Heat insulation aluminum alloy door and window
By using components such as telescopic airbags and semiconductor cooling chips in aluminum alloy doors and windows, the problem of gaps caused by aging of sealing strips has been solved, thereby improving sealing and heat insulation performance and reducing the impact of high temperatures on the device.
Patent Information
- Application Number
- CN202423049252.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-12-11
AI Technical Summary
Existing aluminum alloy door and window sealing strips are prone to aging as their service life increases and due to high temperatures, resulting in gaps at the closure and reducing their heat insulation effect.
It employs components such as telescopic airbags and semiconductor cooling chips. The airbags fill the sealing gaps, and the cooling chips cool the area. Combined with atomizing nozzles spraying liquid for further cooling, it enhances the sealing and heat insulation effects.
It effectively fills and seals gaps, maintains the airtightness and heat insulation performance of windows, and reduces the impact of high temperatures on the lifespan of the device.
Smart Images

Figure CN223661676U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of aluminum alloy doors and windows, specifically, it relates to a heat-insulating aluminum alloy door and window. Background Technology
[0002] Aluminum alloy doors and windows refer to doors and windows made of aluminum alloy extruded profiles as frames, mullions, and sashes. They are also called aluminum doors and windows for short. Aluminum alloy doors and windows include those with aluminum alloy as the load-bearing material and those made of wood or plastic composites. According to the opening method, they can be divided into: casement, double-opening, sliding, folding, top-hung, outward-opening, etc.
[0003] In existing aluminum alloy doors and windows, the frame and window frame are mainly sealed by sealing strips after closing. However, with the increase of service life and the influence of high temperature, the sealing strips are prone to aging, resulting in gaps at the closure. This will lead to a reduction in the heat insulation effect. In view of this, this utility model is proposed. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the shortcomings of the existing technology and provide a heat-insulating aluminum alloy door and window.
[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows:
[0006] A heat-insulated aluminum alloy door and window includes a frame, a window frame, laminated glass and a liquid storage tank. The front end of the frame is hinged to the window frame via a hinge. The laminated glass is fixed inside the window frame. Sealing blocks that abut against the L-shaped pieces at the four outer corners of the window frame are fixed to the four outer corners of the frame.
[0007] Each of the four sealing blocks has an embedding groove in the middle for placing a sealing gasket. The sealing gasket is fixed to the embedding groove by a fixing bolt. A telescopic airbag is fixed to the upper end of the sealing gasket. A wear-resistant pad that abuts against the inner wall of the window frame is glued to the top of each telescopic airbag. An air nozzle connected to the air guide tube is provided on the back of each telescopic airbag. The other end of the multiple air guide tubes passes through the placement box and is connected to the multi-port tube inside the placement box. One end of the multi-port tube is connected to the inflation airbag through a pipe, and the other end of the multi-port tube is connected to a pressure gauge.
[0008] The window frame has a T-shaped cross-section. The back surface of the window frame has a groove for placing the air duct. The inside of the frame has a cavity for placing the liquid delivery pipe. One end of the liquid delivery pipe is connected to the inside of the liquid storage tank, and the other end of the liquid storage tank is connected to the liquid replenishment valve through a pipe.
[0009] Optionally, the sealing gasket and the window frame are fixed together by hook and loop fasteners, with the hook and loop fasteners fixed to the surface of the window frame and the loop fasteners fixed to the surface of the sealing gasket.
[0010] Optionally, a controller is fixed to the upper end of the liquid storage tank, and a cooling conductive component is installed at the upper end of the liquid storage tank. The bottom of the cooling conductive component is provided with multiple extension ends, and the extension ends are located in the liquid storage chamber inside the liquid storage tank. A semiconductor cooling chip is provided at the upper end of the cooling conductive component. The cooling end of the semiconductor cooling chip is attached to the cooling conductive component through thermally conductive silicone grease, and the heating end of the semiconductor cooling chip is attached to the heat dissipation fins through thermally conductive silicone grease.
[0011] Optionally, the outer cover of the heat dissipation fins is provided with a bracket, and multiple cooling fans are installed at the upper end of the bracket, with the cooling fans located above the heat dissipation fins.
