Multi-cavity heat preservation aluminum alloy door and window

Through innovative multi-chamber design and fixing mechanism, the problems of difficult replacement and flexibility of the heat insulation board in insulated aluminum alloy doors and windows have been solved, realizing convenient operation and efficient heat preservation effect of the heat insulation curtain.

CN224064231UActive Publication Date: 2026-03-31SICHUAN JINQIU NEW BUILDING MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The insulation panels of existing insulated aluminum alloy doors and windows are difficult to replace, and they cannot be opened and closed automatically according to the on-site temperature, making them inflexible in use and inconvenient to replace later.

Method used

A multi-chamber insulated aluminum alloy door and window was designed. By setting up a window frame, insulation layer, fixing mechanism and sealing structure, the heat insulation curtain can be quickly snapped and folded. Combined with the stabilizing force of the spring, the heat insulation curtain can be opened and closed according to temperature needs and is easy to maintain and replace.

Benefits of technology

It enables flexible operation and convenient maintenance of the thermal insulation curtain, improves thermal insulation performance and structural strength, while reducing material usage and maintaining the stability and aesthetics of doors and windows for normal use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-cavity heat preservation aluminum alloy door and window, and belongs to the technical field of heat preservation aluminum alloy doors and windows, the multi-cavity heat preservation aluminum alloy door and window comprises a window frame, an outer window is hinged to the outer side of the window frame, an inner window is hinged to the inner side of the window frame, a heat insulation layer is arranged in the window frame, a top clamping groove and a fixing mechanism are arranged at the top of the interior of the window frame, and the top clamping groove is located above the heat insulation layer; the heat insulation layer comprises a heat insulation curtain, fixing frames are arranged on the upper side and the lower side of the heat insulation curtain, the upper side and the lower side of the heat insulation curtain are located in the fixing frames, a clamping plate is arranged on one side of the heat insulation curtain, a sealing plate is arranged on one side of the heat insulation curtain, and the interior of the sealing plate is clamped with the clamping plate; by arranging the window frame, during use, the heat insulation curtain can be opened and closed according to the requirement of the field temperature, meanwhile, the heat insulation curtain is more convenient to maintain and replace subsequently, rapid disassembly, assembly and replacement can be achieved, and the practicability of the device is improved.
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Description

Technical Field

[0001] This application relates to the field of thermal insulation aluminum alloy doors and windows, and in particular to a multi-chamber thermal insulation aluminum alloy door and window. Background Technology

[0002] The irregularly shaped multi-cavity thin-walled frame insulated aluminum alloy doors and windows mainly consist of door and window frames, connectors, inner doors and windows, outer doors and windows, and insulation panels. Among them, the door and window frames adopt a thin-walled design with multiple cavities. This design not only saves materials but also reduces manufacturing costs. At the same time, the door and window frames are firmly connected to the inner and outer doors and windows through connectors with specific structures to form an integral structure.

[0003] The existing thermal insulation panels inside insulated aluminum alloy doors and windows are difficult to replace, and they cannot be opened and closed according to the on-site temperature. They can only provide passive insulation, which makes them inflexible in use, and subsequent replacement is relatively inconvenient. Utility Model Content

[0004] To address the shortcomings of existing technologies, this application provides a multi-chamber insulated aluminum alloy door and window, which overcomes the deficiencies of existing technologies. It aims to solve the problems that existing insulated aluminum alloy doors and windows have internal insulation panels that are difficult to replace, cannot be opened and closed according to the on-site temperature, and often can only provide passive insulation, which is not flexible in use and relatively inconvenient for subsequent replacement.

[0005] To achieve the above objectives, this application provides the following technical solution: a multi-chamber insulated aluminum alloy door and window, comprising a window frame, an outer window hinged to the outer side of the window frame, an inner window hinged to the inner side of the window frame, a heat insulation layer disposed inside the window frame, a top slot and a fixing mechanism disposed at the top of the inner side of the window frame, the top slot being located above the heat insulation layer, the heat insulation layer comprising a heat insulation curtain, fixing frames disposed on both the upper and lower sides of the heat insulation curtain, the upper and lower sides of the heat insulation curtain being located inside the fixing frames, a retaining plate disposed on one side of the heat insulation curtain, the upper and lower sides of the retaining plate being connected to the heat insulation curtain. The fixed frame has an internal sliding connection. A sealing plate is provided on one side of the heat insulation curtain. The interior of the sealing plate is interlocked with the card plate. The fixing mechanism includes a fixed frame. Movable grooves are provided on both sides of the interior of the fixed frame. Movable blocks are slidably connected inside the two sets of movable grooves. An abutment plate is fixedly connected between the two sets of movable blocks. Bolts are provided inside the two sets of movable blocks. One end of the bolt passes through the movable block and is threadedly connected to the fixed frame. A spring is provided between the other end of the movable block and the bolt. The spring is sleeved on the outside of the bolt.

