Environment monitoring system and environment monitoring method
Through the combination of multi-level adjustment components and deep learning models, the problem of limited monitoring range of traditional environmental monitoring equipment is solved, and comprehensive environmental monitoring and timely early warning are achieved, which improves user experience and monitoring efficiency.
Patent Information
- Application Number
- CN202510763783.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-09
- Publication Date
- 2025-07-08
AI Technical Summary
The monitoring range of traditional environmental monitoring equipment is limited, and the environmental conditions of the entire computer room cannot be obtained in real time, which affects the user experience.
An environmental monitoring system is provided, including a mounting base, a first adjustment component, a second adjustment component, an angle adjustment component and a monitoring component, which is adjusted in three-dimensional space through multi-level adjustment components, covers a wider monitoring area, and conducts real-time analysis and prediction through data processing modules and deep learning models.
It has achieved wider monitoring coverage, which can accurately align potential risk sources, provide accurate monitoring data, reduce the possibility of accidents, and ensure timely detection and prevention of environmental status in the computer room.
Smart Images

Figure CN120274831A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of environmental monitoring, and particularly to an environmental monitoring system and an environmental monitoring method. Background Art
[0002] Currently, in the management practice of data centers and server rooms, environmental monitoring devices play a crucial role. Traditional environmental monitoring devices usually adopt a fixed design, that is, the detection device is fixedly installed at a specific position in the computer room.
[0003] However, the above setting results in a limited monitoring range of the monitoring device, which can only measure the environmental parameters of the area where it is located and cannot obtain the environmental conditions of the entire computer room in real time, affecting not only the monitoring efficiency of the monitoring device but also the user experience. Summary of the Invention
[0004] This application provides an environmental monitoring system and an environmental monitoring method to at least solve the problem that the limited monitoring range of environmental monitoring devices in related technologies affects the user experience.
[0005] To achieve the above object, according to one aspect of the present invention, an environmental monitoring system is provided, including: a mounting base; a first adjustment component, including a first adjustment part, the first adjustment part is movably arranged on the mounting base along a first direction; a second adjustment component, including a second adjustment part, the second adjustment part is movably arranged on the first adjustment part along a second direction; the first direction and the second direction are arranged at an included angle; an angle adjustment component, including a third adjustment part, the third adjustment part is rotatably arranged on the second adjustment part; a monitoring component, the monitoring component is arranged on the third adjustment part to monitor environmental parameters in the environment where it is located, and the environmental parameters include at least one of a smoke value, a water level value, a gas concentration value, a noise value, and an image brightness change; a control module, the control module is electrically connected to the first adjustment component, the second adjustment component, and the angle adjustment component respectively to control the operating state and / or operating parameters of the first adjustment component, the second adjustment component, and the angle adjustment component; a data processing module, the data processing module is electrically connected to the monitoring component to process in real time the environmental parameters obtained by the monitoring component and convert the environmental parameters into analyzable environmental state information for analysis and training by a deep learning model, and further predict the change of future environmental parameters.
[0006] Further, the angle adjustment component further includes: a first mounting bracket, which is arranged on the second adjustment part in a liftable manner; a first driving device, which is arranged on the first mounting bracket; a transmission component, the first driving device drives the third adjustment part to rotate through the transmission component to drive the monitoring component to rotate synchronously.
[0007] Further, the transmission assembly includes a worm wheel and a worm that cooperate with each other, and the drive shaft of the first drive device drives the worm to rotate; the third adjustment part includes: a connecting shaft rotatably arranged on the first mounting bracket, the connecting shaft is connected to the worm wheel and rotates synchronously, and the connecting shaft is coaxially arranged with the worm wheel; a first connecting block arranged on the connecting shaft and rotating synchronously with the connecting shaft, and the monitoring assembly is arranged on the first connecting block.
[0008] Further, the first adjustment assembly further includes: a second drive device arranged on the mounting seat; a driving wheel rotatably arranged on the mounting seat, and the driving wheel is drivingly connected to the drive shaft of the second drive device; a driven wheel rotatably arranged on the mounting seat; a traction structure sleeved on the driving wheel and the driven wheel, and the first adjustment part is arranged on the traction structure and moves synchronously with the traction structure.
[0009] Further, the second adjustment assembly further includes: a mounting plate group connected to the first adjustment part; a driving cylinder arranged on the mounting plate group, and the piston part of the driving cylinder is drivingly connected to the second adjustment part; a first guide rod arranged on the mounting plate group, and the piston part is slidably sleeved on the first guide rod to slide along the extending direction of the first guide rod; the first guide rod extends along a second direction.
[0010] Further, the second adjustment part is plate-shaped, and the second adjustment assembly further includes: a sleeve arranged on the second adjustment part; a second guide rod arranged on the mounting plate group, and the sleeve is sleeved on the second guide rod; wherein, the first guide rod and the second guide rod are arranged parallel to each other; and / or, an insulating layer is arranged on the outer peripheral surface of the first guide rod and / or the second guide rod.
