Buckling structure for calcium sulfate floor base material

By using the snap-fit ​​assembly of the insert plate and slot and the grid structure of the reinforcing plate, the problem of loosening and wear of calcium sulfate flooring under long-term use is solved, achieving a firm connection of the flooring and improving its compressive strength, thus ensuring the flatness and service life of the flooring.

CN223593726UActive Publication Date: 2025-11-25LIYANG YAJING NEW BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202423196017.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-24
Publication Date
2025-11-25
Estimated Expiration
2034-12-24

AI Technical Summary

Technical Problem

The existing splicing method of calcium sulfate flooring is prone to loosening and wear under long-term pressure or frequent use, resulting in larger gaps at the splicing points, which affects the flatness of the floor and the comfort of use.

Method used

The system employs a snap-fit ​​assembly that combines insert plates and slots, using sliding strips and grooves for sliding and snap-fit ​​fixation. Combined with the grid structure of the reinforcing plate, this enhances the connection strength and compressive strength of the plate body.

Benefits of technology

It improves the connection strength of the floor, reduces wear and deformation, keeps the floor flat, enhances the comfort of use, and strengthens the resistance to bending and pressure, thus extending the service life of the floor.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a calcium sulfate floor base material buckling structure which comprises plate bodies and a reinforcing plate, one side of each plate body is connected with an inserting plate, the other side of each plate body is provided with an inserting groove, the inserting plates and the inserting grooves are connected in a matched and inserted mode, every two adjacent plate bodies are fixed through a buckle assembly, the reinforcing plate is arranged in the plate bodies, and the buckle assembly comprises a spring. The two sets of sliding strips are connected to the two sides of the inserting plate correspondingly, the two sets of sliding grooves are formed in the two sides of the inserting groove in the plate body correspondingly, the inserting plate of one plate body is aligned with the inserting groove of the adjacent plate body, then the inserting plate is inserted into the inserting groove, and in the process that the inserting plate is inserted into the inserting groove, the inserting plate can be inserted into the inserting groove. The sliding strips connected to the two sides of the inserting plate can enter the sliding grooves formed in the plate body along with movement of the inserting plate, the inserting plate inserted into the inserting grooves is further fixed through the buckle assemblies, the problems that due to abrasion and deformation of the edge of the floor, the splicing position is loosened, and gaps are enlarged can be effectively solved, it is guaranteed that the floor is kept flat for a long time, and the use comfort level is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to building decoration floor technical field, concretely relates to a calcium sulfate floor base material buckling structure. BACKGROUND

[0002] The calcium sulfate base material is mainly formed by gypsum powder, recycled waste paper and water through high pressure pressing, and is widely used in the field of building decoration materials, especially in the floor field, due to its excellent performance, especially the unique advantages in the fields of environmental protection, sound insulation and fire prevention.

[0003] The existing calcium sulfate floor is usually laid on the ground and needs to be spliced between adjacent floors, and the common floor splicing in the past usually adopts a simple tongue-and-groove splicing mode, that is, the convex head on one side of an adjacent group of floors is inserted into the groove on one side of another group of floors, so that the two floors are tightly connected together. Although this mode has certain convenience during installation, the connection firmness is limited, and under the conditions of long-term bearing of large pressure or frequent personnel walking, object carrying and the like, the floor edge is prone to wear and deformation, thereby causing the splicing to be loose and the gap to be increased, which not only affects the flatness of the floor, but also produces noise and reduces the use comfort. CONTENT OF THE UTILITY MODEL

[0004] The utility model aims at providing a calcium sulfate floor base material buckling structure to solve the problems in the above background.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a calcium sulfate floor base material buckling structure, comprising:

[0006] The plate body is connected with a plug plate on one side and is provided with a plug slot on the other side, the plug plate is matched with the plug slot for plug-in connection, the adjacent two groups of plate bodies are fixed through a buckle assembly, the sliding strip of the buckle assembly is slid into the sliding groove provided in the plate body, so that the arc-shaped block on the surface of the sliding strip is matched with the clamping groove in the sliding groove for clamping connection.

[0007] The reinforcing plate is arranged in the plate body and is used for reinforcing the structural strength of the plate body.

