Composite lock catch geothermal floor

By using the design of composite interlocking geothermal flooring, the combination of thermally conductive rubber and heat dissipation plate solves the problems of long heat conduction paths and low efficiency of existing geothermal floors, achieving rapid heat conduction and efficient heating, while improving installation convenience, waterproof performance and seismic resistance.

CN224149075UActive Publication Date: 2026-04-21CHANGZHOU YAWANG WOOD IND CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHANGZHOU YAWANG WOOD IND CO LTD
Filing Date
2025-05-20
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing geothermal floors have long heat conduction paths, low heat conduction efficiency, and poor thermal conductivity due to the wood.

Method used

The composite locking structure shortens the heat conduction path through the combination of thermally conductive rubber and heat sink. The heat is also conducted through the combination of thermally conductive plate, thermally conductive rubber and heat sink. The design of male tenon and female groove improves the ease of installation and waterproof performance.

Benefits of technology

It enables rapid heat conduction, improves thermal efficiency, enhances the tensile strength and waterproof performance of the floor, and also increases the floor's elasticity and shock resistance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224149075U_ABST
    Figure CN224149075U_ABST
Patent Text Reader

Abstract

The utility model discloses a composite lock catch geothermal floor which comprises a floor body, a heat conduction plate is fixedly embedded in the bottom of the floor body, a fixing frame located above the heat conduction plate is fixedly installed in the floor body, and a plurality of partition plates are integrally arranged in the fixing frame. Heat conducting rubber is filled between the adjacent partition plates, a mounting through hole is formed in the middle of the heat conducting rubber, a telescopic sleeve located in the mounting through hole is integrally arranged at the top of the heat conducting plate, and a telescopic column is slidably connected to the top of the telescopic sleeve in a penetrating mode; a heat dissipation plate located at the top of the heat conduction rubber is fixedly installed at the top of the telescopic column, and a jacking spring is arranged at the bottom of the telescopic column. Heat is conducted into air through the top of the floor body through the heat dissipation plate, the heat is rapidly conducted to the upper surface of the geothermal floor, and the geothermal floor has the advantages of being short in heat conduction path, rapid in heating and high in heat efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of geothermal flooring technology, specifically a composite interlocking geothermal floor. Background Technology

[0002] Geothermal floor heating uses radiant floor heating to create a uniform indoor temperature, with the temperature decreasing upwards from the floor. In winter, people often install heating devices to ensure a comfortable indoor temperature. Because geothermal floor heating provides even heating through radiant floor radiation, and the temperature gradually decreases from the floor upwards, it creates a comfortable feeling of warm feet and a cool head. Therefore, geothermal floor heating has become an increasingly popular choice for families, and experts predict that it will become a major heating method in the future.

[0003] In existing technologies, the heat transfer medium or heating element of geothermal flooring is arranged separately from the floor, or laid on the ground or installed inside other components such as the base plate between the ground and the floor. The heat transfer medium needs to transfer heat to the base plate and core plate first, and then from the base plate and core plate to the secondary and outer plates. The heat conduction path is relatively long, and the thermal conductivity of wood is poor, resulting in low heat conduction efficiency.

[0004] Therefore, we propose a composite interlocking geothermal floor. Utility Model Content

[0005] The purpose of this invention is to provide a composite interlocking geothermal floor to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a composite interlocking geothermal floor, comprising a floor body, a heat-conducting plate fixedly embedded in the bottom of the floor body, a fixed frame fixedly installed inside the floor body above the heat-conducting plate, a plurality of partition plates integrally provided inside the fixed frame, heat-conducting rubber filling the spaces between adjacent partition plates, an installation through hole provided in the middle of the heat-conducting rubber, a telescopic sleeve integrally provided on the top of the heat-conducting plate inside the installation through hole, a telescopic column slidably connected through the top of the telescopic sleeve, a heat dissipation plate fixedly installed on the top of the telescopic column at the top of the heat-conducting rubber, and a lifting spring provided at the bottom of the telescopic column.

[0007] Optionally, a female groove is provided on one side of the floor body for easy splicing, and a male tenon is provided on the other side of the floor body to be inserted into the female groove. Sealing rubber strips are glued to the other side of the floor body on both sides of the male tenon.

[0008] Optionally, the bottom of the heat-conducting plate is flush with the bottom of the floor body, the bottom of the heat-conducting rubber is in close contact with the top of the heat-conducting plate, the thickness of the heat-conducting rubber is greater than the height of the fixing frame, and the top of the heat-conducting rubber is in close contact with the bottom of the heat sink.

[0009] Optionally, a decorative panel is provided on the top of the floor body, and the heat dissipation plate and the fixing frame are located inside the base plate body, with the height of the fixing frame being less than the height of the partition plate.