[0011] Further, the first mounting bracket includes a connecting assembly, and the second adjustment part is connected to the third adjustment part through the connecting assembly. The connecting assembly includes: a second connecting block; a connecting rod, one end of the connecting rod is connected to the second adjustment part, and the other end of the connecting rod is telescopically connected to the second connecting block; a plate body assembly arranged on the second connecting block, the plate body assembly includes a third plate body and a fourth plate body that are butted against each other, and an installation cavity is formed around between the third plate body and the fourth plate body, and the transmission assembly is located in the installation cavity; through holes are arranged on both the third plate body and the fourth plate body, and the connecting shaft passes through the through holes; wherein, the connecting assembly is one; or, the connecting assembly is multiple, and multiple connecting assemblies are arranged at intervals along the extending direction of the connecting shaft.
[0012] According to another aspect of the present invention, an environmental monitoring method is provided, which is applicable to the above-mentioned environmental monitoring system. The environmental monitoring method includes: Step S1: Real-time monitor environmental parameters in the environment where it is located through the monitoring components of the environmental monitoring system; Step S2: Real-time process the environmental parameters obtained by the monitoring components through the data processing module of the environmental monitoring system, and convert the environmental parameters into analyzable environmental status information for analysis and training by a deep learning model, so as to predict the changes of future environmental parameters; Step S3: Based on the environmental status information, divide the environment where it is located into regions according to the severity of environmental changes, and adjust the control parameters of the control module for the first adjustment component, the second adjustment component, and the angle adjustment component according to the division result.
[0013] Further, the environmental monitoring method further includes Step S20 located between Step S2 and Step S3: Compare the prediction result of the deep learning model with the real-time monitoring value of the monitoring component to obtain the prediction error value of the deep learning model, and then adjust the training parameters of the deep learning model through the monitoring error correction module to limit the prediction error value within a preset error range.
[0014] Further, the second driving device of the first adjustment component is a first motor, and the first driving device of the angle adjustment component is a second motor; in Step S3, the method for adjusting the control parameters of the control module for the first adjustment component, the second adjustment component, and the angle adjustment component according to the division result includes: Establish a positive correlation relationship between the severity of environmental changes and the rotation speed of the first motor, the rotation speed of the second motor, and the response time of the driving cylinder of the second adjustment component.
[0015] Applying the technical solution of the present application, through the settings of the first adjustment component, the second adjustment component, and the angle adjustment component, the monitoring component can be adjusted in a three-dimensional space to cover a wider monitoring area, thereby solving the problem in the related art that the monitoring range of environmental monitoring equipment is limited and affects the user experience, and improving the user experience. At the same time, through the multi-stage adjustment component, the monitoring component can accurately align with potential risk sources, such as areas where smoke, waterlogging, gas leakage, noise, and image brightness changes occur, respond in a timely manner and provide accurate monitoring data, which helps to reduce the possibility and severity of accidents. At the same time, the monitoring component can detect various types of environmental parameters such as smoke value, water level value, gas concentration value, noise value, and image brightness change, which ensures that the system can comprehensively monitor various environmental factors in the computer room, provide a detailed environmental status report, and is conducive to timely discovering potential problems and taking preventive measures in advance. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] To more clearly illustrate the embodiments of the present application, the following will briefly introduce the drawings required in the embodiments. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0017] Figure 1 Schematic three-dimensional structure diagram of the environmental monitoring system provided by the embodiment of the present application;
[0018] Figure 2 Shows Figure 1 Enlarged schematic diagram of part A of the environmental monitoring system in
[0019] Figure 3 Shows Figure 1 Another three-dimensional structure diagram of the environmental monitoring system in
[0020] Figure 4 Shows Figure 3 Enlarged schematic diagram of part B of the environmental monitoring system in
[0021] Figure 5 Shows Figure 3 Enlarged schematic diagram of part C of the environmental monitoring system in
[0022] Figure 6 Shows Figure 3 Enlarged schematic diagram of part D of the environmental monitoring system in
[0023] Figure 7 Shows Figure 1 Partial enlarged view of the first adjustment component of the environmental monitoring system in
[0024] Figure 8 Shows Figure 1 Partial enlarged view of the second adjustment component and the angle adjustment component of the environmental monitoring system in
[0025] Figure 9 Shows Figure 8 Enlarged schematic diagram of part E of the environmental monitoring system in
[0026] Among them, the above-mentioned drawings include the following reference numerals:
[0027] 10. Mounting base; 11. Guide rail; 12. Cross beam;
[0028] 20. First adjustment component; 21. First adjustment part; 211. Mounting plate; 212. Sliding structure; 2121. First plate body; 2122. Second plate body; 22. Second driving device; 23. Driving wheel; 24. Driven wheel; 25. Traction structure;
[0029] 30. Second adjustment component; 31. Second adjustment part; 32. Mounting plate group; 321. Fifth plate body; 322. Sixth plate body; 33. Driving cylinder; 34. First guide rod; 35. Sleeve body; 36. Second guide rod;
[0030] 40. Angle adjustment component; 41. Third adjustment part; 411. Connecting shaft; 412. First connecting block; 42. First mounting bracket; 420. Connecting component; 421. Second connecting block; 422. Connecting rod; 423. Plate body component; 4231. Third plate body; 4232. Fourth plate body; 43. First driving device; 44. Worm gear; 45. Worm;
[0031] 50. Monitoring component; 51. Detection device. Detailed implementation mode
[0032] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present application.
