Combined type two-way water stop flood gate

By designing a composite bidirectional water-stop floodgate, and utilizing adjusting components, electric telescopic rods, and wedge-shaped support blocks, the compressive strength of the gate is enhanced, solving the problem of insufficient compressive strength of existing floodgates and achieving effective flood control under higher water pressure.

CN223963900UActive Publication Date: 2026-03-03LIAONING ZHIWANG TIMES TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-21
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Existing floodgates have weak flood resistance and pressure resistance, limited flood control effect, are easily damaged, and have a short service life.

Method used

The design incorporates a composite bidirectional floodgate that blocks floodwaters by combining two gates, and enhances the gate's compressive strength using adjusting components, electric telescopic rods, and wedge-shaped support blocks.

Benefits of technology

This improves the flood control and pressure resistance of the gate, enabling it to withstand higher water pressure and extending its service life.

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Abstract

The utility model relates to the technical field of water stop and flood control, in particular to a combined type two-way water stop and flood control gate which comprises a ground layer, a wall body, a control panel, a base, a gate body, an adjusting assembly, a cavity, a groove, an electric telescopic rod and a wedge-shaped supporting block, the wall body is arranged on the upper surface of the ground layer, the control panel is arranged on one side of the wall body, and the base is arranged below the ground layer. A first gate is arranged on the upper surface of the ground layer, a first adjusting assembly is arranged on one side of the first gate, a second gate is arranged on the upper surface of the ground layer, a cavity is formed in one side of the second gate, a second adjusting assembly is arranged on one side of the second gate, a groove is formed in one side of the base, and an electric telescopic rod is arranged on the inner side of the groove. A wedge-shaped supporting block is arranged at one end of the electric telescopic rod; by means of a bidirectional composite flood control mode, the gates are rapidly combined from the two sides according to actual conditions, the double-layer gates are combined to block flood, the flood control strength of the gates is effectively enhanced, and the gates can bear the flood with higher water pressure.
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Description

Technical Field

[0001] This utility model relates to the field of water-stopping and flood control technology, and in particular to a composite bidirectional water-stopping and flood control gate. Background Technology

[0002] In recent years, to prevent flooding, floodgates are now mostly used to physically prevent water from spreading.

[0003] Most floodgates today have relatively simple structures, often using a single plate to block water from spreading in one direction. However, the impact force and water pressure of floods are often quite large, and these simple gates have weak compressive strength, making them more susceptible to damage during use, which affects their service life and flood control effectiveness.

[0004] Therefore, in view of the fact that the existing flood control gates have weak flood resistance and pressure resistance and limited flood control effect, a composite bidirectional water-stop flood control gate can be designed. Through the bidirectional composite flood control method, the gates can be quickly merged from both sides according to the actual situation. The double gates block the flood, effectively enhancing the flood control strength of the gate, enabling the gate to withstand floods with higher water pressure, thereby extending the service life of the gate. Utility Model Content

[0005] To overcome the problem that most floodgates often use a single plate to block water from spreading in one direction, but the impact force and water pressure of floods are often large, this simple gate has low compressive strength and is easily damaged during use, resulting in a shortened service life of the gate, this utility model is proposed.

[0006] The technical solution of this utility model is as follows: a composite bidirectional water-stopping flood control gate, comprising a stratum, a wall, a control panel, a base, a first gate, a first adjusting component, a second gate, a cavity, a second adjusting component, a groove, an electric telescopic rod, and a wedge-shaped support block. The upper surface of the stratum is provided with a wall, and two sets of walls are symmetrically arranged. A control panel is provided on one side of the wall. A base is provided below the stratum. The upper surface of the stratum is provided with a first gate, and a first adjusting component is provided on one side of the first gate. The upper surface of the stratum is provided with a second gate, and a cavity is opened on one side of the second gate. A second adjusting component is provided on one side of the second gate. A groove is opened on one side of the base, and two sets of grooves are symmetrically arranged. An electric telescopic rod is provided inside the groove, and a wedge-shaped support block is provided at one end of the electric telescopic rod. The wedge-shaped support block is located below the second gate.

