Warm-keeping plastic floor module facilitating floor heating pipeline laying
By designing a floor heating plastic floor module that is easy to lay, the problems of complex connections and low heat dissipation efficiency in existing floor heating technology are solved, and efficient pipeline fixation and heat insulation are achieved.
Patent Information
- Application Number
- CN202420774621.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-16
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-04-16
AI Technical Summary
In the existing floor heating technology, the connection method of electric heating floors is complex and error-prone, and the heat dissipation efficiency of floors heated by low-temperature hot water heating is poor.
A thermal plastic floor module is designed to facilitate laying floor heating pipes, including the plastic floor panel body, plastic cover plate and shell. There are gaps in vertical and horizontal arrays on the shell to form pipeline passages. The guide seat group is used to fix the pipeline. The plastic cover plate is in close contact with the shell to ensure sealing.
This module realizes heat insulation through a non-flowing air warm-keeping layer, reducing material usage and improving overall stiffness. The pipeline is partially fixed to ensure smooth water flow, good heat dissipation effect, and a modular design is easy to construct.
Smart Images

Figure CN222887411U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of floor heating, in particular to a heat-preserving plastic floor module facilitating the laying of floor heating pipes. Background Art
[0002] There are mainly two types of geothermal floor heating circulation methods. One is the heating cable heating, including heating carbon fiber, carbon crystal film, etc. The heating cable is placed inside the floor. The electric heating cable heats up and transfers heat through the floor. It is simple to use with electric energy and is convenient for precise temperature control, and no pollution is generated during use. However, each piece of the electric heating floor is an independent heating body, and each floor needs to be powered on during use. Most of the existing connection methods are to set power lines at both ends of the floor and then connect to the main circuit through the power lines. The workload during on-site construction is very large and it is easy to make mistakes. The other is the low-temperature hot water heating, and its disadvantage is that the heat dissipation efficiency of the floor board is poor and it is easy to dissipate heat to the ground. Summary of the Invention
[0003] The purpose of the utility model is to provide, in view of the deficiencies of the prior art, a heat-preserving plastic floor module facilitating the laying of floor heating pipes.
[0004] The technical solution adopted by the utility model is as follows.
[0005] A heat-preserving plastic floor module facilitating the laying of floor heating pipes, characterized in that: it includes a plastic floor board body and a plurality of plastic covers. A plurality of shells with flush top surfaces are arranged in a vertical and horizontal array on the top surface of the plastic floor board body, and a gap is provided between adjacent two shells to form a pipeline inlet and outlet channel;
[0006] A plurality of guide seat groups are arranged on the top surface of the plastic cover. Each guide seat group includes four guide seats with flush top surfaces. A longitudinally arranged pipeline longitudinal channel is formed between two adjacent guide seats in the horizontal direction, and a horizontally arranged pipeline transverse channel is formed between two adjacent guide seats in the vertical direction; the side of each guide seat close to the nearest shell side is an arc surface parallel to the outer side surface of the nearest shell, so as to form a pipeline turning channel in a straight line between the guide seat and the nearest shell side; the top surface of each guide seat is lower than the top surface of each shell; a plastic cover is placed on the top surface of each guide seat, and the thickness of the plastic cover is equal to the distance between the top surface of each shell and the top surface of each guide seat. The top surface of each guide seat group is in contact with the plastic cover, and the side surface of each plastic cover is in close contact with the side surfaces of the four nearest shells; the horizontal cross-section of the contact side surface of each shell and the plastic cover is a circle with a radius of R; a first blind hole with an opening downward is provided at the bottom end of each shell;
[0007] The lengths of the sides of the plastic floor board body are equal, and a plurality of connecting grooves are vertically arranged on each side of the plastic floor board body, and the outer end spacing of each connecting groove is less than the inner end spacing.
[0008] The beneficial effects of the present utility model are as follows: At the bottom end of each housing, a first blind hole with an opening downward is provided to form a non-flowing air heat preservation layer, which is convenient for heat insulation and reduces the material consumption. At the same time, the overall rigidity is improved. A number of housings are provided, and the whole is relatively light, which is convenient for transportation and docking. A guide seat is provided. When the pipeline passes through part of the pipeline inlet and outlet channels, part of the pipeline longitudinal channels, part of the pipeline turning channels, and the pipeline transverse channels, the pipeline will not make sharp turns and is fixed, ensuring the smooth flow of water and good heat dissipation effect. A plastic cover plate is provided, which can prevent the pipeline from being squeezed. The horizontal cross-section of the contact side between each housing and the plastic cover plate is a circle with a radius of R, with good sealing effect and the plastic cover plate is fixed by each housing to prevent the plastic cover plate from moving; it is convenient for the pipeline to turn but will not make sharp turns. The modular design is adopted, which is directly prefabricated and formed in the factory and directly assembled at the construction site, with high efficiency and convenience.
