Green and environment-friendly thermal insulation material for building

By using the installation mechanism of the inner and outer side plates, combined with the design of the threaded adjuster and damping adjustment wheel, the problem of weak bonding of existing thermal insulation materials during construction is solved, achieving stable installation and uniform insulation effect, thus meeting the energy-saving requirements of green buildings.

CN223893561UActive Publication Date: 2026-02-10MCC22 GROUP CORP LTD THE FIRST CONSTRUCTION CO +1
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Patent Information

Application Number
CN202520315459.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-02-10
Estimated Expiration
2035-02-26

AI Technical Summary

Technical Problem

Existing thermal insulation materials are difficult to bond firmly to the wall during construction, are complicated to install, are prone to falling off or shifting, and have complicated material combinations, resulting in uneven insulation effects and failing to meet the low-carbon, environmentally friendly, and energy-efficient requirements of modern green buildings.

Method used

The installation mechanism, which includes inner and outer side panels, is combined with a threaded adjuster, a rotating snap fastener, and a damping adjustment wheel. The threaded adjustment shell and spring work together to ensure a stable installation of the material. The combination of foam glass board, mineral wool board, perlite board, vacuum insulation board, and rubber-plastic sponge board is used to improve the thermal insulation performance.

Benefits of technology

It achieves a firm bond between thermal insulation materials and the wall, simplifies the construction process, improves construction efficiency and service life, ensures the uniformity and environmental friendliness of the insulation effect, and meets the energy-saving requirements of green buildings.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an environment-friendly building thermal insulation material which comprises a mounting mechanism and a thermal insulation mechanism, the mounting mechanism comprises an inner side plate and an outer side plate, and the thermal insulation mechanism is arranged between the inner side plate and the outer side plate; a thread adjuster is arranged on the inner side plate, one end of the thread adjuster is connected with a thread adjusting shell, the end, away from the thread adjuster, of the thread adjusting shell is fixedly connected with the outer side plate, a rotary buckle device is arranged at the other end of the thread adjuster, and a handle is arranged at the end, away from the thread adjuster, of the rotary buckle device. The heat preservation mechanism is provided with a hole used for installing the thread adjusting shell. Compared with the prior art, when the heat preservation mechanism is used for construction, the heat preservation mechanism is laid on the outer side plate, the threaded adjuster is connected to the end, away from the outer side plate, of the threaded adjusting shell in a butt joint mode, threaded rotation adjustment is conducted through the rotary buckle device, practicability in the actual use process is improved, fixation of the rotary buckle device is removed finally, and laying installation is completed.
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Description

Technical Field

[0001] This utility model relates to the field of environmentally friendly construction technology, and in particular to a green and environmentally friendly thermal insulation material for buildings. Background Technology

[0002] In building construction, the use of thermal insulation materials is crucial for improving building energy efficiency and indoor comfort. While traditional building materials such as concrete and bricks offer significant advantages in structural strength, their thermal insulation performance is relatively limited, leading to high energy consumption for heating in winter and cooling in summer, thus increasing building operating costs. Simultaneously, the high thermal conductivity of traditional wall materials makes them ineffective at insulating against external temperature changes, causing the indoor environment to be easily affected by external climate, which is detrimental to energy conservation and environmental protection requirements. Therefore, the demand for thermal insulation materials in modern buildings is increasing, especially under the trends of green building and energy conservation, making the development of efficient and environmentally friendly thermal insulation materials a key focus of the industry.

[0003] An existing green building thermal insulation material for interior walls, authorized by publication number CN209145037U, includes a main body and a fiberglass layer. CPC anti-slip agent is disposed on the upper part of the main body, and a waterproof coating is connected below the CPC anti-slip agent. Water-based putty is placed below the waterproof coating, and a mesh fabric is fixed below the putty. Sound insulation cotton is disposed below the mesh fabric, and a bamboo-wood fiberboard is connected below the mesh fabric. A cavity is embedded in the middle of the bamboo-wood fiberboard. The fiberglass layer is located below the bamboo-wood fiberboard, and an adhesive layer is connected below the fiberglass layer. This green building thermal insulation material for interior walls incorporates bamboo-wood fiberboard, a green and environmentally friendly material that is highly energy-efficient. The cavity embedded within the bamboo-wood fiberboard provides good thermal insulation, and the fiberglass layer beneath the bamboo-wood fiberboard further enhances its thermal insulation function. This design is green and energy-saving, possesses excellent thermal insulation properties, and is easy to use.

