Anti-deformation aluminum alloy door and window
By filling the aluminum alloy door and window guide track frame with an anti-deformation medium and utilizing the design of deformation storage components and guide plates, the problem of frame distortion caused by changes in external pressure and temperature is solved, thereby improving the stability and sealing performance of the doors and windows.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2026-03-31
AI Technical Summary
Existing aluminum alloy doors and windows, when subjected to long-term external pressure or temperature changes, exhibit frame distortion due to stress concentration in the profiles, affecting sealing performance and causing jamming of the opening and closing mechanism.
By filling the door and window guide track frame with an anti-deformation medium and utilizing the design of deformation storage components and guide plates, the medium is evenly distributed and buffered, enhancing the stability and sealing performance of the doors and windows.
It effectively prevents frame distortion, improves the overall stability and sealing performance of doors and windows, ensures smooth opening and closing, and enhances the deformation resistance of doors and windows.
Smart Images

Figure CN224064198U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to door and window technical field, concretely is a kind of anti-deformation aluminium alloy door and window. BACKGROUND
[0002] Aluminium alloy door and window is the door and window made of aluminium alloy extruded section material for frame, shaft and fan material, its appearance can facilitate people to use, it is not only simple structure, and convenient operation.
[0003] Through the search, the China utility model patent with announcement number "CN211081482U" discloses "a kind of anti-deformation aluminium alloy door and window", the application can be opened and fixed on the powerful magnet under the aluminium alloy door and window by setting sunshade device when outdoor sunlight is directly incident, prevent sunlight directly incident to cause user eye discomfort, bring better use prospect.
[0004] However, in the process of actual use, the aluminium alloy door and window disclosed above still has the frame distortion phenomenon caused by profile stress concentration when long-term withstands external pressure or temperature change, this deformation not only affects the sealing performance of door and window, but also leads to the card stagnation of opening and closing mechanism, and therefore a kind of anti-deformation aluminium alloy door and window based on artificial pressure application is proposed to inject anti-deformation medium from inside to enhance the stability of overall structure. UTILITY MODEL CONTENT
[0005] The utility model aims at providing a kind of anti-deformation aluminium alloy door and window to solve the problems raised in the above background technology.
[0006] To achieve the above object, the utility model provides the following technical scheme:
[0007] A kind of anti-deformation aluminium alloy door and window, comprising:
[0008] Filling assembly, activity is laid in the arbitrary position of door and window guide rail frame, by artificial extrusion, anti-deformation medium configured in filling assembly is injected into door and window guide rail frame, and the corner of door and window guide rail frame is missing according to the position of filling assembly;
[0009] The filling assembly includes:
[0010] Deformation storage component is connected in the inside of door and window guide rail frame by sliding mode, and the inside of deformation storage component is designed as cavity structure, the cavity structure is designed to accommodate anti-deformation medium, and the two sides of one end of the periphery of deformation storage component are naturally formed discharge gap, and the two sides of the other end of the periphery are respectively provided with contact patch for bearing external force.
[0011] As further preferred in the technical solution, the door and window guide rail frame is provided with a plurality of door and window guide rail frames, and the plurality of door and window guide rail frames are evenly arranged in the door and window frame according to the number of door and window pieces in the axial direction of the door and window.
[0012] According to the position of the filling assembly in the door and window guide rail frame, the door and window guide rail frame is arranged in the missing position of the door and window frame in any side of the transverse or longitudinal direction.
[0013] Further preferably, a limiting rail is arranged at the position of the neutral line inside the door and window guide rail frame, and the limiting rail is fixed in the door and window frame and parallel to the corresponding long side of the door and window frame.
[0014] The bottom of the deformation storage component is formed with a movable gap matched with the limiting rail, and a filling gap is left between the periphery of the deformation storage component and the inner wall of the door and window guide rail frame.
[0015] Further preferably, a plurality of equidistantly arranged guide plates are uniformly fixed at the discharge gap of the deformation storage component, and the guide plates are used for guiding and buffering the filling of the anti-deformation medium into the door and window guide rail frame.
