Equipment control cabinet of laboratory intelligent management system
By introducing ventilation, cleaning, sealing, and power generation components into the equipment control cabinet, the problems of poor heat dissipation and high energy consumption of the equipment cabinet are solved, achieving rapid heat dissipation and energy saving.
Patent Information
- Application Number
- CN202511095163.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-06
- Publication Date
- 2025-11-11
AI Technical Summary
The existing intelligent laboratory management system has poor heat dissipation of the equipment control cabinet, consumes a lot of energy, and the ventilation fan needs to be turned on for a long time.
An equipment control cabinet was designed, which includes ventilation components, cleaning components, sealing components, dust removal components, and power generation components. Through the coordinated work of components such as fans, motors, rotating impellers, and piezoelectric power generation plates, rapid heat dissipation, automatic cleaning, and power generation are achieved.
It enables rapid heat dissipation inside the equipment cabinet, reduces energy consumption, improves cleaning efficiency, and generates electricity to save energy.
Smart Images

Figure CN120935995A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of equipment control cabinet technology, and in particular to an equipment control cabinet for an intelligent laboratory management system. Background Technology
[0002] The intelligent laboratory management system aims to improve laboratory operational efficiency, ensure the safety of the experimental environment, and guarantee the accuracy of data. The equipment control cabinet, as a crucial component of this system, is primarily used for the centralized management and control of various equipment and instruments within the laboratory.
[0003] For example, CN214957876U discloses an equipment control cabinet for an intelligent laboratory management system. This equipment control cabinet includes a cabinet body, a fire extinguishing mechanism, and a cooling mechanism. The fire extinguishing mechanism is located on the cabinet body and includes a partition fixedly installed within the cabinet body. The partition divides the cabinet body into a sand storage chamber and an installation chamber. A fire detector and multiple sand outlet pipes are fixedly installed on the partition, each with a sand outlet nozzle. This device provides an equipment control cabinet for an intelligent laboratory management system that can automatically detect and extinguish fires. This allows for rapid detection and extinguishing of fires within the cabinet body, preventing the fire from escalating and causing significant losses, thus reducing laboratory damage to some extent and improving staff safety. However, the ventilation fan in this intelligent laboratory management system has limited cooling effect on the cabinet body. At high temperatures, it is difficult to effectively cool the cabinet body, and the ventilation fan needs to be running continuously, consuming a lot of energy.
[0004] Therefore, a laboratory intelligent management system equipment control cabinet has now been developed that can accelerate heat dissipation inside the equipment cabinet while generating electricity and saving energy. Summary of the Invention
[0005] To overcome the shortcomings of existing intelligent laboratory management systems, such as limited heat dissipation effect of ventilation fans on the control cabinet body, difficulty in effectively dissipating heat at high temperatures, and the need for long-term operation of ventilation fans resulting in high energy consumption, this invention provides an intelligent laboratory management system equipment control cabinet that can accelerate heat dissipation inside the equipment cabinet while generating electricity and saving energy.
[0006] Technical Solution: An equipment control cabinet for an intelligent laboratory management system includes an equipment cabinet, a connecting frame, a control panel, a main board, a ventilation component, a cleaning component, a sealing component, a dust removal component, and a power generation component. The connecting frame is slidably and detachably connected to the upper side of the equipment cabinet. The control panel is connected to the front upper part of the connecting frame. The main board is detachably connected to the inner rear part of the equipment cabinet via multiple bolts. The equipment cabinet is equipped with a ventilation component to accelerate internal ventilation, a cleaning component to clean the main board, a sealing component to seal the interior, and a dust removal component to remove dust from the interior. A power generation component is located between the dust removal component and the equipment cabinet.
[0007] As an improvement to the above solution, a dust cover is provided on the upper rear side of the equipment cabinet.
[0008] As an improvement to the above solution, the ventilation component includes a mounting bracket, a fan, and a filter. The mounting brackets are detachably connected to both sides of the equipment cabinet by multiple bolts. Multiple fans are connected to each mounting bracket. Filters are snapped onto the sides of the mounting brackets that are close to each other, and the filters are in contact with the equipment cabinet.
