A flood control device for water conservancy projects

By designing the servo motor drive and airbag expansion mechanism in the flood control device of the water conservancy project, the problem of impurities easily being involved in the contact part of the waterproof plate and the bonding frame is solved, the sealing and flood control effect are improved, and the flood control capability of the flood control device is enhanced.

CN119800916BActive Publication Date: 2025-08-12TALENT SCI & TECH CO LTD
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Patent Information

Application Number
CN202510306614.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2025-08-12
Estimated Expiration
2045-03-14

AI Technical Summary

Technical Problem

In the existing factory flood control equipment, impurities are easily stuck in the contact part of the waterproof plate and the bonding rack, and the airtightness is low, resulting in poor flood control effect.

Method used

A flood control device for water conservancy engineering is designed, including an internal hollow base, a curved guide frame, a double-slot frame, a waterproof mechanism and a fitting mechanism. The movement of the waterproof plate and the fitting frame is driven by the servo motor to reduce the probability of impurities inclusion, and the airbag and reinforcement mechanism are used to improve the sealing and stability.

Benefits of technology

It effectively reduces the chance of impurities sandwiching between the waterproof board and the fitting rack, improves the sealing and flood prevention effect, enhances the fitting density between the waterproof board and the fitting rack, and enhances the flood prevention capabilities of the flood prevention device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of flood prevention, and in particular to a flood prevention device for water conservancy projects. The technical problem is that the existing factory flood prevention device has a bonding frame and a waterproof board exposed to the air, which easily causes the portion where the waterproof board contacts the bonding frame to be sandwiched with impurities during flood prevention, and the portion where the waterproof board contacts the bonding frame is not tightly enough, which leads to a low airtightness between the waterproof board and the bonding frame, and a poor flood prevention effect. A flood prevention device for water conservancy projects comprises a base with a hollow interior, two arc-shaped guide frames installed in the base, a double-slot frame arranged in the base, and a waterproof mechanism installed on the base. Initially, the telescopic plate and the bonding frame are located in the base. When flooding occurs, the telescopic plate extends out of the waterproof board, and the two bonding frames extend out of the base, which can reduce the probability of impurities being sandwiched between the waterproof board and the bonding frame during flood prevention, improve the airtightness between the waterproof board and the bonding frame, and enhance the flood prevention effect.
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Description

Technical Field

[0001] The present invention relates to the field of flood control, and in particular to a flood control device for a water conservancy project. Background Art

[0002] Water conservancy flood control refers to the implementation of appropriate engineering measures tailored to local conditions to mitigate the damage caused by floods to the natural environment, human safety, and man-made structures. There are many types of water conservancy flood control devices, including dams, flood gates, and reservoirs. Among the more common water conservancy flood control devices in cities are those for power plants. These devices typically use electric or hydraulic devices to raise waterproof panels when flooding occurs. These panels then mate with mounting brackets on either side to block and isolate the floodwater.

[0003] However, the existing factory flood prevention devices generally have their bonding frames directly fixed on the wall or the ground, and the contact portion between the waterproof board and the bonding frame is usually exposed to the air. Vehicles and personnel entering the factory are likely to bring various impurities onto the waterproof board or the bonding frame, which can easily cause impurities to be caught in the contact portion between the waterproof board and the bonding frame during flood prevention, and the contact portion between the waterproof board and the bonding frame is not tightly enough, which leads to low airtightness between the waterproof board and the bonding frame and poor flood prevention effect. Summary of the Invention

[0004] In order to overcome the shortcomings of the existing factory flood prevention device, in which the bonding frame and the waterproof board are exposed to the air, which easily causes impurities to be caught in the contact part of the waterproof board and the bonding frame during flood prevention, and the contact part of the waterproof board and the bonding frame is not tightly enough, thereby resulting in low airtightness between the waterproof board and the bonding frame and poor flood prevention effect, the present invention provides a water conservancy project flood prevention device that can reduce the probability of impurities being caught between the waterproof board and the bonding frame during flood prevention, and can make the waterproof board and the bonding frame fit more tightly, thereby improving the airtightness between the waterproof board and the bonding frame and enhancing the flood prevention effect.

