Titanium alloy door and window frame reinforcing structure
By setting reinforcement components on the outside of the four corners of the titanium alloy door and window frames, the problem of insufficient wind and earthquake resistance of the titanium alloy door and window frames is solved, and higher installation stability and safety are achieved.
Patent Information
- Application Number
- CN202421758336.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-07-23
AI Technical Summary
The existing titanium alloy door and window frames have shortcomings in wind resistance and earthquake resistance, and are prone to damage in natural disasters such as strong winds or earthquakes, resulting in safety hazards.
A plurality of reinforcement components are arranged on the outside of the four corners of the titanium alloy door and window frame, including an L-shaped first reinforcement plate and a second reinforcement plate, which are connected by a shock-absorbing structure, and fixed to the main structure and the titanium alloy frame through reinforcements, enhancing the connection strength and shock-absorbing performance.
It improves the installation stability and shock resistance of titanium alloy door and window frames, enhances the safety of use, while maintaining aesthetics.
Smart Images

Figure CN223215123U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of titanium alloy doors and windows, in particular to a titanium alloy door and window frame reinforcement structure. Background Art
[0002] With the continuous development of my country's economy and the increasingly urgent demand for low-carbon buildings, the safety performance transformation and service life of building structures have become increasingly concerned by the country and the industry.
[0003] Currently, doors and windows in ordinary homes are generally made of wood, wood-plastic, plastic-steel, stainless steel, or aluminum alloy. Wooden windows are beautiful and aging-resistant, but they are prone to deterioration and are relatively expensive. Plastic-steel is brittle and easily cracked by external forces. Stainless steel and aluminum alloys age easily and have poor aesthetics. Wood-plastic also ages easily and has a short lifespan. Titanium alloy, on the other hand, offers high strength, low density, excellent mechanical properties, and superior toughness and corrosion resistance.
[0004] In the construction industry, typhoon-prone coastal areas in southern China place high demands on the wind and earthquake resistance of doors and windows. While conventional titanium alloy door and window frames can extend their service life to a certain extent, their poor wind and earthquake resistance can easily lead to damage and other safety issues during natural disasters such as strong winds and earthquakes. Utility Model Content
[0005] In view of the above problems, embodiments of the present invention are proposed to provide a titanium alloy door and window frame reinforcement structure that overcomes the above problems or at least partially solves the above problems.
[0006] A titanium alloy door and window frame reinforcement structure, comprising a plurality of reinforcement components arranged on the outside of the four corners of the titanium alloy door and window frame, the reinforcement components comprising a first reinforcement plate and a second reinforcement plate, both of which are L-shaped, the first reinforcement plate being stacked and arranged at intervals on one side of the outer corner of the second reinforcement plate, the inner corner of the first reinforcement plate and the outer corner of the second reinforcement plate being connected by a first shock-absorbing structure, and the inner side wall of the first reinforcement plate and the outer side wall of the second reinforcement plate being connected by a plurality of second shock-absorbing structures; a plurality of first connection holes for inserting a first reinforcement member are formed on the edge of the first reinforcement plate, and a plurality of second connection holes for inserting a second reinforcement member are correspondingly formed on the edge of the second reinforcement plate;
[0007] During installation, the first reinforcement plate is embedded in the main structure and fixed by the first reinforcement member, and the second reinforcement plate is embedded in the titanium alloy frame and fixed by the second reinforcement member.
[0008] Preferably, the width of the second reinforcement plate is smaller than the width of the titanium alloy frame, a sealing groove is provided on the inner side of the second reinforcement plate, a sealing strip is provided in the sealing groove, and the sealing strip abuts against the titanium alloy frame.
[0009] Preferably, the outer side wall of the second reinforcement plate is provided with a plurality of protrusions with a trapezoidal cross section, a groove is formed between two adjacent protrusions, and the second shock-absorbing structure is connected to the groove.
[0010] Preferably, the second shock-absorbing structure includes a damping rod and a plurality of shock-absorbing springs arranged in a rectangular shape, the plurality of shock-absorbing spring rings are arranged around the damping rod, and the two ends of the damping rod and the shock-absorbing spring are respectively connected to the first reinforcement plate and the second reinforcement plate.
[0011] Preferably, sound insulation sponge is filled between the first reinforcement plate and the second reinforcement plate.