[0004] While existing thermal insulation materials can improve building insulation performance to some extent, they often present numerous problems during installation and use. For example, some insulation materials are difficult to bond firmly to walls during construction, are complex to install, and are prone to detachment or displacement, affecting construction efficiency and lifespan. Furthermore, the combination and adjustment of different materials are cumbersome, lacking a unified adjustment mechanism, resulting in uneven insulation effects and hindering quick and convenient installation by construction workers. The durability and environmental friendliness of traditional materials also need improvement, failing to fully meet the requirements of modern green buildings for low-carbon, environmentally friendly, and energy-efficient construction. Therefore, we provide a green and environmentally friendly thermal insulation material for buildings. Utility Model Content

[0005] To solve the above-mentioned technical problems, this utility model provides a green and environmentally friendly thermal insulation material for buildings.

[0006] To achieve this technical objective, the present invention adopts the following solution:

[0007] A green and environmentally friendly building thermal insulation material includes an installation mechanism and an insulation mechanism. The installation mechanism includes an inner side plate and an outer side plate, and the insulation mechanism is disposed between the inner side plate and the outer side plate. A threaded adjuster is provided on the inner side plate. One end of the threaded adjuster is connected to a threaded adjusting shell. The end of the threaded adjusting shell away from the threaded adjuster is fixedly connected to the outer side plate. A spring is sleeved on the outer surface of the threaded adjusting shell. A rotating latch is provided on the other end of the threaded adjuster. A handle is provided on the end of the rotating latch away from the threaded adjuster. A hole for installing the threaded adjusting shell is provided on the insulation mechanism.

[0008] In a preferred embodiment, the insulation mechanism includes a foam glass board, a mineral wool board on one side of the foam glass board, a perlite board on the side of the mineral wool board away from the foam glass board, a vacuum insulation board on the side of the perlite board away from the mineral wool board, and a rubber-plastic sponge board on the side of the vacuum insulation board away from the perlite board.

[0009] In a preferred embodiment, the foam glass panel is disposed on the side closest to the inner panel.

[0010] In a preferred embodiment, a damping shell is provided in the inner side plate, a damping adjustment wheel is provided in the damping shell, a baffle is provided on the side of the damping adjustment wheel near the outer side plate, the baffle is connected to the damping shell, and a threaded adjuster is provided in the damping adjustment wheel.

[0011] In a preferred embodiment, the two ends of the spring are limited between the inner and outer side plates, and the handle is fixedly connected to the rotating buckle.

[0012] In a preferred embodiment, one end of the thread adjuster is threadedly connected to the thread adjusting housing, and the other end of the thread adjuster is provided with a slot for connection with the rotary snap fastener.

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

[0014] This utility model replaces traditional concrete walls with thermal insulation materials. During construction, workers lay the insulation mechanism on the spring on the outer surface of the threaded adjustment shell on the outer side plate. Then, the threaded adjuster on one side of the inner side plate is connected to the end of the threaded adjustment shell away from the outer side plate. The thread is adjusted by rotating the threaded adjustment using a rotating buckle with a handle. When the threaded adjuster rotates inside the damping adjustment wheel, the damping adjustment wheel and the damping shell provide damping rotation, increasing friction and preventing reverse disengagement, thus improving practicality in actual use. Finally, the rotating buckle is released to complete the installation. Attached Figure Description

[0015] Figure 1 A structural schematic diagram of a green and environmentally friendly building thermal insulation material provided by this utility model;

[0016] Figure 2 A cross-sectional structural schematic diagram of a green and environmentally friendly building thermal insulation material provided by this utility model;

[0017] Figure 3 A schematic diagram of the installation mechanism for a green and environmentally friendly building thermal insulation material provided by this utility model;

[0018] Figure 4 A schematic diagram of the insulation mechanism of a green and environmentally friendly building insulation material provided by this utility model;

[0019] Figure 5 An exploded view of the installation mechanism for a green and environmentally friendly building thermal insulation material provided by this utility model;

[0020] Figure 6 for Figure 4 Enlarged view of section A in the middle;

[0021] Figure 7 for Figure 5 Enlarged view of section B.