[0033] It should be noted that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present application. The terms "mounted", "connected", "coupled" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. The terms "parallel", "perpendicular", "equal" include the described situations and situations similar to the described situations, and the range of the similar situations is within the acceptable deviation range, where the acceptable deviation range is determined by those of ordinary skill in the art considering the measurements being discussed and the errors associated with the measurements of specific quantities (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallelism and approximate parallelism, where the acceptable deviation range for approximate parallelism can be, for example, within 5° deviation; "perpendicular" includes absolute perpendicularity and approximate perpendicularity, where the acceptable deviation range for approximate perpendicularity can also be, for example, within 5° deviation. "Equal" includes absolute equality and approximate equality, where the acceptable deviation range for approximate equality can be, for example, that the difference between the two equal ones is less than or equal to 5% of either one. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.
[0034] In order to enable those skilled in the art of the present technology to better understand the solution of the present application, the present application will be further described in detail below with reference to the drawings and specific embodiments.
[0035] In order to solve the problem that the monitoring range of environmental monitoring equipment in the related art is limited and affects the user experience, the present application provides an environmental monitoring system and an environmental monitoring method.
[0036] As Figures 1 to 9As shown in the figure, the present application provides an environmental monitoring system, including a mounting base 10, a first adjustment component 20, a second adjustment component 30, an angle adjustment component 40, a monitoring component 50, a control module, and a data processing module. Among them, the first adjustment component 20 includes a first adjustment part 21, and the first adjustment part 21 is movably arranged on the mounting base 10 along a first direction. The second adjustment component 30 includes a second adjustment part 31, and the second adjustment part 31 is movably arranged on the first adjustment part 21 along a second direction; the first direction and the second direction are arranged at an included angle. The angle adjustment component 40 includes a third adjustment part 41, and the third adjustment part 41 is rotatably arranged on the second adjustment part 31. The monitoring component 50 is arranged on the third adjustment part 41 to monitor environmental parameters in the surrounding environment, and the environmental parameters include at least one of a smoke value, a water level value, a gas concentration value, a noise value, and an image brightness change. The control module is electrically connected to the first adjustment component 20, the second adjustment component 30, and the angle adjustment component 40 to control the operating states and / or operating parameters of the first adjustment component 20, the second adjustment component 30, and the angle adjustment component 40. The data processing module is electrically connected to the monitoring component 50 to process in real time the environmental parameters obtained by the monitoring component 50 and convert the environmental parameters into analyzable environmental state information for analysis and training by a deep learning model, so as to predict changes in future environmental parameters.
[0037] Applying the technical solution of this embodiment, through the settings of the first adjustment component 20, the second adjustment component 30, and the angle adjustment component 40, the monitoring component 50 can be adjusted in a three-dimensional space to cover a wider monitoring area, thereby solving the problem in the related art that the monitoring range of environmental monitoring equipment is limited and affecting the user experience, and improving the user experience. At the same time, through the multi-stage adjustment component, the monitoring component 50 can accurately align with potential risk sources, such as areas where smoke, waterlogging, gas leakage, noise, and image brightness changes occur, respond in a timely manner and provide accurate monitoring data, which helps to reduce the possibility and severity of accidents. At the same time, the monitoring component 50 can detect various types of environmental parameters such as smoke value, water level value, gas concentration value, noise value, and image brightness change, which ensures that the system can comprehensively monitor various environmental factors in the computer room, provide a detailed environmental state report, and is conducive to timely discovering potential problems and taking preventive measures in advance.
[0038] Optionally, the first direction and the second direction are perpendicularly arranged. Specifically, the first direction is the X direction, and the second direction is the Y direction.
[0039] In this embodiment, the monitoring component 50 is used to monitor the smoke value, water level value, and gas concentration value in the surrounding environment.
[0040] Such as Figure 2 、 Figure 5 AndFigure 9 As shown, the angle adjustment assembly 40 further includes a first mounting bracket 42, a first driving device 43, and a transmission assembly. The first mounting bracket 42 is vertically adjustable on the second adjustment portion 31. The first driving device 43 is disposed on the first mounting bracket 42. The first driving device 43 drives the third adjustment portion 41 to rotate through the transmission assembly, so as to drive the monitoring assembly 50 to rotate synchronously. In this way, the combination of the first driving device 43 and the transmission assembly enables the third adjustment portion 41 to be driven to achieve automatic angle adjustment. This means that the monitoring assembly 50 can automatically adjust its monitoring angle according to a preset program or real-time feedback without manual intervention, improving the automation level and monitoring efficiency of the system. At the same time, the adjustability of the angle and height enables the monitoring assembly 50 to adapt to more diverse monitoring requirements, including but not limited to the monitoring of different parameters such as smoke value, water level value, gas concentration value, etc. Users can select appropriate sensors according to specific situations and install them on the monitoring assembly 50, and achieve more effective monitoring by adjusting its position and angle.
[0041] In this embodiment, the first mounting bracket 42 is vertically adjustable on the second adjustment portion 31, allowing the position adjustment of the monitoring assembly 50 in the vertical direction, which not only increases the flexibility of the monitoring assembly 50, but also enables it to monitor environmental parameters at different heights. Especially in the computer room environment, the air flow, temperature distribution, and pollution conditions at different heights may vary. The height flexibility ensures more comprehensive and accurate monitoring. At the same time, through the drive of the first driving device 43, the third adjustment portion 41 can accurately rotate to a specified angle, thereby driving the monitoring assembly 50 to achieve precise positioning.
