Anti-static raised floor
The design of the embedded frame and support adjustment components solves the problems of collapse and loose support during the fixing process of the anti-static raised floor, realizes the stable installation and height adjustment of the floor, and ensures the stability and adaptability of the support.
Patent Information
- Application Number
- CN202422847707.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-11-21
AI Technical Summary
The anti-static raised floor is prone to collapse during the fixing process and the support is not firm, and the height cannot be adjusted.
It adopts embedded frame and support adjustment components, which are fixed by the cooperation of fixed blocks and fixed grooves, and supported and installed by frame brackets. The support adjustment components adjust the height by rotating the support column, and the connecting thread is used to achieve precise height adjustment.
The floor is stably installed to avoid collapse, and the height can be adjusted as needed to ensure the stability and adaptability of the support.
Smart Images

Figure CN223374026U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building bricks, in particular to an anti-static movable floor. Background Art
[0002] Anti-static flooring, also known as dissipative static flooring, is a type of flooring that dissipates charge when grounded or connected to any lower potential point. Characterized by a resistance between 10⁵ and 10⁹ ohms, anti-static elevated flooring is primarily used in computer rooms, data processing centers, laboratories, microwave communication stations, programmable telephone exchange rooms, mobile communication rooms, satellite ground stations, radio control rooms, television transmitter control rooms, broadcast control rooms, surveillance rooms, and central control rooms. Anti-static products are widely used in the microelectronics industry, in cleanrooms for electronic components, semiconductors, and electronic product assembly, as well as large-scale and ultra-large-scale integrated circuits. They prevent static electricity generated by human movement within the workshop. They control the harmful effects of electrostatic discharge on computer communications, various electronic devices, and static-sensitive devices, preventing damage to computer memory and the internal components of electronic instruments. They are also used in locations sensitive to static, such as munitions, flammable and explosive materials, petrochemical workshops, hospital operating rooms, anesthesia rooms, oxygen bars, and other locations requiring anti-static measures.
[0003] However, the following problems exist during the specific installation process of anti-static movable floors: 1. During the floor fixing process, the fixing effect is only supported by sand and cement, which will cause collapse after a long period of use; 2. The support of the floor is not firm during use and the height cannot be adjusted. In view of this, an anti-static movable floor was developed. Utility Model Content
[0004] The utility model proposes an anti-static movable floor, which solves the problem in the related art that the fixing effect of the floor is only fixed by sand and cement during the fixing process, which may lead to collapse after a long time of use, and the support is not firm and the height cannot be adjusted during the use of the floor.
[0005] The technical solution of the utility model is as follows:
[0006] An installation floor, wherein an anti-static coating is provided on the bottom of the installation floor;
[0007] An installation and fixing component, wherein the installation and fixing component is arranged at an edge of the installation floor;
[0008] a support adjustment assembly, the support adjustment assembly being arranged at the bottom of the installation floor;
[0009] The installation and fixing assembly includes an embedded frame, fixed blocks are provided on opposite sides of the upper end surface of the embedded frame, a frame plug-in frame is connected to the fixed block, a fixed plate is provided at the bottom of the frame plug-in frame, a fixed groove is provided at the bottom of the fixed plate, the fixed block is inserted into the fixed groove, and a positioning plate is provided on the side surface of the embedded frame.
[0010] As a further technical solution, the frame insert is in a cross-shaped structure, the frame insert fits into the corners of the installation floor, and a circular inclined arc surface is provided on the top of the frame insert.
[0011] As a further technical solution, the support adjustment component includes a force-bearing plate, which is arranged at the bottom of the positioning plate. A plug-in sleeve is provided on the force-bearing plate, and an plug-in hole is opened in the plug-in sleeve. The plug-in hole is connected to the force-bearing plate, and a support column is inserted in the plug-in hole. A ground support plate is provided at the bottom of the support column.
[0012] As a further technical solution, the inner surface of the insertion hole is provided with a connecting internal thread, and the outer surface of the support column is provided with a connecting external thread, and the connecting external thread is screwedly connected to the connecting internal thread.
[0013] As a further technical solution, the ground support plate is a conical cavity structure, and an insert connection groove is opened on the upper end surface of the force-bearing plate.
[0014] As a further technical solution, the bottom of the antistatic coating is provided with strip-shaped mounting grooves, and the strip-shaped mounting grooves are evenly distributed on the bottom surface of the antistatic coating.
[0015] As a further technical solution, the antistatic coating and the installation floor are both rectangular structures, and the antistatic coating matches the structure of the installation floor.
[0016] As a further technical solution, the fixing groove matches the shape of the fixing block, and the depth of the fixing groove matches the height of the fixing block.
[0017] As a further technical solution, the mounting base plate and the antistatic coating are fixedly bonded together by means of a sealant.
[0018] As a further technical solution, the number of the plug-in connection grooves is four, and the four plug-in connection grooves are evenly distributed on the force-bearing disk along a circle, and the positioning disk and the force-bearing disk are fixedly plug-in connected.
