Building indoor rock plate system
Through the combined dry hanging method of the keel system, L-shaped metal hanging parts and stone back strips, the problem of difficulty and high cost of installation of traditional rock slabs is solved, and the rapid, stable and efficient rock slab installation is achieved. It is suitable for a variety of wall materials and structures to meet different design needs.
Patent Information
- Application Number
- CN202422371960.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-26
AI Technical Summary
The traditional rock slab installation method has the problems of difficulty in installation, high cost, low construction efficiency, and easy to cause hollowing and falling off. Especially in the installation of large-sized rock slabs, the traditional back bolt dry hanging method has high requirements for the plate, the material cost is high and limited to space installation.
The keel system is used to combine L-shaped metal hanging parts and stone back strips, and the rock slabs are fixed to the building surface by dry hanging method, and the galvanized square pipe and galvanized angle steel are used to form a mesh system, and the rock slabs and skirting boards are fixed in combination with adhesive to achieve rapid and stable installation.
It realizes rapid, stable and efficient installation of rock slabs, avoids the generation of construction waste, reduces costs, improves installation speed and safety, and is suitable for a variety of wall materials and structures to meet different design needs.
Smart Images

Figure CN223088820U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building construction, in particular to an indoor rock slab system for buildings. Background Art
[0002] As a decorative material, rock slabs have gradually become a popular choice for interior decoration due to their superior physical properties, beautiful textures, and wide application scenarios.
[0003] However, traditional rock slab installation methods mostly use grouting pasting or wet pasting methods. These methods have problems such as high installation difficulty, high cost, low construction efficiency, easy occurrence of hollowing and falling off, especially more significant in the installation of large-sized rock slabs. The traditional installation method not only requires complex construction preparations and fine construction techniques, but also often has extremely high requirements for the flatness and dryness of the wall base layer, increasing the construction difficulty and cost. At the same time, the grouting pasting method is prone to generate a large amount of construction waste during the construction process, which is not conducive to environmental protection and the cleanliness of the construction site.
[0004] In addition to grouting pasting or wet pasting methods, back-bolt dry hanging installation methods are also commonly used. However, this method has relatively high requirements for the thickness, strength, flatness, etc. of the plate. If the plate quality does not meet the standards, problems may occur during the installation process, such as fracture, falling off, etc.; the material cost required for back-bolt installation is relatively high, including the back-bolts themselves, aluminum alloy connectors, metal keels, etc. These materials are all special products and are expensive; and when installing in a locally restricted space, it is necessary to reach in from the side to screw the screws. Limited by the internal space, sufficient space is required for installation. Summary of the Utility Model
[0005] The technical problem to be solved by the utility model is to provide an indoor rock slab system for buildings, which can hang the rock slabs on the building surface, realizing the rapid, stable, and efficient installation of the rock slabs.
[0006] To solve the above technical problems, the technical solution of the utility model is as follows:
[0007] An indoor rock slab system for buildings, comprising:
[0008] A keel system fixed to the indoor wall of the building;
[0009] At least one rock slab fixedly connected to the keel system through at least two connecting members, and the rock slab is hung on the keel system through the connecting members;
[0010] A skirting board fixedly connected to the bottom of the rock slab.
[0011] Optionally, the keel system includes:
[0012] At least one galvanized square pipe arranged at vertical intervals, and the galvanized square pipe is fixedly connected to the interior wall surface of the building;
[0013] At least one horizontally arranged galvanized angle steel welded to the galvanized square pipe.
[0014] Optionally, the connecting member includes:
[0015] An L-shaped metal hanging piece fixedly connected to the keel system;
[0016] A stone back strip bonded to the L-shaped metal hanging piece, and the stone back strip is fixedly connected to the rock slab.
[0017] Optionally, the first end of the L-shaped metal hanging piece is bolted to the galvanized angle steel of the keel system.
[0018] Optionally, the corner of the stone back strip includes a square notch, and the second end of the L-shaped metal hanging piece extends into the square notch of the stone back strip.
[0019] Optionally, the rock slab, the stone back strip and the second end of the L-shaped metal hanging piece are fixedly connected by an adhesive.
[0020] Optionally, the number of the connecting members is equal to the number of the galvanized angle steels.
[0021] Optionally, the vertical gap between the rock slabs is located at the center of the galvanized square pipe.
[0022] Optionally, the skirting board is in a T shape, and one end of the skirting board is bonded to the rock slab.
