Modularized dike reinforcing structure
Through modular design, the connection columns, columns and support mechanisms are used to achieve stable connections and adjustable lengths between the embankment reinforcement plates, solving the problems of troublesome installation and low stability of the reinforcement plates in the prior art, and improving the stability and service life of embankment reinforcement.
Patent Information
- Application Number
- CN202422065041.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-08-26
AI Technical Summary
The reinforcement plates of the existing embankment reinforcement structure are troublesome to install and disassemble, and the reinforcement plates cannot be connected to each other, resulting in low stability, easy sliding and tilting, affecting the long-term use of embankment.
A modular embankment reinforcement structure is designed, consisting of connecting columns and reinforcement plates. Through the connection between the columns and mounting plates and the pins, stable connections and adjustability of lengths between the reinforcement plates are achieved, and a support mechanism is provided outside the reinforcement plates to improve stability.
The modular setting of embankment reinforcement is realized, the installation and disassembly of reinforcement plates is simplified, the stability and combination effect of the reinforcement structure are improved, and the service life of the embankment is extended.
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Figure CN222961990U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of dike reinforcement, in particular to a modular dike reinforcement structure. Background Art
[0002] A dike refers to buildings and structures for waterproofing and water interception. Dikes are the main measures to defend against floods and protect residents, industrial and agricultural production. River dikes are buildings used to prevent river water from overflowing. Dikes generally have a trapezoidal structure. The side in contact with the river water is called the water-facing side, and the other side relatively far from the water-facing side is called the back side. After the river dike restricts the flood, the flood is confined within the flood discharge channel, increasing the water depth and flow velocity of the same flow rate, which is beneficial to flood discharge and sediment scouring.
[0003] Dikes are usually reinforced by multiple fixedly installed reinforcement plates. The reinforcement plates are installed by multiple bolts, resulting in troublesome installation and disassembly of the reinforcement plates. Moreover, the reinforcement plates cannot be connected to each other, and the stability of the reinforcement structure is relatively low. After long-term water flow impact, the reinforcement plates are prone to sliding and toppling, which is not conducive to the long-term use of the dike. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a modular dike reinforcement structure to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the utility model provides the following technical solutions:
[0006] A modular dike reinforcement structure includes a reinforcement plate, and further includes:
[0007] Connecting columns are arranged on both the upper and lower sides of the reinforcement plate. Installation grooves are formed on the sides of the two connecting columns close to each other. A connecting plate is arranged outside the reinforcement plate, and the connecting plate is slidably arranged inside the installation groove. Installation blocks and fixing plates are respectively arranged at the ends of the two connecting columns close to each other. An installation plate is arranged on the installation block. Support blocks are arranged on both sides of the fixing plate. A pin is slidably arranged on the support block. The installation plate passes through the fixing plate and is connected to the pin;
[0008] Columns. Fixed blocks and clamping grooves are respectively arranged on both sides outside the reinforcement plate. The fixed block penetrates into the clamping groove. An insertion plate is arranged outside the connecting column. A column is vertically arranged on the insertion plate. The column passes through the clamping groove and the fixed block downward, and the bottom end of the column passes through the connecting column and is provided with a grounding nail;
[0009] A support mechanism is connected to the reinforcement plate and can fixedly support the reinforcement plate installed on the connecting column.
[0010] Based on the above technical solutions, the utility model also provides the following optional technical solutions:
[0011] In an alternative embodiment: The support mechanism includes a support rod, a rotating sleeve, and a reinforcing rod. A square groove is formed on the outside of the reinforcing plate. The rotating sleeve is rotatably arranged inside the square groove. The support rod is slidably arranged inside the rotating sleeve. The bottom end of the support rod passes through the rotating sleeve. The reinforcing rod is arranged outside the rotating sleeve. One end of the reinforcing rod penetrates into the square groove. A storage groove is formed inside the square groove.
[0012] In an alternative embodiment: A sliding groove is formed inside the rotating sleeve. A plurality of fixing grooves are formed inside the sliding groove. A limiting block is arranged outside the support rod. The limiting block is slidably engaged with the sliding groove.
[0013] In an alternative embodiment: A return spring is arranged inside the support block. A pressing block is arranged outside the plug pin. The return spring is sleeved outside the plug pin and connected to the pressing block.
[0014] In an alternative embodiment: A connecting groove is formed outside the connecting column. The insertion plate is fixedly arranged inside the connecting groove.
[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0016] The modular dike reinforcement structure is composed of connecting columns and reinforcing plates. A plurality of reinforcing plates between the connecting columns support and reinforce the dike. The reinforcing plates are connected by columns. The connecting columns are connected by mounting plates and plug pins. It can be arranged according to the reinforcement length of the dike, realizing the modular setting of dike reinforcement. Support mechanisms are arranged outside all the reinforcing plates, ensuring the stability of the reinforcement structure. The installation and disassembly are relatively convenient. The reinforcing plates are connected by the connecting columns, improving the combination effect between the reinforcing plates and ensuring the normal use of dike reinforcement. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic structural diagram of the modular dike reinforcement structure.