[0005] The technical solution of the present invention is: a flood control device for a water conservancy project, comprising:

[0006] A base with a hollow interior;

[0007] Two arc-shaped guide frames installed in the base;

[0008] A double-slot frame set in the base;

[0009] A waterproof mechanism installed on the base, which is used to block flood water when flooding occurs;

[0010] The fitting mechanism is installed on the base and the waterproof mechanism, and is used to cooperate with the waterproof mechanism to prevent flood water from flowing back into the factory building.

[0011] In one embodiment, the waterproof mechanism includes a waterproof plate hinged on the base, the interior of the waterproof plate has an installation cavity, two servo motors 1 fixed to the bottom of the inner wall of the base, the output shafts of the two servo motors 1 are fixed with gears 1, and two arc-shaped guide frames are slidably connected with arc-shaped racks, the two arc-shaped racks are respectively engaged with the two gears 1, and are fixed to the bottom of the waterproof plate, the ends of the two arc-shaped racks fixed to the waterproof plate pass through the base, and a telescopic component is provided in the waterproof plate.

[0012] In one embodiment, the telescopic assembly includes a transmission frame slidably connected to the mounting cavity of the waterproof board, one end of the transmission frame passes through the waterproof board, two contact shafts rotatably connected to the end of the transmission frame passing through the waterproof board, two short columns fixed to one side of the transmission frame located in the mounting cavity, and two telescopic plates slidably connected to the mounting cavity of the waterproof board, both telescopic plates are provided with oblique grooves, and the two short columns are respectively located in the oblique grooves of the two telescopic plates.

[0013] In one embodiment, the bonding mechanism includes two bonding frames slidably connected to the base, two groups of guide blocks respectively fixed to the two sides of the inner wall of the base, each group of guide blocks has two, and the two groups of guide blocks are respectively slidably connected to the two bonding frames, both bonding frames are fixed with threaded sleeves, and a transmission assembly is provided on the waterproof plate.

[0014] In one embodiment, the transmission assembly includes two gears 2 fixedly connected to the waterproof plate, two threaded rods 1 rotatably connected to the inner wall of the base, the two threaded rods 1 are respectively threadedly arranged with two threaded sleeves, and the two threaded rods 1 are fixedly connected to gears 3, and the two gears 3 are respectively engaged with the two gears 2.

[0015] In one embodiment, a sealing mechanism is further included which is installed on the waterproof plate and the telescopic plate. The sealing mechanism is used to increase the air tightness between the telescopic plate and the laminating frame. The sealing mechanism includes a cylinder fixed to the waterproof plate, a sliding plate slidably connected to the inner wall of the cylinder, four return springs arranged between the sliding plate and the cylinder, and an expansion assembly arranged in the telescopic plate.

[0016] In one embodiment, the expansion assembly includes an airbag, an airbag is fixed to the inner wall of each telescopic plate, two hoses are fixed to the cylinder, the ends of the two hoses away from the cylinder are respectively fixed to the two airbags, and the two airbags are connected to the cylinder through the hoses.

[0017] In one embodiment, it also includes a reinforcement mechanism installed on the base and the arc-shaped guide frame, the reinforcement mechanism is used to increase the stability of the waterproof board when blocking floods, the reinforcement mechanism includes a guide rail fixedly connected to the bottom of the inner wall of the base, the guide rail is provided with a guide groove, two sliding frames slidably connected to the guide groove of the guide rail, both sliding frames are provided with inclined surfaces, servo motor 2 fixedly connected to the bottom of the inner wall of the base, threaded rod 2 rotatably connected between the two arc-shaped guide frames, one end of threaded rod 2 is fixedly connected to the output shaft of servo motor 2, threaded rod 2 is provided with two sets of threads, both sliding frames are threadedly connected to threaded rod 2, and a lifting assembly is arranged in the base.

