Heat insulation aluminum alloy fire-resistant window

By designing a detachable insulated aluminum alloy fire-resistant window structure, the problem of decreased heat insulation performance of fire-resistant windows is solved, achieving the effect of reducing heat conduction and energy consumption, and promoting environmental protection.

CN224173973UActive Publication Date: 2026-04-28河北力尔铝业有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
河北力尔铝业有限公司
Filing Date
2025-05-14
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing fire-resistant windows have not been maintained and serviced in a timely manner after long-term use, resulting in a decline in heat insulation performance, a significant increase in indoor temperature, and an increase in the frequency of air conditioning use and energy consumption.

Method used

Design a detachable insulated aluminum alloy fire-resistant window structure, including a first fireproof glass, a second fireproof glass, a U-shaped sealing ring and a window frame, which are assembled by a detachable connection method for easy maintenance and upkeep.

Benefits of technology

The removable window structure maintains thermal insulation performance, reduces heat conduction, decreases the frequency of air conditioning use, reduces energy consumption, and protects the environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of fire-resistant windows, in particular to a heat insulation aluminum alloy fire-resistant window which comprises first fire-resistant glass and a window frame. Four groups of window frames for disassembly and assembly are mounted outside the first fireproof glass in a surrounding manner; the first fireproof glass is firstly assembled with the second fireproof glass on one side of the first fireproof glass, the fireproof materials are filled between the two sets of fireproof glass, then one set of window frame is assembled with the first fireproof glass, then the rest of window frames are assembled in sequence, and after the window is used for a period of time, the window can be disassembled through the connecting parts, so that the window is convenient to assemble and disassemble. By means of the detachable window body structure, the heat insulation performance of the window can be maintained, so that heat conducted through the door and window is effectively reduced, the indoor heat preservation performance is improved, the use frequency of an air conditioner and a heater can be reduced, environmental radiation and carbon emission are reduced, and environmental protection is facilitated.
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Description

Technical Field

[0001] This utility model relates to the field of fire-resistant windows, and in particular to a heat-insulating aluminum alloy fire-resistant window. Background Technology

[0002] Aluminum alloy fire-resistant windows are made of insulated aluminum alloy profiles, glass, hardware, and fire-resistant materials. They are energy-saving and fire-resistant windows. Aluminum alloy fire-resistant windows typically possess fire resistance integrity, maintaining structural integrity during a fire and preventing the spread of fire and smoke. They are also corrosion-resistant; the specially treated aluminum alloy sheets can withstand wind and sun exposure and will not discolor or peel even after long-term use. Furthermore, they have excellent airtightness; the window design is based on rigorous scientific calculations and uses advanced sealing methods and materials to ensure good airtightness, while also providing sound insulation and noise reduction.

[0003] If existing fire-resistant windows are not maintained and cared for in a timely manner after long-term use, their heat insulation performance may decline, making them unable to effectively block the transfer of external heat. Especially in summer, strong sunlight will shine directly into the room through the windows, causing the indoor temperature to rise significantly. In order to maintain a suitable indoor temperature, air conditioning and other cooling equipment need to be used frequently, which will increase energy consumption and is not conducive to energy conservation and emission reduction.

[0004] Therefore, if the existing fire-resistant windows are not maintained and serviced in a timely manner, their heat insulation performance may decrease, leading to a significant increase in indoor temperature. In order to maintain a suitable indoor temperature, air conditioning and other cooling equipment need to be used frequently, which will increase energy consumption. A heat-insulating aluminum alloy fire-resistant window with a detachable window structure can be designed to facilitate timely maintenance and service. Utility Model Content

[0005] To address the issue that existing fire-resistant windows may experience a decline in thermal insulation performance if not maintained and serviced in a timely manner, leading to a significant increase in indoor temperature, and the need for frequent use of air conditioning and other cooling equipment to maintain a suitable indoor temperature, which increases energy consumption.

[0006] The technical solution of this utility model is as follows: a heat-insulating aluminum alloy fire-resistant window, including a first fireproof glass and a window frame; four sets of window frames for disassembly and assembly are installed around the outside of the first fireproof glass; a second fireproof glass is provided on one side of the first fireproof glass; a U-shaped sealing ring is installed at the outer edge of the first fireproof glass and the second fireproof glass; four sets of snap-fit ​​strips are installed around the outside of the U-shaped sealing ring; a placement groove is opened on the inner side of the window frame; strip-shaped snap-fit ​​grooves are opened on both sides of the placement groove on the window frame; the snap-fit ​​strips drive the U-shaped sealing ring to be positioned and connected to the window frame along the strip-shaped snap-fit ​​grooves; two sets of plug-in posts are installed horizontally at one end of the window frame; and plug-in holes are opened at the end of the window frame away from the plug-in posts corresponding to the plug-in posts.