[0018] Figure 2 It is a schematic structural diagram of the reinforcing plate in the modular dike reinforcement structure.
[0019] Figure 3 It is a schematic structural diagram of the connecting column in the modular dike reinforcement structure.
[0020] Figure 4 It is a schematic structural diagram of the square groove in the modular dike reinforcement structure.
[0021] Figure 5 It is a schematic structural diagram of the support rod in the modular dike reinforcement structure.
[0022] Annotation of reference numerals: 1 - connecting column, 101 - mounting groove, 102 - connecting groove, 2 - reinforcing plate, 201 - square groove, 202 - clamping groove, 203 - connecting plate, 3 - upright column, 4 - insertion plate, 5 - grounding nail, 6 - fixing block, 7 - fixing plate, 8 - mounting block, 9 - bolt, 10 - support rod, 11 - rotating sleeve, 111 - sliding groove, 112 - fixing groove, 12 - reinforcing rod, 13 - storage groove, 14 - mounting plate, 15 - bolt pin, 16 - support block, 17 - return spring, 18 - pressing block, 19 - limiting block. Detailed implementation manners
[0023] In order to make the purpose, technical solutions and advantages of the present utility model clearer, the following further details the present utility model in conjunction with the accompanying drawings and embodiments; in the drawings or descriptions, similar or identical parts use the same reference numerals, and in actual applications, the shapes, thicknesses or heights of each component can be enlarged or reduced. Each embodiment listed in the present utility model is only used to illustrate the present utility model, and is not used to limit the scope of the present utility model. Any obvious modification or change made to the present utility model does not depart from the spirit and scope of the present utility model.
[0024] In one embodiment, as Figures 1-5 shown, a modular dike reinforcement structure includes a reinforcing plate 2, and further includes:
[0025] Connecting columns 1 are arranged on both the upper and lower sides of the reinforcing plate 2. Mounting grooves 101 are formed on the sides of the two connecting columns 1 close to each other. A connecting plate 203 is arranged outside the reinforcing plate 2, and the connecting plate 203 is slidably arranged inside the mounting groove 101. The multiple reinforcing plates 2 are supported by the connecting columns 1, and the dike is supported by the reinforcing plates 2. One end of each of the two connecting columns 1 close to each other is respectively provided with a mounting block 8 and a fixing plate 7. A mounting plate 14 is arranged on the mounting block 8. Support blocks 16 are arranged on both sides of the fixing plate 7. A bolt pin 15 is slidably arranged on the support blocks 16. The mounting plate 14 passes through the fixing plate 7 and is connected to the bolt pin 15. When the length of a single connecting column 1 cannot meet the requirements for dike reinforcement, the two connecting columns 1 can be butted, and the bolt pin 15 fixes the mounting plate 14 that slides into the fixing plate 7, realizing the fixed connection of the two connecting columns 1 and facilitating the extension of the length of the connecting column 1;
[0026] The upright post 3, on both outer sides of the reinforcing plate 2, a fixing block 6 and a clamping groove 202 are respectively arranged. When the two reinforcing plates 2 are butted, the fixing block 6 can penetrate into the inside of the clamping groove 202. An insertion plate 4 is arranged on the outer side of the connecting column 1, and the insertion plate 4 is fixedly installed by bolts 9. An upright post 3 is vertically arranged on the insertion plate 4. The upright post 3 passes downward through the clamping groove 202 and the fixing block 6, and can fixedly connect the two reinforcing plates 2. The bottom end of the upright post 3 passes through the connecting column 1 and is provided with a grounding nail 5;
[0027] A support mechanism, connected to the reinforcing plate 2, can fixedly support the reinforcing plate 2 installed on the connecting column 1.
[0028] The modular dike reinforcement structure reinforces the dike through a plurality of reinforcing plates 2 between the connecting columns 1. The reinforcing plates 2 are connected by upright posts 3, and the connecting columns 1 are connected by mounting plates 14 and pins 15, and can be arranged according to the reinforcement length of the dike, realizing the modular setting of dike reinforcement. A support mechanism is arranged outside each reinforcing plate 2, which can fixedly support the reinforcing plate 2 on the connecting column 1 and ensure the stability of the reinforcement structure. As an embodiment, the left-right, up-down positions of the various components shown in the drawings are only a layout method, and the specific positions are set according to specific needs.
[0029] In one embodiment, as Figures 2-5 shown, the support mechanism includes a support rod 10, a rotating sleeve 11 and a reinforcing rod 12. A square groove 201 is opened on the outside of the reinforcing plate 2. A rotating sleeve 11 is rotatably arranged inside the square groove 201. A support rod 10 is slidably arranged inside the rotating sleeve 11. The bottom end of the support rod 10 passes out of the rotating sleeve 11 and penetrates into the ground. A reinforcing rod 12 is rotatably arranged on the outside of the rotating sleeve 11. One end of the reinforcing rod 12 penetrates into the inside of the square groove 201. A receiving groove 13 is opened inside the square groove 201; when the reinforcing rod 12 rotates to a position parallel to the rotating sleeve 11, the support rod 10 penetrates into the inside of the rotating sleeve 11, so that the rotating sleeve 11 can penetrate into the square groove 201, and the support rod 10 penetrates downward into the receiving groove 13, realizing the storage of the rotating sleeve 11, which is convenient for the subsequent movement, transportation and disassembly of the reinforcing plate 2.
