Energy-saving wall body for low-energy building

By adjusting the frame and the insulation frame structure, flexible modification of energy-saving walls in low-energy buildings is realized, which solves the problem of high modification cost in existing technologies and improves the flexibility of wall use and the effect of environmental control.

CN116988596BActive Publication Date: 2025-12-16CHINA MCC22 GROUP CORP LTD
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Patent Information

Application Number
CN202311106594.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-30
Publication Date
2025-12-16
Estimated Expiration
2043-08-30

AI Technical Summary

Technical Problem

The retrofitting of existing low-energy building energy-saving walls requires dismantling the building structure, resulting in a waste of time and resources and increased costs.

Method used

It adopts an adjustable frame and heat insulation frame structure, connected by U-shaped blocks and slots, combined with a sealing plate, positioning rod and drive motor, to realize flexible adjustment and replacement of wall panels and glass window sashes, meeting user needs.

Benefits of technology

It improves the flexibility of the wall structure and the control of the indoor environment, reduces the impact of the external environment on the interior, and saves renovation time and resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical fields of building energy saving, in particular to the interior of the installation wall is provided with the adjusting frame, the adjusting frame is inserted from top to bottom with the heat insulation frame and the adjusting wallboard, the heat insulation frame is provided with the modification unit, and the outer side of the heat insulation frame and the adjusting wallboard is provided with the packaging plate. The present application can adjust the size of the protective wallboard or glass sash through the adjusting wallboard and the height adjustment of the heat insulation frame according to the needs of the user, improve the flexibility of the wall in use; and the replacement of the protective wallboard and the glass sash can reduce the influence of the external environment on the indoor environment according to the needs of the indoor environment, improve the control effect of the indoor ring.
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Description

Technical Field

[0001] This invention relates to the field of building energy conservation technology, and in particular to a low-energy building energy-saving wall. Background Technology

[0002] Building energy conservation refers to minimizing energy consumption during the production of building materials, construction of buildings and structures, and their use, while meeting the same needs or achieving the same objectives. Methods to reduce energy demand include: building planning and design, building envelope, improving end-user energy efficiency, and increasing overall energy efficiency.

[0003] Existing patent CN215765568U discloses a low-energy building energy-saving wall, including a wall with a smoke exhaust chamber inside. The smoke exhaust chamber contains an exhaust fan. An air inlet is located on the side of the wall facing the interior, and an exhaust outlet is located on the side facing the exterior. The smoke exhaust chamber is connected to the air inlet and the exhaust outlet. Both the air inlet and the exhaust outlet have opening and closing components to control their opening and closing. This energy-saving wall can disperse smoke during a fire in a building, reducing the harm of fire smoke. However, its wall structure is fixed during construction. If a user wants to modify it, such as by enlarging holes in the wall to install windows, the building structure needs to be disassembled and reinstalled. This process is not only time-consuming but also wastes a lot of manpower and resources, increasing costs. Summary of the Invention

[0004] This invention provides a low-energy building energy-saving wall, which can be easily modified according to user needs.

[0005] One aspect of this invention provides a low-energy building energy-saving wall, including an installation wall, an adjustment frame inside the installation wall, an insulation frame and an adjustment wall panel inserted from top to bottom inside the adjustment frame, a modification unit inside the insulation frame, and an encapsulation plate on the outside of the insulation frame and the adjustment wall panel.

[0006] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0007] This invention allows users to adjust the size of the protective wall panel or glass window sash by adjusting the height of the wall panel and the heat insulation frame, thereby improving the flexibility of the wall during use. Furthermore, the replacement of the protective wall panel and glass window sash can reduce the impact of the external environment on the indoor environment according to the needs of the indoor environment, and improve the effect of indoor environmental control.

[0008] Furthermore, the preferred embodiment adopted in this invention is:

[0009] The mounting wall has a U-shaped opening inside, and U-shaped blocks are set on the inner wall of the mounting wall corresponding to the U-shaped opening. The outer surface of the adjustment frame has a slot that matches the U-shaped blocks. The mounting wall is connected to the adjustment frame by the cooperation of the U-shaped blocks and the slots.

[0010] The U-shaped card block and card slot have vertically spaced mounting holes on both sides. The vertical sides of the encapsulation plate have encapsulation threaded holes corresponding to the mounting holes. The encapsulation plate is connected by screws placed in the encapsulation threaded holes and mounting holes.

