Aluminum mold arc-shaped water drip reserved structural mold
By reserving a pre-constructed aluminum formwork for the curved drip line and utilizing the design of positioning columns and splicing mechanisms, the accuracy and stability issues of traditional drip lines in curved structural areas have been solved, enabling efficient and precise drip line construction and improving the building's appearance quality and waterproofing effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- MCC TIANGONG GROUP
- Filing Date
- 2025-06-03
- Publication Date
- 2026-05-19
AI Technical Summary
Traditional drip line construction methods struggle to ensure the precision and stability of the formwork in curved structural areas, resulting in slow construction speed, poor quality, and negatively impacting the building's aesthetic appearance.
An aluminum mold with an arc-shaped drip line is used to reserve a structural mold. By setting positioning columns and positioning holes on the arc-shaped aluminum plate body, and using the threaded columns and inclined plates in the splicing mechanism, the template can be quickly aligned and fastened. Combined with high and low temperature resistant rubber gaskets, the sealing performance is improved, ensuring that rainwater falls naturally along the arc-shaped part.
It improves construction efficiency and molding accuracy, avoids problems such as grout leakage and misalignment, reduces construction difficulty, enhances the aesthetic appearance of the building, and reduces rainwater pollution and leakage risks to the wall surface.
Smart Images

Figure CN224259863U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of drip line construction technology for buildings, specifically a pre-reserved construction mold for an aluminum mold arc-shaped drip line. Background Technology
[0002] As is well known, in the construction process, especially for areas that need to prevent rainwater from flowing down the building edges and polluting the walls or causing leaks, such as balconies and window sills, the design and construction of drip lines are particularly important. Traditional drip line construction usually relies on concrete pouring or manual installation later. However, these methods have some significant problems and limitations. Traditional drip line construction often requires on-site concrete pouring, which not only increases the labor intensity of workers but also slows down the construction speed. In addition, if manual installation is used later, it may increase time costs due to the need for precise measurement and cutting of materials. Due to the limitations of traditional construction methods, especially in curved structures, it is difficult to guarantee the accuracy and stability of the template, which can easily lead to problems such as irregular shape and uneven surface. These problems directly affect the final drip line effect and reduce the overall aesthetics of the building. Therefore, it is necessary to propose solutions to this technical problem. Utility Model Content
[0003] (a) Technical problems to be solved
[0004] To address the shortcomings of existing technologies, this utility model provides a pre-reserved structural mold for an aluminum mold arc-shaped drip line.
[0005] (II) Technical Solution
[0006] To achieve the above objectives, this utility model provides the following technical solution: a pre-reserved structural mold for an arc-shaped drip line in an aluminum mold, comprising an arc-shaped aluminum plate body, an arc-shaped component at the bottom end of the arc-shaped aluminum plate body, an installation mechanism, a positioning mechanism, and a splicing mechanism on the arc-shaped aluminum plate body, the positioning mechanism comprising a positioning hole and a positioning post, the positioning post being installed at one end of the arc-shaped aluminum plate body, the positioning hole being opened at the other end of the arc-shaped aluminum plate body, the splicing mechanism comprising a fastening box and a fastening groove, the fastening groove being opened at the bottom of one end of the arc-shaped aluminum plate body, the fastening groove having an inclined groove, the fastening box being installed at the bottom of the other end of the arc-shaped aluminum plate body, the fastening box having a lifting groove, the lifting groove having a lifting plate, the lifting plate having an inclined plate, the top of the fastening box having an opening, the lifting plate having a threaded hole, a threaded post being provided between the threaded hole and the opening, and a bearing seat being provided between the threaded post and the lifting groove.
[0007] Furthermore, the present invention is improved in that the mounting mechanism includes a mounting plate, which is mounted on one side of the top end of the arc-shaped aluminum plate body. The mounting plate has mounting holes, and there are two mounting plates arranged symmetrically.
[0008] Furthermore, the present invention is improved in that the positioning mechanism is provided in multiple and arranged in an array.
[0009] Furthermore, the present invention is improved in that a sliding groove is provided at one end of the lifting plate, and a slider is provided on the lifting groove, the slider being located in the sliding groove.
[0010] Furthermore, the present invention is improved in that both the groove and the slider are T-shaped.
[0011] Furthermore, the present invention is improved in that the inclination angle of the inclined groove is ° to °, and the inclination angle of the inclined plate matches that of the inclined groove.
[0012] Furthermore, the present invention is improved by providing a rubber pad on one side of the arc-shaped aluminum plate body, and the rubber pad is made of high and low temperature resistant rubber material.