[0007] Preferably, the first fireproof glass is first assembled with the second fireproof glass on one side, and fireproof material is filled between the two sets of fireproof glass. Then, a set of window frames is assembled with the first fireproof glass. Then, the remaining window frames are assembled in sequence. After the window has been used for a period of time, it can be disassembled through the connecting parts to maintain and care for the window.

[0008] Preferably, a U-shaped snap-fit ​​plate is installed at the edge of the first fireproof glass near the second fireproof glass.

[0009] Preferably, a U-shaped connecting plate is fixedly installed on the edge of the second fireproof glass near the first fireproof glass.

[0010] Preferably, the U-shaped connecting plate has a U-shaped snap-fit ​​groove.

[0011] Preferably, the U-shaped snap-fit ​​plate drives the first fireproof glass to be positioned and snapped into the U-shaped connecting plate along the U-shaped snap-fit ​​groove.

[0012] Preferably, the plug-in post drives a set of window frames to be positioned and connected to another set of window frames through the plug-in holes on the other set of window frames.

[0013] The beneficial effects of this utility model are as follows: First, the first fireproof glass is assembled with the second fireproof glass on one side, and fireproof material is filled between the two sets of fireproof glass. Then, a set of window frames is assembled with the first fireproof glass. Then, the remaining window frames are assembled in sequence. After the window has been used for a period of time, it can be disassembled through the connecting parts to maintain and care for the window. Through the detachable window structure, the heat insulation performance of the window can be maintained, thereby effectively reducing the heat conducted through the doors and windows and improving the indoor heat preservation performance. This can reduce the frequency of air conditioning and heating use, thereby reducing environmental radiation and carbon emissions, which is beneficial to environmental protection. Attached Figure Description

[0014] Figure 1 The diagram shown is a schematic representation of the overall structure of the aluminum alloy fire-resistant window of this utility model.

[0015] Figure 2 The diagram shown is a schematic representation of the second fireproof glass structure of the aluminum alloy fire-resistant window of this utility model.

[0016] Figure 3 The diagram shown is a schematic representation of the U-shaped sealing ring structure of the aluminum alloy fire-resistant window of this utility model.

[0017] Figure 4 The diagram shown is a schematic representation of the window frame structure of the aluminum alloy fire-resistant window of this utility model.

[0018] Explanation of reference numerals in the attached drawings: 1. First fireproof glass; 2. Window frame; 101. Second fireproof glass; 102. U-shaped snap-fit ​​plate; 103. U-shaped connecting plate; 104. U-shaped snap-fit ​​groove; 105. U-shaped sealing ring; 106. Snap-fit ​​strip; 201. Placement groove; 202. Strip-shaped snap-fit ​​groove; 203. Insertion post; 204. Insertion hole. Detailed Implementation

[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0020] Please see Figures 1-4 This utility model provides an embodiment: a heat-insulating aluminum alloy fire-resistant window, including a first fireproof glass 1 and a window frame 2; four sets of window frames 2 for disassembly and assembly are installed around the outside of the first fireproof glass 1; a second fireproof glass 101 is provided on one side of the first fireproof glass 1; a U-shaped sealing ring 105 is installed at the outer edge of the first fireproof glass 1 and the second fireproof glass 101; four sets of snap-fit ​​strips 106 are installed around the outside of the U-shaped sealing ring 105; a placement groove 201 is opened on the inner side of the window frame 2; strip-shaped snap-fit ​​grooves 202 are opened on the window frame 2 on both sides of the placement groove 201; the snap-fit ​​strips 106 drive the U-shaped sealing ring 105 to be positioned and connected to the window frame 2 along the strip-shaped snap-fit ​​grooves 202; two sets of plug-in posts 203 are installed horizontally at one end of the window frame 2; and plug-in holes 204 are opened at the end of the window frame 2 away from the plug-in posts 203 corresponding to the plug-in posts 203.

[0021] Please see Figures 2-3 In this embodiment, a U-shaped snap-fit ​​plate 102 is installed on the edge of the first fireproof glass 1 near the second fireproof glass 101. The U-shaped snap-fit ​​plate 102 drives the first fireproof glass 1 and the second fireproof glass 101 to be positioned and connected. A U-shaped connecting plate 103 is fixedly installed on the edge of the second fireproof glass 101 near the first fireproof glass 1. Fireproof material is filled into the inner side of the U-shaped connecting plate 103. A U-shaped snap-fit ​​groove 104 is provided on the U-shaped connecting plate 103. The U-shaped snap-fit ​​groove 104 facilitates the positioning and connection of the second fireproof glass 101. The U-shaped snap-fit ​​plate 102 drives the first fireproof glass 1 to be positioned and snapped with the U-shaped connecting plate 103 along the U-shaped snap-fit ​​groove 104.

