Water conservancy anti-flood wall
By using a piston tube and hydraulic oil transmission system, the impact force of floodwaters is converted into a force that penetrates vertically into the soil, solving the problem of the traditional flood wall's simple structure, realizing the adaptive stability enhancement of the flood wall, and improving its flood resistance and stability.
Patent Information
- Application Number
- CN202423155351.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Traditional flood walls have a simple structure and cannot increase their strength as flood pressure increases, thus limiting their flood control effectiveness.
The structure employs piston tubes, connecting tubes, pistons, and stabilizing rods, utilizing hydraulic oil to transmit the impact force of floodwaters and convert it into a force that vertically penetrates the soil, thereby achieving adaptive stability enhancement of the flood control wall.
It improves the flood control capacity and stability of the flood wall, reduces maintenance costs, enhances flood control efficiency and reliability, and adapts to different flood pressure changes.
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Figure CN223753268U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water conservancy technical field especially relates to a water conservancy flood control wall. BACKGROUND
[0002] Water conservancy is a solid cornerstone to support the sustainable and healthy development of economic society. It not only concerns the lifeblood of agriculture, but also deeply affects the blood of industry. Through accurate irrigation system, it ensures that farmland is properly nourished, thereby guaranteeing the stable and high yield of food crops. Adequate and stable water resource supply provides an indispensable power source for industrial production, whether it is cooling, cleaning or used as raw materials, which plays an irreplaceable role in helping the sustained and vigorous development of industry. In the field of energy, water conservancy power generation as a clean and renewable energy form not only reduces the dependence on fossil fuels and carbon emissions, but also contributes to the optimization of energy structure and environmental protection. At the same time, the effective construction and management of water conservancy facilities such as reservoirs and dikes can effectively resist flood disasters, protect people's life and property safety, and reduce economic losses, which is an important guarantee for social stability.
[0003] The water conservancy flood control wall is an important part of water conservancy facilities, which stands between rivers and cities or farmland like a solid shield, effectively resisting the invasion of floods. Through scientific design and careful construction, the flood control wall can ensure that the surrounding area is protected from water disasters when extreme weather and floods occur, ensuring the safety of people's lives and property and maintaining the stable development of economy and society. The construction of flood control wall not only reflects human wisdom in resisting natural disasters, but also shows the progress and innovation of modern water conservancy engineering technology.
[0004] When using the flood control wall, it is necessary to ensure the firmness of the flood control wall to ensure the flood control effect. However, the traditional flood control wall has a single structure and can only provide basic support and resistance to floods. The firmness of the flood control wall cannot be increased with the increasing pressure of the flood, which is extremely inconvenient. Therefore, a water conservancy flood control wall is needed to solve the above problems. UTILITY MODEL CONTENT
[0005] The utility model aims to provide a water conservancy flood control wall, which solves the problem of single structure of the flood control wall in the prior art, which can only provide basic support and resistance to floods, and the firmness of the flood control wall cannot be increased with the increasing pressure of the flood.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0007] The utility model relates to a water conservancy flood prevention wall, including the frame, the inner side one side of frame is connected with the baffle of sliding, and the inner side one side of frame is fixedly connected with the bearing plate, and the bearing plate is embedded with a plurality of piston pipes with the inner side bottom of frame, all the top of piston pipe is communicated with the connecting pipe, and the inner side of all connecting pipe with the inner side of all piston pipe is equipped with the piston, the one side of the piston of all connecting pipe inner side is fixedly connected with piston rod, and the one end of all piston rod is fixedly connected with the one side of baffle, the bottom of the piston of all piston pipe inner side is fixedly connected with the steady rod, and the bottom of all steady rod is penetrated through the bottom of frame, and the piston in the piston pipe and the piston in the connecting pipe are filled with hydraulic oil.
[0008] Preferably, the two sides of the baffle are fixedly connected with sliding blocks, and the two sliding blocks are slidingly connected between the side walls of the frame through sliding grooves.
[0009] Preferably, the bottom of the baffle is fixedly connected with an insertion plate, and the insertion plate is slidingly connected with the bottom of the frame through an insertion groove.
