Aluminum alloy glass skylight

By setting a storage groove on the top of the aluminum alloy window frame and filling the adhesive material, the adaptation of the aluminum alloy glass sunroof to multiple thickness glass is achieved, solving the problem of insufficient versatility in the prior art, and improving the fixed strength and sealing performance.

CN223293269UActive Publication Date: 2025-09-02HYMETAL BUILDING COMPONENTS (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202422654082.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-09-02
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

The existing glass sunroof installation structure is poorly versatile and cannot be adapted to glass of multiple thicknesses, resulting in the need to remade cover plates and window frame molds, which is time-consuming and labor-intensive.

Method used

Accumulation groove is set on the top of the aluminum alloy window frame to fill the adhesive material, and the glass plate is directly bonded to the adhesive material, and is fixed with the aluminum alloy window frame through the adhesive material, combined with the annular design and sealant strips, the adaptation of multi-thickness glass is achieved.

Benefits of technology

It improves the versatility of the glass sunroof, reduces the direct contact between the glass and the window frame, avoids fixed position peeling caused by bumps and differences in thermal expansion coefficients, and ensures fixed strength and sealing performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an aluminum alloy glass skylight and belongs to the technical field of roof horizontal skylights. The problems that an existing glass skylight installation structure is poor in universality and cannot adapt to glass of various thicknesses are solved. According to the glass skylight, the containing groove is formed in the top of the aluminum alloy window frame, the containing groove is filled with the bonding material, the whole containing groove is filled with the bonding material, the glass plate is directly attached to the bonding material and is directly bonded with the bonding material to be fixed, and therefore the glass skylight can be matched with glass of various thicknesses to be installed; and the universality is greatly improved. The glass plate is in contact with the bonding material, and a distance is formed between the glass plate and the aluminum alloy frame under the blocking of the bonding material, so that contact between the glass plate and the rigid aluminum alloy window frame can be effectively reduced, collision is avoided, and meanwhile, stripping of a fixed position caused by different thermal expansion coefficients of different materials can be reduced; and the fixing strength and the stability can also be ensured while the universality is ensured.
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Description

Technical Field

[0001] The utility model belongs to the technical field of horizontal roof skylights and relates to a roof skylight, in particular to an aluminum alloy glass skylight. Background Art

[0002] Existing roof glass skylights are horizontal, outward-opening windows. Currently, commercially available roof glass skylights are essentially composed of three main components: a cover plate, glass, and a window frame. The glass is pressed against the window frame and secured with the cover plate. The window frame and cover plate clamp the glass together, securing it. A sealing gasket is then used to provide a waterproof seal between the glass, the window frame, and the cover plate. Existing glass skylight frames and cover plates are typically only compatible with glass of a certain thickness. To accommodate glass of a different thickness, the cover plate and window frame molds must be remade, which is time-consuming and labor-intensive, and does not fully meet user needs. Utility Model Content

[0003] In view of the shortcomings of the existing technology, the utility model provides an aluminum alloy glass skylight, which solves the technical problem that the installation structure of the existing glass skylight has poor versatility and cannot be adapted to glass of various thicknesses.

[0004] In order to achieve the above purpose, the technical solution adopted by the utility model is:

[0005] An aluminum alloy glass skylight comprises an aluminum alloy window frame and a glass plate, characterized in that the top of the aluminum alloy window frame has a receiving groove, the inner side of the receiving groove is filled with an adhesive material, the upper end portion of the adhesive material protrudes outside the notch of the receiving groove, the glass plate rests on the adhesive material and is bonded to the aluminum alloy window frame through the adhesive material, and there is a distance between the glass plate and the aluminum alloy window frame.

[0006] The aluminum alloy window frame of the present application has a receiving groove on its top, and the receiving groove is filled with adhesive material. The adhesive material as a whole overflows the receiving groove. The glass plate is directly attached to the adhesive material and directly bonded to the adhesive material to form a fixed structure, so that the glass skylight can be adapted to install glass of various thicknesses, and its versatility is greatly improved.

[0007] The glass plate is in contact with the adhesive material, and a distance is formed between the glass plate and the aluminum alloy frame under the barrier of the adhesive material. This can effectively reduce the contact between the glass plate and the rigid aluminum alloy window frame to avoid bumps, and at the same time reduce the peeling of the fixed position caused by the different thermal expansion coefficients of different materials. While ensuring versatility, the fixing strength and stability can also be guaranteed.

