Energy-saving mute door and window frame system with low heat transfer and high sealing performance
Through the energy-saving silent door and window frame system with low heat transfer and high sealing, the combination of low heat transfer window frame profiles and double-layer tempered glass is used to solve the problems of poor heat transfer performance, poor sealing performance and unsatisfactory sound insulation effect of traditional door and window frames, and efficient heat insulation and quiet effects are achieved, improving the energy-saving performance and comfort of doors and windows.
Patent Information
- Application Number
- CN202422297589.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-09-20
AI Technical Summary
Traditional door and window frames have problems such as poor heat transfer performance, poor sealing performance and unsatisfactory sound insulation, which leads to indoor and outdoor heat exchange and noise transmission, reducing energy-saving performance and comfort.
It adopts a low heat transfer and high sealing energy-saving silent door and window frame system, including the window frame body, sliding window and fixed window, and uses profiles for low heat transfer window frames and double-layer tempered glass, combined with multi-layer sealing gaskets and thermal insulation design to achieve multi-layer sealing and sound insulation effects.
It improves the thermal insulation performance of doors and windows, reduces heat exchange and noise transmission, improves sealing and comfort, and saves energy consumption of indoor air conditioning systems.
Smart Images

Figure CN223269851U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of door and window frames, in particular to an energy-saving and sound-proof door and window frame system with low heat transfer and high sealing performance. Background Art
[0002] Doors and windows are crucial building components, their performance directly impacting indoor comfort and energy consumption. Traditional door and window frame structures often suffer from poor heat transfer, inadequate sealing, and suboptimal sound insulation. These issues lead to heat exchange between indoors and outdoors, energy loss, and noise transmission, reducing the energy efficiency and comfort of doors and windows.
[0003] In the existing technology, although some low heat transfer window frame profiles and low heat transfer mid-bracing profiles have appeared, the following technical problems still exist:
[0004] 1. The heat transfer performance needs to be improved, and the heat conduction of doors and windows cannot be effectively reduced;
[0005] 2. The sealing performance is poor and cannot effectively prevent the heat exchange between indoor and outdoor;
[0006] 3. The sound insulation effect is not ideal and cannot effectively block external noise.
[0007] In response to the above technical problems, the present invention proposes an energy-saving and sound-proof door and window frame system with low heat transfer and high sealing performance. Utility Model Content
[0008] In response to the above technical deficiencies, the purpose of the present invention is to provide an energy-saving and silent door and window frame system with low heat transfer and high sealing, which improves sealing, reduces heat conduction, and has good energy-saving and silent effects.
[0009] In order to solve the above technical problems, the present invention provides the following technical solutions:
[0010] An energy-saving and silent door and window frame system with low heat transfer and high sealing performance comprises a window frame body, a fixed window fixedly connected to the outside of the interior of the window frame body, a sliding window slidably connected to the inside of the window frame body, a screen provided on the outside of the sliding window, and the screen rotatably connected to the interior of the window frame body;
[0011] The window frame body includes two sets of sliding frames and two sets of guide rail profiles for low heat transfer window frames. The two sets of sliding frames are respectively arranged on both sides of the sliding frame. The two sets of guide rail profiles for low heat transfer window frames are respectively fixedly connected to the upper and lower ends of the two sets of sliding frames. The guide rail profiles for low heat transfer window frames are installed at the bottom of the window frame body. The sliding window is slidably connected to the upper part of the guide rail profile for low heat transfer window frames below.
[0012] The sliding window comprises a low heat transfer window frame profile and double-layer tempered glass. The low heat transfer window frame profile forms a rectangular structure, and the double-layer tempered glass is fixedly connected to the interior of the rectangular low heat transfer window frame profile.
[0013] The fixed window includes double-layer tempered glass and a low-heat-conductivity center brace profile. The low-heat-conductivity center brace profile is installed in the middle of the window frame body. The upper and lower ends of the low-heat-conductivity center brace profile are respectively fixed to the middle of two sets of low-heat-conductivity window frame guide rail profiles. The double-layer tempered glass is installed between the window frame body and the low-heat-conductivity center brace profile. A rectangular groove is provided inside the low-heat-conductivity center brace profile, and a center brace steel liner is installed inside the rectangular groove.