[0006] By adopting the above technical solution and setting up a window frame, the insulation layer can be quickly engaged by rotating bolts during use. A spring continuously applies a resisting force to the fixed frame, ensuring its stability. The fixing blocks allow the insulation curtain to be folded, enabling free opening and closing. The coordination between the inner window, insulation layer, and outer window effectively improves insulation performance without affecting the normal use of doors and windows. This design allows for easy opening and closing of the insulation curtain according to the required ambient temperature. Furthermore, subsequent maintenance and replacement of the insulation curtain are more convenient, enabling quick disassembly and replacement, thus enhancing the practicality of the device.

[0007] As a preferred technical solution of this application, the window frame is provided with multiple sets of horizontal plates and multiple sets of vertical plates inside, and the multiple sets of horizontal plates and multiple sets of vertical plates are arranged to cross each other.

[0008] By adopting the above technical solution and setting horizontal and vertical plates, the interior of the window frame can be divided into multiple cavities during use. This can enhance the thermal insulation performance while reducing the weight of the window frame, effectively reducing material usage and improving structural strength.

[0009] As a preferred technical solution of this application, both sets of fixed frames are provided with stabilizing columns inside, and sliders are provided on the upper and lower sides of the card plate. Both sets of sliders are slidably connected to the two sets of stabilizing columns.

[0010] By adopting the above technical solution and setting stabilizing columns, the card plate can be moved more stably between the fixed frames during use, preventing displacement and improving stability during use.

[0011] As a preferred technical solution of this application, the inner side of the inner window is provided with a groove, the inner side of the card plate is provided with a fixing block, and the inner side of the outer window is provided with a handle.

[0012] By adopting the above technical solution and setting the groove, the interior window can be opened and closed conveniently while maintaining the overall aesthetics. The fixed block and handle make opening and closing more convenient.

[0013] As a preferred technical solution of this application, a sealing strip is provided on the side of the outer window near the window frame, and the sealing strip is made of rubber.

[0014] By adopting the above technical solution and setting a sealing strip, the sealing performance can be further improved, and the thermal insulation performance can be effectively enhanced.

[0015] As a preferred technical solution of this application, the sealing plate has a receiving groove on the side near the fixing block, and the size of the receiving groove matches that of the fixing block.

[0016] By adopting the above technical solution and setting up a receiving groove, the connection between the card plate and the sealing plate can be made tighter during use, thereby improving the overall sealing performance.

[0017] As a preferred technical solution of this application, the internal size of the top slot matches the size of the fixed frame, and a baffle is provided on the window frame near the outer window.

[0018] By adopting the above technical solution and setting up a baffle, the fixing mechanism can be shielded, which can further improve the structural strength and the sealing performance.

[0019] The beneficial effects of this application are:

[0020] 1. By installing a window frame, the insulation layer can be quickly and easily engaged by turning the bolts. A spring continuously applies a resisting force to the fixed frame, ensuring its stability. The fixing blocks allow the insulation curtain to be folded, enabling free opening and closing. The coordination between the inner window, insulation layer, and outer window effectively improves insulation performance without affecting the normal use of doors and windows. This design allows for easy opening and closing of the insulation curtain according to the required ambient temperature. Furthermore, subsequent maintenance and replacement of the insulation curtain are more convenient, enabling quick disassembly and replacement, thus enhancing the practicality of the device.

[0021] 2. By setting horizontal and vertical plates, the interior of the window frame can be divided into multiple cavities during use. This can enhance the thermal insulation performance while reducing the weight of the window frame, effectively reducing material usage and improving structural strength. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of this application;

[0023] Figure 2 This is a schematic diagram of the internal structure of this application;

[0024] Figure 3 This is a schematic diagram of the insulation layer structure of this application;

[0025] Figure 4 This is a schematic diagram of the fixed mechanism structure of this application;

[0026] Figure 5 This is a schematic diagram of the internal structure of the window frame in this application.

