Heat insulation marble slab

By incorporating an insulation layer and positioning mechanism into marble slabs, and using aerogel felt and fiber cement board materials, the problem of insufficient insulation performance of traditional marble slabs is solved, achieving better insulation effect and stable connection, and improving safety and aesthetics.

CN223893699UActive Publication Date: 2026-02-10NANAN HENGLONG BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202520792993.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-02-10
Estimated Expiration
2035-04-24

AI Technical Summary

Technical Problem

Traditional marble slabs have poor thermal insulation properties. In summer, heat easily enters the room, increasing the cooling load on air conditioners. In winter, heat is easily lost from the room, reducing the heat retention effect.

Method used

An insulation layer, positioning mechanism, decorative surface layer, and functional coating are installed in the marble slabs, and aerogel felt and fiber cement board are used. Combined with the design of positioning columns, horizontal ribs, and vertical ribs, a stable connection is formed.

Benefits of technology

It enhances the thermal insulation of the panels, ensures precise installation and secure connections, provides diverse functions, improves safety and ease of assembly, and extends service life.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223893699U_ABST
Patent Text Reader

Abstract

The utility model is suitable for the technical field of building materials, and provides a heat insulation marble slab which comprises a marble slab body, and an assembly groove is formed in the bottom of the marble slab body. The heat insulation layer is arranged in the assembly groove; the base layer plate is arranged below the heat insulation layer and is tightly attached to the heat insulation layer; the bottom plate is arranged in the assembling groove and is used for blocking the heat insulation layer and the base layer plate; and a positioning mechanism is arranged between the marble slab main body and the heat insulation layer. The heat insulation marble slab provided by the scheme solves the problem of poor heat insulation performance of the existing marble slab.
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Description

Technical Field

[0001] This utility model belongs to the field of building materials technology, and in particular relates to a heat-insulating marble slab. Background Technology

[0002] In architectural decoration, marble slabs are highly favored for their beauty and durability, and are widely used in interior and exterior decoration.

[0003] However, traditional marble slabs have poor heat insulation properties. In summer, heat easily enters the room, increasing the cooling load on air conditioners and causing energy waste. In winter, indoor heat is easily lost, reducing the heat retention effect. Utility Model Content

[0004] This utility model provides a heat-insulating marble slab, which aims to solve the problem of poor heat insulation performance of current marble slabs.

[0005] This utility model is implemented as follows: a heat-insulating marble slab includes: a marble slab body, the bottom of which is provided with an assembly groove; a heat-insulating layer disposed in the assembly groove; a base plate disposed below the heat-insulating layer and tightly fitted to the heat-insulating layer; a bottom plate disposed in the assembly groove for sealing the heat-insulating layer and the base plate; and a positioning mechanism provided between the marble slab body and the heat-insulating layer.

[0006] Preferably, the positioning mechanism includes: a plurality of positioning posts disposed on the top inner wall of the assembly groove; a plurality of horizontal and vertical ribs equidistantly disposed on the heat insulation layer, wherein a positioning groove adapted to the positioning posts is disposed between the horizontal and vertical ribs.

[0007] Preferably, the upper surface of the marble slab body is sequentially coated with a decorative surface layer, a nano silver ion antibacterial coating, a fluorocarbon resin anti-fouling coating, and an ultraviolet absorber coating.

[0008] Preferably, the insulation layer is made of aerogel felt, and the baseboard is fiber cement board.

[0009] Preferably, the bottom of the base plate is provided with several wavy anti-slip grooves, and the side of the marble slab body is provided with a groove for docking and positioning.

[0010] Preferably, the base plate has a mesh inside, and the mesh is made of glass fiber.

[0011] Preferably, the edges of the marble slab body, the heat insulation layer, and the base plate are all filled with sealant to form a sealing layer.

