A double-layer sealed water gate structure
Through technical means such as double-layer airbag sealing and spraying and decompression mechanism, the sealing and vibration problems of water conservancy gates are solved, and a double-layer sealing water conservancy gate structure with efficient sealing and vibration resistance is achieved, extending the life of the components and reducing energy consumption.
Patent Information
- Application Number
- CN202510579458.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2045-05-07
AI Technical Summary
The sealing performance of existing water conservancy gates is average, and the service life of related components is reduced due to shock and vibration caused by water flow.
A double-layer airbag sealing mechanism, a blowing and impurity removal mechanism, an inflation mechanism, a compression mechanism and an opening and closing limit mechanism are used to achieve a double-layer seal between the gate and the gate groove, prevent water leakage, and filter impurities through the blocking net to reduce damage to the components by vibration.
It improves the sealing and vibration resistance of the gate, extends the service life of related components, reduces energy consumption, and realizes automatic locking and stable connection.
Smart Images

Figure CN120099915B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water conservancy gates, and in particular to a double-layer sealed water conservancy gate structure. Background Art
[0002] Hydraulic gates are control facilities used to close and open drainage channels. They are an important part of hydraulic structures and can be used to intercept water flow, control water levels, regulate flow, discharge sediment and floating objects, etc. In water conservancy projects, hydraulic gates are often needed to control the water storage capacity of rivers, canals and reservoirs.
[0003] However, most of the current water conservancy gates are sealed in the form of single-layer sealing. For example, a "P"-shaped sealing strip is set between the gate and the gate track. Although it can achieve a sealing and water-stopping effect, the sealing reliability is still general, resulting in water seepage and leakage after a period of use. In addition, since the near-water surface of the gate is often impacted by the water flow and produces a certain amount of vibration, as the vibration time becomes longer and longer, it is not only easy to cause repeated squeezing of the sealing strip, but also damage to other components in the gate, which is bound to affect the service life of the corresponding components. Summary of the Invention
[0004] The purpose of the present invention is to solve the problems in the prior art that the sealing performance of the gate is average and the service life of related components is reduced due to excessive impact and vibration in daily life, and to propose a double-layer sealed hydraulic gate structure.
[0005] In order to achieve the above object, the present invention adopts the following technical solutions:
[0006] A double-layer sealed water conservancy gate structure includes a gate track, a gate, a sill, an opening and closing device, and a gate slot opened in the gate track. The water-side surface of the gate is slidably connected to a barrier net, and the outer periphery of the gate and the back water surface and the lower part of the barrier net are provided with a double-layer airbag sealing mechanism. The barrier net and the gate are provided with a spraying and debris removal mechanism, which is used to spray and remove debris from the sealing surface of the sill when the gate is closed. The gate is provided with an inflation mechanism connected to the opening and closing device for inflating the double-layer airbag sealing mechanism. Both sides of the barrier net are provided with a clamping mechanism connected to the opening and closing device for tightening and supporting between the water-side surface of the gate and the side wall of the gate slot. The gate is also provided with an opening and closing limit mechanism for fixing the gate to the gate track.
[0007] In some embodiments, the blowing and removing impurity mechanism includes a support frame fixed to the lower part of the barrier net and a second air cylinder assembly arranged in the gate. A one-way nozzle connected to the second air cylinder assembly is fixed inside the support frame, and the second air cylinder assembly is connected to the barrier net.
[0008] In some embodiments, the double-layer airbag sealing mechanism includes a first airbag sealing strip, a second airbag sealing strip and a bottom sealing assembly. The first airbag sealing strip is U-shaped and is fixed on the two side surfaces and the bottom surface of the gate. The second airbag sealing strip is fixed on both sides of the back water surface of the gate. The bottom sealing assembly is fixed to the outside of the support frame in the horizontal direction.
[0009] In some embodiments, the inflation mechanism includes a first inflation cylinder assembly and an inflation tube group, and the first inflation cylinder assembly is connected to the first airbag sealing strip and the second airbag sealing strip respectively through the inflation tube group.
[0010] In some embodiments, a hanger is connected between the opening and closing device and the gate. The hanger is slidably connected inside the gate and connected to the first inflation cylinder assembly for driving the first inflation cylinder assembly to inflate and deflat.
[0011] In some embodiments, the clamping mechanism includes two brackets, which are respectively fixed on both sides of the barrier net, and the brackets are located between the water surface of the gate and the side wall of the gate slot. The interior of the two brackets is provided with an extrusion assembly connected to the hanger for extruding the side wall of the gate slot.
