Water treatment equipment and method based on MS glue production
By designing a multi-stage flocculation mechanism and a displacement mechanism, the problems of easy damage to flocs and incomplete cleaning during the MS glue production process are solved, achieving effective floc growth and efficient wastewater treatment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-26
- Publication Date
- 2026-03-31
AI Technical Summary
Existing water treatment equipment makes it difficult to flexibly control the mixing structure in stages during the MS glue production process, which leads to the flocs being easily damaged and affects the treatment effect.
Employing a multi-stage flocculation mechanism and a transposition mechanism, the blade angle and position are adjusted to achieve batch flocculation and low-speed stirring, avoiding floc shearing. At the same time, an extension frame is used to clean impurities from the blades, ensuring thorough cleaning of the inside of the flocculation tank.
It achieves effective floc growth and efficient wastewater treatment, avoiding the damage of flocs and incomplete cleaning of the flocculant tank, thus improving the treatment effect.
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Figure CN121757971A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of wastewater treatment technology, and specifically to a water treatment device and method based on MS glue production. Background Technology
[0002] Wastewater is generated during the production of MS adhesive due to equipment cleaning, floor washing, process residues, and a small amount of reaction byproducts.
[0003] Existing water treatment equipment makes it difficult to flexibly control the mixing structure in stages when continuously adding chemicals to treat wastewater for flocculation. This results in the flocs being easily damaged during the flocculation process, affecting the final treatment effect. Summary of the Invention
[0004] The purpose of this invention is to provide a water treatment device and method based on MS adhesive production, so as to overcome the above-mentioned shortcomings in the prior art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a water treatment device based on MS glue production, comprising a body, multiple flocculation tanks disposed inside the body, and multiple column feet installed at the bottom of the body, and further comprising: The batch injection mechanism includes a fixed plate installed inside the machine body, and an inlet pipe and a dosing pipe are sequentially installed inside the fixed plate along a circular trajectory. A multi-stage flocculation mechanism includes a main shaft rotatably connected inside a flocculation tank, multiple stirring components installed outside the main shaft, and an adjusting component installed inside the main shaft. The multiple stirring components are arranged sequentially along the height direction of the main shaft. Each stirring component includes multiple driven shafts rotatably connected to the outer wall of the main shaft and blades fixedly sleeved outside the driven shafts. The adjusting component is used to drive the driven shafts to rotate. The switching mechanism, located inside the machine body, is used to drive multiple flocculation tanks to rotate sequentially to the bottom of the inlet pipe and the dosing pipe; The discharge and cleaning mechanism includes a housing mounted on one outer wall of the flocculation tank, a plurality of extension frames mounted inside the housing, and a displacement assembly for driving the extension frames to move, one end of the extension frames slidingly extending into the interior of the flocculation tank.
[0006] Furthermore, the top end of the main shaft extends to the outside of the flocculation tank, and a first motor is installed on the top of the flocculation tank. A first gear is fixedly sleeved on both the outside of the output shaft of the first motor and the outside of the main shaft. The two first gears mesh with each other, and the main shaft has a hollow structure.
[0007] Furthermore, the adjustment assembly includes a first drive shaft rotatably connected inside the main shaft and a plurality of geared discs fixedly sleeved outside the first drive shaft, wherein the plurality of geared discs correspond to a plurality of stirring assemblies respectively; A second gear is fixedly sleeved on the outside of multiple driven shafts in the same group, and multiple second gears mesh with a gear plate.
[0008] Furthermore, the top end of the first drive shaft extends to the outside of the main shaft, and a second motor is also installed on the top of the flocculation tank. A third gear is fixedly sleeved on the outside of the output shaft of the second motor and the outside of the first drive shaft, and the two third gears mesh with each other.
[0009] Furthermore, a feeding pipe is installed on one side of the top of the flocculation tank, a wide nozzle is installed at the top of the feeding pipe, and sealing caps are installed at the bottom of the water inlet pipe and the chemical dosing pipe. A first solenoid valve is installed on the feeding pipe, the water inlet pipe and the chemical dosing pipe.