[0023] The above solution of the present utility model has at least the following beneficial effects:
[0024] The above solution of the present utility model includes: a keel system fixed to the interior wall surface of the building; at least one rock slab fixedly connected to the keel system through at least two connecting members, and the rock slab is hung on the keel system through the connecting members; a skirting board fixedly connected to the bottom of the rock slab. The rock slab can be hung on the building surface, realizing the rapid, stable and efficient installation of the rock slab. Description of the Drawings
[0025] Figure 1 is a longitudinal sectional view of the interior rock slab system of the building provided by the embodiment of the present utility model;
[0026] Figure 2 is an enlarged view of Node A of the interior rock slab system of the building provided by the embodiment of the present utility model;
[0027] Figure 3 is an enlarged view of the transverse sectional node of the interior rock slab system of the building provided by the embodiment of the present utility model;
[0028] Description of the reference numerals:
[0029] 1. Slate; 21. Galvanized square pipe; 22. Galvanized angle steel; 31. L-shaped metal hanger; 32. Stone back strip; 33. Adhesive; 4. Skirting board. Detailed implementation manners
[0030] Hereinafter, exemplary embodiments of the present invention will be described in more detail with reference to the accompanying drawings. Although the exemplary embodiments of the present invention are shown in the drawings, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments set forth herein. On the contrary, these embodiments are provided so that the present invention can be more thoroughly understood and the scope of the present invention can be fully conveyed to those skilled in the art.
[0031] As Figure 1 shown, an embodiment of the present invention provides an interior building slate system, including:
[0032] A keel system fixed to the interior wall surface of a building;
[0033] At least one slate 1 fixedly connected to the keel system through at least two connecting members, and the slate 1 is hung on the keel system through the connecting members;
[0034] A skirting board 4 fixedly connected to the bottom of the slate 1.
[0035] In this embodiment, the slate is dry-hung on the keel system on the surface of the interior wall of the building, avoiding the problems of high construction difficulty and high cost of traditional grouting pasting or wet pasting. In the interior building slate system, an artificial stone back strip is pasted on the back of the slate, and the slate 1 is hung by using an L-shaped metal hanger 31, realizing the rapid, stable and efficient installation of the slate.
[0036] As Figure 2 and Figure 3 shown, in an alternative embodiment of the present invention, the keel system includes:
[0037] At least one galvanized square pipe 21 arranged vertically at intervals, and the galvanized square pipe 21 is fixedly connected to the interior wall surface of the building;
[0038] At least one horizontally arranged galvanized angle steel 22 welded to the galvanized square pipe 21.
[0039] In this embodiment, the keel system is arranged into a mesh system by galvanized square pipes 21 and galvanized angle steels 22 connected horizontally and vertically, and the galvanized square pipes 21 and galvanized angle steels 22 are fixed together by welding. The preferred size of the galvanized square pipe 21 is 50*50*3, where 50*50 is the cross-sectional length and width, and 3 is the thickness of the galvanized square pipe. The vertical spacing of the galvanized square pipes 21 is less than or equal to 1200 mm. The galvanized angle steel 22 preferably uses an L50*50*3 galvanized angle steel, and the horizontal distance of the galvanized angle steel 22 is determined according to the joint of the rock slab 1.
[0040] In an alternative embodiment of the present utility model, the connecting member includes:
[0041] An L-shaped metal hanging member 31 fixedly connected to the keel system;
[0042] A stone back strip 32 bonded to the L-shaped metal hanging member 31, and the stone back strip 32 is fixedly connected to the rock slab 1.
[0043] In this embodiment, the connecting member serves as a medium between the rock slab 1 and the keel system and is composed of an L-shaped metal hanging member 31 and a stone back strip 32. Among them, the L-shaped metal hanging member 31 is responsible for connecting the connecting member to the keel system, and the stone back strip 32 is responsible for connecting the connecting member and the rock slab 1. The L-shaped metal hanging member 31 and the stone back strip 32 are fixedly connected by bonding. Preferably, the L-shaped metal hanging member 31 uses a customized 4-mm-thick L-shaped 304 stainless steel hanging member; the stone back strip 32 uses an 18-mm-thick artificial stone base layer.
[0044] The present utility model adopts the method of bonding a layer of artificial stone back strip 32 on the back of the rock slab 1. The stone back strip 32 not only has good adhesiveness and strength, but also can effectively disperse the weight of the rock slab 1, increasing the overall stability and impact resistance of the rock slab. This composite structure makes the rock slab more stable during installation, not easy to fall off, and also improves the durability and service life of the rock slab.
[0045] As a connecting member, the L-shaped metal hanging member 31 has a reasonable design and a stable structure. The upper hanging member is installed at the upper part of the back of the rock slab, and the lower hanging member is installed at the lower part of the back of the rock slab. Through the L-shaped design, the hanging member can be firmly hung on the wall surface or the steel structure framework, and at the same time, the horizontal and vertical directions of the rock slab 1 can be adjusted to ensure the flatness and accuracy of the installation of the rock slab 1. In addition, the use of the L-shaped metal hanging member 31 reduces the number of bolts used and the difficulty of bolt hole alignment, greatly improving the installation speed.