[0014] A fixed window is formed by the low heat transfer center support profile and the middle part of the window frame body, and at the same time, it provides a very stable support for the middle part of the window frame body. A rectangular groove is set inside the low heat transfer center support profile to reduce heat conduction, and the strength of the low heat transfer center support profile is improved by the center support steel lining.
[0015] A first sealing gasket is fixedly connected to the inner side of the low heat transfer middle profile, and a second sealing gasket is fixedly connected to the inner side of the screen window;
[0016] A third sealing gasket is provided on the inner side of the low heat transfer window frame profile of the sliding window.
[0017] Through the above technical solution, the window frame body is composed of two sets of sliding frames and two sets of low heat transfer window frame guide profiles, the sliding window is composed of low heat transfer window frame profiles and double-layer tempered glass, and the fixed window is composed of double-layer tempered glass and low heat transfer center profiles. The above structure has an internal heat insulation design and has low heat transfer performance, which plays a role in heat insulation and heat preservation for the door and window frame system, saves energy consumption of the indoor air-conditioning system, and has a silent effect.
[0018] By sliding the sliding window and the sliding frame on the side of the window frame body, the double-layer tempered glass plays a role of heat insulation and sound insulation. The first sealing gasket on the inner side of the low heat transfer center profile is pressed and fitted with the third sealing gasket on the inner side of the low heat transfer window frame profile of the sliding window, thereby sealing the gap of the window, blocking air circulation, and playing a role of heat preservation and sound insulation. When the sliding window is closed, the third sealing gasket on the inner side of the low heat transfer window frame profile of the sliding window is fixedly connected to the inner side of the screen window and is sealed with the second sealing gasket, playing a multi-layer sealing role, ensuring low heat transfer, high sealing, energy saving and quiet effects of doors and windows.
[0019] Preferably, the sliding frame is L-shaped, and a plurality of partitions are fixedly connected to the interior of the sliding frame, and the plurality of partitions divide the interior of the sliding frame into a plurality of buffer bins.
[0020] With the above technical solution, the interior of the sliding frame is divided into several buffer chambers by a plurality of partitions, which can reduce the heat conduction of the sliding frame and keep the interior of the sliding frame stable.
[0021] Preferably, a guide rail is provided inside the guide rail profile for the low heat transfer window frame, the sliding window slides inside the guide rail, and a small pressure strip is installed in the middle of the guide rail profile for the low heat transfer window frame.
[0022] Through the above technical solution, the small strips on the inside are compressed and sealed by sliding the sliding window, thereby achieving high sealing, heat insulation and noise reduction.
[0023] Preferably, a frame steel lining is installed at the bottom of the inner guide rail of the guide rail profile for the low heat transfer window frame, and a plurality of partitions are fixedly connected to the inside of the guide rail profile for the low heat transfer window frame, and the plurality of partitions divide the inside of the guide rail profile for the low heat transfer window frame into a plurality of buffer bins of different shapes.
[0024] Through the above technical solution, the inner guide rail of the guide rail profile for the low heat transfer window frame is supported by the frame steel lining, so that the structure is stable, which is conducive to the smooth sliding of the sliding window.
[0025] Preferably, the low heat transfer window frame profile is U-shaped, the interior of the low heat transfer window frame profile is a C-shaped groove, and a sash steel lining is installed inside the C-shaped groove.
[0026] Through the above technical solution, thermal insulation is achieved through the C-shaped groove inside the low heat transfer window frame profile, and the interior of the low heat transfer window frame profile is stably supported by the fan steel lining.
[0027] Preferably, the low heat transfer center support profile is T-shaped, and a plurality of hollow grooves are provided inside both ends of the low heat transfer center support profile.
[0028] Preferably, a plurality of through grooves are provided inside the plurality of hollow grooves, and a heat insulation strip is provided inside the through grooves.
[0029] Through the above technical solution, the heat insulation strips are arranged inside the through grooves to reduce heat conduction and enhance the heat insulation and noise reduction effects.
[0030] Preferably, a lock handle is installed inside the low heat transfer window frame profile on one side of the sliding window, and a lock rod is installed inside the upper end of the sliding window. Pressing the lock handle downwards clamps the lock rod and the guide rail profile of the upper low heat transfer window frame, and at the same time, a horizontal locking mechanism presses the inner side of the sliding window to ensure sealing.