[0011] The adjustment frame has an adjustment groove inside. Positioning rods are set on both sides of the adjustment groove along the thickness of the wall to be installed. The positioning rods on each side are spaced apart from top to bottom. Positioning holes that match the positioning rods are set on the outer sides of the heat insulation frame and the adjustment plate. The heat insulation frame and the adjustment plate are inserted into the adjustment frame through the positioning holes on their respective sides and the positioning rods.

[0012] The modified unit is a glass window sash, and the inner two side walls of the heat insulation frame are hinged to the glass window sash via hinges.

[0013] The modification unit is a protective wall panel. There are two protective wall panels. Each protective wall panel has an L-shaped functional plate on its outer side, and the functional plate has threaded holes. The two vertical sides of the heat insulation frame have mounting slots. The heat insulation frame is equipped with a drive motor for each mounting slot. The output end of the drive motor is threadedly connected to the protective wall panel.

[0014] The heat insulation frame has four positioning holes on each side. Each mounting slot has a limiting sleeve between its front and rear walls corresponding to the position of each positioning hole, and the four limiting sleeves form three gaps. Each protective wall panel has two L-shaped guide plates on its functional plate, one above the other, and the guide plates and functional plates are placed in their respective gaps. Attached Figure Description

[0015] The accompanying drawings, which are included to provide a further understanding of the invention and form part of this application, are not intended to limit the scope of the invention. In the drawings:

[0016] Figure 1 This is a schematic diagram of the structure of the present invention;

[0017] Figure 2 This is an exploded view of the structure of the present invention;

[0018] Figure 3 This is a schematic diagram of the adjustment frame;

[0019] Figure 4 This is a structural diagram of the glass window frame and the thermal insulation frame.

[0020] Figure 5 This is a schematic diagram of the heat insulation frame in Example 2;

[0021] Figure 6 This is a structural schematic diagram of the protective wall panel;

[0022] Figure 7 This is a schematic diagram of the connection between the protective wall panel and the heat-insulating window.

[0023] In the diagram: Mounting wall 1; U-shaped clip 101; Adjustment frame 2; Slot 201; Adjustment groove 202; Adjustment wall panel 3; Fine adjustment plate 301; Coarse adjustment plate 302; Heat insulation frame 4; Mounting groove 401; Encapsulation plate 5; Encapsulation threaded hole 501; Modification unit 6; Glass window sash 601; Protective wall panel 602; Screw 7; Mounting hole 8; Positioning hole 9; Positioning rod 10; Hinge 11; Lead screw 12; Drive motor 13; Limit sleeve 14; Connecting groove 15; Functional plate 16; Guide plate 17. Detailed Implementation

[0024] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the embodiments and accompanying drawings. Here, the illustrative embodiments and descriptions of this invention are used to explain the invention, but are not intended to limit the invention.

[0025] Example 1, such as Figures 1 to 4 As shown, a low-energy building energy-saving wall includes an installation wall 1, and an adjustment frame 2 is provided inside the installation wall 1.

[0026] The mounting wall 1 has an inverted U-shaped opening inside, and inverted U-shaped blocks 101 are respectively provided on the inner wall of the mounting wall 1 at the position of the U-shaped opening; the outer surface of the adjustment frame 2 is provided with a U-shaped slot 201 that is adapted to the U-shaped block 101, and the mounting wall is connected to the adjustment frame 2 through the cooperation of the U-shaped block 101 and the slot 201.

[0027] The adjustment frame 2 has an adjustment groove 202 inside. Positioning rods 10 are provided on both sides of the adjustment groove 202 along the thickness direction of the mounting wall 1, and the positioning rods 10 on each side are arranged at intervals from top to bottom.

[0028] A heat insulation frame 4 is installed on the upper part of the regulating groove 202, and an adjusting wall plate 3 is installed on the lower part. The two sides of the adjusting wall plate 3 and the heat insulation frame 4 are respectively inserted into the regulating groove 202.

