Metal anti-flood wall with height convenient to adjust
By incorporating sliding movable baffles and retractable diagonal braces into the metal flood control wall, the problem of the inability to adjust the height of the baffles was solved, achieving effective flood control and convenient transportation in different water level environments.
Patent Information
- Application Number
- CN202423193622.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-24
AI Technical Summary
The height of the existing metal flood walls cannot be adjusted, resulting in poor performance in different water level environments, especially at high water levels where they are easily submerged by floodwaters.
A flood control wall composed of fixed baffles and movable baffles was designed. The movable baffles can slide up and down to adjust the water blocking height and provide stable support through telescopic diagonal braces. All parts are detachably connected to facilitate overall transportation.
It achieves the applicability of the flood control wall in different water level environments, ensures that the movable baffle can withstand the impact of floods, and facilitates overall transportation and assembly.
Smart Images

Figure CN223620842U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of metal flood control wall technology, specifically a metal flood control wall with adjustable height. Background Technology
[0002] Metal flood walls are barrier systems designed to prevent flooding, using metal materials (such as steel or aluminum alloys) as the primary structural material. This type of flood control combines the robustness and corrosion resistance of metals, making it an effective means of flood prevention, particularly suitable for areas prone to flooding or requiring temporary flood control measures.
[0003] The utility model with announcement number CN211646249U discloses a flood control wall, which includes multiple parallel and spaced columns. When flood control work is required, the columns are first erected on the ground, and the two sides of the movable baffle are inserted into the two opposite grooves of the columns. Then, the movable baffle is fixed to the columns by a fixing component, thereby realizing a detachable connection between the baffle and the columns. It has the advantages of being not easily damaged, having a long service life, and having a significant water-blocking effect.
[0004] When the above-mentioned device is in use, the water-blocking height of its baffle cannot be adjusted. The working position of the flood wall is usually not fixed and may frequently switch between low water level and high water level operating environments. If the blocking height of the flood wall is not adjustable, when it is set at a flood control point with a lower water level, i.e. a high water level, floods are likely to overflow the wall, making the flood control work almost ineffective. Therefore, in order to solve the above problems, a metal flood wall with adjustable height is proposed. Utility Model Content
[0005] The technical problem this invention aims to solve is to provide a metal flood control wall with easily adjustable height. The main body of this metal flood control wall consists of a fixed baffle and a movable baffle that slides within it. The water-blocking height of the baffle can be adjusted by sliding the movable baffle up and down, making the flood control wall suitable for different working environments. Correspondingly, the support length of the telescopic brace is adjustable, thus providing stable support to the movable baffle and ensuring it can withstand flood impacts. Furthermore, all parts of this metal flood control wall are detachably connected, facilitating overall transportation. This solves the technical problem in existing flood control walls where the water-blocking height of the baffles cannot be adjusted, making it inconvenient to adjust and use according to actual conditions.
[0006] The technical solution adopted by the embodiments of this application to solve its technical problem is:
[0007] An adjustable-height metal flood control wall includes a fixed baffle and a movable baffle that slides along its sides. The water-blocking height of the movable baffle can be adjusted by sliding it up and down, making the flood control wall suitable for different working environments. A detachable base is fixedly installed at the bottom of the fixed baffle to support it, and its rear end is connected to a bottom connecting plate. A telescopic diagonal brace is hinged at one end to the back of the movable baffle and at the other end to the bottom connecting plate, and its support length is adjustable. Correspondingly, the support length of the telescopic diagonal brace is adjustable, thus providing stable support to the movable baffle and ensuring that it can withstand flood impact. A fixed diagonal brace is bolted to the fixed baffle and the detachable base at both ends, providing stable support for the entire flood control wall.
[0008] In one possible implementation, the fixed baffle is bent at both ends to form a groove, the movable baffle is slidably disposed in the groove, and a waterproof gasket is attached to the groove. During the sliding process, both sides of the movable baffle are attached to the waterproof gasket. The above structure can achieve the sliding connection between the movable baffle and the fixed baffle, while also maintaining the waterproof sealing performance at the sliding connection, thus avoiding large-scale water seepage at the connection.
[0009] In one possible implementation, the retractable brace includes a lower hinge seat fixedly installed on the bottom connecting plate and an upper hinge seat fixedly installed on the back of the movable baffle. A sleeve rod is hinged to the lower hinge seat, and a sliding rod is slidably disposed in the sleeve rod. The top end of the sliding rod is hinged to the upper hinge seat. The above structure can realize the adjustment of the overall support length of the retractable brace by having the sliding rod slide in the sleeve rod.