[0009] As an improvement to the above solution, the cleaning component includes a motor, a bidirectional lead screw, a first belt, a moving frame, a connecting bracket, a first spring, and an air-blowing box. A motor is connected to the upper left rear of the equipment cabinet. Bidirectional lead screws are rotatably connected to both sides of the equipment cabinet. The motor output shaft is connected to the left-side bidirectional lead screw. A first belt is wound around the upper part of the bidirectional lead screw via a transmission wheel. Moving frames are threadedly connected to both the upper and lower parts of the bidirectional lead screw. The moving frames are slidably connected to the equipment cabinet. A connecting bracket is slidably connected between two adjacent moving frames on the left and right sides. Multiple first springs are connected between the connecting bracket and the connected moving frame. An air-blowing box is detachably connected to each connecting bracket via multiple bolts. An external air pump is connected to the air-blowing box. Starting the air pump causes the air-blowing box to blow air onto the mainboard for cleaning. Simultaneously, starting the motor rotates the left-side bidirectional lead screw, causing the first belt to rotate, which in turn rotates the right-side bidirectional lead screw. This causes the moving frame and connecting bracket to move closer together, moving the air-blowing box and achieving a comprehensive cleaning of the mainboard.
[0010] As an improvement to the above solution, the fan, motor, and processor are electrically connected through a control module.
[0011] As an improvement to the above solution, an air inlet pipe is provided on the front side of the middle part of the air box.
[0012] As an improvement to the above solution, the enclosed assembly includes guide threaded posts, second springs, rotating posts, segmented lead screw posts, second belts, and shielding frames. Two guide threaded posts are slidably connected to the inner upper part of the equipment cabinet. The moving frames are press-fitted with adjacent guide threaded posts. Multiple second springs connect the guide threaded posts to the equipment cabinet, initially in a compressed state. Rotating posts are threadedly connected to the guide threaded posts, and these rotating posts are rotatably connected to the equipment cabinet. Segmented lead screw posts are rotatably connected to the inner left and right sides of the equipment cabinet. Second belts are wound around adjacent rotating posts via transmission wheels. Multiple shielding frames are threadedly connected to the segmented lead screw posts, and these shielding frames are slidably connected to the equipment cabinet. When the moving frame moves, it disengages from the guide threaded posts, and the second springs rebound, causing the guide threaded posts to move downwards. At this time, the guide threaded posts trigger the rotating posts to rotate, which in turn causes the segmented lead screw posts to rotate via the second belt, driving the shielding frames to move and shield the ventilation slots on the left and right sides of the equipment cabinet, reducing noise during cleaning.
[0013] As an improvement to the above solution, the dust removal assembly includes a fixed bracket, gears, a rotating impeller, a rack and pinion frame, and a dust collection frame. The fixed bracket is detachably connected to the upper inner side of the equipment cabinet via multiple bolts. The fixed bracket is located between guide threaded columns. The gear is rotatably connected to the lower part of the fixed bracket, and the rotating impeller is connected to the gear. The rack and pinion frame is detachably connected to the upper left and lower right movable frames via bolts. The rack and pinion frame can mesh with the gears. The dust collection frame is connected to the lower rear side of the equipment cabinet. When the fan ventilates the inside of the equipment cabinet, it blows the rotating impeller to rotate, accelerating the air circulation inside the equipment cabinet. When the equipment cabinet is closed, the movable frames move, driving the rack and pinion frame to move and mesh with the gears, so that the rotating impeller can continue to rotate after the equipment cabinet is closed, thereby agitating the air and accelerating the dust falling off the attached objects. By connecting a vacuum cleaner to the dust collection frame, the dust inside the equipment cabinet is extracted from the dust collection frame.
[0014] As an improvement to the above solution, the power generation component includes guide columns, a third spring, and a piezoelectric power generation plate. Multiple guide columns are slidably connected to the rotating impeller, and each guide column is connected to the rotating impeller by a third spring. A piezoelectric power generation plate is connected to the inner side of the lower part of the equipment cabinet. The guide columns and the piezoelectric power generation plate are pressed together. When the rotating impeller rotates, it drives the guide columns to rotate. Through the force of the third spring, the guide columns press the piezoelectric power generation plate, causing the piezoelectric power generation plate to generate electrical energy. The generated electrical energy is stored by connecting an external energy storage device to the piezoelectric power generation plate.
