A treatment device for accelerating coagulation and sedimentation effect of lake sludge

By designing a treatment device that includes a floating frame, a storage tank, a discharge pipe, and a release component, the problem of low sedimentation efficiency in lake areas was solved. This device achieves uniform falling and mixing of coagulant, adapts to different depths of application, and improves the efficiency of water treatment in lake areas.

CN119327152BActive Publication Date: 2026-01-06JIANGSU GUANGYA CONSTR GRP CO LTD
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Patent Information

Application Number
CN202411637512.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-15
Publication Date
2026-01-06
Estimated Expiration
2044-11-15

AI Technical Summary

Technical Problem

In the current technology, artificial lakes often become turbid and affect the appearance due to the continuous inflow of large amounts of silt during the initial construction phase. Traditional treatment methods are inefficient and costly.

Method used

A processing device was designed, comprising a floating frame, a storage tank, a feeding pipe, a mixing mechanism, and a release component. The coagulant is conveyed by a bidirectional auger, mixed with a stirring rod, and released underwater through a release hole, adapting to different depths of deployment.

Benefits of technology

It achieves uniform falling and mixing of coagulant, improves sludge sedimentation, adapts to different depths of application, and enhances treatment efficiency and effectiveness.

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Abstract

The application discloses a kind of for lake area sludge to accelerate coagulation and precipitation effect processing device, it is related to water treatment equipment technical field, including floating frame, be provided with storage hopper on floating frame, coagulant powder is placed in storage hopper, the bottom of floating frame is provided with discharge pipe, discharge pipe is communicated with storage hopper, the bottom of discharge pipe is uniformly provided with branch pipe, branch pipe is connected with mixing mechanism, mixing mechanism is connected with branch pipe, branch pipe is connected with connecting pipe two, connecting pipe two is connected with water pump, water pump is fixedly connected with floating frame, mixing mechanism is connected with drive assembly and release assembly, release assembly is connected with depth adjusting mechanism, storage hopper and floating frame between being provided with clamping mechanism and auxiliary discharging component;By mixing mechanism, coagulant is mixed with water, adjustable depth release is carried out in combination with release assembly and depth adjusting mechanism, coagulation and precipitation effect is improved, and it is suitable for coagulation and precipitation treatment of different depth lake area.
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Description

Technical Field

[0001] This invention relates to the field of water treatment equipment technology, specifically a treatment device for accelerating the coagulation and sedimentation of silt in lake areas. Background Technology

[0002] Artificial lakes are lakes that are deliberately excavated by people and are formed in non-natural environments. They include landscape lakes and large reservoirs.

[0003] In the early stages of construction, the continuous inflow of large amounts of silt into artificial lakes can cause persistent turbidity, affecting their appearance. Water quality is typically improved through filtration or complete water replacement; however, these methods are only suitable for smaller lakes. Larger lakes will incur higher treatment costs and have lower efficiency. Summary of the Invention

[0004] The purpose of this invention is to provide a treatment device for accelerating the coagulation and sedimentation of silt in lake areas, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A treatment device for accelerating the coagulation and sedimentation of silt in lake areas includes a floating frame with propellers at its four bottom corners. A storage tank containing coagulant powder is mounted on the floating frame. A discharge pipe connected to the storage tank is located at the bottom of the floating frame. Distributor pipes are evenly distributed at the bottom of the discharge pipe and connected to a mixing mechanism. The mixing mechanism is connected to a water distribution pipe, which is connected to a second connecting pipe. The second connecting pipe is connected to a water pump, which is fixedly connected to the floating frame.

[0007] A bidirectional auger is rotatably installed inside the feeding pipe, and a drive assembly is connected to the end of the bidirectional auger. The mixing mechanism includes a mixing pipe, the side wall of which is connected to a water distribution pipe. An installation disc is fixedly installed inside the mixing pipe, and a central rod is rotatably installed at the center of the installation disc. A stirring rod is evenly arranged in the middle part of the central rod. The upper side of the central rod is inserted into the feeding pipe, and a feeding auger is arranged on the outer side of the central rod. The central rod is connected to the drive assembly, and a release assembly is connected to the bottom of the mixing pipe.

