Suspended matter removing device after carpet printing and dyeing sewage treatment

By using a filter press plate, a filter baffle structure, and a scraper device in the reaction tank, the problem of pipe blockage caused by suspended fiber impurities in dyeing and printing wastewater was solved, and the wastewater was discharged and treated smoothly.

CN121292641AInactive Publication Date: 2026-01-09TIANJIN SHENGFUDA TEXTILE CO LTD
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Patent Information

Application Number
CN202511714361.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-21
Publication Date
2026-01-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Fiber impurities in dyeing and printing wastewater fail to react fully with microbial activated sludge, causing the fiber impurities to remain suspended in the wastewater and gradually adhere to the inner wall of the pipes, resulting in blockage and affecting wastewater discharge.

Method used

The system employs a filter pressure plate and filter baffle structure at the top of the reaction tank. By flipping and moving the baffle, fiber impurities are pushed and removed. Combined with scrapers and cutting devices, this ensures that impurities do not clog the drainage system.

Benefits of technology

It effectively prevents fibrous impurities from clogging drainage pipes, ensuring smooth discharge of sewage and improving the efficiency of sewage treatment.

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Abstract

The invention relates to the field of printing and dyeing sewage treatment, and relates to a device for removing suspended solids after carpet printing and dyeing sewage treatment, the device comprises a reaction tank, two opposite sides of the top of the reaction tank are provided with water filtration pressing plates, the two water filtration pressing plates can be overturned and are in contact with each other to close the reaction tank, and the water filtration pressing plates are provided with a plurality of first water filtration holes; two groups of driving mechanisms respectively used for driving the water filtering pressing plate to move are mounted on the reaction tank, and two groups of overturning mechanisms respectively used for driving the water filtering pressing plate to overturn are mounted in the reaction tank. The problem that sewage discharge is affected is solved.
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Description

Technical Field

[0001] This invention relates to the field of textile dyeing wastewater treatment, and in particular to a device for removing suspended solids after treating carpet dyeing wastewater. Background Technology

[0002] In the textile processing, dyeing is an essential step. The main medium for dyeing is water, which generates a large amount of wastewater. In addition to the large volume of water, dyeing wastewater also contains a large amount of dyes, sizing agents, auxiliaries, oils, acids, alkalis, fiber impurities, etc. Therefore, the treatment of dyeing wastewater before discharge is particularly important.

[0003] In related technologies, the suspended solids removal device after dyeing and printing wastewater treatment includes a reaction tank. The top of the reaction tank is equipped with a cover plate, and a stirring mechanism is installed on the cover plate. The stirring mechanism includes a motor fixedly connected to the cover plate, and a stirring shaft extending into the reaction tank is fixedly connected to the output shaft of the motor. Multiple blades are fixedly connected to the stirring shaft. The top of the reaction tank has an inlet that is connected to an external wastewater pipe. The bottom of the reaction tank has a sludge outlet and a drain outlet. The drain outlet is located above the sludge outlet and is used to discharge the sludge at the bottom of the reaction tank and is connected to an external sludge pumping pipe. The drain outlet is used to discharge the treated wastewater in the reaction tank and is connected to an external water pumping pipe. The dyeing and printing wastewater and activated sludge with a large number of microorganisms are mixed, stirred, and aerated in the reaction tank to decompose and precipitate the organic pollutants in the wastewater. After a period of time, the treated wastewater in the reaction tank is first discharged through the water pumping pipe, and then the sludge at the bottom of the reaction tank is pumped out through the sludge pumping pipe.

[0004] Regarding the aforementioned technologies, if the fibrous impurities in the wastewater fail to react fully with the activated sludge, these fibrous impurities will remain suspended in the wastewater. During the wastewater discharge process, the fibrous impurities gradually adhere to the inner wall of the pipe, causing blockage and thus affecting the discharge of wastewater. Summary of the Invention

[0005] To address the issue of impacting wastewater discharge, this invention provides a device for removing suspended solids after wastewater treatment in carpet printing and dyeing.