[0010] Preferably, the bottom of the baffle is fixedly connected with an insertion plate, and the insertion plate is slidingly connected with the bottom of the frame through an insertion groove.
[0011] Preferably, the bottom of the baffle is fixedly connected with an insertion plate, and the insertion plate is slidingly connected with the bottom of the frame through an insertion groove.
[0012] Preferably, one end of all the connecting pipes is provided with a pressure relief valve.
[0013] The utility model has the following beneficial effects:
[0014] The utility model discloses a water conservancy flood prevention wall, including the frame, the inner side one side of frame is connected with the baffle of sliding, and the inner side one side of frame is fixedly connected with the bearing plate, and the bearing plate is embedded with a plurality of piston pipes with the inner side bottom of frame, all the top of piston pipe is communicated with the connecting pipe, and the inner side of all connecting pipe with the inner side of all piston pipe is equipped with the piston, the one side of the piston of all connecting pipe inner side is fixedly connected with piston rod, and the one end of all piston rod is fixedly connected with the one side of baffle, the bottom of the piston of all piston pipe inner side is fixedly connected with the steady rod, and the bottom of all steady rod is penetrated through the bottom of frame, and the piston in the piston pipe and the piston in the connecting pipe are filled with hydraulic oil. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to make the purpose, technical scheme and advantages of the present application more clear, the following will make further detailed description to the present application by combining with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application, and are not used to limit the present application.
[0016] Figure 1 It is the whole appearance structure schematic diagram of the present application;
[0017] Figure 2 It is the bottom structure schematic diagram of the present application;
[0018] Figure 3 It is the frame body inside structure schematic diagram of the present application;
[0019] Figure 4 It is the connecting pipe inside structure schematic diagram of the present application;
[0020] Figure 5 It is the piston distribution structure schematic diagram of the present application;
[0021] Figure 6 It is the whole overhead structure schematic diagram of the present application.
[0022] In the drawing: 1, frame body; 2, baffle; 3, sliding block; 4, sliding slot; 5, insertion rod; 6, stabilizing rod; 7, conical head; 8, insertion plate; 9, insertion slot; 10, bearing plate; 11, connecting pipe; 12, piston pipe; 13, piston rod; 14, piston; 15, pressure relief valve. DETAILED DESCRIPTION
[0023] In order to make the purpose, technical scheme and advantages of the present application more clear, the following will make further detailed description to the present application by combining with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application, and are not used to limit the present application.
[0024] Refer to Figures 1-6The utility model provides a water conservancy flood prevention wall, including frame body 1, the inside one side of frame body 1 is slidably connected with baffle 2, and baffle 2 is the part of flood prevention wall directly facing flood impact, it is slidably connected in the inside one side of frame body 1, can flexibly respond the impact of flood, and simultaneously the huge horizontal impact force of it is passed to subsequent force transmission mechanism, and the inside one side of frame body 1 is fixedly connected with bearing plate 10, and the inside bottom of bearing plate 10 and frame body 1 is embedded with a plurality of piston pipe 12, all the top of piston pipe 12 is communicated with connecting pipe 11, and the inside of all connecting pipe 11 and the inside of all piston pipe 12 are equipped with piston 14, and piston 14 is the key component in hydraulic oil force transmission system, it is arranged in the inside of piston pipe 12 and connecting pipe 11 respectively, and the horizontal direction impact force is converted into vertical direction pressure through the transmission effect of hydraulic oil, realizes the dynamic regulation of flood prevention wall stability, and the one side of the piston 14 in the inside of all connecting pipe 11 is fixedly connected with piston rod 13, and the one end of all piston rod 13 is fixedly connected between the one side of baffle 2, and the bottom of the piston 14 in the inside of all piston pipe 12 is fixedly connected with steady rod 6, and the bottom of all steady rod 6 is penetrated through the bottom of frame body 1, and the piston 14 in piston pipe 12 and the piston 14 in connecting pipe 11 are filled with hydraulic oil, and the bottom of the piston 14 in the inside of piston pipe 12 is fixedly connected with steady rod 6, and the bottom is penetrated through the bottom of frame body 1, and it is the direct embodiment of flood prevention wall stability, under the impact of flood, steady rod 6 is inserted into the soil by piston 14, and the greater the impact of flood, the deeper the depth of steady rod 6 inserted into the soil, thereby enhancing the stability of flood prevention wall, and hydraulic oil is used as force transmission medium, and the hydraulic oil is filled between piston pipe 12 and connecting pipe 11, and the horizontal direction impact force is converted into vertical downward pressure through the sliding action of piston 14, realizes the dynamic enhancement of flood prevention wall stability.