[0031] Through the above technical solution, the opening and closing of the sliding window is facilitated by the lock handle, and the lock rod at the upper end of the sliding window is clamped and fixed to the upper low heat transfer window frame with a guide rail profile to fix the position of the sliding window. By pressing the lock handle downward to retract the lock rod, the sliding window can be slid inside the guide rail profile of the low heat transfer window frame.
[0032] Preferably, the screen is installed on the outside of the sliding window. When the sliding window is closed, the second sealing gasket on the inside of the screen and the third sealing gasket on the inside of the sliding window are pressed and closed.
[0033] Through the above technical solution, when the sliding window is closed, the second sealing gasket on the inner side of the screen window and the third sealing gasket on the inner side of the sliding window are pressed and closed, thereby enhancing the sealing effect.
[0034] Compared with the prior art, the beneficial effects achieved by the present invention are:
[0035] First, the utility model adopts the above technical solution to form a window frame body by two groups of sliding frames and two groups of low heat transfer window frame guide profiles, a sliding window by low heat transfer window frame profiles and double-layer tempered glass, and a fixed window by double-layer tempered glass and low heat transfer center support profiles. The above structure has an internal heat insulation design and has low heat transfer performance, which plays a role in heat insulation and heat preservation for the door and window frame system, saves energy consumption of the indoor air-conditioning system, and has a silent effect.
[0036] Secondly, the present invention divides the interior of the sliding frame into several buffer compartments through a plurality of partitions, which can not only reduce the heat conduction of the sliding frame, but also keep the interior of the sliding frame stable. The small strips on the inside are compressed and sealed by sliding the sliding window, which has high sealing performance, heat insulation and noise reduction. The inner guide rail of the guide rail profile for the low heat transfer window frame is supported by the frame steel lining, so that its structure is stable, which is conducive to the smooth sliding of the sliding window. The low heat transfer window frame profile is insulated and heat-preserved by the C-shaped groove inside the profile. The low heat transfer window frame profile is stably supported by the fan steel lining. The opening and closing of the sliding window are facilitated by the lock handle. The locking rod at the upper end of the sliding window is clamped and fixed to the upper guide rail profile for the low heat transfer window frame to fix the position of the sliding window. The locking handle is pressed down to retract the locking rod, so that the sliding window can slide inside the guide rail profile for the low heat transfer window frame.
[0037] Third, the utility model closes the sliding window and the sliding frame on the side of the window frame body by sliding, and the double-layer tempered glass plays a role of heat insulation and sound insulation. The first sealing gasket on the inner side of the low heat transfer middle profile is pressed and fitted with the third sealing gasket on the inner side of the low heat transfer window frame profile of the sliding window, thereby sealing the gap of the window, blocking air circulation, and playing a role of heat preservation and sound insulation. When the sliding window is closed, the third sealing gasket on the inner side of the low heat transfer window frame profile of the sliding window is fixedly connected to the inner side of the screen window and is sealed with the second sealing gasket, playing a multi-layer sealing role, ensuring low heat transfer, high sealing, energy saving and quiet effects of doors and windows. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Figure 1 This is a schematic diagram of a top-view cross-sectional structure of the present utility model;
[0039] Figure 2 It is a schematic diagram of the side sectional structure of the utility model;
[0040] Figure 3 This is a schematic diagram of the push-pull frame structure of the utility model;
[0041] Figure 4 This is a schematic diagram of the structure of the guide rail profile for the low heat transfer window frame of the present utility model;
[0042] Figure 5 This is a schematic diagram of the low heat transfer center profile structure of the utility model;
[0043] Figure 6 This is a schematic diagram of the profile structure for the low heat transfer window frame of the present utility model;
[0044] Figure 7 It is a front structural schematic diagram of the present utility model.
[0045] Among them: 1. Window frame body; 2. Fixed window; 3. Sliding window; 4. Screen window; 5. Sliding frame; 6. Guide rail profile for low heat transfer window frame; 7. Profile for low heat transfer window frame; 8. Double-layer tempered glass; 9. Low heat transfer center support profile; 10. Rectangular groove; 11. Center support steel lining; 12. First sealing gasket; 13. Second sealing gasket; 14. Third sealing gasket; 15. Partition; 16. Buffer bin; 17. Guide rail; 18. Small pressure strip; 19. Frame steel lining; 20. Sash steel lining; 21. Hollow groove; 22. Through groove; 23. Insulation strip; 24. Lock handle; 25. Lock rod. DETAILED DESCRIPTION
[0046] The specific implementation of the present utility model will be further described in detail below with reference to the accompanying drawings.