[0006] The suspended solids removal device for treated carpet dyeing wastewater provided by this invention adopts the following technical solution: A suspended solids removal device for treated carpet dyeing wastewater includes a reaction tank. Two filter plates are installed on opposite sides of the top of the reaction tank. The two filter plates can be flipped and contact each other to seal the reaction tank. Multiple first filter holes are provided on the filter plates. Two sets of driving mechanisms are installed on the reaction tank to move the filter plates. Two sets of flipping mechanisms are installed in the reaction tank to flip the filter plates.

[0007] Preferably, a filter baffle is slidably installed on the inner side of the filter plate, and the filter baffle has a plurality of second filter holes, which are staggered with a plurality of first filter holes. A first spring is fixedly connected between the filter plate and the filter baffle. A stop block is fixedly connected to the inner wall of the reaction tank, and the filter baffle can contact the stop block. A plurality of guide posts, each corresponding to a second filter hole, are fixedly connected to the filter plate.

[0008] Preferably, a scraper is slidably installed at the bottom of the reaction tank, the top of the scraper can contact the bottom of the filter baffle, and a sliding mechanism for driving the scraper to move is installed in the reaction tank.

[0009] Preferably, a cutting shaft is rotatably mounted on the scraper, a plurality of cutters are fixedly connected to the cutting shaft, and a rotating mechanism for driving the cutting shaft to rotate is mounted on the scraper.

[0010] Preferably, an installation plate is fixedly connected to the water filter pressure plate, the water filter baffle is slidably installed on the installation plate, a locking mechanism is installed on the installation plate, an installation groove is provided on the installation plate, the locking mechanism includes a locking spring fixedly connected to the inner wall of the installation groove and a locking block placed in the installation groove, the locking spring is fixedly connected to the locking block, a locking groove for the locking block to be inserted is provided on the water filter baffle, and an unlocking element for disengaging the locking block from the locking groove is installed on the water filter pressure plate.

[0011] Preferably, the unlocking component includes an unlocking rod that passes through the filter pressure plate, a pull rope that is fixedly connected between the unlocking rod and the locking block, an iron plate that is fixedly connected to the unlocking rod, and a magnet that works in conjunction with the iron plate that is embedded in the inner wall of the reaction tank.

[0012] Preferably, a drive groove is provided on the inner wall of the reaction tank, the drive mechanism includes a drive motor fixedly connected to the top of the reaction tank, a drive screw is rotatably installed in the drive groove, the output shaft of the drive motor is fixedly connected to the drive screw, a drive block is slidably installed in the drive groove, the drive screw passes through the drive block and is threadedly connected to the drive block, and the filter plate is rotatably installed on the drive block.

[0013] Preferably, the flipping mechanism includes a flipping rack fixedly connected to the inner wall of the reaction tank, and a flipping gear fixedly connected to the rotating shaft in the filter pressure plate, wherein the flipping rack meshes with the flipping gear.

[0014] Preferably, the bottom of the reaction tank is provided with a sliding groove, the sliding mechanism includes a reciprocating screw rotatably installed in the sliding groove, a sliding block slidably installed in the sliding groove, the reciprocating screw passing through the sliding block and threadedly connected to the sliding block, the scraper being fixedly connected to the sliding block, a connecting component being installed in the reaction tank, and the driving screw driving the reciprocating screw to rotate through the connecting component.

[0015] Preferably, the rotating mechanism includes a transmission wheel sleeved on a reciprocating screw, the transmission wheel being rotatably connected to a sliding block, the transmission wheel being slidably connected to the reciprocating screw, a first bevel gear being rotatably mounted on the scraper, a first conveyor belt being sleeved on the first bevel gear and the transmission wheel, and a second bevel gear meshing with the first bevel gear being fixedly connected to the cutting shaft.