[0007] Preferably, by setting the position of the foundation base, fixing the position of the wall with the foundation, fixing the control panel with the wall, controlling the operation of the adjustment components with the control panel, fixing the position of the adjustment components with the foundation, using the first adjustment component to drive the position of the first gate, and using the second adjustment component to drive the position of the second gate, the first and second gates are moved synchronously, embedding the first gate into the cavity, so that the first and second gates are combined and placed at an angle, thereby improving the flood control and pressure resistance of the gates. The position of the electric telescopic rod is fixed by the groove, and the control panel sends telescopic commands to the electric telescopic rod. The telescopic control panel adjusts the placement height of the wedge support block, and the wedge support block abuts against the second gate, further improving the pressure resistance of the gates. Thus, the gates can be quickly merged from both sides according to the actual situation, and the double-layer gates can block floods, effectively enhancing the flood control strength of the gates, enabling the gates to withstand floods with higher water pressure, and extending the service life of the gates.

[0008] Preferably, the first gate is tilted at a certain angle, the second gate is tilted at the same angle as the first gate, the first gate and the cavity are interlocked and connected, the groove is opened through the stratum, and the electric telescopic rod is electrically connected to the control panel.

[0009] Preferably, the first adjustment component includes a first storage cavity, a first slide groove, and a first connecting plate. The first storage cavity is provided on one side of a set of walls, and the first gate is fitted into and connected to the first storage cavity. The first slide groove is provided on one side of the base and extends through the stratum. The first connecting plate is provided on the bottom surface of the first gate and is fitted into and slidably connected to the first slide groove.

[0010] Preferably, the first adjustment component further includes a first lead screw, a first fixed frame, and a first motor. The first lead screw is provided on the inner side of the first slide groove and is threadedly connected to the first connecting plate. The first fixed frame is provided at one end of the first slide groove, and the first motor is provided on the inner side of the first fixed frame. The first motor is electrically connected to the control panel, and the output end of the first motor is connected to the first lead screw.

[0011] Preferably, the second adjustment component includes a second storage cavity, a second slide groove, a third slide groove, a second connecting plate, and a connecting block. The second storage cavity is provided on one side of another set of walls, the second slide groove is provided on one side of the base, the third slide groove is provided on one side of the base, the second connecting plate is provided on the bottom surface of the second gate, and the connecting block is provided on the bottom surface of the second connecting plate.

[0012] Preferably, the second gate and the second receiving cavity are fitted together, two sets of second sliding grooves are symmetrically opened, the second sliding grooves are symmetrically opened on both sides of the first sliding groove, the second sliding grooves are opened through the stratum, the third sliding groove is connected to the second sliding groove, the third sliding groove is opened below the first sliding groove, two sets of second connecting plates are symmetrically arranged, the second connecting plates are fitted together and slidably connected to the second sliding groove, and the connecting block is fitted together and slidably connected to the third sliding groove.

[0013] Preferably, the second adjustment component also includes a second lead screw, a second fixed frame, and a second motor. The second lead screw is provided on the inner side of the third slide groove, and the second lead screw is threadedly connected to the connecting block. The second fixed frame is provided at one end of the third slide groove, and the second motor is provided on the inner side of the second fixed frame. The second motor is electrically connected to the control panel, and the output end of the second motor is connected to the second lead screw.

[0014] The beneficial effects of this utility model are:

[0015] During flood control, the position of the wall is fixed by the stratum, and the control panel is fixedly installed on the wall. The control panel controls the displacement of the first and second gates. The base defines the movement path of the first and second gates, and the first and second gates are moved synchronously. The first gate is embedded in the cavity, so that the first and second gates are placed together and tilted, thereby improving the flood control and pressure resistance of the gates. The position of the electric telescopic rod is fixed by the groove. The control panel sends extension and retraction commands to the electric telescopic rod. The extension and retraction control panel adjusts the placement height of the wedge support block. The wedge support block is used to hold the second gate, further improving the pressure resistance of the gate. This solves the problem that most flood control gates often use a single plate to block water in one direction. However, the impact force and water pressure of floods are often large, and the pressure resistance of this simple gate is weak, making it easy to be damaged during use. This enhances the flood control strength of the gate. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of the composite bidirectional water-stopping flood control gate of this utility model.

[0017] Figure 2 The diagram shown is a three-dimensional structural schematic of the first receiving cavity of the composite bidirectional water-stopping flood control gate of this utility model.

[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the first gate of the composite bidirectional water-stopping flood control gate of this utility model.

[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the first lead screw of the composite bidirectional water-stopping flood control gate of this utility model.

[0020] Figure 5The diagram shown is a three-dimensional structural schematic of the second receiving cavity of the composite bidirectional water-stopping flood control gate of this utility model.

