Splicing type river blocking aluminum plate structure
By using a spliced aluminum panel structure to block the river, and utilizing the fixed connection design between the connecting aluminum panels and the supporting steel plates, the problems of difficult installation and high cost are solved, achieving rapid installation and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI LANTIAN BUILDING DECORATION ENG CO LTD
- Filing Date
- 2025-05-09
- Publication Date
- 2026-05-08
AI Technical Summary
The current conventional integrated customization of aluminum slab structures for river dams leads to difficulties in installation, long installation cycles, and increased costs.
It adopts a splicing design, which connects aluminum plates to supporting steel plates and combines them with components such as buffer layer, ground layer and handrail to form a stable splicing structure, avoiding integrated customization.
It facilitates installation, shortens the installation cycle, reduces costs, and ensures the stability and safety of the structure.
Smart Images

Figure CN224213669U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of interior design, and in particular to a spliced aluminum panel structure for riverbanks. Background Technology
[0002] Compared to traditional interior design, modern interior decoration, while emphasizing safety, practicality, and environmental protection, also pursues luxury and aesthetics. Under this trend, traditional decoration materials and structures are gradually being replaced by more advanced and safer alternatives. In interior decoration, especially in areas with open edges or changes in elevation, such as stairs, balconies, and terraces, safety is a primary consideration. Aluminum panel structures, with their lightweight, high strength, corrosion resistance, and ease of processing, have become an ideal alternative material, providing robust safety protection. However, conventional aluminum panel structures are usually manufactured as a single unit. When used in large indoor spaces such as shopping malls and theaters, very precise positioning of dimensions, shape, and installation location is required. Furthermore, the integrated structure makes installation difficult and necessitates pre-customization, leading to extended decoration cycles and increased costs. Utility Model Content
[0003] To address the challenges of installation difficulties, long installation cycles, and increased costs associated with the current integrated customization of conventional aluminum barricade structures, this application provides a spliced aluminum barricade structure.
[0004] The technical solution for the spliced aluminum dam structure provided in this application is as follows:
[0005] A spliced aluminum barrier structure includes a load-bearing layer, a buffer layer for reducing cushioning force on top of the load-bearing layer, a ground layer for people to walk on top of the buffer layer, a first connecting folding plate on one side between the load-bearing layer and the buffer layer, a connecting aluminum plate on the front end face of the first connecting folding plate away from the load-bearing layer, a supporting rib on the bottom of the first connecting folding plate away from the load-bearing layer, and a supporting steel plate that abuts against the connecting aluminum plate connected to the supporting rib on the side away from the load-bearing layer.
[0006] A second connecting folding plate is fixed to the bottom of the supporting steel plate and the connecting aluminum plate. A linear light is installed between the top of the second connecting folding plate and the connecting aluminum plate. A supporting ridge plate is fixed to the bottom of the second connecting folding plate. A hidden light is installed on the top of the supporting ridge plate on the side below the second connecting folding plate.
[0007] A solid upright is fixedly installed on one side of the top of the ground layer. A fixed clamp is installed on the top of the first connecting plate on the side away from the load-bearing layer. A transparent plate is fixed inside the fixed clamp. Handrails are fixed on the top of both the fixed clamp and the transparent plate to form a guardrail that is easy for people to climb.
[0008] By adopting the above technical solution, the first connecting folding plate is fixed to the load-bearing layer with screws, and then a ground layer is laid on top of the first connecting folding plate. The first connecting folding plate is fixed to the fixed clamping plate, which supports the transparent plate inside the fixed clamping plate. The transparent plate, solid uprights and handrails form a guardrail that is easy for people to climb. At the same time, the bottom of the first connecting folding plate is screwed to the supporting rib plate, which fixes the connecting aluminum plate and the supporting steel plate. Finally, an overall spliced and fixed state is formed, thereby avoiding the installation difficulties caused by integrated customization, effectively shortening the installation period and reducing costs.
[0009] Preferably, a continuous square tube is fixed at both the upper and lower ends of the connecting aluminum plate and the fixing clamp, and a limiting insert is fixed at the top of the continuous square tube at the upper end, and the limiting insert is inserted and fixedly connected to the transparent plate.