[0013] (III) Beneficial Effects
[0014] Compared with the prior art, this utility model provides a pre-reserved structural mold for an aluminum mold arc-shaped drip line, which has the following beneficial effects:
[0015] This aluminum formwork features a pre-reserved structure for the arc-shaped drip line. By setting a positioning post at one end of the arc-shaped aluminum plate and a positioning hole at the other end, it achieves rapid alignment and initial fixation between two templates. This not only improves installation efficiency but also effectively prevents template misalignment. When the threaded column in the splicing mechanism rotates, the lifting plate moves linearly along the lifting groove using the screw drive principle. This causes the inclined plate to contact the inclined groove in the fastening groove and generate lateral thrust, thereby firmly pressing the two adjacent arc-shaped aluminum plates together. This results in a tighter splice and effectively avoids grout leakage and misalignment caused by poor splicing in traditional templates. The design eliminates issues such as seams, significantly improving construction quality and forming precision. The splicing operation can be completed without complex tools or multiple people working together, and workers only need simple training to master the usage method, greatly reducing construction difficulty. The entire structure is made of aluminum alloy, possessing excellent strength and corrosion resistance. An arc-shaped component is located at the bottom of the arc-shaped aluminum plate body. This component not only serves a design purpose but, more importantly, has excellent rainwater guiding function. When rainwater flows to the edge, it accumulates along the curved surface of the component and eventually falls naturally, preventing rainwater from directly washing over the wall surface and reducing wall pollution and leakage risks. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of the present utility model. Figure 1 ;
[0017] Figure 2 This is a schematic diagram of the structure of the present utility model. Figure 2 ;
[0018] Figure 3 This is a right half-sectional view of the structure of this utility model;
[0019] Figure 4 This is a frontal half-sectional view of the structure of this utility model.
[0020] In the diagram: 1. Curved aluminum plate body; 2. Curved component; 3. Positioning hole; 4. Positioning post; 5. Fastening box; 6. Fastening groove; 7. Inclined groove; 8. Lifting plate; 9. Inclined plate; 10. Threaded post; 11. Bearing seat; 12. Mounting plate; 13. Mounting hole; 14. Slider; 15. Rubber pad. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figures 1-4This utility model relates to a pre-reserved structural mold for an arc-shaped drip line on an aluminum mold, comprising an arc-shaped aluminum plate body 1, an arc-shaped component 2 at the bottom end of the arc-shaped aluminum plate body 1, and an installation mechanism, a positioning mechanism, and a splicing mechanism on the arc-shaped aluminum plate body 1. The positioning mechanism includes a positioning hole 3 and a positioning post 4, the positioning post 4 being installed at one end of the arc-shaped aluminum plate body 1, and the positioning hole 3 being located at the other end of the arc-shaped aluminum plate body 1. The splicing mechanism includes a fastening box 5 and a fastening groove 6, the fastening groove 6 being located at the bottom of one end of the arc-shaped aluminum plate body 1. The fastening groove 6 has an inclined groove 7. The fastening box 5 is installed at the bottom of the other end of the arc-shaped aluminum plate body 1. The fastening box 5 has a lifting groove, and a lifting plate 8 is provided on the lifting groove. An inclined plate 9 is provided on the lifting plate 8. An opening is provided at the top of the fastening box 5. A threaded hole is provided on the lifting plate 8. A threaded post 10 is provided between the threaded hole and the opening. A bearing seat 11 is provided between the threaded post 10 and the lifting groove. In this embodiment, the positioning post 4 in the positioning mechanism on the arc-shaped aluminum plate body 1 is first used to connect with another arc-shaped aluminum plate body. The positioning holes 3 of the two arc-shaped aluminum plates 1 are aligned and abutted together, thus allowing the two arc-shaped aluminum plate bodies 1 to be joined together. At this time, the lifting plate 8 and the inclined plate 9 on one arc-shaped aluminum plate body 1 are exactly located in the fastening groove 6 of the other arc-shaped aluminum plate body 1. Then, the threaded column 10 of the fastening box 5 is rotated. The threaded column 10 rotates stably in the opening and the lifting groove through the bearing seat 11, thus enabling the lifting plate 8 to move linearly in the lifting groove. This causes the inclined plate 9 on the lifting plate 8 to contact and abut against the inclined groove 7. The inclination angle of the inclined groove 7 and the inclined plate 9 can generate a lateral thrust, thereby causing the two arc-shaped aluminum plate bodies 1 to move together. The two curved aluminum plate bodies 1 are more tightly bonded together to ensure the sealing of the connection between them. Then, the curved aluminum plate bodies 1 are installed on the building using an installation mechanism. The installation mechanism is a common installation component in the prior art and will not be described in detail in this structure. The overall structure of the curved aluminum plate bodies 1 allows rainwater to flow into the curved parts 2 at the edge. The curved parts 2 allow rainwater to accumulate and fall directly off when it reaches the edge. The combination of the curved aluminum plate bodies 1 and the curved parts 2 reduces the erosion of the wall surface by water flow.
