Aluminum alloy cross beam for self-adaptive elastic sealing plate window sash
By connecting the sealing mechanism and the crossbeam connection mechanism, the problem of difficult position adjustment of the aluminum alloy crossbeam is solved, realizing stable installation and position adjustment of the polycarbonate sheet, and improving ease of use and maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU LONGWAY ELECTRONICS MACHINERY
- Filing Date
- 2025-06-03
- Publication Date
- 2026-05-05
AI Technical Summary
The existing aluminum alloy crossbeams are difficult to adjust in position, which limits the area protected by the polycarbonate sheet and affects its performance.
The system employs a connecting sealing mechanism and a crossbeam connecting mechanism. Stable installation and position adjustment of the polycarbonate sheet are achieved through the sealing groove and connecting slot, while sliding connection is achieved using the installation slider and connecting bolts.
This technology enables stable installation and position adjustment of polycarbonate sheets, improving ease of use and maintenance, and preventing the sheets from falling off and requiring complicated operations during long-term use.
Smart Images

Figure CN224200548U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of building materials technology, and more specifically, it relates to aluminum alloy crossbeams for adaptive elastic sealing plate window sashes. Background Technology
[0002] Adaptive elastic sealing sash windows made of elastic materials require aluminum alloy as raw material during manufacturing. The sealing sash is composed of aluminum alloy beams, aluminum alloy columns, and other structures. The polycarbonate sheet is then installed on the aluminum alloy beams to ensure the light transmission of the window sash.
[0003] According to CN201922270691.8, this utility model discloses an aluminum alloy crossbeam, specifically an aluminum alloy crossbeam including a crossbeam and a mounting base. Limiting holes are provided on the upper and lower sides of the left and right sides of the crossbeam. A retaining plate is fixedly connected to the upper and lower ends of the left and right sides of the crossbeam. A connecting plate is fixedly connected to the front and rear sides of the crossbeam. Support rods are fixedly connected to the other side of the connecting plates, and the support rods are evenly distributed. A movable rod is movably connected to the other end of the support rod, and a protective plate is fixedly connected to the other end of the movable rod. Springs are wound around the outer surfaces of the support rod and the movable rod. A connecting member is fixedly connected to the side of the mounting base, and threaded holes are provided on the upper and lower sides of the connecting member. This novel design facilitates the installation of the crossbeam through the connecting groove, improves the stability of the crossbeam during installation through the groove and retaining plate, facilitates the fixing of the crossbeam through the limiting rod and limiting holes, and provides buffer protection through the protective plate and springs.
[0004] Based on the above, existing aluminum alloy beams are generally installed inside the cylindrical hole structure of the beam with bolts, thereby fixing the aluminum alloy beam to the aluminum alloy column. It is difficult to adjust the position of the aluminum alloy beam on the aluminum alloy column, and it is also difficult to adjust the position of the polycarbonate sheet according to actual needs. The protection area of the polycarbonate sheet is limited, which affects the use of polycarbonate sheets for area protection by workers. Utility Model Content
[0005] To address the aforementioned technical problems, this utility model provides an aluminum alloy crossbeam for an adaptive elastic sealing panel window sash. This solves the problem that existing aluminum alloy crossbeams are generally installed inside the cylindrical hole structure of the crossbeam with bolts, thus fixing the aluminum alloy crossbeam to the aluminum alloy column. This makes it difficult to adjust the position of the aluminum alloy crossbeam on the aluminum alloy column, and at the same time, it is difficult to adjust the position of the polycarbonate sheet according to actual needs, thus limiting the protective area of the polycarbonate sheet and affecting the use of the polycarbonate sheet for area protection by workers.