[0016] In summary, the present invention has at least the following beneficial technical effects: 1. After the wastewater and activated sludge in the reaction tank have been left to stand for a period of time, the drive mechanism and the turning mechanism are activated. The turning mechanism drives the filter plates to turn to a horizontal position, and the two filter plates close at the top of the reaction tank. The drive mechanism drives the filter plates to move downwards. The filter plates push the fibrous impurities in the wastewater to the bottom of the reaction tank. The filter plates can also clean the inner wall of the reaction tank, avoiding blockage of the drain pipe and solving the problem of affecting the discharge of wastewater. 2. As the filter plate moves downward, it drives the filter baffle to move downward. At the same time, the first spring applies a force between the filter plate and the filter baffle, causing the filter baffle to separate from the filter plate. When the filter plate moves to the bottom of the reaction tank, the filter baffle abuts against the baffle block and contacts the filter plate. The guide post is inserted into the second filter hole to seal the filter baffle, thus allowing sewage and sludge to be discharged simultaneously. 3. Activate the sliding mechanism, which drives the scraper to move. The scraper can remove fibrous impurities from the bottom of the filter baffle, preventing the fibrous impurities from clogging the filter baffle. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of the suspended solids removal device after treatment of carpet dyeing wastewater according to an embodiment of the present invention.

[0018] Figure 2 This is a schematic diagram of the internal structure of the reaction tank according to an embodiment of the present invention.

[0019] Figure 3 This is a schematic diagram of the structure of the filter plate according to an embodiment of the present invention.

[0020] Figure 4 This is a schematic diagram of the drive mechanism according to an embodiment of the present invention.

[0021] Figure 5 This is a schematic diagram of the structure of the water filter baffle according to an embodiment of the present invention.

[0022] Figure 6 This is a schematic diagram of the sealing mechanism according to an embodiment of the present invention.

[0023] Figure 7 This is a schematic diagram of the locking mechanism according to an embodiment of the present invention.

[0024] Figure 8 This is a schematic diagram of the flipping mechanism according to an embodiment of the present invention.

[0025] Figure 9 This is a schematic diagram of the sliding mechanism according to an embodiment of the present invention.

[0026] Figure 10 This is a schematic diagram of the cleaning mechanism according to an embodiment of the present invention.

[0027] Explanation of reference numerals in the attached drawings: 1. Reaction tank; 11. Sewage pipe; 12. Drainage pipe; 13. Filter pressure plate; 131. Guide column; 132. Mounting plate; 14. Filter baffle; 15. First spring; 16. Stop block; 2. Drive mechanism; 21. Drive motor; 22. Drive screw; 221. Drive gear; 23. Drive block; 3. Tilting mechanism; 31. Tilting rack; 32. Tilting gear; 4. Cleaning mechanism; 41. Scraper; 42. 43. Cutting shaft; 5. Sliding mechanism; 51. Reciprocating screw; 52. Sliding block; 53. First shaft; 531. Connecting gear; 54. Second shaft; 6. Rotating mechanism; 61. Transmission wheel; 62. First bevel gear; 63. Second bevel gear; 7. Locking mechanism; 71. Locking spring; 72. Locking block; 73. Unlocking rod; 74. Pull rope; 8. Sealing mechanism; 81. Sealing shaft; 82. Flexible sealing plate. Detailed Implementation

[0028] The following is in conjunction with the appendix Figure 1 - Appendix Figure 10 The present invention will be described in further detail below.

[0029] This invention discloses a device for removing suspended solids after treating wastewater from carpet dyeing. (Refer to...) Figures 1 to 3The reaction tank includes a reaction tank 1, to which a drain pipe 11 and a drain pipe 12 are fixedly connected. The drain pipe 12 is located above the drain pipe 11. Two filter plates 13 are installed on opposite sides of the top of the reaction tank 1. The two filter plates 13 can be flipped and contact each other to seal the reaction tank 1. Multiple first filter holes are provided on the filter plates 13. Two sets of drive mechanisms 2 are installed on the reaction tank 1 to drive the filter plates 13 to move. Two sets of flipping mechanisms 2 are installed in the reaction tank 1 to drive the filter plates 13 to flip. Rotating mechanism 3: After the sewage and activated sludge in the reaction tank 1 have been left to stand for a period of time, the drive mechanism 2 and the turning mechanism 3 are activated. The turning mechanism 3 drives the filter plate 13 to turn to a horizontal state. The two filter plates 13 close at the upper part of the reaction tank 1. The drive mechanism 2 drives the filter plate 13 to move downward. The filter plate 13 pushes the fibrous impurities in the sewage to the bottom of the reaction tank 1. The filter plate 13 can also clean the inner wall of the reaction tank 1, avoiding blockage of the drain pipe 12 and solving the problem of affecting the discharge of sewage.