[0012] Preferably, the first reinforcement member and the second reinforcement member are fastening bolts.
[0013] Preferably, the first groove and the second groove are engraved on the metal wire by laser.
[0014] Preferably, a reinforcement fixing layer is provided on the outer side of the first reinforcement plate, and the reinforcement fixing layer is made of an easily solidified material.
[0015] Preferably, the reinforcing fixing layer and the main structure are fixed by pouring cement.
[0016] Preferably, the gaps between the main structure and the titanium alloy frame between adjacent reinforcement components are filled with foam glue, sound insulation cotton or thermal insulation tape.
[0017] Preferably, the first reinforcement plate and the second reinforcement plate are made of titanium alloy.
[0018] This application specifically includes the following advantages:
[0019] In an embodiment of the present application, a plurality of reinforcement components are arranged on the outside of the four corners of the titanium alloy door and window frame, and the reinforcement components include a first reinforcement plate and a second reinforcement plate, both of which are L-shaped, and the first reinforcement plate is stacked at intervals on one side of the outer corner of the second reinforcement plate, and the inner corner of the first reinforcement plate and the outer corner of the second reinforcement plate are connected by a first shock-absorbing structure, and the inner side wall of the first reinforcement plate and the outer side wall of the second reinforcement plate are connected by a plurality of second shock-absorbing structures; the edge of the first reinforcement plate is provided with a plurality of first connection holes for passing through the first reinforcement member, and the edge of the second reinforcement plate is correspondingly provided with a plurality of second connection holes for passing through the second reinforcement member; during installation, the first reinforcement plate is embedded in the main structure and fixed by the first reinforcement member, and the second reinforcement plate is embedded in the titanium alloy frame and fixed by the second reinforcement member. By providing a reinforcement component on each of the four outer corners of the titanium alloy frame, the circumference of the titanium alloy frame is further reinforced, thereby improving the stability of the frame. By providing two reinforcement plates, the first reinforcement plate is embedded in the main structure, and the second reinforcement plate is connected to the titanium alloy frame and embedded in the titanium alloy frame. On the one hand, when the titanium alloy frame is installed in the main structure, the four reinforcement components are hidden between the two, improving the aesthetics. On the other hand, the mosaic fixing method of the two reinforcement plates can improve the connection strength of the frame. By providing a first shock-absorbing structure and multiple second shock-absorbing structures between the first reinforcement plate and the second reinforcement plate, the seismic resistance of the titanium alloy frame can be improved. This application can effectively improve the installation stability and seismic resistance of the titanium alloy frame, thereby improving its safety in use. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solution of the present application, the following is a brief introduction to the drawings required for the description of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0021] Figure 1 This is a cross-sectional view of the titanium alloy door and window frame of the utility model after installation;
[0022] Figure 2 This is a partial structural diagram of the titanium alloy door and window frame of the utility model after installation;
[0023] Figure 3 It is a structural diagram of the reinforcement component of the utility model;
[0024] Figure 4 This is the main view of the titanium alloy door and window frame of the utility model after installation;
[0025] Figure numerals: 1. reinforcement assembly; 11. first reinforcement plate; 111. protrusion; 112. groove; 113. first connecting hole; 12. second reinforcement plate; 121. sealing groove; 122. sealing strip; 123. second connecting hole; 13. first shock-absorbing structure; 14. second shock-absorbing structure; 15. first reinforcement piece; 16. second reinforcement piece; 17. sound insulation sponge; 2. foam glue; 3. titanium alloy frame; 4. main structure. DETAILED DESCRIPTION
[0026] To make the objectives, features, and advantages of this application more readily apparent, the present application is further described below in conjunction with the accompanying drawings and specific embodiments. It is apparent that the embodiments described are only a portion of the embodiments of this application, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments in this application without inventive effort are also within the scope of protection of this application.
