Paving device for anti-static floor of data center
By designing a data center antistatic flooring installation device, multiple floors can be centrally stacked and batch-loaded. Combined with the gear meshing transmission of the moving mechanism, the problem of low efficiency in manual handling is solved, the installation efficiency is improved and the labor intensity is reduced, and the installation needs of large areas and complex sites are met.
Patent Information
- Application Number
- CN202511953397.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-23
- Publication Date
- 2026-02-13
AI Technical Summary
The current method of laying antistatic flooring relies on manual handling, which is inefficient and burdensome for workers, especially in large-area environments.
A data center antistatic flooring installation device was designed, which uses a delivery mechanism and a moving mechanism to achieve centralized stacking and batch loading of multiple floorboards. The delivery mechanism is moved and delivered simultaneously through gear meshing. Combined with the sliding connection between the sliding sleeve and the U-shaped frame, the installation position can be flexibly adjusted.
It significantly improves laying efficiency, reduces manual labor intensity, adapts to the needs of large-area laying, ensures the stability and accuracy of the deployment process, and is adaptable to flexible movement in complex sites.
Smart Images

Figure CN121519686A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of floor installation, and more particularly to an installation device for antistatic flooring in data centers. Background Technology
[0002] In the construction and operation of data centers, electrostatic discharge (ESD) protection is a crucial aspect of ensuring the stable operation of electronic equipment and extending its lifespan. The densely packed electronic components within data centers, such as servers, switches, and storage devices, are extremely sensitive to static electricity. Even minor ESD discharges can cause component breakdown and damage, leading to serious incidents such as data loss and system failure, resulting in significant economic losses and adverse social impacts. Therefore, data center floors typically require anti-static flooring with good conductivity and static dissipation capabilities. This allows static electricity to be promptly conducted away, creating a safe and reliable operating environment for the equipment.
[0003] The quality of antistatic flooring installation directly determines its electrostatic protection effect and stability in use, and the performance of the installation device, as the core tool for achieving efficient and high-quality installation, is of paramount importance.
[0004] Existing flooring installation methods mostly rely on manual handling of floorboards. Workers then manually move each floorboard one by one to lay it on the ground, resulting in low efficiency. Furthermore, when laying flooring in large spaces, the workload is heavy, increasing the burden on workers. Current technology lacks a method that allows multiple floorboards to be stacked inside a cabinet and then moved and deployed simultaneously using a moving device to achieve initial installation. Therefore, we propose a data center anti-static flooring installation device. Summary of the Invention
[0005] Purpose of the invention: The purpose of this invention is to provide a device for laying antistatic flooring in data centers, which solves the problems of low efficiency and heavy workload of existing antistatic flooring laying that relies on manual handling and placement. This device can realize the centralized stacking and batch carrying of multiple antistatic floorings, and complete the initial laying operation of precise placement while moving with the moving mechanism, effectively improving laying efficiency and reducing manual labor intensity.
[0006] Technical solution: A device for laying antistatic flooring in a data center, comprising a dispensing mechanism and a moving mechanism disposed below the dispensing mechanism;
[0007] The delivery mechanism includes a base plate, on the upper surface of which a stacking box is integrally formed, and the bottom of the stacking box penetrates through the base plate;
[0008] The bottom plate has fixed blocks symmetrically fixed to the front and rear of its lower surface. A crossbar is fixedly connected between two opposite fixed blocks on the left and right sides. A slider is slidably connected to the outer wall of the crossbar. A baffle plate is fixedly connected between two opposite sliders on the front and back sides.
[0009] Sliding sleeves are fixedly connected to both sides of the lower surface of the base plate;
[0010] The moving mechanism includes two U-shaped frames, which are located inside the two sliding sleeves and are slidably connected to the sliding sleeves.
[0011] The bottom of the U-shaped frame is fixedly connected to two concave parts, and the inner side of the concave parts is rotatably connected to rollers via a rotating shaft.
[0012] Furthermore, a spring is fixedly connected to the opposite side of the fixing block and the slider, located on the outside of the crossbar.