[0006] The purpose and function of this utility model of an aluminum alloy crossbeam for an adaptive elastic sealing plate window sash are achieved by the following specific technical means:
[0007] An adaptive elastic sealing plate window sash uses an aluminum alloy horizontal beam, comprising aluminum alloy columns, a window sash horizontal beam, mounting slots, mounting sliders, a connecting sealing mechanism, and a horizontal beam connecting mechanism. Two sets of aluminum alloy columns are provided. Two sets of window sash horizontal beams are provided, each located on the upper side of the inner end face of one of the two sets of aluminum alloy columns. The two sets of window sash horizontal beams are rectangular aluminum alloy structures with dimensions of 27*24.5 (mm). Two sets of mounting slots are provided, each located on the inner end face of one of the two sets of aluminum alloy columns. Four sets of mounting sliders are provided, each slidingly connected inside one of the two sets of mounting slots and sliding on the outer end face of one of the two sets of window sash horizontal beams. Two sets of connecting sealing mechanisms are provided, each located on one of the two sets of window sash horizontal beams. Four sets of horizontal beam connecting mechanisms are provided, each located on one of the four sets of mounting sliders.
[0008] Furthermore, the connecting sealing mechanism includes a sealing groove and an assembly round hole; the sealing groove is opened on the inner end face of the window sash beam, and the sealing groove is a rectangular groove structure with a wide side of 8.45 mm. The sealing groove and the 8 mm standard polycarbonate sheet are fixedly connected by interference fit; the assembly round hole is opened in the middle position inside the window sash beam, and the assembly round hole is a round hole with a diameter of 5.6 mm.
[0009] Furthermore, the beam connection mechanism includes a connection slot and a connection block; the connection slot is opened on the outer end face of the window sash beam; the connection block is inserted into the connection slot, the connection block is located on the outer end face of the window sash beam, and the connection block slides on the inner end face of the two sets of aluminum alloy columns.
[0010] Furthermore, the beam connecting mechanism also includes: stabilizing protrusions; multiple sets of stabilizing protrusions are provided, and the multiple sets of stabilizing protrusions are respectively fixedly connected to the outer end face of the connecting plug, and the multiple sets of stabilizing protrusions are inserted into the connecting slot. The multiple sets of stabilizing protrusions are rubber rectangular ring structures.
[0011] Furthermore, the beam connecting mechanism also includes: a connecting screw hole and a connecting bolt; the connecting screw hole is located in the middle of the mounting slider and inside the outer end face of the connecting insert; the connecting bolt is threaded into the connecting screw hole.
[0012] Furthermore, the beam connecting mechanism also includes a connecting edge; the connecting edge is located at the middle of the outer end face of the mounting slider, the connecting edge is located on the outer end face of the connecting screw hole, and the outer side of the connecting bolt is located inside the connecting edge.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] This utility model employs a connecting sealing mechanism to allow the polycarbonate sheet to pass through the sealing groove and then install the weatherstripping inside the sealing groove. This ensures the stability of the polycarbonate sheet installed on the window sash beam and guarantees a sealed installation. It avoids the problem that the original aluminum alloy beam lacked the function of installing weatherstripping when installing polycarbonate sheets, resulting in insufficient sealing and easy detachment of the window sash after installation. This ensures that the polycarbonate sheet is securely installed on the window sash beam.
[0015] This utility model employs a crossbeam connection mechanism to achieve a sliding connection between the polycarbonate sheet and the window sash crossbeam on the aluminum alloy column. This facilitates the adjustment of the polycarbonate sheet's sliding position. The window sash crossbeam is connected to the aluminum alloy column via a sliding block, ensuring that the position of the polycarbonate sheet can be adjusted according to the actual needs of the staff. It also facilitates the installation of the polycarbonate sheet on the window sash, avoiding the cumbersome operation required when replacing the polycarbonate sheet after long-term use, and making it easier for staff to perform subsequent maintenance on the window sash. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the isoaxial structure of the sealing plate window sash of this utility model.
[0017] Figure 2 This is a cross-sectional structural diagram of the window sash beam of this utility model.
[0018] Figure 3 This is a structural schematic diagram of the disassembled beam connection mechanism of this utility model.