[0012] Compared with related technologies, the heat-insulating marble slab provided by this utility model has the following beneficial effects:

[0013] The insulation layer effectively blocks heat transfer and enhances insulation capacity; the positioning mechanism ensures accurate installation and stable connection; the decorative surface layer, nano silver ion antibacterial coating, fluorocarbon resin anti-fouling coating, and UV absorber coating give the board multiple functions; the aerogel felt insulation layer and fiber cement board baseboard optimize performance; the wavy anti-slip grooves and recesses improve safety and ease of splicing; the fiberglass mesh enhances the strength of the baseboard; and the sealant forms a waterproof and dustproof sealing layer. Attached Figure Description

[0014] Figure 1 A three-dimensional structural diagram of a heat-insulating marble slab provided by this utility model;

[0015] Figure 2 This is a schematic diagram of the front sectional view of the present invention;

[0016] Figure 3 for Figure 2 An enlarged structural diagram of part A shown in the figure;

[0017] Figure 4 This is a schematic diagram of the structure of the heat insulation layer, horizontal ribs, vertical ribs and positioning groove in this utility model.

[0018] Reference numerals: 1. Marble slab body; 2. Insulation layer; 3. Base plate; 4. Bottom plate; 5. Sealant; 6. Mesh; 7. Positioning post; 8. Positioning groove; 9. Groove; 10. Decorative surface layer; 11. Nano silver ion antibacterial coating; 12. Fluorocarbon resin anti-fouling coating; 13. Ultraviolet absorber coating; 14. Anti-slip groove; 15. Horizontal rib; 16. Vertical rib. Detailed Implementation

[0019] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0020] This utility model embodiment provides a heat-insulating marble slab, such as Figure 1-4 As shown, the heat-insulating marble slab includes: a marble slab body 1, the bottom of which is provided with an assembly groove; a heat insulation layer 2 disposed in the assembly groove; a base plate 3 disposed below the heat insulation layer 2 and tightly fitted to the heat insulation layer 2; a bottom plate 4 disposed in the assembly groove for sealing the heat insulation layer 2 and the base plate 3; and a positioning mechanism disposed between the marble slab body 1 and the heat insulation layer 2.

[0021] In this embodiment, the insulation layer 2 significantly enhances the heat insulation capability of the marble slab, effectively blocking heat transfer and meeting the needs of application scenarios requiring heat insulation. Regarding structural stability, the positioning mechanism ensures a secure connection between the marble slab body 1 and the insulation layer 2, while the base plate 4 seals the insulation layer 2 and the base plate 3, making the entire slab structure more stable and reliable.

[0022] In a further preferred embodiment of the present invention, the positioning mechanism includes: a plurality of positioning posts 7 disposed on the top inner wall of the assembly groove; a plurality of horizontal ribs 15 and vertical ribs 16 disposed at equal intervals on the heat insulation layer 2, wherein a positioning groove 8 adapted to the positioning posts 7 is disposed between the horizontal ribs 15 and the vertical ribs 16.

[0023] In this embodiment, the design of the positioning post 7 and the positioning groove 8, which are mutually compatible, can accurately determine the position of the heat insulation layer 2 in the assembly groove, greatly improving the positioning accuracy during installation and ensuring the precise installation position of the heat insulation layer 2, thereby ensuring the stability of the heat insulation effect. Regarding connection stability, the cooperation between the positioning post 7 and the positioning groove 8, along with the horizontal ribs 15 and vertical ribs 16 reinforcing the structure of the heat insulation layer 2, makes the connection between the marble slab body 1 and the heat insulation layer 2 more robust, enhancing the stability of the entire slab structure during use and reducing the risk of component displacement. Furthermore, the equidistant arrangement of the horizontal ribs 15, vertical ribs 16, and positioning groove 8 provides good adaptability, facilitating the assembly of different batches of products during large-scale production, improving production efficiency, and providing convenience for subsequent maintenance and component replacement.

[0024] In a further preferred embodiment of the present invention, the upper surface of the marble slab body 1 is sequentially coated with a decorative surface layer 10, a nano silver ion antibacterial coating 11, a fluorocarbon resin anti-fouling coating 12, and an ultraviolet absorber coating 13.