[0013] Furthermore, two bearing seats are fixedly connected to the lower surface of the sliding sleeve. The two bearing seats, which are opposite each other, are rotatably connected to a rotating rod via a rotating shaft. A gear is fixedly connected to the outer wall of the rotating rod. A winding reel is fixedly connected to the outer wall of the rotating rod, both in front of and behind the gear. A traction rope is fixedly connected to the outer wall of the winding reel and the outer wall of the baffle plate.
[0014] Furthermore, two L-shaped handrails are fixedly connected to both sides of the upper surface of the base plate, and the outer side of the L-shaped handrails is fitted with a sponge sleeve.
[0015] Furthermore, an incomplete toothed roller is fixedly connected to the opposite ends of the central shafts of the two opposing rollers, and the adjacent gears mesh with the incomplete toothed roller.
[0016] Furthermore, the two U-shaped frames facing each other are rotatably connected to round rods on their opposite front and opposite rear sides via pivots. Two mounting blocks are fixedly connected to the outer side of each round rod, and universal wheels are fixedly connected to the opposite sides of each of the two mounting blocks facing each other. The two ends of the round rods pass through to the opposite sides of the two U-shaped frames and are fixedly connected to hand handles.
[0017] Furthermore, positioning holes one are provided on the opposite sides of the two U-shaped frames and at the opposite positions of the two round rods, and positioning holes two are provided on the opposite sides of the two U-shaped frames and below the two round rods.
[0018] Furthermore, a positioning post is provided on the side of the handheld disk away from the U-shaped frame. The end of the positioning post near the handheld disk passes through the handheld disk and is inserted into the interior of the positioning hole one. A stop block is fixedly connected to the end of the positioning post away from the handheld disk. A spring two is fixedly connected to the opposite side of the stop block and the handheld disk, located outside the positioning post.
[0019] Beneficial effects: Significantly improves laying efficiency, achieving efficient coordination between batch loading and intermittent placement. The device uses an integrated, molded stacking box to centrally stack and stably support multiple antistatic flooring units, eliminating the limitations of traditional manual single-unit handling;
[0020] With the coordinated design of the moving mechanism and the delivery mechanism, the meshing transmission of the incomplete toothed roller and gear can automatically trigger the opening and closing of the baffle during the movement of the device, realizing the initial laying operation of intermittent delivery while moving. No additional manual operation of delivery is required, integrating the scattered transportation and laying process into continuous operation, which significantly improves the laying efficiency of large-area data center sites.
[0021] By sliding the sliding sleeve and the U-shaped frame, after a row of base plates is laid, the placement position can be adjusted by moving the sliding sleeve on the U-shaped frame. Then, the device can be moved to complete the laying. This method facilitates flexible laying in large spaces.
[0022] Significantly reduces manual labor intensity and optimizes the work experience. On the one hand, the centralized stacking design reduces the number of times workers need to move the floor back and forth, avoiding repetitive physical labor such as frequent bending and carrying. On the other hand, the device is equipped with L-shaped handrails covered with foam sleeves, which are comfortable to hold and easy to push the device. The movable structure at the bottom further reduces the resistance when the device moves, effectively reducing the physical exertion of workers during the operation of the device and reducing the workload.
[0023] It features flexible mobility and adaptability to diverse operational needs. The mobile mechanism innovatively incorporates a dual-movement structure of rollers and casters. Through the cooperation of positioning posts and different positioning holes, the movement mode can be quickly switched: rollers are used for straight-line laying to ensure stable movement of the device along the predetermined direction and ensure accurate placement of the flooring; when the device position needs to be adjusted or the site needs to be moved, the swivel wheel mode can be switched to flexibly adjust the movement direction, improve the device's mobility in complex sites, and eliminate the need for additional handling tools, adapting to the laying operation needs of different areas within the data center.
