Water leakage prevention and heat preservation integrated door and window

By introducing slider support and sliding design, vacuum layer and hydrophobic tank into doors and windows, the problem of insufficient sealing is solved, good sealing and insulation effect is achieved, maintenance costs are reduced, and the stability and service life of the window are improved.

CN223256699UActive Publication Date: 2025-08-22浙江互创建筑工程有限公司
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Patent Information

Application Number
CN202422427365.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-09
Publication Date
2025-08-22
Estimated Expiration
2034-10-09

AI Technical Summary

Technical Problem

In the absence of sealing strips, existing doors and windows have insufficient sealing properties, resulting in air and moisture easily entering the room, affecting the comfort of the indoor environment and building energy-saving effect, and are easily damaged in extreme weather, and have high maintenance costs.

Method used

The slider in the bottom end slot supports and guides the sliding of the second moving window, and combines the second sealing strip, and combines the vacuum layer and multiple hydrophobic groove design to ensure the sealing and drainage of the window. The fixed connection of the slider ensures the smooth movement of the window. The vacuum layer provides thermal insulation and sound insulation effect, and the hydrophobic groove quickly discharges rainwater.

Benefits of technology

Effectively prevent air and moisture from entering the room through the gap, improve the sealing and insulation performance of windows, reduce maintenance costs, extend the service life of windows, and ensure the stability and sealing of windows in extreme weather.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223256699U_ABST
Patent Text Reader

Abstract

The utility model discloses a leakproof heat preservation integrated door and window which comprises a window frame, a bottom end open groove is formed in the bottom end of the window frame, a sliding block is fixedly connected to the bottom end of the interior of the bottom end open groove, a second movable window is connected to the outer ring of the sliding block in a sliding mode, and second sealing strips are fixedly connected to the periphery of the interior of the second movable window. Second glass is fixedly connected to the rear side of the second sealing strip, a vacuum layer is arranged on the rear side of the second glass, vacuum layer sealing strips are fixedly connected to the periphery of the interior of the vacuum layer, first glass is arranged on the rear side of the vacuum layer, and a first sealing strip is arranged on the rear side of the first glass. Sliding of the second movable window is supported and guided through the sliding blocks in the bottom end open groove, air and moisture are effectively prevented from entering a room through gaps of the window in cooperation with the second sealing strips, it is ensured that the second movable window stably moves in the bottom end open groove through fixed connection of the sliding blocks, and window damage or sealing performance reduction caused by unstable sliding is avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of integrated doors and windows, in particular to a water-leakage-proof and heat-insulating integrated door and window. Background Art

[0002] With the global energy crisis and growing awareness of environmental protection, building energy conservation has become a key consideration in architectural design and construction. Doors and windows, as openings in a building, have a direct impact on a building's energy consumption through their thermal insulation performance. Climate conditions vary significantly across regions, and doors and windows must adapt to a variety of weather conditions, including high temperatures, cold weather, and rain, to ensure a comfortable indoor environment. Advances in materials science and manufacturing technology have enabled innovative designs for doors and windows. The application of new materials, such as vacuum insulation and high-performance sealing strips, has improved the thermal insulation and sealing performance of doors and windows. Modern users have higher expectations for the aesthetics, functionality, and comfort of doors and windows. Doors and windows must not only meet basic lighting and ventilation requirements but also provide additional features such as sound insulation, thermal insulation, and anti-theft protection.

[0003] In actual use, without double-glazed interlayers, the thermal insulation performance of doors and windows may be affected, because double-glazed interlayers can provide better thermal insulation. Without sealing strips, the sealing of doors and windows may be insufficient, causing air and moisture to easily enter the room through the gaps, affecting the comfort of the indoor environment and the energy-saving effect of the building. In addition to providing sealing, sealing strips can also protect the edges of doors and windows from wear. The lack of sealing strips may shorten the service life of doors and windows. In the absence of sealing strips, doors and windows may not provide sufficient wind pressure resistance when facing strong winds and are easily damaged. Due to the lack of sealing strips, doors and windows may be more susceptible to environmental factors and require more frequent maintenance and replacement, increasing maintenance costs. In the absence of these structures, doors and windows may not be able to adapt well to different climatic conditions, especially in extreme weather conditions. Utility Model Content

[0004] The purpose of the utility model is to provide an integrated door and window that is leak-proof and heat-insulating. The slider inside the bottom groove supports and guides the sliding of the second movable window, and cooperates with the second sealing strip to effectively prevent air and moisture from entering the room through the gaps in the window. The fixed connection of the slider ensures that the second movable window moves smoothly in the bottom groove, avoiding damage to the window or degradation of the sealing performance due to unstable sliding. The second movable window can slide freely in the bottom groove, which is convenient for users to open and close the window according to needs, providing good ventilation effect. The second glass and the first glass provide heat insulation and sound insulation effects, and the vacuum layer uses the vacuum insulation principle to effectively isolate the heat transfer between indoor and outdoor, further improving the thermal insulation effect.