[0012] Optionally, the front end of the frame is fixed with a first mounting box and a second mounting box. A micro booster pump is fixed inside the first mounting box. The negative pressure end of the micro booster pump is connected to the other end of the liquid delivery pipe, and the output end of the micro booster pump passes through a pipe into the interior of the second mounting box and is connected to the liquid outlet pipe.
[0013] Optionally, the bottom of the liquid outlet pipe is provided with multiple water outlet holes, and the bottom of each water outlet hole is connected to an atomizing nozzle through a pipe, and the atomizing nozzle is located outside the bottom of the second mounting box.
[0014] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art. Of course, any product implementing the present invention does not necessarily need to achieve all of the following advantages at the same time:
[0015] 1. This utility model utilizes the inflatable airbag on the surface of the sealing gasket to ensure the airtightness of the window after it is closed. In other words, gas can be injected into the interior of the inflatable airbag by injecting airbags to inflate the inflatable airbags and fill the gap between the frame and the window frame according to the size of the gap.
[0016] 2. This utility model uses a semiconductor cooling chip to cool the liquid in the storage tank, thus ensuring that when the external environment is too hot, the liquid sprayed by the atomizing nozzle can cool the external environment of the device, thereby reducing the impact of high temperature on the service life of the device.
[0017] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0018] The accompanying drawings described below are merely some embodiments. Those skilled in the art can obtain other drawings based on these drawings without any creative effort. In the drawings:
[0019] Figure 1 This is a schematic diagram of the main cross-sectional structure of the sealing gasket, telescopic airbag gasket, and wear-resistant gasket in this utility model;
[0020] Figure 2 A schematic diagram of the front cross-sectional structure of this utility model;
[0021] Figure 3 This is a schematic diagram of the back of the combined component structure of the frame, window frame, second mounting box and atomizing nozzle in this utility model.
[0022] Figure 4 This is a structural diagram of the combined components of the liquid storage tank, the cooling conductor, the controller, and the replenishing valve in this utility model;
[0023] Figure 5 for Figure 2 A schematic diagram of the structure of part A in the diagram;
[0024] Figure 6 for Figure 2 A schematic diagram of the structure of part B in the diagram;
[0025] Figure 7 for Figure 3 A schematic diagram of the structure of part C in the diagram;
[0026] Figure 8 for Figure 4 A schematic diagram of the structure of part D in the diagram.
[0027] The attached diagram lists the components represented by each number as follows:
[0028] 1. Frame; 2. Hinges; 3. Window frame; 4. Laminated glass; 5. L-shaped parts; 6. Sealing blocks; 7. Sealing gaskets; 8. Fixing bolts; 9. Telescopic airbag cushions; 10. Wear-resistant pads; 11. Air ducts; 12. Multi-port pipes; 13. Injection balloons; 14. Pressure gauges; 15. Liquid delivery pipes; 16. Liquid storage tanks; 17. Liquid replenishment valves; 18. Hook and loop fasteners; 19. Hook and loop fasteners; 20. Controllers; 21. Cooling components; 22. Semiconductor cooling chips; 23. Heat sinks; 24. Brackets; 25. Cooling fans; 26. First mounting box; 27. Second mounting box; 28. Miniature booster pump; 29. Liquid outlet pipe; 30. Atomizing nozzles.
[0029] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0030] The present invention will now be described in further detail with reference to the accompanying drawings.
[0031] Please see Figures 1 to 8This utility model provides a technical solution: a heat-insulating aluminum alloy door and window, including a frame 1, a window frame 3, laminated glass 4 and a liquid storage tank 16. The front end of the frame 1 is hinged to the window frame 3 through a hinge 2. The laminated glass 4 is fixed inside the window frame 3. Sealing blocks 6 that abut against the L-shaped parts 5 inside the four corners of the window frame 3 are fixed at the four outer corners of the window frame 3.