[0025] Further, the two sides of the baffle 2 are fixedly connected with the sliding blocks 3, and the two sliding blocks 3 are slidably connected between the side walls of the frame body 1 through the sliding grooves 4. When the baffle 2 is impacted by the flood, the baffle 2 can smoothly slide inside the frame body 1 along the sliding grooves 4 without derailing or being damaged due to excessive force, thereby ensuring the stability and durability of the structure of the flood prevention wall and enabling the baffle 2 to more flexibly respond to the impact of the flood, and improving the adaptability and reliability of the flood prevention wall.
[0026] Further, the bottom of the baffle 2 is fixedly connected with the plug plate 8, and the plug plate 8 is slidably connected between the bottom of the frame body 1 through the plug groove 9. When the baffle 2 moves downward under the impact of the flood, the plug plate 8 can stably slide downward along the plug groove 9, thereby further enhancing the connection stability between the baffle 2 and the frame body 1, preventing the baffle 2 from shaking or deviating due to the impact of the flood, and ensuring the overall stability and flood prevention effect of the flood prevention wall.
[0027] Further, the four corners of the bottom of the frame body 1 are fixedly connected with the insertion rods 5, which can penetrate into the soil and provide initial stable support for the flood control wall when the flood control wall is placed in the predetermined position, effectively resist the lateral impact of the flood on the flood control wall, enhance the anti-overturning ability of the flood control wall, lay a solid foundation for subsequent flood control work.
[0028] Further, the bottom end of each stabilizing rod 6 is fixedly connected with a conical head 7, and the connection between the stabilizing rod 6 and the frame body 1 is a sliding connection. When the stabilizing rod 6 is inserted into the soil by the piston 14, the conical head 7 can more easily penetrate the soil, reducing the insertion resistance and improving the insertion efficiency of the stabilizing rod 6. At the same time, the sliding connection between the stabilizing rod 6 and the frame body 1 allows the stabilizing rod 6 to move more freely and better adapt to changes in the flood impact force, further enhancing the stability and self-adaptability of the flood control wall.
[0029] Further, one end of each connecting pipe 11 is provided with a pressure relief valve 15. When the flood impact force is too large, causing the hydraulic oil pressure in the piston pipe 12 and the connecting pipe 11 to be too high, the pressure relief valve 15 can be opened in time to release part of the hydraulic oil pressure, avoiding problems such as structural damage of the flood control wall or hydraulic oil leakage caused by excessive pressure, ensuring the safety and stability of the flood control wall. At the same time, the presence of the pressure relief valve 15 also allows the flood control wall to adjust its stability more flexibly when facing different flood pressures, improving the adaptability and reliability of the flood control wall.
