Remote control gate subchannel distribution structure

The remotely controlled gate distribution structure solves the problems of channel water volume regulation and debris accumulation, realizes separate control of water volume and stable operation of gates, and extends the service life of gates.

CN116856349BActive Publication Date: 2026-04-07WUHAN NEWFIBER OPTOELECTRONICS TECH
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-20
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing technologies, the amount of farmland irrigation water in each channel cannot be adjusted separately, and the accumulation of debris in the chute affects the return of the gate and its service life.

Method used

A remotely controlled gate channel allocation structure was designed, including a main gate unit, a branch gate unit, and a cleaning unit. The water flow is controlled separately and debris is removed through traction components and hydraulic rods. The gate plate is moved stably by screws and guide rollers. The cleaning unit removes impurities through impellers and cleaning plates.

Benefits of technology

This allows for separate regulation of water volume in each channel, reducing the impact of debris accumulation on the gate and improving the gate's service life and operational stability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116856349B_ABST
    Figure CN116856349B_ABST
Patent Text Reader

Abstract

This invention relates to the field of water conservancy equipment and discloses a remote control gate channel allocation structure, including an installation frame erected on a channel. The structure further comprises: a main gate unit, located on the side of the installation frame near the inlet, used to block and release water; a branch gate unit, located on the side of the installation frame near the outlet and connected to the main gate unit via a traction component, moving in the opposite direction to the main gate unit under the drive of the traction component to control the water flow in the channel; and a cleaning unit, located on the installation frame between the main gate unit and the branch gate unit, used to clean debris from the outlet. This invention reduces the impact of debris accumulation on the opening and closing of the main gate unit. By adjusting the components, it enables both overall and individual control of the water flow in the channel, increasing overall practicality.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of water conservancy equipment technology, specifically to a remote control gate channel allocation structure. Background Technology

[0002] Sluice gates are structures built on the banks of rivers, canals, reservoirs, and lakes to impede and release water. Sluice gates also play a significant role in agricultural irrigation. Although efficient water-saving irrigation is being promoted, most irrigation systems still rely on traditional canal engineering.

[0003] The existing equipment has the following disadvantages: the water consumption for irrigation of farmland varies in different channels, but the traditional branch channel structure supplies the same amount of water after the gate is opened. It cannot adjust the water volume of each branch channel separately, resulting in some branch channels having too much water and others having too little water. In addition, after the gate is opened, the water flow will carry various impurities through the flood discharge outlet. This will cause impurities (such as silt) to accumulate in the chute, affecting the gate's return to its original position and easily causing the gate to deform, thus reducing the gate's service life.

[0004] Therefore, this application proposes a remote control gate channel allocation structure to solve the above-mentioned problems. Summary of the Invention

[0005] The purpose of this invention is to provide a remote control gate channel allocation structure to solve the problems mentioned above, such as the inability to adjust each channel separately, the accumulation of debris (e.g., silt) in the chute, which affects the gate's return to its position and easily causes the gate to deform, thus reducing the gate's service life.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a remote control gate channel allocation structure, comprising an installation frame erected on the channel ditch, and further comprising:

[0007] The main gate unit is located on the side of the mounting frame near the water inlet and is used to block and release the water source.

[0008] The branch gate unit is located on the side of the mounting frame near the outlet and is connected to the main gate unit through a traction component. Driven by the traction component, it moves in the opposite direction to the main gate unit to control the water flow of the branch channel.

[0009] A cleaning unit is installed on the mounting bracket between the main gate unit and the branch gate unit, and is used to clean debris from the drain outlet.

[0010] The main gate unit includes a main gate plate disposed inside the branch channel and a screw rod disposed at the upper end of the main gate plate. The screw rod is threadedly connected to the mounting frame and is used to drive the main gate plate to move up and down.

[0011] The top of the screw is provided with a turntable for easy adjustment of the screw position.

[0012] The circuit breaker unit includes a circuit breaker plate disposed above the branch channel and an insert plate disposed below the circuit breaker plate. An adjustment component for adjusting the installation angle of the circuit breaker plate is disposed below the insert plate.

[0013] The adjusting component includes a support plate located below the insert plate and a hydraulic rod disposed on the side of the support plate away from the main gate plate. The side of the hydraulic rod away from the support plate is disposed on the branch channel.