[0008] As a further embodiment of the present invention: the driving assembly includes a motor 1 mounted on the floating frame, the motor 1 connected to a pulley 1, a pulley 2 and a pulley 3 mounted at the end of the bidirectional auger, a belt 1 mounted between the pulley 1 and the pulley 2, a driving rod rotatably mounted between the mixing tubes, a driven bevel gear mounted at the bottom of the intermediate rod, a driving bevel gear mounted on the driving rod, the driven bevel gear and the driving bevel gear meshing with each other, a pulley 4 mounted at the end of the driving rod, and a belt 2 mounted between the pulley 3 and the pulley 4.

[0009] As a further embodiment of the present invention: the release assembly includes a folded tube one, a release tube one, a folded tube two, and a release tube two connected to the bottom of the mixing tube. The folded tube one has a release hole one in the opposite direction to the forward movement of the floating frame. The release tube two has a release hole two in the same direction as the release tube one. The bottom of the release tube two is open. A depth adjustment mechanism is provided between the release tube one and the release tube two.

[0010] As a further embodiment of the present invention: the depth adjustment mechanism includes an adjustment air pump one and an adjustment air pump two disposed on the floating frame. The adjustment air pump one is connected to an air pipe one, and the adjustment air pump two is connected to an air pipe two. A suspension frame is installed on the material distribution pipe. A connecting frame one is disposed between the release pipe one and the release pipe two. A connecting frame two is disposed between the connecting frame one and the suspension frame. A cylinder one is disposed between the connecting frame one and the connecting frame two. The cylinder one is connected to the air pipe one, and the cylinder two is connected to the air pipe two.

[0011] As a further embodiment of the present invention: the connecting frame one and the connecting frame two are fixedly provided with dispersing blades at the locations corresponding to the release hole one and the release hole two.

[0012] As a further embodiment of the present invention: the floating frame is provided with a snap-fit ​​mechanism, the storage tank is connected to the snap-fit ​​mechanism, the snap-fit ​​mechanism includes a docking cover that is threadedly connected to the opening of the storage tank, a pin is inserted into the docking cover, a guide post is provided on the docking cover, the pin and the guide post are slidably installed, slots are symmetrically provided on both sides of the docking cover, the floating frame is provided with a connecting pin and a matching guide rail on both sides of the docking part, a movable pin is slidably installed in the matching guide rail, a swing frame one and a swing frame two are rotatably installed on the connecting pin and the movable pin, a locking block is rotatably installed between the swing frame one and the swing frame two, the locking block and the locking slot cooperate with each other, a connecting frame is provided between the locking blocks on both sides, a telescopic motor is connected to the connecting frame, the telescopic motor is fixedly installed with the floating frame, and an auxiliary feeding component is also provided on the docking cover.

[0013] As a further embodiment of the present invention: the auxiliary feeding assembly includes a gear ring rotatably mounted on the upper surface of the docking cover, a docking section is provided at the mouth of the storage bucket, protruding columns are evenly provided on the outer wall of the docking section, inclined rods are evenly provided on the upper surface of the gear ring, a spring is provided at the end of the inclined rod, and a striking ball is connected to the end of the spring. A second motor is fixedly provided on one of the locking blocks, and a drive gear is connected to the second motor. When the locking block and the locking slot cooperate with each other, the drive gear and the gear ring mesh with each other.

[0014] Compared with the prior art, the beneficial effects of the present invention are:

[0015] (1) Combined with the distribution pipe at the bottom of the feed pipe, the coagulant falling into the distribution pipe is evenly dropped under the drive of the feed auger. The feed auger can control the falling speed of the coagulant and at the same time prevent the coagulant from getting stuck in the distribution pipe. The water pump, combined with the connecting pipe and the water distribution pipe, injects water into the mixing pipe. The coagulant and the injected water are mixed under the drive of the stirring rod and finally flow downward and are released into the water by the release component. The coagulant forms an adsorbent colloid to adsorb and precipitate the particulate matter in the water.

[0016] (2) Motor 1, combined with pulley 1, pulley 2, and belt 1, drives the bidirectional auger to rotate, thereby conveying the coagulant falling from the storage tank to both ends of the feed pipe, so that the coagulant falls evenly along the feed pipe. The drive rod is driven to rotate by pulley 2, pulley 3, and belt 2. The drive rod, combined with the active bevel gear and the driven bevel gear, drives the middle rod in the mixing pipe to rotate, thereby driving the stirring rod and the feed auger to rotate, thus completing the feed control of the coagulant in the feed pipe and the mixing of the coagulant and water.