[0010] Optionally, several of the partition plates are evenly distributed inside the fixed frame. The partition plates are staggered bent plates, and adjacent partition plates do not contact each other. The height of the partition plates is less than the thickness of the thermally conductive rubber.

[0011] Optionally, the thermally conductive rubber is divided into several continuous, approximately rhomboid strips by a partition plate, and the mounting through hole is opened in the middle of the widest part of the thermally conductive rubber, the diameter of the mounting through hole being the same as the diameter of the telescopic sleeve.

[0012] Optionally, the top of the lifting spring is in close contact with the bottom of the telescopic column, and the bottom of the lifting spring is in close contact with the top of the heat-conducting plate.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] This composite interlocking geothermal floor uses heat-conducting rubber. The heat emitted by the geothermal equipment is conducted through the heat-conducting plate to the heat-conducting rubber, and then through the heat-conducting rubber to the heat dissipation plate. The heat dissipation plate then conducts the heat into the air through a thinner section at the top of the floor body. The heat is quickly conducted to the upper surface of the geothermal floor, which has the advantages of short heat conduction path, fast heating, and high thermal efficiency.

[0015] This composite interlocking geothermal floor features a reasonable structure with male and female tenons and female grooves, making installation and disassembly smooth and convenient, and improving tensile strength. The sealing rubber strip gives the baseboard excellent waterproof performance, extending its service life. Furthermore, the combination of elastic thermally conductive rubber, telescopic sleeves, telescopic columns, and lifting springs gives the floor itself excellent elasticity and increases its seismic resistance. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of a composite interlocking geothermal floor according to the present invention;

[0017] Figure 2 This is a schematic diagram of the main structure of the composite interlocking geothermal floor according to this utility model;

[0018] Figure 3 This is a schematic diagram of the fixing frame of a composite interlocking geothermal floor according to the present invention;

[0019] Figure 4 This is a schematic diagram of the structure of the telescopic sleeve of a composite interlocking geothermal floor according to this utility model.

[0020] In the diagram: 1. Floor body; 2. Heat-conducting plate; 3. Female groove; 4. Male tenon; 5. Sealing rubber strip; 6. Fixing frame; 7. Partition plate; 8. Heat-conducting rubber; 9. Mounting through hole; 10. Heat dissipation plate; 11. Telescopic sleeve; 12. Telescopic column; 13. Lifting spring. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Please see Figures 1 to 4 This utility model provides a composite interlocking geothermal floor, including a floor body 1. A heat-conducting plate 2 is fixedly embedded in the bottom of the floor body 1. A fixing frame 6 is fixedly installed inside the floor body 1 above the heat-conducting plate 2. Several partition plates 7 are integrally arranged inside the fixing frame 6. Heat-conducting rubber 8 is filled between adjacent partition plates 7. An installation through hole 9 is opened in the middle of the heat-conducting rubber 8. A telescopic sleeve 11 is integrally arranged on the top of the heat-conducting plate 2 and located inside the installation through hole 9. A telescopic column 12 is slidably connected through the top of the telescopic sleeve 11. A heat dissipation plate 10 is fixedly installed on the top of the telescopic column 12 and located on the top of the heat-conducting rubber 8. A lifting spring 13 is provided at the bottom of the telescopic column 12. By setting the heat-conducting rubber 8, the heat emitted by the geothermal equipment is conducted to the heat-conducting rubber 8 through the heat-conducting plate 2, and then to the heat dissipation plate 10 through the heat-conducting rubber 8. The heat dissipation plate 10 then conducts the heat to the air through the thinner part of the top of the floor body. The heat is quickly conducted to the upper surface of the geothermal floor, which has the advantages of short heat conduction path, fast heating and high thermal efficiency.

[0023] One side of the floor body 1 has a female groove 3 for easy splicing, and the other side of the floor body 1 has a male tenon 4 that is inserted into the female groove 3. On the other side of the floor body 1, sealing rubber strips 5 are glued to the upper and lower sides of the male tenon 4. By setting the male tenon 4 and the female groove 3, the structure is reasonable, the installation and disassembly are smooth and convenient, and the tensile strength is improved. The sealing rubber strips 5 make the base plate have very good waterproof performance and improve the service life.

[0024] The bottom of the heat-conducting plate 2 is flush with the bottom of the floor body 1, the bottom of the heat-conducting rubber 8 is in close contact with the top of the heat-conducting plate 2, the thickness of the heat-conducting rubber 8 is greater than the height of the fixing frame 6, and the top of the heat-conducting rubber 8 is in close contact with the bottom of the heat sink 10.

