A quick-assembly flood control wall
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-08-14
AI Technical Summary
沙袋堆砌需要大量人力和时间,且防洪高度有限,抗冲刷能力较弱,在洪水冲击下容易出现垮塌现象,难以快速形成有效的防洪屏障,因此需要安装防洪墙
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Figure CN224633872U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of flood control engineering technology, specifically to a rapid-assembly flood control wall. Background Technology
[0002] During flood season, traditional flood control measures such as sandbag stacking have many drawbacks. Sandbag stacking requires a large amount of manpower and time, has limited flood control height, weak erosion resistance, and is prone to collapse under the impact of floods, making it difficult to quickly form an effective flood barrier. Therefore, flood walls are needed. However, current flood walls have long construction periods and require each assembled flood barrier to be fixed individually, making it inconvenient to quickly disassemble and adjust the overall height of the flood wall, thus failing to meet flood control needs in emergency situations. Utility Model Content
[0003] This utility model proposes a quick-assembly flood control wall that can provide a quick insertion channel for flood control panels through slots on both sides of the vertical poles, enabling rapid assembly of the flood control panels, and simultaneously locking the whole structure through a horizontal compression mechanism and a vertical compression mechanism.
[0004] Therefore, the technical solution adopted is as follows: A rapid-assembly flood control wall includes horizontal base bars and vertical uprights fixed at their ends. Each vertical upright has a vertically positioned slot on both sides. A flood control baffle is inserted into the inner side of each slot. The slot has a transverse pressing mechanism, including a pressing plate vertically positioned along the slot. An adjusting bolt passes through the side wall of the slot. One end of the adjusting bolt is rotatably connected to a push block. The push block abuts against one surface of the pressing plate by rotating the adjusting bolt, causing the other surface of the pressing plate to abut against the flood control baffle. When the push block is not in contact with the pressing plate, the pressing plate disengages from the flood control baffle via an elastic reset component.
[0005] A further technical solution is that the elastic reset assembly includes a limiting rod horizontally fixed on the extrusion plate, the other end of the limiting rod protruding through the side wall of the slot and fixed to a limiting plate, and a tension spring sleeved on the limiting rod connecting the limiting plate and the vertical rod.
[0006] A further technical solution includes a vertical extrusion mechanism, which includes a threaded rod fixed above a vertical pole. A locking nut and a lifting plate are fitted on the threaded rod. The locking nut is threadedly connected to the threaded rod. The lifting plate is located at the bottom of the nut and can slide up and down with the threaded rod. A pressure rod is fixed at the bottom of the lifting plate, and the bottom end of the pressure rod can contact the top of the flood control baffle.
[0007] A further technical solution is that a sealing strip is fixed at the top of the flood control baffle along its length, and a sealing groove adapted to the sealing strip is opened at the bottom of the flood control baffle at a corresponding position.
[0008] A further technical solution is that a vertically arranged sealing gasket is fixed inside the slot, and a stop block corresponding to the sealing gasket is fixed on the flood control baffle. When the flood control baffle is inserted into the slot, the stop block contacts the sealing gasket.
[0009] A further technical solution is that a diagonal brace is connected between the vertical pole and the horizontal base pole, and the two ends of the diagonal brace are fixed to the two poles respectively.
[0010] A further technical solution is that a fixing seat is fixed on the horizontal base rod, and a fixing hole is vertically opened on the fixing seat.
[0011] The working principle and beneficial effects of this application are as follows: 1. The slots on both sides of the vertical pole provide a quick insertion channel for the flood control baffle, eliminating the need for complex splicing and enabling rapid assembly of the flood control baffle. Furthermore, the overall height of the flood control wall can be controlled according to the number of flood control baffles.
[0012] 2. At the same time, the extrusion plate in the transverse extrusion mechanism applies transverse extrusion force to the flood control baffle, so that the flood control baffle fits tightly into the slot and prevents water from leaking out of the gap of the flood control baffle. By adjusting the bolt and pushing the push block, the extrusion force of the extrusion plate can be manually adjusted to meet the sealing requirements of flood control baffles of different thicknesses.
