Low temperature floor radiant floor structure

CN224785259UActive Publication Date: 2026-09-22NANJING TIANMAI YUANHONG FLOOR HEATING TECH CO LTD
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Patent Information

Application Number
CN202522249801.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-24
Publication Date
2026-09-22
Estimated Expiration
2035-10-24

AI Technical Summary

Technical Problem

[0003]在现有技术中水管都是铺设于钢丝网上再由钢丝分别将水管捆扎限位于网格上,操作繁琐费时费力,因此提出一种低温地板辐射地面结构,将分隔与反射层结构结合,减少装配工序,且通过分隔结构以便于直接铺设管路,操作便捷,省时省力

Benefits of technology

本实用新型所述的一种低温地板辐射地面结构,通过支托组件由分隔块、铝箔和支撑板组成,通过支撑板固定分隔块并通过铝箔包裹于分隔块和支撑板外围,通过铝箔为反射层增强热量反射效率,以实现将分隔与反射层结构结合,减少装配工序。

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Abstract

The utility model relates to a radiation ground structure technical field, specifically is a kind of low temperature floor radiation ground structure, including ground layer and floor layer, the ground layer top is paved with heat insulation layer, the heat insulation layer top is equipped with support subassembly, the support subassembly includes partition block, aluminium foil and support plate;The support plate top between corresponding partition block evenly distributed has coil pipe, the support subassembly top is paved with bean stone concrete layer, the bean stone concrete layer top is paved with cement mortar layer;By support subassembly and be composed of partition block, aluminium foil and support plate, by support plate fixed partition block and by aluminium foil wrapping in the periphery of partition block and support plate, by aluminium foil for the heat reflection efficiency of reflection layer enhancement, to realize the combination of partition and reflection layer structure, reduce assembly procedure.
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Description

Technical Field

[0001] This utility model relates to the field of radiant floor structure technology, specifically to a low-temperature floor radiant floor structure. Background Technology

[0002] Radiant floor heating uses hot water at a temperature not exceeding 60℃ as a heat source, which circulates in a coil system buried under the floor to heat the entire floor and radiate heat evenly into the room through the floor. The radiant floor structure is mainly composed of steel wire mesh and water pipes laid on the ground.

[0003] In existing technologies, water pipes are laid on a wire mesh and then bound together with wires to confine the pipes to the mesh. This process is cumbersome, time-consuming, and labor-intensive. Therefore, a low-temperature floor radiant floor structure is proposed, which combines a partition and a reflective layer structure to reduce assembly steps. The partition structure also facilitates direct pipe laying, making the operation convenient, time-saving, and labor-saving. Utility Model Content

[0004] To address the problems in the existing technology, this utility model provides a low-temperature floor radiant floor structure that combines a partition and a reflective layer structure, reducing assembly steps. The partition structure also facilitates the direct laying of pipelines, making the operation convenient, time-saving, and labor-saving.

[0005] The technical solution adopted by this utility model to solve its technical problem is a low-temperature floor radiant floor structure, including a ground layer and a floor layer. An insulation layer is laid on top of the ground layer, and a support assembly is provided on top of the insulation layer. The support assembly includes a partition block, aluminum foil, and a support plate. The top of the support plate is evenly distributed with coils between the corresponding partition blocks, the top of the support assembly is covered with a layer of gravel concrete, and the top of the gravel concrete layer is covered with a layer of cement mortar.

[0006] By adopting the above technical solution, the insulation layer is made of polystyrene foam and laid on the top of the ground layer to prevent heat from leaking out to the soil. The support assembly consists of partition blocks, aluminum foil and support plate. The partition blocks are fixed by the support plate and wrapped with aluminum foil around the partition blocks and support plate. The aluminum foil is used as a reflective layer to enhance the heat reflection efficiency, so as to combine the partition and reflective layer structure and reduce the assembly process. The gaps formed between the partitions at the top of the support plate allow personnel to directly lay the coils, making the installation of the coils more convenient and stable, eliminating the need for cumbersome binding and limiting with steel wires, and greatly improving construction efficiency. By laying a pea gravel concrete layer on top of the support components, the pea gravel concrete layer has good heat storage and heat transfer performance, which can evenly transfer heat to the cement mortar layer, thereby making the indoor temperature distribution more uniform. By laying a cement mortar layer on top of the pebble concrete layer, the cement mortar layer provides a flat and solid base for the floor layer.