[0021] Figure 6 The diagram shown is a three-dimensional structural schematic of the second gate of the composite bidirectional water-stopping flood control gate of this utility model.

[0022] Figure 7 The diagram shown is a three-dimensional structural schematic of the second screw of the composite bidirectional water-stopping flood control gate of this utility model.

[0023] Explanation of reference numerals in the attached drawings: 1. Stratum; 2. Wall; 3. Control panel; 4. Base; 5. First gate; 501. First receiving cavity; 502. First slide groove; 503. First connecting plate; 504. First lead screw; 505. First fixing frame; 506. First motor; 6. Second gate; 601. Second receiving cavity; 602. Second slide groove; 603. Third slide groove; 604. Second connecting plate; 605. Connecting block; 606. Second lead screw; 607. Second fixing frame; 608. Second motor; 7. Cavity; 8. Groove; 9. Electric telescopic rod; 10. Wedge-shaped support block. Detailed Implementation

[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0025] Please see Figure 1 and Figure 6 This utility model provides an embodiment of a composite bidirectional water-stopping floodgate, comprising a ground layer 1, a wall 2, a control panel 3, a base 4, a first gate 5, a first adjusting component, a second gate 6, a cavity 7, a second adjusting component, a groove 8, an electric telescopic rod 9, and a wedge-shaped support block 10. The wall 2 is provided on the upper surface of the ground layer 1, with two sets of walls 2 symmetrically arranged. The control panel 3 is provided on one side of the wall 2. The base 4 is provided below the ground layer 1. The first gate 5 is provided on the upper surface of the ground layer 1, and the first gate 5 is inclined at a certain angle. A first adjusting component is provided on one side of the first gate 5. The component has a second gate 6 on the upper surface of the formation 1. The second gate 6 is inclined at the same angle as the first gate 5. A cavity 7 is opened on one side of the second gate 6. The first gate 5 is fitted into the cavity 7. A second adjustment component is provided on one side of the second gate 6. A groove 8 is opened on one side of the base 4. The groove 8 is opened through the formation 1. Two sets of grooves 8 are symmetrically opened. An electric telescopic rod 9 is provided inside the groove 8. The electric telescopic rod 9 is electrically connected to the control panel 3. A wedge-shaped support block 10 is provided at one end of the electric telescopic rod 9. The wedge-shaped support block 10 is located below the second gate 6.

[0026] Please see Figure 2 and Figure 3In this embodiment, the first adjustment component includes a first storage cavity 501, a first sliding groove 502, and a first connecting plate 503. The first storage cavity 501 is provided on one side of a set of walls 2. The first gate 5 is fitted into and connected to the first storage cavity 501. The first sliding groove 502 is provided on one side of the base 4 and extends through the stratum 1. The first connecting plate 503 is provided on the bottom surface of the first gate 5. The first connecting plate 503 is fitted into and slidably connected to the first sliding groove 502. The first gate 5 is fixed by connecting the first connecting plate 503 and slides along the first sliding groove 502, thereby flexibly moving out of the first storage cavity 501 and into the first gate 5, thus achieving the effect of flexibly opening and closing the first gate 5.

[0027] Please see Figure 3 and Figure 4 In this embodiment, the first adjustment component further includes a first lead screw 504, a first fixing frame 505, and a first motor 506. The first lead screw 504 is provided on the inner side of the first slide groove 502. The first lead screw 504 is threadedly connected to the first connecting plate 503. The first fixing frame 505 is provided at one end of the first slide groove 502. The first motor 506 is provided on the inner side of the first fixing frame 505. The first motor 506 is electrically connected to the control panel 3. The output end of the first motor 506 is connected to the first lead screw 504. The first motor 506 is fixed and protected inside by the first fixing frame 505. The control panel 3 sends a running command to the first motor 506, which drives the first lead screw 504 to rotate. Rotating the first lead screw 504 causes the position of the first connecting plate 503 to move.

