Combined and spliced anti-static floor

Through the innovative design of the load-bearing plate and composite substrate, the anti-static floor can be quickly assembled and disassembled, solving the problem of low installation efficiency and improving the overall performance of the floor.

CN223535998UActive Publication Date: 2025-11-11GUANGDONG HUAHONG RAISED FLOOR CO LTD
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Patent Information

Application Number
CN202423136462.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2025-11-11
Estimated Expiration
2034-12-18

AI Technical Summary

Technical Problem

Existing antistatic flooring has low installation efficiency, is inconvenient to assemble, and is easily damaged during disassembly.

Method used

By using clamping blocks and plug-in blocks on the load-bearing plate, as well as clamping holes and plug-in interfaces on the composite substrate, and combining the interlocking of the slots and blocks, rapid assembly is achieved, and the floor performance is enhanced through a multi-layer structure.

Benefits of technology

It improves installation efficiency, enhances the floor's waterproof, soundproof, heat-insulating, and pressure-resistant properties, ensures static electricity discharge, and extends its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a combined and assembled anti-static floor in the field of anti-static floors, which comprises a plurality of combined and assembled composite base plates and a plurality of overhead platforms, each overhead platform comprises a bottom plate, a support rod and a bearing plate, the bearing plate is welded on the top surface of the support rod, and the bottom plate is welded on the top surface of the support rod. The peripheral edge of the bearing plate protrudes and extends outwards to form a plurality of clamping blocks, the top face of the bearing plate protrudes and extends outwards to form a plurality of inserting blocks, the composite base plate is provided with a plurality of clamping openings matched with the clamping blocks in a clamping mode, and the clamping blocks are clamped into the clamping openings to achieve clamping and fixing. The composite substrate is provided with a plurality of plugging ports in plugging fit with the plugging blocks, and the plugging blocks are inserted into the plugging ports to realize plugging fit; according to the combined and assembled anti-static floor, the overhead platform and the composite base plates can be quickly combined and assembled, so that a plurality of composite base plates can be conveniently assembled, a large-area and flat floor surface can be formed, and the mounting efficiency is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of antistatic flooring, specifically a modular antistatic flooring. Background Technology

[0002] Antistatic flooring is a widely used flooring material in computer rooms, laboratories, electronic production workshops, and other places where static electricity interference and accumulation need to be prevented. Also known as dissipative antistatic flooring, it allows charge to dissipate when grounded or connected to any lower potential point, characterized by a resistance between 10⁵ and 10⁹ ohms. Raised antistatic flooring is assembled from supports, beams, and panels, and its characteristic is that there is a certain amount of space between the floor and the ground, facilitating cable routing and air supply.

[0003] When laying anti-static flooring in a computer room, the anti-static flooring is installed by fixing the frame to a bracket with bolts. Assembling the anti-static flooring involves securing the frame and the flooring with bolts, requiring numerous screws and other fasteners, as well as screwdrivers and other tools. After the frame and flooring are fixed, several pieces of anti-static flooring are assembled by welding or gluing. When assembling multiple pieces, tools are needed to weld them together, or glue is applied to the gaps between the pieces to achieve a secure bond. The fixed method not only reduces assembly efficiency but also consumes a lot of manpower. When disassembly is required after assembly, tools must be used to pry open the gaps between the antistatic flooring, or tools such as cutters must be used to separate the welded antistatic flooring. Disassembling the antistatic flooring not only damages the antistatic flooring but also affects work efficiency. Assembling the fixed frame and antistatic flooring by fixing it with screws and other fasteners, and assembling multiple antistatic flooring pieces by welding or gluing, results in technical problems such as low installation efficiency and inconvenience in combination and assembly of antistatic flooring. Utility Model Content

[0004] In order to overcome the shortcomings of existing technical solutions, this utility model provides a modular antistatic floor that can effectively solve the technical problems of low installation efficiency and inconvenience in modular assembly of existing antistatic floors.