[0010] By adopting the above technical solution, two continuous square tubes are located at the upper and lower ends of the fixing clamp, thereby fixing the upper and lower ends of the fixing clamp to the connecting aluminum plate. At the same time, the continuous square tube at the top provides installation space for fixing the limiting insert.
[0011] Preferably, a right-angle fixing plate is fixed between the first connecting folding plate and the supporting rib plate, and the side of the right-angle fixing plate away from the load-bearing layer is fixedly connected to the connecting aluminum plate.
[0012] By adopting the above technical solution, the right-angle fixing plate is located at the bottom of the first connecting folding plate and connected to the supporting rib plate, thereby forming an overall fixation between the first connecting folding plate and the supporting rib plate. At the same time, the right-angle fixing plate is connected to the connecting aluminum plate, forming an overall fixation between the connecting aluminum plate and the supporting rib plate, thereby improving the stability of the bottom of the first connecting folding plate.
[0013] Preferably, a partition is fixed at the bottom of the load-bearing layer, and the bottom of the partition is fixed to the supporting steel plate by an inclined beam.
[0014] By adopting the above technical solution, the partition is set up to create space between it and the supporting ridge plate, thereby providing installation space for the wiring of linear lights and concealed lights. At the same time, the partition is fixedly connected to the supporting steel plate, thereby improving the stability of the supporting steel plate.
[0015] Preferably, a threaded steel plate for reinforcement and stability is fixed between the buffer layer and the first connecting folding plate.
[0016] By adopting the above technical solution, the threaded steel plate enables the buffer layer to be integrally connected with the first connecting fold plate, while also helping to improve the internal support and increase the upper limit of the pressure on the buffer layer.
[0017] Preferably, a filler beam is screwed between the first connecting folding plate and the fixed clamping plate to support the buffer layer, the ground layer and the fixed clamping plate.
[0018] By adopting the above technical solution, the filling beam fills the gap between the first connecting plate and the fixed clamping plate, thereby serving as an internal support, making the buffer layer, the ground layer and the fixed clamping plate solid, thus improving stability.
[0019] Preferably, a connecting pad is fixed between the bottom of the connecting aluminum plate and the supporting steel plate and the second connecting folding plate, and a supporting beam fixed to the bottom side of the connecting pad and connected to the second connecting folding plate is fixed thereon.
[0020] By adopting the above technical solution, the connecting pad layer enables the connecting aluminum plate, the supporting steel plate and the second connecting folding plate to form a fixed connection, while filling the gap between the connections, thereby preventing loosening.
[0021] Preferably, a semi-transparent, gradient arc-shaped cover is fixed on one side of the bottom of the second connecting plate, which is used to reveal the light of the hidden light while beautifying and concealing the supporting ridge plate.
[0022] By adopting the above technical solution, the arc-shaped cover plate is located at the bottom of the second connecting fold plate, thereby shielding the supporting ridge plate. At the same time, the arc-shaped cover plate allows the light from the hidden lights to shine through, thus improving the aesthetics of the bottom of the dam.
[0023] In summary, this application includes at least one of the following beneficial technical effects:
[0024] 1. The internal structure is secured by connecting aluminum plates and supporting steel plates. Then, the supporting steel plates are fixed to the partitions at the bottom of the load-bearing layer, and the supporting steel plates are fixed to the first connecting folding plates at the top of the load-bearing layer. The entire structure is fixed together from both the top and bottom ends to ensure the stability of the fence formed by the solid uprights and transparent panels. At the same time, the interaction force is generated to improve the overall fixation effect. While ensuring safety, the splicing method facilitates installation and effectively avoids the problems of long installation cycle and high use cost caused by integrated customization. Attached Figure Description
[0025] Figure 1 This is a sectional view of this application;
[0026] Figure 2 This is a structural diagram of the fixed clamp installation in this application;
[0027] Figure 3 This is a diagram of the second connecting fold plate in this application;
[0028] Figure 4 This is a diagram showing the installation of the supporting steel plate for this application.
