Color master batch production wastewater circulating treatment device

By combining the drive steering component and the unclogging and decomposition component, the nozzle blockage in the masterbatch production wastewater recycling treatment device is cleaned using the ejector pin and sodium hypochlorite solution, thus solving the nozzle blockage problem and achieving efficient water pollution treatment.

CN120398281AActive Publication Date: 2025-08-01CHANGZHOU XINZHANJIANG SPECIAL FIBER
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Patent Information

Application Number
CN202510523392.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-08-01
Estimated Expiration
2045-04-24

AI Technical Summary

Technical Problem

Pollutants such as pigments, resins, and additives in the wastewater from masterbatch production adhere to the inner wall of the nozzle and the surface of the flow channel, causing blockages that are difficult to clean and affect the subsequent treatment effect.

Method used

The nozzle employs a drive steering assembly and a disengagement assembly in conjunction with a blockage-clearing and disintegration assembly. It utilizes the mechanical thrust of the ejector pin and sodium hypochlorite solution to decompose the blockage, clearing the internal blockage of the nozzle through a dual mechanism of physical pushing and chemical dissolution.

Benefits of technology

It effectively clears internal blockages in the nozzles, improves cleaning efficiency, ensures the effectiveness of subsequent water pollution treatment, and reduces cleaning time from several hours to several minutes.

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Abstract

The invention relates to the technical field of water pollution treatment, in particular to a color master batch production wastewater circulation treatment device which comprises a water pollution treatment tank, a fixing frame fixed to the top end of the water pollution treatment tank and a microbial agent tank fixed to the outer portion of one side of the water pollution treatment tank. The mechanical thrust of the ejector pin directly acts on a nozzle micropore and blockages in a flow channel, the diameter of the ejector pin is accurately matched with the size of the nozzle micropore, the ejector pin can go deep into a narrow flow channel which is difficult to touch by a traditional tool, solid or semi-solid blockages are mashed and brought out through axial movement, and the problem of cleaning blind areas caused by a complex structure is solved. Compared with a traditional manual disassembling and cleaning mode, ejector pin blockage removing does not need to be stopped to disassemble the spray head, a blockage removing program can be triggered regularly in the equipment operation process, the single blockage removing time is shortened from several hours to several minutes, the cleaning efficiency is improved, and the treatment effect that the spray head sprays a microbial agent to conduct water pollution treatment subsequently is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of water pollution treatment, and specifically to a device for recycling and treating wastewater from masterbatch production. Background Art

[0002] During the production process of masterbatch, a large amount of wastewater with complex components is generated. These wastewaters usually contain pollutants such as pigments, resins, and various additives. Their complex components pose great challenges to wastewater treatment. Traditional treatment methods are difficult to effectively handle. If directly discharged, it will cause water pollution.

[0003] A treatment method characterized by microorganisms has emerged. Its principle is to utilize the metabolic activities of microorganisms to degrade pollutants. With the specific decomposition ability of microorganisms for different pollutants, this method can effectively reduce the concentration of pollutants in the wastewater, purify the water quality, and has advantages such as low cost and little secondary pollution, showing broad application prospects in the field of wastewater treatment.

[0004] However, the existing devices for recycling and treating wastewater from masterbatch production on the current market have exposed a series of key problems that need to be solved urgently during actual operation. Take the bacteria distribution pipe network nozzles as an example. As the usage time gradually accumulates, the sizes of pigment particles contained in the wastewater are different. After some fine particles enter the nozzle interior driven by the water flow, they are likely to adhere to the inner wall of the nozzle and the surface of the internal flow channels; resinous substances are viscous and will gradually adhere to various components of the nozzle during the wastewater circulation process. Over time, adhesions are formed; among various additives, some may chemically react with other components in the wastewater to produce precipitate substances, and these precipitates will also accumulate and adhere inside the nozzle, causing blockage, being difficult to clean thoroughly, and reducing the subsequent treatment effect. Summary of the Invention