[0010] Furthermore, a feed pipe is installed at the bottom of the flocculation tank, and a second solenoid valve is installed on the feed pipe; The inner wall of the bottom of the machine body has a funnel-shaped structure, and a discharge pipe is installed at the bottom of the machine body.
[0011] Furthermore, the switching mechanism includes a turntable rotatably connected inside the machine body and a third motor mounted on the top of the fixed plate, wherein the turntable is fixedly sleeved outside the output shaft of the third motor; Multiple flocculation tanks are installed on the top of the turntable, and the multiple flocculation tanks are distributed in a ring array with the output shaft of the third motor as the center.
[0012] Furthermore, the displacement assembly includes a plurality of reciprocating screws rotatably connected inside the housing along the length direction of the housing, a second drive shaft rotatably connected inside the housing along the height direction of the housing, and a fourth motor mounted on the top of the housing; The output end of the fourth motor is fixedly connected to the top end of the second drive shaft; The other end of the extension frame is threaded to the outside of the reciprocating screw; The reciprocating screw is externally fixedly sleeved with a worm gear, and the second drive shaft is externally fixedly sleeved with multiple worms, which mesh with the worm gear.
[0013] A water treatment method based on MS adhesive production, employing the aforementioned MS adhesive-based water treatment equipment, includes the following steps: S1. First, wastewater is introduced into the flocculation tank at the bottom through the inlet pipe, and the blades are adjusted to an inclined state through the adjustment component. S2. Drive the flocculation tank to the bottom of the dosing pipe through the switching mechanism, add a certain amount of flocculant into the flocculation tank through the dosing pipe, and then use the stirring component to mix the wastewater and flocculant in the flocculation tank at high speed. S3. The flocculation tank is driven to rotate by the shifting mechanism, and the blades are adjusted to a vertical state by the adjusting component, so that the blades in the vertical direction are attached together in sequence, and the wastewater inside the flocculation tank is stirred at low speed. S4. After flocculation is completed, the flocculation wastewater inside the flocculation tank is discharged through the feed pipe. At the same time, the blades are adjusted to a horizontal state through the adjustment component and driven to rotate at low speed. The extension frame is driven to move back and forth between two adjacent blades through the displacement component to remove impurities on the outer wall of the blades. S5. When cleaning the inside of the flocculation tank, repeat the steps of adjusting the blades to a horizontal state and driving the extension frame to move back and forth between two adjacent blades.
[0014] Compared with the prior art, the water treatment equipment and method based on MS glue production provided by the present invention have the following beneficial effects: 1. By adjusting the blades to an inclined state, wastewater and flocculant can be mixed quickly. During the floc growth stage, the blades are adjusted to a vertical state. The combined blades stir the wastewater at a low speed, which can avoid shearing the flocs and maintain the dispersion of flocculant in the wastewater, thus promoting the growth of flocs in the wastewater. 2. After the wastewater in the flocculation tank has completed flocculation, adjust the blades to a horizontal position and simultaneously drive the extension frame to move back and forth between adjacent blades to remove impurities on the outer wall of the blades. This avoids the problem of increased impurities on the blades reducing the mixing effect between wastewater and flocculant. When cleaning the inside of the flocculation tank, repeat the steps of adjusting the blades to a horizontal position and driving the extension frame to move back and forth between adjacent blades. This can thoroughly clean the inside of the flocculation tank and solve the problem of incomplete cleaning inside the flocculation tank. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the internal structure of the body of the present invention; Figure 3 This is a schematic diagram of the external structure of the flocculation tank of the present invention; Figure 4 This is a schematic diagram of the internal structure of the flocculation tank and shell of the present invention; Figure 5 For the present invention Figure 4 Enlarged schematic diagram of the structure at point A in the middle; Figure 6 For the present invention Figure 4 Enlarged schematic diagram of the structure at point B; Figure 7 This is a schematic diagram of the adjustment component structure of the present invention; Figure 8 For the present invention Figure 7 Enlarged schematic diagram of the structure at point C; Figure 9 This is a schematic diagram of the sealing cap structure of the present invention.