[0046] In an alternative embodiment of the present utility model, the first end of the L-shaped metal hanging member 31 is bolted to the galvanized angle steel 22 of the keel system.
[0047] In an alternative embodiment of the present utility model, the corner of the stone back strip 32 includes a square notch, and the second end of the L-shaped metal hanging member 31 extends into the square notch of the stone back strip 32.
[0048] In this embodiment, the short side of the L-shaped metal hanging member 31 extends into the square notch of the stone back strip 32, and the rock slab 1 is hung by the mutually engaged and misaligned positional relationship.
[0049] In an alternative embodiment of the present utility model, the second ends of the rock slab 1, the stone back strip 32, and the L-shaped metal hanging member 31 are fixedly connected by an adhesive 33.
[0050] In this embodiment, as Figure 2 shown, the adhesive 33 is applied to one side of the stone back strip 32 and its square notch to bond the rock slab 1, the stone back strip 32, and the L-shaped metal hanging member 31 together. Preferably, the adhesive 33 is a flexible epoxy resin composite.
[0051] In an alternative embodiment of the present utility model, the number of the connecting members is equal to the number of the galvanized angle steels 22.
[0052] In an alternative embodiment of the present utility model, the vertical gap between the rock slabs 1 is located at the center of the galvanized square pipe 21.
[0053] In this embodiment, as Figure 3 shown, the vertical dividing seam between the rock slabs 1 is aligned with the galvanized square pipe 21, which can improve the aesthetics of the rock slab facade and make the constructed rock slab facade neat and hierarchical.
[0054] In an alternative embodiment of the present utility model, the skirting board 4 is in a T shape, and one end of the skirting board 4 is bonded to the rock slab 1.
[0055] In this embodiment, as Figure 1 shown, the skirting board 4 fills the gap between the rock slab 1 and the ground, playing a role in protecting the wall surface and the rock slab. Preferably, the skirting board 4 is made of imitation copper-colored stainless steel.
[0056] The interior rock slab system of the present utility model has significant advantages compared with the traditional grouting and pasting method. First of all, the dry hanging method does not require grouting and pasting, avoiding the generation of construction waste during the construction process, which is beneficial to environmental protection and the cleanliness of the construction site. Secondly, the dry hanging method has a fast construction speed and high installation efficiency, which can greatly shorten the construction period. Thirdly, the rock slabs installed by the dry hanging method are more stable and less likely to produce hollowing and falling off phenomena, ensuring the decoration quality and use safety. The interior rock slab system is applicable to various wall materials and structures, including but not limited to concrete walls, brick walls, steel structure skeletons, etc. At the same time, by adjusting the design parameters and installation positions of the L-shaped metal hangers, flexible installation of rock slabs with different specifications and shapes can be achieved, meeting different design requirements and decoration styles, and having good applicability and flexibility.
[0057] The above is the preferred embodiment of the present utility model. It should be pointed out that for those of ordinary skill in the art of this technology, without departing from the principle described in the present utility model, several improvements and refinements can still be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.
Claims
1. An interior rock slab system for buildings, characterized in that, Comprising: A keel system fixed to the interior wall of a building; At least one slab (1) fixedly connected to the keel system through at least two connecting members, and the slab (1) is hung on the keel system through the connecting members; A skirting board (4) fixedly connected to the bottom of the slab (1).
2. The building interior rock slab system according to claim 1, characterized in that, The keel system includes: At least one galvanized square pipe (21) arranged vertically at intervals, and the galvanized square pipe (21) is fixedly connected to the interior wall of the building; At least one horizontally arranged galvanized angle steel (22) welded to the galvanized square pipe (21).
3. The architectural interior rock slab system according to claim 1, characterized in that, The connecting member includes: An L-shaped metal hanging piece (31) fixedly connected to the keel system; A stone back strip (32) bonded to the L-shaped metal hanging piece (31), and the stone back strip (32) is fixedly connected to the slab (1).
4. The architectural interior rock slab system according to claim 3, wherein, The first end of the L-shaped metal hanging piece (31) is bolted to the galvanized angle steel (22) of the keel system.
5. The architectural interior rock slab system according to claim 3, wherein, The corner of the stone back strip (32) includes a square notch, and the second end of the L-shaped metal hanging piece (31) extends into the square notch of the stone back strip (32).
6. The building interior rock slab system according to claim 3, wherein, The second ends of the slab (1), the stone back strip (32) and the L-shaped metal hanging piece (31) are fixedly connected by an adhesive (33).
7. The architectural interior slab system according to claim 2, wherein, The number of the connecting members is equal to the number of the galvanized angle steels (22).
8. The architectural interior rock slab system according to claim 2, wherein, The vertical gap between the slabs (1) is located at the center of the galvanized square pipe (21).
9. The building interior rock slab system according to claim 1, wherein, The skirting board (4) is in a T shape, and one end of the skirting board (4) is bonded to the slab (1).