[0005] The purpose of the present invention is to provide a device for recycling and treating wastewater from masterbatch production to solve the problems put forward in the above background art, that is, as the usage time gradually accumulates, the sizes of pigment particles contained in the wastewater are different. After some fine particles enter the nozzle interior driven by the water flow, they are likely to adhere to the inner wall of the nozzle and the surface of the internal flow channels; resinous substances are viscous and will gradually adhere to various components of the nozzle during the wastewater circulation process. Over time, adhesions are formed; among various additives, some may chemically react with other components in the wastewater to produce precipitate substances, and these precipitates will also accumulate and adhere inside the nozzle, causing blockage, being difficult to clean thoroughly, and reducing the subsequent treatment effect.

[0006] To achieve the above object, the present invention provides the following technical solution: A circulating treatment device for the wastewater in masterbatch production, comprising a water pollution treatment tank, a fixing frame fixed at the top end of the water pollution treatment tank, and a microbial inoculant tank fixed outside one side of the water pollution treatment tank. A cylinder one is longitudinally fixed outside one side of the fixing frame. A driving steering component is arranged at the output end of the cylinder one. Rotating columns one and two are symmetrically and rotatably arranged inside both sides of the bottom end of the fixing frame. A detachment alignment component is arranged on one side of the rotating column one. A clogging removal and decomposition component is arranged on one side of the rotating column two. The clogging removal and decomposition component includes a limiting frame, a plurality of thimbles, and a sodium hypochlorite solution tank. The limiting frame is horizontally arranged on one side of the top end of the rotating column two. A plurality of the thimbles are longitudinally and fixedly installed at equal intervals inside one side of the bottom end of the limiting frame. The sodium hypochlorite solution tank is fixedly installed outside one side of the top end of the limiting frame.

[0007] Further, an installation frame is fixedly connected to the top end of the fixing frame. An injection pump is fixedly installed at the top end of the installation frame. A guiding pipe is conductively fixed at the input end of the injection pump. The input end of the guiding pipe penetrates and is fixedly installed inside one side of the bottom end of the microbial inoculant tank.

[0008] Further, a positioning frame is horizontally and fixedly installed inside one side of the bottom end of the fixing frame close to the installation frame. A plurality of discharge pipes are fixedly installed through the positioning frame at equal intervals. A connecting pipe is conductively fixedly connected between the input ends of the plurality of discharge pipes. The input end of the connecting pipe is conductively fixedly connected to the output end of the injection pump.

[0009] Further, the driving steering component includes a limiting rack, a gear one, and a gear two. The limiting rack is longitudinally fixedly installed outside the output end of the cylinder one. The gear one and the gear two are symmetrically meshed and connected outside both sides of the limiting rack. One side of the gear one is fixedly installed with one end of the rotating column one. One side of the gear two is fixedly installed with one end of the rotating column two.

[0010] Further, the detachment alignment component includes a plurality of nozzles and a plurality of baffles. The plurality of nozzles are fixedly installed through the rotating column one at equal intervals. One end of each of the plurality of baffles is fixedly installed outside the bottom end of a corresponding discharge pipe. The plurality of baffles are all arranged in a semi-circular arc shape. Flexible sealing rings are fixedly installed at the input ends of the plurality of nozzles. A collection hood is fixedly installed outside one side of the bottom end of the fixing frame close to the plurality of nozzles.

[0011] Furthermore, at the middle position of the top end of the second rotating column, a second cylinder is longitudinally and fixedly installed. The top end of the second cylinder is fixedly installed with the bottom end of one side of the limit frame. A through hole is longitudinally penetrated and conducted inside each side of the second rotating column close to each thimble. The bottom end of each thimble penetrates inside the through hole on the corresponding side. A piston cylinder is longitudinally arranged on the outside of one side of each thimble. One side of each piston cylinder is fixedly installed on the outside of one side of the limit frame through a fixed seat.