[0017] (3) The coagulant liquid after mixing is released in layers through release hole one and release hole two. The release depth is adjusted by the depth adjustment mechanism to adapt to different depths of coagulant addition. The depth of release hole one is adjusted by adjusting air pump one and air pipe one to control the extension and retraction of cylinder one, combined with folding pipe one. The depth of release pipe one is adjusted by adjusting air pump two and air pipe two to control the extension and retraction of cylinder two, combined with folding pipe two to adjust the depth of release pipe two. The depth of release hole two is adjusted by adjusting air pump two and air pipe two. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0019] Figure 2 This is a schematic diagram of the installation of the feed pipe in this invention.

[0020] Figure 3 This is a schematic diagram showing the connection between the feeding pipe and the mixing mechanism in this invention.

[0021] Figure 4 This is a schematic diagram of the internal structure of the feed tube in this invention.

[0022] Figure 5 This is a schematic diagram of the release component in this invention.

[0023] Figure 6 This is a schematic diagram of the mixing mechanism in this invention.

[0024] Figure 7 This is a schematic diagram of the depth adjustment mechanism in this invention.

[0025] Figure 8 This is a schematic diagram of the installation of cylinder one and cylinder two in this invention.

[0026] Figure 9 This is a schematic diagram of the installation of the clamping mechanism and the auxiliary feeding mechanism in this invention.

[0027] Figure 10 This is a schematic diagram of the combined structure of the clamping mechanism and the auxiliary feeding mechanism in this invention.

[0028] Figure 11 This is a schematic diagram showing the separation of the pin and the mating cover in this invention.

[0029] In the diagram: 1. Floating frame; 2. Storage tank; 20. Connecting cover; 21. Connecting section; 22. Pin; 23. Guide column; 24. Slot; 3. Discharge pipe; 30. Distribution pipe; 300. Bidirectional auger; 31. Water pump; 32. Connecting pipe two; 320. Water distribution pipe; 33. Motor one; 34. Pulley one; 35. Pulley two; 36. Pulley three; 37. Belt one; 38. Belt two; 39. Pulley four; 4. Mixing mechanism; 40. Mixing pipe; 41. Intermediate rod; 42. Discharge auger; 43. Stirring rod; 44. Mounting disc; 45. Driven bevel gear; 46. Drive rod; 47. Active bevel gear; 5. Release assembly; 50. Release pipe one; 500. Release hole one; 51. Fold 52. Folded tube 2; 53. Release tube 2; 54. Release hole 2; 55. Dispersion blade; 56. Connecting frame 1; 67. Connecting frame 2; 68. Depth adjustment mechanism; 69. Adjusting air pump 1; 60. Air pipe 1; 61. Adjusting air pump 2; 62. Air pipe 2; 63. Suspension frame; 64. Cylinder 1; 65. Cylinder 2; 76. Snap-fit ​​mechanism; 77. Connecting pin; 78. Swing frame 1; 79. Locking block; 70. Swing frame 2; 71. Movable pin; 72. Matching guide rail; 73. Connecting frame; 74. Telescopic motor; 85. Auxiliary feeding assembly; 86. Gear ring; 87. Inclined rod; 88. Spring; 89. Striking ball; 80. Protruding column; 81. Motor 2; 82. Drive gear. Detailed Implementation

[0030] The technical solution of the present invention will be further described in detail below with reference to specific embodiments.

[0031] like Figure 1 , Figure 2 , Figure 3 As shown, a treatment device for accelerating the coagulation and sedimentation of silt in lake areas includes a floating frame 1. Propellers are installed at the four corners of the bottom of the floating frame 1. A storage tank 2 is installed on the floating frame 1, containing coagulant powder. A discharge pipe 3 is installed at the bottom of the floating frame 1, communicating with the storage tank 2. Distributing pipes 30 are evenly distributed at the bottom of the discharge pipe 3, connected to a mixing mechanism 4. The mixing mechanism 4 is connected to a water distribution pipe 320, which is connected to a connecting pipe 32. The connecting pipe 32 is connected to a water pump 31, which is fixedly connected to the floating frame 1.