[0028] Please see Figure 5 and Figure 6In this embodiment, the second adjustment component includes a second receiving cavity 601, a second slide 602, a third slide 603, a second connecting plate 604, and a connecting block 605. A second receiving cavity 601 is provided on one side of another set of walls 2. The second gate 6 is fitted into and connected to the second receiving cavity 601. A second slide 602 is provided on one side of the base 4, with two sets of second slides 602 symmetrically arranged on both sides of the first slide 502. The second slide 602 penetrates through the stratum 1. A third slide 603 is provided on one side of the base 4, communicating with the second slide 602. The third slide 603 is located below the first slide 502. A second connecting plate 604 is provided on the bottom surface of the second gate 6. Two sets of second connecting plates 604 are symmetrically arranged. The second connecting plates 604 and the second sliding groove 602 are mutually engaged and slidably connected. The bottom surface of the second connecting plate 604 is provided with a connecting block 605. The connecting block 605 is mutually engaged and slidably connected with the third sliding groove 603. The second connecting plate 604 is fixed by the connecting block 605, and the connecting block 605 moves along the third sliding groove 603. The second gate 6 is fixed by the second connecting plate 604. When the connecting block 605 is moved, the second connecting plate 604 is driven to slide along the second sliding groove 602. The movement of the second connecting plate 604 drives the second gate 6 to move synchronously, thereby achieving the effect of flexibly moving the second gate 6. Thus, the second gate 6 can be flexibly moved out of and into the second receiving cavity 601, and the second gate 6 can be opened and closed conveniently.

[0029] Please see Figure 6 and Figure 7 In this embodiment, the second adjustment component further includes a second lead screw 606, a second fixing frame 607, and a second motor 608. The second lead screw 606 is provided on the inner side of the third slide groove 603. The second lead screw 606 is threadedly connected to the connecting block 605. The second fixing frame 607 is provided at one end of the third slide groove 603. The second motor 608 is provided on the inner side of the second fixing frame 607. The second motor 608 is electrically connected to the control panel 3. The output end of the second motor 608 is connected to the second lead screw 606. The second motor 608 is fixed and protected inside by the second fixing frame 607. The second motor 608 drives the second lead screw 606 to rotate, and the rotation of the second lead screw 606 drives the connecting block 605 to move.

[0030] When the gate is opened, the control panel 3 of the control wall 2 sends a running command to the first motor 506 in the first fixed frame 505 and the second motor 608 in the second fixed frame 607. The first motor 506 drives the first lead screw 504 in the base 4 to rotate. The rotation of the first lead screw 504 drives the first connecting plate 503 to move along the first slide groove 502, and moves the first gate 5 out of the first receiving cavity 501.

[0031] Simultaneously, the second motor 608 drives the second lead screw 606 to rotate, and the rotation of the second lead screw 606 drives the connecting block 605 to move along the position of the third slide groove 603, thereby driving the second connecting plate 604 to move synchronously along the second slide groove 602, moving the second gate 6 out of the second receiving cavity 601, so that the first gate 5 is embedded in the cavity 7, and merging the first gate 5 and the second gate 6.

[0032] Finally, the control panel 3 sends an extension command to the electric telescopic rod 9, which extends the electric telescopic rod 9 in the extension groove 8 and moves the wedge-shaped support block 10 out of the stratum 1, so that the wedge-shaped support block 10 abuts against the inclined surface of the second gate 6.

[0033] When closing the gate, a retraction command is sent to the electric telescopic rod 9 via the control panel 3, which retracts the wedge-shaped support block 10 into the groove 8. At the same time, an operation command is sent to the first motor 506 and the second motor 608, which drives the first lead screw 504 and the second lead screw 606 to rotate in opposite directions, retracting the first gate 5 into the first receiving cavity 501, and then retracting the second gate 6 into the second receiving cavity 601.

[0034] Through the above steps, by setting the position of the base 4 in the ground layer 1, fixing the position of the wall 2 in the ground layer 1, fixing the control panel 3 in the wall 2, controlling the operation of the adjustment component in the control panel 3, fixing the position of the adjustment component in the base 4, moving the position of the first gate 5 in the first adjustment component, and moving the position of the second gate 6 in the second adjustment component, moving the first gate 5 and the second gate 6 simultaneously, embedding the first gate 5 into the cavity 7, so that the first gate 5 and the second gate 6 are combined and placed at an angle, thereby improving the flood control and pressure resistance of the gate. Fixing the position of the electric telescopic rod 9 in the groove 8, sending telescopic commands to the electric telescopic rod 9 in the control panel 3, adjusting the placement height of the wedge support block 10 in the telescopic control panel 3, and using the wedge support block 10 to hold the second gate 6, further improving the pressure resistance of the gate, so that the gate can be quickly merged from both sides according to the actual situation, and the double-layer gate composite blocks the flood, effectively enhancing the flood control strength of the gate, so that the gate can withstand floods with higher water pressure.

