High-strength concrete heat-preservation terrace
By adopting a multi-layer structure of high-strength concrete insulation floor in the concrete floor, the problem of the existing concrete floor being reduced after long-term use is solved, and higher compressive strength, crack resistance and insulation performance are achieved, extending the service life and reducing maintenance costs.
Patent Information
- Application Number
- CN202421748597.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-23
AI Technical Summary
After long-term use, the strength of the existing concrete floor decreases and the load-bearing capacity decreases, resulting in cracking and damage of the floor, weakening of wear resistance, and being easily eroded by wind and rain, affecting the use effect and maintenance costs.
High-strength concrete insulation floor is adopted, including high-performance concrete layer, concrete fiber layer, carbon fiber layer, glass fiber layer, extruded polystyrene layer and wear-resistant anti-slip coating. Through the combination of multi-layer structures, the compressive strength, crack resistance and thermal insulation performance of the floor are enhanced.
It significantly improves the compressive strength and durability of the floor, enhances crack resistance and earthquake resistance, extends service life, reduces maintenance costs, and improves the insulation performance and safety of the floor.
Smart Images

Figure CN222936348U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a high-strength concrete heat-insulating floor, belonging to the technical field of concrete floors. Background Art
[0002] A floor refers to a ground that is constructed and processed from the original ground using specific materials and processes, presenting a certain degree of decorative and functional properties. It not only has an aesthetically pleasing appearance but also meets the specific requirements of various places for the ground, such as wear resistance, anti-slip, and compressive resistance. Floors are widely used in industrial factories, commercial spaces, hospitals, schools, and other occasions, providing stable and reliable ground solutions for various places.
[0003] Due to the relatively single material of the concrete floor, its strength is likely to decrease after long-term use, resulting in a decline in its load-bearing capacity and an inability to effectively support heavy loads, subsequently leading to problems such as cracking and damage to the floor. Secondly, it is prone to a reduction in wear resistance, with the surface of the floor being easily worn, affecting its aesthetics and service life. In addition, a concrete floor with insufficient strength is also easily eroded by wind and rain, accelerating the aging process, which not only affects the use effect of the floor but may also increase the costs of maintenance and replacement, bringing inconvenience to users.
[0004] Therefore, a high-strength concrete heat-insulating floor is proposed. Content of the Utility Model
[0005] In view of this, the utility model provides a high-strength concrete heat-insulating floor to solve or alleviate the technical problems existing in the prior art, and at least provide a beneficial option.
[0006] The technical solution of the utility model is realized as follows: A high-strength concrete heat-insulating floor includes a floor body, and the floor body includes a high-strength base layer, a strength enhancement layer, and an auxiliary protection layer. The high-strength base layer includes a high-performance concrete layer and a concrete fiber layer. The strength enhancement layer includes a carbon fiber layer and a glass fiber layer. The auxiliary protection layer includes an extruded polystyrene layer and an anti-wear and anti-slip coating.
[0007] Further preferably, the strength enhancement layer is arranged on the top of the high-strength base layer, and the auxiliary protection layer is arranged on the top of the strength enhancement layer.
[0008] Further preferably, the concrete fiber layer is arranged on the top of the high-performance concrete layer, the carbon fiber layer is arranged on the top of the concrete fiber layer, and the glass fiber layer is arranged on the top of the carbon fiber layer.
[0009] Further preferably, the extruded polystyrene layer is arranged on the top of the glass fiber layer, and the anti-wear and anti-slip coating is applied on the top of the extruded polystyrene layer.
[0010] Further preferably, the thickness of the high-performance concrete layer is 80 - 150 mm, and the thickness of the concrete fiber layer is 30 - 40 mm.
[0011] Further preferably, the thickness of the carbon fiber layer is the same as that of the glass fiber layer, and the thickness of both the carbon fiber layer and the glass fiber layer is 5 mm - 15 mm.
[0012] Further preferably, the thickness of the extruded polystyrene layer is 60 - 120 mm, and the thickness of the wear-resistant and anti-slip coating is 0.3 mm - 0.5 mm.
[0013] Due to the adoption of the above technical solutions in the embodiments of the present utility model, it has the following advantages:
[0014] First, the present utility model provides a high-strength base layer including a high-performance concrete layer and a concrete fiber layer, and a strength enhancement layer including a carbon fiber layer and a glass fiber layer. Among them, the high-performance concrete layer has high compressive strength and durability, and can effectively resist the erosion of the external environment, such as chemical corrosion and freeze-thaw cycles, so as to ensure the long-term use stability of the whole. The concrete fiber layer can effectively control the micro-cracks caused by factors such as plastic shrinkage and dry shrinkage of the high-performance concrete layer, reduce the occurrence of primary cracks, thereby improving the crack resistance and durability of the whole. The carbon fiber layer has the characteristics of high strength, high modulus and low density, can significantly improve the strength and durability of the whole, effectively prevent the whole from cracking and deforming, and at the same time improve the seismic performance of the whole. The glass fiber layer can further improve the crack resistance and durability of the concrete, providing more stable support for the whole. Through the cooperation of the above structures, the compressive strength and durability of the whole are enhanced, enabling it to withstand greater loads and the influence of the external environment, while reducing the cracks and deformations of the whole, and improving the flatness and aesthetics of the floor body.
