Green building wall structure
By combining a double-layer exterior wall structure with high-efficiency thermal insulation materials, the problems of energy consumption and environmental friendliness of traditional building wall materials are solved, achieving energy saving and comfort improvement, which meets the sustainable development requirements of green buildings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG CHENGXIN CONSTR ENG CO LTD
- Filing Date
- 2025-05-12
- Publication Date
- 2026-05-05
AI Technical Summary
Traditional building wall materials consume a lot of energy during production and use, and are difficult to meet the requirements of green buildings for environment, energy conservation and comfort, especially in terms of heat exchange and sound insulation.
It adopts a double-layer exterior wall structure, with an interior wall insulation layer and a moisture-proof layer. It uses vacuum insulation panels, polyurethane foam and glass wool insulation layers. The exterior and interior walls are equipped with reinforcing ribs and pipeline cavities, which simplifies the construction design and the materials are recyclable.
It achieves high-efficiency heat insulation and thermal insulation performance of the wall, reduces energy consumption, improves living comfort, reduces construction difficulty, reduces resource waste, and meets the requirements of sustainable development.
Smart Images

Figure CN224200081U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of green building technology, and in particular to a green building wall structure. Background Technology
[0002] With the increasing severity of global climate change, the construction industry, as one of the major sources of energy consumption and carbon emissions, has become a key area for environmental protection and energy conservation and emission reduction. Building walls, as an important component of buildings, not only directly affect functions such as heat exchange and sound insulation, but also play a crucial role in the building's energy efficiency, comfort, and environmental friendliness. Therefore, developing wall materials and structural methods with good environmental performance, energy efficiency, and structural performance has become an urgent need for the modern construction industry.
[0003] Traditional building wall materials are mainly reinforced concrete and brick, which, while possessing strong structural strength and stability, consume significant amounts of energy during their production and use, and often fail to meet the environmental, energy-saving, and comfort requirements of green buildings. For example, traditional wall materials have a high thermal conductivity, leading to higher energy consumption for heating in winter and air conditioning in summer, thus increasing building energy consumption and operating costs. Therefore, we propose a green building wall structure. Utility Model Content
[0004] The purpose of this utility model is to address the problems existing in the background technology by proposing a green building wall structure.
[0005] The technical solution of this utility model is as follows: A green building wall structure includes two sets of exterior walls, with an interior wall between the two sets of exterior walls. The interior wall includes an interior wall surface layer on both sides. A heat insulation layer is provided on one side of the two sets of interior wall surfaces that are close to each other. A moisture-proof layer is provided on both sides of the heat insulation layer between the two sets of interior wall surfaces. Multiple sets of reinforcing rods are provided on the side of the two sets of exterior walls that are close to each other. A reinforcing rib frame is provided inside each set of exterior walls. Multiple sets of rod grooves are opened on both sides of the interior wall. Assembly grooves are opened on the side of the interior wall that are close to each other. Assembly clips are provided on the side of the interior wall that are away from the assembly grooves. Multiple sets of pipeline cavities are opened on both the exterior wall and the interior wall.
[0006] Preferably, the mounting end of the reinforcing rod is installed corresponding to one side of the outer wall, and the reinforcing rod is installed corresponding to the rod groove.
[0007] Preferably, an installation groove is provided in the outer wall, the reinforcing rib is arranged in a fork shape, and the reinforcing rib is installed corresponding to the installation groove.
[0008] Preferably, the mounting end of the assembly strip is installed corresponding to the inner wall, and when the two sets of this device are in an assembled state, the assembly strip is installed corresponding to the assembly slot.
[0009] Preferably, the inner wall surface layer is made of recycled concrete, the moisture-proof layer is made of gypsum, and the moisture-proof layers are installed on opposite sides of the two sets of inner wall surfaces respectively.
[0010] Preferably, the heat insulation layer includes a heat insulation core layer, a first heat insulation layer and a second heat insulation layer, wherein the heat insulation core layer is a vacuum heat insulation board, the first heat insulation layer is made of polyurethane foam, and the second heat insulation layer is made of glass wool.
[0011] Preferably, the exterior wall and the interior wall are prefabricated as a single unit, and the pipeline cavity allows the exterior wall and the interior wall to be connected.
[0012] Compared with the prior art, the present invention has the following beneficial technical effects:
[0013] This utility model has a simple overall structure. The combination of external and internal walls enables the wall to have excellent heat insulation and thermal insulation performance, which can significantly reduce building energy consumption, reduce the load on air conditioning and heating, maintain stable temperature inside the building, and thus reduce the demand for external energy, achieving energy-saving goals. The overall structure of the wall meets the requirements of sustainable development. After the wall's service life ends, the wall material can be recycled and reused, reducing the generation of building waste and helping to reduce resource waste. At the same time, the setting of multiple sets of pipeline cavities avoids the cumbersome design of reserving pipes in the walls of traditional buildings, reducing construction difficulty and improving space utilization. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0015] Figure 2 This is an exploded view of the structure of this utility model;
[0016] Figure 3 This is a cross-sectional view of the interior wall in this utility model.