[0019] Figure 4 This is a schematic diagram of the internal connection structure of the beam connecting mechanism of this utility model.
[0020] Figure 5 This is a schematic diagram of the connection between the connecting plug and the window sash beam of this utility model.
[0021] Figure 6 This is a schematic diagram of the connection between the mounting slider and the connecting plug of this utility model.
[0022] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0023] 1. Aluminum alloy column; 2. Window sash crossbeam; 201. Connecting slot; 3. Mounting groove; 4. Sealing groove; 5. Assembly round hole; 6. Mounting slider; 601. Connecting edge; 7. Connecting insert; 701. Stabilizing protrusion; 8. Connecting screw hole; 9. Connecting bolt. Detailed Implementation
[0024] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples.
[0025] Example 1:
[0026] As attached Figure 1 To be continued Figure 2 As shown:
[0027] This utility model provides an aluminum alloy crossbeam for an adaptive elastic sealing plate window sash, including an aluminum alloy column 1, a window sash crossbeam 2, mounting slots 3, mounting sliders 6, and a connecting sealing mechanism; two sets of aluminum alloy columns 1 are provided; two sets of window sash crossbeams 2 are provided, with the two sets of window sash crossbeams 2 located on the upper sides of the inner end faces of the two sets of aluminum alloy columns 1, and the two sets of window sash crossbeams 2 are aluminum alloy rectangular structures with dimensions of 27*24.5 (mm); two sets of mounting slots 3 are provided, with the two sets of mounting slots 3 respectively opened on the inner end faces of the two sets of aluminum alloy columns 1; four sets of mounting sliders 6 are provided, with the four sets of mounting sliders 6 slidably connected inside the two sets of mounting slots 3, and the four sets of mounting sliders 6 sliding on the outer end faces of the two sets of window sash crossbeams 2; two sets of connecting sealing mechanisms are provided, with the two sets of connecting sealing mechanisms respectively installed on the two sets of window sash crossbeams 2.
[0028] The connecting sealing mechanism includes a sealing groove 4 and an assembly round hole 5. The sealing groove 4 is located on the inner end face of the window sash beam 2. The sealing groove 4 has a rectangular groove structure with a wide side of 8.45mm. The sealing groove 4 and the 8mm standard polycarbonate sheet are fixedly connected by an interference fit. The assembly round hole 5 is located in the middle of the interior of the window sash beam 2. The assembly round hole 5 is a round hole with a diameter of 5.6mm. During use, the inner end faces of the two sets of window sash beams 2 are provided with 8.45mm sealing grooves 4 for installing and fixing the 8mm polycarbonate sheet. At the same time, the weatherstripping is installed inside the sealing groove 4 to ensure the sealing of the connection. The window sash beam 2 can be fixed to the aluminum alloy column 1 through the assembly round hole 5. The position of the window sash beam 2 cannot be adjusted.
[0029] The specific usage and function of this first embodiment are as follows:
[0030] During use, the inner end faces of the two sets of window sash beams 2 are provided with 8.45mm sealing grooves 4 for installing and fixing 8mm polycarbonate sheets. At the same time, the weatherstripping is installed inside the sealing grooves 4 to ensure the sealing of the connection. The window sash beams 2 can be fixed by assembling the round holes 5 and the aluminum alloy columns 1. The position of the window sash beams 2 cannot be adjusted, so it is convenient to use according to the connection structure of the aluminum alloy beams.
[0031] Example 2:
[0032] Based on Embodiment 1, as shown in the appendix Figure 3 To be continued Figure 6 As shown:
[0033] This utility model provides an aluminum alloy crossbeam for an adaptive elastic sealing plate window sash, and also includes a crossbeam connecting mechanism. The crossbeam connecting mechanism comprises four sets, each set being mounted on a separate mounting slider 6. Each crossbeam connecting mechanism includes a connecting slot 201 and a connecting block 7. The connecting slot 201 is located on the outer end face of the window sash crossbeam 2. The connecting block 7 is inserted into the connecting slot 201 and is located on the outer end face of the window sash crossbeam 2. The connecting block 7 slides on the inner end faces of the two sets of aluminum alloy columns 1. During use, when the window sash crossbeam 2 drives the polycarbonate sheet to slide and connect on the two sets of aluminum alloy columns 1, the connecting block 7 is inserted into the connecting slot 201, thus combining the connecting block 7 with the window sash crossbeam 2.