[0029] Specifically, positioning holes 9 are provided on both sides of the heat insulation frame 4, corresponding to the positions of the positioning rods 10 on the upper part of the adjustment groove 202. The heat insulation frame 4 is inserted into the adjustment groove 202 through the cooperation of the positioning holes 9 and the positioning rods 10. The adjustment wall plate 3 is composed of a coarse adjustment plate 302 and a fine adjustment plate 301. The coarse adjustment plate 302 is placed above the fine adjustment plate 301. The height of the coarse adjustment plate 302 is greater than the height of the fine adjustment plate 301. The thickness of the coarse adjustment plate 302 and the fine adjustment plate 301 is the same as the thickness of the heat insulation frame. Positioning holes 9 are also provided on both sides of the coarse adjustment plate 302 and the fine adjustment plate 301, corresponding to the positions of the positioning rods 10. The coarse adjustment plate 302 and the fine adjustment plate 301 are also inserted into the adjustment groove 202 through the cooperation of the positioning holes 9 and the positioning rods 10, thereby achieving the connection with the adjustment frame 2.

[0030] In this embodiment, the modification unit is a glass window sash 601. Hinges 11 are installed on the inner walls on both sides of the heat insulation frame 4. The heat insulation frame 4 is hinged to two glass window sashes 601 through the hinges 11. The glass window sashes 601 can be opened outward or inward according to user needs to meet indoor ventilation and lighting requirements.

[0031] The outer sides of the heat insulation frame 4 and the adjusting wall panel 3 are fixed by the encapsulation plate 5. The encapsulation plate 5 is also an inverted U-shaped structure. The two vertical sides of the encapsulation plate 5 are provided with encapsulation thread holes 501 spaced apart. The two sides of the U-shaped card block 101 and the card slot 201 are also provided with mounting holes 8 spaced apart vertically. After the heat insulation frame 4, the glass window sash 601 and the adjusting wall panel 3 are installed in place, the encapsulation plate 5 is snapped onto the outer side of the heat insulation frame 4 and the adjusting wall panel 3, the encapsulation thread holes 501 are aligned with the mounting holes 8, and the screws 7 placed in the encapsulation thread holes 501 and the mounting holes 8 are tightened.

[0032] In this embodiment, the size of the glass window sash 601 can be determined according to the user's needs, and then the height of the heat insulation frame 4 can be determined according to the size of the glass window sash 601. After the height of the heat insulation frame 4 is determined, the opening is filled below the heat insulation frame 4 using the coarse adjustment plate 302 and the fine adjustment plate 301. The coarse adjustment plate 302 and the fine adjustment plate 301 can be made into various heights according to the user's requirements for the size of the glass window sash 601.

[0033] Example 2, as Figures 1 to 3 , Figures 5 to 7As shown, this embodiment differs from Embodiment 1 in that: since some users do not have lighting requirements and only need the protective wall 602 to achieve ventilation, this embodiment modifies the glass window sash 601 in Embodiment 1 into a protective wall panel 602. Two protective wall panels 602 are provided on the left and right sides. Three connecting grooves 15 are respectively opened on the outer surface of each protective wall panel 602 (i.e., the side where the protective wall panel is connected to the heat insulation frame). An L-shaped functional plate 16 is installed in the connecting groove 15 in the middle of each protective wall panel 602. A threaded hole 1601 is opened in the horizontal section of the functional plate 16. An L-shaped guide plate 17 is installed in each of the other two connecting grooves 15.

[0034] The heat insulation frame 4 has mounting slots 401 on the two vertical sides. A drive motor 13 is installed in the middle of each mounting slot 401. The output ends of the two drive motors 13 are arranged opposite to each other. One drive motor 13 is placed on the rear side of the heat insulation frame 4 with its output end facing forward, and the other drive motor 13 is placed on the front side of the heat insulation frame 4 with its output end facing backward. The output end of each drive motor 13 is connected to the lead screw 12. The lead screw 12 is threadedly connected to the functional plate 16 on the protective wall plate 602 on its side. The protective wall plate 602 can be moved back and forth along the lead screw by the drive motor 13.

