Green building energy-saving wall

By adopting a combined design of modular structure and inner support frame grille in green building walls, the problem of poor wall forming caused by poor steel bars is solved, and the stability of the wall during the pouring process and structural strength after forming is achieved.

CN222923958UActive Publication Date: 2025-05-30ZHEJIANG RUIJIE CONSTR CO LTD
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Patent Information

Application Number
CN202421869661.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-05-30
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

In existing green building walls, the steel bars are mainly fixed by wire tied, which are prone to omissions or offsets, affecting the wall forming effect.

Method used

The modular wall structure is adopted, and internal support is achieved through the inner support frame and the inner support grille. The plug-in fit and locking bolts of frame panels A and frame panel B are used to ensure the stability of the wall during the pouring process.

Benefits of technology

It effectively avoids the problem of internal support steel bars being offset due to concrete impact during pouring, and ensures the structural stability and finished product effect after wall molding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a green building energy-saving wall body, relates to the technical field of green buildings, and aims to solve the problems that steel bars in a current green building wall body are mainly fixed in a wire binding mode, omission occurs in the wire binding process, inner supporting steel bars are prone to deviation in the concrete pouring process, and the service life of the inner supporting steel bars is affected. The modular wall comprises a modular wall body and two connecting assemblies, the two connecting assemblies are symmetrically arranged at the two ends of the modular wall body, the two connecting assemblies are in hanging fit, an inner supporting frame and an inner supporting grating are arranged in the modular wall body, and the inner supporting frame and the inner supporting grating are arranged in an embedded mode. And the inner supporting frame comprises two supporting plates A and two supporting plates B. The inner supporting of the modularized wall body is realized through the inner supporting frame and the inner supporting grating, the problem that the placing position of the modularized wall body is influenced due to the impact of inner concrete can be avoided in the pouring process, and the effect of the formed wall body is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of green buildings, and more specifically to an energy-saving wall of a green building. Background Art

[0002] With the continuous progress and development of modern economic technology, green building energy-saving walls, as a kind of wall structure that is now emerging, are also constantly being updated and improved. Green buildings refer to maximizing resource conservation throughout the life cycle of the building, including energy conservation, land conservation, water conservation, material conservation, etc., protecting the environment and reducing pollution, providing people with healthy, comfortable and efficient use space, and buildings that coexist harmoniously with nature. With the continuous deepening of the concept of green buildings, people's requirements for energy conservation and environmental protection of walls are getting higher and higher.

[0003] However, in actual use, the green building wall in the existing technology mostly adopts an assembled structure, and the wall is poured and assembled by combining concrete with a steel frame. The steel bars are mainly fixed by tying wires, which is easy to be missed during the tying process, resulting in the internal support steel bars being easily offset during the concrete pouring process, affecting the final forming effect of the wall. In view of this, we propose a green building energy-saving wall. Utility Model Content

[0004] The purpose of the utility model is to overcome the deficiencies of the prior art, meet actual needs, and provide a green building energy-saving wall to solve the technical problem that the steel bars in the current green building walls are mainly fixed by wire tying, and omissions occur during the wire tying process, which easily leads to the internal supporting steel bars being easily offset during the concrete pouring process, thereby affecting the final forming effect of the wall.

[0005] In order to solve the above technical problems, the utility model provides the following technical solutions: a green building energy-saving wall, comprising a modular wall and two connecting components;

[0006] The two connection components are symmetrically arranged at two ends of the modular wall, and the two connection components are hung and matched;

[0007] An inner support frame and an inner support grid are arranged inside the modular wall, and the inner support frame and the inner support grid are embedded in each other;

[0008] The inner support frame includes two support plates A and two support plates B, and a limiting groove is centrally provided on one side of the two support plates A and the two support plates A;

[0009] The inner support grid includes several frame plates A and several frame plates B. The several frame plates B are inserted and connected with the several frame plates A in an alternating manner, and through holes are formed at the intersections of the frame plates A and the frame plates B. A locking bolt is arranged in the two through holes together.