[0032] The four sealing blocks 6 each have an embedded groove in the middle for the sealing gasket 7 to be placed. The sealing gasket 7 is fixed to the embedded groove by a fixing bolt 8. A telescopic airbag 9 is fixed to the upper end of the sealing gasket 7. A wear-resistant pad 10 that abuts against the inner wall of the window frame 3 is glued to the top of each telescopic airbag 9. An air nozzle connected to the air guide tube 11 is provided on the back of each telescopic airbag. The other end of the multiple air guide tubes 11 passes through the placement box and is connected to the multi-port tube 12 inside the placement box. One end of the multi-port tube 12 is connected to the inflation airbag 13 through a pipe. The other end of the multi-port tube 12 is connected to the pressure gauge 14.
[0033] The window frame 3 has a T-shaped cross-section. A groove for the placement of the air duct 11 is provided on the back surface of the window frame 3. A cavity for the placement of the liquid delivery pipe 15 is provided inside the frame 1. One end of the liquid delivery pipe 15 is connected to the interior of the liquid storage tank 16, and the other end of the liquid storage tank 16 is connected to the replenishment valve 17 via a pipe. Considering that the sealing strip is prone to aging due to increased service life and the effects of high temperatures, leading to gaps at the closure, which would weaken the heat insulation effect, this invention utilizes a telescopic airbag pad on the surface of the sealing gasket 7. The inflatable airbag 9 ensures the airtightness of the window after it is closed. Gas can be injected into the airbag 9 through the inflation balloon 13 to inflate the airbag and fill the gap between the frame 1 and the window frame 3 according to the size of the gap. It is also easy to replace later. After loosening the fixing bolt 8, the sealing gasket 7 can be torn off, that is, the hook and loop side 19 and the hook and loop side 18 are no longer attached. The air pressure gauge 14 can be used to test the airbag airbag. When the air pressure gauge 14 shows a value lower than the normal threshold, it means that the airbag airbag 9 is damaged.
[0034] The sealing gasket 7 and the window frame 3 are fixed together by the hook and loop fastener 18 and the rough fastener 19. The hook and loop fastener 18 is fixedly installed on the surface of the window frame 3, and the rough fastener 19 is fixed on the surface of the sealing gasket 7. The hook and loop fastener 18 and the rough fastener 19 play an auxiliary role in fixing the window frame 3 and the sealing gasket 7, ensuring that the sealing gasket 7 can be fixed flat on the surface of the window frame 3.
[0035] The liquid storage tank 16 is equipped with a controller 20 at its upper end and a cooling component 21 at its upper end. The cooling component 21 has multiple extension ends at its bottom, which are located in the liquid storage chamber inside the liquid storage tank 16. A semiconductor cooling chip 22 is provided at the upper end of the cooling component 21. The cooling end of the semiconductor cooling chip 22 is attached to the cooling component 21 through thermal grease, and the heating end of the semiconductor cooling chip 22 is attached to the heat dissipation fins 23 through thermal grease. By setting the semiconductor cooling chip 22, the liquid in the liquid storage tank 16 is cooled, thereby ensuring that when the external environment is overheated, the sprayed liquid can cool the external environment of the device, thereby reducing the impact of high temperature on the service life of the device.
[0036] The heat sink 23 is covered by a bracket 24, and multiple cooling fans 25 are installed on the upper end of the bracket 24. The cooling fans 25 are located above the heat sink 23. By setting the heat sink 23 in conjunction with the cooling fans 25, the heat sink 23 and the cooling fans 25 can dissipate heat from the heating end of the semiconductor cooling chip 22.
[0037] The frame 1 has a first mounting box 26 and a second mounting box 27 fixed at its front end. A micro booster pump 28 is fixed inside the first mounting box 26. The negative pressure end of the micro booster pump 28 is connected to the other end of the liquid delivery pipe 15. The output end of the micro booster pump 28 passes through a pipe to the inside of the second mounting box 27 and is connected to the liquid outlet pipe 29. By setting the micro booster pump 28, the liquid delivered by the liquid delivery pipe 15 is pressurized, thereby ensuring the water pressure when the atomizing nozzle 30 is used.