[0017] Explanation of reference numerals in the attached figures: 1. Machine body; 2. Flocculation tank; 3. Fixed plate; 4. Water inlet pipe; 5. Dosing pipe; 6. Column base; 7. Main shaft; 8. Worm gear; 9. Driven shaft; 10. Blade; 11. Housing; 12. Extension frame; 13. First motor; 14. First gear; 15. First drive shaft; 16. Gear plate; 17. Second gear; 18. Second motor; 19. Third gear; 20. Feeding pipe; 21. Wide nozzle; 22. Sealing cover; 23. First solenoid valve; 24. Guide pipe; 25. Second solenoid valve; 26. Discharge pipe; 27. Turntable; 28. Third motor; 29. Reciprocating screw; 30. Second drive shaft; 31. Fourth motor; 32. Worm gear. Detailed Implementation
[0018] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0019] Example 1: Please refer to Figure 1 - Figure 9 A water treatment device based on MS adhesive production includes a body 1, multiple flocculation tanks 2 disposed inside the body 1, and multiple column feet 6 installed at the bottom of the body 1. In this embodiment, the number of flocculation tanks 2 is three, and the device also includes: The batch injection mechanism includes a fixed plate 3 installed inside the body 1. The inside of the fixed plate 3 is sequentially installed along a circular track with an inlet pipe 4 and a dosing pipe 5. A feed pipe 20 is installed on one side of the top of the flocculation tank 2. A wide nozzle 21 is installed at the top of the feed pipe 20. A sealing cap 22 is installed at the bottom of both the inlet pipe 4 and the dosing pipe 5. A first solenoid valve 23 is installed on the feed pipe 20, the inlet pipe 4 and the dosing pipe 5. After the wide nozzle 21 is rotated to the bottom of the sealing cover 22, the water inlet pipe 4 or the dosing pipe 5 connected to the sealing cover 22 is connected to the feeding pipe 20. The first solenoid valve 23 on the feeding pipe 20 and the corresponding water inlet pipe 4 or the dosing pipe 5 is opened, so that the wastewater or flocculant inside the feeding cylinder can be introduced into the flocculant tank 2. After the introduction is completed, the first solenoid valve 23 is closed.
[0020] A multi-stage flocculation mechanism includes a main shaft 7 rotatably connected inside a flocculation tank 2, multiple stirring components mounted outside the main shaft 7, and an adjusting component mounted inside the main shaft 7. The stirring components are arranged sequentially along the height of the main shaft 7. Each stirring component includes multiple driven shafts 9 rotatably connected to the outer wall of the main shaft 7 and blades 10 fixedly sleeved on the outside of the driven shafts 9. The adjusting component drives the driven shafts 9 to rotate. The top end of the main shaft 7 extends to the outside of the flocculation tank 2. A first motor 13 is mounted on the top of the flocculation tank 2. First gears 14 are fixedly sleeved on both the outside of the output shaft of the first motor 13 and the outside of the main shaft 7, with two first gears 14 meshing with each other. The main shaft 7 has a hollow structure. The adjusting component includes a first gear 10 rotatably connected inside the main shaft 7. A drive shaft 15 and multiple gear discs 16 fixedly sleeved on the outside of the first drive shaft 15, the multiple gear discs 16 respectively correspond to multiple stirring components; a second gear 17 is fixedly sleeved on the outside of multiple driven shafts 9 in the same group, the multiple second gears 17 mesh with the gear discs 16; the top end of the first drive shaft 15 extends to the outside of the main shaft 7; a second motor 18 is also installed on the top of the flocculation tank 2; a third gear 19 is fixedly sleeved on the outside of the output shaft of the second motor 18 and the outside of the first drive shaft 15, the two third gears 19 mesh with each other; a guide pipe 24 is installed at the bottom of the flocculation tank 2, and a second solenoid valve 25 is installed on the guide pipe 24; the inner wall of the bottom of the machine body 1 has a funnel-shaped structure, and a discharge pipe 26 is installed at the bottom of the machine body 1; Wastewater is introduced into the flocculation tank 2 at the bottom of the tank through the inlet pipe 4. The second motor 18 drives the third gear 19 outside its output shaft to rotate. The meshing action between the two third gears 19 drives the first drive shaft 15 to rotate, and the gear disc 16 rotates accordingly. The meshing action between the gear disc 16 and multiple second gears 17 drives each driven shaft 9 to rotate, thereby adjusting the angle of each