Aluminum alloy energy-saving window with good heat insulation effect

By designing sealing components in aluminum alloy doors and windows, the problem of inconvenient injecting inert gas is solved, convenient injection and sealing of inert gas is achieved, and thermal insulation performance and thermal insulation effect are improved.

CN223062296UActive Publication Date: 2025-07-04JIANGXI TIANCUI TECH CO LTD
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Patent Information

Application Number
CN202422322645.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2025-07-04
Estimated Expiration
2034-09-24

AI Technical Summary

Technical Problem

Existing aluminum alloy doors and windows are inconvenient to operate when injecting inert gas, resulting in an increase in workload and affecting the improvement of thermal insulation performance.

Method used

Seal components are designed, including sliding sleeves, sealing gaskets, sliders and tie rods. Through the cooperation of the slide grooves and slide rods, convenient injection and sealing of inert gas is achieved to avoid leakage.

Benefits of technology

It realizes convenient and repetitive injection of inert gas, improves heat insulation performance, reduces heat transfer, and enhances the insulation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The aluminum alloy energy-saving window with the good heat insulation effect comprises a frame body and double-layer tempered glass, and a cavity is formed in the middle of the interior of the double-layer tempered glass. Partition plates are symmetrically installed in the cavity, sliding grooves are symmetrically formed in one side of the top surface of the frame body, and sliding rods are fixedly installed in the sliding grooves. A sealing assembly is arranged on the surface of the sliding rod; the sealing assembly comprises a sliding sleeve connected with the sliding rod in a penetrating mode, and a groove is formed in the sliding sleeve. Wherein a sealing gasket is slidably connected to the interior of the groove, sliding blocks are symmetrically installed on the two sides, close to the top, of the sealing gasket, and a pull rod is fixedly connected to the middle of the surface of the top of the sealing gasket. Therefore, the external high heat penetrating power is weakened, and the heat insulation performance of the device is indirectly improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum alloy doors and windows, in particular to an aluminum alloy energy-saving window with good heat insulation effect. 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, 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 transmit their own weight and loads) and those combined with wood or plastic, simply called aluminum-wood composite doors and windows and aluminum-plastic composite doors and windows.

[0003] The published patent No. CN217681351 discloses an energy-saving aluminum alloy door and window with good heat insulation effect. By setting a first inner cavity, a partition board, and a first inert gas cavity inside the aluminum alloy door and window main body, two partition boards are used in the first inner cavity to separate a closed cavity, and an inert gas is injected to form a first inert gas cavity, so as to weaken the high heat penetration from the outside, thereby indirectly improving the heat insulation performance of the device and avoiding the problem that the energy-saving effect of the existing aluminum alloy doors and windows is poor due to low heat insulation performance during use. However, the following problems still exist in the actual use of this patent:

[0004] By setting a first inner cavity, a partition board, and a first inert gas cavity inside the aluminum alloy door and window main body, two partition boards are used in the first inner cavity to separate a closed cavity, and an inert gas is injected to form a first inert gas cavity, so as to weaken the high heat penetration from the outside, thereby indirectly improving the heat insulation performance of the device. However, it is inconvenient to repeatedly inject inert gas into the cavity, which will increase the workload of the staff.

[0005] An aluminum alloy energy-saving window with good heat insulation effect is proposed to solve the problems mentioned above. Content of the Utility Model

[0006] The purpose of the utility model is to provide an aluminum alloy energy-saving window with good heat insulation effect to solve the problem that at present, by setting a first inner cavity, a partition board, and a first inert gas cavity inside the aluminum alloy door and window main body, two partition boards are used in the first inner cavity to separate a closed cavity, and an inert gas is injected to form a first inert gas cavity, so as to weaken the high heat penetration from the outside, thereby indirectly improving the heat insulation performance of the device. However, it is inconvenient to repeatedly inject inert gas into the cavity, which will increase the workload of the staff as mentioned in the above background technique.