[0015] As an improvement to the above solution, a striking component is also included. The striking component includes rollers and cams. Rollers are rotatably connected to the middle of the moving frame. The rollers are in contact with the equipment cabinet. Cams are connected to the front of the rollers. The cams are pressed against the adjacent connecting brackets. When the moving frame moves, it drives the rollers to move on the equipment cabinet. At this time, the rollers drive the cams to rotate, so that the cams press against the connecting brackets. Under the action of the first spring, the connecting brackets and the air blowing box move up and down, shaking off the attached dust.
[0016] The beneficial effects are as follows: 1. The present invention drives the guide column to rotate while the impeller rotates. Through the action of the third spring, the guide column squeezes the piezoelectric generator plate, causing the piezoelectric generator plate to generate electrical energy. By connecting the piezoelectric generator plate to an external energy storage device, the generated electrical energy can be stored for subsequent use. This achieves the effect of accelerating heat dissipation inside the equipment cabinet, generating electrical energy, and saving energy.
[0017] 2. This invention starts the motor, which drives the left-side bidirectional lead screw to rotate, and the first belt to rotate, causing the right-side bidirectional lead screw to rotate. This causes the moving frame and connecting bracket to move closer to each other, thus moving the air box and achieving a comprehensive cleaning of the motherboard. This achieves the effect of automatically cleaning the motherboard and saving manpower.
[0018] 3. In this invention, the movable frame disengages from the guide threaded column during movement, and then the second spring rebounds, causing the guide threaded column to move downward. At this time, the guide threaded column triggers the rotating column to rotate, which in turn causes the segmented lead screw column to rotate via the second belt. This drives the shielding frame to move and shield the ventilation slots on the left and right sides of the equipment cabinet, reducing the noise generated during cleaning. This achieves the effect of closing the equipment cabinet and reducing noise when cleaning the motherboard.
[0019] 4. When the fan of this invention ventilates the inside of the equipment cabinet, it blows the rotating impeller to rotate, accelerating the air circulation inside the equipment cabinet. When the equipment cabinet is closed, the moving frame moves, driving the rack frame to move and mesh with the gears, so that the rotating impeller can continue to rotate after the equipment cabinet is closed, thereby agitating the air and accelerating the dust to fall off the attached objects. By connecting a vacuum cleaner to the external vacuum cleaner frame, the dust inside the equipment cabinet is extracted from the vacuum cleaner frame, achieving the effect of accelerating the cleaning efficiency inside the equipment cabinet.
[0020] 5. In this invention, as the moving frame moves, the rollers move on the equipment cabinet. At this time, the rollers drive the cam to rotate, causing the cam to press against the connecting bracket. Under the action of the first spring, the connecting bracket and the air blowing box move up and down, shaking off the attached dust, thus achieving the effect of avoiding dust accumulation on the connecting bracket and the air blowing box. Attached Figure Description
[0021] Figure 1This is a three-dimensional structural diagram of the present invention.
[0022] Figure 2 This is an exploded cross-sectional view of the first partial three-dimensional structure of the present invention.
[0023] Figure 3 This is a schematic diagram of the second partial three-dimensional structure of the present invention.
[0024] Figure 4 This is a cross-sectional view of the third partial three-dimensional structure of the present invention.
[0025] Figure 5 This is an enlarged view of the three-dimensional structure at point A of the present invention.
[0026] Figure 6 This is an exploded view of the fourth partial three-dimensional structure of the present invention.