[0012] In some embodiments, the opening and closing limit mechanism includes a slider, a latch, and a limit groove opened on the gate track and adapted to the latch. The slider slides vertically inside the gate, the latch slides horizontally inside the gate, and a connecting rod is connected between the slider and the latch. Pressure blocks are fixed to the outside of the hanger above and below the slider.
[0013] In some embodiments, a sealing groove is provided on the upper surface of the bottom sill below the gate, the support frame and the bottom sealing assembly are inserted into the sealing groove, a second inclined surface is provided on the side of the sealing groove close to the support frame, and a first inclined surface corresponding to the second inclined surface is provided at the lower part of the support frame.
[0014] In some embodiments, the bottom sealing assembly includes a third airbag sealing strip, a connecting tube and a fourth airbag sealing strip. The third airbag sealing strip is fixed on the first inclined surface, the fourth airbag sealing strip is fixed on the side of the support frame close to the first airbag sealing strip, and the interior of the third airbag sealing strip is connected to the interior of the fourth airbag sealing strip through the connecting tube.
[0015] In some embodiments, a boss is provided on a side of the support frame close to the first airbag sealing strip, and the boss is located below the gate.
[0016] Compared with the prior art, the present invention provides a double-layer sealed water conservancy gate structure with the following beneficial effects.
[0017] 1. The present invention provides a barrier net. When the gate is open, the barrier net will not affect the normal flow of water. In addition, when the gate is closed, the barrier net can filter the water flowing between the gate and the bottom sill to prevent larger impurities from passing through and getting stuck between the gate and the bottom sill, thereby ensuring the smooth closing of the gate and preventing larger impurities from damaging the bottom of the first airbag sealing strip.
[0018] 2. The present invention, through the setting of the spraying and impurity removal mechanism, when the gate is closed, multiple one-way nozzles can spray air at high speed between the bottom sill and the gate, thereby blowing out impurities between the bottom sill and the gate, preventing impurities from being stuck between the first airbag sealing strip and the sealing groove after sealing, and further avoiding damage to the first airbag sealing strip caused by impurities, thereby improving the protection capability of the first airbag sealing strip.
[0019] 3. The present invention, through the setting of a double-layer airbag sealing mechanism, can achieve double-layer sealing between the two sides of the gate and the gate groove, and between the bottom of the gate and the bottom sill, thereby improving the sealing and water-stopping ability of the gate structure, and can effectively prevent water leakage and seepage. In addition, through the cooperation between the gate and the support frame, the bottom sealing assembly and the bottom sill and the first airbag sealing strip will be sealed more tightly, thereby further improving the sealing performance of the area.
[0020] 4. The present invention, through the setting of the inflation mechanism, can cause the first airbag sealing strip and the second airbag sealing strip to undergo a certain expansion deformation during the closing process of the gate, thereby effectively improving the sealing between the gate and the gate groove, ensuring reliable sealing and water stopping of the water flow. Moreover, through this setting, when the gate is lifted and slid, the first airbag sealing strip and the second airbag sealing strip are in a normal contracted state and therefore do not contact the gate groove. Therefore, no friction damage will be caused to the first airbag sealing strip and the second airbag sealing strip during the lifting and sliding process, which can improve the service life of the sealing component to a certain extent.
[0021] 5. The present invention can lock the gate and the gate track through the setting of the opening and closing limit mechanism, and the entire locking process is carried out automatically without the need for additional operation by the operator. At the same time, the entire locking process is realized by the opening and closing device and the hanger, so there is no need to provide an additional driving device, thereby improving the degree of locking automation while not requiring excessive energy.
[0022] 6. The present invention, through the setting of the clamping mechanism, can make the gate tightly pressed against the other side wall of the gate groove through the support wheel, thereby improving the stability of the connection between the gate and the gate track, and can effectively reduce the vibration caused by the gate being washed and hit by water or other objects, thereby effectively preventing the damage of related components caused by vibration, improving its protection capability, and ensuring the service life of related components.
[0023] Other advantages, objects and features of the present invention will be described in part in the following description; and in part will be apparent to those skilled in the art based on an examination of the following; or may be taught from the practice of the invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure in a front view with the gate open.
[0025] Figure 2 It is a schematic diagram of the overall structure in a front view with the gate in a closed state.
