Green building energy-saving wall

By designing a fixing frame, supporting rods, and connecting frame, the problems of steel mesh misalignment and insulation layer detachment were solved, thereby improving the structural stability and safety of energy-saving walls in green buildings.

CN121024230AInactive Publication Date: 2025-11-28WEIFANG XINGYAO KEHENG INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511560573.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-29
Publication Date
2025-11-28
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the fabrication of existing green building energy-saving walls, the steel mesh is prone to shifting, the structure experiences uneven stress during pouring, and the insulation layer is not firmly connected, making it easy to fall off under extreme working conditions, thus affecting the structural stability and safety.

Method used

A fixed frame and supporting bolts are used in conjunction with a limiting sleeve, and the steel mesh is hooked together with a connecting sleeve to ensure the accurate positioning of the steel mesh; supporting steel frames are set on both sides of the assembled wall to prevent breakage; the connecting frame is welded to the insulated wall to form an integrated load-bearing system.

Benefits of technology

It effectively prevents the steel mesh from shifting, enhances structural stability and resistance to wind uplift and earthquakes, reduces material waste, and improves building safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a green building energy-saving wall body, and relates to the technical field of building wall bodies, the green building energy-saving wall body comprises a building wall main body, the building wall main body is composed of an assembly wall body, a thermal insulation wall body and a surface layer; the thermal insulation wall body is arranged on the front side of the assembly wall body, the surface layers are arranged on the rear side of the assembly wall body and the front side of the thermal insulation wall body, the reinforcing mesh is supported through mutual cooperation of the fixing frame and the supporting tightening latch, meanwhile, the position of the limiting sliding block is adjusted along the limiting sleeve frame, and the connecting clamping sleeve is connected with the reinforcing mesh in a hanging mode. The reinforcing mesh can be firmly positioned, the situation that the position of the reinforcing mesh deviates due to impact of concrete and disturbance of a vibrating rod is avoided, it is guaranteed that the distribution position is accurate and structural stress is uniform, the requirements for design strength and stability are met, and the problem that due to the fact that the reinforcing mesh is a framework of a concrete wall, the structural strength is poor is solved. And the problems that the actual stress position of a reinforcing steel bar does not conform to the design and the bearing capacity of the structure is influenced due to the fact that the reinforcing steel bar mesh can deviate due to the impact of concrete and the disturbance of a vibrating rod during pouring are solved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of building wall, in particular to a green building energy-saving wall. BACKGROUND

[0002] The green building energy-saving wall refers to the building envelope structure which uses efficient insulation and heat insulation materials and advanced construction technology to reduce building energy consumption and improve indoor comfort.

[0003] In the manufacturing process of the existing green building energy-saving wall, the steel mesh is the skeleton of the concrete wall, and the impact of the concrete during pouring and the disturbance of the vibrating rod may cause the steel mesh to deviate, so that the actual stress position of the steel does not match the design, affecting the load-bearing capacity of the structure. In addition, after the assembly concrete wall is poured, whether it is stacked or transported, the stacking and extrusion may cause the wall to break and damage, affecting the engineering quality and wasting the cost. Furthermore, as part of the building envelope structure, the insulation layer may fall off first under extreme conditions such as strong wind and earthquake, and even cause secondary damage to the main structure of the building or the surrounding environment. SUMMARY

[0004] The present application relates to a green building energy-saving wall, which is supported by the fixed frame and the supporting bolt rod, and the position of the limiting sliding block is adjusted along the limiting sleeve frame. The steel mesh is hung by the connecting sleeve, which can be firmly positioned to avoid the impact of the concrete and the disturbance of the vibrating rod, ensuring the accurate distribution position and uniform structure stress, meeting the design strength and stability requirements.

[0005] The present application provides a green building energy-saving wall, which specifically comprises: a building wall main body composed of an assembly wall, an insulation wall and a surface layer; the assembly wall is provided with an insulation wall on the front side, and the back side of the assembly wall and the front side of the insulation wall are provided with a surface layer; a limiting sleeve frame is arranged in the assembly wall; a locking assembly is arranged on the limiting sleeve frame; a supporting steel frame is arranged on the assembly wall; a connecting frame is arranged on the front part of the assembly wall, and the insulation wall is connected with the assembly wall through the connecting frame.