[0027] The following are the labels in the diagram: 1. Equipment cabinet, 2. Connecting frame, 3. Control panel, 4. Main board, 5. Fixing frame, 6. Fan, 7. Filter screen, 8. Motor, 9. Two-way lead screw, 10. First belt, 11. Moving frame, 12. Connecting bracket, 13. First spring, 14. Air blowing box, 15. Roller, 16. Cam, 17. Guide threaded column, 18. Second spring, 19. Rotating column, 20. Segmented lead screw column, 21. Second belt, 22. Baffle frame, 23. Fixing bracket, 24. Gear, 25. Rotating impeller, 26. Guide column, 27. Third spring, 28. Piezoelectric generator plate, 29. Rack frame, 30. Dust collection frame. Detailed Implementation
[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0029] An equipment control cabinet for an intelligent laboratory management system, such as Figures 1-6 As shown, the system includes an equipment cabinet 1, a connecting frame 2, a control panel 3, a main board 4, a ventilation component, a cleaning component, a sealing component, a dust removal component, and a power generation component. The connecting frame 2 is slidably and detachably connected to the upper side of the equipment cabinet 1. A dust cover is provided on the upper rear side of the equipment cabinet 1 to prevent dust from entering. The control panel 3 is connected to the upper front side of the connecting frame 2. The main board 4 is detachably connected to the inner rear side of the equipment cabinet 1 by four bolts. The equipment cabinet 1 is equipped with a ventilation component, a cleaning component, a sealing component, and a dust removal component. A power generation component is located between the dust removal component and the equipment cabinet 1.
[0030] like Figures 1-3 As shown, the ventilation assembly includes a mounting bracket 5, a fan 6, and a filter screen 7. The mounting bracket 5 is detachably connected to both the left and right sides of the equipment cabinet 1 by four bolts. Six fans 6 are connected to each mounting bracket 5. Filter screens 7 are snapped onto the sides of the mounting brackets 5 that are close to each other, and the filter screens 7 are in contact with the equipment cabinet 1.
[0031] like Figure 1 , Figure 2 , Figure 4 , Figure 5 and Figure 6 As shown, the cleaning assembly includes a motor 8, a bidirectional lead screw 9, a first belt 10, a moving frame 11, a connecting bracket 12, a first spring 13, and an air blowing box 14. The motor 8 is connected to the upper left rear part of the equipment cabinet 1. The fan 6, the motor 8, and the processor are electrically connected through a control module. Both the left and right sides of the equipment cabinet 1 are rotatably connected to the bidirectional lead screw 9. The output shaft of the motor 8 is connected to the bidirectional lead screw 9 on the left side. The upper part of the bidirectional lead screw 9 is connected to the first belt 10 through a transmission wheel. Both the upper and lower parts of the bidirectional lead screw 9 are threadedly connected to the moving frame 11. The moving frame 11 is slidably connected to the equipment cabinet 1. The two adjacent moving frames 11 are slidably connected to the connecting bracket 12. Two first springs 13 are connected between the connecting bracket 12 and the connected moving frame 11. The air blowing box 14 is detachably connected to the connecting bracket 12 through four bolts. The air blowing box 14 has an air inlet pipe on the front side of the middle part for easy air circulation.
[0032] like Figure 1 , Figure 2 , Figure 4 and Figure 5 As shown, the enclosed assembly includes guide threaded posts 17, second springs 18, rotating posts 19, segmented lead screw posts 20, second belts 21, and shielding brackets 22. Two guide threaded posts 17 are slidably connected to the upper inner side of the equipment cabinet 1. The moving frame 11 is press-fitted with adjacent guide threaded posts 17. Two second springs 18 are connected between each guide threaded post 17 and the equipment cabinet 1. Initially, the second springs 18 are in a compressed state. Rotating posts 19 are threadedly connected to each guide threaded post 17, and each rotating post 19 is rotatably connected to the equipment cabinet 1. Segmented lead screw posts 20 are rotatably connected to the inner sides of both the left and right sides of the equipment cabinet 1. Second belts 21 are wound around adjacent rotating posts 19 via transmission wheels at each segmented lead screw post 20. Four shielding brackets 22 are threadedly connected to each segmented lead screw post 20, and each shielding bracket 22 is slidably connected to the equipment cabinet 1.
[0033] like Figure 1 , Figure 2 and Figure 4As shown, the dust removal assembly includes a fixed bracket 23, a gear 24, a rotating impeller 25, a rack frame 29, and a dust collection frame 30. The fixed bracket 23 is detachably connected to the upper inner side of the equipment cabinet 1 by two bolts. The fixed bracket 23 is located between the guide threaded posts 17. The gear 24 is rotatably connected to the lower part of the fixed bracket 23. The rotating impeller 25 is connected to the gear 24. The rack frame 29 is detachably connected to the upper left and lower right movable frames 11 by bolts. The rack frame 29 can mesh with the gear 24. The dust collection frame 30 is connected to the lower rear side of the equipment cabinet 1.