[0008] In the above-mentioned aluminum alloy glass skylight, the receiving groove is an annular structure and surrounds the top of the aluminum alloy window frame in a circle.

[0009] The receiving groove of the present application surrounds the top of the aluminum alloy frame, so that the adhesive material is also filled to form a circle. When the glass plate is pressed against the adhesive material, a seal is directly formed by the adhesive material. No matter how thick the glass is, it can be directly fixed to the aluminum alloy window frame by the adhesive material. This design further improves the versatility while ensuring the sealing performance.

[0010] In the above-mentioned aluminum alloy glass skylight, an annular portion protrudes upward from the top inner edge of the aluminum alloy window frame, and the annular portion and the top surface of the aluminum alloy window frame surround the above-mentioned receiving groove, which is located at the top outer edge of the aluminum alloy window frame and is open.

[0011] The outer wall of the receiving groove of the present application is in an open state, that is, an annular portion protrudes from the inner side of the top of the aluminum alloy frame to form a one-sided barrier. The open state of the outer side is very convenient for filling with adhesive materials and repairing the outer side of the window frame and the outer side of the adhesive material, which facilitates installation while ensuring versatility.

[0012] In the above-mentioned aluminum alloy glass skylight, an annular retaining edge protrudes from the side of the annular portion located on one side of the accommodating groove.

[0013] An annular retaining edge protrudes from the inner side of the annular portion of the present application. The annular retaining edge protrudes inward and can effectively contact the adhesive material in the accommodating groove, increasing the contact area with the adhesive material. The annular retaining edge can even be partially embedded in the adhesive material, increasing the bonding strength between the adhesive material and the aluminum alloy window frame. At the same time, the presence of the annular retaining edge can improve certain waterproof and anti-cracking properties.

[0014] In the above-mentioned aluminum alloy glass skylight, the adhesive material includes structural adhesive and double-sided tape, and the structural adhesive and double-sided tape are arranged side by side in the width direction of the receiving groove and the thickness of the structural adhesive and the double-sided tape are similar.

[0015] The adhesive materials of the present application include structural adhesive and double-sided tape. During assembly, the double-sided tape is first pasted inside the receiving groove, and then the glass plate is pressed against the double-sided tape to form a preliminary bonding and sealing fixation. Then, the structural adhesive is further filled into the receiving groove. When the structural adhesive is completely dry, a very strong fixing relationship can be formed. This installation method allows the glass thickness of the glass skylight of the present glass to be switched according to needs, and it has excellent versatility. The structural strength and sealing performance of the glass skylight after installation can be guaranteed.

[0016] In the above-mentioned aluminum alloy glass skylight, the double-sided tape is located on the side close to the groove wall of the accommodating groove, and one side of the double-sided tape is in contact with the groove wall.

[0017] The double-sided tape of the present application is located on the side of the receiving groove close to the groove wall, that is, the inner edge of the aluminum alloy window frame, and the structural adhesive is on the outside. This design allows the structural adhesive to be sealed after the glass plate is pressed onto the double-sided tape. This makes installation convenient and versatility further improved.

[0018] In the above-mentioned aluminum alloy glass skylight, a sealing strip is laid at the inner notch of the receiving groove, and the sealing strip surrounds the inner notch of the receiving groove. When the glass plate rests on the adhesive material, the sealing strip can form a seal between the glass plate and the aluminum alloy window frame.

[0019] The receiving groove of the present application is provided with a sealing strip at the inner notch position. When the glass plate is pressed against the adhesive material, the glass plate itself squeezes the sealing strip to further form a seal on the inside. This design can not only better block heat conduction, but also improve the sealing performance.

[0020] In the above-mentioned aluminum alloy glass skylight, the aluminum alloy window frame includes an outer frame profile and an inner frame profile. The outer frame profile and the inner frame profile are split structures. The outer frame profile is mounted on the outside of the inner frame profile and there is a partition ring cavity between the outer frame profile and the inner frame profile.

[0021] This application has also upgraded the aluminum alloy window frame, dividing the aluminum alloy window frame into two parts: an outer frame profile and an inner frame profile. The outer frame profile is exposed to the outside world, while the inner frame profile is in contact with the interior. The two profiles are separated by a partition ring cavity. This design can greatly reduce heat conduction and effectively reduce indoor energy consumption.