[0022] The following are marked in the diagram: 1. Installation mechanism; 11. Inner side plate; 12. Damping shell; 13. Damping adjusting wheel; 14. Baffle; 15. Thread adjuster; 16. Thread adjusting shell; 17. Outer side plate; 18. Spring; 19. Rotary buckle; 110. Handle; 2. Insulation mechanism; 21. Foam glass board; 22. Mineral wool board; 23. Perlite board; 24. Vacuum insulation board; 25. Rubber and plastic sponge board. Detailed Implementation

[0023] To fully understand the purpose, features and effects of this utility model, the following specific embodiments will be used to describe this utility model in detail, but this utility model is not limited thereto.

[0024] See Figures 1 to 7 This utility model provides a green and environmentally friendly building thermal insulation material, including an installation mechanism 1 and an insulation mechanism 2. The installation mechanism 1 includes an inner side plate 11 and an outer side plate 17, and the insulation mechanism 2 is disposed between the inner side plate 11 and the outer side plate 17.

[0025] A damping shell 12 is nested within the inner side plate 11. A damping adjustment wheel 13 is installed within the damping shell 12 for damping adjustment. A baffle 14 is located on the side of the damping adjustment wheel 13 closest to the outer side plate 17, and the baffle 14 is connected to the damping shell 12. A threaded adjuster 15 is nested within the damping adjustment wheel 13 and the baffle 14, with a clearance fit between the threaded adjuster 15 and the damping adjustment wheel 13, allowing the threaded adjuster 15 to rotate within the damping adjustment wheel 13. A friction material, such as rubber or polymer, is provided between the threaded adjuster 15 and the damping adjustment wheel 13. One end of the threaded adjuster 15 is connected to a threaded adjustment housing 16, and the threaded adjuster 15 and the threaded adjustment housing 16 are threaded together for telescopic adjustment. The end of the threaded adjusting housing 16 furthest from the threaded adjuster 15 is fixedly connected to the outer plate 17. A spring 18 is provided on the outer surface of the threaded adjusting housing 16 for cushioning and shock absorption. The two ends of the spring 18 are limited between the inner plate 11 and the outer plate 17. A rotating latch 19 is provided at the other end of the threaded adjuster 15. A handle 110 is provided at the end of the rotating latch 19 furthest from the threaded adjuster 15, and the handle 110 is fixedly connected to the rotating latch 19. A slot is provided at the end of the threaded adjuster 15 connected to the rotating latch 19. A protrusion is provided at the end of the rotating latch 19. During installation, the rotating latch 19 extends into the slot of the threaded adjuster 15, and the handle 110 is rotated to rotate the threaded adjuster 15. After installation, the rotating latch 19 can be removed.

[0026] The insulation mechanism 2 has a hole for installing the threaded adjustment shell 16. The insulation mechanism 2 includes a foam glass board 21, a mineral wool board 22 is provided on one side of the foam glass board 21, a perlite board 23 is provided on the side of the mineral wool board 22 away from the foam glass board 21, a vacuum insulation board 24 is provided on the side of the perlite board 23 away from the mineral wool board 22, and a rubber and plastic sponge board 25 is provided on the side of the vacuum insulation board 24 away from the perlite board 23.

[0027] During installation, the foam glass board 21 is placed on the side closest to the inner panel 11, the mineral wool board 22 is laid on the side of the foam glass board 21, the perlite board 23 is laid on the side of the mineral wool board 22 away from the foam glass board 21, the vacuum insulation board 24 is laid on the side of the perlite board 23 away from the mineral wool board 22, and the rubber and plastic sponge board 25 is laid on the side of the vacuum insulation board 24 away from the perlite board 23.