[0034] like Figure 1 , Figure 2 and Figure 4 As shown, the power generation component includes guide columns 26, third springs 27 and piezoelectric power generation plates 28. Ten guide columns 26 are slidably connected to the rotating impeller 25. Each guide column 26 is connected to the rotating impeller 25 by a third spring 27. The piezoelectric power generation plate 28 is connected to the lower inner side of the equipment cabinet 1. The guide columns 26 and the piezoelectric power generation plate 28 are pressed together.
[0035] When using this invention, first place the equipment cabinet 1 in the laboratory, then fix the control screen 3 on the upper side of the equipment cabinet 1 through the connecting bracket 2, then open the cabinet door on the equipment cabinet 1, install the motherboard 4 inside the equipment cabinet 1, then install the electrical components on the motherboard 4, after installation, pass the cable on the motherboard 4 through the dust cover on the equipment cabinet 1, and then connect the cable to the control screen 3 so that the control screen 3 receives data from the motherboard 4;
[0036] When the operating temperature of the equipment cabinet 1 is high, the fan 6 on the mounting bracket 5 is turned on to accelerate the air circulation inside the equipment cabinet 1, thereby accelerating the heat dissipation efficiency of the equipment cabinet 1. The filter screen 7 intercepts external dust. When it is necessary to clean the filter screen 7, the mounting bracket 5 can be removed and the filter screen 7 can be cleaned.
[0037] When it is necessary to clean the motherboard 4, an air pump is connected to the air blowing box 14 through the air connection pipe. The air pump is started so that the air blowing box 14 blows air to clean the motherboard 4. At the same time, the motor 8 is started, which drives the left double-sided lead screw 9 to rotate. The first belt 10 rotates, which causes the right double-sided lead screw 9 to rotate, thereby driving the moving frame 11 and the connecting bracket 12 to move closer to each other, so that the air blowing box 14 moves to achieve a complete cleaning of the motherboard 4.
[0038] When the movable frame 11 moves, it disengages from the guide threaded column 17. Then, the second spring 18 rebounds, causing the guide threaded column 17 to move downward. At this time, the guide threaded column 17 triggers the rotating column 19 to rotate, which in turn causes the segmented lead screw column 20 to rotate via the second belt 21. This drives the shielding frame 22 to move and shield the ventilation slots on the left and right sides of the equipment cabinet 1, reducing the noise produced during cleaning. This effectively closes the equipment cabinet 1 and reduces noise when cleaning the mainboard 4.
[0039] When fan 6 ventilates the inside of equipment cabinet 1, it blows the rotating impeller 25 to rotate, accelerating the air circulation inside equipment cabinet 1. When equipment cabinet 1 is closed, the moving frame 11 moves, driving the rack frame 29 to move and mesh with the gear 24, so that the rotating impeller 25 can continue to rotate after equipment cabinet 1 is closed, thereby agitating the air and accelerating the dust to fall off the attached objects. By connecting a vacuum cleaner to the vacuum cleaner frame 30, the dust inside equipment cabinet 1 is extracted from the vacuum cleaner frame 30, thereby accelerating the cleaning efficiency inside equipment cabinet 1. When it is necessary to repair the motherboard 4, the fixed bracket 23 and the rack frame 29 can be removed before repairing the motherboard 4.
[0040] As the impeller 25 rotates, it drives the guide column 26 to rotate. Through the force of the third spring 27, the guide column 26 squeezes the piezoelectric power generation plate 28, causing the piezoelectric power generation plate 28 to generate electrical energy. By connecting the piezoelectric power generation plate 28 to an external energy storage device, the generated electrical energy is stored for subsequent use. This achieves the effect of accelerating heat dissipation inside the equipment cabinet 1, generating electrical energy, and saving energy.
[0041] like Figure 4 and Figure 5 As shown, it also includes a striking assembly, which includes rollers 15 and cams 16. Rollers 15 are rotatably connected to the middle of the moving frame 11. Rollers 15 are in contact with the equipment cabinet 1. Cams 16 are connected to the front side of rollers 15. Cams 16 are pressed and engaged with the adjacent connecting brackets 12.