[0018] In one embodiment, the directions of the two sets of threads on the second threaded rod are opposite.

[0019] In one embodiment, the lifting assembly includes two reinforcement frames slidably connected to the base, two rollers rotatably connected to the lower part of the reinforcement frames, and the two rollers are respectively in contact with the inclined surfaces of the two sliding frames.

[0020] The beneficial effects of the present invention are: 1. Initially, the telescopic plate and the bonding frame are both located inside the base. When a flood occurs, the telescopic plate moves away from each other and extends out of the waterproof plate, and the two bonding frames move toward each other and extend out of the base. The extended telescopic plate continues to rotate and is bonded together with the extended bonding frame. The waterproof plate, the telescopic plate and the bonding frame form a whole to isolate floodwater from flowing back into the factory building, which can reduce the probability of impurities being caught between the waterproof plate and the bonding frame during flood control, improve the airtightness between the waterproof plate and the bonding frame, and enhance the flood control effect.

[0021] 2. When the flood water level rises to contact the sliding plate, the water flow will squeeze the sliding plate, the return spring will be compressed, and the sliding plate will fill the air in the cylinder into two air bags through two hoses. The air bags will inflate and bulge out of the telescopic plate to fit the fitting frame, which can make the waterproof board and the fitting frame fit more closely, further improve the airtightness between the waterproof board and the fitting frame, and further enhance the flood prevention effect.

[0022] 3. The staff starts the servo motor 2, and the output shaft of the servo motor 2 rotates to drive the threaded rod 2 to rotate. Under the action of the two sets of reverse threads on the threaded rod 2, the two sliding frames move toward each other. The inclined surfaces on the two sliding frames push the two rollers upward. The upward movement of the two rollers drives the two reinforcement frames to move upward. The two reinforcement frames move upward to press against the top of the waterproof board, which can improve the waterproof board's ability to withstand floods and increase the stability of the waterproof board when blocking floods. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0024] Figure 2 It is a schematic diagram of the three-dimensional structure of the waterproof mechanism of the present invention.

[0025] Figure 3 It is a schematic cross-sectional three-dimensional structural diagram of the waterproof mechanism of the present invention.

[0026] Figure 4 It is a schematic diagram of the three-dimensional structure of the double-slot frame of the present invention.

[0027] Figure 5 It is a schematic cross-sectional three-dimensional structural diagram of the waterproof mechanism and the laminating mechanism of the present invention.

[0028] Figure 6 It is a schematic diagram of the disassembled three-dimensional structure of the laminating mechanism of the present invention.

[0029] Figure 7 It is a schematic cross-sectional perspective view of the waterproof mechanism and the sealing mechanism of the present invention.

[0030] Figure 8 It is a schematic diagram of the disassembled three-dimensional structure of the transmission frame, telescopic plate and short column of the present invention.

[0031] Figure 9 It is a schematic diagram of the disassembled three-dimensional structure of the sealing mechanism of the present invention.

[0032] Figure 10 It is a schematic cross-sectional three-dimensional structural diagram of the reinforcement mechanism of the present invention.

[0033] Figure 11 It is a schematic diagram of the disassembled three-dimensional structure of the reinforcement mechanism of the present invention.