[0026] Figure 3 This is a schematic diagram of the three-dimensional structure of the gate from the front.
[0027] Figure 4 This is a schematic diagram of the front cross-sectional structure of the gate when it is open.
[0028] Figure 5 It is a schematic diagram of the front cross-sectional structure of the gate when the gate is closed.
[0029] Figure 6 for Figure 5 Enlarged structural diagram at point A in the middle.
[0030] Figure 7 This is a schematic diagram of the rear-view three-dimensional structure of the blocking net.
[0031] Figure 8 It is a schematic diagram of the three-dimensional structure of the second inflation cylinder assembly.
[0032] Figure 9 It is a schematic diagram of the side cross-sectional structure of the connecting frame and the supporting frame.
[0033] Figure 10 for Figure 9 Enlarged structural diagram at point B in the middle.
[0034] Figure 11 It is a schematic diagram of the three-dimensional structure of the inflation mechanism from the front.
[0035] Figure 12 It is a schematic diagram of a top view and cross-section structure of the present invention.
[0036] Figure 13 It is a schematic diagram of a side cross-sectional partial structure of the present invention.
[0037] Figure 14 for Figure 13 Enlarged structural diagram at point C in the middle.
[0038] Figure 15 It is a schematic diagram of the side cross-sectional structure of the bracket when the gate is closed.
[0039] Figure 16 for Figure 15 Enlarged structural diagram at point D in the middle.
[0040] Figure 17 It is a schematic diagram of the partial structure of the bracket in a side view with the gate open.
[0041] In the picture:
[0042] 10. Gate track; 101. Gate slot; 20. Gate; 30. Barrier net; 31. Connecting frame; 40. Blowing and removing debris mechanism; 401. Support frame; 4011. Boss; 4012. First inclined plane; 402. One-way nozzle; 403. Air guide pipe; 404. Blowing pipe; 50. Double-layer airbag sealing mechanism; 51. First airbag sealing strip; 52. Second airbag sealing strip; 53. Bottom sealing assembly; 5301. Third airbag sealing strip; 5302. Connecting pipe; 5303. Fourth airbag sealing strip; 60. Inflating mechanism; 61. First inflator assembly; 6101. First cylinder; 6102. First piston; 6103. First piston rod; 62. Inflating pipe assembly; 70. Opening and closing limit Mechanism; 71. Slider; 72. Connecting rod; 73. Latch; 74. Limiting groove; 75. Pressure block; 80. Clamping mechanism; 81. Bracket; 82. Pressure rod; 8201. Limiting protrusion; 83. Extrusion assembly; 8301. Vertical slide bar; 8302. Horizontal slide bar; 8303. Extrusion piece; 8304. First wedge block; 8305. Second wedge block; 90. Second inflator assembly; 91. Second cylinder; 92. Second piston; 93. Second piston rod; 94. One-way valve; 100. Bottom sill; 1001. Sealing groove; 1002. Second inclined plane; 120. Opening and closing device; 121. Hanger; 122. Limiting piece; 123. Extrusion protrusion; 140. Guide sleeve; 150. Support wheel. DETAILED DESCRIPTION
[0043] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0044] Reference Figure 1-2 A double-layer sealed water conservancy gate structure includes a gate track 10, a gate 20, a sill 100, an opening and closing device 120, and a gate groove 101 opened inside the gate track 10. The gate track 10 is symmetrically distributed and fixedly installed on the sill 100, and the two sides of the gate 20 are respectively slidably connected to the gate groove 101. The opening and closing device 120 is installed on the top of the gate track 10, and is used to drive the gate 20 to slide up or down along the gate groove 101, thereby realizing the opening and closing of the gate structure. The opening and closing device 120 adopts a screw-type opening and closing machine.
[0045] Reference Figure 3-7 The water surface of the gate 20 is slidably connected to a barrier net 30. Both sides of the barrier net 30 are also located in the gate groove 101. A double-layer airbag sealing mechanism 50 is provided on the outer periphery of the gate 20, the back surface of the gate 20, and the lower part of the barrier net 30 to seal between the gate 20 and the gate groove 101 and between the gate 20 and the sill 100. A spraying and impurity removal mechanism 40 is provided on the barrier net 30 and inside the gate 20 to spray impurities on the sill 100 when the gate 20 is closed. The sealing surface is sprayed to remove impurities. An inflation mechanism 60 connected to the opening and closing device 120 is provided in the gate 20 for inflating the double-layer airbag sealing mechanism 50. A clamping mechanism 80 connected to the opening and closing device 120 is provided on both sides of the barrier net 30 for tightening and supporting between the near-water surface of the gate 20 and the side wall of the gate groove 101. An opening and closing limit mechanism 70 is also provided in the gate 20 for fixing the gate 20 to the gate track 10.