[0047] The following is a specific implementation of the energy-saving and silent door and window frame system with low heat transfer and high sealing performance.
[0048] See also Figure 1-7 .
[0049] An energy-saving and silent door and window frame system with low heat transfer and high sealing performance comprises a window frame body 1, a fixed window 2 being fixedly connected to the outside of the interior of the window frame body 1, a sliding window 3 being slidably connected to the inside of the window frame body 1, a screen 4 being provided on the outside of the sliding window 3, and the screen 4 being rotatably connected to the interior of the window frame body 1;
[0050] The window frame body 1 includes two sets of sliding frames 5 and two sets of low heat transfer window frame guide rail profiles 6. The two sets of sliding frames 5 are respectively arranged on both sides of the sliding frames 5. The two sets of low heat transfer window frame guide rail profiles 6 are respectively fixedly connected to the upper and lower ends of the two sets of sliding frames 5. The low heat transfer window frame guide rail profiles 6 are installed at the bottom of the window frame body 1. The sliding window 3 is slidably connected to the upper part of the low heat transfer window frame guide rail profile 6 below.
[0051] The sliding window 3 includes a low heat transfer window frame profile 7 and double-layer tempered glass 8. The low heat transfer window frame profile 7 forms a rectangular structure, and the double-layer tempered glass 8 is fixedly connected to the interior of the rectangular low heat transfer window frame profile 7.
[0052] The fixed window 2 includes double-layer tempered glass 8 and a low-heat-conductivity center support profile 9. The low-heat-conductivity center support profile 9 is installed in the middle of the window frame body 1. The upper and lower ends of the low-heat-conductivity center support profile 9 are respectively fixed to the middle of two sets of low-heat-conductivity window frames using guide rail profiles 6. The double-layer tempered glass 8 is installed between the window frame body 1 and the low-heat-conductivity center support profile 9. A rectangular groove 10 is provided inside the low-heat-conductivity center support profile 9, and a center support steel lining 11 is installed inside the rectangular groove 10.
[0053] The low heat transfer center support profile 9 and the middle part of the window frame body 1 form a fixed window 2, and at the same time provide a very stable support for the middle part of the window frame body 1. A rectangular groove 10 is provided inside the low heat transfer center support profile 9 to reduce heat conduction, and the strength of the low heat transfer center support profile 9 is improved by the center support steel lining 11.
[0054] A first sealing gasket 12 is fixedly connected to the inner side of the low heat transfer middle profile 9, and a second sealing gasket 13 is fixedly connected to the inner side of the screen window 4;
[0055] A third sealing gasket 14 is provided on the inner side of the low heat transfer window frame profile 7 of the sliding window 3 .
[0056] According to the above technical solution, the window frame body 1 is composed of two sets of sliding frames 5 and two sets of low heat transfer window frame guide profiles 6, the sliding window 3 is composed of the low heat transfer window frame profile 7 and double-layer tempered glass 8, and the fixed window 2 is composed of the double-layer tempered glass 8 and the low heat transfer center profile 9. The above structure has an internal heat insulation design and has low heat transfer performance, which plays a role in heat insulation and heat preservation for the door and window frame system, saves energy consumption of the indoor air conditioning system, and has a silent effect.
[0057] By sliding the sliding window 3 and closing the sliding frame 5 on the side of the window frame body 1, the double-layer tempered glass 8 plays a role in heat insulation and sound insulation. The first sealing gasket 12 on the inner side of the low heat transfer middle support profile 9 is pressed and fitted with the third sealing gasket 14 on the inner side of the low heat transfer window frame profile 7 of the sliding window 3, thereby sealing the gap of the window, blocking air circulation, and playing a role in heat preservation and sound insulation. When the sliding window 3 is closed, the third sealing gasket 14 on the inner side of the low heat transfer window frame profile 7 of the sliding window 3 is fixedly connected to the inner side of the screen 4 with the second sealing gasket 13 for sealing, playing a multi-layer sealing role, ensuring low heat transfer, high sealing, energy saving and quietness of the doors and windows.
[0058] Specifically, the push-pull frame 5 is L-shaped, and a plurality of partitions 15 are fixedly connected to the interior of the push-pull frame 5 . The plurality of partitions 15 divide the interior of the push-pull frame 5 into a plurality of buffer bins 16 .