[0025] In this embodiment, during the production process of the marble slab body 1, a decorative surface layer 10 is first uniformly coated onto its cleaned upper surface. The decorative surface layer 10 can be applied using processes such as spraying or roller coating to ensure uniform coverage. After the decorative surface layer 10 is completely dry and cured, a nano-silver ion antibacterial coating 11 is applied to its surface using a suitable process, such as precise coating using chemical plating technology. Subsequently, a fluorocarbon resin antifouling coating 12 is applied onto the nano-silver ion antibacterial coating 11, which can be uniformly coated using professional coating equipment. Finally, an ultraviolet absorber coating 13 is applied onto the fluorocarbon resin antifouling coating 12 to complete the entire coating process.

[0026] From a decorative perspective, the decorative surface layer 10 is typically 0.1-0.3mm thick. It can impart a rich variety of colors, textures, and luster to the marble slab body 1 according to different design needs, significantly enhancing its aesthetic appeal and meeting the requirements of various architectural decoration styles. The nano-silver ion antibacterial coating 11 is generally controlled at 0.02-0.05mm thick. Utilizing the antibacterial properties of nano-silver ions, it effectively inhibits bacterial growth, maintains the cleanliness of the slab surface, and provides a healthy environment for the interior. The fluorocarbon resin anti-fouling coating 12 is approximately 0.05-0.1mm thick. This coating has excellent anti-fouling properties, making the slab surface less prone to stains, making daily cleaning easier, and greatly extending the slab's appearance and lifespan. The ultraviolet absorber coating 13 is typically 0.03-0.08mm thick. It effectively absorbs ultraviolet rays, preventing the marble slab body 1 from fading and aging due to long-term ultraviolet radiation, thus extending its lifespan.

[0027] In a further preferred embodiment of this utility model, the heat insulation layer 2 is made of aerogel felt, and the base plate 3 is fiber cement board.

[0028] In this embodiment, the aerogel felt insulation layer 2 has an extremely low thermal conductivity, and its special nanoporous structure effectively prevents heat conduction, providing excellent thermal insulation performance for the marble slab. In practical applications, it can significantly reduce indoor and outdoor heat exchange, playing a good role in thermal insulation and helping to save energy. Furthermore, the aerogel felt is lightweight, not excessively increasing the overall weight of the slab, making it easy to install and transport. The fiber cement board, as the baseboard 3, has high strength and good waterproof and moisture-proof properties. Its strength ensures that the entire slab structure is not easily deformed or damaged when subjected to certain pressure and external impacts, while its waterproof and moisture-proof properties effectively prevent problems such as slab deformation and mold growth caused by changes in environmental humidity, extending the service life of the slab.

[0029] In a further preferred embodiment of the present invention, the bottom of the base plate 4 is provided with a plurality of wave-shaped anti-slip grooves 14, and the side of the marble slab body 1 is provided with a groove 9 for docking and positioning.

[0030] In this embodiment, the wavy anti-slip groove 14 at the bottom of the base plate 4 effectively increases the friction between the plate and the contact surface. In practical applications, such as when laying flooring, this prevents the plate from sliding and ensures safety. Meanwhile, the groove 9 on the side of the marble slab body 1 plays a precise positioning role during the plate splicing process, facilitating quick and accurate alignment of the plates by construction workers.

[0031] In a further preferred embodiment of the present invention, a mesh 6 is provided inside the base plate 3, and the mesh 6 is made of glass fiber.

[0032] In this embodiment, the fiberglass mesh 6 possesses high strength and good flexibility. Inside the baseboard 3, the mesh 6 acts as a reinforcing skeleton, effectively improving the overall strength and crack resistance of the baseboard 3. When the baseboard 3 is subjected to external forces, the mesh 6 can disperse stress, preventing cracks from appearing and greatly improving its durability. Simultaneously, the fiberglass material is chemically stable and does not react chemically with fiber cement or other baseboard raw materials, ensuring the long-term stability of the structural performance of the baseboard 3.