[0046] Reference Figure 7-10 The blowing and impurity removal mechanism 40 includes a support frame 401 fixed to the lower part of the barrier net 30 and a second air cylinder assembly 90 arranged in the gate 20. A blowing pipe 404 is fixed inside the support frame 401. An air guide pipe 403 is connected between the blowing pipe 404 and the second air cylinder assembly 90, and a one-way nozzle 402 facing the bottom of the gate 20 is fixed on the outside of the blowing pipe 404. The gas entering the blowing pipe 404 from the air guide pipe 403 can be sprayed outward to the bottom sill 100 through the one-way nozzle 402.
[0047] The second inflator assembly 90 includes a second cylinder body 91 and a second piston 92 slidably mounted inside the second cylinder body 91. The second cylinder body 91 is connected to the blowing pipe 404 through the air guide pipe 403, and a one-way valve 94 is fixedly mounted on the outside of the second cylinder body 91. External gas can enter the second cylinder body 91 through the one-way valve 94. The outside of the second piston 92 is fixedly connected to a second piston rod 93. A connecting frame 31 is connected between the outer end of the second piston rod 93 and the blocking net 30. The connecting frame 31 is slidably mounted on the gate 20. The interior of the connecting frame 31 is hollow. The air guide pipe 403 is arranged in the connecting frame 31 to prevent the air guide pipe 403 from leaking out, which can provide good protection for the air guide pipe 403. Figure 2 , and the outer surface of the gate 20 is fixedly connected to a guide sleeve 140 sleeved on the outside of the connecting frame 31 to ensure the stability of the relative sliding of the connecting frame 31 on the gate 20.
[0048] When the gate structure is in the open state, the lower surface of the barrier net 30 is lower than the lower surface of the gate 20. When the gate 20 is moved downward to close, the lower surface of the barrier net 30 will first contact the bottom sill 100, and then the gate 20 continues to move downward. During this process, the gate 20 and the barrier net 30 can slide relative to each other, and under the action of the connecting frame 31 and the second piston rod 93, the second piston 92 and the second cylinder 91 slide relative to each other, so that the gas in the second cylinder 91 is ejected outward through the one-way nozzle 402 to between the bottom sill 100 and the gate 20, and then the impurities between the bottom sill 100 and the gate 20 are blown out.
[0049] Reference Figure 3 、 Figure 11 and Figure 12 The double-layer airbag sealing mechanism 50 includes a first airbag sealing strip 51, a second airbag sealing strip 52 and a bottom sealing assembly 53. The first airbag sealing strip 51 is U-shaped and is fixed to the two side surfaces and the bottom surface of the gate 20. The second airbag sealing strip 52 is fixed to the two sides of the back water surface of the gate 20. The vertical sections on both sides of the U-shaped first airbag sealing strip 51 and the second airbag sealing strip 52 cooperate to achieve a double-layer seal between the two sides of the gate 20 and the gate groove 101. The bottom sealing assembly 53 is fixed to the outside of the support frame 401 in the horizontal direction. The horizontal section of the first airbag sealing strip 51 and the bottom sealing assembly 53 can achieve a double-layer seal between the bottom of the gate 20 and the bottom sill 100, thereby improving the sealing performance of the gate structure.
[0050] Reference Figure 11 The inflation mechanism 60 includes a first inflation cylinder assembly 61 and an inflation tube group 62. The first inflation cylinder assembly 61 includes a first cylinder body 6101 and a first piston 6102 slidably installed in the first cylinder body 6101. The first cylinder body 6101 is connected to the interior of the first airbag sealing strip 51 and the second airbag sealing strip 52 respectively through the inflation tube group 62. A first piston rod 6103 is fixedly installed on the outside of the first piston 6102.
[0051] Reference Figure 1 、 Figure 2 、 Figure 4 and Figure 5 A hanger 121 is connected between the opening and closing device 120 and the gate 20. The hanger 121 is slidably connected to the gate 20 and is connected to the first piston rod 6103. A limiting member 122 is fixed on the hanger 121 to limit the relative sliding between the hanger 121 and the gate 20 and ensure that the gate 20 is stably suspended on the hanger 121.