blade 10 to an inclined state. Through the shifting mechanism, the flocculation tank 2 rotates 120° clockwise around the output shaft of the third motor 28 to the bottom of the dosing pipe 5. Flocculant is added into the flocculation tank 2 through the dosing pipe 5. At the same time, the first motor 13 drives its output shaft to rotate. The external first gear 14 rotates, and through the meshing action between the two first gears 14, the main shaft 7 rotates, which in turn drives each blade 10 to rotate, thus performing high-speed stirring and mixing of the wastewater and flocculant inside the flocculation tank 2. Then, the flocculation tank 2 is driven to continue rotating 120° through the switching mechanism, and the blades 10 are driven to rotate by controlling the second motor 18 to adjust the blades 10 to a vertical state, so that each vertical blade 10 is sequentially attached together, and the wastewater inside the flocculation tank 2 is stirred at a low speed. By stirring the raw materials at a low speed through the combined blades 10, the shearing of the flocs can be avoided, while maintaining the dispersion of the flocculant in the wastewater and promoting the growth of the flocs in the wastewater.
[0021] The switching mechanism is located inside the machine body 1 and is used to drive multiple flocculation tanks 2 to rotate sequentially to the bottom of the water inlet pipe 4 and the dosing pipe 5. The switching mechanism includes a turntable 27 rotatably connected inside the machine body 1 and a third motor 28 mounted on the top of the fixed plate 3. The turntable 27 is fixedly sleeved on the outside of the output shaft of the third motor 28. Multiple flocculation tanks 2 are all mounted on the top of the turntable 27, and the multiple flocculation tanks 2 are distributed in a ring array with the output shaft of the third motor 28 as the center. The third motor 28 drives the turntable 27 to rotate clockwise, and drives the turntable 27 to pause every 120° rotation, thereby driving the flocculation tank 2 to rotate sequentially to the bottom of the water inlet pipe 4 and the dosing pipe 5.
[0022] The discharge and cleaning mechanism includes a housing 11 installed on the outer wall of one side of the flocculation tank 2, a plurality of extension frames 12 installed inside the housing 11, and a displacement assembly for driving the extension frames 12 to move. One end of the extension frame 12 slides into the interior of the flocculation tank 2. The displacement assembly includes a plurality of reciprocating screws 29 rotatably connected inside the housing 11 along its length, a second drive shaft 30 rotatably connected inside the housing 11 along its height, and a fourth motor 31 installed on the top of the housing 11. The output end of the fourth motor 31 is fixedly connected to the top end of the second drive shaft 30. The other end of the extension frame 12 is threadedly connected to the outside of the reciprocating screws 29. A worm gear 32 is fixedly sleeved on the outside of the reciprocating screws 29, and a plurality of worms 8 are fixedly sleeved on the outside of the second drive shaft 30. The worms 8 mesh with the worm gear 32. After the wastewater inside the flocculation tank 2 has completed flocculation, the second solenoid valve 25 is opened, and the flocculated wastewater inside the flocculation tank 2 is discharged through the feed pipe 24. At the same time, the blades 10 are adjusted to a horizontal state and driven to rotate at a low speed. The fourth motor 31 drives the second drive shaft 30 to rotate, and each worm 8 rotates synchronously. Through the meshing action between the worm 8 and the worm wheel 32, the reciprocating screw 29 is driven to rotate. The extension frame 12 moves back and forth along the outside of the reciprocating screw 29, and at the same time, the extension frame 12 moves back and forth between two adjacent blades 10, thus... Impurities on the outer wall of blade 10 are removed. After cleaning blade 10, the extension frame 12 is driven to move into the interior of housing 11, and then blade 10 is driven to rotate 180°. Then, the extension frame 12 is driven to move back and forth between the two blades 10 again, thus achieving thorough cleaning of blade 10. When cleaning inside flocculation tank 2, the steps of adjusting blade 10 to a horizontal state and driving extension frame 12 to move back and forth between adjacent blades 10 are repeated to thoroughly clean the inside of flocculation tank 2, solving the problem of incomplete cleaning inside flocculation tank 2.
