Aluminum profile door and window structure of double-frame embedded glass

By using a double-frame embedded structure and a triangular upright and crossbar design, the problem of traditional door and window frames being unable to be adjusted is solved, improving sealing and deformation resistance, simplifying the assembly process, adapting to various glass thicknesses, and improving production efficiency and safety.

CN224078981UActive Publication Date: 2026-04-03FOSHAN GUANGYA CURTAIN WALL & WINDOW DOOR SYST ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional door and window frames cannot be adjusted for glass thickness during installation, and the assembly process is complex and lacks resistance to deformation.

Method used

It adopts a double-frame embedded structure, with the uprights and crossbars designed in a triangular shape. The embedded cavity is adjustable, and the limiting connecting rod is inserted into the assembly cavity and fixed by bolts to achieve rapid positioning.

Benefits of technology

It improves sealing and deformation resistance, simplifies the assembly process, reduces installation deviation and loosening risk, adapts to different glass thicknesses, and enhances production efficiency and safety.

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Abstract

The utility model provides a double-frame embedded glass aluminum profile door and window structure, which relates to the technical field of door and window structures, and comprises a frame, the frame comprises a vertical rod and a cross rod, one surface of the vertical rod and one surface of the cross rod are respectively provided with an embedded cavity, a glass layer is embedded in each embedded cavity, and the top end and the bottom end of the vertical rod are respectively provided with a diagonal connecting end. The two ends of the transverse rod are provided with connecting ends respectively, the diagonal connecting ends and the connecting ends are triangular and are matched with each other, an assembly cavity penetrates through the top end of the vertical rod, a limiting connecting rod is welded to one end of each connecting end, the glass is installed in the frame in an embedded mode, and better sealing performance can be provided; the width of the embedded cavity can be adjusted at will, so that the door and window frame can be adjusted according to the thicknesses of different pieces of glass, the structures of the two ends of the vertical rods and the transverse rods are triangular, the overall stability and deformation resistance of the frame can be improved, meanwhile, the acting points of external force can be dispersed, and firmer support is provided.
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Description

Technical Field

[0001] This utility model relates to the field of door and window structure technology, and in particular to an aluminum profile door and window structure with double-framed embedded glass. Background Technology

[0002] The aluminum profile door and window structure for glass consists of a frame made up of multiple vertical and horizontal bars, and uses aluminum alloy profiles as the frame material. It has the advantages of being lightweight, corrosion-resistant, and high-strength, and it fixes and protects the glass while achieving functions such as sealing, sound insulation, and waterproofing.

[0003] According to patent publication number CN210049769U, an aluminum profile structure for doors and windows includes an outer frame, an inner frame, and a sealing body. The outer frame is a C-shaped structure with an open top, and the inner frame is fitted inside the outer frame. The inner frame is a C-shaped structure with an open bottom. The middle of the inner frame is recessed to form a mounting groove. Mounting holes are respectively provided at the bottom and corresponding positions on both sides of the mounting groove. A sealing body is installed inside the outer frame. The sealing body includes a fixing seat and an E-shaped traction body. The traction body is arranged between the inner frame and the outer frame. The vertical column of the traction body passes through the mounting hole of the inner frame. This aluminum profile structure for doors and windows integrates the sealing body inside the profile of the track. When the door and window are closed, the sealing body can seal the gap between the door / window and the track profile, improve the sealing performance of the sliding position, and reduce temperature loss and dust ingress.