[0030] Reference Figures 3 to 6 A filter baffle 14 is slidably installed on the inner side of the filter pressure plate 13. The filter baffle 14 has multiple second filter holes, which are staggered with multiple first filter holes. A first spring 15 is fixedly connected between the filter pressure plate 13 and the filter baffle 14. A stop block 16 is fixedly connected to the inner wall of the reaction tank 1, allowing the filter baffle 14 to contact the stop block 16. The filter baffle 14 has a connecting groove that fits into the stop block 16. Multiple guide posts 131, each corresponding to a second filter hole, are fixedly connected to the filter pressure plate 13. The filter pressure plate 13 and the filter baffle 14 move to the bottom... When the filter plate 13 moves downward, it is located between the sewage pipe 11 and the drain pipe 12. During the downward movement of the filter plate 13, the filter plate 13 drives the filter baffle 14 to move downward. At the same time, the first spring 15 applies a force between the filter plate 13 and the filter baffle 14, causing the filter baffle 14 to separate from the filter plate 13. When the filter plate 13 moves to the bottom of the reaction tank 1, the filter baffle 14 abuts against the baffle block 16 and contacts the filter plate 13. The guide post 131 is inserted into the second filter hole to seal the filter baffle 14, so that sewage and sludge can be discharged at the same time.

[0031] Reference Figures 3 to 9 A cleaning mechanism 4 is installed in the reaction tank 1. The cleaning mechanism 4 includes a scraper 41 that is slidably installed at the bottom of the reaction tank 1. The top of the scraper 41 can contact the bottom of the filter baffle 14. A sliding mechanism 5 is installed in the reaction tank 1 to drive the scraper 41 to move. When the sliding mechanism 5 is activated, the sliding mechanism 5 drives the scraper 41 to move. The scraper 41 can scrape off the fiber impurities at the bottom of the filter baffle 14 and clean the bottom and inner wall of the reaction tank 1 to prevent the fiber impurities from clogging the filter baffle 14.

[0032] Reference Figures 3 to 10 A cutting shaft 42 is rotatably mounted on the scraper 41, and multiple cutters 43 are fixedly connected to the cutting shaft 42. A rotating mechanism 6 is mounted on the scraper 41 to drive the cutting shaft 42 to rotate. During the movement of the scraper 41, the rotating mechanism 6 drives the cutting shaft 42 to rotate, and the cutting shaft 42 drives the cutters 43 to rotate, which can cut the fiber impurities and prevent the fiber impurities from tangling together.

[0033] Reference Figures 3 to 7 A mounting plate 132 is fixedly connected to the filter pressure plate 13. A filter baffle 14 is slidably mounted on the mounting plate 132. A locking mechanism 7 is installed on the mounting plate 132. The mounting plate 132 has an installation groove. The locking mechanism 7 includes a locking spring 71 fixedly connected to the inner wall of the installation groove and a locking block 72 placed in the installation groove. The locking spring 71 and the locking block 72 are fixedly connected. A locking groove for the locking block 72 to be inserted is opened on the filter baffle 14. An unlocking component for disengaging the locking block 72 from the locking groove is installed on the filter pressure plate 13. When the filter baffle 14 contacts the filter pressure plate 13, the locking spring 71 pushes the locking block 72 to be inserted into the locking groove. When the filter pressure plate 13 is flipped to a vertical position, the filter baffle 14 and the filter pressure plate 13 are still in contact to prevent sewage from entering between the filter baffle 14 and the filter pressure plate 13 when it reacts with the microbial activated sludge.

