further comprises:
[0014] a data storage module configured to store the processed monitoring data.
[0015] By adopting the above technical solutions, the local storage of the monitoring data is facilitated.
[0016] Optionally, the driving module comprises:
[0017] a guide rail installed at the key monitoring point;
[0018] a driving plate slidably connected to the guide rail, and the sensor module is installed on the driving plate;
[0019] a driving assembly configured to intermittently or continuously drive the movement of the driving plate according to the operation instruction.
[0020] Optionally, the driving assembly comprises:
[0021] a driving motor installed on the guide rail;
[0022] a driving rack installed on the driving plate;
[0023] a continuous gear capable of engaging with the driving rack, and the driving motor is configured to drive the rotation of the continuous gear;
[0024] an intermittent gear engaging with the driving rack;
[0025] Switching component, the driving motor drives the intermittent gear to drive rotation and drives the continuous gear to move through the switching component; when the continuous gear is engaged with the driving rack, the intermittent gear is driven to rotate.
[0026] By adopting the above technical scheme, when the driving motor drives the intermittent gear to drive rotation, the continuous gear is disengaged from the driving rack, and the intermittent gear drives the intermittent gear to move, thereby meeting the operation instruction of multi-point collection of monitoring data; when the switching component is actuated to engage the continuous gear with the driving rack, the intermittent gear is driven to rotate, and at this time, the continuous gear drives the driving rack to move, thereby meeting the operation instruction of fixed-point collection of monitoring data.
[0027] Optionally, the switching component comprises:
[0028] Sliding iron column, installed on the rotating shaft through spline, one end of the rotating shaft is rotatably connected to the guide rail, and the other end is coaxially fixedly connected with the output shaft of the driving motor; the continuous gear is coaxially fixedly connected to the sliding iron column; the intermittent gear is rotatably connected to the guide rail through a rotating shaft;
[0029] Auxiliary gear, coaxially fixedly connected to the intermittent gear;
[0030] Intermittent wheel, coaxially fixedly connected to the sliding iron column, and provided with a local rack, the local rack can be engaged with the auxiliary gear;
[0031] Sliding part, installed on the rotating shaft, for driving the sliding iron column to reciprocatingly slide.
[0032] By adopting the above technical scheme, the sliding part drives the sliding iron column to move, so that the continuous gear can be engaged with or disengaged from the driving rack; when the continuous gear is engaged with the driving rack, the local rack on the intermittent wheel is disengaged from the auxiliary gear; when the continuous gear is disengaged from the driving rack, the local rack on the intermittent wheel can be engaged with the auxiliary gear.
[0033] Optionally, the sliding part comprises:
[0034] Continuous electromagnet, coaxially installed on one end of the rotating shaft away from the intermittent wheel, for attracting one end of the sliding iron column;
[0035] Intermittent electromagnet, coaxially installed on one end of the rotating shaft close to the intermittent wheel, for attracting the other end of the sliding iron column; when the intermittent electromagnet is energized, the continuous electromagnet is de-energized.
[0036] By adopting the technical scheme, the intermittent electromagnet is powered on to attract the sliding iron column, at this time the continuous electromagnet is powered off, and the continuous gear is engaged with the driving rack; the continuous electromagnet is powered on to attract the sliding iron column, at this time the intermittent electromagnet is powered off, and the continuous gear is disengaged from the driving rack.
[0037] In summary, the present application has at least the following benefits:
[0038] The sensor module is installed at key monitoring points, enabling targeted collection of key monitoring data to ensure that the most valuable and representative information is obtained, providing a reliable foundation for subsequent analysis. The data quality control mechanism built into the data processing module can process the collected monitoring data, promptly identify anomalies in the data, and ensure the accuracy and reliability of the data, providing more effective support for decision-making. The communication module can send the processed monitoring data in a timely manner, enabling rapid data transmission and facilitating timely information acquisition by relevant personnel or systems. The display and interaction module not only visually displays monitoring data but also provides a user interface for easy operation and management of the system, enhancing the interactivity and convenience between users and the system. The power module provides stable power support for each module, ensuring the continuous and stable operation of the entire system. The drive module can move the sensor module according to operation instructions, allowing the system to flexibly adjust the monitoring position according to actual needs, expanding the monitoring range and improving the flexibility and adaptability of monitoring, better meeting different monitoring scenarios and needs. BRIEF DESCRIPTION OF DRAWINGS
[0039] Figure 1 is a structural diagram of the present application;
[0040] Figure 2 is a structural diagram of the drive module;
[0041] Figure 3 is a structural diagram of the drive module after hiding the guide rail and drive board.