[0004] The above describes aluminum profile doors and windows. Traditional door and window frames usually have fixed spacing, which is not very flexible. They cannot be adjusted according to the thickness of the glass and require custom-made matching frames. In addition, most traditional door and window frames use simple straight-line structures, which lack the ability to resist deformation. At the same time, the assembly process of the frame is relatively complicated, and problems such as improper installation or loose connection are easy to occur when installing manually. Utility Model Content

[0005] The purpose of this utility model is to solve the technical problems in the existing technology that traditional door and window frames cannot be adjusted and installed according to the thickness of the glass, and the assembly process of the frame is relatively complicated. Therefore, a double-frame embedded glass aluminum profile door and window structure is proposed.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: an aluminum profile door and window structure with double-framed embedded glass, comprising a frame, the frame comprising uprights and horizontal bars, each of the uprights and horizontal bars having an embedded cavity on one side, the embedded cavity containing a glass layer, the top and bottom of the uprights having diagonal connecting ends, the two ends of the horizontal bars having joint ends, both the diagonal connecting ends and the joint ends being triangular and cooperating with each other, the top of the uprights having a through-hole assembly cavity, and one end of the joint end being welded with a limiting connecting rod.

[0007] As can be seen, in the above technical solution, the glass is installed inside the frame by embedding, which can provide better sealing. The width of the embedded cavity can be adjusted at will, so that the door and window frame can be adjusted according to the thickness of different glass. The structures at both ends of the uprights and crossbars are triangular. The triangular shape helps to improve the overall stability and deformation resistance of the frame, while also dispersing the point of application of external forces and providing more robust support.

[0008] Preferably, the uprights are located on both sides of the crossbars, and the crossbars are located at the top and bottom of the uprights respectively. The embedded cavities at the uprights are opened on the side of the uprights, and the embedded cavities at the crossbars are opened on the bottom surface of the top crossbar and the top surface of the bottom crossbar respectively.

[0009] As can be seen, in the above technical solution, multiple uprights and crossbars form an inner frame and an outer frame structure, and the spacing between the inner frame and the outer frame can be adjusted according to the required thickness of the glass layer to be installed, and the size of the embedded cavity can be adjusted to meet the installation requirements.

[0010] Preferably, the positions of the uprights and the crossbars are perpendicular to each other, and the assembled shape of the uprights and crossbars is rectangular.

[0011] As can be seen, in the above technical solution, the structure of the frame assembled from the uprights and crossbars is rectangular, and the perpendicular installation of the uprights and crossbars allows for a tight connection between the diagonal connecting parts.

[0012] Preferably, both the limiting link and the assembly cavity are L-shaped, and the limiting link and the assembly cavity are interlocked.

[0013] As can be seen, in the above technical solution, the two can be quickly positioned after being aligned and plugged in, making the frame assembly process simpler, faster and more accurate.

[0014] Preferably, the crossbar has a fixing threaded hole on its front side, and the fixing threaded hole is located near both ends of the crossbar.

[0015] As can be seen, in the above technical solution, the distance between the horizontal bars on the front frame and the rear frame is fixed by means of bolts or screws, and then assembled with the uprights, so that personnel can quickly limit the position of the uprights and horizontal bars, which facilitates subsequent operations.

[0016] Beneficial effects

[0017] In this invention, the glass is installed inside the frame using an embedded method, providing better sealing and preventing the penetration of air and moisture. This avoids the loosening problems that may occur with traditional installation methods. The width of the embedded cavities in the uprights and crossbars can be adjusted at will, allowing the door and window frame to be adjusted according to different glass thicknesses. This flexible adjustment method allows glass of different thicknesses to be embedded in the same frame, accommodating various types of glass and avoiding the need to redesign or manufacture different frames due to differences in glass thickness. Both ends of the uprights are triangular, and the triangular shape helps to improve the overall stability and deformation resistance of the frame. At the same time, it can disperse the point of application of external forces, providing more robust support and improving the safety of doors and windows. The L-shaped assembly cavity inside the uprights, together with the L-shaped limiting connecting rod on the crossbars, can achieve quick positioning after alignment and insertion. This makes the frame assembly process simpler, faster, and more precise, reducing the complexity of manual operation, improving production efficiency, ensuring a stable connection between the crossbars and uprights, and reducing the risk of deviation or loosening during installation. Attached Figure Description

[0018] Figure 1 This is an exploded view of the present invention;

[0019] Figure 2 This is a schematic diagram of the overall design of this utility model;

[0020] Figure 3 This is a side view of the present invention;

[0021] Figure 4 This is a structural diagram of the upright pole of this utility model;

[0022] Figure 5 This is a structural diagram of the crossbar of this utility model.