[0012] Furthermore, a contact rod is longitudinally arranged at the bottom end of each piston cylinder. A piston block is fixedly installed at the top end of each contact rod. The piston block is slidably and sealingly installed inside the corresponding piston cylinder. A one-way liquid inlet valve pipe is penetrated and conducted at one side of the top end of the piston cylinder. The input end of the one-way liquid inlet valve pipe is penetrated and fixedly installed inside the bottom end of one side of the sodium hypochlorite solution tank.

[0013] Furthermore, a one-way liquid discharge valve pipe is penetrated and conducted at the other side of the top end of the piston cylinder. A conduction cavity is opened inside the top end of each thimble. The output end of the one-way liquid discharge valve pipe is penetrated and fixedly installed inside the conduction cavity at the top end of the thimble.

[0014] Furthermore, a ring groove is surrounded and embedded on the outside of each thimble close to the conduction cavity. A plurality of drainage holes are surrounded and penetrated at equal angles between the bottom wall of the ring groove and the inside of the conduction cavity. A sponge ring is sleeved and fixedly attached to the outer surface of the ring groove.

[0015] Furthermore, a contact block is fixedly installed at the bottom end of the contact rod. The bottom wall of the contact block is in contact and fit with the outer surface of one side of the second rotating column. A retaining ring is fixedly sleeved on the outside of the bottom end of the piston cylinder. A return spring is sleeved on the outside of the contact rod. The two ends of the return spring are respectively fixedly installed on one side of the contact block and the retaining ring.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] 1. Through the coordinated operation of the driving steering component and the disengaging alignment component, several nozzles can be synchronously rotated and disengaged from several discharge pipes during cleaning, ensuring that the impurities in the subsequent clogging removal do not touch the inside of the discharge pipes and will be directly discharged and collected, guaranteeing the effectiveness of clogging removal. At the same time, in coordination with the synchronous operation of the clogging removal decomposition component, the mechanical thrust of the ejector pin directly acts on the blockages in the nozzle micropores and flow channels. The diameter of the ejector pin is precisely matched with the size of the nozzle micropores, and it can penetrate into narrow flow channels that are difficult to reach by traditional tools. By means of axial movement, solid or semi-solid blockages are mashed, pushed, or carried out, solving the problem of cleaning blind spots caused by complex structures. Compared with the traditional manual disassembly and cleaning method, the ejector pin clogging removal does not require shutting down the machine to disassemble the nozzles. The clogging removal program can be regularly triggered during the operation of the equipment, shortening the single clogging removal time from several hours to several minutes, greatly improving the cleaning efficiency, and ensuring the treatment effect of subsequent nozzle spraying of microbial agents for water pollution treatment.

[0018] 2. When the clogging removal decomposition component operates for clogging removal, the sponge ring wrapped around the surface of the ejector pin can adsorb sodium hypochlorite solution. When the ejector pin is inserted into the nozzle for clogging removal, the sponge ring comes into full contact with the inner wall of the nozzle and the surface of the flow channel, releasing sodium hypochlorite solution. As a strong oxidant, sodium hypochlorite can quickly decompose residual resin polymers or other organic adhesives, destroying their molecular structures and converting them from solid or colloidal states into liquid or small molecule substances. When microbial agents are added to the nozzles subsequently, the decomposition products are carried out by the flow impact force of the agents, enabling the device to effectively clean the residual blockages inside the nozzles through a dual mechanism of physical extrusion and chemical dissolution, ensuring the treatment effect of subsequent water pollution. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0020] Figure 2 is a three-dimensional structure schematic diagram of the connection pipe and the discharge pipe installation of the present invention;

[0021] Figure 3 is a three-dimensional structure schematic diagram of the installation of gear one and rotating column one of the present invention;

[0022] Figure 4 is a three-dimensional structure schematic diagram of the installation of the nozzle and the flexible sealing ring of the present invention;

