High-airtightness heat-preservation energy-saving aluminum alloy window

By introducing a combination structure of seals, push plates and springs into aluminum alloy windows, the problem of insufficient airtightness of windows is solved, and better thermal insulation and energy-saving effects are achieved.

CN223459304UActive Publication Date: 2025-10-21江苏锦恒幕墙装饰工程有限公司
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Patent Information

Application Number
CN202422995511.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-10-21
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

Existing thermal insulation and energy-saving windows have limited effect in terms of air tightness, resulting in the exchange of hot and cold air, affecting indoor temperature and energy saving effects.

Method used

A high-airtightness, heat-insulating and energy-saving aluminum alloy window is designed. The airtightness assembly consists of a seal, a push plate, a spring and a push-in piece. The spring pushes the seal outward to abut against the window glass to improve the airtightness.

Benefits of technology

It enhances the air tightness between window sashes, reduces the exchange of hot and cold air, and improves the thermal insulation and energy-saving effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high airtight heat preservation energy-saving aluminum alloy window which comprises a first window body, a second window body, a lower sliding rail and an upper sliding rail, the upper sliding rail and the lower sliding rail are evenly distributed at the upper end and the lower end of the first window body and the upper end and the lower end of the second window body, and the first window body and the second window body can slide along the upper sliding rail and the lower sliding rail. The window is characterized in that sealing strips are connected to the adjacent side walls of the first window and the second window in a sliding mode, cavities are formed in the connecting positions of the first window and the sealing strips and the connecting positions of the second window and the sealing strips, push plates are distributed in the cavities, and the push plates are connected with the sealing strips through spring pieces. The heat-preservation energy-saving window has the advantages that by arranging the airtight assembly composed of the sealing strip, the push plate, the spring piece and the jacking piece, the airtight assembly can be arranged between the window sashes of the heat-preservation energy-saving window, cold air and hot air are prevented from being exchanged through gaps between the window sashes, and therefore the heat-preservation energy-saving effect of the heat-preservation energy-saving window is improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a window field, concretely relates to a high air tightness heat preservation energy saving aluminium alloy window. BACKGROUND

[0002] The heat preservation window is generally a building transparent outer envelope structure with certain heat resistance in the building energy saving design.

[0003] The existing heat preservation energy saving window adopts hollow glass, broken bridge aluminium alloy frame and other technical means to improve the heat preservation performance of the window, however, these means have limited effect on improving air tightness, and there is still a certain degree of heat loss, the traditional aluminium alloy window often ignores the air tightness between the sashes in the design, leading to the exchange of cold and hot air when the indoor and outdoor temperature difference is large in the severe cold or hot environment, which affects the indoor temperature and energy saving effect. SUMMARY

[0004] The utility model relates to a window field, concretely relates to a high air tightness heat preservation energy saving aluminium alloy window.

[0005] The utility model discloses a high air tightness heat preservation energy saving aluminium alloy window, including window one, window two, lower slide rail and upper slide rail, the upper slide rail and the lower slide rail all distribute in the upper and lower both ends of window one and window two, window one and window two can slide displacement along the upper slide rail and the lower slide rail, its characterized in that: the side wall of window one and window two adjacent is connected with seal strip slidingly, the connecting place of window one and window two all is equipped with chamber with seal strip, the chamber is arranged in the push plate, the push plate is connected with the seal strip between through spring piece, the side wall of push plate away from spring piece is connected with top -in piece.

[0006] By adopting the above technical scheme, when window one and window two are staggered, the seal strip can be pushed out outward under the action of the spring piece, so that the corresponding sash glass can be abutted, the air tightness is improved, and the heat preservation and energy saving effect is improved.

[0007] Further, the spring piece is composed of the sleeve, the telescopic rod and the spring, the telescopic rod is slidingly connected in the sleeve, one end of the telescopic rod in the sleeve is formed with a stroke block, the spring is fixedly installed at the bottom end in the sleeve, and the spring is fixedly connected with the stroke block.

[0008] By adopting the above technical scheme, the spring can push the telescopic rod outward through the stroke block, so that the telescopic rod has the outward pushing force.

[0009] Further, an end of the telescopic rod away from the sleeve is formed with a connecting plate abutting against the sealing strip.

[0010] By adopting the above technical scheme, the connecting plate can increase the stress area of the telescopic rod transmitting force outward, and ensure the stability of the ejection effect.