[0034] The beam connection mechanism also includes a stabilizing protrusion 701. Multiple sets of stabilizing protrusions 701 are provided, and each set is fixedly connected to the outer end face of the connecting plug 7. The multiple sets of stabilizing protrusions 701 are inserted into the connecting slot 201. Each set of stabilizing protrusions 701 is a rubber rectangular ring structure. During use, when the connecting plug 7 moves and drives the stabilizing protrusions 701 to insert into the connecting slot 201, the stabilizing protrusions 701 increase the friction between the connecting plug 7 and the connecting slot 201, ensuring that the connecting plug 7 is stably installed on the outer end face of the window sash beam 2.
[0035] The crossbeam connection mechanism also includes a connecting screw hole 8 and a connecting bolt 9. The connecting screw hole 8 is located in the middle of the mounting slider 6 and inside the outer end face of the connecting plug 7. The connecting bolt 9 is threaded into the connecting screw hole 8. During use, when the window sash crossbeam 2 is slidably installed on the aluminum alloy column 1, the mounting slider 6 moves, causing the connecting screw hole 8 on the mounting slider 6 to move. The connecting screw hole 8 on the mounting slider 6 and the connecting screw hole 8 on the connecting plug 7 are aligned. The connecting bolt 9 is installed inside the connecting screw hole 8, thereby connecting the mounting slider 6 and the window sash crossbeam 2 together. The mounting slider 6 is placed inside the aluminum alloy column 1, and the window sash crossbeam 2 slides on the inner end face of the aluminum alloy column 1.
[0036] The beam connection mechanism also includes a connecting edge 601. The connecting edge 601 is located at the middle of the outer end face of the mounting slider 6. The connecting edge 601 is located on the outer end face of the connecting screw hole 8. The outer side of the connecting bolt 9 is located inside the connecting edge 601. During use, when the connecting bolt 9 is installed inside the connecting screw hole 8, the outer side of the connecting bolt 9 is located inside the connecting edge 601 to avoid the outer side of the connecting bolt 9 affecting the sliding of the mounting slider 6 inside the mounting slot 3.
[0037] The specific usage and function of this second embodiment are as follows:
[0038] During use, when the window sash beam 2 drives the polycarbonate sheet to slide and connect on the two sets of aluminum alloy columns 1, the connecting plug 7 is inserted into the connecting slot 201, making the connecting plug 7 and the window sash beam 2 together. When the connecting plug 7 moves, it drives the stabilizing protrusion 701 to insert into the connecting slot 201. The stabilizing protrusion 701 increases the friction between the connecting plug 7 and the connecting slot 201, ensuring that the connecting plug 7 is firmly installed on the outer end face of the window sash beam 2. When the window sash beam 2 is slidably installed on the aluminum alloy columns 1, the installation slider 6 moves, driving the connecting screw hole 8 on the installation slider 6 to move, thus securing the window sash beam 2. The connecting screw holes 8 on the mounting slider 6 and the connecting screw holes 8 on the connecting insert 7 are aligned. The connecting bolt 9 is installed inside the connecting screw hole 8, thereby connecting the mounting slider 6 and the window sash beam 2 together. The mounting slider 6 is placed inside the aluminum alloy column 1, and the window sash beam 2 slides on the inner end face of the aluminum alloy column 1. When the connecting bolt 9 is installed inside the connecting screw hole 8, the outer side of the connecting bolt 9 is located inside the connecting platform edge 601 to avoid the outer side of the connecting bolt 9 affecting the sliding of the mounting slider 6 inside the mounting groove 3, so as to realize that the window sash beam 2 drives the polycarbonate sheet to slide and connect on the inner end face of the aluminum alloy column 1.