[0005] To achieve the above-mentioned object, a leak-proof and heat-insulating integrated door and window is provided, comprising: a window frame, a bottom groove being formed at the bottom end of the window frame, a slider being fixedly connected to the bottom end of the inner portion of the bottom groove, a second movable window being slidably connected to the outer ring of the slider, a second sealing strip being fixedly connected to the inner periphery of the second movable window, a second glass being fixedly connected to the rear side of the second sealing strip, a vacuum layer being provided on the rear side of the second glass, a vacuum layer sealing strip being fixedly connected to the inner periphery of the vacuum layer, a first glass being provided on the rear side of the vacuum layer, and a first sealing strip being provided on the rear side of the first glass;

[0006] A drainage groove is provided on the front side of the window frame, and the drainage groove and the bottom groove are penetrated.

[0007] According to the leak-proof and heat-insulating integrated door and window, a top groove is provided at the inner top of the window frame, and side grooves are provided at both inner sides of the window frame.

[0008] According to the leak-proof and heat-insulating integrated door and window, the front side of the second sliding window is fixedly connected with a third sealing strip, the front side of the second sliding window is provided with a first sliding window, and the two are arranged in a symmetrical manner.

[0009] According to the leak-proof and heat-insulating integrated door and window, a rain shield is fixedly connected to the front side of the window frame, and the rain shield cooperates with the front side of the window frame.

[0010] According to the leak-proof and heat-insulating integrated door and window, the number of the bottom slots and the top slots are both two, the number of the side slots is four, and the bottom slots cooperate with the top slots and the side slots.

[0011] According to the leak-proof and heat-insulating integrated door and window, the bottom groove cooperates with the first sliding window and the second sliding window.

[0012] According to the leak-proof and heat-insulating integrated door and window, the number of the drain grooves is four, and the drain grooves match the bottom end of the bottom groove.

[0013] Compared with the prior art, the beneficial effects of the present invention are:

[0014] 1. The utility model is provided with a second sealing strip, a second glass, a vacuum layer, a vacuum layer sealing strip, a first glass and a first sealing strip, and supports and guides the sliding of the second movable window by a slider inside the bottom groove, and cooperates with the second sealing strip to effectively prevent air and moisture from entering the room through the gap of the window. The fixed connection of the slider ensures that the second movable window moves smoothly in the bottom groove, avoiding damage to the window or degradation of the sealing performance due to unstable sliding. The second movable window can slide freely in the bottom groove, which is convenient for users to open and close the window as needed, providing good ventilation effect. The second glass and the first glass provide heat insulation and sound insulation effects, and the vacuum layer uses the vacuum insulation principle to effectively isolate the heat transfer between indoor and outdoor, further improving the thermal insulation effect.

[0015] 2. The utility model is provided with a drain groove, and the design of the drain groove allows rainwater to be quickly discharged from the window surface, avoiding accumulation on the window surface and reducing the erosion of rainwater on the window material. The through drain groove and the bottom groove form a continuous drainage path, ensuring that rainwater will not accumulate inside the window, thereby reducing the risk of leakage. The design of the drain groove helps to reduce the erosion of rainwater on the window frame material and extend the service life of the window. The coordinated use of the drain groove and the bottom groove enhances the overall sealing of the window and prevents rainwater from entering the room through the window gap. The setting of the drain groove is convenient for users to clean and maintain, ensuring the smooth flow of the drainage system and reducing drainage problems caused by blockage. The design of the drain groove helps to maintain the stability of the window, especially in severe weather conditions, reducing window deformation or damage caused by rainwater accumulation.

