Energy-saving anti-static raised floor with variable air supply
By arranging air volume adjustment components and air guide plates under the anti-static raised floor to adjust the air supply volume, the problem of fixed ventilation rate of the existing anti-static raised floor is solved, and flexible adjustment of air supply volume and reduction of energy consumption are achieved.
Patent Information
- Application Number
- CN202422476522.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-10-14
AI Technical Summary
The existing anti-static raised floor ventilation rate is fixed and cannot be adjusted according to actual usage, resulting in excessive energy consumption of the unit.
An energy-saving anti-static raised floor with variable air supply was designed. By setting an air volume adjustment component under the anti-static floor, the air supply volume was adjusted by rotating the retractable columns and air guide plates, and well-shaped ventilation holes were opened on the floor surface to achieve flexible adjustment of the air supply volume.
It realizes flexible adjustment of air supply volume, reduces energy consumption of the unit, improves cold air utilization rate and ventilation opening rate, and avoids high-intensity operation of the unit during the cooling process.
Smart Images

Figure CN223376030U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of raised floors, in particular to an energy-saving anti-static raised floor with variable air supply. Background Art
[0002] Raised anti-static flooring, also known as dissipative static flooring, is a flooring material specifically designed to prevent the accumulation of static electricity. The anti-static raised flooring works by laying a conductive material on the floor surface and connecting it to the ground system, creating a low-impedance conductive path. When static electricity is generated, the charge is quickly dissipated to the ground through this conductive path, preventing harm to equipment and personnel.
[0003] Anti-static raised floors are mainly assembled from components such as brackets, beams, and panels. There is a certain suspended space between the ground and the floor. This suspended structure not only facilitates wiring and air supply, but also increases the flexibility and practicality of the anti-static raised floor. Therefore, anti-static raised floors are widely used in places that need to prevent static electricity accumulation, such as data centers, IDC communication rooms, computer multimedia classrooms, fire control rooms, etc.
[0004] The ventilation holes on the surface of existing anti-static raised floors are usually arranged in long strips at intervals or in a circular hole matrix. Therefore, the ventilation rate of the raised floor is fixed, and the ventilation volume inside the air supply channel at the bottom of the raised floor cannot be adjusted according to the actual usage of the raised floor space, resulting in excessive energy consumption of the units within the raised floor space. Utility Model Content
[0005] The technical problem to be solved by the utility model is to provide an energy-saving anti-static elevated floor with variable air supply, which can adjust the ventilation volume in the air supply channel at the bottom of the elevated floor and reduce the energy consumption of the unit.
[0006] In order to solve the above technical problems, the technical solutions adopted by the present invention are as follows.
[0007] An energy-saving anti-static elevated floor with variable air supply comprises an elevated support, an anti-static floor and an air volume regulating assembly for regulating the air supply volume of the anti-static floor; the anti-static floor is installed on the top of the elevated support; the air volume regulating assembly is installed below the anti-static floor and connected to the elevated support.
[0008] The above-mentioned energy-saving and anti-static elevated floor with variable air supply, the elevated bracket is composed of four vertical retractable columns and four horizontal mounting frames; the retractable columns include a base, a threaded support column is slidably arranged inside the base, and the top of the base and the threaded support column are locked by a locking nut; the top of the threaded support column is provided with a support plate for installing the anti-static floor and the air volume adjustment component, and the two ends of the mounting frame are respectively installed on the two support plates by bolt assemblies.
[0009] The above-mentioned energy-saving anti-static elevated floor with variable air supply has a slot in the middle of the mounting frame for mounting the anti-static floor, and positioning cards symmetrically arranged at the bottom of the frame of the anti-static floor for mounting the slot end faces; the spacing between the two positioning cards is equal to the length of the slot, and the width of the slot is twice the width of the positioning card.
[0010] The energy-saving anti-static elevated floor with variable air supply is provided with ventilation holes arranged in a well shape.
[0011] The above-mentioned energy-saving and anti-static elevated floor with variable air supply, the air volume adjustment component includes a mounting frame, and a plurality of air guide plates are installed between the relative inner end surfaces of the mounting frame through a rotating shaft, an air supply port is formed between two adjacent air guide plates, and the directions of the two adjacent air guide plates are opposite; a driving mechanism for driving the air guide plates to rotate is arranged inside the mounting frame.