[0042] As Figure 9 shown, the transmission assembly includes a mutually engaged worm gear 44 and a worm 45. The drive shaft of the first driving device 43 drives the worm 45 to rotate. The third adjustment portion 41 includes a connecting shaft 411 and a first connecting block 412. Among them, the connecting shaft 411 is rotatably disposed on the first mounting bracket 42. The connecting shaft 411 is connected to the worm gear 44 and rotates synchronously. The connecting shaft 411 and the worm gear 44 are coaxially disposed. The first connecting block 412 is disposed on the connecting shaft 411 and rotates synchronously with the connecting shaft 411. The monitoring assembly 50 is disposed on the first connecting block 412. In this way, the worm and worm gear mechanism has a strong self-locking characteristic. The drive shaft of the first driving device 43 directly drives the worm 45 to rotate, and the worm 45 then meshes with the worm gear 44. This transmission method can accurately control the rotation angle of the third adjustment portion 41, and further achieve precise positioning of the monitoring assembly 50, ensuring the accuracy and effectiveness of the monitoring data. At the same time, the worm and worm gear transmission provides a smooth and low-noise rotational movement.
[0043] In this embodiment, the worm and worm gear drive has a high torque transmission efficiency. The rotational torque generated by the first driving device 43 can be effectively transmitted to the worm gear 44 through the worm 45, and then transmitted to the first connecting block 412 and the monitoring component 50 through the connecting shaft 411, ensuring that a large angle adjustment can be achieved even with a small driving input. At the same time, the self-locking characteristic of the worm and worm gear also means that when the driving stops, the third adjusting part 41 will remain in its current position and will not move due to gravity or other external forces.
[0044] Optionally, the environmental monitoring system further includes an alarm module and a control module. The control module is electrically connected to both the monitoring component 50 and the alarm module. Among them, when the smoke value detected by the monitoring component 50 is greater than or equal to the first preset value, the control module controls the alarm module to emit a first alarm signal; and / or, when the water level value detected by the monitoring component 50 is greater than or equal to the second preset value, the control module controls the alarm module to emit a second alarm signal; and / or, when the gas concentration value detected by the monitoring component 50 is greater than or equal to the third preset value, the control module controls the alarm module to emit a third alarm signal. In this way, when the smoke value, water level value or gas concentration value detected by the monitoring component 50 exceeds the preset safety threshold, the control module can immediately respond and trigger the corresponding alarm signal. The above real-time warning mechanism ensures that the computer room management personnel can quickly realize the potential environmental risks, so as to take corresponding measures in time to avoid or reduce possible losses. At the same time, since the alarm signal is directly related to the detection result of the monitoring component 50, the control module can accurately locate the specific environmental factors and positions that trigger the alarm, providing detailed information for the computer room management personnel, facilitating the rapid location of the problem source and improving the emergency response efficiency.
[0045] In this embodiment, when the smoke value detected by the monitoring component 50 is greater than or equal to the first preset value, the control module controls the alarm module to emit a first alarm signal. When the water level value detected by the monitoring component 50 is greater than or equal to the second preset value, the control module controls the alarm module to emit a second alarm signal. When the gas concentration value detected by the monitoring component 50 is greater than or equal to the third preset value, the control module controls the alarm module to emit a third alarm signal. In this way, the environmental monitoring system can simultaneously monitor multiple environmental parameters such as the smoke value, water level value and gas concentration value, and through the comprehensive analysis of these parameters by the control module, provide comprehensive environmental monitoring. At the same time, by closely integrating the alarm module and the control module with the monitoring component 50, the environmental monitoring system realizes intelligent, customized and timely response environmental monitoring and warning.
[0046] Such as Figure 2 、 Figure 5 and Figure 8As shown, the monitoring component 50 includes a plurality of detection devices 51 arranged at intervals in the third direction. At least one detection device 51 is used to detect the smoke value in the environment, at least one detection device 51 is used to detect the water level value in the environment, and at least one detection device 51 is used to detect the gas concentration value in the environment. Among them, the third direction is arranged at an angle with the second direction. In this way, since the detection devices 51 are specifically monitored for smoke, water level, and gas concentration respectively, once any parameter exceeds the safe range, the system can quickly locate the problem and make a response, effectively shortening the time from monitoring to warning and improving the immediate response ability of the system. At the same time, by comprehensively analyzing the smoke value, water level value, and gas concentration value, the computer room management personnel can obtain a more comprehensive environmental assessment to prevent potential environmental risks and ensure the safe and efficient operation of the server computer room.
[0047] As Figure 4 and Figure 6 shown, the first adjustment component 20 further includes a second driving device 22, a driving wheel 23, a driven wheel 24, and a traction structure 25. Among them, the second driving device 22 is arranged on the mounting seat 10. The driving wheel 23 is rotatably arranged on the mounting seat 10, and the driving wheel 23 is drivingly connected to the driving shaft of the second driving device 22. The driven wheel 24 is rotatably arranged on the mounting seat 10, the traction structure 25 is sleeved on the driving wheel 23 and the driven wheel 24, and the first adjustment part 21 is arranged on the traction structure 25 and moves synchronously with the traction structure 25. In this way, the driving force generated by the second driving device 22 is efficiently transmitted to the traction structure 25 through the driving wheel 23, and then drives the first adjustment part 21 to move. The above torque transmission method is not only efficient, but also can ensure the full utilization of the driving force, reduce energy loss, and improve the overall efficiency of the environmental monitoring system.