[0023] To further facilitate the installation and fixation of the curved aluminum plate body 1 onto the building, in this solution, the installation mechanism includes an installation plate 12. The installation plate 12 is installed on one side of the top end of the curved aluminum plate body 1. The installation plate 12 has two installation holes 13, which are symmetrically arranged. Through the installation holes 13 on the two symmetrically arranged installation plates 12, it is easy to assemble and fix the structure onto the building by using existing parts such as bolts through the installation holes 13.
[0024] In order to improve the positioning and assembly effect between multiple curved aluminum plate bodies 1, in this solution, the positioning mechanism is provided in multiple arrays, and the positioning and assembly stability between two curved aluminum plate bodies 1 can be improved by using multiple arrays of positioning mechanisms.
[0025] To improve the stability of the linear lifting movement of the lifting plate 8, in this design, a sliding groove is provided at one end of the lifting plate 8, and a slider 14 is provided on the lifting groove. The slider 14 is located in the sliding groove, which improves the stability of the lifting plate 8 sliding in the lifting groove, ensuring the linear movement stability and fixed firmness of the inclined plate 9. Both the sliding groove and the slider 14 are T-shaped structures, which further improve the linear movement stability of the lifting plate 8.
[0026] To ensure the fastening of the inclined plate 9 on the inclined groove 7, in this scheme, the inclination angle of the inclined groove 7 is 15° to 45°, and the inclination angle of the inclined plate 9 matches that of the inclined groove 7. By matching the angles of the inclined groove 7 and the inclined plate 9, the inclined plate 9 is firmly and reliably pressed against the inclined groove 7, ensuring the tight connection of the contact surfaces of the two arc-shaped aluminum plate bodies 1.
[0027] To improve the sealing performance at the joint of the two curved aluminum plate bodies 1, in this solution, a rubber pad 15 is provided on one side of the curved aluminum plate body 1. The rubber pad 15 is made of high and low temperature resistant rubber. The rubber pad 15 can further improve the sealing performance of the curved aluminum plate body 1. The high and low temperature resistant rubber material can improve the adaptability to high temperature and low temperature environments, so that it can play a normal sealing role in harsh outdoor environments.
[0028] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An aluminum mold arc-shaped drip line reservation construction mold, characterized by, The system includes an arc-shaped aluminum plate body (1), with an arc-shaped component (2) at the bottom end of the arc-shaped aluminum plate body (1). The arc-shaped aluminum plate body (1) is equipped with an installation mechanism, a positioning mechanism, and a splicing mechanism. The positioning mechanism includes a positioning hole (3) and a positioning post (4). The positioning post (4) is installed at one end of the arc-shaped aluminum plate body (1), and the positioning hole (3) is located at the other end of the arc-shaped aluminum plate body (1). The splicing mechanism includes a fastening box (5) and a fastening groove (6). The fastening groove (6) is located at the other end of the arc-shaped aluminum plate body (1). At one end of the bottom of the fastening groove (6), a sloping groove (7) is provided. The fastening box (5) is installed at the other end of the arc-shaped aluminum plate body (1). A lifting groove is provided on the fastening box (5). A lifting plate (8) is provided on the lifting groove. A sloping plate (9) is provided on the lifting plate (8). An opening is provided at the top of the fastening box (5). A threaded hole is provided on the lifting plate (8). A threaded post (10) is provided between the threaded hole and the opening. A bearing seat (11) is provided between the threaded post (10) and the lifting groove.
2. The aluminum die arc-shaped drip line pre-configuration mold according to claim 1, characterized in that, The mounting mechanism includes a mounting plate (12), which is mounted on one side of the top end of the arc-shaped aluminum plate body (1). The mounting plate (12) has mounting holes (13), and there are two mounting plates (12) arranged symmetrically.
3. The aluminum die arc-shaped drip line pre-configuration mold according to claim 1, characterized in that, The positioning mechanism is provided in multiple units and arranged in an array.
4. The aluminum die arc-shaped drip line pre-configuration mold according to claim 1, characterized in that, The lifting plate (8) has a sliding groove at one end, and a slider (14) is provided on the lifting groove, with the slider (14) located in the sliding groove.
5. The aluminum die arc-shaped drip line pre-configuration mold according to claim 4, characterized in that, Both the groove and the slider (14) have a T-shaped structure.
6. The aluminum die arc-shaped drip line pre-configuration mold according to claim 1, characterized in that, The inclination angle of the inclined groove (7) is 15° to 45°, and the inclination angle of the inclined plate (9) matches that of the inclined groove (7).
7. The aluminum die arc-shaped drip line pre-configuration mold according to claim 1, characterized in that, A rubber pad (15) is provided on one side of the arc-shaped aluminum plate body (1), and the rubber pad (15) is made of high and low temperature resistant rubber material.