[0013] 3. Vertical pressure is applied to the flood control baffles through a vertical extrusion mechanism to prevent the flood control baffles from shifting upwards due to water flow impact, ensuring that there are no gaps between multiple flood control baffles and locking them together as a whole, thereby achieving rapid assembly, multi-directional sealing and structural stability of the flood control wall, and improving the efficiency of flood emergency response. Attached Figure Description
[0014] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0015] Figure 1 This is a schematic diagram of the overall structure of this application; Figure 2 This is a schematic diagram of the overall structure from another perspective of this application; Figure 3 This is a schematic diagram of the structure of the vertical pole described in this application; Figure 4 This is a schematic diagram of the structure of the flood control baffle described in this application; Figure 5 This is a schematic diagram of the vertical extrusion mechanism described in this application.
[0016] In the diagram: 1. Horizontal base rod; 2. Vertical support rod; 201. Slot; 202. Sealing gasket; 3. Diagonal brace; 4. Flood control baffle; 401. Sealing strip; 402. Abutment block; 403. Sealing groove; 5. Vertical extrusion mechanism; 501. Threaded rod; 502. Lifting plate; 503. Pressure rod; 504. Locking nut; 6. Horizontal extrusion mechanism; 601. Extrusion plate; 602. Limiting rod; 603. Limiting plate; 604. Tension spring; 605. Adjusting bolt; 606. Push block; 7. Fixed seat; 701. Fixed hole. Detailed Implementation
[0017] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.
[0018] like Figures 1-5 As shown, a quick-assembly flood control wall includes a horizontal base rod 1 and a vertical upright rod 2 fixed at their ends. Each vertical upright rod 2 has a vertically arranged slot 201 on both sides. A flood control baffle 4 is inserted into the inner side of each slot 201. The slot 201 has a transverse pressing mechanism 6, including a pressing plate 601 vertically arranged along the slot 201. An adjusting bolt 605 passes through the side wall of the slot 201. One end of the adjusting bolt 605 is rotatably connected to a push block 606. The push block 606 abuts against one surface of the pressing plate 601 by rotating the adjusting bolt 605, causing the other surface of the pressing plate 601 to abut against the flood control baffle 4. When the push block 606 is not in contact with the pressing plate 601, the pressing plate 601 disengages from the flood control baffle 4 through an elastic reset component.
[0019] One embodiment of the elastic reset assembly includes a limiting rod 602 horizontally fixed on the compression plate 601. The other end of the limiting rod 602 extends through the side wall of the slot 201 and is fixed with a limiting plate 603. A tension spring 604 sleeved on the limiting rod 602 is connected between the limiting plate 603 and the vertical rod 2.
[0020] Thus, in this embodiment, a pair of horizontal base rods 1 provide a bottom support foundation for the flood control wall, ensuring the overall structure's stability in contact with the ground. A vertical pole 2 at one end of the horizontal base rods 1 forms the flood control baffle installation frame. Slots 201 on both sides of the vertical pole 2 provide quick insertion channels for the flood control baffle 4, eliminating the need for complex splicing and enabling rapid assembly of the flood control baffle. A compression plate 601 in the transverse compression mechanism 6 applies transverse compression force to the flood control baffle 4, ensuring a tight fit and preventing water leakage from the gaps. Limiting rods 602 and limiting plates 603 restrict the compression plate 6... The 01 movement trajectory prevents the extrusion plate 601 from shifting and causing uneven extrusion. The tension spring 604 provides a restoring force to the extrusion plate 601, ensuring that the extrusion plate 601 is always away from the flood control baffle 4, facilitating the installation of the flood control baffle 4. The extrusion force of the extrusion plate 601 can be manually adjusted by pushing the push block 606 with the adjusting bolt 605, adapting to the sealing requirements of flood control baffles 4 of different thicknesses. The vertical extrusion mechanism 5 applies vertical pressure to the flood control baffle 4, preventing the flood control baffle from shifting upward due to water flow impact. The whole system achieves rapid assembly, multi-directional sealing and structural stability of the flood control wall, improving the efficiency of flood emergency response.
[0021] like Figure 5 As shown, one embodiment of the vertical compression mechanism 5 includes a threaded rod 501 fixed above the vertical pole 2. A locking nut 504 and a lifting plate 502 are sleeved on the threaded rod 501. The locking nut 504 is threadedly connected to the threaded rod 501. The lifting plate 502 is located at the bottom of the nut 504 and can slide up and down with the threaded rod 501. A pressure rod 503 is fixed at the bottom of the lifting plate 502. The bottom end of the pressure rod 503 can contact the top end of the flood control baffle 4. The threaded rod 501 in the vertical pressing mechanism 5 provides lifting support for the lifting plate 502. The bottom end of the pressure rod 503 contacts the top end of the flood control baffle 4, applying vertical pressure to the flood control baffle 4 to prevent it from tilting or shifting upwards under the impact of water flow. The locking nut 504 contacts the top end of the lifting plate 502, and after tightening, it can fix the position of the lifting plate 4, preventing it from moving due to vibration or water flow impact, and ensuring that the vertical pressure of the pressure rod 503 on the flood control baffle 4 is continuous and stable. This ensures the tight sealing between the flood control baffle and the slot 201, and at the same time, multiple flood control baffles can be locked at once.