[0014] The support plate has a slot at the position corresponding to the insertion plate for the insertion plate to be inserted.

[0015] The traction component includes a traction rope with one end disposed on the main gate plate and the other end disposed on the branch gate plate, and a guide device for the traction rope to pass through.

[0016] The guiding device includes a first guide roller disposed on the upper end of the mounting frame and a second guide roller disposed on the mounting frame. The traction rope passes through the first guide roller and the second guide roller. The first guide roller is located directly above the main gate plate, and the second guide roller is located directly above the branch gate plate.

[0017] The cleaning unit includes a connecting rod mounted on the mounting frame, an impeller mounted at the lower part of the connecting rod, and a transmission component mounted at the bottom end of the connecting rod. The connecting rod is connected to a rotating rod via the transmission component, and the rotating rod is equipped with a cleaning plate for cleaning impurities.

[0018] The impeller is arc-shaped and drives the connecting rod to rotate under the influence of water flow.

[0019] The connecting component includes a main gear located at the bottom of the connecting rod and a driven gear threadedly connected to the main gear. The driven gear is fixedly sleeved on the rotating rod, and a protective box is sleeved around the main gear and the driven gear.

[0020] Compared with the prior art, the beneficial effects of the present invention are:

[0021] When it is necessary to divide the water source inside the channel, the main gate unit is opened. As the main gate unit moves upward, the traction component drives the branch gate unit to move downward. Then, the water source flows out from the branch gate unit and into different channels. After the water source flows to the main gate unit, it will drive the cleaning unit to work, so that the cleaning unit cleans the bottom of the branch channel, reducing the impact of debris accumulation on the opening and closing of the main gate unit. When it is necessary to adjust the water flow in the branch channel separately, the hydraulic rod is activated, which drives the support plate to move away from the main gate plate. This causes the branch gate plate to rotate along the second guide roller under the drive of the traction rope, thereby increasing the water flow in the branch channel. By adjusting the settings of the components, the overall control and separate control of the water flow in the branch channel can be achieved, increasing the overall practicality. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the main structure in one embodiment of the present invention;

[0023] Figure 2 This is a top view of the structure in one embodiment of the present invention;

[0024] Figure 3 This is a frontal structural schematic diagram of an embodiment of the present invention;

[0025] Figure 4 This is a schematic diagram of the exploded view of one embodiment of the present invention;

[0026] Figure 5 This is a partial cross-sectional structural diagram of one embodiment of the present invention;

[0027] Figure 6 This is a side-section structural diagram of one embodiment of the present invention;

[0028] Figure 7 This is a schematic diagram of the structure of the main gate unit and the tripping unit in one embodiment of the present invention;

[0029] Figure 8 This is a schematic diagram of the cleaning unit in one embodiment of the present invention;

[0030] Figure 9 This is a schematic diagram of the structure of the dispensing component in one embodiment of the present invention;

[0031] Figure 10 for Figure 5 Enlarged structural diagram of Part A;

[0032] Figure 11 for Figure 6 Enlarged structural diagram of section B;

[0033] Figure 12 This is a schematic diagram of the rear structure in one embodiment of the present invention.

[0034] In the diagram: 1. Diversion ditch; 2. Mounting frame; 3. Main gate unit; 31. Main gate plate; 32. Screw; 33. Turntable; 34. Traction component; 341. Traction rope; 342. First guide roller; 343. Second guide roller; 4. Opening gate unit; 41. Opening gate plate; 42. Insert plate; 43. Support plate; 44. Slot; 45. Hydraulic rod; 5. Cleaning unit; 51. Connecting rod; 52. Impeller; 53. Main gear; 54. Driven gear; 55. Rotating rod; 56. Cleaning plate; 57. Protective box. Detailed Implementation

[0035] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0036] Please see Figure 1-12 The present invention provides a technical solution: a remote control gate channel allocation structure, including a mounting frame 2 erected on a channel ditch 1, and further comprising:

[0037] The main gate unit 3 is located on the side of the mounting frame 2 near the water inlet and is used to block and release the water source.

[0038] The branch gate unit 4 is located on the side of the mounting frame 2 near the outlet and is connected to the main gate unit 3 through the traction component 34. Under the drive of the traction component 34, it moves in the opposite direction to the main gate unit 3 to control the water flow of the branch channel.