[0009] As a preferred technical solution, the top surface of the housing located within the top surface of the plastic floor tile body is a circle with a radius of R, the top surface of the housing located at the corner of the top surface of the plastic floor tile body is a quarter circle with a radius of R and the center of the circle is located at the corner; the top surface of the housing located on the side edge of the top surface of the plastic floor tile body and not at the corner is a semi-circle with a radius of R and the center of the circle is located on the side edge;
[0010] A square is formed by the centers of the four circles closest to each other on the top surface of the plastic floor tile body, and a guide seat combination is provided at the centroid of the square.
[0011] As a preferred technical solution, a second blind hole with an opening upward is provided on each guide seat; four clamping columns are vertically provided on the bottom surface of each plastic cover plate, and each clamping column is clamped into the second blind hole closest to it. By adopting this technical solution, the plastic cover plate is further fixed, and the disassembly and assembly are convenient, which is convenient for maintenance.
[0012] As a preferred technical solution, the thickness of each housing is equal to the thickness of the plastic floor tile body. By adopting this technical solution, the weight can be reduced.
[0013] As a preferred technical solution, a number of anti-slip grooves are provided on the top surface of some housings. By adopting this technical solution, anti-slip can be achieved.
[0014] As a preferred technical solution, the anti-slip grooves on the top surface of each housing pass through the center of the top surface of the housing.
[0015] As a preferred technical solution, each connecting groove vertically penetrates the side surface of the plastic floor tile body.
[0016] As a preferred technical solution, each connecting groove does not vertically penetrate the side surface of the plastic floor tile body.
[0017] As a preferred technical solution, a plurality of support plates perpendicular to the top surface of each housing are provided in the first blind hole with the opening downward of each housing. The top surface of each support plate contacts the lower side surface of the top plate of the housing, and the bottom surface of each support plate is flush with the bottom surface of the plastic floor tile body. By adopting this technical solution, the overall rigidity can be increased.
[0018] As a preferred technical solution, the horizontal cross-sectional shape of the first blind hole with the opening downward of each housing is the same as the shape of the top surface of the housing and the area is smaller than the area of the top surface of the housing. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic perspective view of a preferred embodiment of a heat-insulating plastic floor module for facilitating the laying of floor heating pipes according to the present invention.
[0020] Figure 2 is Figure 1 a partial enlarged view of part A of
[0021] Figure 3 is Figure 1 a partial enlarged view of part B of
[0022] Figure 4 is Figure 1 a rear view of the heat-insulating plastic floor module for facilitating the laying of floor heating pipes shown in
[0023] Figure 5 is Figure 1 a right view of the heat-insulating plastic floor module for facilitating the laying of floor heating pipes shown in
[0024] Figure 6 is Figure 1 a top view of the heat-insulating plastic floor module for facilitating the laying of floor heating pipes shown in
[0025] Figure 7 is Figure 1 a bottom view of the heat-insulating plastic floor module for facilitating the laying of floor heating pipes shown in
[0026] Figure 8 is a schematic structural view of a plastic cover plate.
[0027] Figure 9 is Figure 6 a schematic view of the heat-insulating plastic floor module for facilitating the laying of floor heating pipes shown in with the plastic cover plate removed.
[0028] Figure 10 is Figure 9 a partial enlarged view of part C of
[0029] Figure 11 is a schematic structural view of a connecting piece.
[0030] Figure 12It is five pieces Figure 1 The schematic diagram shows the floor formed by splicing the heat - insulating plastic floor modules for facilitating the laying of under - floor heating pipes and removing the plastic cover plate.
[0031] Figure 13 It is Figure 12 The partial enlarged view of part D of
[0032] Figure 14 It is five pieces Figure 1 The schematic diagram shows the floor formed by splicing the heat - insulating plastic floor modules for facilitating the laying of under - floor heating pipes shown in
[0033] Figure 15 The three - dimensional structure schematic diagram of a preferred embodiment of the heat - insulating plastic floor module of the present utility model for facilitating the laying of under - floor heating pipes.
[0034] Figure 16 It is Figure 15 The partial enlarged view of part E of
[0035] Figure 17 The three - dimensional structure schematic diagram of a preferred embodiment of the heat - insulating plastic floor module of the present utility model for facilitating the laying of under - floor heating pipes.