[0039] The following points should be noted in this article:
[0040] 1. The accompanying drawings of this embodiment only involve structures related to the embodiments of this disclosure; other structures can be referred to in general design.
[0041] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0042] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. An aluminum alloy crossbeam for an adaptive elastic sealing plate window sash, comprising an aluminum alloy column (1), a window sash crossbeam (2), a mounting groove (3), a mounting slider (6), a connecting sealing mechanism, and a crossbeam connecting mechanism; wherein two sets of the aluminum alloy column (1) are provided; characterized in that: Two sets of window sash beams (2) are provided, and the two sets of window sash beams (2) are located on the upper side of the inner end face of the two sets of aluminum alloy columns (1), and the two sets of window sash beams (2) are aluminum alloy rectangular structures with dimensions of 27*24.5 (mm); two sets of mounting slots (3) are provided, and the two sets of mounting slots (3) are respectively opened on the inner end face of the two sets of aluminum alloy columns (1); four sets of mounting sliders (6) are provided, and the four sets of mounting sliders (6) are respectively slidably connected inside the two sets of mounting slots (3) and sliding on the outer end face of the two sets of window sash beams (2); two sets of connecting sealing mechanisms are provided, and the two sets of connecting sealing mechanisms are respectively set on the two sets of window sash beams (2); four sets of beam connecting mechanisms are provided, and the four sets of beam connecting mechanisms are respectively set on the four sets of mounting sliders (6).
2. The aluminum alloy crossbeam for the adaptive elastic sealing plate window sash as described in claim 1, characterized in that: The connecting sealing mechanism includes a sealing groove (4) and an assembly round hole (5); the sealing groove (4) is opened on the inner end face of the window sash beam (2), and the sealing groove (4) and the 8mm standard polycarbonate sheet are fixedly connected by interference fit; the assembly round hole (5) is opened in the middle position inside the window sash beam (2), and the assembly round hole (5) is a round hole with a diameter of 5.6mm.
3. The aluminum alloy crossbeam for the adaptive elastic sealing plate window sash as described in claim 1, characterized in that: The beam connection mechanism includes a connection slot (201) and a connection block (7); the connection slot (201) is opened on the outer end face of the window sash beam (2); the connection block (7) is inserted into the connection slot (201), the connection block (7) is located on the outer end face of the window sash beam (2), and the connection block (7) slides on the inner end face of the two sets of aluminum alloy columns (1).
4. The aluminum alloy crossbeam for the adaptive elastic sealing plate window sash as described in claim 3, characterized in that: The beam connection mechanism also includes: a stabilizing protrusion (701); the stabilizing protrusion (701) is provided in multiple sets, the multiple sets of stabilizing protrusions (701) are respectively fixedly connected to the outer end face of the connecting plug (7), the multiple sets of stabilizing protrusions (701) are inserted into the connecting slot (201), and the multiple sets of stabilizing protrusions (701) are respectively rubber rectangular ring structures.
5. The aluminum alloy crossbeam for the adaptive elastic sealing plate window sash as described in claim 3, characterized in that: The beam connecting mechanism also includes a connecting screw hole (8) and a connecting bolt (9); the connecting screw hole (8) is located in the middle of the mounting slider (6) and inside the outer end face of the connecting plug (7); the connecting bolt (9) is threaded into the connecting screw hole (8).
6. The aluminum alloy crossbeam for the adaptive elastic sealing plate window sash as described in claim 5, characterized in that: The beam connecting mechanism further includes a connecting edge (601); the connecting edge (601) is located at the middle of the outer end face of the mounting slider (6), the connecting edge (601) is located on the outer end face of the connecting screw hole (8), and the outer side of the connecting bolt (9) is located inside the connecting edge (601).
Citation Information
Patent Citations
Aluminum alloy cross beam
CN211657836U