[0034] Reference Figures 3 to 7 The unlocking mechanism includes an unlocking rod 73 that passes through the filter plate 13. A pull rope 74 is fixedly connected between the unlocking rod 73 and the locking block 72. An iron plate is fixedly connected to the unlocking rod 73. A magnet that works with the iron plate is embedded in the inner wall of the reaction tank 1. When the filter plate 13 is flipped to a horizontal position, the magnet attracts the iron plate, the unlocking rod 73 is released from the filter plate 13, and the unlocking rod 73 drives the locking block 72 to release from the locking groove through the pull rope 74, so that the filter baffle 14 can be separated from the filter plate 13.

[0035] Reference Figures 3 to 6 A drive groove is provided on the inner wall of the reaction tank 1. The drive mechanism 2 includes a drive motor 21 fixedly connected to the top of the reaction tank 1. A drive screw 22 is rotatably installed in the drive groove. The output shaft of the drive motor 21 is fixedly connected to the drive screw 22. A drive block 23 is slidably installed in the drive groove. The drive screw 22 passes through the drive block 23 and is threadedly connected to the drive block 23. The filter plate 13 is rotatably installed on the drive block 23. When the drive motor 21 is started, the drive motor 21 drives the drive screw 22 to rotate. The drive screw 22 drives the drive block 23 to move. The drive block 23 drives the filter plate 13 to move downward.

[0036] Reference Figures 2 to 5The flipping mechanism 3 includes a flipping rack 31 fixedly connected to the inner wall of the reaction tank 1, and a flipping gear 32 fixedly connected to the rotating shaft in the filter plate 13. The flipping rack 31 meshes with the flipping gear 32. During the downward movement of the filter plate 13, the filter plate 13 drives the flipping gear 32 to move. The flipping gear 32 rotates under the action of the flipping rack 31, and the flipping gear 32 drives the filter plate 13 to flip.

[0037] Reference Figures 3 to 9 The bottom of the reaction tank 1 is provided with a sliding groove. The sliding mechanism 5 includes a reciprocating screw 51 rotatably installed in the sliding groove, a sliding block 52 slidably installed in the sliding groove, the reciprocating screw 51 passing through the sliding block 52 and threadedly connected to the sliding block 52, and a scraper 41 fixedly connected to the sliding block 52. A connecting component is installed in the reaction tank 1, and the drive screw 22 drives the reciprocating screw 51 to rotate through the connecting component. The connecting component includes a first rotating shaft 53 rotatably installed in the sliding groove and a second rotating shaft 54 ​​rotatably installed inside the reaction tank 1. The first rotating shaft 53 and the second rotating shaft 54 ​​are connected by a second conveyor belt, and the second rotating shaft 54 ​​is connected to the reciprocating screw 51 by a third conveyor belt. A connecting rod is fixedly connected to the first rotating shaft 53. A drive gear 221 is mounted on the drive screw 22 and rotatably connected to the drive block 23. The drive gear 221 is slidably connected to the drive screw 22 and can mesh with the connecting gear 531. When the filter plate 13 moves to the bottom, the drive gear 221 meshes with the connecting gear 531, the drive screw 22 drives the drive gear 221 to rotate, the drive gear 221 drives the connecting gear 531 to rotate, the connecting gear 531 drives the first rotating shaft 53 to rotate, the first rotating shaft 53 drives the second rotating shaft 54 ​​to rotate, the second rotating shaft 54 ​​drives the reciprocating screw 51 to rotate, the reciprocating screw 51 drives the sliding block 52 to move, and the sliding block 52 drives the scraper 41 to move.

