Composite magnesium oxysulfate board
By introducing a main frame, filler, and auxiliary structure into the composite magnesium oxysulfate board, the inlay and slot fitting of the inserts and slots and the flame-retardant design of the airbag are achieved, solving the problem of decreased splicing effect after multiple assembly of magnesium oxysulfate boards and improving stability and flame retardancy.
Patent Information
- Application Number
- CN202422888633.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-11-26
AI Technical Summary
The existing composite magnesium oxysulfate board will have reduced splicing effect after multiple assembly and splicing, resulting in decreased stability.
A composite magnesium oxysulfate board was designed, comprising a main frame, filler, auxiliary structure and flame-retardant structure. Through the interlocking of inserts and slots, the spring clips and springs are used to lock into the positioning holes to achieve double splicing reinforcement. An airbag is set in the filler to release inert gas and improve flame retardancy.
This improves the splicing stability and flame retardant effect of magnesium oxysulfate boards, ensuring that they maintain good splicing performance and fire resistance even after repeated assembly and impacts.
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Figure CN223675711U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of magnesium oxysulfate board, especially to a composite magnesium oxysulfate board. BACKGROUND
[0002] In the building decoration construction process, in order to make the building more beautiful and more comfortable to live, the corresponding wallboard is often installed in the building, the corresponding plate can be installed according to the demand, so that the indoor wall has the functions of moisture-proof, heat preservation, sound insulation and the like, and the composite magnesium oxysulfate board as a kind of wallboard has more functionality compared with the traditional plate.
[0003] The common composite magnesium oxysulfate board is mostly formed by mixing and stirring magnesium oxide, magnesium sulfate, perlite and the like and extruding, due to the fusion of the characteristics of various raw materials, the composite magnesium oxysulfate board has more functionality, and when it is used, it is installed on the surface of the building wall through clamping, bolt fastening and the like or is assembled into a wallboard by itself. The common composite magnesium oxysulfate board has good protection effect when used, but still has some problems.
[0004] The common composite magnesium oxysulfate board is mostly spliced by multiple groups of composite magnesium oxysulfate boards when used, and the splicing effect is reduced to some extent after long time or disassembly and assembly. UTILITY MODEL CONTENT
[0005] The utility model aims at providing a composite magnesium oxysulfate board, so as to solve the defect that the assembly and splicing effect of the existing composite magnesium oxysulfate board is reduced.
[0006] In order to solve the above technical problem, the utility model provides the following technical scheme: a composite magnesium oxysulfate board, which comprises a main frame and a filling material, the inside of the main frame is wrapped with the filling material, the two sides of the main frame are provided with auxiliary structures, the auxiliary structures comprise a plug, a spring piece clamping block, a slot, a positioning hole, a mounting hole and a spring, the plug is arranged on one side of the two ends of the main frame, the inside of the filling material is provided with a lining groove, the two ends of the filling material are provided with fireproof structures, and the inside of the lining groove is wrapped with a compression-resistant structure.
[0007] When used, a plurality of the composite magnesium oxysulfate boards are spliced and assembled along the wall surface according to the actual area demand of the building, so that the composite magnesium oxysulfate board can cover the wall and provide the building with beauty and various characteristics.
[0008] Preferably, the compression-resistant structure comprises an inner lining frame, a wave-shaped support strip and a protrusion, the inner lining frame is installed inside the inner lining groove, the wave-shaped support strip is fixedly connected to both ends of the inner lining frame, and the protrusion is fixedly connected to both ends of the inner lining frame, so that the composite magnesium oxysulfate board can be inwards retracted when the composite magnesium oxysulfate board is subjected to a large impact or collision under the action of the wave-shaped support strip, and the composite magnesium oxysulfate board can be quickly recovered after the impact.
[0009] Preferably, the wave-shaped support strip is fixedly connected to a plurality of wave-shaped support strips inside the inner lining frame, and the plurality of wave-shaped support strips are equidistantly distributed inside the inner lining frame, so that the composite magnesium oxysulfate board has a certain elasticity.
[0010] Preferably, the fire-resistant structure comprises a mounting groove, a butt joint groove, an air bag and an insertion block, the mounting groove is formed at both ends of the filler, the butt joint groove is formed at both sides of the mounting groove, the air bag is wrapped inside the mounting groove, and the insertion block is fixedly connected to both sides of the air bag, so that the air bag is broken and a large amount of inert gas is discharged under high-temperature burning due to the fact that the air bag is filled with a large amount of inert gas.
[0011] Preferably, the mounting grooves are equidistantly distributed at both ends of the filler, and the butt joint groove and the insertion block are inlaid, so that the composite magnesium oxysulfate board can discharge a large amount of inert gas.