[0048] In this embodiment, the driving wheel 23 is directly connected to the driving shaft of the second driving device 22. By accurately controlling the rotation speed and rotation angle of the second driving device 22, the moving distance and position of the first adjustment part 21 can be accurately controlled, so as to ensure that the monitoring component 50 can be accurately deployed at the target monitoring point, improving the accuracy and reliability of the monitoring data. At the same time, the above setting of the first adjustment component 20 realizes the smooth and accurate movement of the monitoring component 50 in the computer room environment, improving the flexibility, reliability, and efficiency of the environmental monitoring system.
[0049] As Figures 1 to 3 、 Figure 6 and Figure 7As shown in the figure, a guide rail 11 is provided on the mounting base 10, and the guide rail 11 extends in the first direction; the first adjustment part 21 includes a mounting plate 211 and a sliding structure 212. Among them, the mounting plate 211 is connected to the second adjustment assembly 30. The sliding structure 212 includes a first plate body 2121 and a second plate body 2122 arranged at an angle. The first plate body 2121 is connected to both the mounting plate 211 and the traction structure 25, and the second plate body 2122 is slidably arranged on the guide rail 11 in the first direction. In this way, the guide rail 11 extends in the first direction, providing an accurate linear movement path for the first adjustment part 21. The second plate body 2122 of the sliding structure 212 slides along the guide rail 11, ensuring that the moving direction of the first adjustment part 21 is accurate, and greatly improving the accuracy of the monitoring component 50 in spatial positioning.
[0050] In this embodiment, the sliding structure 212 includes a first plate body 2121 and a second plate body 2122 arranged at an angle. The above setting not only increases the stability of the sliding structure 212, reduces the shaking and deviation during movement, but also ensures the uniform transmission of force through the connection between the first plate body 2121 and the mounting plate 211 and the traction structure 25, improving the reliability of the entire first adjustment assembly 20. At the same time, through the connection between the traction structure 25 and the first plate body 2121 of the sliding structure 212, the driving force of the second driving device 22 can be effectively converted into the smooth movement of the first adjustment part 21 along the guide rail 11, realizing the integration of drive control and mechanical movement, simplifying the system control, and improving the overall operation efficiency.
[0051] As Figure 2 、 Figure 5 and Figure 8 shown, the second adjustment assembly 30 further includes a second adjustment part 31, a driving cylinder 33, and a first guide rod 34. Among them, the second adjustment part 31 is connected to the first adjustment part 21. The driving cylinder 33 is arranged on the second adjustment part 31, and the piston part of the driving cylinder 33 is drivingly connected to the second adjustment part 31. The first guide rod 34 is arranged on the second adjustment part 31, and the piston part is slidably sleeved on the first guide rod 34 to slide along the extension direction of the first guide rod 34; the first guide rod 34 extends in the second direction. In this way, the above setting of the second adjustment assembly 30 enables the second adjustment part 31 to perform sliding adjustment along the second direction under the guidance of the first guide rod 34. Combining the adjustment ability of the first adjustment assembly 20, this multi-axis adjustment mechanism provides more comprehensive deployment flexibility for the monitoring component 50, ensuring that environmental monitoring can cover more complex spatial layouts in the computer room. At the same time, the above setting improves the movement smoothness of the second adjustment part 31 to ensure that the second adjustment part 31 can drive the angle adjustment component 40 to move smoothly along the second direction.
[0052] Optionally, there is one first guide rod 34; alternatively, there are multiple first guide rods 34, and the multiple first guide rods 34 are arranged at intervals in the first direction. In this way, the above setting makes the selection of the number of the first guide rods 34 more flexible to meet different usage requirements and working conditions, and also improves the processing flexibility of the staff. At the same time, when there are multiple first guide rods 34, the above setting of the multiple first guide rods 34 improves the guiding reliability.
[0053] In this embodiment, there are three first guide rods 34, and the three first guide rods 34 are arranged at intervals in the first direction.
[0054] It should be noted that the selection of the number of the first guide rods 34 is not limited to this, and can be adjusted according to the working conditions and usage requirements. Optionally, the first guide rod 34 is two, or four, or five, or six, or more.
[0055] As Figure 8 shown, the second adjustment part 31 is plate-shaped, and the second adjustment assembly 30 further includes a sleeve 35 and a second guide rod 36. The sleeve 35 is arranged on the second adjustment part 31. The second guide rod 36 is arranged on the fifth plate body 321, and the sleeve 35 is sleeved on the second guide rod 36. Among them, the first guide rod 34 and the second guide rod 36 are arranged parallel to each other. In this way, the above setting of the second adjustment assembly 30 enables the second adjustment part 31 to slide and adjust along the second direction under the guidance of the second guide rod 36, thereby improving the movement stability of the second adjustment part 31 to ensure that the second adjustment part 31 can drive the angle adjustment assembly 40 to move smoothly along the second direction. At the same time, the first guide rod 34 and the second guide rod 36 are arranged parallel to each other, forming a multi-axis linkage mechanism between the movement of the second adjustment part 31 and the movement of the first adjustment part 21, thereby increasing the movement freedom of the monitoring assembly 50 in space and enabling it to adjust its position and angle more flexibly to adapt to the complex machine room environment and monitoring requirements.