[0017] Reference numerals: 1. Exterior wall; 2. Interior wall; 21. Interior wall surface layer; 22. Insulation layer; 221. Insulation core layer; 222. First insulation layer; 223. Second insulation layer; 23. Moisture-proof layer; 3. Reinforcing rod; 4. Reinforcing rib frame; 5. Rod groove; 6. Assembly groove; 7. Assembly clip; 8. Pipeline cavity; 9. Installation groove. Detailed Implementation
[0018] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0019] Example
[0020] like Figure 1-3As shown, the present invention proposes a green building wall structure, including two sets of outer walls 1. Each set of outer walls 1 is provided with a reinforcing rib frame 4. An installation groove 9 is opened in the outer wall 1. The reinforcing rib frame 4 is forked and installed in correspondence with the installation groove 9. The reinforcing rib frame 4 is fixedly connected to the inner wall of the installation groove 9. The setting of the reinforcing rib frame 4 greatly improves the strength of the outer wall 1, thereby ensuring the stability of the building wall.
[0021] An inner wall 2 is provided between the two sets of outer walls 1. The inner wall 2 includes inner wall surface layers 21 on both sides. The inner wall surface layers 21 are made of recycled concrete, which helps save raw materials and reduce construction waste. An insulation layer 22 is provided on one side of each set of inner wall surface layers 21. The insulation layer 22 includes an insulation core layer 221, a first insulation layer 222, and a second insulation layer 223. The insulation core layer 221 is a vacuum insulation panel, which has excellent heat insulation properties, effectively reducing heat conduction and maintaining a stable internal temperature, thereby reducing energy consumption and improving building energy efficiency. The first insulation layer 222 is made of polyurethane foam, which has excellent thermal insulation properties. It can effectively prevent heat conduction, and also has strong water resistance and moisture resistance. It can also reduce the transmission of noise and effectively improve the sound insulation performance of the building. The second insulation layer 223 is made of glass wool. The use of glass wool in the second insulation layer 223 can work together with the insulation core layer 221 and the first insulation layer 222 to further improve the heat insulation and sound insulation performance of the wall. The entire insulation layer 22 is made of environmentally friendly and recyclable materials, which meets the requirements of green and sustainable development of walls and effectively reduces the carbon footprint of the building. On both sides of the insulation layer 22, between the two sets of inner wall surface layers 21, there is a moisture-proof layer 23. The moisture-proof layer 23 is made of gypsum. The setting of the moisture-proof layer 23 can effectively regulate indoor humidity and absorb and release moisture. It absorbs moisture when humidity is high and releases moisture when humidity is low, which helps maintain a comfortable indoor environment, avoids excessively dry or humid air, and improves the comfort of the living environment. At the same time, it also has a certain antibacterial effect, which can reduce the growth of bacteria and mold and keep the indoor air fresh. The moisture-proof layer 23 is installed on one side away from each other and corresponds to the two sets of inner wall surface layers 21. The moisture-proof layer 23 is fixedly connected to the inner wall surface layer 21 and the heat insulation layer 22 respectively. The setting of the inner wall 2 gives the wall excellent heat insulation and heat preservation performance, which can significantly reduce the building's energy consumption, reduce the load of air conditioning and heating, maintain the temperature inside the building, and thus reduce the demand for external energy and achieve the goal of energy saving.
[0022] Multiple sets of reinforcing rods 3 are installed on both sides of the two sets of exterior walls 1, with the mounting ends of the reinforcing rods 3 corresponding to one side of the exterior wall 1. The reinforcing rods 3 are fixedly connected to the exterior wall 1. The multiple sets of reinforcing rods 3 can further improve the strength of the exterior wall 1. Multiple sets of rod grooves 5 are opened on both sides of the interior wall 2. The reinforcing rods 3 are installed in corresponding positions with the rod grooves 5. The cooperation between the reinforcing rods 3 and the rod grooves 5 can make the exterior wall 1 and the interior wall 2 more stable when assembled, and at the same time have better strength, ensuring the stability of the green building wall. Assembly grooves 6 are opened on both sides of the interior wall 2, and the grooves 6 are opened on the interior wall 2 away from the assembly grooves 6. Assembly clips 7 are provided on both sides. The installation end of the assembly clip 7 is installed corresponding to the inner wall 2. The assembly clip 7 is fixedly connected to the inner wall 2. When the two sets of this device are in the assembly state, the assembly clip 7 is installed corresponding to the assembly slot 6. The setting of the assembly slot 6 and the assembly clip 7 can enable the construction worker to quickly assemble multiple sets of this wall, improve the assembly efficiency. The setting of the outer wall 1 and the inner wall 2 in cooperation makes the overall structure of the wall meet the requirements of sustainable development. After the service life of the wall ends, the wall material can be recycled and reused, reducing the generation of construction waste and helping to reduce resource waste.