[0007] To achieve the above purpose, the utility model provides the following technical solution: an aluminum alloy energy-saving window with good heat insulation effect, including a frame body and double-layer tempered glass, and a cavity is formed in the middle of the double-layer tempered glass;

[0008] A partition is symmetrically installed inside the cavity, and sliding grooves are symmetrically opened on one side of the top surface of the frame body, and sliding rods are fixedly installed inside the sliding grooves;

[0009] It further includes:

[0010] A sealing assembly is arranged on the surface of the sliding rod;

[0011] Among them, the sealing assembly includes a sliding sleeve penetratingly connected to the sliding rod, and a groove is opened inside the sliding sleeve;

[0012] Among them, a sealing gasket is slidably connected inside the groove.

[0013] Preferably, sliders are symmetrically installed on both sides of the sealing gasket near the top, and a pull rod is fixedly connected to the middle of the top surface of the sealing gasket.

[0014] Preferably, a spring is sleeved on one side surface of the pull rod near the bottom, and the bottom surface of the spring is fixedly connected to the sealing gasket.

[0015] Preferably, sliding grooves are symmetrically opened on both sides of the groove, and the sliding grooves are slidably connected to the sliders.

[0016] Preferably, a limiting plate is fixedly connected to the top surface of the spring, and both sides of the limiting plate are fixedly connected to the groove.

[0017] Preferably, a hole is opened on one side of the bottom surface of the sliding groove, and the hole is communicated with the cavity.

[0018] Preferably, the frame body is fixedly connected to double-layer tempered glass.

[0019] Compared with the prior art, the beneficial effects of the present utility model are as follows: For this aluminum alloy energy-saving window with good heat insulation effect, by setting the sealing assembly, it is possible to more conveniently inject inert gas into the cavity inside the double-layer tempered glass repeatedly, thereby weakening the high heat penetration from the outside, and indirectly improving the heat insulation performance of the device. The specific content is as follows:

[0020] 1. By setting up a sealing component, when it is necessary to repeatedly inject inert gas into the cavity inside the double-layer tempered glass, by pulling the pull rod, the pulling of the pull rod can drive the movement of the sealing pad. Through the movement of the sealing pad, the slider can be driven to slide inside the sliding groove. At the same time, when the sealing pad moves, the spring will be squeezed, causing the spring to deform. Also, after the pull rod drives the sealing pad to move to a certain position and the sealing pad separates from the hole, by pushing the pull rod, the dragging force of the pull rod can drive the sliding sleeve to move on the sliding rod. Thus, after the hole opening is exposed, it is convenient to repeatedly inject inert gas into the cavity inside the double-layer tempered glass. After repeatedly injecting inert gas into the cavity inside the double-layer tempered glass, by pulling the pull rod again, when the pull rod drives the sliding sleeve to move back to its original position, by loosening the pull rod, the sealing pad will return to its original position under the action of the spring. Thus, the sealing pad engages with the hole, blocking the hole and preventing the leakage of inert gas. This enables more convenient repeated injection of inert gas into the cavity inside the double-layer tempered glass, weakening the high heat penetration from the outside and indirectly improving the heat insulation performance of the device.

[0021] 2. By setting up double-layer tempered glass, a cavity, and a partition, after moving the sealing component, due to the action of the two partitions, seals are formed on both sides inside the cavity. Then, by injecting inert gas through the hole into the cavity, the high heat penetration from the outside is weakened, indirectly improving the heat insulation performance of the device. At the same time, the cavity opened inside the double-layer tempered glass means that the heat transfer path through the glass is blocked by the air layer, forming an effective thermal resistance and reducing the direct heat transfer. Also, the inert gas filled inside the cavity, such as argon, has a lower thermal conductivity than air, which can further reduce the heat transfer rate through the glass. Compared with single-layer glass, the double-layer structure adds an additional barrier, showing better performance in heat preservation and insulation. Brief Description of the Drawings

[0022] Figure 1 It is a schematic diagram of the overall structure in the present utility model;

[0023] Figure 2 It is a schematic diagram of the overall internal structure in the present utility model;

[0024] Figure 3 It is a schematic diagram of the overall side view structure in the present utility model;

[0025] Figure 4 In the present utility model Figure 2 The enlarged structure schematic diagram of area A;

[0026] Figure 5This is a schematic diagram of the overall structure of the sealing component in the present utility model.