[0056] Optionally, there is one second guide rod 36; alternatively, there are multiple second guide rods 36, and the multiple second guide rods 36 are arranged at intervals in the first direction. In this way, the above setting makes the selection of the number of the second guide rods 36 more flexible to meet different usage requirements and working conditions, and also improves the processing flexibility of the staff. At the same time, when there are multiple second guide rods 36, the above setting of the multiple second guide rods 36 improves the guiding reliability.
[0057] In this embodiment, there are two second guide rods 36, and the two second guide rods 36 are arranged at intervals in the first direction.
[0058] It should be noted that the selection of the number of the second guide rods 36 is not limited to this, and can be adjusted according to the working conditions and usage requirements. Optionally, the second guide rod 36 is three, or four, or five, or six, or more.
[0059] Optionally, an insulating layer is provided on the outer peripheral surface of the first guide rod 34 and / or the second guide rod 36. In this way, the insulating layer can prevent the guide rod from directly contacting other live components in the computer room, avoiding electrical short circuits or electric shock accidents, and ensuring the safety of the operator and the normal operation of the monitoring component 50. At the same time, the insulating layer can effectively shield electromagnetic interference, ensure the clear transmission of monitoring signals, and improve the accuracy of monitoring data.
[0060] In this embodiment, insulating layers are provided on the outer peripheral surfaces of both the first guide rod 34 and the second guide rod 36.
[0061] As Figure 9 shown, the first mounting bracket 42 includes a connection assembly 420. The second adjustment part 31 is connected to the third adjustment part 41 through the connection assembly 420. The connection assembly 420 includes a second connection block 421, a connecting rod 422, and a plate body assembly 423. Among them, one end of the connecting rod 422 is connected to the second adjustment part 31, and the other end of the connecting rod 422 is telescopically connected to the second connection block 421. The plate body assembly 423 is provided on the second connection block 421. The plate body assembly 423 includes a third plate body 4231 and a fourth plate body 4232 that are butt-jointed with each other. An installation cavity is formed around between the third plate body 4231 and the fourth plate body 4232, and the transmission assembly is located in the installation cavity. Through holes are provided on both the third plate body 4231 and the fourth plate body 4232, and the connecting shaft 411 is inserted through the through holes. In this way, the connecting rod 422 is telescopically connected to the second connection block 421, so that the third adjustment part 41 can be telescopically adjusted relative to the second adjustment part 31, thereby increasing the flexibility of the monitoring component 50 in the spatial layout, being able to adapt to the heights and positions of different devices in the computer room, and ensuring that the monitoring component 50 can cover a wider monitoring area. At the same time, the transmission assembly is located in the installation cavity. The above concealed installation method not only protects the transmission assembly from interference by external environmental factors, such as dust, humidity, etc., but also makes the transmission process more efficient and stable, reduces energy loss and noise during the transmission process, and improves the operating efficiency and environmental compatibility of the monitoring component 50.
[0062] In this embodiment, the plate body assembly 423 includes a third plate body 4231 and a fourth plate body 4232 that are butt-jointed with each other. An installation cavity is formed around between them, providing a stable and protective installation environment for the transmission assembly. Through the through holes provided on the third plate body 4231 and the fourth plate body 4232, the connecting shaft 411 can be inserted through them, ensuring the firm connection between the second adjustment part 31 and the third adjustment part 41, and improving the mechanical stability of the entire system.
[0063] Optionally, there is one connecting component 420; alternatively, there are multiple connecting components 420, and the multiple connecting components 420 are arranged at intervals along the extending direction of the connecting shaft 411. In this way, the above setting makes the selection of the number of the connecting components 420 more flexible to meet different usage requirements and working conditions, and also improves the processing flexibility of the staff. At the same time, when there are multiple connecting components 420, the above setting of the multiple connecting components 420 improves the connection stability.
[0064] In this embodiment, there are two connecting components 420, and the two connecting components 420 are arranged at intervals along the extending direction of the connecting shaft 411.
[0065] It should be noted that the selection of the number of the connecting components 420 is not limited to this, and can be adjusted according to the working conditions and usage requirements. Optionally, the connecting component 420 is three, or four, or five, or six, or more.
[0066] As Figure 8 shown, the mounting plate group 32 includes a fifth plate body 321 and a sixth plate body 322. The fifth plate body 321 is connected to the second adjusting portion 31, the sixth plate body 322 is connected to the fifth plate body 321 and is arranged at an angle, and the sixth plate body 322 is connected to the first adjusting portion 21. Among them, the sixth plate body 322 and the second adjusting portion 31 are respectively located on both sides of the fifth plate body 321. In this way, the angular setting of the fifth plate body 321 and the sixth plate body 322 enhances the structural stability of the mounting plate group 32, and the above three-dimensional framework form provides stronger bearing capacity, ensuring that the connection between the second adjusting portion 31 and the first adjusting portion 21 remains stable under the conditions of the weight of the monitoring component 50 or the vibration of the computer room, etc., and maintaining the overall structural integrity of the environmental monitoring system.