[0029] Reference numerals: 1. Load-bearing layer; 2. Buffer layer; 3. Ground layer; 4. First connecting folding plate; 5. Solid upright; 6. Handrail; 7. Fixing clamp; 8. Transparent plate; 9. Limiting insert; 10. Continuous square tube;
[0030] 11. Connecting aluminum plate; 12. Right-angle fixing plate; 13. Supporting rib plate; 14. Supporting steel plate; 15. Partition plate; 16. Second connecting folding plate; 17. Arc-shaped cover plate; 18. Supporting ridge plate; 19. Threaded steel plate;
[0031] 20. Filler beam; 21. Connecting pad; 22. Support beam; 23. Linear light; 24. Concealed light. Detailed Implementation
[0032] The following is in conjunction with the appendix Figure 1 - Figure 4 This application will be described in further detail.
[0033] This application discloses a spliced aluminum barrier structure.
[0034] Reference Figure 1 , Figure 2 A spliced aluminum barrier structure includes a load-bearing layer 1. A first connecting folding plate 4 is screwed to one side of the upper end face of the load-bearing layer 1. The first connecting folding plate 4 is bent into a double L shape. A threaded steel plate 19 is fixed to the upper end face of the first connecting folding plate 4 near the load-bearing layer 1 by screws. The threaded steel plate 19 is 4mm thick and is used to provide auxiliary support. A buffer layer 2 is fixed to the upper end face of the threaded steel plate 19. The buffer layer 2 completely covers the threaded steel plate 19 and is fixed to one side of the surface of the load-bearing layer 1. A ground layer 3 is laid on the upper end face of the buffer layer 2 for people to walk on. A solid upright 5 is fixed to the upper end face of the ground layer 3 near the edge. The solid upright 5 is made of 20mm thick original stainless steel. A handrail 6 is fixed to the top of the solid upright 5 and the handrail 6 is fixed to the solid upright 5 by countersunk screws.
[0035] A filling beam 20 is screwed onto the surface of the first connecting folding plate 4 away from the first connecting folding plate 4. A fixing clamp 7 is fixed onto the surface of the filling beam 20 away from the first connecting folding plate 4. At the same time, the bottom of the fixing clamp 7 is fixed to the bent upper end surface of the first connecting folding plate 4. A groove is opened inward in the middle of the fixing clamp 7, and a transparent plate 8 is fixed in the groove. The transparent plate 8 is made of tempered laminated ultra-white glass material to improve its own hardness. The top of the transparent plate 8 protrudes from the groove of the fixing clamp 7 and is fixed to the lower end surface of the handrail 6. The fixing point is fixed with countersunk screws. A limiting insert 9 is wrapped around the surface of the transparent plate 8 protruding from the groove of the fixing clamp 7. The limiting insert 9 is in a through state with the transparent plate 8, and a finished adhesive strip is glued at the through opening of the limiting insert 9.
[0036] It should be noted that both the upper and lower ends of the side surface of the fixing plate 7 away from the filling beam are fixed with a continuous square tube 10. The continuous square tube 10 located at the upper end is fixedly connected to the limiting insert plate 9. The gap between the groove of the fixing plate 7 and the transparent plate 8 is filled with gypsum putty. A hard rubber pad is fixed between the bottom of the groove of the fixing plate 7 and the transparent plate 8, thereby improving the fixing effect of the transparent plate 8 and preventing loosening.
[0037] Reference Figure 1 , Figure 3 , Figure 4 Both sides of the lower end face of the first connecting plate 4 located on the side of the load-bearing layer 1 are fixed with right-angle fixing plates 12 by screws. The right-angle fixing plate 12 on the side closer to the load-bearing layer 1 is fixed to the load-bearing layer 1 by screws. The right-angle fixing plate 12 on the side away from the load-bearing layer 1 is fixed with a connecting aluminum plate 11 by screws. The top of the side surface of the connecting aluminum plate 11 is fixed with two long square tubes 10. The connecting aluminum plate 11 is made of 2.5mm blue corrugated aluminum profile. At the same time, the bottom of the opposite side of the two right-angle fixing plates 12 is fixed with a support rib plate 13. The support rib plate 13 is fixed together with the load-bearing layer 1 and the connecting aluminum plate 11 by the two right-angle fixing plates 12. The lower end face of the right-angle fixing plate 12 on the side away from the load-bearing layer 1 is fixed with a support steel plate 14, and the support steel plate 14 is attached and fixed to the connecting aluminum plate 11.