[0039] The cleaning unit 5 is located on the mounting frame 2 between the main gate unit 3 and the branch gate unit 4, and is used to clean debris from the drain outlet.

[0040] It should be noted that during operation, when it is necessary to divide the water source inside the channel, the main gate unit 3 is opened. As the main gate unit 3 moves upward, the traction component 34 drives the branch gate unit 4 to move downward. Then, the water source flows out from the branch gate unit 4 and flows into different channels. After the water source flows to the main gate unit 3, it will drive the cleaning unit 5 to work, so that the cleaning unit 5 cleans the bottom of the branch channel 1, reducing the impact of debris accumulation on the opening and closing of the main gate unit 3.

[0041] In one embodiment, the main gate unit 3 includes a main gate plate 31 disposed inside the branch channel 1 and a screw 32 disposed on the upper end of the main gate plate 31. The screw 32 is threadedly connected to the mounting bracket 2 and is used to drive the main gate plate 31 to move up and down. With this design, the screw 32 can be rotated by external force, thereby causing the main gate plate 31 connected to the bottom of the screw 32 to move upward. The main gate plate 31 opens the branch channel 1, allowing water to flow into the branch channel 1 to achieve the effect of diversion.

[0042] In one embodiment, a turntable 33 is provided on the top of the screw 32 to facilitate adjustment of the position of the screw 32. This design saves the operator's physical effort by rotating the turntable 33 to drive the screw 32 to rotate.

[0043] In one embodiment, the gate-blocking unit 4 includes a gate plate 41 disposed above the branch channel 1 and an insert plate 42 disposed below the gate plate 41. An adjustment component for adjusting the installation angle of the gate plate 41 is disposed below the insert plate 42. With this design, as the gate plate 41 continuously descends, the water flow in the branch channel gradually decreases. When the main gate plate 31 moves to its highest point, the gate plate 41 connects with the adjustment component, thus blocking the water flowing from the branch channel 1 into the branch channel and preventing excessive irrigation of farmland due to excessive water flow.

[0044] In the second embodiment, the adjusting component includes a support plate 43 located below the insert plate 42 and a hydraulic rod 45 disposed on the side of the support plate 43 away from the main gate plate 31. The side of the hydraulic rod 45 away from the support plate 43 is disposed on the branch channel 1.

[0045] The support plate 43 has a slot 44 at the position corresponding to the insertion plate 42 for insertion. With this design, when it is necessary to adjust the flow rate of the water source in the branch channel separately, the hydraulic rod 45 is activated, which drives the support plate 43 to move away from the main gate plate 31. This causes the branch gate plate 41 to rotate along the second guide roller 343 under the drive of the traction rope 341, thereby increasing the water flow rate of the branch channel. By adjusting the settings of the components, the overall control and separate control of the water flow in the branch channel can be achieved, increasing the overall practicality.

[0046] In one embodiment, the traction component 34 includes a traction rope 341 with one end disposed on the main gate 31 and the other end disposed on the branch gate 41, and a guide device for threading the traction rope 341. This design allows the traction rope 341 to move downwards under the influence of gravity, causing the main gate 31 to move upwards and the branch gate 41 to move downwards when the main gate 31 is fully open.

[0047] In one embodiment, the guiding device includes a first guide roller 342 disposed on the upper end of the mounting frame 2 and a second guide roller 343 disposed on the mounting frame 2. A traction rope 341 passes through the first guide roller 342 and the second guide roller 343. The first guide roller 342 is located directly above the main gate plate 31, and the second guide roller 343 is located directly above the branch gate plate 41. This design allows the main gate plate 31 and the branch gate plate 41 to move vertically up and down by setting the first guide roller 342 and the second guide roller 343, thereby improving the stability of the gate movement.

[0048] In one embodiment, the cleaning unit 5 includes a connecting rod 51 mounted on the mounting frame 2, an impeller 52 located at the lower part of the connecting rod 51, and a transmission component located at the bottom end of the connecting rod 51. The connecting rod 51 is connected to a rotating rod 55 via the transmission component. A cleaning plate 56 for cleaning impurities is provided on the rotating rod 55. With this design, when the water source flows into the branch channel 1, it impacts the impeller 52, causing the impeller 52 to drive the connecting rod 51 to rotate. The rotation of the connecting rod 51 drives the connecting component connected at the bottom to rotate, thereby causing the connecting rotating rod 55 to drive the cleaning plate 56 to rotate. The cleaning plate 56 cleans the impurities accumulated at the bottom of the branch channel 1, reducing the impact of impurities clogging the bottom of the branch channel 1 on the closing of the main gate 31.