[0036] Figure 18 It is Figure 17 The partial enlarged view of part F of
[0037] Figure 19 It is Figure 17 The partial enlarged view of part G of
[0038] Figure 20 It is Figure 17 The rear view of the heat - insulating plastic floor module for facilitating the laying of under - floor heating pipes shown in
[0039] Figure 21 The three - dimensional structure schematic diagram of a preferred embodiment of the heat - insulating plastic floor module of the present utility model for facilitating the laying of under - floor heating pipes.
[0040] Figure 22 The three - dimensional structure schematic diagram of a preferred embodiment of the heat - insulating plastic floor module of the present utility model for facilitating the laying of under - floor heating pipes.
[0041] Figure 23 The structure schematic diagram of a plastic cover plate.
[0042] Figure 24 It is five pieces Figure 22 The schematic diagram shows the floor formed by splicing the heat - insulating plastic floor modules for facilitating the laying of under - floor heating pipes and removing the plastic cover plate shown in
[0043] Figure 25 It is five pieces Figure 1Schematic diagram of a heat - insulating plastic floor module facilitating the laying of under - floor heating pipes, which are spliced into a floor.
[0044] Figure 26 is Figure 25 Partial enlarged view of the H part of
[0045] Among them: plastic floor plate body - 1;
[0046] plastic cover plate - 2; clamping post - 21;
[0047] housing - 3; first blind hole - 31; support plate - 32; anti - slip groove - 33;
[0048] pipe inlet - outlet channel - 4; longitudinal pipe channel - 41; transverse pipe channel - 42; pipe turning channel - 43;
[0049] guide seat - 5; second blind hole - 51;
[0050] connection groove - 6;
[0051] connector - 7;
[0052] pipe - 8. Specific implementation mode
[0053] Next, the present utility model will be further described in conjunction with the accompanying drawings and embodiments.
[0054] Embodiment 1. As Figure 1-13 shown, a heat - insulating plastic floor module facilitating the laying of under - floor heating pipes, characterized in that it includes a plastic floor plate body 1 and a number of plastic cover plates 2. On the top surface of the plastic floor plate body 1, a number of housings 3 with flush top surfaces are arranged in a vertical and horizontal array. A gap is provided between two adjacent housings 3 to form a pipe inlet - outlet channel 4.
[0055] On the top surface of the plastic cover plate 2, a number of guide seat groups are provided. Each guide seat group includes four guide seats 5 with flush top surfaces. A longitudinally arranged longitudinal pipe channel 41 is formed between two adjacent guide seats 5 in the horizontal direction, and a transversely arranged transverse pipe channel 42 is formed between two adjacent guide seats 5 in the vertical direction; the side of each guide seat 5 close to the side of the nearest housing 3 is an arc surface parallel to the outer side surface of the nearest housing 3, so as to form a pipe turning channel 43 between the straight line of the side of the guide seat 5 and the side of the nearest housing 3; the top surface of each guide seat 5 is lower than the top surface of each housing 3; a plastic cover plate 2 is placed on the top surface of each guide seat 5, and the thickness of the plastic cover plate 2 is equal to the distance between the top surface of each housing 3 and the top surface of each guide seat 5. The top surfaces of each guide seat group are in contact with the plastic cover plate 2, and the side surfaces of each plastic cover plate 2 are in close contact with the side surfaces of the four nearest housings 3; the horizontal cross - section of the contact side surface of each housing 3 and the plastic cover plate 2 is a circle with a radius of R; at the bottom end of each housing 3, a first blind hole 31 opening downward is provided.
[0056] The lengths of the sides of the plastic floor tile body 1 are equal, and a number of connecting grooves 6 are vertically arranged on the sides of the plastic floor tile body 1. The outer end spacing of each connecting groove 6 is smaller than the inner end spacing.
[0057] The top surface of the housing 3 within the top surface of the plastic floor tile body 1 is a circle with a radius of R. The top surface of the housing 3 at the corner of the top surface of the plastic floor tile body 1 is a quarter circle with a radius of R and the center is located at the corner. The top surface of the housing 3 on the side edge of the top surface of the plastic floor tile body 1 and not at the corner is a semi - circle with a radius of R and the center is located on the side edge.
[0058] On the top surface of the plastic floor tile body 1, the centers of the four closest circles form a square, and a guide seat assembly is provided at the centroid of the square.