[0034] In the accompanying drawings: 1-base, 2-arc-shaped guide frame, 3-double-slot frame, 41-waterproof plate, 42-servo motor 1, 43-gear 1, 44-arc-shaped rack, 45-transmission frame, 46-contact shaft, 461-short column, 47-telescopic plate, 51-fitting frame, 52-guide block, 53-threaded sleeve, 54-gear 2, 55-threaded rod 1, 56-gear 3, 61-cylinder, 62-sliding plate, 63-reset spring, 64-airbag, 65-hose, 71-guide rail, 72-sliding frame, 73-servo motor 2, 74-threaded rod 2, 75-reinforcement frame, 76-roller. DETAILED DESCRIPTION

[0035] The embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0036] Example 1: A flood control device for a water conservancy project, such as Figures 1-8 and Figure 10 Shown, including,

[0037] A hollow base 1 is pre-buried at the entrance of the factory building, and the concave surface of the base 1 is kept flush with the ground;

[0038] Two arc-shaped guide frames 2 are welded to the base 1. The two arc-shaped guide frames 2 are symmetrically arranged and each has a guide groove.

[0039] A double-slot frame 3 is provided in the base 1, and the double-slot frame 3 has two symmetrically arranged limiting slots;

[0040] A waterproof mechanism installed on the base 1, which is used to block floods when floods occur;

[0041] The fitting mechanism is installed on the base 1 and the waterproof mechanism, and is used to cooperate with the waterproof mechanism to isolate flood water from flowing into the factory building.

[0042] The waterproof mechanism includes a waterproof plate 41 hinged on the base 1, the interior of the waterproof plate 41 has an installation cavity, and the top of the waterproof plate 41 is kept flush with the ground. Two servo motors 42 are connected to the bottom of the inner wall of the base 1 by bolts. The two servo motors 42 are symmetrically arranged. The output shafts of the two servo motors 42 are fixedly connected with a gear 43. The two arc-shaped guide frames 2 are slidably connected with an arc-shaped rack 44. The two arc-shaped racks 44 are respectively engaged with the two gears 43 and are fixed to the bottom of the waterproof plate 41. The servo motor 42 drives the arc-shaped rack 44 to slide along the arc-shaped guide frame 2 through the gear 43, thereby driving the waterproof plate 41 to rotate upward. The ends of the two arc-shaped racks 44 fixed to the waterproof plate 41 pass through the base 1, and a telescopic component is provided in the waterproof plate 41.

[0043] The telescopic assembly includes a transmission frame 45 that is slidably connected to the mounting cavity of the waterproof plate 41, one end of the transmission frame 45 passes through the waterproof plate 41, two contact shafts 46 that are rotatably connected to the transmission frame 45 that pass through one end of the waterproof plate 41, the two contact shafts 46 are symmetrically arranged, one end of the two contact shafts 46 are respectively located in the two limit grooves of the double-slot frame 3, two short columns 461 welded to the transmission frame 45 on one side of the mounting cavity, two telescopic plates 47 that are slidably connected to the mounting cavity of the waterproof plate 41, both of the telescopic plates 47 are hollow, the two telescopic plates 47 are symmetrically arranged, and oblique grooves are opened on the two telescopic plates 47. The two short columns 461 are respectively located in the oblique grooves of the two telescopic plates 47, and the double-slot frame 3 drives the transmission frame 45 to move downward through the contact shaft 46, and then drives the telescopic plate 47 to extend out of the waterproof plate 41 by driving the short columns 461.

[0044] The laminating mechanism includes two laminating frames 51 slidably connected to the base 1, the two laminating frames 51 are symmetrically arranged, and two groups of guide blocks 52 are respectively connected to the inner wall of the base 1 by bolts. The number of guide blocks 52 in each group is two, and the two guide blocks 52 in the same group are symmetrically arranged. The two groups of guide blocks 52 are respectively slidably connected to the two laminating frames 51, and the guide blocks 52 are used to provide guiding support when the laminating frames 51 move. A threaded sleeve 53 is fixed to the two laminating frames 51, and a transmission assembly is provided on the waterproof plate 41.