[0067] In this embodiment, through the connection of the mounting plate group 32 with the first adjusting portion 21 and the second adjusting portion 31, the monitoring component 50 can not only move horizontally along the first direction, but also move vertically along the second direction, and a certain degree of tilt angle adjustment can be realized through the plate-shaped design of the second adjusting portion 31. This multi-dimensional adjustment ability greatly improves the flexibility and scope of the monitoring component to cover the computer room environment, ensuring all-round and dead-angle-free environmental monitoring.
[0068] As Figures 1 to 3 shown, a plurality of cross beams 12 are arranged on the guide rail 11, and the whole environmental monitoring system is fixed on the roof through the cross beams 12.
[0069] The present application also provides an environmental monitoring method, which is applicable to the above environmental monitoring system. The environmental monitoring method includes:
[0070] Step S1: The environmental parameters in the environment where the monitoring component 50 of the environmental monitoring system is located are monitored in real time;
[0071] Step S2: The data processing module of the environmental monitoring system processes the environmental parameters obtained by the monitoring component 50 in real time, and converts the environmental parameters into analyzable environmental status information for analysis and training by the deep learning model, so as to predict the changes in future environmental parameters;
[0072] Step S3: Based on the environmental status information, the environment is divided into regions according to the severity of environmental changes, and the control parameters of the control module for the first adjustment component 20, the second adjustment component 30, and the angle adjustment component 40 are adjusted according to the division results.
[0073] Specifically, the monitoring component 50 can monitor the internal environmental parameters, such as smoke, water immersion, gas leakage, noise, and image brightness changes. After obtaining the above factors, they are processed by the data processing module, and then trained by the deep learning model to predict the future environment (such as after 5 minutes), and monitor the future environment (such as 5 minutes) to determine the training error value of the deep learning model, and correct the training error value. After correction, the internal environment is monitored again, and the internal environment is divided into grades according to certain rules. Among them, the control module adjusts the rotation amplitude of the motor for the environment with a higher grade (the position where faults are likely to occur) to align the monitoring component to a certain place for real-time monitoring.
[0074] In this embodiment, the environmental monitoring method further includes step S20 located between step S2 and step S3:
[0075] Compare the prediction result of the deep learning model with the real-time monitoring value of the monitoring component 50 to obtain the prediction error value of the deep learning model, and then adjust the training parameters of the deep learning model through the monitoring error correction module to limit the prediction error value within the preset error range.
[0076] In this embodiment, the second driving device 22 of the first adjustment component 20 is the first motor, and the first driving device 43 of the angle adjustment component 40 is the second motor; in step S3, the method for adjusting the control parameters of the control module for the first adjustment component 20, the second adjustment component 30, and the angle adjustment component 40 according to the division results includes:
[0077] Establish a positive correlation relationship between the severity of environmental changes and the rotation speed of the first motor, the rotation speed of the second motor, and the response time of the driving cylinder 33 of the second adjustment component 30.
[0078] From the above description, it can be seen that the above embodiments of the present invention achieve the following technical effects:
[0079] Through the settings of the first adjustment component, the second adjustment component and the angle adjustment component, the monitoring component can be adjusted in three-dimensional space to cover a wider monitoring area, thereby solving the problem that the monitoring range of environmental monitoring equipment in the related art is limited and affecting the user experience, and improving the user experience. At the same time, through the multi-stage adjustment component, the monitoring component can accurately align with potential risk sources, such as areas where smoke, waterlogging, gas leakage, noise, and image brightness changes occur, respond in a timely manner and provide accurate monitoring data, which helps to reduce the possibility and severity of accidents. At the same time, the monitoring component can detect various types of environmental parameters such as smoke value, water level value, gas concentration value, noise value, and image brightness change, which ensures that the system can comprehensively monitor various environmental factors in the computer room, provide a detailed environmental status report, and is conducive to timely discovering potential problems and taking preventive measures in advance.
[0080] In this article, specific examples are used to elaborate on the principle and implementation manner of this application. The description of the above embodiments is only used to help understand the method and its core idea of this application. It should be noted that for those of ordinary skill in the art of this technology, without departing from the principle of this application, several improvements and modifications can be made to this application, and these improvements and modifications also fall within the protection scope of the claims of this application.
Claims
1. An environmental monitoring system, characterized in that, Comprising: Mounting base (10); The first adjustment component (20), including a first adjustment part (21), the first adjustment part (21) is movably arranged on the mounting base (10) along a first direction; The second adjustment component (30), including a second adjustment part (31), the second adjustment part (31) is movably arranged on the first adjustment part (21) along a second direction; the first direction and the second direction are arranged at an angle; The angle adjustment component (40), including a third adjustment part (41), the third adjustment part (41) is rotatably arranged on the second adjustment part (31); The monitoring component (50), the monitoring component (50) is arranged on the third adjustment part (41) for monitoring environmental parameters in the environment, and the environmental parameters include at least one of a smoke value, a water level value, a gas concentration value, a noise value, and an image brightness change; The control module, the control module is electrically connected to the first adjustment component (20), the second adjustment component (30), and the angle adjustment component (40) respectively, for controlling the operating state and / or operating parameters of the first adjustment component (20), the second adjustment component (30), and the angle adjustment component (40); The data processing module, the data processing module is electrically connected to the monitoring component (50), for processing in real time the environmental parameters obtained by the monitoring component (50), and converting the environmental parameters into analyzable environmental state information for analysis and training by a deep learning model, so as to predict the change of future environmental parameters.