[0019] The working principle and beneficial effects of the utility model are as follows:
[0020] The following effects are achieved in the utility model: 1. After the fixing blocks on the embedded frame in the installation fixing assembly are plugged and fixed into the fixing grooves, the installation floor is supported by the frame plug-in brackets on the fixing plate. Frame plug-ins are provided at the four corners of an installation floor so that the installation floor can be fixed; 2. After the support column in the support adjustment assembly is rotated, the height of the force plate is adjusted by engaging the connecting external thread with the connecting internal thread, thereby realizing the adjustment of the overall height of the embedded frame. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0022] Figure 1 This is a schematic diagram of the structure of the utility model;
[0023] Figure 2 This is an axonometric view of the plug-in frame of the utility model;
[0024] Figure 3 This is an axonometric view of the ground support plate of the utility model;
[0025] Figure 4 This is a cross-sectional view of the ground support plate of the utility model;
[0026] In the figure: 1. Install the floor; 2. Anti-static coating; 3. Install the fixing components; 3-1. Embedded frame; 3-2. Fixing block; 3-3. Frame bracket; 3-4. Fixing plate; 3-5. Fixing slot; 3-6. Positioning plate; 3-7. Circular inclined arc surface; 4. Support adjustment component; 4-1. Force plate; 4-2. Insert sleeve; 4-3. Insert hole; 4-4. Support column; 4-5. Ground support plate; 4-6. Connecting internal thread; 4-7. Connecting external thread; 4-8. Insert connecting slot; 5. Strip installation pattern. DETAILED DESCRIPTION
[0027] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0028] like Figures 1 to 4 As shown, this embodiment proposes an anti-static movable floor, including
[0029] Installing floor 1, with anti-static coating 2 provided on the bottom of the installing floor 1;
[0030] An installation fixing component 3 is arranged at the edge of the installation floor 1;
[0031] A support and adjustment assembly 4 is provided at the bottom of the installation floor 1;
[0032] The installation and fixing component 3 includes an embedded frame 3-1, and fixed blocks 3-2 are provided on opposite sides of the upper end surface of the embedded frame 3-1. A frame plug-in frame 3-3 is connected to the fixed block 3-2. A fixed plate 3-4 is provided at the bottom of the frame plug-in frame 3-3. A fixed groove 3-5 is provided at the bottom of the fixed plate 3-4. The fixed block 3-2 is inserted into the fixed groove 3-5. A positioning plate 3-6 is provided on the side surface of the embedded frame 3-1.
[0033] In this embodiment, after the fixing block 3-2 on the embedded frame 3-1 is plugged and fixed into the fixing groove 3-5, the installation floor 1 is supported by the frame plug-in bracket 3-3 on the fixing plate 3-4. The frame plug-in bracket 3-3 is set at the four corners of a piece of installation floor 1 to fix the installation floor 1.
[0034] Specifically, the frame inserting frame 3-3 is a cross-shaped structure, the frame inserting frame 3-3 fits in with the corners of the installation floor 1, and a circular inclined arc surface 3-7 is provided on the top of the frame inserting frame 3-3.
[0035] In this embodiment, the circular inclined arc surfaces 3 - 7 are embedded in the four corners of the installation floor 1 , and the installation floor 1 can be beautified with a beautifying glue after installation.
[0036] Furthermore, the support adjustment component 4 includes a force-bearing disk 4-1, which is arranged at the bottom of the positioning disk 3-6. A plug-in sleeve 4-2 is provided on the force-bearing disk 4-1, and an plug-in hole 4-3 is opened in the plug-in sleeve 4-2. The plug-in hole 4-3 is connected to the force-bearing disk 4-1, and a support column 4-4 is inserted in the plug-in hole 4-3. A ground support disk 4-5 is provided at the bottom of the support column 4-4.
[0037] In this embodiment, the force plate 4-1 is placed on the positioning plate 3-6. The overall height of the force plate 4-1 can be adjusted by sliding the support column 4-4 in the insertion hole 4-3, and the ground support plate 4-5 provides support from the ground.
[0038] Furthermore, an inner surface of the insertion hole 4-3 is provided with a connecting internal thread 4-6, and an outer surface of the support column 4-4 is provided with a connecting external thread 4-7, and the connecting external thread 4-7 and the connecting internal thread 4-6 are screwed together. The ground support plate 4-5 is a conical cavity structure, and an insertion connection groove 4-8 is provided on the upper end surface of the force plate 4-1.
[0039] In this embodiment, after the support column 4-4 is rotated, the height of the force plate 4-1 is adjusted by engaging the external thread 4-7 with the internal thread 4-6, thereby adjusting the overall height of the embedded frame 3-1.
[0040] Furthermore, the bottom of the anti-static covering 2 is provided with strip-shaped mounting grooves 5, which are evenly distributed on the bottom surface of the anti-static covering 2. The anti-static covering 2 and the mounting floor 1 are both rectangular structures. The anti-static covering 2 matches the structure of the mounting floor 1. The fixing groove 3-5 matches the shape of the fixing block 3-2, and the depth of the fixing groove 3-5 matches the height of the fixing block 3-2.