[0005] The technical solution adopted by this utility model to solve its technical problem is: a modular antistatic floor, comprising several modularly assembled composite base plates and several raised platforms. Each raised platform includes a base plate, support rods, and load-bearing plates. The load-bearing plates are welded to the top surface of the support rods. The four edges of the load-bearing plates extend outwards to form several locking blocks. The top surface of the load-bearing plates extends outwards to form several insertion blocks. The composite base plates are provided with several locking holes that engage with the locking blocks. The locking blocks are inserted into the locking holes to achieve locking and fixing. The composite substrate is provided with several insertion interfaces for interlocking with the plug-in blocks. The plug-in blocks are inserted into the insertion interfaces to achieve interlocking. The composite substrate has a first splicing block and a second splicing block on its two sides respectively. The side of the first splicing block is recessed inward to form a slot, which extends along the length of the first splicing block. The side of the second splicing block protrudes outward to form a block, which extends along the length of the second splicing block. The size of the block is adapted to the size of the slot, and the block and the slot are interlocked.

[0006] Furthermore, the composite substrate sequentially includes a top plate, a waterproof plate, a sound insulation and heat preservation plate, a pressure-resistant plate, and a calcium sulfate substrate. The top plate is bonded to the waterproof plate, the waterproof plate is bonded to the sound insulation and heat preservation plate, the sound insulation and heat preservation plate is bonded to the pressure-resistant plate, and the pressure-resistant plate is bonded to the calcium sulfate substrate.

[0007] Furthermore, the compression plate has a foam board inside, and the cross-section of the foam board is honeycomb-shaped.

[0008] Furthermore, the sound insulation and heat preservation board has an insulation cavity and a vacuum cavity arranged sequentially inside, and the insulation cavity is filled with a layer of insulation cotton.

[0009] Furthermore, one end of the top plate protrudes outward to form several reinforcing plates, which are symmetrically arranged between adjacent reinforcing plates. One end of the waterproof plate is recessed inward to form several strip grooves, which are symmetrically arranged between adjacent strip grooves. The size of the reinforcing plate is adapted to the size of the strip groove, and the reinforcing plate and the strip groove are interlocked.

[0010] Furthermore, a wear-resistant layer is bonded to the top surface of the top plate.

[0011] Furthermore, the sides of both the first and second splicing blocks are bonded with edge-sealing conductive film, which is electrically connected to the load-bearing plate.

[0012] Furthermore, the elevated platform also includes several bolts and nuts, and the support rod is threadedly connected to the base plate through the nuts.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This utility model provides a modular antistatic floor, which achieves rapid assembly between the raised platform and the composite substrate by setting clamping blocks and plugging blocks on the load-bearing plate, as well as clamping holes and plugging interfaces on the composite substrate. Through the first and second splicing blocks set on both sides of the composite substrate, multiple composite substrates can be easily spliced ​​together by the interlocking of the slots and blocks, forming a large area of ​​flat floor surface, which greatly improves the installation efficiency. Attached Figure Description

[0014] Figure 1 This is a front view of a modular antistatic floor according to the present invention.

[0015] Figure 2 This is a top view of a modular antistatic floor according to the present invention;

[0016] Figure 3 This is an exploded view of a modular antistatic floor according to the present invention.

[0017] Figure 4 for Figure 3 Enlarged view of a portion of point A in the middle;

[0018] Figure 5 This is a perspective view of the composite substrate of a modular antistatic floor according to the present invention.

[0019] Figure 6 for Figure 5 Enlarged view of a section at point B in the middle;

[0020] Figure 7 This is a perspective view of the pressure-resistant plate of a modular antistatic floor according to the present invention.

[0021] Figure 8 This is a perspective view of a sound insulation and heat preservation board for a modular antistatic floor according to the present invention.

[0022] Figure 9 This is a perspective view of a waterproof board for a modular antistatic floor according to the present invention.

[0023] Figure 10 This is a perspective view of the top plate of a modular antistatic floor according to this utility model.

[0024] Numbering on the map:

[0025] 1-Elevated platform; 2-Composite substrate; 3-Card block; 4-Card slot; 5-Plug-in block; 6-Clamping block; 7-Bearing plate; 8-Support rod; 9-Base plate; 10-Bolt; 11-Nut; 12-Plug-in interface; 13-Clamping port; 14-Wear-resistant layer; 15-First splicing block; 16-Second splicing block; 17-Top plate; 18-Waterproof board; 19-Sound insulation and heat preservation board; 20-Pressure-resistant board; 21-Calcium sulfate substrate; 22-Foam board; 23-Insulation cotton layer; 24-Insulation cavity; 25-Vacuum cavity; 26-Strip groove; 27-Reinforcing plate; 28-Edge sealing conductive film. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0027] The following is combined with Figures 1-10 A detailed description of this utility model is provided below:

[0028] A modular antistatic floor includes several assembled composite base plates 2 and several raised platforms 1. Each raised platform 1 includes a base plate 9, support rods 8, and load-bearing plates 7. The load-bearing plates 7 are welded to the top surface of the support rods 8. The periphery of the load-bearing plates 7 protrudes outward to form several locking blocks 6, and the top surface of the load-bearing plates 7 protrudes outward to form several insertion blocks 5. The composite base plates 2 are provided with several locking holes 13 that engage with the locking blocks 6. The locking blocks 6 are engaged and fixed by inserting into the locking holes 13. The composite base plates 2 are provided with several insertion blocks 5 that engage with the insertion blocks 5. The plug-in interface 12 is used for plugging and mating. The plug-in block 5 is inserted into the plug-in interface 12 to achieve plugging and mating. The two sides of the composite substrate 2 are respectively provided with a first splicing block 15 and a second splicing block 16. The side of the first splicing block 15 is recessed inward to form a slot 4. The slot 4 extends along the length direction of the first splicing block 15. The side of the second splicing block 16 protrudes outward to form a locking block 3. The locking block 3 extends along the length direction of the second splicing block 16. The size of the locking block 3 is adapted to the size of the slot 4. The locking block 3 and the slot 4 are engaged and mated.

[0029] The composite substrate 2 sequentially comprises a top plate 17, a waterproof plate 18, a sound insulation and heat preservation plate 19, a pressure-resistant plate 20, and a calcium sulfate substrate 21. The top plate 17 is bonded to the waterproof plate 18, the waterproof plate 18 is bonded to the sound insulation and heat preservation plate 19, the sound insulation and heat preservation plate 19 is bonded to the pressure-resistant plate 20, and the pressure-resistant plate 20 is bonded to the calcium sulfate substrate 21, forming a multi-layered protective structure that improves the floor's waterproof, sound insulation, heat preservation, and pressure resistance. The pressure-resistant plate 20 contains a foam board 22 with a honeycomb cross-section. This honeycomb foam board 22 effectively enhances the floor's pressure resistance and load-bearing capacity while reducing its weight. The sound insulation and heat preservation plate 19 contains an insulation cavity 24 and a vacuum cavity 25 sequentially. The insulation cavity 24 is filled with insulation material. The insulation layer 23, through the setting of the insulation layer 23 and the insulation cavity 24, can achieve the function of heat preservation. The vacuum cavity 25 can effectively reduce noise. One end of the top plate 17 protrudes outward to form several reinforcing plates 27, which are symmetrically arranged between adjacent reinforcing plates 27. One end of the waterproof plate 18 is recessed inward to form several strip grooves 26, which are symmetrically arranged between adjacent strip grooves 26. The size of the reinforcing plate 27 is adapted to the size of the strip groove 26. The reinforcing plate 27 and the strip groove 26 are interlocked. The interlocking of the reinforcing plate 27 at one end of the top plate 17 and the strip groove 26 at one end of the waterproof plate 18 enhances the connection strength between the top plate 17 and the waterproof plate 18, and improves the overall stability of the floor. The top surface of the top plate 17 is bonded with a wear-resistant layer 14, which effectively improves the wear resistance of the floor surface and extends the service life of the floor.

[0030] The first splicing block 15 and the second splicing block 16 are both bonded with edge-sealing conductive film 28. The edge-sealing conductive film 28 is electrically connected to the load-bearing plate 7, which can ensure the conductivity continuity between the composite substrates 2, effectively prevent static electricity accumulation, and transfer static electricity from the edge-sealing conductive film 28 to the elevated platform 1 and guide it to the ground.

[0031] The elevated platform 1 also includes several bolts 10 and nuts 11. The support rod 8 is threadedly connected to the base plate 9 through the nuts 11. By setting the nuts 11 to connect the support rod 8 and the base plate 9, it is convenient to install and disassemble the elevated platform 1. Furthermore, by setting several bolts 10, it is convenient to install the base plate 9 onto the ground.

[0032] In this embodiment, the waterproof membrane 18 is composed of a copolymer of polyethylene and polyvinyl chloride, which has good seepage prevention function, prevents water penetration, and has good waterproof performance. The wear-resistant layer 14 is composed of polyvinyl chloride, which has good wear resistance characteristics, preventing the top plate 17 from being stepped on by shoes and causing great wear. When static electricity is generated on the composite substrate 2, the static electricity generated can be conducted to the elevated platform 1 through the edge sealing conductive film 28, and then conducted from the elevated platform 1 to the ground, with good anti-static effect.