[0038] The bottom of the liquid outlet pipe 29 is provided with multiple water outlet holes. The bottom of each water outlet hole is connected to an atomizing nozzle 30 through a pipe. The atomizing nozzle 30 is located outside the bottom of the second mounting box 27. The atomizing nozzle 30 is used to cool the external environment of the device, thus preventing the external temperature from being too high and affecting the service life of the device.
[0039] This utility model is not limited to the above-described embodiments. Anyone should know that structural changes made under the guidance of this utility model, and any technical solutions that are the same as or similar to this utility model, fall within the protection scope of this utility model. Technical aspects, shapes, and structures not described in detail in this utility model are all publicly known technologies.
Claims
1. A type of insulated aluminum alloy door and window, comprising a frame (1), a window frame (3), laminated glass (4), and a liquid storage tank (16), characterized in that, The front end of the frame (1) is hinged to the window frame (3) via a hinge (2). Laminated glass (4) is fixed inside the window frame (3). Sealing blocks (6) that abut against the L-shaped pieces (5) inside the four corners of the window frame (3) are fixed to the four corners of the frame (1). The four sealing blocks (6) each have an embedded groove in the middle for placing the sealing gasket (7). The sealing gasket (7) is fixed to the embedded groove by a fixing bolt (8). A telescopic airbag pad (9) is fixed to the upper end of the sealing gasket (7). A wear-resistant pad (10) that abuts against the inner wall of the window frame (3) is glued to the top of each telescopic airbag. An air nozzle that communicates with the air guide tube (11) is provided on the back of each telescopic airbag. The other end of the multiple air guide tubes (11) passes through the placement box and communicates with the multi-port tube (12) inside the placement box. One end of the multi-port tube (12) is connected to the inflation airbag (13) through a pipe. The other end of the multi-port tube (12) is connected to a pressure gauge (14). The window frame (3) has a T-shaped cross-section. The back surface of the window frame (3) is provided with a groove for placing the air duct (11). The inside of the frame (1) is provided with a cavity for placing the liquid delivery pipe (15). One end of the liquid delivery pipe (15) is connected to the inside of the liquid storage tank (16), and the other end of the liquid storage tank (16) is connected to the replenishment valve (17) through a pipe.
2. The insulated aluminum alloy door and window according to claim 1, characterized in that, The sealing gasket (7) and the window frame (3) are fixed together by the hook and loop fastener (18) and the loop fastener (19). The hook and loop fastener (18) is fixedly installed on the surface of the window frame (3), and the loop fastener (19) is fixed on the surface of the sealing gasket (7).
3. The thermally insulated aluminum alloy door and window according to claim 1, characterized in that, A controller (20) is fixed at the upper end of the liquid storage tank (16). A cooling component (21) is installed at the upper end of the liquid storage tank (16). The bottom of the cooling component (21) is provided with multiple extension ends, and the extension ends are located in the liquid storage chamber inside the liquid storage tank (16). A semiconductor cooling chip (22) is provided at the upper end of the cooling component (21). The cooling end of the semiconductor cooling chip (22) is attached to the cooling component (21) through thermal grease, and the heating end of the semiconductor cooling chip (22) is attached to the heat dissipation fins (23) through thermal grease.
4. The insulated aluminum alloy door and window according to claim 3, characterized in that, The heat dissipation fins (23) are covered by a bracket (24), and multiple cooling fans (25) are installed on the upper end of the bracket (24). The cooling fans (25) are located above the heat dissipation fins (23).
5. A heat-insulating aluminum alloy door and window according to claim 1, characterized in that, The front end of the frame (1) is fixed with a first mounting box (26) and a second mounting box (27). Inside the first mounting box (26) is a micro booster pump (28). The negative pressure end of the micro booster pump (28) is connected to the other end of the liquid delivery pipe (15), and the output end of the micro booster pump (28) passes through a pipe to the inside of the second mounting box (27) and is connected to the liquid outlet pipe (29).
6. A heat-insulating aluminum alloy door and window according to claim 5, characterized in that, The bottom of the liquid outlet pipe (29) is provided with multiple water outlet holes, and the bottom of each water outlet hole is connected to an atomizing nozzle (30) through a pipe, and the atomizing nozzle (30) is located outside the bottom end of the second mounting box (27).