[0027] Reference Figure 1-4 , shows a structural schematic diagram of a titanium alloy door and window frame reinforcement structure of the present invention, which may specifically include the following structure: a plurality of reinforcement components 1 arranged on the outside of the four corners of the titanium alloy frame 3, the reinforcement components 1 including a first reinforcement plate 11 and a second reinforcement plate 12, both of which are L-shaped, the first reinforcement plates 11 being stacked at intervals on the outside of one side of the outer corner of the second reinforcement plate 12, the inner corner of the first reinforcement plate 11 and the outer corner of the second reinforcement plate 12 being connected by a first shock-absorbing structure 13, and the inner side wall of the first reinforcement plate 11 and the outer side wall of the second reinforcement plate 12 being connected by a plurality of second shock-absorbing structures 14; a plurality of first connecting holes 113 for passing through a first reinforcement member 15 are provided on the edge of the first reinforcement plate 11, and a plurality of second connecting holes 123 for passing through a second reinforcement member 16 are correspondingly provided on the edge of the second reinforcement plate 12, and the connecting holes 150 are used to install reinforcement members 160; the width of the second reinforcement plate 12 is smaller than the width of the titanium alloy frame 3;
[0028] During installation, the first reinforcement plate 11 is embedded in the main structure 4 and fixed by the first reinforcement member 15 , and the second reinforcement plate 12 is embedded in the titanium alloy frame 3 and fixed by the second reinforcement member 16 .
[0029] In an embodiment of the present application, a plurality of reinforcement components 1 are arranged on the outside of the four corners of the titanium alloy frame 3, and the reinforcement components 1 include a first reinforcement plate 11 and a second reinforcement plate 12, both of which are L-shaped. The first reinforcement plate 11 is stacked at intervals on the outside of one side of the outer corner of the second reinforcement plate 12, and the inner corner of the first reinforcement plate 11 and the outer corner of the second reinforcement plate 12 are connected by a first shock-absorbing structure 13, and the inner side wall of the first reinforcement plate 11 and the outer side wall of the second reinforcement plate 12 are connected by a plurality of second shock-absorbing structures 14; the first reinforcement plate The edge of 11 is provided with a plurality of first connecting holes 113 for passing the first reinforcement 15, and the edge of the second reinforcement plate 12 is correspondingly provided with a plurality of second connecting holes 123 for passing the second reinforcement 16, and the connecting holes 150 are used to install the reinforcement 160; the width of the second reinforcement plate 12 is smaller than the width of the titanium alloy frame 3; during installation, the first reinforcement plate 11 is embedded in the main structure 4 and fixed by the first reinforcement 15, and the second reinforcement plate 12 is embedded in the titanium alloy frame 3 and fixed by the second reinforcement 16. By providing a reinforcement component 1 on the outside of each of the four corners of the titanium alloy frame 3, the peripheral side of the titanium alloy frame 3 is further reinforced to improve the stability of the frame; by providing two reinforcement plates, the first reinforcement plate 11 is embedded in the main structure 4, and the second reinforcement plate 12 is connected to the titanium alloy frame 3 and accommodated in the titanium alloy frame 3. On the one hand, when the titanium alloy frame 3 is installed in the main structure 4, the four reinforcement components 1 are hidden between the two, improving the aesthetics. On the other hand, the mosaic fixing method of the two reinforcement plates can improve the connection strength of the frame; by providing a first shock-absorbing structure 13 and multiple second shock-absorbing structures 14 between the first reinforcement plate 11 and the second reinforcement plate 12, the seismic performance of the titanium alloy frame 3 can be improved. The present application can effectively improve the installation stability and seismic performance of the titanium alloy frame 3, thereby improving its safety in use.
[0030] Next, a titanium alloy door and window frame reinforcement structure in this exemplary embodiment will be further described.