[0007] Specifically, the ground layer is a cement floor, and the insulation layer is polystyrene foam.

[0008] By adopting the above technical solution, polystyrene foam is laid on top of the ground layer as the insulation layer to prevent heat from leaking into the soil.

[0009] Specifically, the partition blocks are all disposed on the top surface of the support plate, and the aluminum foil is wrapped around the partition blocks and the support plate.

[0010] By adopting the above technical solution, the support assembly consists of a partition block, aluminum foil and a support plate. The partition block is fixed by the support plate and the aluminum foil is wrapped around the partition block and the support plate. The aluminum foil serves as a reflective layer to enhance heat reflection efficiency.

[0011] Specifically, both the partition block and the support plate are made of high-density polyethylene foam.

[0012] By adopting the above technical solution, and utilizing high-density polyethylene foam boards for both the separator and the support plate, the effect of preventing heat leakage is further achieved.

[0013] Specifically, the floor layer is laid on top of the cement mortar layer.

[0014] By adopting the above technical solution, a cement mortar layer is laid on top of the pebble concrete layer, providing a flat and solid base for the floor layer.

[0015] The beneficial effects of this utility model are: The present invention discloses a low-temperature radiant floor structure, which is composed of a partition block, an aluminum foil and a support plate through a support assembly. The partition block is fixed by the support plate and the aluminum foil is wrapped around the partition block and the support plate. The aluminum foil serves as a reflective layer to enhance heat reflection efficiency, thereby combining the partition and reflective layer structures and reducing assembly steps.

[0016] The low-temperature radiant floor structure described in this utility model allows for direct installation of coils by personnel through the gaps formed between the partition blocks at the top of the support plate. This makes the installation of the coils more convenient and stable, eliminating the need for cumbersome binding and positioning with steel wires, and greatly improving construction efficiency. Attached Figure Description

[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0018] Figure 1 This is a schematic diagram of the overall design of this utility model; Figure 2 This is a top view of the separator block of this utility model; In the diagram: 1. Ground layer; 2. Insulation layer; 3. Support assembly; 4. Divider block; 5. Aluminum foil; 6. Pipe coil; 7. Pebble concrete layer; 8. Cement mortar layer; 9. Floor layer; 10. Support plate. Detailed Implementation

[0019] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0020] For ease of operation, saving time and effort, such as Figure 1-2 As shown, the low-temperature radiant floor structure of this utility model includes a ground layer 1 and a floor layer 9. An insulation layer 2 is laid on top of the ground layer 1, and a support assembly 3 is provided on top of the insulation layer 2. The support assembly 3 includes a partition block 4, an aluminum foil 5, and a support plate 10. The top of the support plate 10 is evenly distributed with coils 6 between the corresponding partition blocks 4. The top of the support assembly 3 is covered with a pebble concrete layer 7, and the top of the pebble concrete layer 7 is covered with a cement mortar layer 8.

[0021] In use, the insulation layer 2 is made of polystyrene foam and laid on top of the ground layer 1 to prevent heat from leaking out to the soil. The support assembly 3 is composed of partition block 4, aluminum foil 5 and support plate 10. The partition block 4 is fixed by the support plate 10 and the aluminum foil 5 is wrapped around the partition block 4 and the support plate 10. The aluminum foil 5 is used as a reflective layer to enhance the heat reflection efficiency, so as to combine the partition and reflective layer structure and reduce the assembly process. The gap formed between the partition blocks 4 at the top of the support plate 10 allows personnel to directly lay the coil 6, making the installation of the coil 6 more convenient and stable, eliminating the need for cumbersome binding and limiting with steel wire, and greatly improving construction efficiency. By laying a pea gravel concrete layer 7 on top of the support component 3, the pea gravel concrete layer 7 has good heat storage and heat transfer performance, which can evenly transfer heat to the cement mortar layer 8, thereby making the indoor temperature distribution more uniform. By laying a cement mortar layer 8 on top of the pebble concrete layer 7, the cement mortar layer 8 provides a flat and solid base for the laying of the floor layer 9.