[0059] Through the above technical solution, the interior of the sliding frame 5 is divided into a plurality of buffer chambers 16 by the plurality of partitions 15 , which can reduce the heat conduction of the sliding frame 5 and keep the interior of the sliding frame 5 stable.
[0060] Specifically, a guide rail 17 is provided in the guide rail profile 6 for the low heat transfer window frame, and the sliding window 3 slides inside the guide rail. A small pressure strip 18 is installed in the middle of the guide rail profile 6 for the low heat transfer window frame.
[0061] Through the above technical solution, the small pressure strip 18 on the inner side is compressed and sealed by sliding the sliding window 3, thereby achieving high sealing, heat insulation and noise reduction.
[0062] Specifically, a frame steel lining 19 is installed at the bottom of the inner guide rail of the low heat transfer window frame guide rail profile 6. A plurality of partitions 15 are fixedly connected to the interior of the low heat transfer window frame guide rail profile 6. The plurality of partitions 15 divide the interior of the low heat transfer window frame guide rail profile 6 into a plurality of buffer bins 16 of different shapes.
[0063] Through the above technical solution, the inner guide rail of the guide rail profile 6 for the low heat transfer window frame is supported by the frame steel lining 19, so that the structure is stable, which is conducive to the smooth sliding of the sliding window 3.
[0064] Specifically, the low heat transfer window frame profile 7 is U-shaped, and the interior of the low heat transfer window frame profile 7 is a C-shaped groove, and the sash steel liner 20 is installed inside the C-shaped groove.
[0065] Through the above technical solution, the C-shaped groove inside the low heat transfer window frame profile 7 is used for heat insulation, and the fan steel lining 20 stably supports the interior of the low heat transfer window frame profile 7.
[0066] Specifically, the low heat transfer middle support profile 9 is T-shaped, and a plurality of hollow grooves 21 are provided inside both ends of the low heat transfer middle support profile 9.
[0067] Specifically, a plurality of through grooves 22 are provided inside the plurality of hollow grooves 21 , and a heat insulation strip 23 is provided inside the through grooves 22 .
[0068] Through the above technical solution, the heat insulation strip 23 is provided inside the through groove 22 to reduce heat conduction and enhance the heat insulation and noise reduction effect.
[0069] Specifically, a lock handle 24 is installed inside the low heat transfer window frame profile 7 on one side of the sliding window 3, and a lock rod 25 is installed inside the upper end of the sliding window 3. The lock rod 25 is clamped with the upper low heat transfer window frame guide rail profile 6. Pressing the lock handle 24 downward will retract the lock rod 25.
[0070] Through the above technical solution, the opening and closing of the sliding window 3 is facilitated by the lock handle 24. The lock rod 25 at the upper end of the sliding window 3 is clamped and fixed to the upper low heat transfer window frame guide rail profile 6 to fix the position of the sliding window 3. By pressing the lock handle 24 downward to retract the lock rod 25, the sliding window 3 can be slid inside the low heat transfer window frame guide rail profile 6.
[0071] Specifically, the screen window 4 is installed on the outside of the sliding window 3. When the sliding window 3 is closed, the second sealing gasket 13 on the inside of the screen window 4 and the third sealing gasket 14 on the inside of the sliding window 3 are pressed and closed.
[0072] By means of the above technical solution, when the sliding window 3 is closed, the second sealing gasket 13 on the inner side of the screen window 4 and the third sealing gasket 14 on the inner side of the sliding window 3 are pressed and closed, thereby enhancing the sealing effect.