[0025] A decorative panel is provided on the top of the floor body 1, and the heat dissipation plate 10 and the fixing frame 6 are located inside the base plate body. The height of the fixing frame 6 is less than the height of the partition plate 7.

[0026] Several partition plates 7 are evenly distributed inside the fixed frame 6. The partition plates 7 are staggered bent plates. Adjacent partition plates 7 do not contact each other. The height of the partition plates 7 is less than the thickness of the thermally conductive rubber 8.

[0027] The thermally conductive rubber 8 is divided into several continuous, approximately rhomboid strips by the partition plate 7. The mounting through hole 9 is opened in the middle of the widest part of the thermally conductive rubber 8, and the diameter of the mounting through hole 9 is the same as the diameter of the telescopic sleeve 11.

[0028] The top of the lifting spring 13 is in close contact with the bottom of the telescopic column 12, and the bottom of the lifting spring 13 is in close contact with the top of the heat-conducting plate 2. The combination of the elastic heat-conducting rubber 8, the telescopic sleeve 11, the telescopic column 12, and the lifting spring 13 gives the floor body excellent elasticity and increases the floor body's shock resistance.

[0029] Working principle:

[0030] The heat emitted by the geothermal equipment is conducted through the heat-conducting plate 2 to the heat-conducting rubber 8, and then through the heat-conducting rubber 8 to the heat dissipation plate 10. The heat dissipation plate 10 then conducts the heat through a thinner part at the top of the floor body into the air. The heat is quickly conducted to the upper surface of the geothermal floor, which has the advantages of short heat conduction path, fast heating, and high thermal efficiency. By setting the male tenon 4 and female groove 3, the structure is reasonable, and the installation and disassembly are smooth and convenient, which improves the tensile strength. The sealing rubber strip 5 makes the bottom plate have very good waterproof performance, which improves the service life. Moreover, the combination of the elastic heat-conducting rubber 8, the telescopic sleeve 11, the telescopic column 12, and the lifting spring 13 gives the floor body excellent elasticity and increases the seismic performance of the floor body.

[0031] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A composite locking floor heating panel comprising a floor body (1), characterized in that, A heat-conducting plate (2) is fixedly embedded at the bottom of the floor body (1). A fixed frame (6) located above the heat-conducting plate (2) is fixedly installed inside the floor body (1). Several partition plates (7) are integrally provided inside the fixed frame (6). Heat-conducting rubber (8) is filled between adjacent partition plates (7). An installation through hole (9) is opened in the middle of the heat-conducting rubber (8). A telescopic sleeve (11) located inside the installation through hole (9) is integrally provided at the top of the heat-conducting plate (2). A telescopic column (12) is slidably connected through the top of the telescopic sleeve (11). A heat dissipation plate (10) located at the top of the heat-conducting rubber (8) is fixedly installed at the top of the telescopic column (12). A lifting spring (13) is provided at the bottom of the telescopic column (12).

2. The composite locking floor heating according to claim 1, wherein, The floor body (1) has a female groove (3) on one side for easy splicing, and a male tenon (4) that is inserted into the female groove (3) on the other side. Sealing rubber strips (5) are glued to the other side of the floor body (1) on the upper and lower sides of the male tenon (4).

3. The composite locking floor heating according to claim 1, wherein, The bottom of the heat-conducting plate (2) is flush with the bottom of the floor body (1), the bottom of the heat-conducting rubber (8) is in close contact with the top of the heat-conducting plate (2), the thickness of the heat-conducting rubber (8) is greater than the height of the fixing frame (6), and the top of the heat-conducting rubber (8) is in close contact with the bottom of the heat sink (10).

4. The composite locking floor heating panel according to claim 1, wherein, The top of the floor body (1) is provided with a decorative panel, the heat dissipation plate (10) and the fixing frame (6) are located inside the base plate body, and the height of the fixing frame (6) is less than the height of the partition plate (7).

5. The composite locking floor heating according to claim 4, wherein, Several partition plates (7) are evenly distributed inside the fixed frame (6). The partition plates (7) are staggered bent plates. Adjacent partition plates (7) do not contact each other. The height of the partition plates (7) is less than the thickness of the thermally conductive rubber (8).

6. The composite locking floor heating panel according to claim 1, wherein, The thermally conductive rubber (8) is divided into several continuous, approximately rhomboid strips by the partition plate (7). The mounting through hole (9) is opened in the middle of the widest part of the thermally conductive rubber (8). The diameter of the mounting through hole (9) is the same as the diameter of the telescopic sleeve (11).

7. The composite locking floor heating panel according to claim 1, wherein, The top of the lifting spring (13) is in close contact with the bottom of the telescopic column (12), and the bottom of the lifting spring (13) is in close contact with the top of the heat-conducting plate (2).