Aluminum profile for glass shockproof aluminum alloy doors and windows
By designing and installing protective mechanisms in aluminum alloy doors and windows, including protective components and sealing components, the problem of broken glass shaking in high-rise buildings caused by glass shaking under strong winds is solved, and the effect of reducing the risk of glass breakage and enhancing airtightness is achieved.
Patent Information
- Application Number
- CN202422148054.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-03
AI Technical Summary
The aluminum alloy doors and windows used in high-rise buildings are frequently and violently shaking under the action of strong winds, resulting in excessive concentration of glass stress, which may cause cracks or cracks.
A glass shock-proof aluminum alloy door and window aluminum profile is designed, and an installation protection mechanism is adopted, including a mounting frame fixed to the inner side of the aluminum frame, and one side of the mounting frame is provided with a protective component and a sealing component. The protective component absorbs and alleviates the shaking frequency and impact force of the glass through the combination of rubber plates, air chambers, piston plates and springs, reducing the risk of glass breakage; the sealing component enhances the airtightness of the overall structure through silicone plates and contact plates to prevent external dust from entering.
It effectively reduces the risk of glass breaking due to excessive shaking, enhances the airtightness of the overall structure, avoids the entry of external dust, and improves the earthquake resistance of aluminum alloy doors and windows under strong wind conditions.
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Figure CN223034822U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum alloy door and window profiles, and particularly relates to an aluminum alloy profile for glass shock-proof aluminum alloy doors and windows. Background Technique
[0002] Aluminum alloy doors and windows refer to doors and windows made of aluminum alloy extrusion profiles as frames, mullions, and sash materials, and are simply called aluminum doors and windows. Aluminum alloy doors and windows include those with aluminum alloy as the load-bearing members (members that bear and transfer their own weight and loads) and those composite with wood or plastic, simply called aluminum-wood composite doors and windows;
[0003] As shown in the reference case "An aluminum alloy profile for glass shock-proof aluminum alloy doors and windows" with the announcement number "CN206600111U", it can reduce the possibility of the glass inlaid in the aluminum alloy doors and windows being impacted and broken, and extend its service life;
[0004] Aluminum alloy doors and windows used in high-rise buildings face some unique challenges, especially in terms of their performance in dealing with strong winds. Due to the special location of high-rise buildings, the wind force is usually greater than that on the ground, which makes the glass panels in aluminum alloy windows shake frequently and violently under the action of wind pressure, a common problem. This shaking may cause the stress points of the glass to be overly concentrated, leading to cracks or direct breakage.
[0005] Therefore, an aluminum alloy profile for glass shock-proof aluminum alloy doors and windows is proposed to solve the above problems. Summary of the Invention
[0006] The purpose of the utility model is to provide an aluminum alloy profile for glass shock-proof aluminum alloy doors and windows to solve the above problems, and improve the problems that aluminum alloy doors and windows used in high-rise buildings face some unique challenges, especially in terms of their performance in dealing with strong winds. Due to the special location of high-rise buildings, the wind force is usually greater than that on the ground, which makes the glass panels in aluminum alloy windows shake frequently and violently under the action of wind pressure, a common problem. This shaking may cause the stress points of the glass to be overly concentrated, leading to cracks or direct breakage.
[0007] The present utility model realizes the above object through the following technical solutions. An aluminum profile for a glass shock-proof aluminum alloy door and window includes: an aluminum frame, with glass fixedly installed inside the aluminum frame; an installation protection mechanism, a telescopic installation protection mechanism for protecting the glass during use is arranged inside the aluminum frame; wherein, the installation protection mechanism includes two installation frames fixedly installed inside the aluminum frame, the two installation frames are located on the upper and lower sides of the aluminum frame, one side of the installation frame is provided with a protection component, and one side of the installation frame is also provided with a sealing component. Through the protection component in the installation protection mechanism, when the glass shakes, the vibration frequency of the glass aluminum frame can be reduced, thereby preventing the glass from breaking due to excessive shaking. Through the sealing component, the airtightness of the overall structure can be enhanced to prevent external dust from entering.