[0006] Further, the assembly wall comprises an inner wall plate, a concrete layer and a steel mesh, the inner wall plate is provided with a concrete layer on the front and back sides, the concrete layer is provided with a steel mesh, and the front and back steel meshes are distributed in parallel, the front concrete layer is provided with a mounting through slot, and the mounting through slot is distributed in a rectangular array.

[0007] Further, the insulation wall comprises a polystyrene board, a composite insulation block layer and a reinforcing steel bar, the polystyrene board is provided with a composite insulation block layer on the front side, the composite insulation block layer is provided with a reinforcing steel bar, and the reinforcing steel bar is distributed in parallel from top to bottom.

[0008] Further, one side of the limiting sleeve frame is provided with a fixing frame, and the fixing frame is provided with a supporting bolt rod.

[0009] Further, the locking assembly comprises a limiting sliding block, a connecting sleeve, a limiting plate, a locking bolt and a connecting sleeve, one side of the limiting sliding block is provided with the connecting sleeve, two limiting plates are arranged on the connecting sleeve, the limiting plate is slidably connected with the connecting sleeve, the locking bolt is arranged on the limiting sliding block, the connecting sleeve is arranged on the connecting sleeve, the locking bolt penetrates through the connecting sleeve, and the locking nut is controlled.

[0010] Further, the limiting sleeve frame is fixedly installed on the front and rear sides of the inner wall plate, the four limiting sleeve frames are distributed in a rectangular array mode, and the supporting bolt rod is in contact with the longitudinal steel bars of the steel mesh; The limiting sliding block is slidably installed on the limiting sleeve frame, and the connecting sleeve is hung with the transverse steel bars of the steel mesh.

[0011] Further, one side of the supporting steel frame is provided with two connecting bolts, and the two connecting bolts are distributed in a symmetrical mode, the end of the connecting bolt is provided with a fixing sleeve, and the end of the fixing sleeve is rotatably installed with an adjusting sleeve.

[0012] Further, the supporting steel frame is located on the front and rear sides of the inner wall plate, and the two supporting steel frames are distributed in an up-down parallel mode, the fixing sleeve is fixedly installed on the inner wall plate, the end of the connecting bolt is arranged in the fixing sleeve, and the adjusting sleeve is controlled.

[0013] Further, the supporting steel frame is located on the front and rear sides of the inner wall plate, and the two supporting steel frames are distributed in an up-down parallel mode, the fixing sleeve is fixedly installed on the inner wall plate, the end of the connecting bolt is arranged in the fixing sleeve, and the adjusting sleeve is controlled.

[0014] Further, the connecting frame is slidably inserted into the installation groove, the supporting baffle is located between the front side concrete layer and the polystyrene board, the elastic buckle is hung with the transverse steel bars of the steel mesh, and the front half of the connecting frame is connected with the reinforcing steel bars by welding.

[0015] The present application provides a kind of green building energy-saving wall, with following beneficial effects: In the present application, the assembled wall is a detachable assembly structure, during the process of pouring concrete layer, the steel mesh is supported by the cooperation of the fixing frame and the supporting bolt rod, the position of the limiting sliding block is adjusted along the limiting sleeve frame, and the steel mesh is hung with the connecting sleeve, so that the steel mesh can be firmly positioned, avoiding the position deviation of the steel mesh caused by the impact of concrete and the disturbance of vibrating rod, ensuring the accurate distribution position and uniform structure stress, meeting the design strength and stability requirements.

[0016] In addition, after the assembly wall is poured and completed, during the stacking, storage and transportation process, the assembly wall is provided with a supporting steel frame on both sides, and through the cooperation of the fixing sleeve and the connecting bolt, the assembly walls can be supported between each other, so that the assembly walls are prevented from being broken and damaged due to extrusion, the integrity of the wall structure is ensured, and the waste of later maintenance and materials is avoided.