[0010] In one possible implementation, the sleeve rod has a mating groove, and the bottom end of the sliding rod is fixedly provided with a slider that slides in the mating groove. A locking screw is fixedly provided on the slider, and a locking nut is threaded onto the locking screw. After the relative position of the sliding rod and the sleeve rod is adjusted, the locking nut is tightened. The relative position relationship between the sliding rod and the sleeve rod is fixed by friction, which serves to fix the overall support length of the telescopic brace.
[0011] In one possible implementation, a first bent ridge is formed on the fixed baffle, and a second bent ridge is formed on the movable baffle. During the sliding of the movable baffle, the second bent ridge slides in the groove formed on the back of the first bent ridge. In the above structure, the first bent ridge and the second bent ridge can respectively enhance the bending strength of the fixed baffle and the movable baffle, thereby ensuring that they will not bend or deform due to water pressure when resisting floods.
[0012] In one possible implementation, an upper plate is fixedly installed at the top of the movable baffle, and a guide rod is fixedly installed on it. A guide cylinder plate is fixedly installed on the front end face of the fixed baffle. The guide rod is slidably installed in the guide cylinder plate, which guides the relative sliding between the fixed baffle and the movable baffle by sliding in the guide cylinder plate, thus preventing deviation or misalignment during the sliding process. In addition, the combined effect of the guide rod and the guide cylinder plate can also play an auxiliary support role, thereby enhancing the overall structural strength.
[0013] In one possible implementation, the fixed baffle is fixedly provided with a connecting foot at its bottom end, and the detachable base includes a bottom beam plate. The bottom beam plate is fixedly provided with an overlapping bend head and an end connecting plate at both ends, respectively. The overlapping bend head is bolted to the connecting foot, and the end connecting plate is bolted to the bottom connecting plate. The above structure can provide stable support for the fixed baffle, ensuring the overall flood resistance of the flood wall. At the same time, this detachable connection method can also facilitate the transportation of the entire flood wall.
[0014] In one possible implementation, the fixed diagonal brace includes a diagonal brace rod, with end plates fixedly installed at both ends of the diagonal brace rod. The end plates are bolted to a fixed baffle and a detachable base. This detachable connection method also facilitates the transportation of the entire flood control wall.
[0015] In summary, this utility model has the following beneficial technical effects:
[0016] The main body of this metal flood control wall consists of a fixed baffle and a movable baffle that slides within it. The water-blocking height of the baffle can be adjusted by sliding the movable baffle up and down, making the flood control wall suitable for different working environments. Correspondingly, the support length of the telescopic diagonal brace is adjustable, thus providing stable support to the movable baffle and ensuring that the movable baffle can withstand the impact of floods. In addition, all parts of the metal flood control wall adopt a detachable connection method, which facilitates the overall transportation, that is, disassembling into individual parts during transportation and assembling them during use. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the raised state of this utility model;
[0020] Figure 3 This is a front view of the utility model in its raised state;
[0021] Figure 4 This is a schematic diagram of the partially detachable structure of this utility model.
[0022] In the diagram: 1. Fixed baffle; 11. First bending protrusion; 12. Guide tube plate; 13. Connecting foot; 2. Movable baffle; 21. Second bending protrusion; 22. Upper plate; 23. Guide rod; 3. Detachable base; 31. Bottom beam plate; 32. Overlapping bending head; 33. End connecting plate; 4. Bottom connecting plate; 5. Telescopic diagonal brace; 51. Lower hinge seat; 52. Upper hinge seat; 53. Sleeve rod; 54. Sliding rod; 55. Sliding block; 56. Locking screw; 57. Locking nut; 6. Fixed diagonal brace; 61. Diagonal brace rod; 62. End plate. Detailed Implementation
[0023] The technical solution in this application embodiment is to solve the problems mentioned in the background art, and the overall idea is as follows:
[0024] like Figure 1 - Figure 2 As shown in the figure, this embodiment provides a metal flood control wall with adjustable height, including a fixed baffle 1, wherein a movable baffle 2 is slidably arranged, and the water blocking height of the baffle can be adjusted by sliding the movable baffle 2 up and down, so that the flood control wall can be adapted to different working environments. A detachable base 3 is fixedly installed at the bottom of the fixed baffle 1 to support the fixed baffle 1, and its rear end is connected to a bottom connecting plate 4. A telescopic diagonal brace 5 is hinged at one end to the back of the movable baffle 2 and at the other end to the bottom connecting plate 4, and its support length is adjustable. Correspondingly, the support length of the telescopic diagonal brace 5 is adjustable, so it can provide stable support for the movable baffle 2 and ensure that the movable baffle 2 can resist the impact of floods. A fixed diagonal brace 6 is bolted to the fixed baffle 1 and the detachable base 3 at both ends, respectively, and can provide stable support for the entire flood control wall.
