Breathing wall

The breathing wall with a hook-type structure and modular design solves the problems of complex structure and high installation cost of existing breathing walls, realizes rapid installation and efficient air filtration, stabilizes indoor air quality, and improves production efficiency and health protection.

CN223376053UActive Publication Date: 2025-09-23GUANGDONG JINGLONG CONSTR GRP CO LTD
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Patent Information

Application Number
CN202422638677.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-09-23
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

Existing breathing walls have complex structures and high installation costs, and the uneven air input causes fluctuations in indoor air quality, affecting production efficiency and health in high-demand places.

Method used

It adopts a hook-type structural design, including upper and lower hanging strips and modular ventilation wall panels. It uses gypsum and zinc oxide filter plates to form a microporous structure, combined with aluminum strip reinforcement to achieve quick installation and efficient air filtration.

Benefits of technology

The construction and installation process is simplified, costs are reduced, and efficient air filtration is achieved through modular design, which stabilizes indoor air quality, improves production efficiency and health protection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a breathing wall which comprises an upper hanging strip and a lower hanging strip which are installed on a blank wall side by side up and down at intervals, a ventilation wallboard in modular design is hung and buckled between the upper hanging strip and the lower hanging strip, an air pipe is installed at the bottom of the blank wall, the ventilation wallboard is connected with the air pipe through a ventilation connecting pipe, and the ventilation wallboard comprises a filter shell. A filter plate is mounted on the surface of each filter shell, air vents are formed in the upper end and the lower end of each filter shell, the air vents of every two adjacent filter shells are connected through a hollow module connecting pipe, a connecting air tap is mounted on the bottom air vent of the bottommost filter shell, and the connecting air tap is connected with an air pipe through an air exchange connecting pipe; and an air vent cover plate is mounted on the top air vent of the filtering shell at the topmost part. The breathing wall adopts a hanging buckle type structure, and is easy to construct, high in installation efficiency, simple in structure and low in production and installation cost.
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Description

Technical Field

[0001] The utility model relates to the technical field of building construction, in particular to a breathing wall. Background Art

[0002] A breathing wall is a ventilation device with air purification capabilities in buildings. It filters, purifies, and conditions air through the air handling system, then delivers clean, fresh air into the room through the wall's conduction mechanism, achieving excellent indoor air quality. During the ventilation process of a breathing wall, stable air input is crucial for maintaining indoor air quality, protecting human health, and improving production efficiency. The breathing wall's filter panels remove outdoor pollutants and odors, while also providing appropriate humidification, ventilation, and temperature control to maintain stable indoor air quality. Unstable air input can lead to fluctuations in indoor air quality, which can have a serious impact on locations with high indoor air quality requirements, such as hospitals, laboratories, and electronics factories. The breathing wall's filter panels remove pollutants such as bacteria and viruses, reducing pathogens in the indoor air and thereby lowering the risk of infection. In industrial production sites with strict indoor air quality requirements, such as electronics and semiconductor factories, indoor dust and static electricity can affect production equipment, thereby impacting productivity. Breathing wall filters can reduce indoor dust and static electricity, ensuring the normal operation of production equipment. If the air input is not stable, it will cause changes in indoor dust and static electricity, thereby affecting production efficiency. However, the existing breathing wall itself is complex in structure and installation, and the production and installation costs are high. Utility Model Content

[0003] In view of the shortcomings of the existing technology, the utility model proposes a breathing wall, which adopts a hanging buckle structure, is easy to construct, has high installation efficiency, and has a simple structure and low production and installation costs.

[0004] To achieve the above technical solution, the utility model provides a breathing wall, comprising: upper hanging bars and lower hanging bars installed side by side on the rough wall at intervals, a modular ventilation wall panel is hung between the upper hanging bars and the lower hanging bars, an air duct is installed at the bottom of the rough wall, the ventilation wall panel and the air duct are connected by a ventilation connecting pipe, the ventilation wall panel comprises a filter housing, a filter plate is installed on the surface of the filter housing, vents are provided at the upper and lower ends of the filter housing, the vents of two adjacent filter housings are connected by a hollow module connecting pipe, a connecting air nozzle is installed on the bottom vent of the filter housing located at the bottom, the connecting air nozzle is connected to the air duct through the ventilation connecting pipe, and a vent cover is installed on the top vent of the filter housing located at the top.