[0017] In addition, the connecting frame is arranged in the assembly wall, so that the assembly wall and the thermal insulation wall are more firmly connected, the thermal insulation structure and the wall form an integral force system, the external thermal insulation wall can more effectively transmit and disperse external force, the wind resistance and the anti-seismic performance of the peripheral protection system are improved, and the overall safety of the building is ensured. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings of the embodiments will be briefly introduced below.

[0019] The drawings described in the following description only relate to some embodiments of the present application, and are not limited to the present application.

[0020] In the drawings: Figure 1 A schematic view showing the overall structure of the present application is shown; Figure 2 A schematic view showing the assembly wall and the thermal insulation wall in a split state of the present application is shown; Figure 3 A schematic view showing the assembly wall in a split state of the present application is shown; Figure 4 A schematic view showing the assembly wall in a split state of the present application is shown; Figure 3 An enlarged schematic view of part A of the present application is shown; Figure 5 A schematic view showing part of the inner wall plate and the supporting steel frame of the present application is shown; Figure 6 An enlarged schematic view of part B of the present application is shown; Figure 5 An enlarged schematic view of part B of the present application is shown; Figure 7 A schematic view showing part of the thermal insulation wall and the connecting frame of the present application is shown; Figure 8 A schematic view showing the connecting frame of the present application is shown.

[0021] List of reference signs: 1, assembled wall; 101, inner wall plate; 102, concrete layer; 103, steel mesh; 104, installation through slot; 2, thermal insulation wall; 201, polystyrene board; 202, composite insulation block layer; 203, reinforcing steel; 3, surface layer; 4, limiting sleeve frame; 401, fixing frame; 402, supporting bolt; 5, locking assembly; 501, limiting sliding block; 502, connecting sleeve; 503, limiting plate; 504, locking bolt; 505, connecting sleeve; 6, supporting steel frame; 601, connecting bolt; 602, fixing sleeve; 603, adjusting sleeve; 7, connecting frame; 701, supporting baffle; 702, elastic buckle. DETAILED DESCRIPTION

[0022] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the technical solutions of the embodiments of the present application will be described clearly and completely below with reference to the drawings of the embodiments of the present application. Obviously, the described embodiments are some, but not all, of the embodiments of the present application. Based on the described embodiments of the present application, all other embodiments obtained by a person of ordinary skill in the art without creative effort belong to the scope of protection of the present application.

[0023] Embodiment one: please refer to Figures 1 to 8 : The present application provides a kind of green building energy-saving wall, comprising: building wall main body, building wall main body is by assembled wall 1, thermal insulation wall 2 and surface layer 3 Composition;Assembled wall 1 front side is equipped with thermal insulation wall 2, and assembled wall 1 rear side and thermal insulation wall 2 front side are equipped with surface layer 3;Assembled wall 1 is equipped with limiting sleeve frame 4 in;Limiting sleeve frame 4 is equipped with locking assembly 5;Assembled wall 1 is equipped with supporting steel frame 6;Assembled wall 1 front part is equipped with connecting frame 7, and thermal insulation wall 2 is connected with assembled wall 1 by connecting frame 7; Assembled wall 1 includes inner wall plate 101, concrete layer 102 and steel mesh 103, and the front and back sides of inner wall plate 101 are equipped with concrete layer 102, and steel mesh 103 is equipped in concrete layer 102, and the front and back steel mesh 103 is distributed in parallel, and the front concrete layer 102 is equipped with installation through slot 104, and installation through slot 104 is distributed in rectangular array; Thermal insulation wall 2 includes polystyrene board 201, composite insulation block layer 202 and reinforcing steel 203, and polystyrene board 201 front side is equipped with composite insulation block layer 202, and reinforcing steel 203 is equipped in composite insulation block layer 202, and reinforcing steel 203 is distributed in parallel from top to bottom.