[0016] Further preferably, the angles of the two guide plates in the same plane placed in the movable gap in the deformation storage component are the same, and are used for constructing a multi-stage gradient buffer channel.
[0017] The inclination angle of the guide plate forms an angle of °-° with the stress direction of the door and window, and a progressive expansion cavity is formed between adjacent guide plates.
[0018] Further preferably, the angles of the two guide plates in different planes placed in the movable gap in the deformation storage component are orthogonally distributed, and the plate body extension directions of the guide plates respectively form a compensation angle with the transverse axis and the longitudinal axis of the door and window frame, and are used for further dispersing and absorbing the impact force received by the door and window during the filling and flowing of the anti-deformation medium.
[0019] Compared with the prior art, the anti-deformation aluminum alloy door and window has the following beneficial effects:
[0020] The anti-deformation aluminum alloy door and window fills the anti-deformation medium into the missing corner of the door and window guide rail frame by manually extruding the filling assembly, which not only enhances the stability of the door and window as a whole, effectively avoids the frame distortion phenomenon caused by long-term bearing of external pressure or temperature change, but also significantly improves the sealing performance and smoothness of opening and closing of the door and window.
[0021] In addition, the design of the deformation storage component enables the anti-deformation medium to flexibly adapt to different deformation requirements of the door and window frame, and the arrangement of the guide plate further optimizes the filling effect of the medium, ensuring the uniformity and stability of the medium during the filling and flowing process. BRIEF DESCRIPTION OF DRAWINGS
[0022] Fig. 1The isometric view of the utility model;
[0023] Fig. 2 The assembly view of the filling assembly of the utility model;
[0024] Fig. 3 The structure composition view of the filling assembly of the utility model.
[0025] In the figure: 1, door and window frame; 2, door and window guide rail frame; 3, door and window part; 4, filling assembly; 401, deformation storage component; 402, movable gap; 403, contact patch; 404, discharge gap; 405, guide plate; 5, limiting rail. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0027] Before understanding the technical solutions proposed in the present application, it is clear that the anti-deformation medium in the present application is specifically a flowable damping colloid made of a high polymer composite material and an elastomer. When the door and window frame 1 expands or shrinks due to heat or cold, the flowable damping colloid can compensate for the deformation of the door and window through viscous flow, and can also absorb non-uniform deformation by means of elastic energy storage.
[0028] Specifically, referring to Figs. 1-3 It can be seen that the technical solutions proposed in the present application include:
[0029] The filling assembly 4 is movably laid at any position of the door and window guide rail frame 2. The anti-deformation medium configured in the filling assembly 4 is injected into the door and window guide rail frame 2 by means of manual extrusion. The corners of the door and window guide rail frame 2 are missing according to the position of the filling assembly 4.
[0030] It should be noted that, referring to Fig. 3 It can be seen that, in the present application, the filling assembly 4 includes:
[0031] The deformation storage component 401 is connected to the inside of the door and window guide rail frame 2 by sliding. The inside of the deformation storage component 401 is designed as a cavity structure, which is intended to accommodate the anti-deformation medium. The two sides of one end of the deformation storage component 401 naturally form discharge gaps 404, and the two sides of the other end are respectively provided with contact patches 403 for bearing external force.
[0032] It should be noted that the present application is designed by the shape deformation storage component 401, so that the anti-deformation medium can flow smoothly through the discharge gap 404 when the door and window frame 1 deforms, compensating for the deformation of the door and window. At the same time, the contact patch 403 can effectively transmit external force to the shape deformation storage component 401 when the door and window are subjected to external force, so that the anti-deformation medium can elastically deform when subjected to external force, absorbing the non-uniform deformation of the door and window. Not only improves the anti-deformation ability of the door and window, but also ensures the stability and safety of the door and window during long-term use.
[0033] As a preferred embodiment, in the present embodiment, the door and window guide rail frame 2 is provided with several, and the several door and window guide rail frames 2 are uniformly arranged in the door and window frame 1 according to the number of the door and window member 3 in the axis direction of the door and window.