[0042] As the mobile frame 11 moves, it drives the roller 15 to move on the equipment cabinet 1. At this time, the roller 15 drives the cam 16 to rotate, causing the cam 16 to press the connecting bracket 12. Under the action of the first spring 13, the connecting bracket 12 and the air blowing box 14 move up and down to shake off the attached dust and prevent dust from accumulating on the connecting bracket 12 and the air blowing box 14.
[0043] The above embodiments are merely preferred embodiments of the present invention and are not intended to limit the scope of the present invention. Therefore, all equivalent changes made to the content described in the claims of the present invention should be included within the scope of the claims of the present invention.
Claims
1. An equipment control cabinet for an intelligent laboratory management system, characterized in that, It includes an equipment cabinet (1), a connecting frame (2), a control panel (3), a main board (4), a ventilation component, a cleaning component, a sealing component, a dust removal component, and a power generation component. The connecting frame (2) is slidably and detachably connected to the upper side of the equipment cabinet (1). The control panel (3) is connected to the upper front side of the connecting frame (2). The main board (4) is detachably connected to the rear inner side of the equipment cabinet (1) by multiple bolts. The equipment cabinet (1) is equipped with a ventilation component that can accelerate internal ventilation. The equipment cabinet (1) is equipped with a cleaning component that can clean the main board (4). The equipment cabinet (1) is equipped with a sealing component that can seal the interior. The equipment cabinet (1) is also equipped with a dust removal component that can remove dust from the interior. A power generation component that can generate electricity is located between the dust removal component and the equipment cabinet (1).
2. The equipment control cabinet of the intelligent laboratory management system as described in claim 1, characterized in that, The equipment cabinet (1) has a dust cover on the upper rear side.
3. The equipment control cabinet of the intelligent laboratory management system as described in claim 1, characterized in that, The ventilation assembly includes a mounting bracket (5), a fan (6) and a filter (7). The mounting bracket (5) is detachably connected to both sides of the equipment cabinet (1) by multiple bolts. Multiple fans (6) are connected to the mounting bracket (5). Filters (7) are snapped onto the sides of the mounting brackets (5) that are close to each other. The filters (7) are in contact with the equipment cabinet (1).
4. The equipment control cabinet of the intelligent laboratory management system as described in claim 1, characterized in that, The cleaning assembly includes a motor (8), a double-acting lead screw (9), a first belt (10), a movable frame (11), a connecting bracket (12), a first spring (13), and an air blowing box (14). The motor (8) is connected to the upper left rear part of the equipment cabinet (1). The double-acting lead screw (9) is rotatably connected to both the left and right sides of the equipment cabinet (1). The output shaft of the motor (8) is connected to the double-acting lead screw (9) on the left side. The upper part of the double-acting lead screw (9) is connected to the first belt (10) through a transmission wheel. The movable frame (11) is threadedly connected to both the upper and lower parts of the double-acting lead screw (9). The movable frames (11) are slidably connected to the equipment cabinet (1). The two adjacent movable frames (11) on the left and right sides are slidably connected. The movable connection is connected to the connecting bracket (12). Multiple first springs (13) are connected between the connecting bracket (12) and the connected movable frame (11). The connecting bracket (12) is connected to the air box (14) by multiple bolts. The air box (14) is connected to an external air pump. The air pump is started so that the air box (14) blows air to clean the main board (4). At the same time, the motor (8) is started, which drives the left double-sided lead screw (9) to rotate. The first belt (10) rotates, which causes the right double-sided lead screw (9) to rotate, thereby driving the movable frame (11) and the connecting bracket (12) to move closer to each other, so that the air box (14) moves and achieves a comprehensive cleaning of the main board (4).
5. The equipment control cabinet of the intelligent laboratory management system as described in claim 4, characterized in that, The fan (6), motor (8) and processor are electrically connected through the control module.
6. The equipment control cabinet of the intelligent laboratory management system as described in claim 4, characterized in that, An air inlet pipe is provided on the front side of the middle part of the air box (14).