[0008] Preferably, the buckle assembly comprises a spring, the sliding strip is provided with two groups and is connected to the two sides of the plug plate, and the sliding groove is provided with two groups and is arranged on the two sides of the plug slot in the plate body.

[0009] Preferably, a plurality of sliding grooves are arranged in the sliding strip, one end of the arc-shaped block is slid through the sliding grooves and is connected with the sliding plate, and the two ends of the sliding plate are slidably connected with the guide grooves in the sliding grooves through the guide blocks.

[0010] Preferably, the spring is provided with several groups and is arranged in several sliding grooves respectively, and two ends of the spring are connected with the sliding plate and the sliding bar respectively.

[0011] Preferably, the clamping groove is provided with several groups and is distributed in two groups of sliding grooves respectively.

[0012] Preferably, the reinforcing plate comprises several horizontal plates and vertical plates, and the several horizontal plates and vertical plates are connected in the plate body.

[0013] Compared with the prior art, the utility model has the beneficial effects that:

[0014] (1) by the plugboard of a plate body is aligned with the adjacent plate body's plug-in slot, then the plugboard is inserted into the plug-in slot, in the process of plugboard insertion into the plug-in slot, the sliding bar connected on both sides of the plugboard will enter the sliding groove provided in the plate body along with the movement of the plugboard, and the plugboard inserted into the plug-in slot is further fixed through the buckle assembly, so that the firmness of the plate body connection can be greatly improved through the action of the sliding bar and the sliding groove and the fixing assembly, the problem that the joint is loose and the gap is increased due to the wear and deformation of the edge of the floor can be effectively reduced, the floor is kept flat, and the comfort of use is improved.

[0015] (2) the reinforcing plate provided in the plate body comprises horizontal plates and vertical plates, forming a grid-shaped internal structure, which can uniformly disperse the pressure borne by the plate body, enhance the bending and compression resistance of the plate body as a whole, prevent the plate body from being damaged, and prolong the service life of the floor. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a structure schematic view of two groups of plate bodies of the utility model when buckling;

[0017] Figure 2 It is a structure schematic view of two groups of plate bodies of the utility model after splitting;

[0018] Figure 3 It is a structure schematic view of the arc-shaped block and the clamping groove of the utility model when clamping;

[0019] Figure 4 It is a structure schematic view of the horizontal plate and the vertical plate in the plate body of the utility model.

[0020] In the drawing: 1, plate body; 2, plugboard; 3, plug-in slot; 4, sliding bar; 5, sliding groove; 6, arc-shaped block; 7, clamping groove; 8, spring; 9, sliding groove; 10, sliding plate; 11, horizontal plate; 12, vertical plate. DETAILED DESCRIPTION

[0021] 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.

[0022] This utility model provides, for example Figures 1-4 The calcium sulfate flooring substrate interlocking structure shown includes:

[0023] The plate 1 has a plug plate 2 connected to one side and a slot 3 on the other side. The plug plate 2 and the slot 3 are inserted into each other. Two adjacent sets of plates 1 are fixed by a buckle assembly. The slide bar 4 of the buckle assembly slides into the slide groove 5 provided in the plate 1 so that the arc-shaped block 6 on the surface of the slide bar 4 is engaged with the slot 7 in the slide groove 5.

[0024] A reinforcing plate is provided inside the plate body 1 to enhance the structural strength of the plate body 1.

[0025] The buckle assembly includes a spring 8, the slide bar 4 is provided in two sets and is respectively connected to both sides of the insert plate 2, and the slide groove 5 is provided in two sets and is respectively provided on both sides of the slot 3 in the plate body 1.

[0026] The slide bar 4 is provided with several sliding grooves 9. One end of the arc block 6 slides through the sliding groove 9 and is connected to the slide plate 10. The two ends of the slide plate 10 are slidably connected to the guide grooves in the sliding groove 9 through guide blocks. When the slide plate 10 moves, it slides in the guide grooves through the guide blocks at both ends, which can enhance the stability of the slide plate 10 when it moves.