[0010] The utility model completes the splicing of several modular walls through two connecting components, and realizes the inner support for the modular walls through the inner support frame and the inner support grid. Through the insertion and cooperation of several frame plates A and several frame plates B, and fixed by locking bolts, and then it is arranged in two support plates A and two support plates B, and the inner support for the modular wall after casting is realized by the several frame plates A and several frame plates B that are inserted and connected. During the casting process, the problem that the placement position is affected by the impact of the internal concrete can be avoided, and the effect after the wall is formed is guaranteed.

[0011] Preferably, fixed seats arranged in the limit grooves are constructed at both ends of the support plate B, and two circular holes are symmetrically formed on one side of the support plate A. A fastening bolt is movably arranged in each of the two circular holes, and the fastening bolt is threadedly installed in the fixed seat.

[0012] Preferably, limit keys are constructed in the middle at both ends of the frame plate A and both ends of the frame plate B, and the limit keys are slidably arranged in the corresponding limit grooves.

[0013] Preferably, a plurality of insertion grooves communicating with the corresponding through holes are equidistantly formed on the facing surfaces of the frame plate A and the frame plate B, and the frame plate A and the frame plate B are inserted and cooperated through the insertion grooves.

[0014] Preferably, a plurality of converging cavities are equidistantly formed on the outer side of the modular wall, and a plurality of diversion cavities are equidistantly formed on the inner side of the modular wall. The converging cavities are communicated with the diversion cavities, and an air flow channel for performing variable-diameter convergence on air is formed between the converging cavities and the diversion cavities.

[0015] Preferably, the connecting component includes a connecting plate, the connecting plate is constructed at one end of the modular wall, and a hook is constructed on the side of the connecting plate away from the modular wall. A hanging groove for cooperating with the hook is formed between the hook and the connecting plate.

[0016] Preferably, a T-shaped positioning key is constructed at one end of one side of the connecting plate, and a T-shaped positioning groove for cooperating with the T-shaped positioning key is formed at the other end of one side of the connecting plate.

[0017] Compared with the prior art, the beneficial effects of the utility model are:

[0018] 1. The utility model completes the splicing of several modular walls through two connecting components, and realizes the internal support for the modular walls through the internal support frame and the internal support grille. Through the insertion and cooperation of several frame plates A and several frame plates B, and fixed by locking bolts, and then set it inside two support plates A and two support plates B, and cooperate with the inserted and connected several frame plates A and several frame plates B to realize the internal support for the modular wall after casting. During the casting process, the problem that the placement position is affected by the impact of internal concrete can be avoided, ensuring the effect after the wall is formed.

[0019] 2. The utility model also realizes the ventilation of green buildings through several air flow channels on the modular walls. The air enters through the converging cavity, and the air flow rate is increased and the air temperature is reduced by changing the air flow path, and then guided to the other side of the modular wall through the diversion cavity, realizing the effect of green energy conservation. And the structural strength of the air flow channels can be strengthened by several frame plates A and several frame plates B arranged in the modular walls, avoiding the problem of damage due to low structural strength. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a schematic structural diagram of the utility model in the assembled state;

[0021] Figure 2 is a partial structural diagram of the utility model;

[0022] Figure 3 is a schematic structural diagram of the utility model in the sectional state;

[0023] Figure 4 is the utility model Figure 3 an enlarged schematic diagram of the structure at A in;

[0024] Figure 5 is a partial structural diagram of the internal support frame and the internal support grille of the utility model in the cooperative state;

[0025] Figure 6 is a partial structural diagram of the internal support grille of the utility model in the disassembled state.