[0031] In the embodiment of the present application, four reinforcement components 1 are provided, which are respectively located on the outside of the four corners of the titanium alloy frame 3, and are used to connect the titanium alloy frame 3 with the main structure 4, thereby improving the installation stability of the titanium alloy frame 3. The reinforcement components 1 are both L-shaped first reinforcement plates 11 and second reinforcement plates 12. The L-shaped reinforcement plates can fit better with the titanium alloy frame 3 or the main structure 4 of the frame structure. The first reinforcement plates 11 are stacked at intervals on one side of the outer corner of the second reinforcement plate 12, that is, the second reinforcement plate 12 is close to the titanium alloy frame 3, and the first reinforcement plate 11 is close to the main structure 4, which respectively reinforce the titanium alloy frame 3 and the main structure 4. The inner corner of the first reinforcement plate 11 and the outer corner of the second reinforcement plate 12 are connected by a first shock-absorbing structure 13, wherein the first shock-absorbing structure is located at the corner and is the main force point. It can be a damping rod with a thicker diameter, which has both shock-absorbing effect and strong supporting force. The inner wall of the first reinforcement plate 11 and the outer wall of the second reinforcement plate 12 are connected by multiple second shock-absorbing structures 14; the first reinforcement plate 11 and the second reinforcement plate 12 are connected by the first shock-absorbing structure 13 and the second shock-absorbing structure 14. On the one hand, the titanium alloy frame 3 is stably connected to the main structure 4 through the above structure. On the other hand, the above structure can improve the seismic performance of the titanium alloy frame 3. The edge of the first reinforcement plate 11 is provided with a plurality of first connection holes 113 for inserting the first reinforcement member 15, and the edge of the second reinforcement plate 12 is provided with a plurality of second connection holes 123 for inserting the second reinforcement member 16. The connection holes 150 are used to install the reinforcement member 160. During installation, the first reinforcement plate 11 is embedded in the main structure 4 and fixed by the first reinforcement member 15, and the second reinforcement plate 12 is embedded in the titanium alloy frame 3 and fixed by the second reinforcement member 16. The titanium alloy frame 3 and the second reinforcement plate 12, the first reinforcement plate 11 and the main structure 4 are further fixed by the reinforcement members, which can improve the overall strength. The edges of the titanium alloy frame 3 corresponding to the second connection holes can be provided with countersunk holes, and the second reinforcement member 16 can be passed through the countersunk holes and the second connection holes in sequence. The arrangement at the edge and the provision of the countersunk holes can avoid affecting the installation of doors and windows in the titanium alloy frame 3. Specifically, the first reinforcement member 15 and the second reinforcement member 16 can be fastening bolts for easy disassembly and assembly.
[0032] As an example, a reinforcement fixing layer is provided on the outer side of the first reinforcement plate 11. The reinforcement fixing layer is made of a readily curable material. The first reinforcement plate 11 can be fixed to the main structure 4 via the reinforcement fixing layer, thereby improving the fixation of the first reinforcement plate 11, thereby enhancing the installation stability of the entire reinforcement structure and improving its wind and earthquake resistance.
[0033] Furthermore, the reinforcing fixing layer is fixed to the main structure 4 by cement pouring. During installation, the first reinforcing plate 11 is fixed to the main structure 4 by cement pouring, so that the first reinforcing plate 11 and the main structure 4 are firmly connected, and the reinforcement component 1 does not need to be replaced when the doors and windows are replaced, and can be used for a long time.
[0034] As an example, the width of the second reinforcing plate 12 is smaller than the width of the titanium alloy frame 3, so that the second reinforcing plate 12 can be completely embedded in the interior of the titanium alloy frame 3. A sealing groove 121 is formed on the inner side of the second reinforcing plate 12, and a sealing strip 122 is provided in the sealing groove 121. The sealing strip 122 abuts against the titanium alloy frame 3. The provision of the sealing strip 122 can improve the sealing performance of the outer wall of the titanium alloy frame 3.
[0035] As an example, the outer wall of the second reinforcing plate 12 is provided with a plurality of protrusions 111 with a trapezoidal cross-section, with grooves 112 formed between adjacent protrusions 111. The second shock-absorbing structure 14 is connected to the grooves 112. By providing the protrusions 111 and grooves 112 on the outer side of the second reinforcing plate 12 and disposing the shock-absorbing structure within the grooves 112, its length can be extended to a certain extent, thereby improving its shock absorption performance. The provision of the protrusions 111 can also increase the thickness of the second reinforcing plate 12, reduce the gap between it and the first reinforcing plate 11, and thus improve the stability between the two, thereby preventing the door and window from shaking due to an excessive gap.
[0036] As an example, the second shock-absorbing structure 14 includes a damping rod and a plurality of shock-absorbing springs arranged in a rectangular shape. The plurality of shock-absorbing spring rings are disposed around the damping rod. The ends of the damping rod and the shock-absorbing springs are respectively connected to the first reinforcement plate 11 and the second reinforcement plate 12. The interaction between the damping rod and the shock-absorbing springs enables the titanium alloy frame 3 to have strong shock-absorbing performance. Furthermore, a plurality of shock-absorbing springs are provided, arranged in a rectangular shape, to provide support between the first reinforcement plate 11 and the second reinforcement plate 12.