[0023] Example 2: Please refer to Figure 1 - Figure 9 A water treatment method based on MS adhesive production, which uses the aforementioned MS adhesive-based water treatment equipment, includes the following steps: S1. First, wastewater is introduced into the flocculation tank 2 at the bottom through the inlet pipe 4, and at the same time, the blades 10 are adjusted to an inclined state through the adjustment component. S2. Drive the flocculation tank 2 to rotate to the bottom of the dosing pipe 5 through the switching mechanism, add a certain amount of flocculant into the flocculation tank 2 through the dosing pipe 5, and then use the stirring component to stir and mix the wastewater and flocculant inside the flocculation tank 2 at high speed. S3. Drive the flocculation tank 2 to rotate through the shifting mechanism, adjust the blades 10 to a vertical state through the adjusting component, so that the blades 10 in the vertical direction are attached together in sequence, and stir the wastewater inside the flocculation tank 2 at low speed. S4. After flocculation is completed, the flocculation wastewater inside the flocculation tank 2 is discharged through the feed pipe 24. At the same time, the blade 10 is adjusted to a horizontal state through the adjustment component and the blade 10 is driven to rotate at a low speed. The extension frame 12 is driven to move back and forth between two adjacent blades 10 through the displacement component to remove impurities on the outer wall of the blade 10. S5. When cleaning the inside of the flocculation tank 2, repeat the steps of adjusting the blades 10 to a horizontal state and driving the extension frame 12 to move back and forth between two adjacent blades 10.
[0024] Working principle: During use, wastewater is introduced into the flocculation tank 2 at the bottom through the inlet pipe 4. The second motor 18 drives the third gear 19 outside its output shaft to rotate. Through the meshing action between the two third gears 19, the first drive shaft 15 rotates, and the gear disc 16 rotates accordingly. Through the meshing action between the gear disc 16 and multiple second gears 17, each driven shaft 9 rotates, thereby adjusting the angle of each blade 10 to an inclined state. Through the shifting mechanism, the flocculation tank 2 rotates 120° clockwise around the output shaft of the third motor 28 to the bottom of the dosing pipe 5. Flocculant is added into the flocculation tank 2. Simultaneously, the first motor 13 drives the first gear 14 outside its output shaft to rotate. Through the meshing action between the two first gears 14, the main shaft 7 rotates, which in turn drives each blade 10 to rotate, thus performing high-speed stirring and mixing of the wastewater and flocculant inside the flocculation tank 2. Then, the flocculation tank 2 is driven to rotate another 120° through a switching mechanism. The second motor 18 is then controlled to drive the blades 10 to rotate, adjusting the blades 10 to a vertical position so that the vertical blades 10 are sequentially brought together, and the wastewater inside the flocculation tank 2 is stirred at a low speed by the combined blades. 10. Low-speed stirring of the raw materials avoids shearing of the flocs and maintains the dispersion of flocculants in the wastewater, promoting the growth of flocs. After flocculation of the wastewater inside the flocculation tank 2 is completed, the second solenoid valve 25 is opened to discharge the flocculated wastewater inside the flocculation tank 2 through the feed pipe 24. At the same time, the blades 10 are adjusted to a horizontal state and driven to rotate at low speed. The fourth motor 31 drives the second drive shaft 30 to rotate, and each worm 8 rotates synchronously. Through the meshing action between the worm 8 and the worm wheel 32, the reciprocating screw 29 is driven to rotate, and the extension frame 12 moves back and forth along the outside of the reciprocating screw 29. Meanwhile, the extension frame 12 moves back and forth between two adjacent blades 10 to remove impurities from the outer wall of the blades 10. After cleaning the blades 10, the extension frame 12 is driven to move into the interior of the housing 11, and then the blades 10 are driven to rotate 180°. Then the extension frame 12 is driven to move back and forth between the two blades 10 again, thus achieving thorough cleaning of the blades 10. When cleaning the inside of the flocculation tank 2, the steps of adjusting the blades 10 to a horizontal state and driving the extension frame 12 to move back and forth between two adjacent blades 10 are repeated to thoroughly clean the inside of the flocculation tank 2, solving the problem of incomplete cleaning inside the flocculation tank 2.