[0038] A partition 15 is fixed at the bottom of the load-bearing layer 1. One end of the partition 15 extends and is fixed to the side wall of the supporting steel plate 14. An inclined bracket is fixed at the lower end of the partition 15. The other end of the bracket is fixed to the side wall of the supporting steel plate 14, thereby helping to improve stability. A multi-fold L-shaped connecting pad 21 is fixed at the bottom of the connecting pad 21 and the supporting steel plate 14. A supporting beam 22 is fixed at the bottom of the connecting pad 21 at the position of the connecting aluminum plate 11. A second connecting fold plate 16 is fixed at the bottom of the connecting pad 21 and the end face of the supporting beam 22. A linear light 23 is fixed at the upper end of the second connecting fold plate 16 on one side of the supporting beam 22. At the same time, an L-shaped supporting ridge plate 18 is fixed at the lower end of the second connecting fold plate 16. A hidden light 24 is fixed between the L-shaped protruding surface of the supporting ridge plate 18 and the second connecting fold plate 16. The light of the hidden light 24 diffuses outward from the bifurcation of the supporting ridge plate 18 and the second connecting fold plate 16.
[0039] It should be noted that there is a certain space between the supporting ridge plate 18 and the partition plate 15, which provides space for the installation of the power supply lines and power supply equipment for connecting the linear lights 23 and the concealed lights 24. At the same time, an arc-shaped cover plate 17 is fixed on the side of the lower end of the second connecting folding plate 16 away from the concealed lights 24. The arc-shaped cover plate 17 covers the supporting ridge plate 18 in an arc shape. The supporting ridge plate 18 is made of a semi-transparent gradient material, which allows the light emitted by the concealed lights 24 to pass through while shielding the supporting ridge plate 18, thus improving the aesthetics.
[0040] The implementation principle of the spliced aluminum barrier structure in this application embodiment is as follows: When using this structure, a first connecting plate 4 needs to be installed on one side of the top of the load-bearing layer 1. After the first connecting plate 4 is installed, a threaded steel plate 19 is laid along the installation point to improve the support. Then, a buffer layer 2 is laid along the installation point of the threaded steel plate 19. Finally, a ground layer 3 is laid on the buffer layer 2, thereby completing the installation of the road surface for people to walk on.
[0041] A filling beam 20 is fixed on the bent surface of the first connecting plate 4. A fixing clamp 7 is fixed on the side surface of the filling beam 20. A transparent plate 8 is fixed in the groove inside the fixing clamp 7 by materials such as gypsum and hard rubber pads. The transparent plate 8 protrudes from the fixing clamp 7 up to the waist height of the person. At the same time, multiple solid uprights 5 are arranged on the surface of the ground layer 3 at the protruding position of the transparent plate 8. The multiple solid uprights 5 are fixed to the top of the transparent plate 8 by screws and handrails 6, thereby forming a river-blocking fence for people to climb.
[0042] Long rectangular tubes 10 are fixed at both ends of the side surface of the fixed clamping plate 7 away from the filling beam 20. The long rectangular tubes 10 and the connecting aluminum plate 11 are thus fixed together. In addition, the connecting aluminum plate 11 is fixed to the load-bearing layer 1 through the fixed relationship of the supporting steel plate 14 and the partition 15, which improves the fixing effect of the fixed clamping plate 7. The fixed connection between the connecting aluminum plate 11 and the supporting steel plate 14 provides a fixed support point for the connection of the second connecting folding plate 16. The bottom of the second connecting folding plate 16 is fixed with an arc-shaped cover plate 17, which fixes the top and bottom of the second connecting folding plate 16, ensuring the installation stability of the linear light 23 and the hidden light 24. Under normal conditions, the light of the linear light 23 is directly emitted outward, forming a diffusion from bottom to top to the surface of the connecting aluminum plate 11. Combined with the blue corrugated material of the connecting aluminum plate 11, it improves the appearance. Thus, the assembly method facilitates installation, shortens the installation cycle, and reduces construction costs. At the same time, the overall fixation forms an overall stability, effectively ensuring the safety of the river dam.