[0035] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A composite bidirectional water-stopping floodgate, comprising a ground layer (1), a wall (2), a control panel (3), and a base (4), characterized in that: It also includes a first gate (5), a first adjusting component, a second gate (6), a cavity (7), a second adjusting component, a groove (8), an electric telescopic rod (9), and a wedge-shaped support block (10). A wall (2) is provided on the upper surface of the stratum (1), and two sets of walls (2) are symmetrically arranged. A control panel (3) is provided on one side of the wall (2). A base (4) is provided below the stratum (1). A first gate (5) is provided on the upper surface of the stratum (1), and a control panel (3) is provided on one side of the first gate (5). There is a first adjustment component, a second gate (6) is provided on the upper surface of the stratum (1), a cavity (7) is provided on one side of the second gate (6), a second adjustment component is provided on one side of the second gate (6), a groove (8) is provided on one side of the base (4), two sets of grooves (8) are symmetrically provided, an electric telescopic rod (9) is provided on the inner side of the groove (8), a wedge-shaped support block (10) is provided at one end of the electric telescopic rod (9), and the wedge-shaped support block (10) is located below the second gate (6).

2. The composite bidirectional water-stopping floodgate according to claim 1, characterized in that: The first gate (5) is tilted at a certain angle, the second gate (6) is tilted at the same angle as the first gate (5), the first gate (5) and the cavity (7) are fitted together, the groove (8) is opened through the stratum (1), and the electric telescopic rod (9) is electrically connected to the control panel (3).

3. The composite bidirectional water-stopping floodgate according to claim 1, characterized in that: The first adjustment component includes a first storage cavity (501), a first slide groove (502), and a first connecting plate (503). The first storage cavity (501) is provided on one side of a set of walls (2), and the first gate (5) is fitted and connected to the first storage cavity (501). The first slide groove (502) is provided on one side of the base (4) and is opened through the stratum (1). The first connecting plate (503) is provided on the bottom surface of the first gate (5), and the first connecting plate (503) is fitted and slidably connected to the first slide groove (502).

4. The composite bidirectional water-stopping floodgate according to claim 3, characterized in that: The first adjustment assembly also includes a first lead screw (504), a first fixed frame (505), and a first motor (506). The first lead screw (504) is provided on the inner side of the first slide groove (502). The first lead screw (504) is threadedly connected to the first connecting plate (503). The first fixed frame (505) is provided at one end of the first slide groove (502). The first motor (506) is provided on the inner side of the first fixed frame (505). The first motor (506) is electrically connected to the control panel (3). The output end of the first motor (506) is connected to the first lead screw (504).

5. The composite bidirectional water-stopping floodgate according to claim 3, characterized in that: The second adjustment assembly includes a second storage cavity (601), a second slide groove (602), a third slide groove (603), a second connecting plate (604), and a connecting block (605). The second storage cavity (601) is provided on one side of another set of walls (2), the second slide groove (602) is provided on one side of the base (4), the third slide groove (603) is provided on one side of the base (4), the second connecting plate (604) is provided on the bottom surface of the second gate (6), and the connecting block (605) is provided on the bottom surface of the second connecting plate (604).

6. The composite bidirectional water-stopping floodgate according to claim 5, characterized in that: The second gate (6) and the second receiving cavity (601) are fitted together and connected. Two sets of second slides (602) are symmetrically opened. The second slides (602) are symmetrically opened on both sides of the first slides (502). The second slides (602) penetrate the stratum (1). The third slides (603) are connected to the second slides (602). The third slides (603) are opened below the first slides (502). Two sets of second connecting plates (604) are symmetrically arranged. The second connecting plates (604) and the second slides (602) are fitted together and slidably connected. The connecting block (605) and the third slides (603) are fitted together and slidably connected.

7. The composite bidirectional water-stopping floodgate according to claim 6, characterized in that: The second adjustment assembly also includes a second lead screw (606), a second fixed frame (607), and a second motor (608). The second lead screw (606) is provided on the inner side of the third slide (603). The second lead screw (606) is threadedly connected to the connecting block (605). The second fixed frame (607) is provided at one end of the third slide (603). The second motor (608) is provided on the inner side of the second fixed frame (607). The second motor (608) is electrically connected to the control panel (3). The output end of the second motor (608) is connected to the second lead screw (606).