[0027] In the diagram: 1. Window frame; 101. Horizontal plate; 102. Vertical plate; 103. Top slot; 104. Baffle; 2. Interior window; 201. Pulling groove; 3. Exterior window; 301. Sealing strip; 302. Handle; 4. Thermal insulation layer; 401. Thermal insulation curtain; 402. Fixed frame; 403. Card plate; 404. Sealing plate; 405. Fixing block; 406. Receiving groove; 407. Stabilizing column; 408. Sliding block; 5. Fixing mechanism; 501. Fixing bracket; 502. Abutment plate; 503. Moving groove; 504. Moving block; 505. Bolt; 506. Spring. Detailed Implementation

[0028] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0029] Reference Figure 1-5 A multi-chamber insulated aluminum alloy door and window includes a window frame 1, an outer window 3 hinged to the outer side of the window frame 1, an inner window 2 hinged to the inner side of the window frame 1, a heat insulation layer 4 disposed inside the window frame 1, a top slot 103 and a fixing mechanism 5 disposed at the top of the inner side of the window frame 1, the top slot 103 being located above the heat insulation layer 4, the heat insulation layer 4 including a heat insulation curtain 401, a fixing frame 402 disposed on both the upper and lower sides of the heat insulation curtain 401, both the upper and lower sides of the heat insulation curtain 401 being located inside the fixing frame 402, a locking plate 403 disposed on one side of the heat insulation curtain 401, the upper and lower sides of the locking plate 403 being slidably connected to the inside of the fixing frame 402, the heat insulation curtain 401 being slidably connected to the inside of the fixing frame 402, the heat insulation curtain 401 being slidably connected to the inner side ... A sealing plate 404 is provided on one side of the 1, and the interior of the sealing plate 404 is interlocked with the clamping plate 403. The fixing mechanism 5 includes a fixing frame 501, and both sides of the fixing frame 501 have moving grooves 503. Moving blocks 504 are slidably connected inside the two sets of moving grooves 503. An abutment plate 502 is fixedly connected between the two sets of moving blocks 504. Bolts 505 are provided inside the two sets of moving blocks 504. One end of the bolt 505 passes through the moving block 504 and is threadedly connected to the fixing frame 501. A spring 506 is provided between the other end of the moving block 504 and the bolt 505. The spring 506 is sleeved on the outside of the bolt 505. Stabilizing columns 407 are provided inside the two sets of fixing frames 402. Slider blocks 408 are provided on the upper and lower sides of the clamping plate 403. The two sets of sliders 408 are slidably connected to the two sets of stabilizing columns 407.

[0030] By setting up window frame 1, the insulation layer 4 can be quickly engaged by rotating bolt 505 during use. Spring 506 continuously applies a resisting force to the fixed frame 402, ensuring its stability. Fixing block 405 allows the insulation curtain 401 to be folded, enabling free opening and closing. The interaction between the inner window 2, insulation layer 4, and outer window 3 effectively improves insulation performance without affecting the normal use of doors and windows. This design allows for easy opening and closing of the insulation curtain 401 according to the required ambient temperature, and facilitates subsequent maintenance and replacement, enabling quick disassembly and replacement, thus enhancing the device's practicality. The stabilizing column 407 ensures greater stability when the clamping plate 403 moves between the fixed frames 402, preventing displacement and improving overall stability during use.

[0031] Reference Figure 1 The window frame 1 has multiple sets of horizontal plates 101 and multiple sets of vertical plates 102 inside, which are arranged in a crisscross pattern. The inner window 2 has a pull groove 201 on its inner side, and a fixing block 405 is provided on the inner side of the clamping plate 403. The outer window 3 has a handle 302 on its inner side. The sealing plate 404 has a receiving groove 406 on the side near the fixing block 405, and the size of the receiving groove 406 matches that of the fixing block 405. By setting the horizontal plates 101 and vertical plates 102, the window frame can be adjusted during use. The interior of window frame 1 is divided into multiple cavities, which can enhance the thermal insulation performance while reducing the weight of window frame 1, effectively reducing material usage and improving structural strength. By setting the groove 201, the inner window 2 can be opened and closed easily while maintaining the overall aesthetics. The fixing block 405 and handle 302 make opening and closing more convenient. By setting the receiving groove 406, the connection between the card plate 403 and the sealing plate 404 can be made tighter during use, improving the overall sealing performance.

[0032] Reference Figure 1 A sealing strip 301 made of rubber is provided on the side of the outer window 3 near the window frame 1. The sealing strip 301 can further improve the sealing performance and effectively improve the heat preservation performance. The internal size of the top slot 103 matches the size of the fixing frame 402. A baffle 104 is provided on the window frame 1 near the outer window 3. The baffle 104 can cover the fixing mechanism 5, which can further improve the structural strength and the sealing performance.