[0026] Description of the reference numerals in the drawings:

[0027] 1. Modular wall; 101. Converging cavity; 102. Diversion cavity; 2. Connecting component; 201. Connecting plate; 202. Hook; 203. Hanging groove; 204. T-shaped positioning key; 205. T-shaped positioning groove; 3. Internal support frame; 301. Support plate A; 302. Support plate B; 303. Limit groove; 304. Fixed seat; 305. Fastening bolt; 4. Internal support grille; 401. Frame plate A; 402. Frame plate B; 403. Insertion slot; 404. Locking bolt; 405. Limit key. DETAILED DESCRIPTION

[0028] like Figure 1 As shown, the utility model relates to a green building energy-saving wall, comprising a modular wall 1 and two connecting components 2;

[0029] like Figure 2 , Figure 3 , Figure 5 , Figure 6 As shown, in the embodiment of the utility model, two connecting components 2 are symmetrically arranged at the two ends of the modular wall 1, and the two connecting components 2 are hung and matched, an inner support frame 3 and an inner support grille 4 are arranged in the modular wall 1, and the inner support frame 3 and the inner support grille 4 are embedded, the inner support frame 3 includes two support plates A301 and two support plates B302, and the two support plates A301 and one side of the two support plates A301 are centrally provided with a limiting groove 303, the inner support grille 4 includes a plurality of frame plates A401 and a plurality of frame plates B402, a plurality of frame plates B402 are staggered and plugged with a plurality of frame plates A401, and the staggered parts of the frame plates A401 and the frame plates B402 are provided with a through hole. Hole, locking bolts 404 are commonly provided in the two through holes, and several modular walls 1 are spliced ​​together through two connecting components 2, and the internal support frame 3 and the internal support grille 4 realize the internal support of the modular wall 1, through the plug-in cooperation of several frame plates A401 and several frame plates B402, and fixed by locking bolts 4, and then arranged in two support plates A301 and two support plates B302, and cooperate with several frame plates A401 and several frame plates B402 that are plug-connected to realize the internal support of the modular wall 1 after casting. During the casting process, the problem of affecting its placement due to the impact of internal concrete can be avoided, thereby ensuring the effect of the wall after forming.

[0030] like Figure 2 , Figure 3 , Figure 5 , Figure 6As shown in the figure, in the embodiment of the present utility model, fixing seats 304 are constructed at both ends of the support plate B302 and are arranged in the limiting grooves 303. Two circular holes are symmetrically opened on one side of the support plate A301. Tightening bolts 305 are movably arranged in the two circular holes, and the tightening bolts 305 are threadedly fitted and installed in the fixing seats 304. Limiting keys 405 are centrally constructed at both ends of the frame plate A401 and both ends of the frame plate B402, and the limiting keys 405 are slidably arranged in the corresponding limiting grooves 303. A plurality of insertion grooves 403 communicating with the corresponding through holes are equidistantly opened on the facing surfaces of the frame plate A401 and the frame plate B402, and the frame plate A401 and the frame plate B402 are inserted and matched through the insertion grooves 403. A plurality of converging cavities 101 are equidistantly opened on the outer side of the modular wall 1, and a plurality of diversion cavities 102 are equidistantly opened on the inner side of the modular wall 1. The converging cavities 101 communicate with the diversion cavities 102, and an air flow channel for variably reducing the diameter of the air is formed between the converging cavities 101 and the diversion cavities 102. The ventilation of the green building is realized through a plurality of air flow channels on the modular wall 1. The air enters through the converging cavities 101, the air flow rate is increased by changing the air flow path, and the temperature of the air is reduced. Then, it is guided to the other side of the modular wall 1 through the diversion cavities 102, achieving the effect of green energy conservation. Moreover, the structural strength of the air flow channel can be enhanced by a plurality of frame plates A401 and a plurality of frame plates B402 arranged in the modular wall 1, avoiding the problem of damage due to low structural strength.

[0031] As Figure 1 , Figure 2 shown in the figure, in the embodiment of the present utility model, the connection assembly 2 includes a connecting plate 201. The connecting plate 201 is constructed at one end of the modular wall 1, and a hook 202 is constructed on the side of the connecting plate 201 away from the modular wall 1. A hanging groove 203 for cooperating with the hook 202 is formed between the hook 202 and the connecting plate 201. A T-shaped positioning key 204 is constructed at one end of one side of the connecting plate 201, and a T-shaped positioning groove 205 for cooperating with the T-shaped positioning key 204 is opened at the other end of one side of the connecting plate 201. When a plurality of modular walls 1 need to be spliced, the connection assembly 2 arranged at one end of one modular wall 1 can be inserted into another connection assembly 2. During the insertion, by inserting the hook 202.