[0008] Preferably, the protection component includes two rubber plates fixedly installed inside the installation frame. A plurality of air cavities are formed inside the rubber plate. One side of the rubber plate is provided with a sealing cavity, and the sealing cavity is located inside the aluminum frame. A piston plate is slidably installed inside the sealing cavity. One side of each of the plurality of air cavities is fixedly connected to the same connecting pipe, and one end of the connecting pipe communicates with the inside of the sealing cavity. The connecting pipe channel is narrow, and the air cavity is filled with gas. When the glass shakes, the rubber plate is squeezed to synchronously squeeze the plurality of air cavities. Due to the squeezing, the gas in the plurality of air cavities is forced to move into the sealing cavity through the connecting pipe, thereby pushing the piston plate to slide along the sealing cavity. This movement process effectively absorbs and alleviates the shaking frequency and impact force of the glass, reduces the direct pressure on the glass, and thus reduces the risk of glass breakage.
[0009] Preferably, the protection component further includes a spring fixedly installed on one side of the piston plate, and the other end of the spring is fixedly connected to the inner wall of the sealing cavity. When the piston plate moves due to gas pressure, the spring is compressed. This deformation allows the spring to store and release energy, thereby providing a buffering effect and reducing the direct impact of vibration. This design enables the spring to quickly push the piston plate back to its original position after the piston plate moves, ready to cope with the next vibration or impact.
[0010] Preferably, a plurality of buffer blocks are fixedly installed inside the air cavity, and the plurality of buffer blocks are all spherical. The arrangement of the plurality of spherical buffer blocks plays a role in optimizing the shock-proof effect inside the air cavity. These spherical buffer blocks can provide additional anti-impact force when the gas is compressed, increasing the overall earthquake resistance of the system.
[0011] Preferably, the sealing component includes two silica gel plates fixedly installed inside the installation frame, and the two silica gel plates are respectively located on both sides inside the installation frame. The silica gel plate has good elasticity and wear resistance, and can effectively absorb and buffer the force caused by external impact or vibration, preventing these forces from directly acting on the glass, thereby reducing the risk of glass breakage.
[0012] Preferably, contact plates are fixedly installed on one side of each of the two silica gel plates. The contact plates are L-shaped. One side of the contact plate is slidably connected to the aluminum frame. The L-shaped contact plates move under the action of an external force and cooperate with the silica gel plates to further absorb and disperse the impact force coming from outside the window.
[0013] Preferably, one side of the contact plate is provided with a rounded corner. One side of the contact plate is in contact with the glass. When the glass is placed, it can contact the glass through the rounded corner side, avoiding damage to the glass during installation.
[0014] The beneficial effects of the present utility model are as follows:
[0015] By installing the protection components in the protection mechanism, the vibration frequency of the glass aluminum frame can be reduced when the glass shakes, thereby preventing the glass from breaking due to excessive shaking. Through the sealing components, the airtightness of the overall structure can be enhanced to prevent external dust from entering;
[0016] The arrangement of multiple spherical buffer blocks plays a role in optimizing the shockproof effect in the air chamber. These spherical buffer blocks can provide additional impact resistance when the gas is compressed, increasing the overall seismic resistance of the system. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic diagram of the main structure of the present utility model;
[0018] Figure 2 is a schematic diagram of the installation protection mechanism structure of the present utility model;
[0019] Figure 3 is Figure 2 an enlarged view of A in
[0020] Figure 4 is Figure 2 an enlarged view of B in
[0021] In the figure: 1, aluminum frame; 2, glass; 3, installation protection mechanism; 31, installation frame; 32, protection components; 321, rubber plate; 322, air chamber; 323, sealing chamber; 324, connecting pipe; 325, spring; 326, piston plate; 327, buffer block; 33, sealing components; 331, contact plate; 332, silica gel plate. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] Specifically, as Figures 1-4 shown, an aluminum profile for a glass shock-proof aluminum alloy door and window includes: an aluminum frame 1, and a glass 2 is fixedly installed inside the aluminum frame 1; an installation protection mechanism 3, a telescopic installation protection mechanism 3 for protecting the glass 2 during use is arranged inside the aluminum frame 1; wherein, the installation protection mechanism 3 includes two installation frames 31 fixedly installed on the inner side of the aluminum frame 1, the two installation frames 31 are located on the upper and lower sides of the aluminum frame 1, a protection component 32 is arranged on one side of the installation frame 31, and a sealing component 33 is also arranged on one side of the installation frame 31. Through the protection component 32 in the installation protection mechanism 3, when the glass 2 shakes, the vibration frequency of the glass 2 and the aluminum frame 1 can be reduced, thereby avoiding the glass 2 from breaking due to excessive shaking. Through the sealing component 33, the airtightness of the overall structure can be enhanced to prevent external dust from entering.