[0037] As an example, sound insulation sponge 17 is filled between the first reinforcement plate 11 and the second reinforcement plate 12. Since the four corners serve as connection reinforcement, the sound insulation performance of the four corners of the titanium alloy frame 3 can be improved by filling the sound insulation sponge 17.
[0038] As an example, the gap between the main structure 4 and the titanium alloy frame 3 between adjacent reinforcement components 1 is filled with foam 2, sound insulation cotton, or thermal insulation tape. Filling with foam 2, sound insulation cotton, or thermal insulation tape can fill the gap and improve connection stability; filling with sound insulation cotton can improve sound insulation, and filling with thermal insulation tape can improve thermal insulation performance.
[0039] As an example, the first reinforcement plate 11 and the second reinforcement plate 12 are made of titanium alloy. Since titanium alloy has excellent strength and corrosion resistance, making both the first reinforcement plate 11 and the second reinforcement plate 12 of titanium alloy can improve the overall strength of the reinforcement structure and extend its service life.
[0040] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they are aware of the basic creative concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the present invention.
[0041] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.
[0042] The above is a detailed introduction to a titanium alloy door and window frame reinforcement structure provided by the present invention. Specific examples are used in this article to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method and core idea of the present invention. At the same time, for general technical personnel in this field, according to the idea of the present invention, there will be changes in the specific implementation method and application scope. In summary, the content of this specification should not be understood as a limitation on the present invention.
Claims
1. A titanium alloy door and window frame reinforcement structure, characterized in that: The invention comprises a plurality of reinforcing components arranged on the outside of the four corners of the titanium alloy door and window frame, wherein the reinforcing components include a first reinforcing plate and a second reinforcing plate, both of which are L-shaped, the first reinforcing plate being stacked on one side of the outer corner of the second reinforcing plate, the inner corner of the first reinforcing plate and the outer corner of the second reinforcing plate being connected by a first shock-absorbing structure, and the inner side wall of the first reinforcing plate and the outer side wall of the second reinforcing plate being connected by a plurality of second shock-absorbing structures; the edge of the first reinforcing plate is provided with a plurality of first connecting holes for passing through the first reinforcing member, and the edge of the second reinforcing plate is correspondingly provided with a plurality of second connecting holes for passing through the second reinforcing member; During installation, the first reinforcement plate is embedded in the main structure and fixed by the first reinforcement member, and the second reinforcement plate is embedded in the titanium alloy frame and fixed by the second reinforcement member.
2. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: The width of the second reinforcement plate is smaller than that of the titanium alloy frame. A sealing groove is provided on the inner side of the second reinforcement plate. A sealing strip is provided in the sealing groove. The sealing strip abuts against the titanium alloy frame.
3. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: The outer side wall of the second reinforcement plate is provided with a plurality of protrusions with a trapezoidal cross section, a groove is formed between two adjacent protrusions, and the second shock absorbing structure is connected to the groove.
4. The titanium alloy door and window frame reinforcement structure according to claim 3, characterized in that: The second shock-absorbing structure includes a damping rod and a plurality of shock-absorbing springs arranged in a rectangular shape. The plurality of shock-absorbing spring rings are arranged around the damping rod. The two ends of the damping rod and the shock-absorbing spring are respectively connected to the first reinforcing plate and the second reinforcing plate.
5. The titanium alloy door and window frame reinforcement structure according to claim 1 or 4, characterized in that: The space between the first reinforcement plate and the second reinforcement plate is filled with sound insulation sponge.
6. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: The first reinforcement member and the second reinforcement member are fastening bolts.
7. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: A reinforcement fixing layer is provided on the outer side of the first reinforcement plate, and the reinforcement fixing layer is made of an easily solidified material.
8. The titanium alloy door and window frame reinforcement structure according to claim 7, characterized in that: The reinforcing fixing layer is fixed to the main structure by pouring cement.
9. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: The gaps between the main structure and the titanium alloy frame between adjacent reinforcement components are filled with foam glue, sound insulation cotton or thermal insulation tape.
10. The titanium alloy door and window frame reinforcement structure according to claim 1, characterized in that: The first reinforcement plate and the second reinforcement plate are made of titanium alloy.