[0038] Reference Figure 9 and Figure 10 The rotating mechanism 6 includes a transmission wheel 61 sleeved on the reciprocating screw 51, the transmission wheel 61 being rotatably connected to the sliding block 52, and the transmission wheel 61 being slidably connected to the reciprocating screw 51. A first bevel gear 62 is rotatably mounted on the scraper 41, and a first conveyor belt is sleeved on the first bevel gear 62 and the transmission wheel 61. A second bevel gear 63 that meshes with the first bevel gear 62 is fixedly connected to the cutting shaft 42. During the rotation of the reciprocating screw 51, the reciprocating screw 51 drives the transmission wheel 61 to rotate, and at the same time, the sliding block 52 drives the transmission wheel 61 to move. The transmission wheel 61 drives the first bevel gear 62 to rotate, the first bevel gear 62 drives the second bevel gear 63 to rotate, and the second bevel gear 63 drives the cutting shaft 42 to rotate.

[0039] Reference Figures 3 to 6 Two sets of sealing mechanisms 8 are installed in both the drive groove and the sliding groove. Taking the sealing mechanism 8 installed in the drive groove as an example, the two sets of sealing mechanisms 8 are located on both sides of the drive block 23. The sealing mechanism 8 includes a sealing shaft 81 rotatably installed in the drive groove and a flexible sealing plate 82 placed in the drive groove. One end of the flexible sealing plate 82 is wrapped around the sealing shaft 81, and the other end of the flexible sealing plate 82 is fixedly connected to the drive block 23. A tension spring is sleeved on the sealing shaft 81. The flexible sealing plate 82 can seal the drive groove and prevent sewage from entering the drive groove.

[0040] The implementation principle of the suspended solids removal device after carpet dyeing wastewater treatment in this embodiment of the invention is as follows: After the wastewater and microbial activated sludge in the reaction tank 1 have been left to stand for a period of time, the drive motor 21 is started. The drive motor 21 drives the drive block 23 to move, and the drive block 23 drives the filter pressure plate 13 to move downward. The filter pressure plate 13 drives the flipping gear 32 to move. The flipping gear 32 rotates under the action of the flipping rack 31. The flipping gear 32 drives the filter pressure plate 13 to flip to a horizontal state, and the two filter pressure plates 13 close at the upper part of the reaction tank 1. At this time, the magnet attracts the iron sheet, the unlocking rod 73 disengages from the filter pressure plate 13, and the unlocking rod 73 drives the locking block 72 to disengage from the locking groove. The filter baffle 14 separates from the filter pressure plate 13, and the filter pressure plate 13 and the filter baffle 14 push the fiber impurities in the wastewater to the filter pressure plate 13. At the bottom of reaction tank 1, the filter plate 13 cleans the inner wall of reaction tank 1. When the filter plate 13 moves to the bottom of reaction tank 1, the filter baffle 14 abuts against the baffle block 16, and the filter baffle 14 contacts the filter plate 13. The guide post 131 is inserted into the second filter hole to seal the filter baffle 14, which can discharge sewage and sludge at the same time. At this time, the locking spring 71 pushes the locking block 72 to insert into the locking groove. When the filter plate 13 moves to the bottom, the drive gear 221 meshes with the connecting gear 531, and the drive screw 22 drives the drive gear 221 to rotate. The drive gear 221 drives the reciprocating screw 51 to rotate. The reciprocating screw 51 drives the scraper 41 to move. The scraper 41 can scrape off the fiber impurities at the bottom of the filter baffle 14 to prevent the fiber impurities from clogging the filter baffle 14.

[0041] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.

Claims

1. A device for removing suspended solids after treatment of carpet dyeing wastewater, comprising a reaction tank (1), characterized in that: The reaction tank (1) is provided with filter plates (13) on both sides of the top. The two filter plates (13) can be flipped and contact each other to seal the reaction tank (1). The filter plates (13) are provided with multiple first filter holes. The reaction tank (1) is equipped with two sets of driving mechanisms (2) for driving the filter plates (13) to move. The reaction tank (1) is equipped with two sets of flipping mechanisms (3) for driving the filter plates (13) to flip.

2. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 1, characterized in that: A filter baffle (14) is slidably installed on the inner side of the filter plate (13). The filter baffle (14) has multiple second filter holes, which are staggered with the multiple first filter holes. A first spring (15) is fixedly connected between the filter plate (13) and the filter baffle (14). A baffle (16) is fixedly connected to the inner wall of the reaction tank (1). The filter baffle (14) can contact the baffle (16). A plurality of guide posts (131) are fixedly connected to the filter plate (13), which are respectively arranged corresponding to the second filter holes.

3. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 2, characterized in that: A scraper (41) is slidably installed at the bottom of the reaction tank (1), and the top of the scraper (41) can contact the bottom of the filter baffle (14). A sliding mechanism (5) for driving the scraper (41) to move is installed in the reaction tank (1).

4. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 3, characterized in that: A cutting shaft (42) is rotatably mounted on the scraper (41), and a plurality of cutters (43) are fixedly connected to the cutting shaft (42). A rotating mechanism (6) for driving the cutting shaft (42) to rotate is mounted on the scraper (41).

5. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 2, characterized in that: A mounting plate (132) is fixedly connected to the filter pressure plate (13). The filter baffle (14) is slidably mounted on the mounting plate (132). A locking mechanism (7) is installed on the mounting plate (132). An installation groove is provided on the mounting plate (132). The locking mechanism (7) includes a locking spring (71) fixedly connected to the inner wall of the installation groove and a locking block (72) placed in the installation groove. The locking spring (71) is fixedly connected to the locking block (72). A locking groove for the locking block (72) to be inserted is provided on the filter baffle (14). An unlocking component for disengaging the locking block (72) from the locking groove is installed on the filter pressure plate (13).

6. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 5, characterized in that: The unlocking component includes an unlocking rod (73) that passes through the filter pressure plate (13), a pull rope (74) that is fixedly connected between the unlocking rod (73) and the locking block (72), an iron plate that is fixedly connected to the unlocking rod (73), and a magnet that works with the iron plate that is embedded in the inner wall of the reaction tank (1).

7. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 2, characterized in that: The inner wall of the reaction tank (1) is provided with a drive groove. The drive mechanism (2) includes a drive motor (21) fixedly connected to the top of the reaction tank (1). A drive screw (22) is rotatably installed in the drive groove. The output shaft of the drive motor (21) is fixedly connected to the drive screw (22). A drive block (23) is slidably installed in the drive groove. The drive screw (22) passes through the drive block (23) and is threadedly connected to the drive block (23). The filter plate (13) is rotatably installed on the drive block (23).

8. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 7, characterized in that: The flipping mechanism (3) includes a flipping rack (31) fixedly connected to the inner wall of the reaction tank (1), and a flipping gear (32) fixedly connected to the rotating shaft in the filter pressure plate (13). The flipping rack (31) meshes with the flipping gear (32).

9. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 7, characterized in that: The bottom of the reaction tank (1) is provided with a sliding groove. The sliding mechanism (5) includes a reciprocating screw (51) rotatably installed in the sliding groove. A sliding block (52) is slidably installed in the sliding groove. The reciprocating screw (51) passes through the sliding block (52) and is threadedly connected to the sliding block (52). The scraper (41) is fixedly connected to the sliding block (52). A connecting component is installed in the reaction tank (1). The driving screw (22) drives the reciprocating screw (51) to rotate through the connecting component.

10. The suspended solids removal device for carpet dyeing wastewater treatment according to claim 9, characterized in that: The rotating mechanism (6) includes a transmission wheel (61) sleeved on a reciprocating screw (51), the transmission wheel (61) being rotatably connected to a sliding block (52), the transmission wheel (61) being slidably connected to the reciprocating screw (51), a first bevel gear (62) being rotatably mounted on the scraper (41), a first conveyor belt being sleeved on the first bevel gear (62) and the transmission wheel (61), and a second bevel gear (63) being fixedly connected to the cutting shaft (42) and meshing with the first bevel gear (62).