[0052] During the process of the gate 20 sliding downward and closing, after the gate 20 contacts the bottom sill 100, the gate 20 stops sliding, and the hanger 121 continues to slide downward under the drive of the opening and closing device 120, thereby causing the hanger 121 to push the first piston 6102 downward in the first cylinder 6101 to slide downward, thereby inflating the first airbag sealing strip 51 and the second airbag sealing strip 52, thereby improving the sealing and water-stopping capabilities.
[0053] Reference Figure 3 、 Figure 7 as well as Figures 13 to 17 The clamping mechanism 80 includes two brackets 81 and two pressure rods 82. The two brackets 81 are fixed on both sides of the barrier net 30, and the brackets 81 are located between the near-water surface of the gate 20 and the side wall of the gate slot 101. The interior of the two brackets 81 is provided with an extrusion assembly 83 for squeezing the side wall of the gate slot 101. One end of the two pressure rods 82 is respectively inserted and slid in the two brackets 81 to drive the extrusion assembly 83. The other ends of the two pressure rods 82 are inserted and slid in the gate 20, and the part of the pressure rod 82 inserted into the gate 20 is fixedly connected to two limiting protrusions 8201. The two limiting protrusions 820 A certain gap is left in the vertical direction, and an extrusion protrusion 123 is fixed on the outer side of the hanger 121 between the two limiting protrusions 8201. The extrusion protrusion 123 is sleeved and slid on the pressure rod 82. When the hanger 121 slides down in the gate 20, the extrusion protrusion 123 can press the limiting protrusion 8201 at the lower part downward, and push the pressure rod 82 to slide downward a certain distance to provide downward pressure to the extrusion assembly 83. When the hanger 121 slides up in the gate 20, the extrusion protrusion 123 can push the upper limiting protrusion 8201 upward, thereby driving the pressure rod 82 to return upward.
[0054] The extrusion assembly 83 includes a vertical slide bar 8301, a horizontal slide bar 8302 and an extrusion piece 8303. The vertical slide bar 8301 is connected to the bracket 81 along the vertical sliding direction and the upper end is fixed to the pressure rod 82. The horizontal slide bar 8302 is parallel to the vertical slide bar 8301 and is connected to the bracket 81 along the horizontal sliding direction. There are several extrusion pieces 8303 and they are evenly fixed on the horizontal slide bar 8302 along the vertical direction. The side wall of the bracket 81 is provided with a through hole connected to the interior thereof. The extrusion piece 8303 can contact the side wall of the gate groove 101 through the through hole. The first wedge block 8304 is fixed at the position corresponding to the horizontal slide bar 8302 and the vertical slide bar 8301. A second wedge block 8305 is fixed at a position corresponding to the vertical slide bar 8301 and the horizontal slide bar 8302, and the first wedge block 8304 corresponds to the inclined surface of the second wedge block 8305, and the first wedge block 8304 is located below the second wedge block 8305. Therefore, when the vertical slide bar 8301 slides downward under the downward pressure from the pressure bar 82, the inclined surface of the first wedge block 8304 can be squeezed by the inclined surface of the second wedge block 8305, thereby pushing the horizontal slide bar 8302 and the extrusion piece 8303 to slide horizontally, and in order to ensure the uniformity of force on the horizontal slide bar 8302, the first wedge block 8304 and the second wedge block 8305 can be set into multiple groups.
[0055] Reference Figure 4-6 The opening and closing limit mechanism 70 includes a slider 71, a latch 73 and a limit groove 74 opened on the gate track 10 and adapted to the latch 73. The slider 71 slides vertically inside the gate 20, and the latch 73 slides horizontally inside the gate 20. A connecting rod 72 is connected between the slider 71 and the latch 73. The outside of the hanger 121 is located above and below the slider 71 and is fixed with pressure blocks 75. In order to ensure the stability of the connection between the gate 20 and the gate track 10, the opening and closing limit mechanism 70 can be set to two groups and distributed symmetrically on both sides of the gate 20.
[0056] Reference Figure 1 、 Figure 13 and Figure 14 A sealing groove 1001 is provided on the upper surface of the bottom sill 100 below the gate 20, and the support frame 401 and the bottom sealing assembly 53 are inserted into the sealing groove 1001. A second inclined surface 1002 is provided on the side of the sealing groove 1001 close to the support frame 401, and a first inclined surface 4012 corresponding to the second inclined surface 1002 is provided at the lower part of the support frame 401.