[0027] In the figure: 1. Frame body; 2. Double-layer tempered glass; 3. Cavity; 4. Partition board; 5. Sliding groove; 6. Slide bar; 7. Sealing component; 701. Slide sleeve; 702. Groove; 703. Sealing gasket; 704. Slide block; 705. Pull rod; 706. Spring; 707. Sliding slot; 708. Limiting plate; 8. Hole. Specific implementation manner

[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described 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. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0029] Please refer to Figures 1-5 , the present utility model provides a technical solution: an aluminum alloy energy-saving window with good heat insulation effect, including a frame body 1 and double-layer tempered glass 2. A cavity 3 is opened in the middle of the double-layer tempered glass 2; partition boards 4 are symmetrically installed inside the cavity 3, and sliding grooves 5 are symmetrically opened on one side of the top surface of the frame body 1, and slide bars 6 are fixedly installed inside the sliding grooves 5; further included are: a sealing component 7 is arranged on the surface of the slide bar 6; wherein, the sealing component 7 includes a slide sleeve 701 penetrating and connected with the slide bar 6, and a groove 702 is opened inside the slide sleeve 701; wherein, a sealing gasket 703 is slidably connected inside the groove 702, as Figures 1-5 shown, by setting the sealing component 7, it is possible to more conveniently inject inert gas into the cavity 3 inside the double-layer tempered glass 2 repeatedly, thereby weakening the high heat penetration from the outside, and indirectly improving the heat insulation performance of the device.

[0030] Sliding blocks 704 are symmetrically installed on both sides of the sealing gasket 703 near the top, a pull rod 705 is fixedly connected to the middle of the top surface of the sealing gasket 703, a spring 706 is sleeved on one side surface of the pull rod 705 near the bottom, and the bottom surface of the spring 706 is fixedly connected to the sealing gasket 703. Sliding slots 707 are symmetrically opened on both sides of the groove 702, and the sliding slots 707 are slidably connected with the sliding blocks 704. A limiting plate 708 is fixedly connected to the top surface of the spring 706, and both sides of the limiting plate 708 are fixedly connected to the groove 702, as Figure 4 、 5As shown, by pulling the pull rod 705, the pulling of the pull rod 705 can drive the movement of the gasket 703. Through the movement of the gasket 703, the slider 704 can be driven to slide inside the sliding groove 707. At the same time, when the gasket 703 moves, the spring 706 will be compressed, causing the spring 706 to deform. Also, after the pull rod 705 drives the gasket 703 to move to a certain position and the gasket 703 is separated from the hole 8, by pushing the pull rod 705, the pulling force of the pull rod 705 can drive the sliding sleeve 701 to move on the slide rod 6. Thus, after the opening of the hole 8 is exposed, it is convenient to repeatedly inject inert gas into the cavity 3 inside the double-layer tempered glass 2. At the same time, the spring 706 is a compression spring in the prior art, and the elastic force of the compression spring is relatively large, enabling the gasket 703 to be tightly sealed with the hole 8, thereby avoiding the leakage of inert gas.

[0031] On one side of the bottom surface of the sliding groove 5, a hole 8 is provided, and the hole 8 is connected to the cavity 3 in a through manner, as Figure 5 shown. Through the hole 8, it is convenient to repeatedly inject inert gas into the cavity 3, thereby improving the heat insulation effect.

[0032] The frame body 1 is fixedly connected to the double-layer tempered glass 2, as Figure 1 shown. The frame body 1 and the double-layer tempered glass 2 are mainly installed and fixed by bolts, making it more convenient to disassemble the double-layer tempered glass 2.