[0035] In this embodiment, four positioning holes 9 are vertically arranged on each side of the heat insulation frame 4, and each positioning hole 9 penetrates the front and rear walls of the mounting groove 401. A limiting sleeve 14 is respectively arranged between the front and rear walls of each mounting groove 401 corresponding to the position of each positioning hole 9, forming three gaps (upper, middle, and lower) between the four limiting sleeves 14. The horizontal sections of the two guide plates 17 on each protective wall panel 602 are respectively placed in the upper and lower gaps, while the horizontal section of the functional plate 116 is placed in the middle gap. When the drive motor 13 drives the protective wall panel 602 to move back and forth, the guide plates 17 and the functional plate 16 slide between their respective two limiting sleeves 14, and the limiting sleeves 14 can better guide the back and forth movement of the protective wall panel 602.

[0036] In this embodiment, when ventilation is required indoors, the two drive motors 13 drive the protective wall panels 602 connected to them respectively, causing the two protective wall panels 602 to move in opposite directions. The gap formed by the staggered arrangement of the two protective wall panels 602 serves as a ventilation channel. After the indoor ventilation has been completed for a period of time, the drive motors 13 can be driven to return the two protective wall panels 602 to their initial positions, thus isolating the indoors from the outdoors.

[0037] The above embodiments illustrate that the present invention can adjust the height of the wall panel or glass window frame according to user needs, and can also replace the wall panel and glass window frame according to the user's lighting needs, which improves the flexibility and functionality of the wall when used. Furthermore, the replacement of the protective wall panel and glass window sash can reduce the impact of the external environment on the indoor environment according to the needs of the indoor environment, and improve the effect of indoor environmental control.

[0038] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention are included within the scope of protection of the present invention.

Claims

1. A low energy building saving wall, comprising a mounting wall, characterized in that: The interior of the installation wall is provided with an adjusting frame, a heat insulation frame and an adjusting wallboard are inserted into the adjusting frame from top to bottom, the heat insulation frame is provided with a retrofit unit, and the outer sides of the heat insulation frame and the adjusting wallboard are provided with packaging boards; The retrofit unit is a protective wallboard, two protective wallboards are provided, an L-shaped functional plate is arranged on the outer side of each protective wallboard, and a threaded hole is arranged on the functional plate; installation grooves are formed in the inner sides of the vertical edges of the heat insulation frame, a driving motor is arranged on the heat insulation frame corresponding to each installation groove, and the output end of the driving motor is in threaded connection with the protective wallboard; The output ends of the two driving motors are oppositely arranged, one driving motor is arranged on the rear side of the heat insulation frame, the output end faces forward, the other driving motor is arranged on the front side of the heat insulation frame, and the output end faces backward, the output end of each driving motor is connected with a lead screw, the lead screw is in threaded connection with the functional plate on the protective wallboard on the same side, and the protective wallboard can move forward and backward along the lead screw through the driving motor; Four positioning holes are arranged on the two sides of the heat insulation frame, a limiting sleeve is arranged between the front and rear walls of each installation groove corresponding to the position of each positioning hole, and three gaps are formed between the four limiting sleeves; two L-shaped guide plates are arranged on the upper and lower functional plates of each protective wallboard, and the guide plates and the functional plates are arranged in the corresponding gaps.

2. The energy efficient wall of claim 1, wherein: A U-shaped opening is formed in the interior of the installation wall, and U-shaped clamping blocks are arranged on the inner walls of the installation wall corresponding to the positions of the U-shaped opening; a clamping groove matched with the U-shaped clamping blocks is arranged on the outer surface of the adjusting frame, and the installation wall is connected with the adjusting frame through cooperation of the U-shaped clamping blocks and the clamping groove.

3. The energy efficient wall of claim 2, wherein: U-shaped clamping blocks and clamping grooves are vertically and spacedly arranged on the two sides, and packaging threaded holes corresponding to the mounting holes are arranged on the vertical edges of the packaging boards, and the packaging boards are connected through the screws arranged in the packaging threaded holes and the mounting holes.

4. The energy efficient wall of claim 1, wherein: The interior of the adjusting frame is provided with an adjusting groove, and positioning rods are arranged on the two sides of the adjusting groove along the thickness direction of the installation wall, and the positioning rods are spacedly arranged from top to bottom on each side, and the outer sides of the heat insulation frame and the adjusting plate are provided with positioning holes matched with the positioning rods, and the heat insulation frame and the adjusting plate are inserted into the adjusting frame through cooperation of the positioning holes on the two sides and the positioning rods.

Citation Information

Patent Citations

  • Ventilation system for factory building

    CN115264704A

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    CN216195689U

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