[0057] The bottom sealing assembly 53 includes a third airbag sealing strip 5301, a connecting tube 5302 and a fourth airbag sealing strip 5303. The third airbag sealing strip 5301 is fixed on the first inclined surface 4012, and the fourth airbag sealing strip 5303 is fixed on the side of the support frame 401 close to the first airbag sealing strip 51. The interior of the third airbag sealing strip 5301 is connected to the interior of the fourth airbag sealing strip 5303 through the connecting tube 5302.
[0058] A boss 4011 is provided on the side of the support frame 401 close to the first airbag sealing strip 51. The boss 4011 is located below the gate 20. When the gate 20 is closed, the lower part of the gate 20 will be pressed tightly against the boss 4011, thereby tightly inserting the support frame 401 into the sealing groove 1001, thereby further improving the sealing performance there.
[0059] Reference Figure 12 Support wheels 150 are rotatably installed on both sides of the gate 20. The support wheels 150 extend outward to the back water surface of the gate 20 and contact the inner wall of the gate groove 101 to reduce the friction of the gate 20 sliding in the gate groove 101.
[0060] In the present invention, Figure 1 As shown, when the gate structure is in the open state, the lower surface of the blocking net 30 is lower than the lower surface of the gate 20. When the gate 20 is closed, the opening and closing device 120 drives the hanger 121 to move downward, and the gate 20 moves downward synchronously under the action of gravity. Then the lower surface of the blocking net 30 will first contact the sill 100 and stop moving downward, and then the gate 20 continues to move downward. During this process, the blocking net 30 can filter the water flowing between the gate 20 and the sill 100 to prevent larger impurities from passing through and getting stuck between the gate 20 and the sill 100, thereby ensuring the smooth closing of the gate 20 and preventing larger impurities from damaging the bottom of the first airbag sealing strip 51.
[0061] Moreover, after the blocking net 30 stops moving downward, the hanger 121 and the gate 20 continue to move downward. During this process, the gate 20 and the blocking net 30 will slide relative to each other, and therefore the gate 20 will slide downward on the connecting frame 31 and the pressure rod 82, and thereby drive the pressure rod 82 to slide downward on the second piston 92, thereby filling the air guide pipe 403 with air. After the air flowing into the air guide pipe 403 enters the blowpipe 404, it will be directly ejected outward at high speed through multiple one-way nozzles 402 to between the bottom sill 100 and the gate 20, thereby blowing out impurities between the bottom sill 100 and the gate 20, preventing impurities from being stuck between the first airbag sealing strip 51 and the sealing groove 1001 after sealing, and further avoiding impurities from damaging the first airbag sealing strip 51, thereby improving the protection capability of the first airbag sealing strip 51.
[0062] When the first airbag sealing strip 51 moves down into the sealing groove 1001, the gate 20 and the first cylinder 6101 stop moving down, while the hanger 121 continues to move down a certain distance driven by the opening and closing device 120. During this process, the hanger 121 can push the first piston 6102 downward to slide in the first cylinder 6101 through the first piston rod 6103, thereby filling the first airbag sealing strip 51 and the second airbag sealing strip 52 with air through the inflation tube assembly 62, causing them to expand and deform to a certain extent, thereby pressing the first airbag sealing strip 51 tightly against the inner surface of the gate groove 101 and the bottom wall of the sealing groove 1001, and simultaneously pressing the second airbag sealing strip 52 tightly against the inner surface of the gate groove 101, thereby effectively improving the sealing between the gate 20 and the gate groove 101 and ensuring a reliable seal against water flow.
[0063] Moreover, after the lower part of the support frame 401 is inserted into the sealing groove 1001, as the gate 20 moves downward, the boss 4011 will be squeezed downward through its lower part, and the downward pressure will cause the third airbag sealing strip 5301 to accumulate in the second inclined surface 1002. After the third airbag sealing strip 5301 is squeezed by the second inclined surface 1002, part of the air inside it will enter the fourth airbag sealing strip 5303 through the connecting tube 5302, so that the fourth airbag sealing strip 5303 will undergo a certain expansion deformation and be tightly pressed against the outer surface of the first airbag sealing strip 51, the lower surface of the gate 20 and the bottom wall of the sealing groove 1001, thereby further improving the sealing performance there. The first airbag sealing strip 51, the second airbag sealing strip 52, the third airbag sealing strip 5301 and the fourth airbag sealing strip 5303 can achieve double-layer sealing between the gate 20 and the gate track 10 and between the gate 20 and the sealing groove 1001, which can effectively ensure reliable sealing of the entire gate structure.