[0024] In the embodiment, as shown in Figure 3 and Figure 4 Limiting sleeve frame 4 side is equipped with fixing frame 401, and fixing frame 401 is equipped with supporting bolt 402; The locking assembly 5 comprises a limiting sliding block 501, a connecting sleeve 502, limiting plates 503, a locking bolt 504 and a connecting sleeve 505. The connecting sleeve 502 is arranged on one side of the limiting sliding block 501. Two limiting plates 503 are arranged on the connecting sleeve 502 and are in sliding connection with the connecting sleeve 502. The locking bolt 504 is arranged on the limiting sliding block 501. The connecting sleeve 505 is arranged on the connecting sleeve 502. The locking bolt 504 penetrates through the connecting sleeve 505 and is controlled by a locking nut. The limiting sleeve frames 4 are fixedly arranged on the front and rear sides of the inner wall plate 101. The four limiting sleeve frames 4 are arranged in a rectangular array. The supporting bolt rods 402 are in contact with the longitudinal reinforcing bars of the reinforcing mesh 103. The limiting sliding block 501 is slidingly arranged on the limiting sleeve frame 4. The connecting sleeve 502 is hung on the transverse reinforcing bars of the reinforcing mesh 103. In the present application, the assembled wall 1 is a detachable assembled structure. During the pouring of the concrete layer 102, the reinforcing mesh 103 is supported by the fixed frame 401 and the supporting bolt rod 402. The position of the limiting sliding block 501 is adjusted along the limiting sleeve frame 4. The connecting sleeve 502 is hung on the reinforcing mesh 103. The reinforcing mesh 103 is firmly positioned. The position of the reinforcing mesh 103 is prevented from being deviated by the impact of the concrete and the disturbance of the vibrating rod.

[0025] In the present embodiment, as shown in Figure 5 and Figure 6 , the supporting steel frame 6 is provided with two connecting bolts 601 arranged in a symmetrical manner. The connecting bolts 601 are provided with fixed sleeves 602. The fixed sleeves 602 are rotatably arranged with adjusting sleeves 603. The supporting steel frame 6 is arranged on the front and rear sides of the inner wall plate 101. The two supporting steel frames 6 are arranged in a parallel manner. The fixed sleeves 602 are fixedly arranged on the inner wall plate 101. The connecting bolts 601 are arranged in the fixed sleeves 602 and are controlled by the adjusting sleeves 603. After the pouring of the assembled wall 1, the supporting steel frames 6 are arranged on the two sides of the assembled wall 1. The fixed sleeves 602 and the connecting bolts 601 are arranged in a supporting manner between the stacked assembled walls 1 to prevent the assembled walls 1 from being broken due to extrusion.

[0026] In the present embodiment, as shown in Figure 7 and Figure 8 , the connecting frame 7 is provided with a supporting baffle 701 arranged on the top of the connecting frame 7. The connecting frame 7 is provided with an elastic buckle 702 arranged on the top of the connecting frame 7. The rear half of the connecting frame 7 is slid into the mounting through slot 104, the supporting baffle 701 is located between the front concrete layer 102 and the polystyrene board 201, the elastic buckle 702 is buckled with the transverse steel bars of the steel mesh 103, and the front half of the connecting frame 7 is connected with the reinforcing steel bars 203 by welding.

[0027] The working principle of the embodiment is as follows: during pouring of the concrete layer 102, the steel mesh 103 is supported by the fixed frame 401 and the supporting bolt 402, the position of the limiting sliding block 501 is adjusted along the limiting sleeve frame 4, and the steel mesh 103 is hung by the connecting buckle 502, so that the steel mesh 103 is firmly positioned and the position of the steel mesh 103 is prevented from being deviated due to the impact of concrete and the disturbance of the vibrating rod; after pouring of the assembled wall 1 is completed, the stacked assembled walls 1 are supported by the supporting steel frame 6 on both sides of the assembled wall 1, the fixed sleeve 602 and the connecting bolt 601 are matched with each other, the stacked assembled walls 1 are supported, and breakage and damage caused by extrusion are prevented; during assembly of the assembled wall 1 and the thermal insulation wall 2, the rear half of the connecting frame 7 is slid into the mounting through slot 104, the supporting baffle 701 is located between the front concrete layer 102 and the polystyrene board 201, the elastic buckle 702 is buckled with the transverse steel bars of the steel mesh 103, and the front half of the connecting frame 7 is connected with the reinforcing steel bars 203 by welding, so that the assembled wall 1 and the thermal insulation wall 2 are more firmly connected, the thermal insulation structure and the wall form an integral force system, and the external thermal insulation wall 2 more effectively transmits and disperses external force.