[0024] The deployment process is stable and controllable, ensuring the foundation for high-quality installation. The elasticity of spring one in the deployment mechanism allows the shielding plate to fit tightly against the base plate when not in deployment, reliably sealing the opening of the stacking box and preventing accidental drops during movement. During deployment, the shielding plate opens and closes smoothly through the cooperation of the traction rope and spring, ensuring the flooring falls orderly to the designated position under gravity. This reduces potential positional deviations that may occur during manual placement, laying a solid foundation for subsequent precise installation. Attached Figure Description
[0025] Figure 1 This is a front view structural diagram of the present invention;
[0026] Figure 2 This is a side view of the structure of the present invention;
[0027] Figure 3 This is a schematic diagram of the dispensing mechanism of the present invention;
[0028] Figure 4 This is a side view of the dispensing mechanism of the present invention;
[0029] Figure 5 This is a bottom view schematic diagram of the dispensing mechanism of the present invention;
[0030] Figure 6 This is a schematic diagram of the moving mechanism of the present invention;
[0031] Figure 7 This is a side view of the U-shaped frame structure of the present invention;
[0032] Figure 8 This is a schematic diagram of the structure of the incomplete toothed roller of the present invention;
[0033] Figure 9 This is a schematic diagram of the connection structure between the handheld disk and the positioning column of the present invention.
[0034] In the diagram: 1. Dispensing mechanism; 2. Moving mechanism; 101. Base plate; 102. Stacking box; 103. Fixing block; 104. Crossbar; 105. Sliding block; 106. Baffle plate; 107. Sliding sleeve; 108. Spring 1; 109. Shaft seat; 110. Rotating rod; 111. Gear; 112. Rewinding reel; 113. Traction rope; 114. L-shaped handrail; 115. Sponge sleeve; 201. U-shaped frame; 202. Concave part; 203. Roller; 204. Incomplete toothed roller; 205. Round rod; 206. Mounting block; 207. Caster wheel; 208. Hand handle; 209. Positioning hole 1; 210. Positioning hole 2; 211. Positioning post; 212. Stop block; 213. Spring 2. Detailed Implementation
[0035] To make the technical solution of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0036] Example
[0037] like Figures 1-5 As shown, a device for laying antistatic flooring in a data center is provided, including a dispensing mechanism 1;
[0038] The delivery mechanism 1 includes a base plate 101, and a stacking box 102 is integrally formed on the upper surface of the base plate 101. The bottom of the stacking box 102 penetrates the base plate 101.
[0039] A fixing block 103 is symmetrically fixedly connected to the front and rear of the lower surface of the base plate 101. A crossbar 104 is fixedly connected between two left and right opposite fixing blocks 103. A slider 105 is slidably connected to the outer wall of the crossbar 104. A baffle plate 106 is fixedly connected between two front and rear opposite sliders 105.
[0040] Sliding sleeves 107 are fixedly connected to both sides of the lower surface of the base plate 101;
[0041] A spring 108 is fixedly connected to the opposite side of the fixed block 103 and the slider 105, which is located outside the crossbar 104.
[0042] Two bearing seats 109 are fixedly connected to the lower surface of the sliding sleeve 107. The two bearing seats 109, which are opposite each other, are connected to a rotating rod 110 through a rotating shaft. A gear 111 is fixedly connected to the outer wall of the rotating rod 110. A winding reel 112 is fixedly connected to the outer wall of the rotating rod 110, both in front of and behind the gear 111. A traction rope 113 is fixedly connected to the outer wall of the winding reel 112 and the outer wall of the baffle plate 106.
[0043] Two L-shaped handrails 114 are fixedly connected to both sides of the upper surface of the base plate 101, and the outer side wall of the L-shaped handrails 114 is fitted with a sponge sleeve 115.