[0034] It should be noted that in the present embodiment, according to the position of the filling assembly 4 in the door and window guide rail frame 2, the door and window guide rail frame 2 is arranged in the missing place of the door and window frame 1 in any side of the horizontal or vertical direction.
[0035] It should be noted that in the present embodiment, the missing place of the door and window guide rail frame 2 is designed with a filling groove matched with the filling assembly 4. The setting of the filling groove facilitates the stable laying of the filling assembly 4 at any position of the door and window guide rail frame 2, and through manual extrusion, the anti-deformation medium arranged in the filling assembly 4 can be easily injected into the door and window guide rail frame 2, which is convenient to operate and saves manpower and time.
[0036] In addition, in actual use, anti-skid lines can also be provided on the inner wall of the filling groove. The setting of the anti-skid lines further improves the stability between the filling assembly 4 and the door and window guide rail frame 2, avoids the sliding or falling phenomenon of the filling assembly 4 during use, and ensures that the anti-deformation medium can be uniformly distributed in the door and window guide rail frame 2, thereby improving the anti-deformation effect of the door and window.
[0037] It is worth mentioning that in the present embodiment, the shape deformation storage component 401 is made of high-strength wear-resistant material. The use of high-strength wear-resistant material not only improves the service life of the shape deformation storage component 401, but also ensures that the shape deformation storage component 401 is not easy to be damaged or deformed when subjected to external force, thereby ensuring that the anti-deformation medium can be stably stored in the shape deformation storage component 401, and timely compensating for the deformation when the door and window deforms, improving the anti-deformation performance of the door and window.
[0038] As a preferred embodiment, in the embodiment, a limiting track 5 is arranged at the neutral position inside the door and window guide track frame 2, the limiting track 5 is laid and fixed in the door and window frame 1, and is parallel to the corresponding long side in the door and window frame 1. In addition, it should be noted that the bottom of the deformation storage component 401 is formed with a movable gap 402 matched with the limiting track 5, and a filling gap is left between the periphery of the deformation storage component 401 and the inner wall of the door and window guide track frame 2.
[0039] It should be noted that, in the embodiment, the limiting track 5 is ingeniously arranged at the neutral position inside the door and window guide track frame 2, which not only enhances the stability of the door and window structure, but also ensures the uniform distribution of the deformation storage component 401 under stress. The limiting track 5 is stably laid and fixed in the door and window frame 1, and is parallel to the corresponding long side in the door and window frame 1. Such layout is scientific and reasonable, and effectively improves the load-bearing capacity and anti-deformation capacity of the door and window as a whole.
[0040] In addition, the bottom of the deformation storage component 401 is formed with a movable gap 402 matched with the limiting track 5, which enables the deformation storage component 401 to easily slide into the limiting track 5 during installation, ensuring the convenience of installation and the stability and reliability of the deformation storage component 401 during use of the door and window. In addition, a filling gap is left between the periphery of the deformation storage component 401 and the inner wall of the door and window guide track frame 2, which not only provides space for the injection of anti-deformation medium, but also to some extent relieves the deformation pressure of the door and window under stress, further improving the anti-deformation performance of the door and window.
[0041] As a preferred embodiment, in the embodiment, a plurality of equidistantly and uniformly arranged guide plates 405 are fixed at the discharge gap 404 of the deformation storage component 401, the guide plates 405 are used to guide and buffer the filling of anti-deformation medium into the door and window guide track frame 2. In addition, two guide plates 405 in the same plane are arranged at the same angle in the movable gap 402 in the deformation storage component 401, and are used to build multi-stage gradient buffer channels. It should be noted that the inclination angle of the guide plate 405 is 15°-45° with the stress direction of the door and window, and a progressive expansion cavity is formed between adjacent guide plates 405. Finally, it should be noted that the angles of two guide plates 405 in different planes arranged in the movable gap 402 in the deformation storage component 401 are orthogonally distributed, and the plate body extension directions of the guide plates 405 form a compensation angle with the transverse axis and longitudinal axis of the door and window frame 1, and are used to further disperse and absorb the impact force received by the door and window during the filling and flowing of the anti-deformation medium.
