Modular polygonal network floor assembly
By using a modular splicing support structure for polygonal network flooring, and employing reinforcing rods and support components to form a honeycomb support frame, the problems of inflexible splicing and uneven load-bearing in traditional network flooring installation are solved, thereby improving the stability and service life of the flooring, as well as the convenience of quick assembly and disassembly.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GAUNGLIN SUZHOU CO LTD
- Filing Date
- 2025-04-14
- Publication Date
- 2026-05-29
AI Technical Summary
Traditional network floor installation suffers from poor splicing flexibility, uneven load-bearing capacity, and low cable management efficiency, resulting in serious material waste and difficulty in meeting the load-bearing requirements of high-density equipment in modern data centers. Construction and expansion adjustments are time-consuming and labor-intensive, limiting the rapid deployment of intelligent spaces.
The modular splicing support structure of the polygonal network floor is adopted. The honeycomb support frame is formed by reinforcing rods and support components, forming a multi-point distributed support design to balance the load distribution. The floor can be quickly disassembled and assembled through the limiting device.
It enhances the floor's resistance to pressure and deformation, preventing localized collapse and improving the floor's stability and lifespan, while also supporting quick disassembly and flexible adjustment.
Smart Images

Figure CN224300348U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of network floor installation technology, and in particular to a modular splicing support structure for polygonal network floors. Background Technology
[0002] Traditional network floors are generally installed in a fixed manner, which suffers from poor splicing flexibility, uneven load-bearing capacity, and low cable management efficiency. Frequent cutting of the flooring during construction leads to significant material waste, and subsequent expansion or adjustments require demolition and reconstruction, which is time-consuming and labor-intensive. These problems directly increase building operation and maintenance costs and limit the need for rapid deployment of intelligent spaces.
[0003] In addition, traditional flooring is insufficient to meet the load-bearing requirements of high-density equipment in modern data centers (such as server racks), and there is an urgent need for a modular, highly compatible, and quickly disassembled support structure solution. Utility Model Content
[0004] The technical problem to be solved by this utility model is: In order to solve the technical problems in the prior art, this utility model provides a modular splicing support structure for polygonal network floor.
[0005] The technical solution adopted by this utility model to solve its technical problem is: a modular splicing support structure for polygonal network flooring, including support components and hexagonal flooring provided on the support components. Each hexagonal flooring is provided with six support components, and adjacent support components are connected by reinforcing rods, with the six reinforcing rods forming a hexagon.
[0006] The modular splicing support structure of this utility model of polygonal network flooring uses reinforcing rods and support components to form a honeycomb support frame, which improves the ability to resist compression and deformation. At the same time, it forms a multi-point distributed support design, which balances the load distribution, avoids local collapse, improves the stability of the floor, and can ensure the service life of the floor.
[0007] Furthermore, the polygonal floor is in the form of a regular hexagon.
[0008] Furthermore, the support assembly includes a base, a screw, a screw sleeve, and a support. The screw is fixedly connected to the base. One end of the screw sleeve is threadedly connected to the screw, and the other end is threadedly connected to the support. When the screw sleeve rotates, the distance between the support and the base increases or decreases. The support is used to place the hexagonal floor.
[0009] Furthermore, a limiting sleeve is threadedly connected to the screw, the upper half of the limiting sleeve is fitted over the threaded sleeve, and the top surface of the lower half of the limiting sleeve is used to contact the bottom surface of the threaded sleeve.
[0010] Furthermore, a limiting cylinder is fixedly connected to the support, and a limiting hole for inserting the limiting cylinder is provided on the hexagonal floor.
[0011] Furthermore, the support is provided with an installation groove, and a rotating shaft is rotatably connected to the side wall of the installation groove. A rotating rod is sleeved on the rotating shaft. The limiting cylinder is provided with an installation hole. One end of the rotating rod extends into the installation hole and is hinged to a connecting rod. A slider is hinged to the end of the connecting rod away from the rotating rod. A sliding groove for the slider to slide is provided on the side wall of the installation hole. The sliding groove passes through the side wall of the limiting cylinder. The other end of the rotating rod is connected to a pressure rod. The top of the pressure rod extends out of the installation groove. When the hexagonal floor is placed on the support, the pressure rod moves down under the pressure of the hexagonal floor, so that the rotating rod rotates toward the sliding groove, thereby pushing the slider to rotate toward the side wall of the limiting hole and abutting against the side wall of the limiting hole.
[0012] Furthermore, a torsion spring is fitted on the rotating shaft. One end of the torsion spring is connected to the side wall of the mounting groove, and the other end is connected to the rotating rod. The torsion spring applies a torque to the rotating rod, causing the rotating rod to rotate in the direction of the axis of the limiting hole.
[0013] Furthermore, each of the supports holds three hexagonal floor panels, and the reinforcing rod is connected to the base.
[0014] The beneficial effects of this utility model are:
[0015] 1. A honeycomb support frame is formed by reinforcing rods and support components, which improves the ability to resist compression and deformation. At the same time, it forms a multi-point distributed support design, balances the load distribution, avoids local collapse, improves the stability of the floor, and can ensure the service life of the floor.