[0023] Reference numerals: 1. Frame; 11. Upright; 111. Diagonal connection end; 112. Assembly cavity; 12. Crossbar; 121. Joint end; 122. Limiting link; 123. Fixing threaded hole; 13. Embedded cavity; 2. Glass layer. Detailed Implementation

[0024] To make the technical means, creative features, and achieved objectives and effects of this utility model easier to understand, the present utility model is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this utility model and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described in the implementation plan without creative effort are all within the protection scope of this utility model.

[0025] The specific embodiments of this utility model are described below with reference to the accompanying drawings. Specific implementation examples:

[0027] Reference Figure 1-5 A double-framed aluminum profile door and window structure with embedded glass includes a frame 1. The frame 1 includes uprights 11 and horizontal bars 12. The uprights 11 and horizontal bars 12 are perpendicular to each other, and the assembled shape of the uprights 11 and horizontal bars 12 is rectangular. The frame 1 is the overall structure of the door and window frame. The frame 1 is composed of multiple sets of uprights 11 and horizontal bars 12. The horizontal bars 12 and uprights 11 form the skeleton of the frame 1. Aluminum alloy profiles are used as the skeleton material, which has the advantages of being lightweight, corrosion-resistant, and high-strength. The uprights 11 and horizontal bars 12 are assembled to form a double-frame structure, and both are made of aluminum alloy profiles. Made of aluminum alloy profiles, the double frame consists of an outer frame and an inner frame. Installing the glass between the outer and inner frames provides stronger support for the glass, while also improving the support and sealing performance of the doors and windows. Each of the uprights 11 and horizontal bars 12 has an embedded cavity 13 on one side, within which a glass layer 2 is embedded. The uprights 11 are located on both sides of the horizontal bars 12, with the horizontal bars 12 located at the top and bottom of the uprights 11 respectively. The embedded cavities 13 at the uprights 11 are located on the sides of the uprights 11, and the embedded cavities 13 at the horizontal bars 12 are located on the bottom and bottom surfaces of the top horizontal bars 12 respectively. On the top surface of the end crossbar 12, there are two sets of uprights 11 on one side and two sets of uprights 11 on the other side. Similarly, the number of crossbars 12 at the top and bottom is the same as the number of uprights 11. The uprights 11 and crossbars 12 are assembled to form the overall structure of the frame 1, thus forming the inner frame and outer frame. Both the uprights 11 and crossbars 12 have embedded cavities 13. The width of the embedded cavity 13 can be adjusted according to the required thickness of the glass layer 2 to ensure that the glass layer 2 can be clamped and installed by the corresponding crossbars 12 and uprights 11, so that the frame 1... It is flexible and can be fixed to the frame 1 and glass layer 2 by means of bolts, sealant, sealing strips, etc. after installation. This method reduces the exposed part of the glass, which helps to improve the overall strength, heat insulation and waterproofing of the doors and windows. The flexible adjustment method allows glass of different thicknesses to be embedded between the front frame and the rear frame composed of the uprights 11 and the crossbars 12. It can adapt to a variety of glass types and meet customized needs. It avoids the need to redesign and produce different frames 1 due to differences in glass thickness. This not only improves production efficiency, but also reduces inventory needs and waste.

[0028] The top and bottom of the upright 11 are respectively provided with diagonal connecting ends 111, and the two ends of the horizontal bar 12 are respectively provided with joining ends 121. Both the diagonal connecting ends 111 and the joining ends 121 are triangular and cooperate with each other. The two ends of the upright 11 are diagonal connecting ends 111, and the two ends of the horizontal bar 12 are joining ends 121. Both the diagonal connecting ends 111 and the joining ends 121 are triangular. After they are aligned and installed, they form a rectangle. The design is triangular. The geometric shape helps to improve the overall stability and deformation resistance of the frame 1. The triangular structure can disperse the points of external force, provide more reinforcement, and increase the support of the frame 1. It reduces the deformation of the frame 1 caused by external pressure or temperature difference changes during long-term use, and improves the service life and safety of the doors and windows.