[0044] Instructions for use of delivery mechanism 1: First, the operator holds the L-shaped handle 114, which is covered with a sponge sleeve 115, and moves the device to the anti-static flooring stacking area. At this time, the shield 106 is in a closed state. Under the elastic force of the spring 108, the spring 108 pushes the slider 105 to slide along the crossbar 104, so that the shield 106 fits tightly against the lower surface of the base plate 101, sealing the opening at the bottom of the stacking box 102. Subsequently, multiple anti-static flooring units are stacked into the stacking box 102 in sequence. The stacking box 102, with its integral structure with the base plate 101, provides a stable bearing space for the flooring. After the flooring is laid out, the staff pushes the device to the data center area to be laid using the L-shaped handrail 114. During the movement of the device, the incomplete toothed roller 204 in the subsequent moving mechanism 2 meshes with the gear 111, driving the rotating rod 110 to rotate through the bearing 109. When the rotating rod 110 rotates, it simultaneously drives the winding reel 112 to rotate. The winding reel 112 winds up the traction rope 113, which pulls the baffle 106, causing the slider 105 to slide along the crossbar 104 toward the fixed block 103 and compress the spring 108. The baffle 106 then opens the bottom opening of the stacking box 102, and the anti-static flooring inside falls to the ground under gravity to complete the placement. When the incomplete toothed roller 204 disengages from the gear 111, the spring 108 returns to its elastic deformation, pushing the slider 105 back to its original position. The baffle 106 closes the opening again, stopping the flooring placement. This achieves the function of intermittently placing flooring while the device moves.
[0045] Meanwhile, the dispensing mechanism 1 can slide along the outside of the U-shaped frame 201 in the moving mechanism 2 using the bottom sliding sleeve 107, so that the flooring can be laid between different rows by moving the dispensing mechanism 1 above the moving mechanism 2.
[0046] like Figures 6-9 As shown, a mobile mechanism 2 is installed below the delivery mechanism 1;
[0047] The moving mechanism 2 includes two U-shaped frames 201, which are located inside the two sliding sleeves 107. The U-shaped frames 201 are slidably connected to the sliding sleeves 107.
[0048] The bottom of the U-shaped frame 201 is fixedly connected to two concave parts 202, and the inner side of the concave parts 202 is rotatably connected to rollers 203 via a pivot.
[0049] Two rollers 203 facing each other are fixedly connected to a partially toothed roller 204 at their opposite ends of the central shaft. The adjacent gears 111 mesh with the partially toothed roller 204.
[0050] Two U-shaped frames 201 facing each other are rotatably connected to round rods 205 on their opposite front and opposite rear sides via pivots. Two mounting blocks 206 are fixedly connected to the outer side of the round rods 205. Universal wheels 207 are fixedly connected to the opposite sides of the two mounting blocks 206 facing each other. The two ends of the round rods 205 pass through to the opposite sides of the two U-shaped frames 201 and are fixedly connected to hand handles 208.
[0051] Positioning holes 1 209 are provided on the opposite sides of the two U-shaped frames 201 and at the opposite positions of the two round rods 205, and positioning holes 210 are provided on the opposite sides of the two U-shaped frames 201 and below the two round rods 205.
[0052] A positioning post 211 is provided on the side of the handheld disk 208 away from the U-shaped frame 201. The end of the positioning post 211 near the handheld disk 208 passes through the handheld disk 208 and is inserted into the positioning hole 209. A stop block 212 is fixedly connected to the end of the positioning post 211 away from the handheld disk 208. A spring 213 is fixedly connected to the opposite side of the stop block 212 and the handheld disk 208, which is located outside the positioning post 211.
[0053] How to use the moving mechanism 2: Before moving the device, the moving method needs to be adjusted according to the laying requirements. When the device needs to move stably in a straight line to ensure the floor laying, the positioning column 211 is inserted into the positioning hole 209 under the elastic action of the spring 213. The caster wheel 207 is in the retracted state. The staff pushes the device through the L-shaped handrail 114. The roller 203 in the concave part 202 at the bottom of the U-shaped frame 201 rotates and drives the device to move. When the roller 203 rotates, it synchronously drives the incomplete toothed roller 204 on its central shaft to rotate, providing power for the intermittent dispensing of the dispensing mechanism 1.
[0054] Once the flooring is installed and the device needs to be moved, the worker pulls the stop block 212, causing the positioning post 211 to be pulled out of the positioning hole 209 and the spring 213 to be stretched. Then, the hand dial 208 is turned, which drives the mounting block 206 to rotate through the round rod 205, causing the caster wheel 207 to rotate to the position of contact with the ground. The stop block 212 is then released, and the spring 213 returns to its original position, pushing the positioning post 211 to be inserted into the positioning hole 209, thus fixing the caster wheel 207. At this time, the direction of movement of the device can be flexibly adjusted through the caster wheel 207.