[0015] Second, the present utility model provides an auxiliary protection layer including an extruded polystyrene layer and a wear-resistant and anti-slip coating. Among them, the extruded polystyrene layer has excellent heat insulation performance, can effectively reduce heat loss, and improve the heat preservation performance of the whole. The wear-resistant and anti-slip coating can not only provide excellent wear resistance, extend the service life of the whole, but also increase the anti-slip property of the whole, improve the use safety, and in addition, can prevent water penetration, further protecting the whole.
[0016] The above summary is only for the purpose of the specification and is not intended to be limiting in any way. In addition to the above-described illustrative aspects, embodiments and features, further aspects, embodiments and features of the present utility model will be readily apparent by reference to the drawings and the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0018] Figure 1 Schematic diagram of the three-dimensional structure of the present utility model;
[0019] Figure 2 Schematic diagram of the structure of the floor body of the present utility model;
[0020] Figure 3 Schematic diagram of the structure of the high-strength base layer of the present utility model;
[0021] Figure 4 Schematic diagram of the structure of the strength enhancement layer of the present utility model;
[0022] Figure 5 Schematic diagram of the structure of the auxiliary protection layer of the present utility model.
[0023] Reference numerals: 1, floor body; 101, high-strength base layer; 1011, high-performance concrete layer; 1012, concrete fiber layer; 102, strength enhancement layer; 1021, carbon fiber layer; 1022, glass fiber layer; 103, auxiliary protection layer; 1031, extruded polystyrene layer; 1032, wear-resistant and anti-slip coating. Detailed implementation manners
[0024] In the following, only some exemplary embodiments are briefly described. As those skilled in the art can recognize, the described embodiments can be modified in various different ways without departing from the spirit or scope of the present utility model. Therefore, the drawings and the description are considered to be exemplary in nature rather than restrictive.
[0025] The following will detail the embodiments of the present utility model with reference to the drawings.
[0026] Embodiment 1
[0027] Such as Figures 1-5As shown in the figure, the embodiment of the present utility model provides a high-strength concrete thermal insulation floor, which includes a floor body 1. The floor body 1 includes a high-strength base layer 101, a strength enhancement layer 102 and an auxiliary protection layer 103. The high-strength base layer 101 includes a high-performance concrete layer 1011 and a concrete fiber layer 1012. The strength enhancement layer 102 includes a carbon fiber layer 1021 and a glass fiber layer 1022. The auxiliary protection layer 103 includes an extruded polystyrene layer 1031 and an abrasion-resistant and anti-slip coating 1032. The strength enhancement layer 102 is arranged on the top of the high-strength base layer 101, and the auxiliary protection layer 103 is arranged on the top of the strength enhancement layer 102. The concrete fiber layer 1012 is arranged on the top of the high-performance concrete layer 1011. The carbon fiber layer 1021 is arranged on the top of the concrete fiber layer 1012. The glass fiber layer 1022 is arranged on the top of the carbon fiber layer 1021.
[0028] The high-performance concrete layer 1011 has high compressive strength and durability, and can effectively resist the erosion of the external environment, such as the corrosion of chemical substances, freeze-thaw cycles, etc., so as to ensure the long-term use stability of the whole. The concrete fiber layer 1012 can effectively control the microcracks caused by factors such as plastic shrinkage and dry shrinkage of the high-performance concrete layer 1011, reduce the occurrence of primary cracks, and thus improve the crack resistance and durability of the whole. The carbon fiber layer 1021 has the characteristics of high strength, high modulus and low density, can significantly improve the strength and durability of the whole, effectively prevent the whole from cracking and deforming, and at the same time improve the seismic performance of the whole. The glass fiber layer 1022 can further improve the crack resistance and durability of the concrete, and provide more stable support for the whole. Through the cooperation of the above structures, the compressive strength and durability of the whole are enhanced, enabling it to withstand greater loads and the influence of the external environment. At the same time, the cracks and deformations of the whole are reduced, and the flatness and aesthetics of the floor are improved.