[0041] In this embodiment, the strip-shaped installation grooves 5 are used to more effectively fit the floor panel 1 to the building materials laid on the ground.
[0042] Furthermore, the mounting base and the antistatic coating 2 are fixedly bonded together by sealant. There are four plug-in connection slots 4-8, which are evenly distributed around the force-bearing disk 4-1. The positioning disk 3-6 is fixedly plug-in connected to the force-bearing disk 4-1.
[0043] After being plugged and fixed between the fixing block 3-2 and the fixing groove 3-5 on the embedded frame 3-1 in the installation fixing component 3, the installation floor 1 is supported by the frame plug-in bracket 3-3 on the fixing plate 3-4. Frame plug-ins 3-3 are set at the four corners of the installation floor 1 to fix the installation floor 1. The circular inclined arc surface 3-7 is embedded in the four corners of the installation floor 1. After the installation floor 1 is installed, it can be caulked with caulking glue. The force disk 4-1 in the support adjustment component 4 is placed on the positioning disk 3-6. The overall height of the force disk 4-1 can be adjusted by sliding the support column 4-4 in the insertion hole 4-3. The ground support plate 4-5 supports from the ground. After rotating the support column 4-4, the height of the force disk 4-1 is adjusted by connecting the external thread 4-7 and the internal thread 4-6 in the meshing state, thereby realizing the adjustment of the overall height of the embedded frame 3-1.
[0044] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. An anti-static raised floor, characterized in that: include An installation floor (1), wherein an antistatic coating (2) is provided at the bottom of the installation floor (1); An installation and fixing component (3), wherein the installation and fixing component (3) is arranged at an edge of the installation floor (1); A support adjustment component (4), the support adjustment component (4) being arranged at the bottom of the installation floor (1); The installation and fixing assembly (3) comprises an embedded frame (3-1), fixed blocks (3-2) are provided on opposite sides of the upper end surface of the embedded frame (3-1), a frame plug-in frame (3-3) is connected to the fixed block (3-2), a fixed plate (3-4) is provided at the bottom of the frame plug-in frame (3-3), a fixed groove (3-5) is provided at the bottom of the fixed plate (3-4), the fixed block (3-2) is inserted into the fixed groove (3-5), and a positioning plate (3-6) is provided on the side surface of the embedded frame (3-1).
2. The anti-static raised floor according to claim 1, characterized in that: The frame inserting frame (3-3) is in a cross-shaped structure, the frame inserting frame (3-3) fits in with the corners of the installation floor (1), and a circular inclined arc surface (3-7) is provided on the top of the frame inserting frame (3-3).
3. The anti-static raised floor according to claim 1, characterized in that: The support adjustment component (4) comprises a force-bearing disc (4-1), the force-bearing disc (4-1) being arranged at the bottom of the positioning disc (3-6), an inserting sleeve (4-2) being arranged on the force-bearing disc (4-1), an inserting hole (4-3) being formed in the inserting sleeve (4-2), the inserting hole (4-3) being connected to the force-bearing disc (4-1), a support column (4-4) being inserted in the inserting hole (4-3), and a ground support disc (4-5) being arranged at the bottom of the support column (4-4).
4. The anti-static raised floor according to claim 3, characterized in that: The inner surface of the insertion hole (4-3) is provided with a connecting internal thread (4-6), and the outer surface of the support column (4-4) is provided with a connecting external thread (4-7), and the connecting external thread (4-7) is screwedly connected to the connecting internal thread (4-6).
5. The anti-static raised floor according to claim 3, characterized in that: The ground support plate (4-5) is a conical cavity structure, and the upper end surface of the force-bearing plate (4-1) is provided with an inserting connection groove (4-8).
6. The anti-static raised floor according to claim 1, characterized in that: The bottom of the antistatic coating (2) is provided with strip-shaped mounting grooves (5), and the strip-shaped mounting grooves (5) are evenly distributed on the bottom surface of the antistatic coating (2).
7. The anti-static raised floor according to claim 1, characterized in that: The antistatic coating (2) and the installation floor (1) are both rectangular structures, and the structures of the antistatic coating (2) and the installation floor (1) match.
8. The anti-static raised floor according to claim 1, characterized in that: The shape of the fixing groove (3-5) matches that of the fixing block (3-2), and the depth of the fixing groove (3-5) matches that of the fixing block (3-2).
9. The anti-static raised floor according to claim 1, characterized in that: The installation floor and the antistatic covering (2) are fixedly bonded and connected via a sealant.
10. The anti-static raised floor according to claim 3, characterized in that: The number of the plug-in connection grooves (4-8) is four, and the four plug-in connection grooves (4-8) are evenly distributed on the force-bearing disk (4-1) along a circumference, and the positioning disk (3-6) and the force-bearing disk (4-1) are fixedly plug-in connected.