[0025] In order to ensure the water-blocking performance at the connection, the fixed baffle 1 is bent at both ends to form a groove, the movable baffle 2 is slidably placed in the groove, and a waterproof rubber pad is attached to the groove. During the sliding process, both sides of the movable baffle 2 are attached to the waterproof rubber pad. The above structure can achieve the sliding connection between the movable baffle 2 and the fixed baffle 1, while also maintaining the waterproof sealing performance at the sliding connection, and avoiding large-scale water seepage at the connection.
[0026] like Figure 1 - Figure 2As shown, the telescopic brace 5 includes a lower hinge seat 51 fixedly installed on the bottom connecting plate 4, and an upper hinge seat 52 fixedly installed on the back of the movable baffle 2. A sleeve rod 53 is hinged to the lower hinge seat 51, and a sliding rod 54 is slidably arranged in the sleeve rod 53. The top end of the sliding rod 54 is hinged to the upper hinge seat 52. The above structure allows the sliding rod 54 to slide in the sleeve rod 53, thereby realizing the adjustment of the overall support length of the telescopic brace 5.
[0027] The sleeve rod 53 has a mating groove, and the bottom end of the sliding rod 54 is fixedly provided with a slider 55 that slides in the mating groove. A locking screw 56 is fixedly provided on the slider 55, and a locking nut 57 is threadedly connected to the locking screw 56. After the relative position of the sliding rod 54 and the sleeve rod 53 is adjusted, the locking nut 57 is tightened. The relative position relationship between the sliding rod 54 and the sleeve rod 53 is fixed by friction, which plays the role of fixing the overall support length of the telescopic diagonal brace 5.
[0028] like Figure 1 - Figure 3 As shown, a first bent ridge 11 is formed on the fixed baffle 1, and a second bent ridge 21 is formed on the movable baffle 2. During the sliding process of the movable baffle 2, the second bent ridge 21 slides in the groove formed on the back of the first bent ridge 11. In the above structure, the first bent ridge 11 and the second bent ridge 21 can respectively enhance the bending strength of the fixed baffle 1 and the movable baffle 2, thereby ensuring that they will not bend or deform due to water pressure when resisting floods.
[0029] like Figure 3 As shown, an upper plate 22 is fixedly installed at the top of the movable baffle 2, and a guide rod 23 is fixedly installed on it. A guide cylinder plate 12 is fixedly installed on the front end face of the fixed baffle 1. The guide rod 23 is slidably installed in the guide cylinder plate 12. The structure in which the guide rod 23 slides in the guide cylinder plate 12 guides the relative sliding between the fixed baffle 1 and the movable baffle 2, and avoids deviation or misalignment during the sliding process. In addition, the combined effect of the guide rod 23 and the guide cylinder plate 12 can also play an auxiliary support role, thereby enhancing the overall structural strength.
[0030] like Figure 4 As shown, the fixed baffle 1 is fixedly provided with a connecting foot 13 at the bottom end. The detachable base 3 includes a bottom beam plate 31. The bottom beam plate 31 is fixedly provided with an overlapping bend head 32 and an end connecting plate 33 at both ends. The overlapping bend head 32 is bolted to the connecting foot 13, and the end connecting plate 33 is bolted to the bottom connecting plate 4. The above structure can provide stable support for the fixed baffle 1 and ensure the overall flood resistance of the flood wall. At the same time, this detachable connection method can also facilitate the transportation of the entire flood wall.
[0031] In addition, the fixed diagonal brace 6 includes a diagonal brace 61, and end plates 62 are fixedly installed at both ends of the diagonal brace 61. The end plates 62 are bolted to the fixed baffle 1 and the detachable base 3. This detachable connection method can also facilitate the transportation of the entire flood control wall.