[0064] As the opening and closing device 120 drives the hanger 121 to move downward, the limiting member 122 will eventually press on the beam inside the gate 20, thereby restricting and fixing the gate 20 to a certain extent. Figure 5 As shown. Furthermore, as the hanger 121 slides on the gate 20, the upper pressure block 75 also pushes the slider 71 downward. The slider 71 then pushes the latch 73 outward through the connecting rod 72. The outer end of the latch 73 extends outward from the gate 20 and inserts into the limiting groove 74 on the gate track 10, thereby locking the gate 20 with the gate track 10 and completing the closing of the gate 20. The entire locking process is automatic and does not require additional manipulation by the operator. At the same time, the entire locking process is achieved by the opening and closing device 120 and the hanger 121, so no additional drive device is required. Furthermore, in order to ensure the seal between the latch 73 and the gate 20, a sliding sealing ring can be installed between the two.
[0065] During the process of the hanger 121 sliding on the gate 20, the extrusion protrusion 123 on the outside of the hanger 121 can press the limiting protrusion 8201 at the bottom downward, and push the pressure rod 82 to slide downward a certain distance to push the vertical slide bar 8301 to slide synchronously. During this process, the second wedge block 8305 slides synchronously with the vertical slide bar 8301 and presses the inclined surface of the first wedge block 8304 downward through the inclined surface of the second wedge block 8305, thereby pushing the horizontal slide bar 8302 and the extrusion piece 8303 to slide horizontally, thereby pressing the extrusion piece 8303 downward. 03 extends outward and presses tightly against the side wall of the gate groove 101. At this time, the side wall of the gate groove 101 will provide a reverse thrust to the bracket 81, so that the bracket 81 is pressed tightly against the gate 20. As a result, the gate 20 is pressed tightly against the other side wall of the gate groove 101 through the support wheel 150, thereby improving the connection stability between the gate 20 and the gate track 10, and can effectively reduce the vibration generated when the gate 20 is washed and hit by water or other things, thereby effectively preventing damage to related components caused by vibration, improving its protection capability, and ensuring the service life of related components.
[0066] In addition, by pressing down the boss 4011 on the support frame 401 through the bottom of the gate 20, the first inclined surface 4012 will be subjected to a reaction force from the second inclined surface 1002. Through this reaction force, the support frame 401 will also be pressed tightly against the lower part of the gate 20, thereby improving the stability of the connection between the lower part of the gate 20 and the bottom sill 100, and further reducing the vibration generated when the gate 20 is impacted.
[0067] When the gate 20 is in a closed state and needs to be opened, the hanger 121 is pulled upward by the opening and closing device 120. At this time, the hanger 121 first slides upward for a certain distance in the gate 20 while the gate 20 remains stationary. Figure 6 As shown, the hanger 121 can push the slider 71 upward to slide through the pressure block 75 located at the bottom, and the slider 71 can then pull the pin 73 out of the limit groove 74 through the connecting rod 72 and retract it into the gate 20, thereby automatically releasing the lock between the gate 20 and the gate track 10.
[0068] During the upward sliding of the hanger 121 in the gate 20, the extrusion protrusion 123 on the hanger 121 separates from the lower limiting protrusion 8201 and then contacts the upper limiting protrusion 8201, and drives the pressure rod 82 to slide upward a certain distance in the gate 20 and reset by pushing the upper limiting protrusion 8201. At this time, the vertical sliding rod 8301 slides up synchronously with the pressure rod 82, thereby canceling the extrusion force of the extrusion member 8303 on the inner wall of the gate groove 101, and thereby releasing the tight pressure of the gate 20 on the gate groove 101.
[0069] As the hanger 121 slides upward inside the gate 20, the limit piece 122 that slides up with the hanger 121 will also come into contact with the upper crossbeam inside the gate 20. Then the opening and closing device 120 pulls the hanger 121 upward to continue pulling the gate 20 upward through the limit piece 122 to slide. During this process, the blocking net 30 will not slide until the top of the connecting frame 31 contacts the upper surface of the gate 20, and then it will drive the blocking net 30 to move upward synchronously and complete the opening process of the gate 20.
[0070] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
[0071] In the description of this specification, the reference terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" mean that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and features of different embodiments or examples without contradiction.