[0025] It should be noted that the device structure and accompanying drawings of this invention mainly describe the principle of the invention. The technical details of the device's power mechanism, power supply system, and control system are not fully described. However, those skilled in the art, understanding the principles of the invention, can clearly understand the specifics of its power mechanism, power supply system, and control system. The control method described in the application is automatic control via a controller, and the controller's control circuit can be implemented through simple programming by those skilled in the art. The above description only illustrates certain exemplary embodiments of the invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of this invention.
Claims
1. A water treatment device based on MS gel production, comprising a body (1), a plurality of flocculation tanks (2) arranged inside the body (1), and a plurality of column feet (6) mounted at the bottom of the body (1), characterized in that, Also include: Batch injection mechanism, including fixed plate (3) installed inside the body (1), the inside of the fixed plate (3) is sequentially installed with water inlet pipe (4) and dosing pipe (5) along the annular track; Multi-stage flocculation mechanism, including a main shaft (7) rotatably connected inside the flocculation tank (2), a plurality of stirring assemblies mounted outside the main shaft (7) and an adjusting assembly mounted inside the main shaft (7), the plurality of stirring assemblies are sequentially arranged along the height direction of the main shaft (7), the stirring assembly comprises a plurality of driven shafts (9) rotatably connected to the outer wall of the main shaft (7) and a plurality of blades (10) fixedly sleeved outside the driven shaft (9), the adjusting assembly is used for driving the driven shaft (9) to rotate; The transposition mechanism is arranged in the inside of the body (1), and is used for driving the plurality of flocculation tanks (2) to rotate to the bottom of the water inlet pipe (4) and the dosing pipe (5) in sequence; The discharge cleaning mechanism comprises a housing (11) mounted on one side of the outer wall of the flocculation tank (2), a plurality of extension frames (12) mounted in the housing (11), and a displacement assembly for driving the extension frame (12) to move, one end of the extension frame (12) slidingly extends into the inside of the flocculation tank (2).
2. A water treatment apparatus based on MS gel production according to claim 1, characterized in that, The top end of the main shaft (7) extends to the outside of the flocculation tank (2), the top of the flocculation tank (2) is provided with a first motor (13), the outside of the output shaft of the first motor (13) and the outside of the main shaft (7) are fixedly sleeved with a first gear (14), the two first gears (14) are engaged with each other, and the main shaft (7) is a hollow structure.
3. A water treatment apparatus based on MS-gel production according to claim 2, characterized in that, The adjusting assembly comprises a first drive shaft (15) rotatably connected inside the main shaft (7) and a plurality of toothed discs (16) fixedly sleeved outside the first drive shaft (15), and the plurality of toothed discs (16) correspond to the plurality of stirring assemblies respectively; The outside of the plurality of driven shafts (9) in the same group is fixedly sleeved with a second gear (17), and the plurality of second gears (17) are engaged with the toothed discs (16).