[0028] The embodiments of the present application are given for the purpose of illustration and description, and are not exhaustive or limit the present application to the disclosed form. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are chosen and described in order to better explain the principles of the present application and its practical application, and to enable those of ordinary skill in the art to understand the present application in order to design various embodiments with various modifications for specific use.

Claims

1. A green building energy-saving wall, characterized in that, include: The main body of the building wall is composed of an assembled wall, an insulated wall, and a surface layer; the front side of the assembled wall is provided with an insulated wall, and the rear side of the assembled wall and the front side of the insulated wall are provided with a surface layer; a limiting sleeve is provided inside the assembled wall; a locking component is provided on the limiting sleeve; a supporting steel frame is provided on the assembled wall; a connecting frame is provided at the front of the assembled wall, and the insulated wall is connected to the assembled wall through the connecting frame.

2. The green building energy-saving wall according to claim 1, characterized in that, The assembled wall includes an inner wall panel, a concrete layer, and a steel mesh. The inner wall panel has a concrete layer on both the front and back sides, and a steel mesh is installed in the concrete layer. The steel mesh is distributed in parallel on both the front and back sides. The front concrete layer has an installation slot, which is distributed in a rectangular array.

3. The green building energy-saving wall according to claim 1, characterized in that, The insulated wall includes a polystyrene board, a composite insulation block layer, and reinforcing steel bars. The composite insulation block layer is provided on the front side of the polystyrene board, and reinforcing steel bars are provided inside the composite insulation block layer, with the reinforcing steel bars distributed in a parallel vertical manner.

4. The green building energy-saving wall according to claim 1, characterized in that, The limiting sleeve is provided with a fixing frame on one side, and a support bolt is provided on the fixing frame.

5. A green building energy-saving wall according to claim 1, characterized in that, The locking assembly includes a limiting slider, a connecting sleeve, a limiting plate, a locking bolt, and a connecting sleeve. The limiting slider has a connecting sleeve on one side, and the connecting sleeve has two limiting plates that are slidably connected to the connecting sleeve. The limiting slider is equipped with a locking bolt, and the connecting sleeve is equipped with a connecting sleeve. The locking bolt passes through the connecting sleeve and is controlled by a locking nut.

6. A green building energy-saving wall according to claim 1, characterized in that, The limiting sleeve is fixedly installed on the front and rear sides of the inner wall panel, and the four limiting sleeves at the front and rear are distributed in a rectangular array, and the supporting bolts are in contact with the longitudinal steel bars of the steel mesh. The limiting slider is slidably installed on the limiting sleeve, and the connecting sleeve is hooked to the transverse steel bars of the steel mesh.

7. A green building energy-saving wall according to claim 1, characterized in that, The supporting steel frame has two connecting bolts on one side, and the two connecting bolts are distributed symmetrically. The ends of the connecting bolts are provided with fixing sleeves, and adjusting screws are rotatably installed on the ends of the fixing sleeves.

8. A green building energy-saving wall according to claim 1, characterized in that, The supporting steel frame is located on the front and rear sides of the inner wall panel, and the two supporting steel frames are distributed in a vertically parallel manner. The fixing sleeve is fixedly installed on the inner wall panel, and the end of the connecting bolt is set in the fixing sleeve and controlled by adjusting the screw sleeve.

9. A green building energy-saving wall according to claim 1, characterized in that, The connecting frame has a support baffle in the middle of the top and an elastic buckle on the rear side of the top.

10. A green building energy-saving wall according to claim 1, characterized in that... The rear half of the connecting frame is slidably inserted into the installation through groove, and the support baffle is located between the front concrete layer and the polystyrene board. The elastic buckle is engaged with the transverse steel bars of the steel mesh, and the front half of the connecting frame is connected to the reinforcing steel bars by welding.