[0028] In this embodiment, when workers use this environmentally friendly building material to construct a building, they can replace the traditional concrete walls with this thermal insulation material. Workers can lay foam glass board 21, mineral wool board 22, perlite board 23, vacuum insulation board 24, and rubber-plastic sponge board 25 on the outer surface of the threaded adjustment shell 16 outside the spring 18 on the outer side plate 17. Then, workers can connect the threaded adjuster 15 on one side of the inner side plate 11 to the end of the threaded adjustment shell 16 away from the outer side plate 17, and then adjust the thread by rotating the rotating buckle 19 with a handle 110. The threaded adjuster 15 can rotate in the damping adjustment wheel 13, and the damping adjustment wheel 13 and the damping shell 12 can rotate with damping, thus increasing the adjustment friction and preventing the possibility of reverse disengagement during actual use. This further improves its practicality in actual use. Then, the rotating buckle 19 is released from the threaded adjuster 15 on the inner side plate 11, and the installation can proceed.

[0029] Finally, it should be noted that the above-listed embodiments are merely preferred embodiments of the present invention. Of course, those skilled in the art can make modifications and variations to the present invention. If such modifications and variations fall within the scope of the claims of the present invention and their equivalents, they should be considered as being within the protection scope of the present invention.

Claims

1. A green and environmentally friendly building thermal insulation material, comprising an installation mechanism (1) and an insulation mechanism (2), characterized in that, The mounting mechanism (1) includes an inner side plate (11) and an outer side plate (17). The insulation mechanism (2) is located between the inner side plate (11) and the outer side plate (17). A thread adjuster (15) is provided on the inner side plate (11). One end of the thread adjuster (15) is connected to a thread adjusting shell (16). The end of the thread adjusting shell (16) away from the thread adjuster (15) is fixedly connected to the outer side plate (17). A spring (18) is sleeved on the outer surface of the thread adjusting shell (16). A rotating buckle (19) is provided on the other end of the thread adjuster (15). A handle (110) is provided on the end of the rotating buckle (19) away from the thread adjuster (15). A hole for installing the thread adjusting shell (16) is provided on the insulation mechanism (2).

2. The green and environmentally friendly building thermal insulation material according to claim 1, characterized in that, The insulation mechanism (2) includes a foam glass board (21), a mineral wool board (22) is provided on one side of the foam glass board (21), a perlite board (23) is provided on the side of the mineral wool board (22) away from the foam glass board (21), a vacuum insulation board (24) is provided on the side of the perlite board (23) away from the mineral wool board (22), and a rubber and plastic sponge board (25) is provided on the side of the vacuum insulation board (24) away from the perlite board (23).

3. The green and environmentally friendly building thermal insulation material according to claim 2, characterized in that, The foam glass panel (21) is located on the side near the inner panel (11).

4. The green and environmentally friendly building thermal insulation material according to claim 1, characterized in that, A damping shell (12) is provided in the inner side plate (11), a damping adjustment wheel (13) is provided in the damping shell (12), a baffle (14) is provided on the side of the damping adjustment wheel (13) near the outer side plate (17), the baffle (14) is connected to the damping shell (12), and a threaded adjuster (15) is provided in the damping adjustment wheel (13).

5. The green and environmentally friendly building thermal insulation material according to claim 1, characterized in that, The two ends of the spring (18) are limited between the inner plate (11) and the outer plate (17), and the handle (110) is fixedly connected to the rotating buckle (19).

6. The green and environmentally friendly building thermal insulation material according to claim 1, characterized in that, One end of the thread adjuster (15) is threadedly connected to the thread adjusting housing (16), and the other end of the thread adjuster (15) is provided with a slot for connecting with the rotary snap fastener (19).

Citation Information

Patent Citations

  • Green building thermal insulation material for interior wall

    CN209145037U