[0043] The above are merely optional embodiments of this disclosure and are not intended to limit this disclosure. Various modifications and variations can be made to this disclosure by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this disclosure should be included within the scope of protection of this disclosure.
Claims
1. A spliced aluminum barrier structure, characterized in that: Includes a load-bearing layer (1), a buffer layer (2) for reducing the impact force is provided on the top of the load-bearing layer (1), a ground layer (3) for people to walk on is provided on the top of the buffer layer (2), a first connecting plate (4) is provided on one side between the load-bearing layer (1) and the buffer layer (2), a connecting aluminum plate (11) is provided on the front end face of the first connecting plate (4) away from the load-bearing layer (1), a supporting rib (13) is provided on the bottom side of the first connecting plate (4) away from the load-bearing layer (1), and a supporting steel plate (14) that abuts against the connecting aluminum plate (11) is connected to the side of the supporting rib (13) away from the load-bearing layer (1); A second connecting folding plate (16) is fixedly provided at the bottom of the supporting steel plate (14) and the connecting aluminum plate (11). A linear light (23) is provided between the top of the second connecting folding plate (16) and the connecting aluminum plate (11). A supporting ridge plate (18) is fixedly provided at the bottom of the second connecting folding plate (16). A hidden light (24) is provided on the side of the top of the supporting ridge plate (18) located below the second connecting folding plate (16). A solid upright (5) is fixedly installed on one side of the top of the ground layer (3). A fixed clamp (7) is installed on the top of the first connecting folding plate (4) on the side away from the load-bearing layer (1). A transparent plate (8) is fixed inside the fixed clamp (7). Handrails (6) are fixed on the top of both the fixed clamp (7) and the transparent plate (8) to form a guardrail.
2. The spliced aluminum barrier structure according to claim 1, characterized in that: Both ends of the connecting aluminum plate (11) and the fixing clamp (7) are fixed with a continuous square tube (10). A limiting insert (9) is fixed at the top of the continuous square tube (10) at the upper end. The limiting insert (9) is inserted and fixedly connected to the transparent plate (8).
3. The spliced aluminum barrier structure according to claim 1, characterized in that: A right-angle fixing plate (12) is fixed between the first connecting folding plate (4) and the supporting rib plate (13), and the right-angle fixing plate (12) is fixed to the connecting aluminum plate (11) on the side away from the load-bearing layer (1).
4. The spliced aluminum barrier structure according to claim 1, characterized in that: The bottom of the load-bearing layer (1) is fixedly provided with a partition (15), and the bottom of the partition (15) is fixedly connected to the supporting steel plate (14) through an inclined beam.
5. The spliced aluminum barrier structure according to claim 1, characterized in that: A threaded steel plate (19) for strengthening stability is fixed between the buffer layer (2) and the first connecting folding plate (4).
6. The spliced aluminum barrier structure according to claim 1, characterized in that: A filler beam (20) is screwed between the first connecting folding plate (4) and the fixed clamping plate (7) to support the buffer layer (2), the ground layer (3) and the fixed clamping plate (7).
7. The spliced aluminum barrier structure according to claim 1, characterized in that: A connecting pad (21) is fixed between the bottom of the connecting aluminum plate (11) and the supporting steel plate (14) and the second connecting folding plate (16). A supporting beam (22) that is fixed to the second connecting folding plate (16) is fixed on one side of the bottom of the connecting pad (21).
8. The spliced aluminum barrier structure according to claim 1, characterized in that: A semi-transparent, gradient arc-shaped cover plate (17) is fixed on one side of the bottom of the second connecting folding plate (16).