[0012] Preferably, the both ends of the insertion strip are provided with spring clamping blocks, the other side of the main frame is provided with an insertion slot, both ends of the insertion slot are provided with positioning holes, one side of both ends of the filler is provided with mounting holes, and springs are wrapped inside the mounting holes, so that the spring clamping blocks of the corresponding plate are clamped into the inside of the positioning holes under the spring force after the insertion strip and the insertion slot of the two groups of plates are spliced.
[0013] Preferably, the insertion strip and the insertion slot are inlaid, and the spring clamping block and the positioning hole are in the same horizontal plane, so that the splicing of the composite magnesium oxysulfate board is more stable.
[0014] The composite magnesium oxysulfate board has the advantages that: after the insertion strip and the insertion slot of the two groups of plates are spliced, the spring clamping blocks of the corresponding plate are clamped into the inside of the positioning holes under the spring force, so that the two groups of composite magnesium oxysulfate boards are double-spliced, the splicing and installation are reinforced and stabilized, and the stability of the composite magnesium oxysulfate board is improved. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a three-dimensional local section structure schematic view of the utility model;
[0016] Figure 2 It is a three-dimensional section structure schematic view of the utility model;
[0017] Figure 3 It is the three-dimensional section structure schematic view of the compression-resistant structure of the utility model;
[0018] Figure 4 It is the three-dimensional section structure schematic view of the compression-resistant structure of the utility model; Figure 2 It is the local section enlarged structure schematic view of the utility model;
[0019] Figure 5 It is the three-dimensional section structure schematic view of the compression-resistant structure of the utility model; Figure 1 It is the local section enlarged structure schematic view of the utility model;
[0020] Figure 6 It is the three-dimensional local structure schematic view of the auxiliary structure of the utility model.
[0021] In the drawing: 1, main body frame; 2, filler; 3, inner lining groove; 4, compression-resistant structure; 401, inner lining frame; 402, wave-shaped support strip; 403, protruding block; 5, fire-resistant structure; 501, mounting groove; 502, butt joint groove; 503, air bag; 504, insertion block; 6, auxiliary structure; 601, insertion strip; 602, elastic piece clamping block; 603, insertion groove; 604, positioning hole; 605, mounting hole; 606, spring. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0023] Please refer to Figures 1-6 The utility model provides a kind of composite magnesium calcium board, including main body frame 1 and filler 2, the inside of main body frame 1 is wrapped with filler 2, the inside of filler 2 is equipped with inner lining groove 3, the inside of inner lining groove 3 is wrapped with compression-resistant structure 4, compression-resistant structure 4 includes inner lining frame 401, wave-shaped support strip 402 and protruding block 403, inner lining frame 401 is installed in the inside of inner lining groove 3, the both ends in the inside of inner lining frame 401 are fixedly connected with wave-shaped support strip 402, the both ends of inner lining frame 401 are fixedly connected with protruding block 403, wave-shaped support strip 402 is fixedly connected with several in the inside of inner lining frame 401, and the several wave-shaped support strips 402 are equidistantly distributed in the inside of inner lining frame 401.
[0024] Refer to the drawings Figure 1 , Figure 2 and Figure 3Since the composite magnesium sulfate plate is mostly installed along the wall surface, it is easy to be bumped and pressed in daily use. In order to avoid the composite magnesium sulfate plate from being pressed and appearing concave, deformed and the like, the inner lining frame 401 is filled and installed in the inner lining groove 3, and under the action of the wave-shaped supporting strip 402, when the composite magnesium sulfate plate is subjected to a large impact or bump, the composite magnesium sulfate plate can be inwards contracted, and after the impact, it can be quickly recovered, so as to avoid the damage of the composite magnesium sulfate plate due to the too large impact force.
[0025] The filling material 2 is provided with a fireproof structure 5 at both ends, the fireproof structure 5 comprises a mounting groove 501, a butt joint groove 502, an air bag 503 and an insertion block 504, the mounting groove 501 is opened at both ends of the filling material 2, the butt joint groove 502 is opened at both sides of the mounting groove 501, the air bag 503 is wrapped in the mounting groove 501, the insertion block 504 is fixedly connected at both sides of the air bag 503, the mounting grooves 501 are equally spaced at both ends of the filling material 2, and the butt joint groove 502 and the insertion block 504 are in an inlaid structure.
[0026] Referring to the accompanying drawings Figure 1 , Figure 2 and Figure 4 , when the composite magnesium sulfate plate is installed and used, since the material itself is not easy to burn, but under the condition of long-term burning of open flame, the surface will also appear certain dry cracking or damage, in order to further improve the fireproof effect, the mounting groove 501 is opened at both ends of the filling material 2, and the air bag 503 is inlaid and filled by the butt joint groove 502 and the insertion block 504 in the mounting groove 501. Since the air bag 503 is filled with a large amount of inert gas, the air bag 503 is broken and a large amount of inert gas is discharged under high temperature burning, so as to inhibit the flame.