[0011] Further, the sealing strip can abut against the window one and the window two.

[0012] By adopting the above technical scheme, the sealing strip can improve the air tightness between the window one and the window two.

[0013] Further, the jacking piece is a bolt, and the window one and the window two are both provided with a threaded groove at a connecting position of the bolt, and are threadedly connected with the bolt through the threaded groove.

[0014] By adopting the above technical scheme, the bolt can generate a jacking thrust based on the threaded groove.

[0015] Further, the connecting end of the bolt and the push plate is formed with a rotating plate, a rotating cavity is formed at a connecting position of the push plate and the rotating plate, and the rotating plate can rotate in the rotating cavity.

[0016] By adopting the above technical scheme, the jacking effect of the bolt on the rotating plate is ensured.

[0017] Further, the lower ends of the window one and the window two are both hingedly connected with a roller.

[0018] By adopting the above technical scheme, the window one and the window two can smoothly slide and displace.

[0019] Compared with the prior art, the utility model has the following beneficial effects:

[0020] The utility model discloses airtightness assembly that is composed of a sealing strip, a push plate, a spring piece and a jacking piece, and the airtightness assembly can be arranged between the sashes of the thermal insulation energy-saving window, so that the cold and hot air can not exchange through the gap between the sashes, and the thermal insulation energy-saving effect of the thermal insulation energy-saving window is improved. DRAWINGS

[0021] Figure 1 It is a structural schematic diagram of the high air-tight thermal insulation energy-saving aluminum alloy window.

[0022] Figure 2 It is a position relation schematic diagram of the window one and the window two in the high air-tight thermal insulation energy-saving aluminum alloy window.

[0023] Figure 3It is the connection relation schematic view of the sealing strip and the push plate in the high air-tightness heat preservation energy-saving aluminum alloy window of the utility model;

[0024] Figure 4 It is the connection relation schematic view of the sealing strip and the push plate in the high air-tightness heat preservation energy-saving aluminum alloy window of the utility model;

[0025] Figure 5 It is the connection relation schematic view of the sealing strip and the push plate in the high air-tightness heat preservation energy-saving aluminum alloy window of the utility model; Figure 4 The enlarged view of A in the middle;

[0026] Figure 6 It is the planar section view of window one and window two in the high air-tightness heat preservation energy-saving aluminum alloy window of the utility model;

[0027] Figure 7 It is the connection relation schematic view of the sealing strip and the push plate in the high air-tightness heat preservation energy-saving aluminum alloy window of the utility model; Figure 5 The enlarged view of the internal structure of spring piece in the middle.

[0028] The sign of the drawing is explained as follows:

[0029] 1, window one;2, window two;3, lower slide rail;4, upper slide rail;5, sealing strip;6, chamber;7, push plate;8, spring piece;9, top-in piece;801, sleeve;802, telescopic rod;803, connecting plate;804, spring;805, stroke block;901, rotating plate;902, rotating cavity. Specific implementation

[0030] In order to make the purpose, technical scheme and advantages of the utility model more clear and obvious, the utility model is further explained in detail below by combining with the drawing and example.It should be understood that the specific example described here is only used to explain the utility model, and is not used to limit the utility model.

[0031] As Figure 1 , Figure 2 and Figure 4As shown, the high air-tightness heat preservation energy-saving aluminum alloy window in the embodiment comprises a window one 1, a window two 2, a lower sliding rail 3 and an upper sliding rail 4, the upper sliding rail 4 and the lower sliding rail 3 are distributed at the upper and lower ends of the window one 1 and the window two 2, the window one 1 and the window two 2 can slide and displace along the upper sliding rail 4 and the lower sliding rail 3, and the window one 1 and the window two 2 are characterized in that a sealing strip 5 is slidably connected to the side wall adjacent to the window one 1 and the window two 2, a cavity 6 is formed at the connection between the window one 1 and the window two 2 and the sealing strip 5, the sealing strip 5 can slide and displace in the cavity 6, a push plate 7 is arranged in the cavity 6, the push plate 7 is connected to the sealing strip 5 through a spring member 8, the spring member 8 can generate a thrust force on the sealing strip 5 based on the push plate 7, the sealing strip 5 can be pushed outwards to abut against the corresponding window sash, the air tightness is improved, a jacking member 9 is connected to the side wall away from the spring member 8 of the push plate 7, the jacking member 9 can adjust the position of the push plate 7, so as to control the thrust position and thrust degree of the spring member 8.