[0012] The above-mentioned energy-saving and anti-static elevated floor with variable air supply, the driving mechanism includes a forward motor and a reverse motor installed in the installation frame, a first sprocket is installed at both ends of the odd-numbered rotating shaft, the first sprockets are connected by a first transmission chain, and the forward motor is installed on the first rotating shaft; a second sprocket is installed at both ends of the even-numbered rotating shaft, the second sprockets are connected by a second transmission chain, and the reverse motor is installed on the second rotating shaft; the first sprocket and the second sprocket are horizontally staggered, the first sprocket is arranged close to the end of the rotating shaft, and the second sprocket is arranged close to the end of the air guide plate.
[0013] Due to the adoption of the above technical solution, the technical progress achieved by the present invention is as follows.
[0014] The utility model provides an energy-saving anti-static elevated floor with variable air supply. By arranging an air volume regulating component under the anti-static floor, the air supply volume in the installation space can be adjusted in time, avoiding the unit always being in a high-intensity working state during the cooling process, reducing the energy consumption of the unit. At the same time, adjacent air guide plates rotate in opposite directions, so that the cold air is discharged obliquely from two directions during the air supply process, thereby improving the utilization rate of the cold air. In addition, by opening a well-shaped ventilator on the surface of the anti-static floor, the ventilation opening rate is increased, thereby greatly improving the air output. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the specific structure of the utility model;
[0016] Figure 2 This is a schematic diagram of the specific structure of the utility model after removing the anti-static floor;
[0017] Figure 3 This is a schematic diagram of the specific structure of the anti-static floor of the utility model;
[0018] Figure 4 This is a schematic diagram of the specific structure of the driving mechanism in the air volume adjustment assembly of the utility model.
[0019] Wherein: 1. Base, 2. Threaded support column, 3. Support plate, 4. Mounting frame, 5. Locking nut, 6. Anti-static floor, 7. Card slot, 8. Mounting frame, 9. Frame, 10. Vent, 11. Positioning card plate, 12. Air guide plate, 13. Rotating shaft, 14. First sprocket, 15. First transmission chain, 16. Forward motor, 17. Second sprocket, 18. Second transmission chain, 19. Reverse motor. DETAILED DESCRIPTION
[0020] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0021] Energy-saving anti-static raised floors with variable air supply, such as Figures 1 to 4 As shown, it includes an overhead bracket, an anti-static floor 6, and an air volume adjustment component. The anti-static floor 6 is installed on the top of the overhead bracket, and the air volume adjustment component is installed below the anti-static floor 6 and connected to the overhead bracket.
[0022] The overhead support consists of four vertical retractable columns and four horizontal mounting brackets 4, such as Figure 1 As shown, the retractable column includes a base 1, a threaded support column 2 is slidably provided inside the base 1, and the top of the base 1 and the threaded support column 2 are locked by a locking nut 5, and the top of the threaded support column 2 is provided with a support plate 3 for installing an anti-static floor 6 and an air volume adjustment component, and the two ends of the mounting frame 4 are respectively installed on the two support plates 3 by bolt assemblies.
[0023] A slot 7 for engaging with the anti-static floor 6 is provided in the middle of the mounting frame 4 , so as to ensure that the anti-static floor 6 is neatly arranged.
[0024] The bottom of the frame 9 of the antistatic floor 6 is symmetrically provided with positioning cards 11 matched with the end faces of the card slot 7. The distance between the two positioning cards 11 is equal to the length of the card slot 7, and the width of the card slot 7 is twice the width of the positioning cards 11.
[0025] The anti-static floor 6 is provided with ventilation holes 10 arranged in a well shape, which can improve the ventilation rate of the anti-static floor.
[0026] The air volume adjustment component includes a mounting frame 8, and a plurality of air guide plates 12 are installed between the relative inner end surfaces of the mounting frame 8 through a rotating shaft 13. An air supply port is formed between two adjacent air guide plates 12. The air supply volume is adjusted by adjusting the angle of the air guide plate 12 to adjust the size of the air supply port. In addition, the directions of the two adjacent air guide plates 12 are opposite, which can ensure that the air is discharged from two directions, thereby improving the utilization rate of the cold air.
[0027] A driving mechanism for driving the air guide plate 12 to rotate is provided inside the mounting frame 8, and the driving mechanism includes a forward motor 16 and a reverse motor 19 installed in the mounting frame 8. First sprockets 14 are respectively installed at both ends of the odd-numbered rotating shafts 13. The first sprockets 14 are connected by a first transmission chain 15 for transmission. The forward motor 16 is installed on the first rotating shaft 14.
[0028] A second sprocket 17 is installed at both ends of the even-numbered rotating shaft 13 , and the second sprockets 17 are connected to each other through a second transmission chain 18 . A reversing motor 19 is installed on the second rotating shaft 14 .