[0059] Specifically, 9 plastic covers 2 are provided on the top surface of the plastic floor tile body 1. 16 housings 3 with flush top surfaces are arranged in a vertical and horizontal array on the top surface of the plastic floor tile body 1. A gap is provided between adjacent two housings 3 to form a pipeline inlet - outlet channel 4. Among the sixteen housings 3, the number of housings 3 within the top surface of the plastic floor tile body 1 is 4. The number of housings 3 on the side edge of the top surface of the plastic floor tile body 1 and not at the corner is 6, and the number of housings 3 on the side edge of the top surface of the plastic floor tile body 1 is 8.
[0060] A first blind hole 31 with an opening downward is provided at the bottom end of each housing 3. The horizontal cross - sectional shape of the first blind hole 31 with an opening downward of each housing 3 is the same as the top surface shape of the housing 3 and the area is smaller than the top surface area of the housing 3.
[0061] The lengths of the sides of the plastic floor tile body 1 are equal, and 6 connecting grooves 6 are vertically arranged on the sides of the plastic floor tile body 1. The outer end spacing of each connecting groove 6 is smaller than the inner end spacing.
[0062] Each connecting groove 6 vertically penetrates the side surface of the plastic floor tile body 1.
[0063] The thickness of each housing 3 is equal to the thickness of the plastic floor tile body 1.
[0064] During splicing, the two closest connecting grooves 6 of adjacent two plastic floor tile bodies 1 are connected by a connector 7 with both ends respectively inserted into the two connecting grooves 6. The two ends of the connector 7 can respectively seal the two connecting grooves 6. The connector 7 is a connector made of plastic.
[0065] At the bottom end of each housing 3, a first blind hole 31 with an opening facing downward is provided to form a non-flowing air insulation layer, which is convenient for heat insulation, reduces material usage, and improves the overall rigidity at the same time. A number of housings 3 are provided, and the whole is relatively light, which is convenient for transportation and docking. A guiding seat is provided. When the pipeline 8 passes through part of the pipeline inlet and outlet channels, part of the pipeline longitudinal channels, part of the pipeline turning channels, and the pipeline transverse channels, the pipeline will not make sharp turns and is fixed, ensuring the smooth flow of water and good heat dissipation effect. A plastic cover plate 2 is provided to prevent the pipeline from being squeezed. The horizontal cross-section of the contact side between each housing 3 and the plastic cover plate 2 is a circle with a radius of R, with good sealing effect and the plastic cover plate 2 is fixed by each housing 3 to prevent the plastic cover plate 2 from moving; it is convenient for the pipeline to turn but will not make sharp turns. It adopts modular design, is directly prefabricated and formed in the factory, and directly assembled at the construction site, which is efficient and convenient.
[0066] Embodiment 2. As Figure 15-16 shown, the difference between this embodiment and Embodiment 1 is that:
[0067] A number of support plates 32 perpendicular to the top surface of each housing 3 are provided in the first blind hole 31 with an opening facing downward of each housing 3. The top surface of each support plate 32 contacts the lower side of the top plate of the housing 3, and the bottom surface of each support plate 32 is flush with the bottom surface of the plastic floor plate body 1. Specifically, the number of support plates 32 in the first blind hole 31 of the housing 3 within the top surface of the plastic floor plate body 1 is 8; the number of support plates 32 in the first blind hole 31 of the housing 3 on the top side edge of the plastic floor plate body 1 and not at the top corner is 3, and the number of support plates 32 in the first blind hole 31 of the housing 3 on the top side edge of the plastic floor plate body 1 is 1.
[0068] Embodiment 3. As Figure 17-20 shown, the difference between this embodiment and Embodiment 1 is that: the vertical connection grooves 6 do not penetrate through the side surface of the plastic floor plate body 1. The number of support plates 32 in the first blind hole 31 of the housing 3 within the top surface of the plastic floor plate body 1 is 4; the number of support plates 32 in the first blind hole 31 of the housing 3 on the top side edge of the plastic floor plate body 1 and not at the top corner is 2, and the number of support plates 32 in the first blind hole 31 of the housing 3 on the top side edge of the plastic floor plate body 1 is 1.
[0069] Embodiment 4. As Figure 22 shown, the difference between this embodiment and Embodiment 1 is that: a number of anti-slip grooves 33 are provided on the top surface of some housings 3. The number of anti-slip grooves 33 in the housing 3 within the top surface of the plastic floor plate body 1 is 4; the number of anti-slip grooves 33 in the housing 3 on the top side edge of the plastic floor plate body 1 and not at the top corner is 1, and the number of support plates 32 in the first blind hole 31 of the housing 3 on the top side edge of the plastic floor plate body 1 is 1. The anti-slip grooves 33 on the top surface of each housing 3 pass through the center of the top surface of the housing 3.