[0049] In one embodiment, the impeller 52 is arc-shaped and drives the connecting rod 51 to rotate under the influence of water flow. This design increases the resistance of the impeller 52 to the water source, thereby increasing the rotational speed of the impeller 52.

[0050] In one embodiment, the connector includes a main gear 53 disposed at the bottom of the connecting rod 51 and a driven gear 54 threadedly connected to the main gear 53. The driven gear 54 is fixedly sleeved on the rotating rod 55. A protective box 57 is sleeved around the main gear 53 and the driven gear 54. The protective box 57 is disposed on the inner side of the drainage ditch 1 via a support rod. With this design, when the connecting rod 51 rotates, the main gear 53 drives the driven gear 54 to rotate, which in turn drives the rotating rod 55 to rotate, thereby causing the cleaning plate 56 to clean the impurities at the bottom of the drainage ditch 1.

Claims

1. A remote-controlled gate distribution structure, comprising a mounting frame (2) erected on a distribution ditch (1), characterized in that, Also includes: The main gate unit (3) is located on the side of the mounting frame (2) near the water inlet and is used to block and release the water source; The branch gate unit (4) is located on the side of the mounting frame (2) near the outlet and is connected to the main gate unit (3) through the traction component (34). Under the drive of the traction component (34), it moves in the opposite direction to the main gate unit (3) to control the water flow of the branch channel. The cleaning unit (5) is located on the mounting frame (2) between the main gate unit (3) and the branch gate unit (4) and is used to clean the debris at the drain outlet. The main gate unit (3) includes a main gate plate (31) disposed inside the branch channel (1) and a screw (32) disposed on the upper end of the main gate plate (31). The screw (32) is threadedly connected to the mounting frame (2) and is used to drive the main gate plate (31) to move up and down. The gate-opening unit (4) includes a gate-opening plate (41) disposed above the branch channel (1) and an insert plate (42) disposed below the gate-opening plate (41). An adjustment component for adjusting the installation angle of the gate-opening plate (41) is disposed below the insert plate (42). The adjusting component includes a support plate (43) located below the insert plate (42) and a hydraulic rod (45) disposed on the side of the support plate (43) away from the main gate plate (31). The side of the hydraulic rod (45) away from the support plate (43) is disposed on the branch channel (1). The support plate (43) has a slot (44) at the position corresponding to the insertion plate (42) for the insertion plate (42) to be inserted. The cleaning unit (5) includes a connecting rod (51) disposed on the mounting frame (2), an impeller (52) disposed at the lower part of the connecting rod (51), and a transmission component disposed at the bottom end of the connecting rod (51). The connecting rod (51) is connected to the rotating rod (55) through the transmission component. The rotating rod (55) is provided with a cleaning plate (56) for cleaning impurities. The impeller (52) is arc-shaped and drives the connecting rod (51) to rotate under the influence of the water flow; The transmission component includes a main gear (53) located at the bottom of the connecting rod (51) and a driven gear (54) threadedly connected to the main gear (53). The driven gear (54) is fixedly sleeved on the rotating rod (55). A protective box (57) is sleeved on the outside of the main gear (53) and the driven gear (54).

2. The remote control gate channel allocation structure according to claim 1, characterized in that: The top of the screw (32) is provided with a turntable (33) for easy adjustment of the position of the screw (32).

3. The remote control gate channel allocation structure according to claim 1, characterized in that: The traction component (34) includes a traction rope (341) with one end set on the main gate (31) and the other end set on the branch gate (41) and a guide device for the traction rope (341) to pass through.

4. The remote control gate channel allocation structure according to claim 3, characterized in that: The guiding device includes a first guide roller (342) disposed on the upper end of the mounting frame (2) and a second guide roller (343) disposed on the mounting frame (2). The traction rope (341) passes through the first guide roller (342) and the second guide roller (343). The first guide roller (342) is located directly above the main gate (31), and the second guide roller (343) is located directly above the branch gate (41).

Citation Information

Patent Citations

  • Automatic control water conservancy distributing canal concrete gate valve

    CN208523429U

  • Novel split type gate

    CN213508340U