[0022] Please see Figure 4 In this embodiment, the plug-in post 203 drives a set of window frames 2 to be positioned and connected to the other set of window frames 2 through the plug-in hole 204 on the other set of window frames 2. When the other set of window frames 2 is picked up, the plug-in post 203 drives a set of window frames 2 to be positioned and connected to the other set of window frames 2 through the plug-in hole 204 on the other set of window frames 2.

[0023] During operation, fireproof material is first filled into the inner side of the U-shaped connecting plate 103. Then, the U-shaped snap-fit ​​plate 102 drives the first fireproof glass 1 to be positioned and snapped into the U-shaped connecting plate 103 along the U-shaped snap-fit ​​groove 104, so that the first fireproof glass 1 and the second fireproof glass 101 are pressed and assembled. Then, a set of window frames 2 is picked up, and the edge of the first fireproof glass 1 and the second fireproof glass 101 is positioned and snapped into the window frame 2 along the placement groove 201. At the same time, the snap-fit ​​strip 106 drives the U-shaped sealing ring 105 to be positioned and connected to the window frame 2 along the strip snap-fit ​​groove 202. Finally, another set of window frames 2 is picked up, and the insertion post 203 drives a set of window frames 2 to be positioned and connected to it through the insertion hole 204 on the other set of window frames 2. The above assembly process of fireproof glass and window frame 2 is repeated to install the remaining window frames 2 in sequence. The window can then be used. After the window has been used for a period of time, it can be disassembled through the connecting parts for maintenance and upkeep.

[0024] Through the above steps, the first fireproof glass 1 is first assembled with the second fireproof glass 101 on one side, and fireproof material is filled between the two sets of fireproof glass. Then, a set of window frames 2 is assembled with the first fireproof glass 1. Then, the remaining window frames 2 are assembled in sequence. After the window has been used for a period of time, it can be disassembled through the connecting parts for maintenance and upkeep. The detachable window structure can maintain the heat insulation performance of the window, thereby effectively reducing the heat conducted through the doors and windows and improving the indoor heat insulation performance. This can reduce the frequency of air conditioning and heating use, thereby reducing environmental radiation and carbon emissions, which is beneficial to environmental protection. This solves the problem that if existing fireproof windows are not maintained and serviced in a timely manner, their heat insulation performance may decline, causing the indoor temperature to rise significantly. In order to maintain a suitable indoor temperature, air conditioning and other cooling equipment need to be used frequently, which increases energy consumption.

Claims

1. A heat-insulating aluminum alloy fire-resistant window, comprising a first fire-resistant glass (1); characterized in that: It also includes a window frame (2); four sets of window frames (2) for disassembly and assembly are installed around the outside of the first fireproof glass (1); a second fireproof glass (101) is provided on one side of the first fireproof glass (1); a U-shaped sealing ring (105) is installed at the outer edge of the first fireproof glass (1) and the second fireproof glass (101); four sets of snap-fit ​​strips (106) are installed around the outside of the U-shaped sealing ring (105); and a release is provided on the inner side of the window frame (2). The window frame (2) has a slot (201) and strip-shaped snap-fit ​​slots (202) located on both sides of the slot (201). The snap-fit ​​strip (106) drives the U-shaped sealing ring (105) to be positioned and connected to the window frame (2) along the strip-shaped snap-fit ​​slot (202). Two sets of plug-in posts (203) are installed horizontally at one end of the window frame (2). The end of the window frame (2) away from the plug-in posts (203) is provided with plug-in holes (204) corresponding to the plug-in posts (203).

2. The heat-insulating aluminum alloy fire-resistant window according to claim 1, characterized in that: A U-shaped snap-fit ​​plate (102) is installed on the edge of the first fireproof glass (1) near the second fireproof glass (101).

3. The heat-insulating aluminum alloy fire-resistant window according to claim 1, characterized in that: A U-shaped connecting plate (103) is fixedly installed on the edge of the second fireproof glass (1) near the first fireproof glass (1).

4. The heat-insulating aluminum alloy fire-resistant window according to claim 1, characterized in that: The U-shaped connecting plate (103) is provided with a U-shaped snap-fit ​​groove (104).

5. A heat-insulating aluminum alloy fire-resistant window according to claim 4, characterized in that: The U-shaped snap-fit ​​plate (102) drives the first fireproof glass (1) to be positioned and snapped with the U-shaped connecting plate (103) along the U-shaped snap-fit ​​groove (104).

6. The heat-insulating aluminum alloy fire-resistant window according to claim 1, characterized in that: The plug-in post (203) drives a set of window frames (2) to be positioned and connected to another set of window frames (2) through the plug-in hole (204).