[0045] The transmission assembly includes two gears 2 54 fixedly connected to the waterproof plate 41, the two gears 2 54 are symmetrically arranged and located inside the base 1, two threaded rods 1 55 rotatably connected to the inner wall of the base 1, the two threaded rods 1 55 are respectively threaded with two threaded sleeves 53, and the two threaded rods 1 55 are fixedly connected with gears 3 56, and the two gears 3 56 are respectively engaged with the two gears 2 54. The waterproof plate 41 drives the threaded rods 1 55 to rotate through the gears 2 54 and the gears 3 56, and then drives the fitting frame 51 to move through the threaded sleeve 53.

[0046] Initially, the base 1 is pre-buried at the entrance of the factory building. When no flood occurs, the waterproof plate 41 is embedded in the base 1, and the top of the waterproof plate 41 is kept flush with the ground. The telescopic plate 47 and the fitting frame 51 are both located in the base 1. When a flood occurs, the staff starts the servo motor 1 42. The output shaft of the servo motor 1 42 rotates to drive the gear 1 43 to rotate. The gear 1 43 rotates to drive the arc rack 44 to slide along the guide groove of the arc guide frame 2. The sliding of the arc rack 44 drives the waterproof plate 41 to rotate upward. The upward rotation of the waterproof plate 41 drives the transmission frame 45, the telescopic plate 47 and the gear 2 54 to rotate. The rotation of the transmission frame 45 drives the contact shaft 46 and the short column 461 to rotate. The contact shaft 46 slides along the limit groove of the double-slot frame 3. When the telescopic plate 47 rotates to After leaving the position of the base 1, the limiting groove of the double-slot frame 3 squeezes the contact shaft 46 downward, causing the contact shaft 46 to move downward while rotating, and the downward movement of the contact shaft 46 drives the transmission frame 45 to move downward, and the downward movement of the transmission frame 45 drives the short column 461 to move downward, and the short column 461 moves downward to squeeze the inclined groove of the telescopic plate 47, and the two telescopic plates 47 move in a direction away from each other and extend out of the waterproof plate 41, and the rotation of gear two 54 drives gear three 56 to rotate, and the rotation of gear three 56 drives threaded rod one 55 to rotate. Under the action of the threads of threaded rod one 55, the two fitting frames 51 will move in a direction close to each other and extend out of the base 1. Through the above operation, the impurities between the waterproof plate 41 and the fitting frame 51 during flood control can be reduced. The probability of flooding is improved, the airtightness between the waterproof plate 41 and the fitting frame 51 is improved, and the flood prevention effect is enhanced. The extended telescopic plate 47 continues to rotate and fits together with the extended fitting frame 51. The waterproof plate 41, the telescopic plate 47 and the fitting frame 51 form a whole to isolate the flood from flowing into the factory building. When the flood alarm is lifted, the staff adjusts the servo motor 1 42 to rotate in the opposite direction. The output shaft of the servo motor 1 42 rotates in the opposite direction to drive the gear 1 43 to rotate in the opposite direction. The gear 1 43 rotates in the opposite direction to drive the arc rack 44 to slide in the opposite direction along the guide groove of the arc guide frame 2. The arc rack 44 slides in the opposite direction to drive the waterproof plate 41 to rotate downward. The waterproof plate 41 rotates downward to drive the transmission frame 45, the telescopic plate 47 and the gear 2 54 to rotate in the opposite direction. The transmission frame 45 rotates in the opposite direction to drive the contact shaft 46 and The short column 461 rotates in the opposite direction, and the limiting groove of the double-slot frame 3 squeezes the contact shaft 46 upward, so that the contact shaft 46 moves upward while rotating. The upward movement of the contact shaft 46 drives the transmission frame 45 to move upward, and the upward movement of the transmission frame 45 drives the short column 461 to move upward. The short column 461 moves upward to reversely squeeze the oblique groove of the telescopic plate 47, and the two telescopic plates 47 move toward each other and retract into the waterproof plate 41. The waterproof plate 41 continues to rotate downward and is re-embedded on the base 1. The reverse rotation of gear 2 54 drives gear 3 56 to rotate in the opposite direction. The reverse rotation of gear 3 56 drives threaded rod 1 55 to rotate in the opposite direction. Under the action of the threads of threaded rod 1 55, the two fitting frames 51 will move toward away from each other and retract into the base 1.