[0042] BRIEF DESCRIPTION OF DRAWINGS: 101, sensor module; 102, data processing module; 103, communication module; 104, display and interaction module; 105, power module; 106, data storage module; 200, drive module; 210, guide rail; 220, drive board; 230, drive assembly; 231, drive motor; 232, driving rack; 233, continuous gear; 234, intermittent gear; 235, switching component; 2351, sliding iron column; 2352, rotating shaft; 2353, auxiliary gear; 2354, intermittent wheel; 2355, sliding part; 2356, continuous electromagnet; 2357, intermittent electromagnet. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the following will combine the drawings in the embodiments of the utility model to make a clear and complete description of the technical scheme in the embodiments of the utility model. Figure 1 -Appendix Figure 3 , it is obvious that the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled person in the art without creative labor belong to the scope of protection of the utility model.
[0044] The embodiments of the application disclose a kind of intelligent risk dynamic monitoring analyzers. Refer to Figure 1 The intelligent risk dynamic monitoring analyzer can include sensor module 101, data processing module 102, communication module 103, display and interaction module 104, power module 105, data storage module 106 and drive module 200.
[0045] Among them, sensor module 101 is installed in key monitoring point, for collecting the monitoring data of key monitoring point;Sensor module 101 can include temperature sensor, humidity sensor, displacement sensor, acceleration sensor and so on each type sensor, specifically can select corresponding sensor according to the monitoring demand of user.
[0046] Data processing module 102 can adopt microprocessor, built-in data quality control mechanism, can communicate with sensor module 101 in wired or wireless mode, to process monitoring data, filter abnormal data, to ensure the accuracy of monitoring data.
[0047] Communication module 103 adopts wireless communication chip, ESP32-WROOM-32E, supports dual-core CPU, integrates Wi-Fi and Bluetooth function, for sending the monitoring data processed to cloud server or background.
[0048] Display and interaction module 104 adopts display screen with voice and touch function, can provide user operation interface, facilitate the operation of user, and for displaying monitoring data.
[0049] Power module 105 can adopt lithium ion polymer battery, nominal voltage 3.7V, capacity 5000mAh, for each module power supply.
[0050] Data storage module 106, for storing monitoring data processed, can adopt NAND Flash, capacity 1GB, supports fast read-write operation.
[0051] Working process: Each sensor collects data at a preset time interval and sends the data to the data processing module 102. The data processing module 102 performs preliminary processing on the received data, such as filtering, correction, etc., and then stores it in the data storage module 106. The data processing module 102 checks the validity and integrity of the data through the data quality control mechanism, and eliminates abnormal values. The communication module 103 uploads the processed data to the cloud server for further analysis and display. Users can view real-time data and historical records through the display and interaction module 104, and receive warning information. After the user inputs an operation instruction through the display and interaction module 104, the data processing module 102 can drive the movement of the sensor module 101 according to the operation instruction.
[0052] Further, referring to Figure 2 , the driving module 200 can include a guide rail 210, a driving plate 220, and a driving assembly 230. The guide rail 210 is installed at the key monitoring point, the driving plate 220 is slidingly connected to the guide rail 210, and the sensor module 101 is installed on the driving plate 220. The driving assembly 230 is used to intermittently or continuously drive the movement of the driving plate 220.
[0053] The driving assembly 230 can include a driving motor 231, a driving rack 232, a continuous gear 233, an intermittent gear 234, and a switching component 235. The driving motor 231 is installed on the guide rail 210 through a bracket, and the driving rack 232 is fixedly connected to the driving plate 220. The continuous gear 233 can engage with the driving rack 232, and the driving motor 231 is used to drive the rotation of the continuous gear 233. The intermittent gear 234 engages with the driving rack 232, and the driving motor 231 drives the switching between the driving and driven rotation of the intermittent gear 234 through the switching component 235, as well as the movement of the continuous gear 233.
[0054] Referring to Figure 3The switching component 235 can include a sliding iron column 2351, a rotating shaft 2352, an auxiliary gear 2353, an intermittent wheel 2354, and a sliding part 2355. The sliding iron column 2351 is installed on the rotating shaft 2352 by means of a spline, and can rotate when the rotating shaft 2352 rotates. In addition, the sliding iron column 2351 can also slide on the rotating shaft 2352. One end of the rotating shaft 2352 is rotatably connected to the guide rail 210, and the other end is coaxially fixedly connected to the output shaft of the driving motor 231. The continuous gear 233 is coaxially fixedly connected to the sliding iron column 2351, and the intermittent gear 234 is rotatably connected to the guide rail 210 by means of a rotating shaft. The auxiliary gear 2353 is coaxially fixedly connected to the intermittent gear 234, and the intermittent wheel 2354 is coaxially fixedly connected to the sliding iron column 2351 and is provided with a partial rack that can engage with the auxiliary gear 2353. The sliding part 2355 is installed on the rotating shaft 2352 and is used to drive the reciprocating sliding of the sliding iron column 2351.