[0024] As Figure 2 and Figure 3As shown, the protection component 32 includes two rubber plates 321 fixedly installed inside the installation frame 31. A plurality of air cavities 322 are formed inside the rubber plates 321. One side of the rubber plates 321 is provided with a sealing cavity 323, and the sealing cavity 323 is located inside the aluminum frame 1. A piston plate 326 is slidably installed inside the sealing cavity 323. One side of each of the plurality of air cavities 322 is fixedly connected to the same connecting pipe 324. One end of the connecting pipe 324 communicates with the inside of the sealing cavity 323. The channel of the connecting pipe 324 is narrow, and the air cavities 322 are filled with gas. When the glass 2 shakes, the rubber plates 321 are squeezed to synchronously squeeze the plurality of air cavities 322. Due to the squeezing, the gas in the plurality of air cavities 322 is forced to move into the sealing cavity 323 through the connecting pipe 324, thereby pushing the piston plate 326 to slide along the sealing cavity 323. This moving process effectively absorbs and alleviates the shaking frequency and impact force of the glass 2, reduces the direct pressure on the glass 2, and thus reduces the risk of the glass 2 breaking. The protection component 32 further includes a spring 325 fixedly installed on one side of the piston plate 326. The other end of the spring 325 is fixedly connected to the inner wall of the sealing cavity 323. When the piston plate 326 moves due to gas pressure, the spring 325 is compressed. This deformation allows the spring 325 to store and release energy, thereby providing a buffering effect and reducing the direct impact of vibration. This design enables the spring 325 to quickly push the piston plate 326 back to its original position after the piston plate 326 moves, preparing to deal with the next vibration or impact. A plurality of buffer blocks 327 are fixedly installed inside the air cavities 322. The plurality of buffer blocks 327 are all spherical in shape. The arrangement of the plurality of spherical buffer blocks 327 plays a role in optimizing the earthquake-proof effect inside the air cavities 322. These spherical buffer blocks 327 can provide additional impact resistance when the gas is compressed, increasing the overall earthquake resistance of the system.
[0025] As Figure 2 and Figure 4 shown, the sealing component 33 includes two silica gel plates 332 fixedly installed inside the installation frame 31. The two silica gel plates 332 are respectively located on both sides inside the installation frame 31. The silica gel plates 332 have good elasticity and wear resistance, and can effectively absorb and buffer the force caused by external impact or vibration, preventing these forces from directly acting on the glass 2, thereby reducing the risk of the glass 2 breaking. Contact plates 331 are fixedly installed on the adjacent sides of the two silica gel plates 332. The contact plates 331 are L-shaped. One side of the contact plates 331 is slidably connected to the aluminum frame 1. The L-shaped contact plates 331 move under the action of an external force and cooperate with the silica gel plates 332 to further absorb and disperse the impact force from outside the window. One side of the contact plates 331 is provided with a rounded corner, and one side of the contact plates 331 is in contact with the glass 2. When the glass 2 is put in, it can contact the glass 2 through the rounded corner side, avoiding damage to the glass 2 during installation.