[0032] like Figure 4 , Figure 6 As shown, a bidirectional auger 300 is rotatably installed inside the feed pipe 3. The end of the bidirectional auger 300 is connected to a drive assembly. The mixing mechanism 4 includes a mixing pipe 40. The side wall of the mixing pipe 40 is connected to the water distribution pipe 320. An installation disc 44 is fixedly installed inside the mixing pipe 40. An intermediate rod 41 is rotatably installed at the center of the installation disc 44. A stirring rod 43 is evenly arranged in the middle part of the intermediate rod 41. The upper side of the intermediate rod 41 is inserted into the feed distribution pipe 30, and a feed auger 42 is arranged on the outer side of the intermediate rod 41. The intermediate rod 41 is connected to the drive assembly. A release assembly 5 is connected to the bottom of the mixing pipe 40.

[0033] Specifically, the coagulant powder in the storage tank 2 is conveyed to both ends through the bidirectional auger 300 in the feed pipe 3. Combined with the distribution pipe 30 at the bottom of the feed pipe 3, the coagulant falling into the distribution pipe 30 is evenly dropped under the action of the feed auger 42. The feed auger 42 can control the falling speed of the coagulant and prevent the coagulant from getting stuck in the distribution pipe 30. The water pump 31, together with the connecting pipe 32 and the water distribution pipe 320, injects water into the mixing pipe 40. The coagulant and the injected water are mixed under the action of the stirring rod 43 and finally flow downward and are released into the water by the release component 5. The coagulant forms an adsorbent colloid to adsorb and precipitate the particulate matter in the water.

[0034] Furthermore, such as Figure 3 , Figure 6As shown, the drive assembly includes a motor 33 mounted on the floating frame 1, a pulley 34 connected to the motor 33, a pulley 35 and a pulley 36 at the end of the bidirectional auger 300, a belt 37 between the pulley 34 and the pulley 35, a drive rod 46 rotatably mounted between the mixing tubes 40, a driven bevel gear 45 at the bottom of the intermediate rod 41, a drive bevel gear 47 on the drive rod 46, the driven bevel gear 45 and the drive bevel gear 47 meshing with each other, a pulley 39 at the end of the drive rod 46, and a belt 38 between the pulley 36 and the pulley 39.

[0035] Specifically, motor 33, in conjunction with pulley 34, pulley 35, and belt 37, drives the bidirectional auger 300 to rotate, thereby conveying the coagulant falling from the storage tank 2 to both ends of the feed pipe 3, achieving uniform flow of the coagulant along the distribution pipe 30. Pulley 35, pulley 36, and belt 38 drive the drive rod 46 to rotate. The drive rod 46, in conjunction with the driving bevel gear 47 and the driven bevel gear 45, drives the intermediate rod 41 inside the mixing pipe 40 to rotate, thereby driving the stirring rod 43 and the feed auger 42 to rotate, completing the control of the coagulant's flow within the distribution pipe 30 and the mixing of the coagulant and water.

[0036] Furthermore, such as Figure 5 As shown, the release assembly 5 includes a folded tube 51 connected to the bottom of the mixing tube 40, a release tube 50, a folded tube 52, and a release tube 53. The folded tube 51 has a release hole 500 in the opposite direction to the forward movement of the float frame 1. The release tube 53 has a release hole 530 in the same direction as the release tube 50. The bottom of the release tube 53 is open. A depth adjustment mechanism 6 is provided between the release tube 50 and the release tube 53.

[0037] Furthermore, such as Figure 7 , Figure 8 As shown, the depth adjustment mechanism 6 includes an adjustment air pump 60 and an adjustment air pump 62 mounted on the floating frame 1. The adjustment air pump 60 is connected to an air pipe 61, and the adjustment air pump 62 is connected to an air pipe 63. A suspension frame 64 is mounted on the material distribution pipe 30. A connecting frame 55 is provided between the release pipes 50, and a connecting frame 56 is provided between the release pipes 53. A cylinder 65 is provided between the connecting frame 55 and the suspension frame 64, and a cylinder 66 is provided between the connecting frame 55 and the connecting frame 56. The cylinder 65 is connected to the air pipe 61, and the cylinder 66 is connected to the air pipe 63.