[0029] The top of the upright 11 has a through-hole 112. A limiting link 122 is welded to one end of the connecting end 121. Both the limiting link 122 and the assembly cavity 112 are L-shaped, and the limiting link 122 and the assembly cavity 112 are interlocked. A fixing threaded hole 123 is provided on the front of the crossbar 12, located near both ends of the crossbar 12. The interior of the upright 11 includes the assembly cavity 112. The bottom of the connecting end 121 of the crossbar 12 is fixed with the limiting link 122. Both the assembly cavity 112 and the limiting link 122 are L-shaped and cooperate with each other. When assembling the frame 1, only the distance between the two uprights 11 on one side needs to be adjusted so that the width of the embedded cavity 13 meets the installation requirements of the glass layer 2. At this time, the limiting link 122 on the crossbar 12 is aligned with the assembly cavity 112 and interlocked. The crossbar 12 is assembled within the cavity 112. Bolts, nuts, or other components are then used to connect to the threaded holes 123 through the crossbar 12, thus fixing its position. Since the limiting link 122 is inserted into the cavity 112, the upright 11 cannot move once the crossbar 12 is fixed, thus establishing the frame 1. Finally, the frame 1 can be reinforced as needed. Alignment between the two allows for rapid positioning, simplifying the connection process between the upright 11 and the crossbar 12. This makes the construction of the frame 1 more efficient, and the assembly process simpler, faster, and more precise, reducing the complexity of manual operations and improving production efficiency. Furthermore, the precise positioning of the limiting link 122 ensures that the crossbar 12 can connect to the support of the upright 11, reducing the risk of deviation or loosening during installation.

[0030] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A double-framed aluminum profile door and window structure with embedded glass, comprising a frame (1), characterized in that: The frame (1) includes an upright (11) and a crossbar (12). One side of the upright (11) and the crossbar (12) is provided with an embedded cavity (13). A glass layer (2) is embedded in the embedded cavity (13). The top and bottom ends of the upright (11) are respectively provided with diagonal connecting ends (111). The two ends of the crossbar (12) are respectively provided with joint ends (121). The diagonal connecting ends (111) and the joint ends (121) are both triangular and cooperate with each other. The top end of the upright (11) has a through-hole assembly cavity (112). One end of the joint end (121) is welded with a limit connecting rod (122).

2. The aluminum profile door and window structure with double-framed embedded glass according to claim 1, characterized in that: The upright (11) is located on both sides of the horizontal bar (12), and the horizontal bar (12) is located at the top and bottom of the upright (11), and the embedded cavity (13) at the upright (11) is opened on the side of the upright (11), and the embedded cavity (13) at the horizontal bar (12) is opened on the bottom surface of the top horizontal bar (12) and the top surface of the bottom horizontal bar (12).

3. The aluminum profile door and window structure with double-framed embedded glass according to claim 1, characterized in that: The positions of the upright (11) and the crossbar (12) are perpendicular to each other, and the shape of the upright (11) and the crossbar (12) after assembly is rectangular.

4. The aluminum profile door and window structure with double-framed embedded glass according to claim 2, characterized in that: The limiting link (122) and the assembly cavity (112) are both L-shaped, and the limiting link (122) and the assembly cavity (112) are interlocked.

5. The aluminum profile door and window structure with double-framed embedded glass according to claim 1, characterized in that: The crossbar (12) has a fixed threaded hole (123) on its front side, and the fixed threaded hole (123) is located near both ends of the crossbar (12).

Citation Information

Patent Citations

  • Aluminum profile structure for doors and windows

    CN210049769U