[0005] In the above technical solution, during actual installation, it is only necessary to fix the upper hanging bar and the lower hanging bar to the rough wall through the angle code, and then hang the modular ventilation wall panel on the upper hanging bar and the lower hanging bar, thereby greatly improving the installation efficiency. Moreover, the ventilation wall panel can be disassembled as a whole during subsequent maintenance, so that the ventilation wall panel can be recycled and reused, which is green and environmentally friendly. The ventilation wall panel adopts a modular design. During actual assembly, it is only necessary to connect the filter housings through the module connecting pipes, which makes production and installation very convenient. This breathing wall includes two working modes: exhalation and inhalation. When positive pressure is applied to the air duct, the air enters the filter housing from the air duct through the connecting pipe from the ventilation module and is discharged from the surface of the filter plate. This is an exhalation process. When negative pressure is applied to the air duct, the air enters the filter housing from the filter plate and is discharged from the air duct through the relevant pipes. This is an inhalation process. The filter plate is made of gypsum with diatomaceous earth and zinc oxide molded to form a microporous structure of 50-100 nanometers. It can filter out PM2.5, PM1.0 dust, viruses, bacteria and other particles larger than 100 nanometers floating in the air. Zinc oxide can kill bacteria and viruses attached to the surface, and has a bactericidal and mildew-proof effect.

[0006] Preferably, an upper buckle lock is installed on the top side end of the ventilation wall panel, and a lower buckle lock is installed on the bottom side end of the ventilation wall panel. The top of the ventilation wall panel is locked to the upper hanging bar by the upper buckle lock, and the bottom of the ventilation wall panel is locked to the lower hanging bar by the lower buckle lock. The above-mentioned hanging buckle structure greatly facilitates the installation and disassembly of the ventilation wall panel.

[0007] Preferably, the left and right side ends of two adjacent filter housings are reinforced and connected by aluminum bars to enhance the connection strength between the two adjacent filter housings.

[0008] Preferably, an insect-proof net is installed at the bottom vent of the bottom filter housing to prevent insects and ants from entering the air duct.

[0009] The beneficial effect of the breathing wall provided by the utility model is that the breathing wall adopts a hook-and-hook structure, which is easy to construct and has high installation efficiency. In addition, the structure is simple and the production and installation costs are low. During actual installation, it is only necessary to fix the upper and lower hanging bars to the rough wall through the corner brackets, and then hang the modular ventilation wall panels on the upper and lower hanging bars, thereby greatly improving the installation efficiency. In addition, the entire ventilation wall panel can be disassembled in subsequent maintenance, and the ventilation wall panel can be recycled and reused, which is green and environmentally friendly. The ventilation wall panel adopts a modular design. During actual assembly, it is only necessary to connect the filter shells through the modular connecting pipes, which is very convenient to produce and install. BRIEF DESCRIPTION OF THE DRAWINGS

[0010] Figure 1 This is a schematic diagram of the assembly structure of Example 1.

[0011] Figure 2 This is a top view of the three-dimensional structure of the ventilation wall panel in Example 1.

[0012] Figure 3 This is a bottom view of the three-dimensional structure of the ventilation wall panel in Example 1.

[0013] Figure 4 This is a schematic exploded view of the three-dimensional structure of the ventilation wall panel in Example 1.

[0014] In the figure: 1. Rough wall; 2. Ventilation wall panel; 21. Filter housing; 22. Filter plate; 23. Connecting air nozzle; 24. Vent cover; 25. Module connecting pipe; 26. Vent; 27. Insect screen; 3. Ventilation connecting pipe; 4. Air duct; 5. Upper hanging bar; 6. Upper buckle lock; 7. Lower buckle lock; 8. Lower hanging bar. DETAILED DESCRIPTION

[0015] The following is a clear and complete description of the technical solutions in the embodiments of the present invention, in conjunction with the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. All other embodiments obtained by ordinary persons in this field without creative work are within the scope of protection of the present invention.

[0016] Embodiment: A breathing wall.

[0017] Reference Figures 1 to 4 As shown, a breathing wall comprises: upper and lower hanging bars 5 and 8, spaced apart and mounted side by side on a rough wall 1; a modularly designed ventilation wall panel 2 is fastened between the upper and lower hanging bars 5 and 8; an air duct 4 is installed at the bottom of the rough wall 1; the ventilation wall panel 2 and the air duct 4 are connected by a ventilation connecting pipe 3, and the air duct 4 is connected to an external power device. In actual operation, when the external power device applies positive pressure to the air duct 4, air is transported from the air duct 4 through the ventilation connecting pipe 3 from the ventilation wall panel 2 to the room. When the external power device applies negative pressure to the air duct 4, air is drawn from the air duct 4 through the ventilation connecting pipe 3 from the ventilation wall panel 2 to the room. An upper buckle lock 6 is installed on the top side end of the ventilation wall panel 2, and a lower buckle lock 7 is installed on the bottom side end of the ventilation wall panel 2. The top of the ventilation wall panel 2 is locked to the upper hanging bar 5 through the upper buckle lock 6, and the bottom of the ventilation wall panel 2 is locked to the lower hanging bar 8 through the lower buckle lock 7. The above-mentioned hanging buckle structure greatly facilitates the installation and disassembly of the ventilation wall panel 2.