[0016] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments;

[0018] Figure 1 This is a three-dimensional view of a leak-proof and heat-insulating integrated door and window of the utility model;

[0019] Figure 2 This is a front view of a leak-proof and heat-insulating integrated door and window of the utility model;

[0020] Figure 3 This is a sectional perspective view of a leak-proof and heat-insulating integrated door and window of the utility model;

[0021] Figure 4 For this utility model Figure 3 A magnified view of the structure at center A;

[0022] Figure 5 For this utility model Figure 3 Enlarged view of the structure at point B in the middle.

[0023] In the figure: 1. Window frame; 2. Bottom groove; 3. Top groove; 4. First sliding window; 5. Rain shield; 6. Slider; 7. First sealing strip; 8. First glass; 9. Vacuum layer sealing strip; 10. Second glass; 11. Second sealing strip; 12. Vacuum layer; 13. Hydrophobic groove; 14. Third sealing strip; 15. Side groove; 16. Second sliding window. DETAILED DESCRIPTION

[0024] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the utility model.

[0025] See also Figure 1-5 The utility model provides a technical solution: a water-leakage-proof and heat-insulating integrated door and window, comprising: a window frame 1, a bottom groove 2 is opened at the bottom end of the window frame 1, this design can make the sliding window move well and increase its sealing, the inner bottom end of the bottom groove 2 is fixedly connected with a slider 6, the existence of the slider 6 is to support and guide the sliding of the first sliding window 4 and the second sliding window 16, to ensure its smooth movement, the outer ring of the slider 6 is slidably connected with the second sliding window 16, which makes the second sliding window 16 can slide freely in the bottom groove 2, easy to open and close, and provide good ventilation effect, the inner four sides of the second sliding window 16 are fixedly connected with a second sealing strip 11, the function of the second sealing strip 11 is to enhance the sealing of the window and prevent air and moisture from entering the room through the gap of the window, the rear side of the second sealing strip 11 is fixedly connected with the second glass 10, the second glass 10 provides additional heat insulation and sound insulation, and improves the ventilation effect. In order to improve the thermal insulation performance of the window, a vacuum layer 12 is provided on the back side of the second glass 10. The vacuum layer 12 uses the vacuum insulation principle to effectively isolate the heat transfer between indoor and outdoor, further improving the thermal insulation effect. The inner four sides of the vacuum layer 12 are fixedly connected with a vacuum layer sealing strip 9. The vacuum layer sealing strip 9 ensures the sealing of the vacuum layer and prevents air from entering and affecting the thermal insulation effect. The back side of the vacuum layer 12 is provided with a first glass 8. The first glass 8 serves as another layer of thermal and sound insulation material to enhance the overall performance of the window. The back side of the first glass 8 is provided with a first sealing strip 7. The first sealing strip 7 further enhances the sealing of the window and ensures effective isolation of indoor and outdoor environments. A hydrophobic groove 13 is provided on the front side of the window frame 1. The design of the hydrophobic groove 13 helps to guide rainwater to drain quickly, reduce the erosion and penetration of rainwater on the window, and the hydrophobic groove 13 and the bottom groove 2 are penetrated. This design allows rainwater to be discharged smoothly from the bottom of the window to avoid water accumulation.

[0026] A top slot 3 is provided at the inner top of the window frame 1, which also ensures the stability and sealing of the movement of the first sliding window 4 and the second sliding window 16, ensuring that rainwater will not accumulate inside the window frame. Side slots 15 are provided on both sides of the interior of the window frame 1. The stability and sealing of the side slots 15 further improve the stability and airtightness. The front side of the second sliding window 16 is fixedly connected with a third sealing strip 14. The third sealing strip 14 enhances the sealing of the second sliding window 16, preventing air and moisture from entering the room through the front side of the window. The front side of the second sliding window 16 is provided with the first sliding window 4, and the two are configured in a symmetrical manner. This symmetrical design is not only beautiful, but also helps to maintain the overall balance and stability of the window. A rain shield 5 is fixedly connected to the front side of the window frame 1. The function of the rain shield 5 is to prevent rainwater from directly impacting the window and reduce the invasion of rainwater on the window. The rain shield 5 cooperates with the front side of the window frame 1 to form an effective protection. The bottom slot 2 and the top slot 3 are both two in number. This design ensures the symmetry and balance of the window, and also improves the stability. The number of side slots 15 is four. The four side slots 15 provide more drainage channels to ensure that rainwater can be quickly discharged. The bottom slot 2 cooperates with the top slot 3 and the side slots 15 to form effective stability and support for the first sliding window 4 and the second sliding window 16. The bottom slot 2 cooperates with the first sliding window 4 and the second sliding window 16 to ensure the flexibility and sealing of the window, and also facilitates the opening and closing of the window. The number of drain grooves 13 is four. The drain groove 13 cooperates with the bottom end of the bottom slot 2 to form an efficient drainage mechanism to ensure that rainwater can be quickly discharged and reduce the risk of leakage.