[0055] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these modifications and improvements all fall within the scope of protection of the present invention. Therefore, the scope of protection of this patent should be determined by the appended claims.
Claims
1. A laying device for data center anti-static floors, comprising a delivery mechanism (1), characterized in that: The moving mechanism (2) is arranged below the feeding mechanism (1); The feeding mechanism (1) comprises a bottom plate (101), the upper surface of the bottom plate (101) is integrally formed with a stacking box (102), and the bottom of the stacking box (102) penetrates through the bottom plate (101); The lower surface of the bottom plate (101) is fixedly connected with a fixed block (103) at the front and rear, and the two fixed blocks (103) are symmetrically arranged; the outer side wall of the horizontal rod (104) is slidably connected with a sliding block (105); and the front and rear sliding blocks (105) are fixedly connected with a shielding plate (106). The lower surface of the bottom plate (101) is fixedly connected with a sliding sleeve (107) on both sides. The moving mechanism (2) comprises a U-shaped frame (201), the number of the U-shaped frame (201) is two, and the U-shaped frame (201) is located inside the two sliding sleeves (107) and is slidably connected with the sliding sleeve (107). The bottom of the U-shaped frame (201) is fixedly connected with two concave parts (202), and the inner side of the concave part (202) is rotatably connected with a roller (203) through a rotating shaft.
2. The data center static prevention floor laying device according to claim 1, wherein: The opposite side of the fixed block (103) and the sliding block (105) and the outer side of the horizontal rod (104) are fixedly connected with a spring (108).
3. The data center static dissipative flooring installation apparatus of claim 1, wherein: The lower surface of the sliding sleeve (107) is fixedly connected with two shaft seats (109), and the front and rear shaft seats (109) are rotatably connected with a rotating rod (110) through a rotating shaft; the outer side wall of the rotating rod (110) is fixedly connected with a gear (111); the outer side wall of the rotating rod (110) and the front and rear of the gear (111) are fixedly connected with a winding disc (112); and the outer side wall of the winding disc (112) and the outer side wall of the shielding plate (106) are fixedly connected with a traction rope (113).
4. The data center static dissipative flooring installation apparatus of claim 1, wherein: The upper surface of the bottom plate (101) is fixedly connected with two L-shaped handrails (114) on both sides, and the outer side wall of the L-shaped handrail (114) is sleeved with a sponge sleeve (115).
5. The data center static control flooring installation apparatus of claim 3, wherein: The opposite ends of the central shafts of the front and rear rollers (203) are fixedly connected with an incomplete tooth roller (204); and the adjacent gears (111) are meshedly connected with the incomplete tooth roller (204).
6. The data center static free flooring laying device of claim 1, wherein: The opposite sides of the front and rear U-shaped frames (201) are rotatably connected with a round rod (205) through a rotating shaft; the outer side wall of the round rod (205) is fixedly connected with two mounting blocks (206); the opposite sides of the front and rear mounting blocks (206) are fixedly connected with a universal wheel (207); and the two ends of the round rod (205) penetrate through the opposite sides of the two U-shaped frames (201) and are fixedly connected with a handheld disc (208).
7. The data center static free flooring laying device of claim 7, wherein: The opposite sides of the two U-shaped frames (201) and located at the opposite sides of the two round rods (205) are both provided with positioning holes one (209), and the opposite sides of the two U-shaped frames (201) and located below the two round rods (205) are both provided with positioning holes two (210).
8. The data center static free flooring laying device of claim 8, wherein: The side, away from the U-shaped frame (201), of the handheld disc (208) is provided with a positioning column (211), one end of the positioning column (211), close to the handheld disc (208), penetrates the handheld disc (208) and is inserted into the inside of the positioning hole one (209), one end of the positioning column (211), away from the handheld disc (208), is fixedly connected with a stop block (212), and the opposite side of the stop block (212) and the outside of the positioning column (211) are both fixedly connected with a spring two (213).