[0038] Specifically, the mixed coagulant liquid is released in layers through release hole 500 and release hole 530. The release depth is adjusted by the depth adjustment mechanism 6 to accommodate different depths of coagulant addition. Adjusting the air pump 60 and air pipe 61 controls the extension and retraction of cylinder 65, which, in conjunction with folding pipe 51, adjusts the depth of release pipe 50, thereby controlling the depth of release hole 500. Similarly, adjusting the air pump 62 and air pipe 63 controls the extension and retraction of cylinder 66, which, in conjunction with folding pipe 52, adjusts the depth of release pipe 53, thereby controlling the depth of release hole 530, and thus adjusting the release depth of the coagulant liquid.

[0039] Furthermore, such as Figure 5 As shown, the connecting frame 1 55 and the connecting frame 2 56 are fixedly provided with dispersing blades 54 at the positions corresponding to the release hole 1 500 and the release hole 2 530.

[0040] Specifically, a dispersing blade 54 is provided on the outside of the first release hole 500 and the second release hole 530. When the floating frame 1 moves forward, the dispersing blade 54 will rotate under the action of water flow. The rotating dispersing blade 54 can further disperse the coagulant, thereby improving the effect of coagulant dispersion.

[0041] Furthermore, such as Figure 9 , Figure 10 , Figure 11 As shown, the floating frame 1 is equipped with a snap-fit ​​mechanism 7, and the storage tank 2 is connected to the snap-fit ​​mechanism 7. The snap-fit ​​mechanism 7 includes a docking cover 20 that is threadedly connected to the opening of the storage tank 2. A pin 22 is inserted into the docking cover 20, and a guide post 23 is provided on the docking cover 20. The pin 22 and the guide post 23 are slidably installed together. The docking cover 20 has symmetrically arranged slots 24 on both sides. The floating frame 1 has connecting pins 70 and mating guide rails 75 on both sides of the docking part. A movable pin 74 is slidably installed inside the 5. A swing frame 1 71 and a swing frame 2 73 are rotatably installed on the connecting pin 70 and the movable pin 74, respectively. A locking block 72 is rotatably installed between the swing frame 1 71 and the swing frame 2 73. The locking block 72 cooperates with the locking groove 24. A connecting frame 76 is provided between the locking blocks 72 on both sides. A telescopic motor 77 is connected to the connecting frame 76. The telescopic motor 77 is fixedly installed with the floating frame 1. An auxiliary feeding component 8 is also provided on the docking cover 20.

[0042] Specifically, to facilitate the installation of the storage tank 2, the docking cover 20 is first screwed onto the opening of the storage tank 2. The opening and closing of the tank opening is controlled by the pin 22, thereby controlling the drop of the coagulant. When the storage tank 2, together with the docking cover 20, is docked with the floating frame 1, the connecting frame 76 is moved by the telescopic motor 77. With the help of the guide rail 75, the locking block 72, controlled by the swing frame one 71 and the swing frame two 73, extends into the locking groove 24, thereby locking the docking cover 20.

[0043] Furthermore, such as Figure 10 As shown, the auxiliary feeding assembly 8 includes a gear ring 80 rotatably mounted on the upper surface of the docking cover 20. The opening of the storage bucket 2 is provided with a docking section 21. Protruding columns 84 are evenly arranged on the outer wall of the docking section 21. Inclined rods 81 are evenly arranged on the upper surface of the gear ring 80. A spring 82 is provided at the end of the inclined rod 81. A striking ball 83 is connected to the end of the spring 82. A second motor 85 is fixedly installed on one side of the locking block 72. The second motor 85 is connected to a drive gear 86. When the locking block 72 and the locking groove 24 cooperate with each other, the drive gear 86 and the gear ring 80 mesh with each other.

[0044] Specifically, in order to ensure that the coagulant powder falls smoothly, a gear ring 80 is rotated and installed on the docking cover 20. Combined with the motor 85 and the drive gear 86, the gear ring 80 is controlled to rotate. When the gear ring 80 rotates, it drives the tilting rod 81 and the striking ball 83 to strike the protruding column 84 on the outer wall of the docking end, thereby generating vibration on the docking section 21, so that the coagulant powder inside can fall reliably.