[0026] When the present utility model is in use, when the glass 2 shakes, the rubber plate 321 is squeezed to synchronously squeeze a plurality of air chambers 322. Due to the squeezing, the gas in the plurality of air chambers 322 is forced to move into the sealing chamber 323 through the connecting pipe 324, thereby pushing the piston plate 326 to slide along the sealing chamber 323. This moving process effectively absorbs and alleviates the shaking frequency and impact force of the glass 2, reduces the direct pressure on the glass 2, and thus reduces the risk of the glass 2 breaking. When the piston plate 326 moves due to gas pressure, the spring 325 is compressed. This deformation allows the spring 325 to store and release energy, thereby providing a buffering effect and reducing the direct impact of vibration. This design enables the spring 325 to quickly push the piston plate 326 back to its original position after the piston plate 326 moves, preparing to cope with the next vibration or impact. The setting of a plurality of spherical buffer blocks 327 in the air chamber 322 plays a role in optimizing the earthquake prevention effect. These spherical buffer blocks 327 can provide additional impact resistance when the gas is compressed, increasing the overall earthquake resistance of the system. The silica gel plate 332 has good elasticity and wear resistance, and can effectively absorb and buffer the force caused by external impact or vibration, preventing these forces from directly acting on the glass 2, thereby reducing the risk of the glass 2 breaking. The L-shaped contact plate 331 moves under the action of an external force and cooperates with the silica gel plate 332 to further absorb and disperse the impact force from outside the window.
[0027] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An aluminum profile for glass shockproof aluminum alloy doors and windows, characterized in that: include: An aluminum frame (1), wherein a glass (2) is fixedly mounted on the inner side of the aluminum frame (1); A mounting protection mechanism (3), wherein the telescopic mounting protection mechanism (3) is arranged inside the aluminum frame (1) and is used to protect the glass (2) when in use; The installation protection mechanism (3) comprises two installation frames (31) fixedly installed on the inner side of the aluminum frame (1), the two installation frames (31) being located on the upper and lower sides of the aluminum frame (1), a protection component (32) being provided on one side of the installation frame (31), and a sealing component (33) being further provided on one side of the installation frame (31).
2. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 1, characterized in that: The protection component (32) comprises two rubber plates (321) fixedly mounted inside the mounting frame (31); a plurality of air cavities (322) are provided inside the rubber plates (321); a sealing cavity (323) is provided on one side of the rubber plates (321); the sealing cavity (323) is located inside the aluminum frame (1); a piston plate (326) is slidably mounted inside the sealing cavity (323); one side of the plurality of air cavities (322) is fixedly connected to the same connecting pipe (324); one end of the connecting pipe (324) is in communication with the inside of the sealing cavity (323).
3. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 2, characterized in that: The protection assembly (32) further comprises a spring (325) fixedly mounted on one side of the piston plate (326), the other end of the spring (325) being fixedly connected to the inner wall of the sealing chamber (323).
4. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 2, characterized in that: A plurality of buffer blocks (327) are fixedly installed inside the air cavity (322), and the plurality of buffer blocks (327) are all configured in a spherical shape.
5. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 1, characterized in that: The sealing assembly (33) comprises two silicone plates (332) fixedly mounted inside the installation frame (31), the two silicone plates (332) being located at two sides of the interior of the installation frame (31) respectively.
6. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 5, characterized in that: A contact plate (331) is fixedly mounted on one adjacent side of the two silicone plates (332); the contact plate (331) is arranged in an L shape; one side of the contact plate (331) is slidably connected to the aluminum frame (1).
7. The aluminum profile for glass shockproof aluminum alloy doors and windows according to claim 6, characterized in that: One side of the contact plate (331) is arranged as a rounded corner, and one side of the contact plate (331) is in contact with the glass (2).
Citation Information
Patent Citations
Shockproof type of glass aluminium alloy for al -alloy door & window
CN206600111U