[0022] In the above-mentioned aluminum alloy glass skylight, a heat insulation strip is provided between the outer frame profile and the inner frame profile and located inside the partition ring cavity, and both ends of the heat insulation strip are respectively clamped and fixed to the outer frame profile and the inner frame profile.

[0023] The present application also provides a heat-insulating strip inside the blocking ring cavity, which connects the inner frame profile and the outer frame profile while also preventing heat conduction between the two, and is highly practical.

[0024] In the above-mentioned aluminum alloy glass skylight, the material of the thermal insulation strip is nylon, and at least two thermal insulation strips are arranged on the inner side of the partition ring cavity. The at least two thermal insulation strips surround the partition ring cavity to form a closed structure.

[0025] The material of the heat insulation strip of the present application is preferably nylon, which has good heat insulation effect and strong toughness, and has high strength in connecting the inner and outer frames.

[0026] Beneficial effects of the utility model:

[0027] 1. The aluminum alloy window frame of the present application has a receiving groove on its top, and the receiving groove is filled with adhesive material. The adhesive material as a whole overflows the receiving groove. The glass plate is directly attached to the adhesive material and directly bonded to the adhesive material to form a fixed structure, so that the glass skylight can be adapted to install glass of various thicknesses, and its versatility is greatly improved.

[0028] 2. The glass plate is in contact with the adhesive material, and a distance is formed between the glass plate and the aluminum alloy frame under the barrier of the adhesive material. This can effectively reduce the contact between the glass plate and the rigid aluminum alloy window frame to avoid bumps, and at the same time reduce the peeling of the fixed position caused by the different thermal expansion coefficients of different materials. While ensuring versatility, the fixing strength and stability can also be guaranteed. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a partial structural diagram of the utility model.

[0030] In the figure: 1. Aluminum alloy window frame; 11. Outer frame profile; 12. Outer frame profile; 13. Receiving groove; 14. Annular portion; 15. Annular portion; 16. Partition ring cavity; 2. Aluminum alloy window frame; 3. Adhesive material; 31. Partition ring cavity; 32. Double-sided tape; 4. Sealing strip; 5. Insulation strip. DETAILED DESCRIPTION

[0031] Example 1

[0032] like Figure 1 An aluminum alloy glass skylight is shown, comprising an aluminum alloy window frame 1 and a glass plate 2. The length and width of the glass plate 2 are substantially identical to the outer surface of the aluminum alloy window frame 1. This creates a frameless glass skylight with an aesthetically pleasing appearance after installation. The top of the aluminum alloy window frame 1 has a receiving groove 13 filled with adhesive 3. The upper end of the adhesive 3 protrudes beyond the notch of the receiving groove 13. The glass plate 2 rests against the adhesive 3 and is bonded to the aluminum alloy window frame 1 via the adhesive 3, with a gap between the glass plate 2 and the aluminum alloy window frame 1. The aluminum alloy window frame 1 of the present application has a receiving groove 13 formed on its top. The receiving groove 13 is filled with adhesive 3, which overflows the receiving groove 13. The glass plate 2 rests directly against and is bonded to the adhesive 3, making it suitable for installing glass of various thicknesses, significantly improving its versatility. The glass plate 2 is in contact with the adhesive material 3, and a distance is formed between the glass plate 2 and the aluminum alloy frame under the barrier of the adhesive material 3. This can effectively reduce the contact between the glass plate 2 and the rigid aluminum alloy window frame 1 to avoid bumps, and at the same time reduce the peeling of the fixed position caused by the different thermal expansion coefficients of different materials. While ensuring versatility, the fixing strength and stability can also be guaranteed.