7. The equipment control cabinet of the intelligent laboratory management system as described in claim 1, characterized in that, The enclosure assembly includes guide threaded posts (17), second springs (18), rotating posts (19), segmented lead screws (20), second belts (21), and shielding frames (22). The upper inner side of the equipment cabinet (1) is slidably connected to two guide threaded posts (17). The movable frame (11) is press-fitted with adjacent guide threaded posts (17). Multiple second springs (18) are connected between each guide threaded post (17) and the equipment cabinet (1). Initially, the second springs (18) are in a compressed state. Rotating posts (19) are threadedly connected to each guide threaded post (17), and the rotating posts (19) are rotatably connected to the equipment cabinet (1). Segmented lead screws are rotatably connected to the inner sides of both the left and right sides of the equipment cabinet (1). The lead screw column (20) and the segmented lead screw column (20) are connected to the adjacent rotating column (19) by a second belt (21) via a transmission wheel. The segmented lead screw column (20) is threaded with multiple shielding brackets (22). The shielding brackets (22) are slidably connected to the equipment cabinet (1). When the moving frame (11) moves, it disengages from the guide threaded column (17). Then the second spring (18) rebounds, causing the guide threaded column (17) to move downward. At this time, the guide threaded column (17) triggers the rotating column (19) to rotate. The segmented lead screw column (20) rotates through the second belt (21), driving the shielding brackets (22) to move and shield the ventilation slots on the left and right sides of the equipment cabinet (1), reducing the noise during cleaning.
8. The equipment control cabinet of the intelligent laboratory management system as described in claim 7, characterized in that, The dust removal assembly includes a fixed bracket (23), a gear (24), a rotating impeller (25), a rack frame (29), and a dust collection frame (30). The fixed bracket (23) is detachably connected to the upper inner side of the equipment cabinet (1) by multiple bolts. The fixed bracket (23) is located between guide threaded columns (17). The gear (24) is rotatably connected to the lower part of the fixed bracket (23). The rotating impeller (25) is connected to the gear (24). The rack frame (29) is detachably connected to the upper left and lower right movable frames (11) by bolts. The rack frame (29) can mesh with the gear (24). A dust collection frame (30) is connected to the lower rear side. When the fan (6) ventilates the inside of the equipment cabinet (1), it blows the rotating impeller (25) to rotate, which speeds up the air circulation inside the equipment cabinet (1). When the equipment cabinet (1) is closed, the moving frame (11) moves, which drives the rack frame (29) to move and mesh with the gear (24). This allows the rotating impeller (25) to continue rotating after the equipment cabinet (1) is closed, thereby agitating the air and speeding up the dust to fall off the attached objects. By connecting a vacuum cleaner to the dust collection frame (30), the dust inside the equipment cabinet (1) is extracted from the dust collection frame (30).
9. The equipment control cabinet of the intelligent laboratory management system as described in claim 8, characterized in that, The power generation component includes guide columns (26), a third spring (27), and a piezoelectric power generation plate (28). Multiple guide columns (26) are slidably connected to the rotating impeller (25). Each guide column (26) is connected to the rotating impeller (25) by a third spring (27). The piezoelectric power generation plate (28) is connected to the lower inner side of the equipment cabinet (1). The guide columns (26) and the piezoelectric power generation plate (28) are pressed together. When the rotating impeller (25) rotates, it drives the guide columns (26) to rotate. Through the force of the third spring (27), the guide columns (26) press the piezoelectric power generation plate (28), causing the piezoelectric power generation plate (28) to generate electrical energy. The generated electrical energy is stored by connecting an external energy storage device to the piezoelectric power generation plate (28).
10. The equipment control cabinet of the intelligent laboratory management system as described in claim 4, characterized in that, It also includes a striking component, which includes a roller (15) and a cam (16). The roller (15) is rotatably connected to the middle of the moving frame (11). The roller (15) is in contact with the equipment cabinet (1). The front side of the roller (15) is connected to a cam (16). The cam (16) is pressed against the adjacent connecting bracket (12). When the moving frame (11) moves, it drives the roller (15) to move on the equipment cabinet (1). At this time, the roller (15) drives the cam (16) to rotate, so that the cam (16) presses against the connecting bracket (12). Under the action of the first spring (13), the connecting bracket (12) and the air blowing box (14) move up and down, shaking off the attached dust.