[0022] For ease of operation and to save time and effort, for example, such as Figure 1 As shown, the present invention also includes, the ground layer 1 is a cement floor, and the insulation layer 2 is polystyrene foam.

[0023] When in use, polystyrene foam is laid on top of the ground layer 1 through the insulation layer 2 to prevent heat from escaping into the soil.

[0024] For example, such as Figure 1 , Figure 2 As shown, the present invention also includes that the partition blocks 4 are all disposed on the top surface of the support plate 10, and the aluminum foil 5 is wrapped around the partition blocks 4 and the support plate 10.

[0025] In use, the support assembly 3 consists of a partition block 4, an aluminum foil 5, and a support plate 10. The partition block 4 is fixed by the support plate 10, and the aluminum foil 5 is wrapped around the partition block 4 and the support plate 10. The aluminum foil 5 serves as a reflective layer to enhance heat reflection efficiency.

[0026] For example, such as Figure 1 , Figure 2 As shown, the present invention also includes, the dividing block 4 and the support plate 10 are both high-density polyethylene foam boards.

[0027] In use, the partition block 4 and the support plate 10 are both made of high-density polyethylene foam plastic boards, which further prevents heat leakage.

[0028] For example, such as Figure 1 As shown, the present invention also includes that the floor layer 9 is laid on top of the cement mortar layer 8.

[0029] When in use, a cement mortar layer 8 is laid on top of the pebbly concrete layer 7, which provides a flat and solid base for the laying of the floor layer 9.

[0030] In use, the present invention uses polystyrene foam as the insulation layer 2 to be laid on top of the ground layer 1 to prevent heat from leaking out to the soil. The support assembly 3 is composed of partition block 4, aluminum foil 5 and support plate 10. The partition block 4 is fixed by the support plate 10 and the aluminum foil 5 is wrapped around the partition block 4 and the support plate 10. The aluminum foil 5 serves as a reflective layer to enhance heat reflection efficiency, thereby combining the partition and reflective layer structures and reducing assembly steps. The gap formed between the partition blocks 4 at the top of the support plate 10 allows personnel to directly lay the coil 6, making the installation of the coil 6 more convenient and stable, eliminating the need for cumbersome binding and limiting with steel wire, and greatly improving construction efficiency. By laying a pea gravel concrete layer 7 on top of the support component 3, the pea gravel concrete layer 7 has good heat storage and heat transfer performance, which can evenly transfer heat to the cement mortar layer 8, thereby making the indoor temperature distribution more uniform. By laying a cement mortar layer 8 on top of the pebble concrete layer 7, the cement mortar layer 8 provides a flat and solid base for the laying of the floor layer 9.

[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A low-temperature floor radiant surface structure, characterized in that, It includes a ground layer (1) and a floor layer (9). The ground layer (1) is covered with an insulation layer (2), and the insulation layer (2) is covered with a support assembly (3). The support assembly (3) includes a partition block (4), an aluminum foil (5), and a support plate (10). The top of the support plate (10) is evenly distributed with coils (6) between the corresponding partition blocks (4), the top of the support assembly (3) is covered with a pebble concrete layer (7), and the top of the pebble concrete layer (7) is covered with a cement mortar layer (8).

2. The low-temperature floor radiant ground structure according to claim 1, characterized in that, The ground layer (1) is a cement floor, and the insulation layer (2) is polystyrene foam.

3. The low-temperature floor radiant ground structure according to claim 1, characterized in that, The separators (4) are all located on the top surface of the support plate (10), and the aluminum foil (5) is wrapped around the separators (4) and the support plate (10).

4. The low-temperature floor radiant surface structure according to claim 1, characterized in that, Both the separator (4) and the support plate (10) are high-density polyethylene foam boards.

5. A low-temperature floor radiant surface structure according to claim 1, characterized in that, The floor layer (9) is laid on top of the cement mortar layer (8).