[0033] Working principle: Before using this aluminum alloy energy-saving window with good heat insulation effect, it is necessary to first check the overall situation of the device to ensure that it can work normally. According to Figure 1 - Figure 5As shown in the figure, when it is necessary to repeatedly inject inert gas into the cavity 3 inside the double-layer tempered glass 2, by pulling the pull rod 705, the pulling of the pull rod 705 can drive the movement of the sealing gasket 703. Through the movement of the sealing gasket 703, the slider 704 can be driven to slide inside the sliding groove 707. At the same time, when the sealing gasket 703 moves, the spring 706 will be compressed, causing the spring 706 to deform. At the same time, after the pull rod 705 drives the sealing gasket 703 to move to a certain position and the sealing gasket 703 is separated from the hole 8, by pushing the pull rod 705, the pulling force of the pull rod 705 can drive the sliding sleeve 701 to move on the sliding rod 6, so that after the opening of the hole 8 is exposed, it is convenient to repeatedly inject inert gas into the cavity 3 inside the double-layer tempered glass 2. After repeatedly injecting inert gas into the cavity 3 inside the double-layer tempered glass 2, by pulling the pull rod 705 again, when the pull rod 705 drives the sliding sleeve 701 to move back to its original position, by loosening the pull rod 705, the sealing gasket 703 returns to its original position under the action of the spring 706, so that the sealing gasket 703 is engaged with the hole 8, thus blocking the hole 8 and preventing the leakage of inert gas, so that it is possible to more conveniently repeatedly inject inert gas into the cavity 3 inside the double-layer tempered glass 2, thereby weakening the high heat penetration from the outside and indirectly improving the heat insulation performance of the device.

[0034] Secondly, after moving the sealing component 7, through the action of the two partition plates 4, seals are formed on both sides inside the cavity 3. Then, by injecting inert gas into the cavity 3 through the hole 8, the high heat penetration from the outside is weakened, thereby indirectly improving the heat insulation performance of the device. At the same time, the formation of the cavity 3 inside the double-layer tempered glass 2 means that the heat transfer path through the glass is blocked by the air layer, forming an effective thermal resistance and reducing the direct heat transfer. At the same time, the inert gas filled inside the cavity 3, such as argon, has a lower thermal conductivity than air, which can further reduce the heat transfer rate through the glass. Compared with a single-layer glass, the double-layer structure adds a layer of barrier, resulting in better performance in heat preservation and heat insulation.

[0035] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. An aluminum alloy energy-saving window with good heat insulation effect, comprising a frame body (1) and double-layer toughened glass (2), and a cavity (3) is formed in the middle of the double-layer toughened glass (2); Partition plates (4) are symmetrically installed inside the cavity (3), and sliding grooves (5) are symmetrically formed on one side of the top surface of the frame body (1), and sliding rods (6) are fixedly installed inside the sliding grooves (5); It is characterized in that It further includes: A sealing assembly (7) is arranged on the surface of the sliding rod (6); Among them, the sealing assembly (7) includes a sliding sleeve (701) penetratingly connected with the sliding rod (6), and a groove (702) is formed inside the sliding sleeve (701); Among them, a sealing gasket (703) is slidably connected inside the groove (702).

2. The energy-saving aluminum alloy window with good heat insulation effect according to claim 1, characterized in that: Sliding blocks (704) are symmetrically installed on both sides of the sealing gasket (703) near the top, and a pull rod (705) is fixedly connected to the middle of the top surface of the sealing gasket (703).

3. The energy-saving aluminum alloy window with good heat insulation effect according to claim 2, characterized in that: A spring (706) is sleeved on one side surface of the pull rod (705) near the bottom, and the bottom surface of the spring (706) is fixedly connected to the sealing gasket (703).

4. A heat-insulating aluminum alloy energy-saving window according to claim 1, characterized in that: Sliding grooves (707) are symmetrically formed on both sides of the groove (702), and the sliding grooves (707) are slidably connected with the sliding blocks (704).

5. The energy-saving aluminum alloy window with good heat insulation effect according to claim 3, characterized in that: A limiting plate (708) is fixedly connected to the top surface of the spring (706), and both sides of the limiting plate (708) are fixedly connected to the groove (702).

6. The aluminum alloy energy-saving window with good heat insulation effect according to claim 1 is characterized in that: A hole (8) is formed on one side of the bottom surface of the sliding groove (5), and the hole (8) is communicated with the cavity (3).

7. An aluminum alloy energy-saving window with good heat insulation effect according to claim 1, characterized in that: The frame body (1) is fixedly connected with the double-layer toughened glass (2).

Citation Information

Patent Citations

  • Energy-saving aluminum alloy door and window with good heat insulation effect

    CN217681351U