[0042] It should be noted that the present embodiment can effectively guide the anti-deformation medium to fill into the door and window guide rail frame 2 through the multiple guide plates 405 arranged in the deformation storage component 401, and can gradually disperse and absorb the impact force received by the door and window during the flow of the anti-deformation medium through the design of multiple gradient buffer channels and progressive expansion cavities. This design not only improves the anti-deformation ability of the door and window, but also makes the anti-deformation medium more stable during the filling and flow process, reduces the risk of damage to the door and window caused by excessive impact force, and further improves the anti-deformation effect of the door and window.
[0043] It should be emphasized that the compensation angle design in the present embodiment enables the guide plate 405 to form a certain angle with the transverse axis and longitudinal axis of the door and window frame 1 in the extension direction, so that the anti-deformation medium can better adapt to the shape and size of the door and window frame 1 during the filling and flow process, further improving the anti-deformation performance and stability of the door and window.
[0044] Although the embodiments of the present application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to the embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended embodiments and their equivalents.
Claims
1. A deformation resistant aluminum alloy door and window, characterized by, The utility model relates to a door and window guide rail frame filling device, including: The filling assembly (4) is arranged in the door and window guide rail frame (2) through manual extrusion, and the corner of the door and window guide rail frame (2) is missing according to the position of the filling assembly (4); The filling assembly (4) includes: The deformation storage assembly (401) is connected in the door and window guide rail frame (2) through sliding, the inside of the deformation storage assembly (401) is designed as a cavity structure, the cavity structure is used for accommodating the deformation resistance medium, and the two sides of one end of the periphery of the deformation storage assembly (401) naturally form discharge notches (404), and the two sides of the other end of the periphery are respectively provided with contact patches (403) for bearing external force.
2. The anti-deformation aluminum alloy door and window according to claim 1, characterized in that: The door and window guide rail frame (2) is provided with a plurality of door and window guide rail frames (2), and the plurality of door and window guide rail frames (2) are evenly arranged in the door and window frame (1) according to the number of the door and window parts (3) in the axial direction of the door and window. According to the position of the filling assembly (4) in the door and window guide rail frame (2), the door and window guide rail frame (2) is arranged in the missing part of any side of the door and window frame (1) in the transverse direction or the longitudinal direction.
3. The anti-deformation aluminum alloy door and window according to claim 2, characterized in that: A limiting rail (5) is arranged at the neutral position in the door and window guide rail frame (2), the limiting rail (5) is arranged fixedly in the door and window frame (1) and is parallel to the corresponding long side of the door and window frame (1). The bottom of the deformation storage assembly (401) forms a movable notch (402) matched with the limiting rail (5), and a filling gap is left between the periphery of the deformation storage assembly (401) and the inner wall of the door and window guide rail frame (2).
4. The anti-deformation aluminum alloy door and window according to claim 1, characterized in that: A plurality of equidistantly arranged flow guide plates (405) are fixed uniformly at the discharge notch (404) of the deformation storage assembly (401), and the flow guide plates (405) are used for guiding and buffering the filling of the deformation resistance medium into the door and window guide rail frame (2).
5. The anti-deformation aluminum alloy door and window according to claim 4, characterized in that: The angles of the movable notches (402) of the two flow guide plates (405) on the same plane in the deformation storage assembly (401) are the same, and are used for constructing multistage gradient buffer channels. The inclination angle of the flow guide plate (405) is 15°-45° with the stress direction of the door and window, and a progressive expansion cavity is formed between adjacent flow guide plates (405).
6. The anti-deformation aluminum alloy door and window according to claim 1, characterized in that: The angles of the movable notches (402) of the two flow guide plates (405) on different planes in the deformation storage assembly (401) are orthogonally distributed, the plate body extension directions of the flow guide plates (405) respectively form compensation angles with the transverse axis and the longitudinal axis of the door and window frame (1), and the flow guide plates (405) are used for further dispersing and absorbing the impact force of the door and window in the filling and flowing process of the deformation resistance medium.
Citation Information
Patent Citations
Anti-deformation aluminum alloy door and window
CN211081482U