[0033] This embodiment of a modular antistatic floor achieves rapid assembly between the raised platform 1 and the composite substrate 2 by setting clamping blocks 6 and plugging blocks 5 on the load-bearing plate 7, and clamping holes 13 and plugging interfaces 12 on the composite substrate 2. Through the first splicing block 15 and the second splicing block 16 set on both sides of the composite substrate 2, and through the interlocking cooperation of the slot 4 and the clamping block 3, multiple composite substrates 2 can be easily spliced ​​to form a large area and a flat floor surface, which greatly improves the installation efficiency.

[0034] During assembly, prepare several elevated platforms 1 and several composite substrates 2. First, fix the support rods 8 and the base plate 9 with nuts 11. Tighten bolts 10 around the base plate 9 to fix the elevated platforms 1. After fixing the elevated platforms 1, press down on a composite substrate 2 so that the locking port 13 on the composite substrate 2 engages with the locking block 6. Then, engage the insertion port 12 with the insertion block 5 to achieve rapid assembly of the elevated platforms 1 and composite substrates 2. After the elevated platforms 1 and composite substrates 2 are assembled, align the first splicing block 15 on one composite substrate 2 with the second splicing block 16 on another composite substrate 2 so that the locking block 3 on the second splicing block 16 engages with the locking groove 4 on the first splicing block 15. This allows the two composite substrates 2 to be spliced ​​together. Repeat the above steps to quickly assemble several composite substrates 2 and several elevated platforms 1.

[0035] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this invention, and no reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A modular antistatic floor, comprising several modularly assembled composite substrates and several raised platforms, wherein each raised platform includes a base plate, support rods, and load-bearing plates, the load-bearing plates being welded to the top surface of the support rods, characterized in that: The load-bearing plate has several locking blocks extending outward from its four edges, and several insertion blocks extending outward from its top surface. The composite substrate has several locking holes that engage with the locking blocks, and the locking blocks are engaged and fixed by snapping into the locking holes. The composite substrate also has several insertion interfaces that engage with the insertion blocks, and the insertion blocks are inserted into the insertion interfaces to achieve a plug-in engagement. The composite substrate has a first splicing block and a second splicing block on its two sides, respectively. The side of the first splicing block is recessed inward to form a slot, which extends along the length of the first splicing block. The side of the second splicing block protrudes outward to form a locking block, which extends along the length of the second splicing block. The size of the locking block matches the size of the slot, and the locking block and the slot engage in a locking fit.

2. The modular antistatic flooring according to claim 1, characterized in that: The composite substrate comprises, in sequence, a top plate, a waterproof plate, a sound insulation and heat preservation plate, a pressure-resistant plate, and a calcium sulfate substrate. The top plate is bonded to the waterproof plate, the waterproof plate is bonded to the sound insulation and heat preservation plate, the sound insulation and heat preservation plate is bonded to the pressure-resistant plate, and the pressure-resistant plate is bonded to the calcium sulfate substrate.

3. The modular antistatic flooring according to claim 2, characterized in that: The compression plate has a foam board inside, and the cross-section of the foam board is honeycomb-shaped.

4. The modular antistatic flooring according to claim 2, characterized in that: The sound insulation and heat preservation board has an insulation cavity and a vacuum cavity arranged sequentially inside, and the insulation cavity is filled with a layer of insulation cotton.

5. The modular antistatic flooring according to claim 2, characterized in that: One end of the top plate protrudes outward to form several reinforcing plates, which are symmetrically arranged between adjacent reinforcing plates. One end of the waterproof plate is recessed inward to form several strip grooves, which are symmetrically arranged between adjacent strip grooves. The size of the reinforcing plate is adapted to the size of the strip groove, and the reinforcing plate and the strip groove are interlocked.

6. The modular antistatic flooring according to claim 2, characterized in that: The top surface of the top plate is bonded with a wear-resistant layer.

7. A modular antistatic floor according to any one of claims 1-6, characterized in that: Both the first and second splicing blocks have edge-sealing conductive films bonded to their sides, and the edge-sealing conductive films are electrically connected to the load-bearing plate.

8. A modular antistatic floor according to any one of claims 1-6, characterized in that: The elevated platform also includes several bolts and nuts, and the support rod is threadedly connected to the base plate through the nuts.