[0032] The working principle and usage process of this utility model:
[0033] The main body of the metal flood control wall consists of a fixed baffle 1 and a movable baffle 2 that slides within it. The water-blocking height of the baffle can be adjusted by sliding the movable baffle 2 up and down, making the flood control wall suitable for different working environments. Correspondingly, the support length of the telescopic brace 5 is adjustable, thus providing stable support to the movable baffle 2 and ensuring that the movable baffle 2 can withstand the impact of floods.
[0034] The fixed baffle 1 has grooves formed by bending at both ends. The movable baffle 2 is slidably set in the grooves, and a waterproof gasket is attached to the grooves. During the sliding process, both sides of the movable baffle 2 are attached to the waterproof gasket. While realizing the sliding connection between the movable baffle 2 and the fixed baffle 1, the waterproof sealing performance of the sliding connection can also be maintained to avoid large-scale water seepage at the connection.
[0035] The telescopic brace 5 uses a sliding rod 54 that slides in the sleeve rod 53 to adjust the overall support length of the telescopic brace 5. After the relative position of the sliding rod 54 and the sleeve rod 53 is adjusted, the locking nut 57 is tightened. The relative position of the sliding rod 54 and the sleeve rod 53 is fixed by friction, which fixes the overall support length of the telescopic brace 5.
[0036] In addition, the metal flood control wall is connected in a detachable manner, which makes it easy to transport as a whole, that is, to disassemble into individual parts during transportation and to assemble when in use.
[0037] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A metal flood control wall with adjustable height, characterized in that, include: A fixed baffle (1) is provided, wherein a movable baffle (2) is slidably provided; A detachable base (3) is fixedly installed at the bottom of a fixed baffle (1) to support the fixed baffle (1), and its rear end is connected to a bottom connecting plate (4). The telescopic diagonal brace (5) has one end hinged to the back of the movable baffle (2) and the other end hinged to the bottom connecting plate (4), and its support length is adjustable. The fixed diagonal brace (6) is bolted to the fixed baffle (1) and the detachable base (3) at both ends.
2. The metal flood control wall with adjustable height according to claim 1, characterized in that: The fixed baffle (1) has grooves formed by bending at both ends. The movable baffle (2) is slidably set in the groove, and a waterproof pad is attached to the groove. During the sliding process, both sides of the movable baffle (2) are attached to the waterproof pad.
3. A metal flood control wall with adjustable height according to claim 1, characterized in that: The retractable diagonal brace (5) includes a lower hinge seat (51) fixedly installed on the bottom connecting plate (4) and an upper hinge seat (52) fixedly installed on the back of the movable baffle (2). A sleeve rod (53) is hinged on the lower hinge seat (51), and a sliding rod (54) is slidably arranged in the sleeve rod (53). The top end of the sliding rod (54) is hinged to the upper hinge seat (52).
4. A metal flood control wall with adjustable height according to claim 3, characterized in that: The sleeve rod (53) has a mating groove, and the bottom end of the sliding rod (54) is fixedly provided with a slider (55) that slides in the mating groove. A locking screw (56) is fixedly provided on the slider (55), and a locking nut (57) is threadedly connected to the locking screw (56).
5. A metal flood control wall with adjustable height according to claim 1, characterized in that: The fixed baffle (1) has a first bent ridge (11) formed on it, and the movable baffle (2) has a second bent ridge (21) formed on it. During the sliding process of the movable baffle (2), the second bent ridge (21) slides in the groove formed on the back of the first bent ridge (11).
6. A metal flood control wall with adjustable height according to claim 1, characterized in that: The top of the movable baffle (2) is fixedly provided with an upper plate (22), on which a guide rod (23) is fixedly provided. The front end face of the fixed baffle (1) is fixedly provided with a guide cylinder plate (12), wherein the guide rod (23) is slidably provided in the guide cylinder plate (12).
7. A metal flood control wall with adjustable height according to claim 1, characterized in that: The fixed baffle (1) is fixedly provided with a connecting foot (13) at the bottom end. The detachable base (3) includes a bottom beam plate (31). The bottom beam plate (31) is fixedly provided with an overlapping bending head (32) and an end connecting plate (33) at both ends. The overlapping bending head (32) is bolted to the connecting foot (13), and the end connecting plate (33) is bolted to the bottom connecting plate (4).
8. A metal flood control wall with adjustable height according to claim 1, characterized in that: The fixed diagonal brace (6) includes a diagonal brace (61), and end plates (62) are fixedly installed at both ends of the diagonal brace (61). The end plates (62) are bolted to the fixed baffle (1) and the detachable base (3).
Citation Information
Patent Citations
Flood prevention wall
CN211646249U