[0030] In one embodiment, as Figures 2-5 shown, a sliding groove 111 is opened inside the rotating sleeve 11, and a plurality of fixing grooves 112 are opened inside the sliding groove 111. A limiting block 19 is arranged on the outside of the support rod 10. The limiting block 19 is slidably matched with the sliding groove 111. The support rod 10 slides along the inside of the rotating sleeve 11 and drives the limiting block 19 to slide along the sliding groove 111, which is convenient for adjusting the use position of the support rod 10. When the limiting block 19 rotates into the fixing groove 112, the support rod 10 can be fixed.
[0031] In one embodiment, as Figures 1-3 shown, a reset spring 17 is provided inside the support block 16, a pressing block 18 is provided outside the bolt 15, the pressing block 18 is arranged inside the support block 16, the reset spring 17 is sleeved outside the bolt 15 and connected to the pressing block 18, and the bolt 15 can slide along the support block 16.
[0032] In one embodiment, as Figures 1-3 shown, a connection groove 102 is formed outside the connecting column 1, and the insertion plate 4 is fixedly arranged inside the connection groove 102.
[0033] In the above embodiment of the present utility model, a modular dike reinforcement structure is provided. The reinforcement plate 2 is slid between two connecting columns 1, the fixing block 6 on the side wall of the reinforcement plate 2 is slid into the internal card slot 202 of another reinforcement plate 2, the upright column 3 is downwardly passed through the two reinforcement plates 2, the grounding nail 5 is downwardly penetrated into the ground to support the upright column 3, and the insertion plate 4 is fixedly installed on the connecting column 1 through the bolt 9, realizing the butt joint and fixation between multiple reinforcement plates 2; when the connecting column 1 needs to be lengthened, the mounting plate 14 on the side wall of the connecting column 1 is penetrated into the internal fixing plate 7 of another connecting column 1, and the fixing plate 7 is fixed by the bolt 15, and the arrangement can be carried out according to the reinforcement length of the dike; the rotating sleeve 11 in the square groove 201 is outwardly rotated, the internal support rod 10 is drawn out, the bottom end of the support rod 10 is penetrated into the ground, the bottom end of the reinforcement plate 12 is penetrated into the internal square groove 201, and the reinforcement plate 2 is assisted to be supported by the support rod 10 and the rotating sleeve 11.
[0034] The above is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed by the present disclosure, and all of them should be covered by the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.
Claims
1. A modular embankment reinforcement structure, comprising a reinforcement plate, characterized in that: Also includes: A connecting column, connecting columns are arranged on both upper and lower sides of the reinforcement plate, and mounting grooves are provided on the sides where the two connecting columns are close to each other, a connecting plate is arranged outside the reinforcement plate, and the connecting plate is slidably arranged inside the mounting groove, and mounting blocks and fixed plates are arranged on the ends where the two connecting columns are close to each other, respectively, a mounting plate is arranged on the mounting block, and support blocks are arranged on both sides of the fixed plate, and latches are slidably arranged on the support blocks, and the mounting plate passes through the fixed plate and is connected to the latches; The column, the two sides of the outer side of the reinforcement plate are respectively provided with a fixing block and a slot, the fixing block is inserted into the slot, the outer side of the connecting column is provided with an inserting plate, the inserting plate is vertically provided with a column, the column passes downward through the slot and the fixing block, the bottom end of the column passes through the connecting column and is provided with a grounding nail; The supporting mechanism is connected to the reinforcing plate and can provide fixed support to the reinforcing plate installed on the connecting column.
2. The modular embankment reinforcement structure according to claim 1, characterized in that: The supporting mechanism includes a supporting rod, a rotating sleeve and a reinforcing rod. A square groove is provided on the outside of the reinforcing plate. A rotating sleeve is rotatably provided inside the square groove. A supporting rod is slidably provided inside the rotating sleeve. The bottom end of the supporting rod passes through the rotating sleeve. A reinforcing rod is provided on the outside of the rotating sleeve. One end of the reinforcing rod passes through the square groove. A storage groove is provided inside the square groove.
3. The modular embankment reinforcement structure according to claim 2, characterized in that: A sliding groove is provided inside the rotating sleeve, a plurality of fixing grooves are provided inside the sliding groove, and a limiting block is provided outside the supporting rod, and the limiting block is slidably matched with the sliding groove.
4. The modular embankment reinforcement structure according to claim 1, characterized in that: A return spring is arranged inside the support block, a pressure block is arranged outside the latch, and the return spring is sleeved outside the latch and connected to the pressure block.
5. The modular embankment reinforcement structure according to claim 4, characterized in that: A connecting groove is formed outside the connecting column, and the plug plate is fixedly arranged inside the connecting groove.