[0047] Example 2: Based on Example 1, Figure 2 、 Figure 3 、 Figure 7 and Figure 9 As shown, it also includes a sealing mechanism installed on the waterproof plate 41 and the telescopic plate 47, and the sealing mechanism is used to increase the airtightness between the telescopic plate 47 and the fitting frame 51. The sealing mechanism includes a cylinder 61 welded to the waterproof plate 41, a sliding plate 62 slidingly connected to the inner wall of the cylinder 61, and four return springs 63 arranged between the sliding plate 62 and the cylinder 61. The four return springs 63 are evenly spaced and arranged in an expansion component in the telescopic plate 47.

[0048] The expansion assembly includes an airbag 64, an airbag 64 is fixedly connected to the inner wall of each of the two telescopic plates 47, and two hoses 65 are fixedly connected to the cylinder 61. The ends of the two hoses 65 away from the cylinder 61 are respectively fixedly connected to the two airbags 64. The two airbags 64 are connected to the cylinder 61 through the hoses 65. The flood squeezes the sliding plate 62 to fill the air in the cylinder 61 into the two airbags 64 through the hoses 65, thereby causing the two airbags 64 to expand.

[0049] Initially, there is air in the cylinder 61, and the two air bags 64 are connected to the cylinder 61 through the hose 65. The air bags 64 are embedded in the telescopic plate 47. The waterproof plate 41 rotates upward to drive the cylinder 61 to rotate, and the rotation of the telescopic plate 47 drives the air bags 64 to rotate. The rotation of the cylinder 61 and the air bags 64 drives the sliding plate 62, the return spring 63 and the hose 65 to rotate. When the flood water level rises to contact the sliding plate 62, the water flow will squeeze the sliding plate 62, the return spring 63 is compressed, and the sliding plate 62 fills the air in the cylinder 61 into the two air bags 64 through the two hoses 65. The air bags 64 are inflated and bulge out of the telescopic plate 47 to fit the fitting frame 51. Through the above operation, the waterproof plate 4 1 fits more closely with the fitting frame 51, further improving the airtightness between the waterproof plate 41 and the fitting frame 51, and further enhancing the flood prevention effect. When the water level drops to the point of being out of contact with the sliding plate 62, the return spring 63 rebounds and drives the sliding plate 62 to move in the opposite direction and reset. The excess gas in the two air bags 64 returns to the cylinder 61 through the hose 65. The air bags 64 shrink to their initial state and retract into the telescopic plate 47. After the flood alarm is lifted, the waterproof plate 41 rotates downward to drive the cylinder 61 to rotate in the opposite direction. The telescopic plate 47 rotates in the opposite direction to drive the air bags 64 to rotate in the opposite direction. The cylinder 61 and the air bags 64 rotate in the opposite direction to drive the sliding plate 62, the return spring 63 and the hose 65 to rotate in the opposite direction.

[0050] Example 3: Based on Example 2, Figure 1 、 Figure 5 、 Figure 10 and Figure 11As shown, it also includes a reinforcement mechanism installed on the base 1 and the arc-shaped guide frame 2. The reinforcement mechanism is used to increase the stability of the waterproof board 41 when blocking floods. The reinforcement mechanism includes a guide rail 71 connected to the bottom of the inner wall of the base 1 by bolts. The guide rail 71 has a guide groove, two sliding frames 72 slidably connected to the guide groove of the guide rail 71, and the guide rail 71 is used to provide guidance for the sliding frames 72. Both sliding frames 72 are provided with inclined surfaces, a servo motor 2 73 connected to the bottom of the inner wall of the base 1 by bolts, a threaded rod 2 74 rotatably connected between the two arc-shaped guide frames 2, one end of the threaded rod 2 74 is fixedly connected to the output shaft of the servo motor 2 73, the threaded rod 2 74 is provided with two sets of threads, and the two sets of threads on the threaded rod 2 74 are symmetrically arranged. The two sliding frames 72 are both threadedly connected to the threaded rod 2 74. The servo motor 2 73 drives the threaded rod 2 74 to rotate, and then drives the two sliding frames 72 to move through the threads on the threaded rod 2 74, which is provided with a lifting component in the base 1.