[0073] Although specific embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An energy-saving and silent door and window frame system with low heat transfer and high sealing performance, comprising a window frame body (1), characterized in that: The interior and exterior of the window frame body (1) are fixedly connected to a fixed window (2); the interior of the window frame body (1) is slidably connected to a sliding window (3); a screen (4) is provided on the exterior of the sliding window (3); and the screen (4) is rotatably connected to the interior of the window frame body (1); The window frame body (1) comprises two groups of sliding frames (5) and two groups of guide rail profiles (6) for low heat transfer window frames. The two groups of sliding frames (5) are respectively arranged on both sides of the sliding frames (5). The two groups of guide rail profiles (6) for low heat transfer window frames are respectively fixedly connected to the upper and lower ends of the two groups of sliding frames (5). The guide rail profiles (6) for low heat transfer window frames are installed at the bottom of the window frame body (1). The sliding window (3) is slidably connected to the upper part of the guide rail profile (6) for low heat transfer window frames below. The sliding window (3) comprises a low heat transfer window frame profile (7) and double-layer tempered glass (8), wherein the low heat transfer window frame profile (7) forms a rectangular structure, and the double-layer tempered glass (8) is fixedly connected to the interior of the rectangular low heat transfer window frame profile (7); The fixed window (2) comprises a double-layer tempered glass (8) and a low-heat-conducting middle-bracing profile (9); the low-heat-conducting middle-bracing profile (9) is installed in the middle of the window frame body (1); the upper and lower ends of the low-heat-conducting middle-bracing profile (9) are respectively fixed to the middle of two sets of low-heat-conducting window frames using guide rail profiles (6); the double-layer tempered glass (8) is installed between the window frame body (1) and the low-heat-conducting middle-bracing profile (9); a rectangular groove (10) is provided inside the low-heat-conducting middle-bracing profile (9); a middle-bracing steel lining (11) is installed inside the rectangular groove (10); A first sealing gasket (12) is fixedly connected to the inner side of the low heat transfer middle profile (9), and a second sealing gasket (13) is fixedly connected to the inner side of the screen window (4); A third sealing gasket (14) is provided on the inner side of the low heat transfer window frame profile (7) of the sliding window (3).
2. The energy-saving and silent door and window frame system with low heat transfer and high sealing performance according to claim 1, characterized in that: The push-pull frame (5) is L-shaped, and a plurality of partitions (15) are fixedly connected to the interior of the push-pull frame (5). The plurality of partitions (15) divide the interior of the push-pull frame (5) into a plurality of buffer bins (16).
3. The energy-saving and silent door and window frame system with low heat transfer and high sealing performance according to claim 1, characterized in that: A guide rail (17) is provided inside the guide rail profile (6) for the low heat transfer window frame, and the sliding window (3) slides inside the guide rail. A small pressure strip (18) is installed in the middle of the guide rail profile (6) for the low heat transfer window frame.
4. The energy-saving and silent door and window frame system with low heat transfer and high sealing performance according to claim 3 is characterized by: A frame steel lining (19) is installed at the bottom of the inner guide rail of the guide rail profile (6) for the low heat transfer window frame. A plurality of partitions (15) are fixedly connected to the interior of the guide rail profile (6) for the low heat transfer window frame. The plurality of partitions (15) divide the interior of the guide rail profile (6) for the low heat transfer window frame into a plurality of buffer bins (16) of different shapes.
5. The energy-saving and silent door and window frame system with low heat transfer and high sealing performance according to claim 1 is characterized by: The low heat transfer window frame profile (7) is U-shaped, the interior of the low heat transfer window frame profile (7) is a C-shaped groove, and a sash steel lining (20) is installed inside the C-shaped groove.
6. The energy-saving and sound-proof door and window frame system with low heat transfer and high sealing performance according to claim 1, characterized in that: The low heat transfer middle brace profile (9) is T-shaped, and a plurality of hollow grooves (21) are provided inside both ends of the low heat transfer middle brace profile (9).
7. The energy-saving and sound-proof door and window frame system with low heat transfer and high sealing performance according to claim 6, characterized in that: A plurality of through grooves (22) are provided inside the plurality of hollow grooves (21), and a heat insulation strip (23) is provided inside the through grooves (22).
8. The energy-saving and silent door and window frame system with low heat transfer and high sealing performance according to claim 1, characterized in that: A lock handle (24) is installed inside the low heat transfer window frame profile (7) on one side of the sliding window (3), and a lock rod (25) is installed inside the upper end of the sliding window (3). The lock rod (25) is clamped with the upper low heat transfer window frame guide rail profile (6), and the lock handle (24) is pressed downward to retract the lock rod (25).
9. The energy-saving and sound-proof door and window frame system with low heat transfer and high sealing performance according to claim 1, characterized in that: The screen window (4) is installed on the outside of the sliding window (3); when the sliding window (3) is closed, the second sealing gasket (13) on the inside of the screen window (4) and the third sealing gasket (14) on the inside of the sliding window (3) are pressed and closed.
Citation Information
Cited By
Energy-saving mute door and window frame system with low heat transfer and high sealing performance
CN119102464A