[0023] Figure 5 is of the present invention Figure 2 is an enlarged structure schematic diagram at A in

[0024] Figure 6 is of the present invention Figure 5 is an enlarged structure schematic diagram at B in

[0025] Figure 7Schematic diagram of the partial sectional view installation of the piston cylinder and piston block of the present invention;

[0026] Figure 8 Schematic diagram of the partial sectional view installation of the thimble and the second rotating column of the present invention;

[0027] Figure 9 For the present invention Figure 8 Schematic diagram of the enlarged structure at position C in

[0028] Figure 10 Schematic diagram of the side view installation of the fixing frame and the collection cover of the present invention;

[0029] Figure 11 Schematic diagram of the synchronous rotation demonstration of the first rotating column and the second rotating column of the present invention.

[0030] In the drawings, the list of components represented by each reference numeral is as follows: 1. Water pollution treatment tank; 2. Fixing frame; 3. Mounting frame; 4. Microbial inoculant tank; 5. Injection pump; 6. Guide pipe; 7. Cylinder 1; 8. Limit rack; 9. Gear 1; 10. Gear 2; 11. First rotating column; 12. Second rotating column; 13. Connecting pipe; 14. Positioning frame; 15. Discharge pipe; 16. Sprayer; 17. Flexible sealing ring; 18. Baffle; 19. Cylinder 2; 20. Limit frame; 21. Thimble; 22. Through hole; 23. Piston cylinder; 24. Contact rod; 25. Contact block; 26. Piston block; 27. Retaining ring; 28. Return spring; 29. Sodium hypochlorite solution tank; 30. One-way liquid inlet valve pipe; 31. One-way liquid discharge valve pipe; 32. Conducting cavity; 33. Annular groove; 34. Sponge ring; 35. Drainage hole; 36. Collection cover. Detailed implementation manners

[0031] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0032] Example 1: Please refer to Figure 1 - Figure 5, A circulating treatment device for the wastewater in masterbatch production, comprising a water pollution treatment tank 1, a fixing frame 2 fixed at the top end of the water pollution treatment tank 1, and a microbial inoculant tank 4 fixed outside one side of the water pollution treatment tank 1. A cylinder one 7 is longitudinally fixed outside one side of the fixing frame 2, and a driving steering component is arranged at the output end of the cylinder one 7. Rotating columns one 11 and two 12 are symmetrically and rotatably arranged inside both sides of the bottom end of the fixing frame 2. A detachment and alignment component is arranged on one side of the rotating column one 11, and a clogging removal and decomposition component is arranged on one side of the rotating column two 12; The clogging removal and decomposition component includes a limiting frame 20, a plurality of thimbles 21, and a sodium hypochlorite solution tank 29. The limiting frame 20 is horizontally arranged on one side of the top end of the rotating column two 12, and a plurality of thimbles 21 are fixedly installed longitudinally at equal intervals inside one side of the bottom end of the limiting frame 20. The sodium hypochlorite solution tank 29 is fixedly installed outside one side of the top end of the limiting frame 20.

[0033] An installation frame 3 is fixedly connected to the top end of the fixing frame 2, an injection pump 5 is fixedly installed at the top end of the installation frame 3, a guiding pipe 6 is conductively fixed at the input end of the injection pump 5, and the input end of the guiding pipe 6 penetrates and is fixedly installed inside one side of the bottom end of the microbial inoculant tank 4.

[0034] A positioning frame 14 is horizontally fixedly installed inside one side of the bottom end of the fixing frame 2 close to the installation frame 3. A plurality of discharge pipes 15 are fixedly penetrated and installed at equal intervals inside the positioning frame 14. A connecting pipe 13 is conductively fixedly connected between the input ends of the plurality of discharge pipes 15, and the input end of the connecting pipe 13 is conductively fixedly connected to the output end of the injection pump 5.