[0051] The directions of the two sets of threads on the second threaded rod 74 are arranged in opposite directions.

[0052] The lifting assembly includes two reinforcement frames 75 slidably connected to the base 1. The two reinforcement frames 75 are symmetrically arranged, and the tops of the two reinforcement frames 75 are kept flush with the ground. Two rollers 76 are rotatably connected to the lower parts of the reinforcement frames 75. The two rollers 76 are in contact with the inclined surfaces of the two sliding frames 72 respectively. The sliding frame 72 drives the reinforcement frames 75 to move upward by squeezing the rollers 76 upward.

[0053] Initially, the top of the reinforcement frame 75 remains flush with the ground, and the two sliding frames 72 are against the two rollers 76. When the waterproof board 41 is raised, the staff starts the servo motor 2 73. The output shaft of the servo motor 2 73 rotates to drive the threaded rod 2 74 to rotate. Under the action of the two sets of reverse threads of the threaded rod 2 74, the two sliding frames 72 move in the direction of approaching each other. The inclined surfaces on the two sliding frames 72 push the two rollers 76 upward. The two rollers 76 move upward to drive the two reinforcement frames 75 to move upward. The two reinforcement frames 75 move upward to resist the top of the waterproof board 41. Through the above operation, the The high waterproof board 41 has a flood-bearing capacity and increases the stability of the waterproof board 41 in blocking floods. When the flood alarm is lifted, the staff adjusts the servo motor 2 73 to rotate in the opposite direction. The output shaft of the servo motor 2 73 rotates in the opposite direction to drive the threaded rod 2 74 to rotate in the opposite direction. Under the action of the two sets of reverse threads of the threaded rod 2 74, the two sliding frames 72 move in a direction away from each other, and the inclined surface of the sliding frame 72 is out of contact with the roller 76. Under the action of gravity, the reinforcement frame 75 and the roller 76 will move downward, and the reinforcement frame 75 will retract to a position flush with the ground, and the roller 76 will contact the inclined surface of the sliding frame 72 again.

[0054] The above description is merely an example of the present invention and is not intended to limit the present invention. Any equivalent substitutions made within the principles of the present invention are intended to be included within the scope of protection of the present invention. Any content not elaborated in detail herein is already known to those skilled in the art.