[0018] The ventilation wall panel 2 includes a filter housing 21, on the surface of which is mounted a filter plate 22. The filter plate 22 is formed by molding gypsum with diatomaceous earth and zinc oxide to form a microporous structure of 50-100 nanometers. This filter plate 22 can filter out PM2.5, PM1.0 dust, viruses, bacteria, and other particles larger than 100 nanometers floating in the air. Zinc oxide can kill bacteria and viruses attached to the surface, providing a sterilizing and mildew-proofing effect. Ventilation ports 26 are provided at both the upper and lower ends of the filter housing 21. The vents 26 of two adjacent filter housings 21 are connected by a hollow modular connecting pipe 25. The bottom vent 26 of the bottommost filter housing 21 is mounted with a connecting air nozzle 23, which is connected to the air duct 4 via the ventilation connecting pipe 3. The top vent 26 of the topmost filter housing 21 is mounted with a vent cover 24 to seal the top vent 26. The left and right sides of two adjacent filter housings 21 are reinforced and connected by aluminum strips to enhance the connection strength between the two adjacent filter housings 21. An insect-proof net 27 is installed at the bottom vent 26 of the bottom filter housing 21 to prevent insects and ants from entering the air duct.

[0019] This breathing wall adopts a hanging buckle structure, which is easy to construct and has high installation efficiency. In addition, it has a simple structure and low production and installation costs. During actual installation, it is only necessary to fix the upper hanging bar 5 and the lower hanging bar 8 on the rough wall 1 through the corner code, and then the modular ventilation wall panel 2 is fastened to the upper hanging bar 5 and the lower hanging bar 8 through the upper buckle lock 6 and the lower buckle lock 7. This can greatly improve the installation efficiency of the ventilation wall panel 2, and the ventilation wall panel 2 can be disassembled as a whole in subsequent maintenance, so that the ventilation wall panel 2 can be recycled and reused, which is green and environmentally friendly. The ventilation wall panel 2 adopts a modular design. During actual assembly, it is only necessary to connect the filter housings 21 through the module connecting pipes 25. It is very convenient to produce and install. This breathing wall includes two working modes: exhalation and inhalation. When positive pressure is applied to the air duct 4, air enters the filter housing 21 from the air duct 4 through the ventilation connecting pipe 3 and the connecting pipe of the ventilation module, and is discharged from the surface of the filter plate 22. This is an exhalation process. When negative pressure is applied to air duct 4, air enters filter housing 21 through filter plate 22 and is exhausted from duct 4 through associated piping. This is known as the "inhalation" process. Filter plate 22 is molded from gypsum with diatomaceous earth and zinc oxide to create a microporous structure of 50-100 nanometers. This filter removes PM2.5 and PM1.0 dust, as well as airborne viruses, bacteria, and other particles larger than 100 nanometers. Zinc oxide kills bacteria and viruses adhering to the surface, providing a sterilizing and mildew-proofing effect.

[0020] The above description is only a preferred embodiment of the present invention, but the present invention should not be limited to the contents disclosed in the embodiment and the drawings. Therefore, any equivalent or modification completed without departing from the spirit disclosed in the present invention shall fall within the scope of protection of the present invention.

Claims

1. A breathing wall, characterized in that include: Upper and lower hanging bars are installed on the rough wall side by side at intervals, and a modular ventilation wall panel is hung between the upper and lower hanging bars. An air duct is installed at the bottom of the rough wall, and the ventilation wall panel and the air duct are connected by a ventilation connecting pipe. The ventilation wall panel includes a filter housing, a filter plate is installed on the surface of the filter housing, and air vents are provided at the upper and lower ends of the filter housing. The air vents of two adjacent filter housings are connected by a hollow module connecting pipe. A connecting air nozzle is installed on the bottom vent of the filter housing at the bottom, and the connecting air nozzle is connected to the air duct through the ventilation connecting pipe. A vent cover is installed on the top vent of the filter housing at the top.

2. The breathing wall according to claim 1, characterized in that: The top side end of the ventilation wall panel is installed with an upper buckle lock, and the bottom side end of the ventilation wall panel is installed with a lower buckle lock. The top of the ventilation wall panel is locked on the upper hanging bar by the upper buckle lock, and the bottom of the ventilation wall panel is locked on the lower hanging bar by the lower buckle lock.

3. The breathing wall according to claim 1, wherein: The left and right side ends of two adjacent filter housings are reinforced and connected by aluminum strips.

4. The breathing wall according to claim 1, wherein: An insect screen is installed at the bottom vent of the bottom filter housing.