[0027] The spring 8 is provided in several groups and is respectively located in several sliding grooves 9. The two ends of the spring 8 are respectively connected to the slide plate 10 and the slide bar 4. The slot 7 is provided in several groups and is evenly distributed in two groups of sliding grooves 5. When the slide bar 4 enters the sliding groove 5, the arc block 6 will be squeezed by the inner wall of the sliding groove 5, so that the slide plate 10 slides in the sliding groove 9 and compresses the spring 8. The spring 8 rebounds and can drive the arc block 6 to engage with the slot 7.

[0028] The reinforcing plate includes several horizontal plates 11 and vertical plates 12, which are all connected inside the plate body 1. The horizontal plates 11 and vertical plates 12 can form a grid-like internal structure. This structure can evenly distribute the pressure borne by the plate body 1 and improve the overall bending resistance of the plate body 1.

[0029] During installation, the insert plate 2 of one board 1 is aligned with the slot 3 of the adjacent board 1. Then, the insert plate 2 is inserted into the slot 3. As the insert plate 2 is inserted into the slot 3, the sliding strips 4 connected to both sides of the insert plate 2 will move into the sliding grooves 5 provided in the board 1. Since the sliding strip 4 has a sliding groove 9, the sliding plate 10 in the sliding groove 9 is slidably connected to the guide groove through the guide block. The arc-shaped block 6 connected to one end of the sliding plate 10 slides through the sliding groove 9. When the sliding strip 4 enters the sliding groove 5, the arc-shaped block 6 will be squeezed by the inner wall of the sliding groove 5, causing the sliding plate 10 to slide in the sliding groove 9 and compress the spring 8. As the insert plate 2 continues to be inserted, when the sliding strip 4 is fully inserted into the sliding groove 5, the arc-shaped block 6 will pop out under the elastic force of the spring 8 and engage with the locking groove 7 in the sliding groove 5. At this time, the adjacent boards 1 are tightly connected together through the insertion of the insert plate 2 and the slot 3 and the fixing of the locking assembly.

[0030] The reinforcing plates inside the plate 1, including horizontal plates 11 and vertical plates 12, form a grid-like internal structure. This structure can evenly distribute the pressure borne by the plate 1, enhance the overall bending and compressive strength of the plate 1, improve the overall bending strength of the plate 1, and enable the plate 1 to withstand greater weight without significant deformation.

[0031] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A snap-fit ​​structure for a calcium sulfate flooring substrate, characterized in that, include: The plate (1) has a plug plate (2) connected to one side and a slot (3) on the other side. The plug plate (2) and the slot (3) are inserted into each other. Two adjacent sets of plates (1) are fixed by a buckle assembly. The slide bar (4) of the buckle assembly slides into the slide groove (5) provided in the plate (1) so that the arc block (6) on the surface of the slide bar (4) is engaged with the slot (7) in the slide groove (5). A reinforcing plate is provided inside the plate body (1) to enhance the structural strength inside the plate body (1).

2. The interlocking structure for a calcium sulfate flooring substrate according to claim 1, characterized in that: The buckle assembly includes a spring (8), the slide bar (4) is provided in two sets and is respectively connected to both sides of the insert plate (2), and the slide groove (5) is provided in two sets and is respectively located on both sides of the slot (3) in the plate body (1).

3. The calcium sulfate flooring substrate interlocking structure according to claim 2, characterized in that: The slide bar (4) is provided with several sliding grooves (9). One end of the arc block (6) slides through the sliding groove (9) and is connected to the slide plate (10). The two ends of the slide plate (10) are slidably connected to the guide groove in the sliding groove (9) through guide blocks.

4. The calcium sulfate flooring substrate interlocking structure according to claim 3, characterized in that: The spring (8) is provided in several groups and is respectively located in several sliding grooves (9). The two ends of the spring (8) are respectively connected to the slide plate (10) and the slide bar (4).

5. The calcium sulfate flooring substrate interlocking structure according to claim 1, characterized in that: The slot (7) is provided in several groups and is evenly distributed in two groups of sliding grooves (5).

6. The interlocking structure for a calcium sulfate flooring substrate according to claim 1, characterized in that: The reinforcing plate includes several horizontal plates (11) and vertical plates (12), all of which are connected within the plate body (1).