[0016] 2. When installing the hexagonal floor, fit the limiting hole onto the corresponding limiting cylinder. As the hexagonal floor is lowered, it presses against the pressure rod. The pressure rod moves down under the pressure of the hexagonal floor, causing the rotating rod to rotate toward the slide groove, so that the slider moves toward the limiting hole and abuts against the side wall of the limiting hole, thereby clamping the hexagonal floor.
[0017] 3. When it is necessary to disassemble the hexagonal floor, use a special tool to insert into the mounting holes of the six corresponding limit cylinders at the same time, press down the rotating rod at the same time to make the slider retract into the slide groove, and at the same time the pressure rod moves up to lift the hexagonal floor, at which point the hexagonal floor can be removed. Attached Figure Description
[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0019] Figure 1 This is a top view schematic diagram illustrating the overall modular splicing support structure of the polygonal network floor in this utility model.
[0020] Figure 2 This is a bottom view of the reinforcing rod in this utility model.
[0021] Figure 3 This is a partial cross-sectional structural diagram illustrating the support component in this utility model.
[0022] Figure 4 This is a partial cross-sectional schematic diagram illustrating the internal structure of the limiting cylinder in this utility model.
[0023] Figure 5 This is a cross-sectional structural diagram illustrating the rotating shaft in this utility model.
[0024] In the diagram: 1. Support assembly; 11. Base; 12. Screw; 13. Screw sleeve; 14. Support; 15. Limiting sleeve; 2. Hexagonal floor; 21. Limiting hole; 3. Reinforcing rod; 4. Limiting cylinder; 41. Mounting hole; 411. Slide groove; 42. Mounting slot; 43. Rotating rod; 44. Rotating shaft; 45. Connecting rod; 46. Slider; 47. Pressure rod; 48. Torsion spring. Detailed Implementation
[0025] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.
[0026] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined with "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more. In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0027] This utility model discloses a modular splicing support structure for polygonal network flooring.
[0028] Reference Figures 1 to 5 A modular splicing support structure for polygonal network flooring includes support components 1 and hexagonal floor panels 2 mounted on the support components 1. The hexagonal floor panels 2 can be regular hexagons. Each hexagonal floor panel 2 corresponds to six support components 1, and adjacent support components 1 are connected by reinforcing rods 3, with the six reinforcing rods 3 forming a hexagon. The reinforcing rods 3 and the support components 1 form a honeycomb support frame, improving the resistance to compression and deformation, while also creating a multi-point distributed support design to balance load distribution, prevent local collapse, improve the stability of the flooring, and ensure its service life.
[0029] Specifically, the support assembly 1 includes a base 11, a screw 12, a screw sleeve 13, and a support 14. The screw 12 is fixedly connected to the base 11. One end of the screw sleeve 13 is threadedly connected to the screw 12, and the other end is threadedly connected to the support 14. When the screw sleeve 13 rotates, the distance between the support 14 and the base 11 increases or decreases. The support 14 is used to place hexagonal floor tiles 2, and each support 14 supports three hexagonal floor tiles 2. The reinforcing rod 3 is connected to the base 11 to facilitate the formation of a honeycomb-shaped frame. The screw sleeve 13 has a tool hole inside, and its outer side wall also has a hexagonal block structure, which allows the operator to rotate the screw sleeve 13 using tools.
[0030] In addition, a limiting sleeve 15 is threaded onto the screw 12. The upper half of the limiting sleeve 15 is fitted over the screw sleeve 13, and the top surface of the lower half of the limiting sleeve 15 is used to contact the bottom surface of the screw sleeve 13 to facilitate support for the screw sleeve 13.
[0031] A limiting cylinder 4 is fixedly connected to the support 14, and a limiting hole 21 for the limiting cylinder 4 to be inserted is provided on the hexagonal floor 2.
[0032] Specifically, the support 14 is provided with an installation groove 42, and a rotating shaft 44 is rotatably connected to the side wall of the installation groove 42. A rotating rod 43 is sleeved on the rotating shaft 44. An installation hole 41 is provided in the limiting cylinder 4, and the installation groove 42 communicates with the installation hole 41. One end of the rotating rod 43 extends into the installation hole 41 and is hinged to a connecting rod 45. The end of the connecting rod 45 away from the rotating rod 43 is hinged to a slider 46. A sliding groove 411 for the slider 46 to slide is provided on the side wall of the installation hole 41. The sliding groove 411 is provided through the side wall of the limiting cylinder 4. The other end of the rotating rod 43 is connected to a pressure rod 47. The top of the pressure rod 47 extends out of the installation groove 42. When the hexagonal floor 2 is placed on the support 14, the pressure rod 47 moves down under the pressure of the hexagonal floor 2, so that the rotating rod 43 rotates toward the sliding groove 411, thereby pushing the slider 46 to rotate toward the side wall of the limiting hole 21 and abut against the side wall of the limiting hole 21.