[0033] Furthermore, the receiving groove 13 is an annular structure and surrounds the top of the aluminum alloy window frame 1. The receiving groove 13 of the present application surrounds the top of the aluminum alloy frame in a circle, so that the adhesive material 3 is also filled to form a circle. When the glass plate 2 is pressed against the adhesive material 3, a seal is directly formed by the adhesive material 3, and no matter how thick the glass is, it can be directly fixed to the aluminum alloy window frame 1 by the adhesive material 3. This design further improves the versatility while ensuring the sealing performance. As one of the implementation methods of the receiving groove 13 of this embodiment, in this embodiment, an annular portion 14 protrudes upward at the inner edge of the top of the aluminum alloy window frame 1. The annular portion 14 and the top surface of the aluminum alloy window frame 1 surround and form the above-mentioned receiving groove 13. The receiving groove 13 is located at the outer edge of the top of the aluminum alloy window frame 1 and is open. The outer wall of the receiving groove 13 of the present application is in an open state, that is, an annular portion 14 protrudes from the inner side of the top of the aluminum alloy frame to form a one-sided barrier. Such an open state on the outer side is very convenient for filling the adhesive material 3 and repairing the outer side of the window frame and the outer side of the adhesive material 3, which facilitates installation while ensuring versatility. As a further improvement scheme, an annular retaining edge 15 protrudes from the side of the annular portion 14 on one side of the receiving groove 13. The annular retaining edge 15 protrudes from the inner side of the annular portion 14 of the present application. The annular retaining edge 15 protrudes inward and can effectively contact the adhesive material 3 in the receiving groove 13, increasing the contact area with the adhesive material 3. The annular retaining edge 15 can even be partially embedded in the adhesive material 3, increasing the bonding strength between the adhesive material 3 and the aluminum alloy window frame 1. At the same time, the presence of the annular retaining edge 15 can improve certain waterproof and anti-cracking properties.

[0034] Furthermore, the specific implementation of the adhesive material 3 of the present application includes but is not limited to structural adhesive 31 and double-sided adhesive tape 32. The structural adhesive 31 and double-sided adhesive tape 32 are arranged side by side in the width direction of the receiving groove 13, and the thickness of the structural adhesive 31 and double-sided adhesive tape 32 are similar. The adhesive material 3 of the present application includes structural adhesive 31 and double-sided adhesive tape 32. During assembly, the double-sided adhesive tape 32 is first glued to the inside of the receiving groove 13, and then the glass plate 2 is pressed against the glue of the double-sided adhesive tape 32 to form a preliminary bonding and sealing fixation. Subsequently, the structural adhesive 31 is further filled into the receiving groove 13. When the structural adhesive 31 is completely dry, a very strong fixing relationship is formed. This installation method allows the glass thickness of the glass skylight of the present glass skylight to be switched according to demand, and has excellent versatility. The structural strength and sealing performance of the glass skylight after installation can be guaranteed.

[0035] Furthermore, the double-sided tape 32 is located on the side of the receiving groove 13 where the groove wall is located, and one side of the double-sided tape 32 is in contact with the groove wall. In the present application, the double-sided tape 32 is located on the side of the receiving groove 13 close to the groove wall, that is, on the inner edge of the aluminum alloy window frame 1, while the structural adhesive 31 is located on the outside. This design allows the structural adhesive 31 to be sealed after the glass plate 2 is press-fitted onto the double-sided tape 32, which further improves installation convenience and versatility.

[0036] Furthermore, a sealing strip 4 is provided at the inner notch of the receiving groove 13. The sealing strip 4 surrounds the inner notch of the receiving groove 13 and forms a seal between the glass plate 2 and the aluminum alloy window frame 1 when the glass plate 2 rests against the adhesive material 3. The receiving groove 13 of the present application has a sealing strip 4 provided at the inner notch position. When the glass plate 2 rests against the adhesive material 3, the glass plate 2 squeezes the sealing strip 4 to further form a seal on the inside. This design can effectively block heat conduction and improve sealing performance.

[0037] Furthermore, the aluminum alloy window frame 1 includes an outer frame profile 11 and an inner frame profile 12. The outer frame profile 11 and the inner frame profile 12 are split structures. The outer frame profile 11 is mounted on the outside of the inner frame profile 12, and a partition ring cavity 16 is provided between the outer frame profile 11 and the inner frame profile 12. The present application also upgrades the aluminum alloy window frame 1 by separating the aluminum alloy window frame 1 into two parts, the outer frame profile 11 and the inner frame profile 12. The outer frame profile 11 is exposed to the outside world, while the inner frame profile 12 is in contact with the interior of the room. The two profiles are separated by the partition ring cavity 16. This design can effectively reduce heat conduction and reduce indoor energy consumption.

[0038] Furthermore, a heat-insulating strip 5 is provided on the inner side of the partition ring cavity 16 between the outer frame profile 11 and the inner frame profile 12, and the two ends of the heat-insulating strip 5 are respectively fixed to the outer frame profile 11 and the inner frame profile 12. The present application also provides a heat-insulating strip 5 inside the blocking ring cavity. The heat-insulating strip 5 connects the inner frame profile 12 and the outer frame profile 11 while also avoiding heat conduction between the two, and is highly practical. The material of the heat-insulating strip 5 is nylon, and at least two heat-insulating strips 5 are provided on the inner side of the partition ring cavity 16. The at least two heat-insulating strips 5 surround the partition ring cavity 16 to form a closed structure. The material of the heat-insulating strip 5 of the present application is preferably nylon. Such a material has good heat-insulating effect and strong toughness, and has high strength in connecting the inner and outer frames.