[0029] Embodiment 2
[0030] In one embodiment, the extruded polystyrene layer 1031 is arranged on the top of the glass fiber layer 1022, and the abrasion-resistant and anti-slip coating 1032 is coated on the top of the extruded polystyrene layer 1031. The thickness of the high-performance concrete layer 1011 is 80 - 150 mm, the thickness of the concrete fiber layer 1012 is 30 - 40 mm, the thickness of the carbon fiber layer 1021 is the same as that of the glass fiber layer 1022, and the thicknesses of both the carbon fiber layer 1021 and the glass fiber layer 1022 are 5 - 15 mm. The thickness of the extruded polystyrene layer 1031 is 60 - 120 mm, and the thickness of the abrasion-resistant and anti-slip coating 1032 is 0.3 - 0.5 mm.
[0031] The extruded polystyrene layer 1031 has excellent heat insulation performance, which can effectively reduce heat loss and improve the overall heat preservation performance. The wear-resistant and anti-slip coating 1032 can not only provide excellent wear resistance, extend the overall service life, but also increase the overall anti-slip property and improve the use safety. In addition, it can prevent moisture penetration and further protect the whole.
[0032] When the utility model works: The high-performance concrete layer 1011 has high compressive strength and durability, and can effectively resist the erosion of the external environment, such as the corrosion of chemical substances, freeze-thaw cycles, etc., so as to ensure the long-term use stability of the whole. The concrete fiber layer 1012 can effectively control the microcracks caused by factors such as plastic shrinkage and dry shrinkage of the high-performance concrete layer 1011, reduce the occurrence of primary cracks, and thus improve the crack resistance and durability of the whole. The carbon fiber layer 1021 has the characteristics of high strength, high modulus and low density, can significantly improve the strength and durability of the whole, effectively prevent the whole from cracking and deforming, and at the same time improve the seismic performance of the whole. The glass fiber layer 1022 can further improve the crack resistance and durability of the concrete and provide more stable support for the whole. Through the cooperation of the above structures, the compressive strength and durability of the whole are enhanced, enabling it to withstand greater loads and the influence of the external environment. At the same time, the cracks and deformations of the whole are reduced, and the flatness and aesthetics of the floor body 1 are improved. The extruded polystyrene layer 1031 has excellent heat insulation performance, which can effectively reduce heat loss and improve the overall heat preservation performance. The wear-resistant and anti-slip coating 1032 can not only provide excellent wear resistance, extend the overall service life, but also increase the overall anti-slip property and improve the use safety. In addition, it can prevent moisture penetration and further protect the whole. Through the cooperation of the high-strength base layer 101, the strength enhancement layer 102 and the auxiliary protection layer 103, the overall service life is effectively improved, and it has excellent strength, wear resistance, anti-slip property and heat preservation performance.
[0033] As described above, it is only the specific implementation manner of the utility model, but the protection scope of the utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the utility model can easily think of various changes or substitutions, and these should all be covered within the protection scope of the utility model. Therefore, the protection scope of the utility model should be subject to the protection scope of the claimed rights.
Claims
1. A high-strength concrete insulation floor, characterized by: The invention comprises a floor body (1), wherein the floor body (1) comprises a high-strength base layer (101), a strength-enhancing layer (102) and an auxiliary protective layer (103), wherein the high-strength base layer (101) comprises a high-performance concrete layer (1011) and a concrete fiber layer (1012), the strength-enhancing layer (102) comprises a carbon fiber layer (1021) and a glass fiber layer (1022), and the auxiliary protective layer (103) comprises an extruded polystyrene layer (1031) and a wear-resistant and anti-skid coating layer (1032).
2. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The strength enhancement layer (102) is arranged on the top of the high-strength base layer (101), and the auxiliary protection layer (103) is arranged on the top of the strength enhancement layer (102).
3. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The concrete fiber layer (1012) is arranged on top of the high-performance concrete layer (1011), the carbon fiber layer (1021) is arranged on top of the concrete fiber layer (1012), and the glass fiber layer (1022) is arranged on top of the carbon fiber layer (1021).
4. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The extruded polystyrene layer (1031) is arranged on the top of the glass fiber layer (1022), and the wear-resistant and anti-slip coating (1032) is coated on the top of the extruded polystyrene layer (1031).
5. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The thickness of the high performance concrete layer (1011) is 80-150 mm, and the thickness of the concrete fiber layer (1012) is 30-40 mm.
6. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The thickness of the carbon fiber layer (1021) is the same as the thickness of the glass fiber layer (1022), and the thickness of the carbon fiber layer (1021) and the glass fiber layer (1022) are both 5 mm to 15 mm.
7. The high-strength concrete thermal insulation floor according to claim 1, characterized in that: The thickness of the extruded polystyrene layer (1031) is 60-120 mm, and the thickness of the wear-resistant and anti-slip coating (1032) is 0.3 mm-0.5 mm.