[0030] In summary:
[0031] In the installation and use process of the water conservancy flood control wall, first, the frame body 1 is placed in the predetermined flood control position, and it is ensured that the baffle 2 is opposite to the direction that the flood may impact. At this time, the insertion rod 5 at the four corners of the bottom of the frame body 1 is deeply inserted into the soil, so as to provide initial stable support for the flood control wall, effectively resist the lateral impact of the flood on the flood control wall, and enhance the anti-overturning capacity of the flood control wall. When the flood comes, the baffle 2 not only directly blocks the flood, but also smoothly slides in the sliding groove 4 through the sliding block 3 fixedly connected on both sides of the baffle 2, so as to ensure the stability and durability of the structure of the flood control wall. At the same time, the insertion plate 8 at the bottom of the baffle 2 stably slides along the insertion slot 9, so as to further enhance the connection stability between the baffle 2 and the frame body 1, and prevent the baffle 2 from shaking or deviating due to the impact of the flood. The great horizontal impact force received by the baffle 2 is transmitted to the piston rod 13 closely connected with the baffle 2, the piston rod 13 then slides in the connecting pipe 11, drives the piston 14 in the connecting pipe 11 to press the hydraulic oil. Since the total amount of the hydraulic oil filled in the piston pipe 12 and the connecting pipe 11 is constant, the movement of the piston 14 in the connecting pipe 11 will inevitably cause the corresponding movement of the piston 14 in the piston pipe 12. As a force transmission medium, the hydraulic oil efficiently converts the horizontal impact force into the vertical downward pressure. With the downward movement of the piston 14, the stable rod 6 is strongly pushed into the soil. The conical head 7 at the bottom end of the stable rod 6 can more easily penetrate the soil, reduces the insertion resistance, and improves the insertion efficiency of the stable rod 6. At the same time, the sliding connection between the stable rod 6 and the frame body 1 enables the stable rod 6 to move more freely and better adapt to the change of the impact force of the flood. The greater the impact force of the flood, the deeper the stable rod 6 is inserted into the soil, so as to realize the dynamic enhancement of the stability of the flood control wall. In the case that the impact force of the flood is too large, the hydraulic oil pressure in the piston pipe 12 and the connecting pipe 11 will rise sharply. At this time, the pressure relief valve 15 at one end of the connecting pipe 11 can be opened in time to release part of the hydraulic oil pressure, so as to avoid the problems of damage to the structure of the flood control wall or leakage of the hydraulic oil caused by excessive pressure. The existence of the pressure relief valve 15 ensures the safety and stability of the flood control wall, and also enables the flood control wall to more flexibly adjust the stability thereof when facing different flood pressures.
[0032] The basic principle, main features and advantages of the utility model are shown and described above. It should be understood by those skilled in the art that the utility model is not limited to the above-mentioned embodiments, and the above-mentioned embodiments and descriptions in the specification are only the principles of the utility model. Without departing from the spirit and scope of the utility model, various changes and improvements can be made to the utility model, and these changes and improvements all fall within the scope of the utility model claimed. The protection scope required by the utility model is defined by the appended claims and their equivalents.
Claims
1. A water retaining wall comprising a frame (1), characterized in that, The inner side of the frame (1) is slidably connected with a baffle (2), and the inner side of the frame (1) is fixedly connected with a bearing plate (10), and the bearing plate (10) is embedded with a plurality of piston pipes (12) on the inner side bottom of the frame (1). The top end of all the piston pipes (12) is communicated with a connecting pipe (11), and the inner side of all the connecting pipes (11) and the inner side of all the piston pipes (12) are provided with a piston (14), one side of the piston (14) in all the connecting pipes (11) is fixedly connected with a piston rod (13), and one end of all the piston rods (13) is fixedly connected with one side of the baffle (2), the bottom of the piston (14) in all the piston pipes (12) is fixedly connected with a stable rod (6), and the bottom end of all the stable rods (6) penetrates the bottom of the frame (1), and the piston (14) in the piston pipe (12) and the piston (14) in the connecting pipe (11) are filled with hydraulic oil.
2. The water retaining wall of claim 1, wherein, Both sides of the baffle (2) are fixedly connected with a sliding block (3), and the two sliding blocks (3) are slidably connected with the side wall of the frame (1) through a sliding groove (4).
3. The water retaining wall of claim 2, wherein, The bottom of the baffle (2) is fixedly connected with a plug-in plate (8), and one side of the plug-in plate (8) and the bottom of the frame (1) are slidably connected through a plug-in groove (9).
4. The water retaining wall of claim 1, wherein, The bottom of the frame (1) is fixedly connected with a plug-in rod (5) at four corners.
5. The hydraulic floodwall of claim 1, wherein, The bottom end of all the stable rods (6) is fixedly connected with a conical head (7), and the connection between all the stable rods (6) and the frame (1) is slidingly connected.
6. The hydraulic floodwall of claim 1, wherein, One end of all the connecting pipes (11) is provided with a pressure relief valve (15).