[0029] The first sprocket 14 and the second sprocket 17 are horizontally staggered. The first sprocket 14 is disposed close to the end of the rotating shaft 14 , and the second sprocket 17 is disposed close to the end of the air guide plate 12 .
[0030] When in use, first install the mounting bracket 4 on the support plate 3, then install the air volume adjustment assembly on the support plate 3 between the ends of the two mounting brackets 4 through the bolt assembly, and finally install the anti-static floor 6 above the air volume adjustment assembly through the cooperation of the positioning card plate and the card slot.
[0031] Since the anti-static floor 6 is provided with vents 10 arranged in a well shape, the ventilation rate of the anti-static floor is significantly improved. If the air volume needs to be adjusted, the forward motor 16 and the reverse motor 17 can be started to control the guide plate 12 to rotate and adjust the size of the air supply port. When the air guide plate is in a horizontal state, the air supply port is closed and the air volume is minimum. When the air guide plates are in a vertical state, the air volume is maximum.
[0032] The utility model provides an energy-saving anti-static elevated floor with variable air supply. By arranging an air volume regulating component under the anti-static floor, the air supply volume in the installation space can be adjusted in time, avoiding the unit always being in a high-intensity working state during the cooling process, reducing the energy consumption of the unit. At the same time, adjacent air guide plates rotate in opposite directions, so that the cold air is discharged obliquely from two directions during the air supply process, thereby improving the utilization rate of the cold air. In addition, by opening a well-shaped ventilator on the surface of the anti-static floor, the ventilation opening rate is increased, thereby greatly improving the air output.
Claims
1. Energy-saving anti-static raised floor with variable air supply, characterized by: It comprises an overhead support, an antistatic floor (6), and an air volume regulating assembly for regulating the air volume of the antistatic floor; the antistatic floor (6) is installed on the top of the overhead support; the air volume regulating assembly is installed below the antistatic floor (6) and connected to the overhead support.
2. The energy-saving anti-static raised floor with variable air supply according to claim 1 is characterized by: The overhead support is composed of four vertical telescopic columns and four horizontal mounting frames (4); the telescopic columns include a base (1), a threaded support column (2) is slidably provided inside the base (1), and the top of the base (1) and the threaded support column (2) are locked by a locking nut (5); the top of the threaded support column (2) is provided with a support plate (3) for installing an anti-static floor (6) and an air volume adjustment component, and the two ends of the mounting frame (4) are respectively installed on the two support plates (3) by bolt assemblies.
3. The energy-saving anti-static raised floor with variable air supply according to claim 2 is characterized by: A card slot (7) for engaging with the antistatic floor (6) is provided in the middle of the mounting frame (4); a positioning card plate (11) is symmetrically provided at the bottom of the frame (9) of the antistatic floor (6) and is matched with the end face of the card slot (7); the spacing between the two positioning card plates (11) is equal to the length of the card slot (7), and the width of the card slot (7) is twice the width of the positioning card plate (11).
4. The energy-saving anti-static raised floor with variable air supply according to claim 1 is characterized in that: The antistatic floor (6) is provided with ventilation holes (10) arranged in a well shape.
5. The energy-saving anti-static raised floor with variable air supply according to claim 1 is characterized in that: The air volume regulating assembly comprises a mounting frame (8), wherein a plurality of air guide plates (12) are mounted between opposite inner end surfaces of the mounting frame (8) via a rotating shaft (13), an air outlet is formed between two adjacent air guide plates (12), and the rotation directions of the two adjacent air guide plates (12) are opposite; and a driving mechanism for driving the air guide plates (12) to rotate is arranged inside the mounting frame (8).
6. The energy-saving anti-static raised floor with variable air supply according to claim 5, characterized in that: The driving mechanism includes a forward motor (16) and a reverse motor (19) installed in a mounting frame (8), first sprockets (14) are respectively installed at both ends of the odd-numbered rotating shafts (13), the first sprockets (14) are connected to each other through a first transmission chain (15), and the forward motor (16) is installed on the first rotating shaft (13); A second sprocket (17) is installed at both ends of the even-numbered rotating shaft (13), and the second sprockets (17) are connected to each other through a second transmission chain (18). A reversing motor (19) is installed on the second rotating shaft (13); the first sprocket (14) and the second sprocket (17) are arranged horizontally staggered, with the first sprocket (14) being arranged close to the end of the rotating shaft (13) and the second sprocket (17) being arranged close to the end of the air guide plate (12).