[0022] Based on the above embodiments, the following embodiments are provided to further ensure the overall airtightness of the flood control wall, such as... Figure 4As shown in Embodiment 1, a sealing strip 401 is fixed to the top of the flood control baffle 4 along its length, and a sealing groove 403 adapted to the sealing strip 401 is provided at the bottom of the flood control baffle 4 at a corresponding position. By adapting the sealing strip 401 at the top of the flood control baffle 4 to the sealing groove 403 at the bottom of the adjacent flood control baffle, when the upper and lower flood control baffles are spliced, the sealing strip 401 is embedded in the sealing groove 403, filling the vertical gaps between the flood control baffles 4 and preventing water leakage from the splice of the flood control baffles 4.
[0023] In the second embodiment, a vertically arranged sealing gasket 202 is fixed inside the slot 201. A corresponding abutment 402 is fixed on the flood control baffle 4. When the flood control baffle 4 is inserted into the slot 201, the abutment 402 contacts the sealing gasket 202. The abutment 402 compresses the sealing gasket, deforming it and filling the transverse gap between the flood control baffle and the slot 201, preventing water leakage from the gap between the flood control baffle and the vertical pole 2. The abutment 402 can accurately position the flood control baffle within the slot 201, preventing the flood control baffle 4 from shifting and causing uneven sealing. This provides double protection for the reliability of the transverse seal and improves the waterproofing capability of the flood control wall.
[0024] like Figure 2 As shown, a diagonal brace 3 connects the vertical pole 2 and the horizontal base pole 1. Both ends of the diagonal brace 3 are fixed to both poles, forming a triangular support structure. The stability of the triangle enhances the anti-tipping ability of the vertical pole 2. A fixing seat 7 is fixed to the horizontal base pole 1, and the fixing seat 7 has a vertically formed fixing hole 701. By engaging the fixing seats 7 on both sides of the horizontal base pole 1 with the fixing holes 701, bolts can be used to fix the fixing seats to the ground or a pre-set foundation, preventing the flood control wall from shifting due to water flow or wind.
[0025] Specifically, during use, this rapid-assembly flood control wall utilizes a pair of horizontal base bars 1 to provide a bottom support foundation, ensuring stable contact between the overall structure and the ground. A vertical support bar 2 at one end of the horizontal base bars 1 forms the flood control baffle installation frame. Slots 201 on both sides of the vertical support bar 2 provide quick insertion channels for the flood control baffle 4, eliminating the need for complex splicing and enabling rapid assembly of the flood control baffle. Lateral compressive force is applied to the flood control baffle 4 by the compression plate 601 in the lateral compression mechanism 6, causing the flood control baffle to... The seal is tight to prevent water from leaking through the gaps in the flood control baffle. The movement trajectory of the extrusion plate 601 is restricted by the limiting rod 602 and the limiting plate 603 to prevent the extrusion plate 601 from shifting and causing uneven extrusion. The tension spring 604 provides a restoring force for the extrusion plate 601 to ensure that the extrusion plate 601 is always away from the flood control baffle 4, which facilitates the installation of the flood control baffle 4. The extrusion force of the extrusion plate 601 can be manually adjusted by pushing the push block 606 with the adjusting bolt 605 to adapt to the sealing requirements of flood control baffles 4 of different thicknesses. Vertical pressure is applied to the flood control baffle 4 by the vertical compression mechanism 5, locking multiple flood control baffles 4 as a whole to prevent them from shifting upward due to water flow impact. This achieves rapid assembly, multi-directional sealing, and structural stability of the flood control wall, improving the efficiency of flood emergency response. The threaded rod 501 provides lifting support for the lifting plate 502. The bottom end of the pressure rod 503 contacts the top end of the flood control baffle 4, applying vertical pressure to the flood control baffle 4 to prevent it from tilting or shifting upward under water flow impact, ensuring the tight seal between the flood control baffle and the slot 201. The locking nut 504 at the outer end of the threaded rod 501 contacts the top end of the lifting plate 502. After tightening, the position of the lifting plate 4 can be fixed to prevent it from moving due to vibration or water flow impact, ensuring that the vertical pressure of the pressure rod 503 on the flood control baffle 4 remains stable.