[0055] The sliding part 2355 can include a continuous electromagnet 2356 and an intermittent electromagnet 2357. The continuous electromagnet 2356 is coaxially installed on one end of the rotating shaft 2352 away from the intermittent wheel 2354, and is used to attract one end of the sliding iron column 2351. The intermittent electromagnet 2357 is coaxially installed on one end of the rotating shaft 2352 close to the intermittent wheel 2354, and is used to attract the other end of the sliding iron column 2351. When the intermittent electromagnet 2357 is energized, the continuous electromagnet 2356 is de-energized.
[0056] A working process is as follows: when the operation instruction indicates that the monitoring data is collected at a fixed point, the data processing module 102 issues a de-energization instruction to the continuous electromagnet 2356 and an energization instruction to the intermittent electromagnet 2357, the continuous electromagnet 2356 is de-energized, the intermittent electromagnet 2357 is energized, the sliding iron column 2351 drives the continuous gear 233 to move, so that the continuous gear 233 engages with the driving rack 232, and the partial rack on the intermittent wheel 2354 is separated from the auxiliary gear 2353; then a start instruction is issued to the driving motor 231, the driving motor 231 drives the rotation of the rotating shaft 2352, the continuous gear 233 drives the movement of the driving rack 232, and the intermittent gear 234 is driven to rotate; after the start time is reached, the driving motor 231 stops, so that the driving rack 232 drives the sensor module 101 to move to the position.
[0057] The above are preferred embodiments of the present application, and do not limit the protection scope of the present application. Any feature disclosed in the specification (including the abstract and the drawings) can be replaced by other equivalent or similar features, unless specifically described. That is, each feature is only an example of a series of equivalent or similar features, unless specifically described.
Claims
1. An intelligent risk dynamic monitoring analyzer, characterized in that, The application relates to an intelligent risk dynamic monitoring analyzer. The application comprises: a sensor module (101) installed at a key monitoring point for collecting monitoring data of the key monitoring point; a data processing module (102) with a data quality control mechanism for processing the monitoring data to ensure the accuracy of the monitoring data; a communication module (103) for transmitting the processed monitoring data; a display and interaction module (104) for displaying the monitoring data and providing a user operation interface; a power module (105) for supplying power to each module; 2. The intelligent risk dynamic monitoring analyzer according to claim 1, wherein, a driving module (200) for driving the movement of the sensor module (101) according to an operation instruction input by a user through the display and interaction module (104). The intelligent risk dynamic monitoring analyzer further comprises:
3. The intelligent risk dynamic monitoring analyzer according to claim 1, wherein, a data storage module (106) for storing the processed monitoring data. The driving module (200) comprises: a guide rail (210) installed at the key monitoring point; a driving plate (220) slidably connected to the guide rail (210), wherein the sensor module (101) is installed on the driving plate (220); 4. The intelligent risk dynamic monitoring analyzer according to claim 3, characterized in that, a driving assembly (230) for intermittently or continuously driving the movement of the driving plate (220) according to the operation instruction. The driving assembly (230) comprises: a driving motor (231) installed on the guide rail (210); a driving rack (232) installed on the driving plate (220); a continuous gear (233) capable of meshing with the driving rack (232), wherein the driving motor (231) is used for driving the rotation of the continuous gear (233); an intermittent gear (234) meshing with the driving rack (232); 5. The intelligent risk dynamic monitoring analyzer according to claim 4, wherein, a switching component (235), wherein the driving motor (231) drives the active rotation of the intermittent gear (234) and the movement of the continuous gear (233) through the switching component (235); and when the continuous gear (233) meshes with the driving rack (232), the intermittent gear (234) rotates passively. The switching component (235) comprises: a sliding iron column (2351) installed on a rotating shaft (2352) through a spline, wherein one end of the rotating shaft (2352) is rotationally connected to the guide rail (210), and the other end is coaxially fixedly connected to an output shaft of the driving motor (231); the continuous gear (233) is coaxially fixedly connected to the sliding iron column (2351); and the intermittent gear (234) is rotationally connected to the guide rail (210) through a rotating shaft; an auxiliary gear (2353) coaxially fixedly connected to the intermittent gear (234); an intermittent wheel (2354) coaxially fixedly connected to the sliding iron column (2351) and provided with a local rack, wherein the local rack can mesh with the auxiliary gear (2353); 6. The intelligent risk dynamic monitoring analyzer according to claim 5, wherein, a sliding part (2355) installed on the rotating shaft (2352) and used for driving the reciprocating sliding of the sliding iron column (2351). The sliding part (2355) comprises: A continuous electromagnet (2356) is coaxially installed at one end of the rotating shaft (2352) away from the intermittent wheel (2354) for attracting one end of the sliding iron column (2351); An intermittent electromagnet (2357) is coaxially installed at one end of the rotating shaft (2352) close to the intermittent wheel (2354) for attracting the other end of the sliding iron column (2351); when the intermittent electromagnet (2357) is powered, the continuous electromagnet (2356) is powered off.