Claims

1. A flood control device for a water conservancy project, characterized in that: include, A base (1) having a hollow interior; Two arc-shaped guide frames (2) installed in the base (1); A double-slot frame (3) disposed in the base (1); A waterproof mechanism installed on the base (1), the waterproof mechanism being used to block flood water when flooding occurs; A fitting mechanism installed on the base (1) and the waterproof mechanism, the fitting mechanism being used to cooperate with the waterproof mechanism to prevent flood water from flowing back into the factory building; The waterproof mechanism comprises a waterproof plate (41) hinged on the base (1), the interior of the waterproof plate (41) having a mounting cavity, and two telescopic plates (47) slidably connected to the mounting cavity of the waterproof plate (41); The laminating mechanism comprises two laminating frames (51) slidably connected to the base (1); The invention also includes a sealing mechanism installed on the waterproof plate (41) and the telescopic plate (47), the sealing mechanism is used to increase the airtightness between the telescopic plate (47) and the fitting frame (51), the sealing mechanism includes a cylinder (61) fixed to the waterproof plate (41), a sliding plate (62) slidably connected to the inner wall of the cylinder (61), four return springs (63) arranged between the sliding plate (62) and the cylinder (61), and an expansion component arranged in the telescopic plate (47); The expansion assembly includes an airbag (64), an airbag (64) fixed to the inner wall of each of the two telescopic plates (47), two hoses (65) fixed to the cylinder (61), and one end of the two hoses (65) away from the cylinder (61) is fixed to the two airbags (64), respectively. The two airbags (64) are connected to the cylinder (61) through the hoses (65); The waterproof mechanism further comprises two servo motors (42) fixed to the bottom of the inner wall of the base (1), the output shafts of the two servo motors (42) are fixedly connected to gears (43), the two arc-shaped guide frames (2) are slidably connected to arc-shaped racks (44), the two arc-shaped racks (44) are respectively engaged with the two gears (43), and are fixedly connected to the bottom of the waterproof plate (41), the ends of the two arc-shaped racks (44) fixed to the waterproof plate (41) pass through the base (1), and a telescopic component is provided in the waterproof plate (41); The telescopic assembly includes a transmission frame (45) slidably connected to the installation cavity of the waterproof plate (41), one end of the transmission frame (45) passing through the waterproof plate (41), two contact shafts (46) rotatably connected to one end of the transmission frame (45) passing through the waterproof plate (41), two short columns (461) fixed to the transmission frame (45) and located on one side of the installation cavity, two telescopic plates (47) are each provided with an oblique groove, and the two short columns (461) are respectively located in the oblique grooves of the two telescopic plates (47).

2. A flood control device for water conservancy projects according to claim 1, characterized in that: The laminating mechanism further comprises two groups of guide blocks (52) respectively fixed to both sides of the inner wall of the base (1), each group of guide blocks (52) has two guide blocks, and the two groups of guide blocks (52) are respectively connected to the two laminating frames (51) in a sliding manner. The two laminating frames (51) are both fixed with threaded sleeves (53), and a transmission assembly is provided on the waterproof plate (41).

3. A flood control device for water conservancy projects according to claim 2, characterized in that: The transmission assembly includes two gears 2 (54) fixedly connected to the waterproof plate (41), two threaded rods 1 (55) rotatably connected to the inner wall of the base (1), the two threaded rods 1 (55) are respectively threadedly arranged with the two threaded sleeves (53), and the two threaded rods 1 (55) are fixedly connected to gears 3 (56), and the two gears 3 (56) are respectively engaged with the two gears 2 (54).

4. A flood control device for water conservancy projects according to claim 3, characterized in that: The invention also includes a reinforcement mechanism installed on the base (1) and the arc-shaped guide frame (2), the reinforcement mechanism is used to increase the stability of the waterproof board (41) when blocking floods, the reinforcement mechanism includes a guide rail (71) fixed to the bottom of the inner wall of the base (1), a guide groove is opened on the guide rail (71), two sliding frames (72) slidably connected to the guide groove of the guide rail (71), and both sliding frames (72) are provided with inclined surfaces, a servo motor (73) fixed to the bottom of the inner wall of the base (1), a threaded rod (74) rotatably connected between the two arc-shaped guide frames (2), one end of the threaded rod (74) is fixed to the output shaft of the servo motor (73), the threaded rod (74) is provided with two sets of threads, and the two sliding frames (72) are both connected to the threaded rod (74) through threads, and are arranged in the lifting component in the base (1).

5. A flood control device for water conservancy projects according to claim 4, characterized in that: The directions of the two sets of threads on the second threaded rod (74) are opposite.

6. A flood control device for water conservancy projects according to claim 4, characterized in that: The lifting assembly comprises two reinforcement frames (75) connected to the base (1) in a sliding manner, and two rollers (76) connected to the lower part of the reinforcement frames (75) in a rotatable manner. The two rollers (76) are respectively in contact with the inclined surfaces of the two sliding frames (72).

Citation Information

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