[0045] The working principle of this invention embodiment is as follows:

[0046] like Figures 1-11As shown, the coagulant powder in the storage tank 2 is conveyed to both ends through the bidirectional auger 300 in the feed pipe 3. Combined with the distribution pipe 30 at the bottom of the feed pipe 3, the coagulant falling into the distribution pipe 30 is uniformly dropped under the action of the feed auger 42. The feed auger 42 can control the falling speed of the coagulant and prevent the coagulant from getting stuck in the distribution pipe 30. The water pump 31, together with the connecting pipe 32 and the water distribution pipe 320, injects water into the mixing pipe 40. The coagulant and the injected water are mixed under the action of the stirring rod 43 and finally flow downwards and are released into the water by the release component 5. The coagulant forms an adsorbent colloid that adsorbs and precipitates particulate matter in the water. The motor 33, together with the pulley 34, pulley 35, and belt 37, drives the bidirectional auger 300 to rotate, thereby conveying the coagulant falling from the storage tank 2 to both ends of the feed pipe 3, so that the coagulant falls uniformly along the distribution pipe 30. The drive rod 46 is rotated by pulleys 35 and 36 and belt 38. The drive rod 46, in conjunction with the active bevel gear 47 and driven bevel gear 45, rotates the intermediate rod 41 inside the mixing tube 40, thereby rotating the stirring rod 43 and the feeding auger 42. This completes the feeding control of the coagulant in the distribution tube 30 and the mixing of the coagulant and water. After mixing, the coagulant liquid is released in layers through release holes 500 and 530. The depth of release is adjusted by the depth adjustment mechanism 6 to accommodate coagulant addition at different depths. By adjusting air pump 60 and air pipe 61 to control the extension and retraction of cylinder 65, combined with folding pipe 51, the depth of release pipe 50 is adjusted, thereby controlling the depth of release hole 500. Similarly, by adjusting air pump 62 and air pipe 63 to control the extension and retraction of cylinder 66, combined with folding pipe 52, the depth of release pipe 53 is adjusted, thereby controlling the depth of release hole 530, and thus adjusting the release depth of coagulant liquid. To ensure the smooth falling of coagulant powder, a gear ring 80 is rotatably installed on the docking cover 20. Combined with motor 85 and drive gear 86, the gear ring 80 is controlled to rotate. When the gear ring 80 rotates, it drives the tilting rod 81 and the striking ball 83 to strike the protruding column 84 on the outer wall of the docking end, thereby generating vibration on the docking section 21, allowing the internal coagulant powder to fall reliably.