[0032] Working principle: This embodiment provides a green building energy-saving wall. During use, by inserting and mating a number of frame plates A401 and a number of frame plates B402 and fixing them with locking bolts 404, and then placing them in two support plates A301 and two support plates B302, the two limit keys 405 at both ends of the frame plates A401 and B402 cooperate with the limit grooves 303 in the support plates A301 and B302 to position the internal support grille 4. Then, by passing a number of fastening bolts 305 through the round holes in the two support plates A301 and screwing them into the fixed seats 304, the two support plates A301 and the two support plates B302 are fixed. Then, it is placed in a mold and filled with concrete. The internal support of the modular wall 1 after pouring is realized through the cooperation of a number of frame plates A401 and a number of frame plates B402 connected by insertion. During the pouring process, the problem that the placement position is affected by the impact of the internal concrete can be avoided, ensuring the effect of the wall after molding.

[0033] The embodiments disclosed in this utility model are preferred embodiments, but not limited thereto. Those of ordinary skill in the art can easily understand the spirit of this utility model based on the above embodiments and make different extensions and changes. However, as long as they do not depart from the spirit of this utility model, they are within the protection scope of this utility model.

Claims

1. A green building energy-saving wall, characterized in that: It comprises a modular wall (1) and two connecting components (2); The two connection components (2) are symmetrically arranged at two ends of the modular wall (1), and the two connection components (2) are hung and matched; An inner support frame (3) and an inner support grid (4) are arranged in the modular wall (1), and the inner support frame (3) and the inner support grid (4) are arranged in a chimeric arrangement; The inner support frame (3) comprises two support plates A (301) and two support plates B (302), and a limiting groove (303) is centrally provided on one side of the two support plates A (301) and the two support plates B (302); The inner support grille (4) comprises a plurality of frame plates A (401) and a plurality of frame plates B (402), wherein the plurality of frame plates B (402) are connected to the plurality of frame plates A (401) by staggered plugging, and through holes are provided at staggered locations on the frame plates A (401) and the frame plates B (402), and locking bolts (404) are provided in both of the through holes.

2. A green building energy-saving wall according to claim 1, characterized in that: Both ends of the support plate B (302) are constructed with a fixing seat (304) arranged in the limiting groove (303), and one side of the support plate A (301) is symmetrically provided with two circular holes, and fastening bolts (305) are movably arranged in the two circular holes, and the fastening bolts (305) are threadedly installed in the fixing seat (304).

3. A green building energy-saving wall according to claim 1, characterized in that: Both ends of the frame plate A (401) and both ends of the frame plate B (402) are centrally constructed with limit keys (405), and the limit keys (405) are slidably disposed in the corresponding limit grooves (303).

4. The green building energy-saving wall according to claim 1, characterized in that: The facing surfaces of the frame plate A (401) and the frame plate B (402) are both provided with a plurality of plug-in slots (403) connected to corresponding through holes at equal intervals, and the frame plate A (401) and the frame plate B (402) are plug-fitted through the plug-in slots (403).

5. The green building energy-saving wall according to claim 1, characterized in that: A plurality of convergence cavities (101) are equidistantly provided on the outer side of the modular wall (1), and a plurality of flow guide cavities (102) are equidistantly provided on the inner side of the modular wall (1); the convergence cavities (101) are connected to the flow guide cavities (102), and the convergence cavities (101) and the flow guide cavities (102) form an airflow channel for variable-diameter convergence of air.

6. The green building energy-saving wall according to claim 1, characterized in that: The connection assembly (2) comprises a connection plate (201), wherein the connection plate (201) is constructed at one end of the modular wall (1), and a hook (202) is constructed on a side of the connection plate (201) away from the modular wall (1), and a hanging groove (203) for matching the hook (202) is formed between the hook (202) and the connection plate (201).

7. A green building energy-saving wall according to claim 6, characterized in that: One end of one side of the connecting plate (201) is provided with a T-shaped positioning key (204), and the other end of one side of the connecting plate (201) is provided with a T-shaped positioning groove (205) matching the T-shaped positioning key (204).