[0026] For further sealing, the sealing strip 401 at the top of the flood control baffle 4 is adapted to the sealing groove 403 at the bottom of the adjacent flood control baffle. When the upper and lower flood control baffles are spliced, the sealing strip 401 is embedded in the sealing groove 403, filling the vertical gap between the flood control baffles 4 and preventing water from leaking from the splice of the flood control baffles 4. The sealing gasket 202 on one side of the slot 201 contacts the abutment 402 on the other side of the flood control baffle 4. The abutment 402 squeezes the sealing gasket to deform it, filling the horizontal gap between the flood control baffle and the slot 201, preventing water from leaking from the gap between the flood control baffle and the vertical pole 2. The abutment 402 can accurately position the flood control baffle in the slot 201, avoiding the flood control baffle 4 from shifting and causing uneven sealing. This double guarantee ensures the reliability of the horizontal sealing and improves the waterproofing capability of the flood wall.
[0027] In terms of support, the vertical pole 2 is connected to the top of the horizontal base pole 1 by the diagonal brace 3 on one end, forming a triangular support structure. The stability of the triangle enhances the anti-tipping ability of the vertical pole 2. The fixing seats 7 on both sides of the horizontal base pole 1 are matched with the fixing holes 701, and the fixing seats are fixed to the ground or the pre-set foundation with bolts to prevent the flood wall from shifting as a whole due to water flow impact or wind force. This utility model can effectively realize the rapid assembly, flexible height limit, multi-directional sealing and structural stability of the flood wall, and improve the efficiency of flood emergency response.
[0028] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A rapid-assembly flood control wall, comprising horizontal base bars (1) and vertical uprights (2) fixed at their ends, wherein vertically arranged slots (201) are provided on both sides of the vertical uprights (2), and flood control baffles (4) are inserted into the inner side of the slots (201), characterized in that, The slot (201) has a transverse pressing mechanism (6) inside, including a pressing plate (601) vertically arranged along the slot (201). An adjusting bolt (605) is provided on the side wall of the slot (201). One end of the adjusting bolt (605) is rotatably connected to a push block (606). The push block (606) abuts against one surface of the pressing plate (601) by rotating the adjusting bolt (605) so that the other surface of the pressing plate (601) abuts against the flood baffle (4). When the push block (606) does not contact the pressing plate (601), the pressing plate (601) disengages from the flood baffle (4) through an elastic reset component.
2. The rapidly assembled flood wall according to claim 1, wherein The elastic reset assembly includes a limiting rod (602) horizontally fixed on the extrusion plate (601), the other end of the limiting rod (602) protruding through the side wall of the slot (201) and fixed with a limiting plate (603), and a tension spring (604) sleeved on the limiting rod (602) connecting the limiting plate (603) and the vertical rod (2).
3. The rapidly assembled flood wall according to claim 1, wherein It also includes a vertical extrusion mechanism (5), which includes a threaded rod (501) fixed above the vertical pole (2). A locking nut (504) and a lifting plate (502) are fitted on the threaded rod (501). The locking nut (504) is threadedly matched with the threaded rod (501). The lifting plate (502) is located at the bottom of the locking nut (504) and can slide up and down with the threaded rod (501). A pressure rod (503) is fixed at the bottom of the lifting plate (502). The bottom end of the pressure rod (503) can contact the top end of the flood control baffle (4).
4. The rapidly assembled flood wall according to claim 1, wherein The top of the flood control baffle (4) is fixed with a sealing strip (401) along its length, and the bottom of the flood control baffle (4) is provided with a sealing groove (403) that matches the sealing strip (401) at the corresponding position.
5. The rapidly assembled flood wall according to claim 1, wherein The slot (201) is fixed with a vertically arranged sealing gasket (202), and the flood baffle (4) is fixed with a stop block (402) corresponding to the sealing gasket (202). When the flood baffle (4) is inserted into the slot (201), the stop block (402) contacts the sealing gasket (202).
6. The rapidly assembled flood wall according to claim 1, wherein A diagonal brace (3) connects the vertical pole (2) and the horizontal base pole (1), with both ends of the diagonal brace (3) fixed to both of them.
7. A rapid-assembly flood control wall according to claim 1, characterized in that, A fixing seat (7) is fixed on the horizontal base rod (1), and a fixing hole (701) is vertically opened on the fixing seat (7).