[0033] In a further preferred embodiment of this utility model, the edges of the marble slab body 1, the heat insulation layer 2, and the base plate 3 are all filled with sealant 5 to form a sealing layer.

[0034] In this embodiment, the sealing layer formed by the sealant 5 has excellent waterproof performance, effectively preventing moisture from penetrating into the interior of the board. When used in humid environments, it prevents the insulation layer 2 from losing its insulation performance due to moisture, and also prevents the baseboard 3 from warping or becoming moldy due to moisture erosion, thus extending the service life of the board. Furthermore, the sealing layer also acts as a dustproof layer, preventing dust and other fine particles from entering between the layers of the board, keeping the internal structure clean, and maintaining the stability of the board's performance.

[0035] In summary, compared with related technologies, the insulation layer 2 effectively blocks heat transfer and improves heat insulation capacity; the positioning mechanism ensures accurate installation and stable connection; the decorative surface layer 10, nano silver ion antibacterial coating 11, fluorocarbon resin anti-fouling coating 12, and ultraviolet absorber coating 13 endow the board with diverse functions; the aerogel felt insulation layer 2 and fiber cement board baseboard 3 optimize performance; the corrugated anti-slip groove 14 and groove 9 improve safety and ease of splicing; the fiberglass mesh 6 enhances the strength of the baseboard 3; and the sealant 5 forms a waterproof and dustproof sealing layer.

[0036] It is worth noting that the circuits, electronic components, and modules involved in this utility model are all existing technologies, which can be fully implemented by those skilled in the art, and need not be elaborated upon. The content protected by this utility model does not involve any improvement to the software and methods.

[0037] It should be understood, in the several embodiments provided in this application, that the disclosed apparatus may be implemented in other ways.

[0038] The above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit the scope of protection of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on these embodiments, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model. Although this utility model has been described in detail with reference to the above embodiments, those skilled in the art can still combine, add, delete, or otherwise adjust the features of the various embodiments of this utility model according to the circumstances without conflict or creative effort, thereby obtaining different technical solutions that do not fundamentally depart from the concept of this utility model. These technical solutions are also within the scope of protection of this utility model.

Claims

1. A heat-insulating marble slab, characterized in that, include: The marble slab body has an assembly groove at its bottom; A heat insulation layer is installed in the assembly slot; A baseboard is disposed below the insulation layer and is tightly attached to the insulation layer; The bottom plate disposed within the assembly slot is used to seal the heat insulation layer and the base plate; A positioning mechanism is provided between the main body of the marble slab and the heat insulation layer.

2. The heat-insulating marble slab as described in claim 1, characterized in that, The positioning mechanism includes: Several positioning posts are provided on the top inner wall of the assembly slot; A number of horizontal and vertical ribs are equidistantly arranged on the heat insulation layer, and a positioning groove adapted to the positioning post is provided between the horizontal and vertical ribs.

3. The heat-insulating marble slab as described in claim 1, characterized in that, The upper surface of the marble slab is sequentially coated with a decorative surface layer, a nano silver ion antibacterial coating, a fluorocarbon resin anti-fouling coating, and an ultraviolet absorber coating.

4. The heat-insulating marble slab as described in claim 1, characterized in that, The insulation layer is made of aerogel felt, and the baseboard is fiber cement board.

5. The heat-insulating marble slab as described in claim 1, characterized in that, The bottom of the base plate is provided with several wavy anti-slip grooves, and the side of the marble slab body is provided with grooves for docking and positioning.

6. The heat-insulating marble slab as described in claim 4, characterized in that, The baseboard has a mesh inside, and the mesh is made of fiberglass.

7. The heat-insulating marble slab as described in claim 1, characterized in that, The edges of the marble slab body, the heat insulation layer, and the base plate are all filled with sealant to form a sealing layer.