[0047] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention should be included within the scope of protection of the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0048] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A treatment device for accelerating the coagulation and sedimentation effect of lake area sludge, comprising a floating frame (1), the bottom four corners of the floating frame (1) are provided with propellers, a storage barrel (2) is arranged on the floating frame (1), coagulant powder is placed in the storage barrel (2), a discharging pipe (3) is arranged at the bottom of the floating frame (1), and the discharging pipe (3) is in communication with the storage barrel (2), characterized in that, The bottom of the feeding pipe (3) is uniformly provided with a distribution pipe (30), the distribution pipe (30) is connected with a mixing mechanism (4), the mixing mechanism (4) is connected with a water distribution pipe (320), the water distribution pipe (320) is connected with a connecting pipe two (32), the connecting pipe two (32) is connected with a water pump (31), and the water pump (31) is fixedly connected with the floating frame (1); The double-way screw (300) is rotatably installed in the feeding pipe (3), the end of the double-way screw (300) is connected with a driving assembly, the mixing mechanism (4) comprises a mixing pipe (40), the side wall of the mixing pipe (40) is connected with the water distribution pipe (320), the inside of the mixing pipe (40) is fixedly provided with a mounting disc (44), the center of the mounting disc (44) is rotatably installed with an intermediate rod (41), the intermediate part of the intermediate rod (41) is uniformly provided with a stirring rod (43), the upper side of the intermediate rod (41) is inserted into the distribution pipe (30), and the outer side of the intermediate rod (41) is provided with a feeding screw (42); the intermediate rod (41) is connected with the driving assembly, and the bottom of the mixing pipe (40) is connected with a release assembly (5); The release assembly (5) comprises a folding pipe one (51) connected with the bottom of the mixing pipe (40), a release pipe one (50), a folding pipe two (52) and a release pipe two (53), the release hole one (500) is arranged on the folding pipe one (51) in the direction opposite to the forward direction of the floating frame (1), the release hole two (530) is arranged on the release pipe two (53) in the same direction of the release pipe one (50), the bottom of the release pipe two (53) is open, and the depth adjusting mechanism (6) is arranged between the release pipe one (50) and the release pipe two (53); The depth adjusting mechanism (6) comprises an adjusting air pump one (60) and an adjusting air pump two (62) arranged on the floating frame (1), the adjusting air pump one (60) is connected with an air pipe one (61), the adjusting air pump two (62) is connected with an air pipe two (63), the distribution pipe (30) is provided with a hanging frame (64), the release pipe one (50) is provided with a connecting frame one (55), the release pipe two (53) is provided with a connecting frame two (56), the air cylinder one (65) is arranged between the connecting frame one (55) and the hanging frame (64), the air cylinder two (66) is arranged between the connecting frame one (55) and the connecting frame two (56), the air cylinder one (65) is connected with the air pipe one (61), and the air cylinder two (66) is connected with the air pipe two (63). The floating frame (1) is provided with a clamping mechanism (7), the storage barrel (2) is connected with the clamping mechanism (7), the clamping mechanism (7) comprises a butt joint cover (20) which is threadedly connected with the barrel opening of the storage barrel (2), a latch (22) is inserted in the butt joint cover (20), a guide column (23) is arranged on the butt joint cover (20), the latch (22) and the guide column (23) are slidingly installed, the two sides of the butt joint cover (20) are symmetrically provided with clamping grooves (24), the floating frame (1) is provided with a connecting pin (70) and a matching guide rail (75) on the two sides of the butt joint part, the matching guide rail (75) is slidingly installed with a movable pin (74), the connecting pin (70) and the movable pin (74) are rotatably installed with a swing frame one (71) and a swing frame two (73), the swing frame one (71) and the swing frame two (73) are rotatably installed with a clamping block (72), the clamping block (72) and the clamping groove (24) are matched with each other, the connecting frame (76) is arranged between the clamping blocks (72) on the two sides, the connecting frame (76) is connected with a telescopic motor (77), the telescopic motor (77) is fixedly installed with the floating frame (1), the butt joint cover (20) is further provided with an auxiliary discharging assembly (8).

2. The treatment device for accelerating coagulation and sedimentation of lake sludge according to claim 1, characterized in that, The driving assembly comprises a motor one (33) arranged on the floating frame (1), the motor one (33) is connected with a belt pulley one (34), the end of the double-way auger (300) is provided with a belt pulley two (35) and a belt pulley three (36), the belt pulley one (34) and the belt pulley two (35) are provided with a belt one (37), the mixing pipes (40) are rotatably installed with a driving rod (46), the bottom of the intermediate rod (41) is provided with a driven bevel gear (45), the driving rod (46) is provided with a driving bevel gear (47), the driven bevel gear (45) and the driving bevel gear (47) are meshed with each other, the end of the driving rod (46) is provided with a belt pulley four (39), the belt pulley three (36) and the belt pulley four (39) are provided with a belt two (38).

3. The treatment device for accelerating coagulation and sedimentation of lake sludge according to claim 1, characterized in that, The connecting frame one (55) and the connecting frame two (56) are fixedly provided with the dispersion paddle (54) at the positions corresponding to the release hole one (500) and the release hole two (530).

4. The treatment device for accelerating coagulation and sedimentation of lake sludge according to claim 1, characterized in that, The auxiliary discharging assembly (8) comprises a gear ring (80) which is rotatably installed on the upper surface of the butt joint cover (20), the barrel opening part of the storage barrel (2) is provided with a butt joint section (21), the outer wall of the butt joint section (21) is uniformly provided with a protruding column (84), the upper surface of the gear ring (80) is uniformly provided with an inclined rod (81), the end of the inclined rod (81) is provided with a spring (82), the end of the spring (82) is connected with a knocking ball (83), one side of the clamping block (72) is fixedly provided with a motor two (85), the motor two (85) is connected with a driving gear (86), when the clamping block (72) and the clamping groove (24) are matched with each other, the driving gear (86) and the gear ring (80) are meshed with each other.

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