[0033] In addition, a torsion spring 48 is fitted on the rotating shaft 44. One end of the torsion spring 48 is connected to the side wall of the mounting groove 42, and the other end is connected to the rotating rod 43. The torsion spring 48 applies a torque to the rotating rod 43, causing the rotating rod 43 to rotate in the direction of the axis of the limiting hole 21, so that the slider 46 is in the state of retracting into the slide groove 411 under normal conditions. At the same time, the gravity of the hexagonal floor 2 is sufficient to overcome the torque of the torsion spring 48.
[0034] When installing the hexagonal floor 2, the limiting hole 21 is fitted onto the corresponding limiting cylinder 4. As the hexagonal floor 2 is lowered, it presses against the pressure rod 47. Under the pressure of the hexagonal floor 2, the pressure rod 47 moves downward, causing the rotating rod 43 to rotate toward the slide groove 411, which causes the slider 46 to move toward the limiting hole 21 and to abut against the side wall of the limiting hole 21, thereby clamping the hexagonal floor 2.
[0035] When the hexagonal floor 2 needs to be disassembled, a special tool is inserted simultaneously into the mounting holes 41 of the six corresponding limiting cylinders 4. The rotating rod 43 is pressed down simultaneously, causing the slider 46 to retract into the slide groove 411. At the same time, the pressure rod 47 moves up, lifting the hexagonal floor 2, at which point the hexagonal floor 2 can be removed. The special tool can be a hexagonal frame, with a tool rod connected at each corner point that can be inserted into the mounting hole 41. The tool rod can press down the rotating rod 43, causing the rotating rod 43 to rotate in the direction of the axis of the limiting hole 21.
[0036] Working principle: The reinforcing rod 3 and the support component 1 form a honeycomb support frame, which improves the ability to resist compression and deformation. At the same time, it forms a multi-point distributed support design, balances the load distribution, avoids local collapse, improves the stability of the floor, and can ensure the service life of the floor.
[0037] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the technical concept of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.
Claims
1. A modular splicing support structure for polygonal network flooring, characterized in that, It includes a support component (1) and a hexagonal floor (2) disposed on the support component (1). Each hexagonal floor (2) is provided with six support components (1). Adjacent support components (1) are connected by reinforcing rods (3), and the six reinforcing rods (3) form a hexagon.
2. The modular splicing support structure for polygonal network flooring according to claim 1, characterized in that, The hexagonal floor (2) is a regular hexagon.
3. The modular splicing support structure for polygonal network flooring according to claim 2, characterized in that, The support assembly (1) includes a base (11), a screw (12), a screw sleeve (13), and a support (14). The screw (12) is fixedly connected to the base (11). One end of the screw sleeve (13) is threadedly connected to the screw (12), and the other end is threadedly connected to the support (14). When the screw sleeve (13) rotates, the distance between the support (14) and the base (11) increases or decreases. The support (14) is used to place the hexagonal floor (2).
4. The modular splicing support structure for polygonal network flooring according to claim 3, characterized in that, A limiting sleeve (15) is threaded onto the screw (12). The upper half of the limiting sleeve (15) is fitted over the screw sleeve (13), and the top surface of the lower half of the limiting sleeve (15) is used to contact the bottom surface of the screw sleeve (13).
5. The modular splicing support structure for polygonal network flooring as described in claim 4, characterized in that, The support (14) is fixedly connected to a limiting cylinder (4), and the hexagonal floor (2) is provided with a limiting hole (21) for the limiting cylinder (4) to be inserted.
6. The modular splicing support structure for polygonal network flooring as described in claim 5, characterized in that, The support (14) is provided with an installation groove (42), and a rotating shaft (44) is rotatably connected to the side wall of the installation groove (42). A rotating rod (43) is sleeved on the rotating shaft (44). An installation hole (41) is provided in the limiting cylinder (4). One end of the rotating rod (43) extends into the installation hole (41) and is hinged to a connecting rod (45). A slider (46) is hinged to the end of the connecting rod (45) away from the rotating rod (43). A sliding groove (411) for sliding the slider (46) is provided on the side wall of the installation hole (41). The sliding groove (411) penetrates the side wall of the limiting cylinder (4). The other end of the rotating rod (43) is connected to a pressure rod (47). The top of the pressure rod (47) extends out of the mounting groove (42). When the hexagonal floor (2) is placed on the support (14), the pressure rod (47) moves down under the pressure of the hexagonal floor (2), so that the rotating rod (43) rotates toward the slide groove (411), thereby pushing the slider (46) to rotate toward the side wall of the limiting hole (21) and abut against the side wall of the limiting hole (21).
7. The modular splicing support structure for polygonal network flooring as described in claim 6, characterized in that, A torsion spring (48) is fitted on the rotating shaft (44). One end of the torsion spring (48) is connected to the side wall of the mounting groove (42), and the other end is connected to the rotating rod (43). The torsion spring (48) applies a torque to the rotating rod (43) to make the rotating rod (43) rotate in the direction of the axis of the limiting hole (21).
8. The modular splicing support structure for polygonal network flooring as described in claim 7, characterized in that, Each of the supports (14) supports three hexagonal floor panels (2), and the reinforcing rod (3) is connected to the base (11).