[0027] Working principle: First, make sure that the bottom slot 2, top slot 3 and side slot 15 of the window frame 1 are clean and unobstructed to ensure that rainwater can drain smoothly, and slide the first sliding window 4 and the second sliding window 16 through the slider 6 in the bottom slot 2 to open the window. The slider 6 supports and guides the sliding of the two sliding windows to ensure smooth movement. The position of the second sliding window 16 can be adjusted as needed to control the ventilation effect. The second sliding window 16 is surrounded by a second sealing strip 11 to ensure sealing. The second glass 10 and the first glass 8 provide heat insulation and sound insulation. The vacuum layer 12 uses the principle of vacuum insulation to further improve the thermal insulation effect. Ensure that the second sealing strip 11, the vacuum layer sealing strip 9 and the first sealing strip 7 are all well fixed to enhance the sealing of the window and prevent air and moisture from entering the room. The design of the hydrophobic groove 13 helps to guide rainwater to drain quickly and reduce rainwater erosion and penetration of the window. The drain groove 13 and the bottom groove 2 are connected to form an efficient drainage mechanism. When the window needs to be closed, the first movable window 4 and the second movable window 16 are slid back into the window frame 1 through the slider 6 to ensure that the window is closed tightly. Check whether the rain shield 5 is fixed to the front side of the window frame 1 to prevent rain from directly hitting the window. Regularly check the status of all grooves and sealing strips to ensure that there is no damage or wear to maintain the water leakage and thermal insulation performance of the window. Cleaning and maintenance: Regularly clean the window frame, glass and sealing strips to keep the window clean and perform well.

[0028] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by ordinary technicians in the relevant technical field without departing from the purpose of the present invention.

Claims

1. A leak-proof and heat-insulating integrated door and window, comprising: A window frame (1), characterized in that: a bottom slot (2) is provided at the bottom end of the window frame (1), a slider (6) is fixedly connected to the inner bottom end of the bottom slot (2), an outer ring of the slider (6) is slidably connected to a second movable window (16), a second sealing strip (11) is fixedly connected to the inner periphery of the second movable window (16), a second glass (10) is fixedly connected to the rear side of the second sealing strip (11), a vacuum layer (12) is provided on the rear side of the second glass (10), a vacuum layer sealing strip (9) is fixedly connected to the inner periphery of the vacuum layer (12), a first glass (8) is provided on the rear side of the vacuum layer (12), and a first sealing strip (7) is provided on the rear side of the first glass (8); A hydrophobic groove (13) is provided on the front side of the window frame (1), and the hydrophobic groove (13) and the bottom end slot (2) are penetrated.

2. The water-proof and heat-insulating integrated door and window according to claim 1, characterized in that: A top slot (3) is provided at the inner top of the window frame (1), and side slots (15) are provided on both inner sides of the window frame (1).

3. The water-proof and heat-insulating integrated door and window according to claim 1, characterized in that: The front side of the second sliding window (16) is fixedly connected to a third sealing strip (14), and the front side of the second sliding window (16) is provided with a first sliding window (4), and the two are configured in a symmetrical manner.

4. The water-proof and heat-insulating integrated door and window according to claim 1, characterized in that: The front side of the window frame (1) is fixedly connected with a rain shield (5), and the rain shield (5) and the front side of the window frame (1) are matched.

5. The water-proof and heat-insulating integrated door and window according to claim 2, characterized in that: The number of the bottom slot (2) and the number of the top slot (3) are both two, the number of the side slots (15) is four, and the bottom slot (2) matches the top slot (3) and the side slots (15).

6. The water-proof and heat-insulating integrated door and window according to claim 1, characterized in that: The bottom end slot (2) cooperates with the first movable window (4) and the second movable window (16).

7. The water-proof and heat-insulating integrated door and window according to claim 1, characterized in that: The number of the hydrophobic grooves (13) is four, and the hydrophobic grooves (13) match the bottom end of the bottom end slot (2).