Claims
1. A double-layer sealed water gate structure, comprising a gate track (10), a gate (20), a sill (100), an opening and closing device (120), and a gate groove (101) provided in the gate track (10), characterized in that: The water surface of the gate (20) is slidably connected to a blocking net (30), and a double-layer airbag sealing mechanism (50) is provided on the outer periphery of the gate (20), the back water surface and the lower part of the blocking net (30), and a spraying and removing impurity mechanism (40) is provided on the blocking net (30) and in the gate (20), for spraying and removing impurities on the sealing surface of the bottom sill (100) when the gate (20) is closed. An inflation mechanism (60) connected to the opening and closing device (120) is provided in the gate (20) for inflating the double-layer airbag sealing mechanism (50). Both sides of the blocking net (30) are provided with a pressing mechanism (80) connected to the opening and closing device (120) for supporting between the water surface of the gate (20) and the side wall of the gate groove (101), and an opening and closing limit mechanism (70) is also provided in the gate (20) for fixing the gate (20) to the gate track (10); The blowing and impurity removal mechanism (40) comprises a support frame (401) fixed to the lower part of the barrier net (30) and a second air cylinder assembly (90) provided in the gate (20); a one-way nozzle (402) in communication with the second air cylinder assembly (90) is fixed inside the support frame (401), and the second air cylinder assembly (90) is connected to the barrier net (30); The inflation mechanism (60) includes a first inflation cylinder assembly (61) and an inflation tube assembly (62), wherein the first inflation cylinder assembly (61) is connected to the first airbag sealing strip (51) and the second airbag sealing strip (52) respectively through the inflation tube assembly (62); The double-layer airbag sealing mechanism (50) includes a first airbag sealing strip (51), a second airbag sealing strip (52) and a bottom sealing assembly (53), wherein the first airbag sealing strip (51) is U-shaped and is sleeved and fixed to the two side surfaces and the bottom surface of the gate (20), the second airbag sealing strip (52) is fixed to the two sides of the back water surface of the gate (20), and the bottom sealing assembly (53) is fixed to the outside of the support frame (401) in the horizontal direction; A hanger (121) is connected between the opening and closing device (120) and the gate (20). The hanger (121) is slidably connected inside the gate (20) and connected to the first inflation cylinder assembly (61) for driving the first inflation cylinder assembly (61) to inflate and deflat.
2. A double-layer sealed water gate structure according to claim 1, characterized in that: The pressing mechanism (80) includes two brackets (81), which are respectively fixed to the two sides of the barrier net (30), and the brackets (81) are located between the water surface of the gate (20) and the side wall of the gate groove (101). The inside of the two brackets (81) is provided with an extrusion component (83) connected to the hanger (121) for extruding the side wall of the gate groove (101).
3. A double-layer sealed water gate structure according to claim 2, characterized in that: The opening and closing limiting mechanism (70) includes a slider (71), a latch (73), and a limiting groove (74) provided on the gate track (10) and adapted to the latch (73); the slider (71) slides vertically inside the gate (20); the latch (73) slides horizontally inside the gate (20); and the slider (71) and the latch (73) are connected. Pressure blocks (75) are fixed to the outside of the hanger (121) above and below the slider (71).
4. A double-layer sealed water gate structure according to claim 3, characterized in that: The upper surface of the sill (100) is located below the gate (20) and is provided with a sealing groove (1001). The support frame (401) and the bottom sealing assembly (53) are inserted into the sealing groove (1001). A second inclined surface (1002) is provided on a side of the sealing groove (1001) close to the support frame (401). The lower part of the support frame (401) is provided with a first inclined surface (4012) corresponding to the second inclined surface (1002).
5. A double-layer sealed water gate structure according to claim 4, characterized in that: The bottom sealing assembly (53) comprises a third airbag sealing strip (5301), a connecting pipe (5302) and a fourth airbag sealing strip (5303), wherein the third airbag sealing strip (5301) is fixed on the first inclined surface (4012), and the fourth airbag sealing strip (5303) is fixed on the side of the support frame (401) close to the first airbag sealing strip (51), and the interior of the third airbag sealing strip (5301) is connected to the interior of the fourth airbag sealing strip (5303) through the connecting pipe (5302).
6. A double-layer sealed water gate structure according to claim 5, characterized in that: A boss (4011) is provided on the side of the support frame (401) close to the first airbag sealing strip (51), and the boss (4011) is located below the gate (20).
Citation Information
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