[0027] The main body frame 1 is provided with an auxiliary structure 6 at both sides, the auxiliary structure 6 comprises an insertion strip 601, a sheet spring clamping block 602, an insertion groove 603, a positioning hole 604, a mounting hole 605 and a spring 606, the insertion strip 601 is arranged at one side of both ends of the main body frame 1, the sheet spring clamping block 602 is arranged at both ends of the insertion strip 601, the insertion groove 603 is arranged at the other side of the main body frame 1, the positioning hole 604 is opened at both ends of the insertion groove 603, the mounting hole 605 is opened at one side of both ends of the filling material 2, the spring 606 is wrapped in the mounting hole 605, the insertion strip 601 and the insertion groove 603 are in an inlaid structure, and the sheet spring clamping block 602 and the positioning hole 604 are in the same horizontal plane.
[0028] Referring to the accompanying drawings Figure 1 , Figure 2 , Figure 5 and Figure 6In use, the composite magnesium oxysulfate plate is assembled along the wall surface according to the actual area requirement of the building, so that the composite magnesium oxysulfate plate covers the wall and provides the building with beauty and various characteristics. When the composite magnesium oxysulfate plate is assembled, the insertion bars 601 of two adjacent plates are inserted into the inner side of the insertion slot 603 to form inlaying, so that the two composite magnesium oxysulfate plates are stably assembled. In order to improve the stability of the assembly and avoid loosening of the assembly due to repeated assembly, spring clamping blocks 602 are arranged at both ends of the insertion bar 601. After the insertion bar 601 and the insertion slot 603 of the two plates are assembled, the spring clamping blocks 602 of the corresponding plates are clamped into the inner side of the positioning hole 604 under the elastic pressing of the spring 606, so that the two composite magnesium oxysulfate plates are double-assembled, thereby reinforcing and stabilizing the assembly.
[0029] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model shall be included in the protection scope of the utility model.
Claims
1. A composite magnesium oxysulfate plate, comprising a main frame (1) and a filler (2); It is characterized in that: The inside of the main frame (1) is wrapped with the filler (2), and the two sides of the main frame (1) are provided with auxiliary structures (6), the auxiliary structures (6) comprise an insertion strip (601), a spring clamping block (602), a slot (603), a positioning hole (604), a mounting hole (605) and a spring (606), and the insertion strip (601) is arranged on one side of the two ends of the main frame (1); The inside of the filler (2) is provided with a lining groove (3), and the two ends of the filler (2) are provided with fireproof structures (5); The inside of the lining groove (3) is wrapped with a compression-resistant structure (4).
2. The composite magnesium oxysulfate plate according to claim 1, characterized in that: The compression-resistant structure (4) comprises a lining frame (401), a wave-shaped support strip (402) and a protruding block (403), the lining frame (401) is installed in the inside of the lining groove (3), the wave-shaped support strips (402) are fixedly connected to the two ends in the inside of the lining frame (401), and the protruding blocks (403) are fixedly connected to the two ends of the lining frame (401).
3. The composite magnesium oxysulfate plate according to claim 2, characterized in that: The wave-shaped support strips (402) are fixedly connected to the inside of the lining frame (401), and the wave-shaped support strips (402) are distributed at equal intervals in the inside of the lining frame (401).
4. The composite magnesium oxysulfate plate according to claim 1, characterized in that: The fireproof structure (5) comprises a mounting groove (501), a butt joint groove (502), an air bag (503) and an insertion block (504), the mounting groove (501) is arranged at the two ends of the filler (2), the butt joint grooves (502) are arranged on the two sides of the mounting groove (501), the air bag (503) is wrapped in the inside of the mounting groove (501), and the insertion blocks (504) are fixedly connected to the two sides of the air bag (503).
5. The composite magnesium oxysulfate plate according to claim 4, characterized in that: The mounting grooves (501) are distributed at equal intervals at the two ends of the filler (2), and the butt joint grooves (502) and the insertion blocks (504) are in a mosaic structure.
6. The composite magnesium oxysulfate plate according to claim 1, characterized in that: The two ends of the insertion strip (601) are provided with spring clamping blocks (602), the other side of the main frame (1) is provided with a slot (603), the two ends of the slot (603) are provided with positioning holes (604), one side of the two ends of the filler (2) is provided with mounting holes (605), and the inside of the mounting holes (605) is wrapped with springs (606).
7. The composite magnesium oxysulfate plate according to claim 6, characterized in that: The insertion strip (601) and the slot (603) are in a mosaic structure, and the spring clamping blocks (602) and the positioning holes (604) are in the same horizontal plane.