[0039] Example 2

[0040] This is another embodiment of the adhesive material 3 of the present application. The other structures in this embodiment are basically the same as those in Example 1. The difference is that the adhesive material 3 in this embodiment is a combination of any two of organic silicone material, polyurethane adhesive, and epoxy resin adhesive, and is filled in the receiving groove 13 between the glass plate 2 and the aluminum alloy window frame 1 twice. This design can achieve a technical effect similar to that of Example 1.

[0041] In the description of the present invention, it should be noted that the terms "center", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present invention. At the same time, the basic principles, main features and advantages of the present invention are shown and described above, which should be understood by technicians in this industry.

Claims

1. An aluminum alloy glass skylight, comprising an aluminum alloy window frame (1) and a glass plate (2), characterized in that: The top of the aluminum alloy window frame (1) is provided with a receiving groove (13), the inside of the receiving groove (13) is filled with an adhesive material (3), the upper end portion of the adhesive material (3) protrudes outside the notch of the receiving groove (13), the glass plate (2) abuts against the adhesive material (3) and the glass plate (2) is bonded to the aluminum alloy window frame (1) through the adhesive material (3), and there is a distance between the glass plate (2) and the aluminum alloy window frame (1).

2. The aluminum alloy glass skylight according to claim 1, characterized in that: The receiving groove (13) is an annular structure and surrounds the top of the aluminum alloy window frame (1) in a circle.

3. The aluminum alloy glass skylight according to claim 2, characterized in that: An annular portion (14) protrudes upward from the inner edge of the top of the aluminum alloy window frame (1), and the annular portion (14) and the top surface of the aluminum alloy window frame (1) surround and form the above-mentioned receiving groove (13). The receiving groove (13) is located at the outer edge of the top of the aluminum alloy window frame (1) and is open.

4. The aluminum alloy glass skylight according to claim 3, characterized in that: An annular retaining edge (15) is protruded from the side of the annular portion (14) located on one side of the accommodating groove (13).

5. The aluminum alloy glass skylight according to any one of claims 1 to 4, characterized in that: The adhesive material (3) comprises a structural adhesive (31) and a double-sided tape (32), wherein the structural adhesive (31) and the double-sided tape (32) are arranged side by side in the width direction of the receiving groove (13), and the thicknesses of the structural adhesive (31) and the double-sided tape (32) are similar.

6. The aluminum alloy glass skylight according to claim 5, characterized in that: The double-sided tape (32) is located on the side close to the groove wall of the accommodating groove (13), and one side of the double-sided tape (32) is in contact with the groove wall.

7. The aluminum alloy glass skylight according to any one of claims 1 to 4, characterized in that: A sealing strip (4) is laid at the inner notch of the receiving groove (13), the sealing strip (4) surrounds the inner notch of the receiving groove (13), and when the glass plate (2) abuts against the adhesive material (3), the sealing strip (4) can form a seal between the glass plate (2) and the aluminum alloy window frame (1).

8. The aluminum alloy glass skylight according to any one of claims 1 to 4, characterized in that: The aluminum alloy window frame (1) comprises an outer frame profile (11) and an inner frame profile (12); the outer frame profile (11) and the inner frame profile (12) are of a split structure; the outer frame profile (11) is sleeved on the outer side of the inner frame profile (12); and a partition ring cavity (16) is provided between the outer frame profile (11) and the inner frame profile (12).

9. The aluminum alloy glass skylight according to claim 8, characterized in that: A heat insulation strip (5) is provided between the outer frame profile (11) and the inner frame profile (12) and located inside the partition ring cavity (16). Both ends of the heat insulation strip (5) are respectively clamped and fixed to the outer frame profile (11) and the inner frame profile (12).

10. The aluminum alloy glass skylight according to claim 9, characterized in that: The material of the heat insulation strip (5) is nylon, and at least two heat insulation strips (5) are arranged inside the partition ring cavity (16). The at least two heat insulation strips (5) surround the partition ring cavity (16) to form a closed structure.