[0023] Multiple sets of pipeline cavities 8 are provided on both the exterior wall 1 and the interior wall 2. The exterior wall 1 and the interior wall 2 are prefabricated as a whole, and the pipeline cavities 8 make the exterior wall 1 and the interior wall 2 interconnected. The pipeline cavities 8 can be used to lay water pipes, air conditioning pipes, cable lines and other facilities. The setting of multiple sets of pipeline cavities 8 avoids the cumbersome design of reserving pipes in the wall in traditional buildings, reduces the construction difficulty and improves the utilization rate of space.
[0024] In this embodiment, the operator first presses the heat insulation core layer 221, the first heat insulation layer 222, and the second heat insulation layer 223 together to form an integral heat insulation layer 22. Then, a plate-shaped moisture-proof layer 23 is fixedly applied to both sides of the heat insulation layer 22. Next, the inner wall surface layer 21 and the moisture-proof layer 23 are fixedly produced to complete the production of the inner wall 2. Then, the operator fixes the outer wall 1 to both sides of the inner wall 2. At this time, the reinforcing rod 3 on one side of the outer wall 1 corresponds to the rod groove 5 on the inner wall 2. At the same time, the pipeline cavity 8 is reserved during the production of the outer wall 1 and the inner wall 2 to complete the production of this device. When multiple sets of this device need to be assembled, the construction worker uses a hoisting method to align the assembly groove 6 on one set of this device with the assembly clip 7 on another set of this device. Then, multiple sets of this device are fixedly assembled by fixing bolts and concrete pouring to complete the assembly operation.
[0025] The above-described specific embodiments are merely preferred embodiments of the present invention. Based on the technical solution of the present invention and the relevant teachings of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above-described specific embodiments.
Claims
1. A green building wall structure, comprising two sets of exterior walls (1), characterized in that: An inner wall (2) is provided between the two sets of outer walls (1). The inner wall (2) includes inner wall surfaces (21) on both sides. A heat insulation layer (22) is provided on one side of the two sets of inner wall surfaces (21) that are close to each other. A moisture-proof layer (23) is provided on both sides of the heat insulation layer (22) between the two sets of inner wall surfaces (21). Multiple sets of reinforcing rods (3) are provided on one side of the two sets of outer walls (1) that are close to each other. A reinforcing rib frame (4) is provided in each set of outer walls (1). Multiple sets of rod grooves (5) are opened on both sides of the inner wall (2). Assembly grooves (6) are opened on both sides of the inner wall (2) that are close to each other. Assembly clips (7) are provided on both sides of the inner wall (2) that are away from the assembly grooves (6). Multiple sets of pipeline cavities (8) are opened on both the outer wall (1) and the inner wall (2).
2. The green building wall structure according to claim 1, characterized in that, The mounting end of the reinforcing rod (3) is installed corresponding to one side of the outer wall (1), and the reinforcing rod (3) is installed corresponding to the rod groove (5).
3. A green building wall structure according to claim 1, characterized in that, An installation groove (9) is provided in the outer wall (1), and the reinforcing rib frame (4) is arranged in a fork shape. The reinforcing rib frame (4) is installed in correspondence with the installation groove (9).
4. A green building wall structure according to claim 1, characterized in that, The mounting end of the assembly clip (7) is installed corresponding to the inner wall (2). When the two sets of this device are in the assembly state, the assembly clip (7) is installed corresponding to the assembly slot (6).
5. A green building wall structure according to claim 1, characterized in that, The inner wall surface layer (21) is made of recycled concrete, and the moisture-proof layer (23) is made of gypsum. The moisture-proof layers (23) are installed on opposite sides of each other, corresponding to the two sets of inner wall surface layers (21).
6. A green building wall structure according to claim 1, characterized in that, The heat insulation layer (22) includes a heat insulation core layer (221), a first heat insulation layer (222), and a second heat insulation layer (223). The heat insulation core layer (221) is a vacuum heat insulation board, the first heat insulation layer (222) is made of polyurethane foam, and the second heat insulation layer (223) is made of glass wool.
7. A green building wall structure according to claim 1, characterized in that, The outer wall (1) and the inner wall (2) are prefabricated as a single unit, and the pipeline cavity (8) makes the outer wall (1) and the inner wall (2) interconnected.