[0033] Working principle: By setting up the window frame 1, the insulation layer 4 can be quickly engaged by rotating the bolt 505 during use. The spring 506 continuously applies a resisting force to the fixed frame 402 to keep it stable. At the same time, the fixing block 405 allows the insulation curtain 401 to be folded, so that the insulation curtain 401 can be opened and closed freely. The cooperation between the inner window 2, the insulation layer 4, and the outer window 3 can effectively improve the thermal insulation performance without affecting the normal use of the doors and windows. This setup allows the insulation curtain 401 to be opened and closed according to the temperature requirements of the site. It also makes subsequent maintenance and replacement of the insulation curtain 401 more convenient, enabling quick disassembly and replacement and improving the practicality of the device. By setting up the horizontal plate 101 and the vertical plate 102, the interior of the window frame 1 can be divided into multiple cavities during use. This can enhance the thermal insulation performance while reducing the weight of the window frame 1, effectively reducing material usage and improving structural strength.

[0034] Among them, by setting the stabilizing column 407, the card plate 403 can be more stable when moving between the fixed frame 402 during use, preventing the phenomenon of displacement and improving the stability during use. By setting the pull groove 201, the inner window 2 can be opened and closed conveniently while maintaining the overall aesthetics. The fixed block 405 and handle 302 make opening and closing more convenient.

[0035] Meanwhile, by setting the sealing strip 301, the sealing performance can be further improved, effectively enhancing the thermal insulation performance;

[0036] In addition, by setting the receiving groove 406, the connection between the card plate 403 and the sealing plate 404 can be made tighter during use, thus improving the overall sealing performance; by setting the baffle 104, the fixing mechanism 5 can be shielded, which can further improve the structural strength and the sealing performance.

[0037] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A multi-chamber insulated aluminum alloy door and window, comprising a window frame (1), characterized in that, An outer window (3) is hinged to the outside of the window frame (1), and an inner window (2) is hinged to the inside of the window frame (1). A heat insulation layer (4) is provided inside the window frame (1). A top slot (103) and a fixing mechanism (5) are provided at the top of the inside of the window frame (1). The top slot (103) is located above the heat insulation layer (4). The heat insulation layer (4) includes a heat insulation curtain (401). A fixing frame (402) is provided on both the upper and lower sides of the heat insulation curtain (401). Both the upper and lower sides of the heat insulation curtain (401) are located inside the fixing frame (402). A card plate (403) is provided on one side of the heat insulation curtain (401). Both the upper and lower sides of the card plate (403) are slidably connected to the inside of the fixing frame (402). A sealing device is provided on one side of the heat insulation curtain (401). The sealing plate (404) is interlocked with the card plate (403). The fixing mechanism (5) includes a fixing frame (501). The fixing frame (501) has moving grooves (503) on both sides inside. Moving blocks (504) are slidably connected inside the two sets of moving grooves (503). Abutting plate (502) is fixedly connected between the two sets of moving blocks (504). Bolts (505) are provided inside the two sets of moving blocks (504). One end of the bolt (505) passes through the moving block (504) and is threadedly connected to the fixing frame (501). A spring (506) is provided between the other end of the moving block (504) and the bolt (505). The spring (506) is sleeved on the outside of the bolt (505).

2. The multi-chamber insulated aluminum alloy door and window according to claim 1, characterized in that, The window frame (1) is provided with multiple sets of horizontal plates (101) and multiple sets of vertical plates (102) inside, and the multiple sets of horizontal plates (101) and multiple sets of vertical plates (102) are arranged to cross each other.

3. The multi-chamber insulated aluminum alloy door and window according to claim 1, characterized in that, Both sets of fixed frames (402) are equipped with stabilizing columns (407) inside, and the upper and lower sides of the card plate (403) are equipped with sliders (408). Both sets of sliders (408) are slidably connected to the two sets of stabilizing columns (407).

4. A multi-chamber insulated aluminum alloy door and window according to claim 1, characterized in that, The inner window (2) has a groove (201) on its inner side, the card plate (403) has a fixing block (405) on its inner side, and the outer window (3) has a handle (302) on its inner side.

5. A multi-chamber insulated aluminum alloy door and window according to claim 1, characterized in that, The outer window (3) is provided with a sealing strip (301) on the side near the window frame (1), and the sealing strip (301) is made of rubber.

6. A multi-chamber insulated aluminum alloy door and window according to claim 4, characterized in that, The sealing plate (404) has a receiving groove (406) on the side near the fixing block (405), and the size of the receiving groove (406) matches that of the fixing block (405).

7. A multi-chamber insulated aluminum alloy door and window according to claim 1, characterized in that, The internal size of the top slot (103) matches the size of the fixed frame (402), and a baffle (104) is provided on the window frame (1) near the outer window (3).