2. The environmental monitoring system according to claim 1, characterized in that, The angle adjustment component (40) further includes: The first mounting bracket (42), which is arranged on the second adjustment part (31) in a liftable manner; The first driving device (43), which is arranged on the first mounting bracket (42); The transmission component, the first driving device (43) drives the third adjustment part (41) to rotate through the transmission component, so as to drive the monitoring component (50) to rotate synchronously.
3. The environmental monitoring system according to claim 2, characterized in that, The transmission component includes a mutually meshing worm wheel (44) and a worm (45), and the driving shaft of the first driving device (43) drives the worm (45) to rotate; the third adjustment part (41) includes: The connecting shaft (411), which is rotatably arranged on the first mounting bracket (42), the connecting shaft (411) is connected to the worm wheel (44) and rotates synchronously, and the connecting shaft (411) is coaxially arranged with the worm wheel (44); The first connecting block (412), which is arranged on the connecting shaft (411) and rotates synchronously with the connecting shaft (411), and the monitoring component (50) is arranged on the first connecting block (412).
4. The environmental monitoring system according to claim 1, characterized in that The first adjustment component (20) further includes: The second driving device (22), which is arranged on the mounting base (10); The driving wheel (23), which is rotatably arranged on the mounting base (10), and the driving wheel (23) is drivingly connected to the driving shaft of the second driving device (22); Driven wheel (24), rotatably arranged on the mounting base (10); Traction structure (25), sleeved on the driving wheel (23) and the driven wheel (24), and the first adjustment part (21) is arranged on the traction structure (25) and moves synchronously with the traction structure (25).
5. The environmental monitoring system according to claim 1, characterized in that, The second adjustment assembly (30) further includes: Mounting plate group (32), connected to the first adjustment part (21); Driving cylinder (33), arranged on the mounting plate group (32), and the piston part of the driving cylinder (33) is drivingly connected to the second adjustment part (31); First guide rod (34), arranged on the mounting plate group (32), and the piston part is slidably sleeved on the first guide rod (34) to slide along the extension direction of the first guide rod (34); the first guide rod (34) extends along the second direction.
6. The environmental monitoring system according to claim 5, characterized in that, The second adjustment part (31) is in a plate shape, and the second adjustment assembly (30) further includes: Sleeve body (35), arranged on the second adjustment part (31); Second guide rod (36), arranged on the mounting plate group (32), and the sleeve body (35) is sleeved on the second guide rod (36); Wherein, the first guide rod (34) and the second guide rod (36) are arranged in parallel; and / or, an insulating layer is arranged on the outer peripheral surface of the first guide rod (34) and / or the second guide rod (36).
7. The environmental monitoring system according to claim 3, wherein The first mounting bracket (42) includes a connection assembly (420), and the second adjustment part (31) is connected to the third adjustment part (41) through the connection assembly (420), and the connection assembly (420) includes: Second connection block (421); Connecting rod (422), one end of the connecting rod (422) is connected to the second adjustment part (31), and the other end of the connecting rod (422) is telescopically connected to the second connection block (421); Plate body assembly (423), arranged on the second connection block (421), the plate body assembly (423) includes a third plate body (4231) and a fourth plate body (4232) that are butted against each other, and an installation cavity is formed around between the third plate body (4231) and the fourth plate body (4232), and the transmission assembly is located in the installation cavity; through holes are arranged on both the third plate body (4231) and the fourth plate body (4232), and the connecting shaft (411) is arranged through the through holes; Wherein, the connection assembly (420) is one; or, the connection assembly (420) is multiple, and multiple connection assemblies (420) are arranged at intervals along the extension direction of the connecting shaft (411).
8. An environmental monitoring method, characterized in that, Applicable to the environmental monitoring system according to any one of claims 1 to 7, the environmental monitoring method includes: Step S1: Real-time monitor the environmental parameters in the environment through the monitoring component (50) of the environmental monitoring system; Step S2: The data processing module of the environmental monitoring system processes in real time the environmental parameters obtained by the monitoring component (50), and converts the environmental parameters into analyzable environmental status information for analysis and training by the deep learning model, so as to predict the changes in future environmental parameters; Step S3: Based on the environmental status information, the environment is divided into regions according to the severity of environmental changes, and the control parameters of the control module for the first adjustment component (20), the second adjustment component (30), and the angle adjustment component (40) are adjusted according to the division results.
9. The environmental monitoring method according to claim 8, characterized in that, The environmental monitoring method further includes Step S20 located between Step S2 and Step S3: Compare the prediction result of the deep learning model with the real-time monitoring value of the monitoring component (50) to obtain the prediction error value of the deep learning model, and then adjust the training parameters of the deep learning model through the monitoring error correction module to limit the prediction error value within a preset error range.
10. The environmental monitoring method according to claim 8, characterized in that, The second driving device (22) of the first adjustment component (20) is a first motor, and the first driving device (43) of the angle adjustment component (40) is a second motor; in Step S3, the method for adjusting the control parameters of the control module for the first adjustment component (20), the second adjustment component (30), and the angle adjustment component (40) according to the division results includes: Establish a positive correlation relationship between the severity of environmental changes, the rotation speed of the first motor, the rotation speed of the second motor, and the response time of the driving cylinder (33) of the second adjustment component (30).
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