[0070] Example 5. As Figure 22-26 shown, the difference between this embodiment and Embodiment 1 is that: each connecting groove 6 does not vertically penetrate through the side surface of the plastic floor board body 1. Each guiding seat 5 is provided with a second blind hole 51 with an upward opening; on the bottom surface of each plastic cover plate 2, four clamping columns 21 are vertically provided, and each clamping column 21 is clamped into the second blind hole 51 closest to it.
[0071] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, making equivalent substitutions or changes, should be covered by the protection scope of the present invention.
Claims
1. A thermal insulation plastic floor module that is convenient for laying floor heating pipes, characterized in that: It comprises a plastic floor block body (1) and a plurality of plastic cover plates (2); a plurality of shells (3) with flush top surfaces are arranged in a vertical and horizontal array on the top surface of the plastic floor block body (1); a gap is provided between two adjacent shells (3) to form a pipeline inlet and outlet channel (4); A plurality of guide seat groups are provided on the top surface of the plastic cover plate (2), each guide seat group comprising four guide seats (5) with flush top surfaces, a longitudinal pipeline longitudinal channel (41) arranged longitudinally is formed between two adjacent guide seats (5) in the transverse direction, and a transverse pipeline transverse channel (42) arranged transversely is formed between two adjacent guide seats (5) in the longitudinal direction; the side surface of each guide seat (5) close to the shell (3) closest to it is an arc surface parallel to the outer side surface of the shell (3) closest to it, so that a pipeline turning channel (43) is formed in a straight line between the guide seat (5) and the side surface of the shell (3) closest to it ; The top surface of each guide seat (5) is lower than the top surface of each shell (3); a plastic cover plate (2) is placed on the top surface of each guide seat (5); the thickness of the plastic cover plate (2) is equal to the distance between the top surface of each shell (3) and the top surface of each guide seat (5); the top surface of each guide seat (5) group is in contact with the plastic cover plate (2); the side surface of each plastic cover plate (2) is in close contact with the side surfaces of the four shells (3) closest to it; the horizontal cross-section of the contact side surface of each shell (3) and the plastic cover plate (2) is a circle with a radius R; the bottom end of each shell (3) is provided with a first blind hole (31) opening downward; The lengths of the sides of the plastic floor block body (1) are equal. A plurality of connection grooves (6) are arranged vertically on the sides of the plastic floor block body (1). The outer end spacing of the connection grooves (6) is smaller than the inner end spacing.
2. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 1, characterized in that: The top surface of the shell (3) located inside the top surface of the plastic floor block body (1) is a circle with a radius of R; the top surface of the shell (3) located at the top surface corner of the plastic floor block body (1) is a quarter circle with a radius of R, and the center of the circle is located at the corner; the top surface of the shell (3) located on the side edge of the top surface of the plastic floor block body (1) and not located at the top surface corner is a semicircle with a radius of R, and the center of the circle is located on the side edge; the top surface of the plastic floor block body (1) is a square formed by the four nearest circle centers, and a guide seat assembly is provided at the centroid of the square.
3. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 2, characterized in that: Each guide seat (5) is provided with a second blind hole (51) opening upward; and four clamping posts (21) are vertically provided on the bottom surface of each plastic cover plate (2), and each clamping post (21) is clamped into a second blind hole (51) closest to it.
4. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 2, characterized in that: The thickness of each shell (3) is equal to the thickness of the plastic floor block body (1).
5. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 2, characterized in that: A plurality of anti-slip grooves (33) are provided on the top surface of a portion of the shell (3).
6. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 5, characterized in that: The anti-slip groove (33) on the top surface of each shell (3) passes through the center of the top surface of the shell (3).
7. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 1, characterized in that: Each connection groove (6) vertically penetrates the side surface of the plastic floor block body (1).
8. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 1, characterized in that: Each connecting groove (6) is vertically disposed and does not penetrate the side surface of the plastic floor block body (1).
9. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 1, characterized in that: A plurality of support plates (32) perpendicular to the top surface of each shell (3) are arranged in the first blind hole (31) of each shell (3) which opens downwards; the top surface of each support plate (32) contacts the lower side surface of the top plate of the shell (3); and the bottom surface of each support plate (32) is flush with the bottom surface of the plastic floor block body (1).
10. The thermal insulation plastic floor module for facilitating the laying of floor heating pipes as claimed in claim 9, characterized in that: The horizontal cross-sectional shape of the downwardly opening first blind hole (31) of each shell (3) is the same as the top surface shape of the shell (3) and the area is smaller than the top surface area of the shell (3).