[0032] As shown in Figures 5-7 , the spring member 8 is composed of a sleeve 801, an extension rod 802 and a spring 804, the extension rod 802 is slidably connected in the sleeve 801, one end of the extension rod 802 in the sleeve 801 is formed with a stroke block 805, the spring 804 is fixedly installed at the bottom end in the sleeve 801, the spring 804 is fixedly connected with the stroke block 805, so as to ensure the stability of the thrust effect of the spring member 8, the end of the extension rod 802 away from the sleeve 801 is formed with a connecting plate 803, the connecting plate 803 abuts against the sealing strip 5, so as to improve the thrust stress range of the extension rod 802 on the sealing strip 5, thereby increasing the stability thereof, the length of the sealing strip 5 extending outwards can abut against the window one 1 and the window two 2, so as to ensure the sealing effect of the sealing strip 5.

[0033] As shown in Figure 2 , Figure 4 , Figure 5 and Figure 6 , the jacking member 9 is a bolt, a threaded groove is formed at the connection between the window one 1 and the window two 2 and the bolt, and the bolt is threadedly connected with the threaded groove, a rotating plate 901 is formed at the connecting end of the bolt and the push plate 7, so that the jacking member 9 can be screwed in or out based on the threaded groove, thereby generating a pushing force or a receiving force on the push plate 7 under the artificial control, the position of the push plate 7 can be adjusted, and then the thrust degree of the spring member 8 generating the thrust force based on the push plate 7 can be controlled, a rotating cavity 902 is formed at the connection between the push plate 7 and the rotating plate 901, the rotating plate 901 can rotate in the rotating cavity 902, so that the jacking member 9 does not affect the connection effect with the push plate 7 in the rotating process.

[0034] The lower end of the window one 1 and the window two 2 is hingedly connected with a roller (not shown in the figure), so that the window one 1 and the window two 2 can smoothly slide and displace along the lower sliding rail 3 and the upper sliding rail 4.

[0035] The above description of disclosed embodiments enables one of ordinary skill in the art to make or use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A high airtight heat-insulating energy-saving aluminum alloy window, comprising window one (1), window two (2), a lower slide rail (3) and an upper slide rail (4), wherein the upper slide rail (4) and the lower slide rail (3) are both distributed at the upper and lower ends of window one (1) and window two (2), and the window one (1) and the window two (2) can slide along the upper slide rail (4) and the lower slide rail (3), and is characterized in that: The side wall adjacent to the window one (1) and the window two (2) is slidably connected with the sealing strip (5), the window one (1) and the window two (2) are connected with the sealing strip (5), and the connecting part of the sealing strip (5) is provided with a cavity (6), the cavity (6) is provided with a push plate (7), the push plate (7) and the sealing strip (5) are connected through a spring member (8), and the side wall, away from the spring member (8), of the push plate (7) is connected with a jacking piece (9).

2. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 1, characterized in that: The spring member (8) is composed of a sleeve (801), a telescopic rod (802) and a spring (804), the telescopic rod (802) is slidably connected in the sleeve (801), one end of the telescopic rod (802) in the sleeve (801) is formed with a stroke block (805), the spring (804) is fixedly installed at the bottom end in the sleeve (801), and the spring (804) is fixedly connected with the stroke block (805).

3. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 2, characterized in that: The end, away from the sleeve (801), of the telescopic rod (802) is formed with a connecting plate (803), and the connecting plate (803) abuts against the sealing strip (5).

4. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 3, characterized in that: The sealing strip (5) can abut against the window one (1) and the window two (2) by extending outward.

5. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 1, characterized in that: The jacking piece (9) is a bolt, the window one (1) and the window two (2) are provided with a threaded groove at the connecting part of the bolt, and the bolt is screwedly connected with the threaded groove.

6. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 5, characterized in that: The connecting end of the bolt and the push plate (7) is formed with a rotating plate (901), the connecting part of the push plate (7) and the rotating plate (901) is provided with a rotating cavity (902), and the rotating plate (901) can rotate in the rotating cavity (902).

7. The high airtightness, heat-insulation, energy-saving aluminum alloy window according to claim 1, characterized in that: The lower end of the window one (1) and the window two (2) is hingedly connected with a roller.