4. A water treatment apparatus based on MS-gel production according to claim 3, characterized in that, The top end of the first drive shaft (15) extends to the outside of the main shaft (7), and the top of the flocculation tank (2) is further provided with a second motor (18), the outside of the output shaft of the second motor (18) and the outside of the first drive shaft (15) are fixedly sleeved with a third gear (19), and the two third gears (19) are engaged with each other.
5. A water treatment apparatus based on MS-gel production according to claim 4, characterized in that, The top of one side of the flocculation tank (2) is provided with a feeding pipe (20), the top end of the feeding pipe (20) is provided with a wide mouth (21), the bottom end of the water inlet pipe (4) and the dosing pipe (5) is provided with a sealing cover (22), and the feeding pipe (20), the water inlet pipe (4) and the dosing pipe (5) are provided with a first electromagnetic valve (23).
6. A water treatment apparatus based on MS-gel production according to claim 5, characterized in that, The bottom of the flocculation tank (2) is provided with a guide pipe (24), and the guide pipe (24) is provided with a second electromagnetic valve (25); The inner wall of the bottom of the body (1) is in the shape of a funnel, and the bottom of the body (1) is provided with a discharge pipe (26).
7. A water treatment apparatus based on MS-gel production according to claim 6, characterized in that, The transposition mechanism comprises a rotating table (27) rotatably connected inside the body (1) and a third motor (28) installed on the top of the fixed plate (3), and the rotating table (27) is fixedly sleeved outside the output shaft of the third motor (28); A plurality of flocculation tanks (2) are installed on the top of the rotating table (27), and the plurality of flocculation tanks (2) are arranged in a ring array with the output shaft of the third motor (28) as the center.
8. A water treatment apparatus based on MS-gel production according to claim 7, characterized in that, The displacement assembly comprises a plurality of reciprocating screws (29) rotatably connected inside the shell (11) along the length direction of the shell (11), a second driving shaft (30) rotatably connected inside the shell (11) along the height direction of the shell (11), and a fourth motor (31) installed on the top of the shell (11); The output end of the fourth motor (31) is fixedly connected with the top end of the second driving shaft (30); The other end of the extension frame (12) is threadedly connected outside the reciprocating screw (29); The outside of the reciprocating screw (29) is fixedly sleeved with a worm gear (32), and the outside of the second driving shaft (30) is fixedly sleeved with a plurality of worm gears (8), and the worm gears (8) are engaged with the worm gear (32).
9. A water treatment method based on MS gel production, which uses a water treatment apparatus based on MS gel production according to claim 8, characterized in that, The method comprises the following steps: S1, first, the wastewater is introduced into the flocculation tank (2) at the bottom through the water inlet pipe (4), and the blade (10) is adjusted to an inclined state through the adjusting assembly; S2, the flocculation tank (2) is driven to rotate to the bottom of the dosing pipe (5) through the transposition mechanism, a certain amount of flocculating agent is added into the flocculation tank (2) through the dosing pipe (5), and the wastewater and the flocculating agent in the flocculation tank (2) are high-speed stirred and mixed through the stirring assembly; S3, the flocculation tank (2) is driven to rotate through the transposition mechanism, the blade (10) is adjusted to a vertical state through the adjusting assembly, the blades (10) in the vertical direction are sequentially attached together, and the wastewater in the flocculation tank (2) is low-speed stirred; S4, after flocculation, the flocculated wastewater in the flocculation tank (2) is discharged through the material guide pipe (24), the blade (10) is adjusted to a horizontal state through the adjusting assembly, the blade (10) is driven to rotate at a low speed, the extension frame (12) is driven to reciprocate along the adjacent two blades (10) through the displacement assembly, and the impurities on the outer wall of the blade (10) are removed; S5, when cleaning the inside of the flocculation tank (2), the steps of adjusting the blade (10) to a horizontal state and driving the extension frame (12) to reciprocate along the adjacent two blades (10) are repeated.
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