[0035] The driving steering component includes a limiting rack 8, a gear one 9, and a gear two 10. The limiting rack 8 is longitudinally fixedly installed outside the output end of the cylinder one 7. The gear one 9 and the gear two 10 are symmetrically meshed and connected outside both sides of the limiting rack 8. One side of the gear one 9 is fixedly installed with one end of the rotating column one 11, and one side of the gear two 10 is fixedly installed with one end of the rotating column two 12.

[0036] The detachment and alignment component includes a plurality of nozzles 16 and a plurality of baffles 18. A plurality of nozzles 16 are fixedly penetrated and installed at equal intervals inside the rotating column one 11. One end of each of the plurality of baffles 18 is fixedly installed outside the bottom end of a corresponding discharge pipe 15. Each of the plurality of baffles 18 is arranged in a semi-circular arc shape. Flexible sealing rings 17 are fixedly installed at the input ends of the plurality of nozzles 16. A collecting cover 36 is fixedly installed outside one side of the bottom end of the fixing frame 2 close to the plurality of nozzles 16.

[0037] Specifically, through the limitation of the flexible sealing ring 17 and the semi-circular arc-shaped baffle 18, when the nozzle 16 rotates and resets after the subsequent clogging removal, it can accurately perform a sealed docking with the output end of the discharge pipe 15, ensuring the subsequent liquid supply effect.

[0038] At the middle position of the top end of the second rotating column 12, a second cylinder 19 is longitudinally and fixedly installed. The top end of the second cylinder 19 is fixedly installed with the bottom end side of the limit frame 20. A through hole 22 is penetrated and conducted inside each side of the second rotating column 12 close to each thimble 21. The bottom end of each thimble 21 penetrates inside the corresponding through hole 22.

[0039] In this embodiment, when the device is used for a certain period of time as a whole and it is necessary to clean and unblock a number of nozzles 16 inside the water pollution treatment tank 1 of the wastewater recycling treatment device, at this time, the injection pump 5 is controlled to stop working. Then, by controlling the start of the first cylinder 7 to operate, the limit rack 8 is driven to retract by the operation of the first cylinder 7. When the limit rack 8 retracts and moves, it will drive the first gear 9 and the second gear 10 engaged on both sides to rotate synchronously. Through the rotation of the first gear 9 and the second gear 10, the first rotating column 11 and the second rotating column 12 on one side are driven to rotate synchronously. When the first rotating column 11 rotates, it will drive a number of nozzles 16 fixed inside it to rotate 90 degrees synchronously, changing from a longitudinal placement to a transverse placement, so that when cleaning, a number of nozzles 16 can be rotated synchronously to disengage from a number of discharge pipes 15, ensuring that the impurities at the subsequent cleaning and unblocking positions will not touch the inside of the discharge pipes 15 and will be directly discharged and collected, ensuring the effectiveness of cleaning and unblocking. At the same time, it can also ensure that a number of nozzles 16 rotate to align with a number of thimbles 21 on the side, ensuring the accuracy of subsequent cleaning and unblocking alignment. At the same time, it is ensured that after the subsequent cleaning and unblocking is completed and reset, a number of thimbles 21 will not be aligned with a number of nozzles 16, and the two are placed parallel to each other without interference, avoiding the situation that the microbial agent will not be sprayed and adhered to the surface of the thimbles 21 when the subsequent nozzles 16 discharge the microbial agent, ensuring the overall subsequent use effect.

[0040] It should also be noted that when the second rotating column 12 rotates, it will drive the second cylinder 19, the limit frame 20 and a number of thimbles 21 to rotate 90 degrees synchronously, so that a number of thimbles 21 are placed in alignment with a number of nozzles 16 (as Figure 11 shown). After the alignment is completed, by controlling the second cylinder 19 to start, the second cylinder 19 drives the limit frame 20 and a number of thimbles 21 to move a certain distance synchronously, so that a number of thimbles 21 are inserted into a number of nozzles 16 in alignment. In this way, the mechanical thrust of the thimbles 21 directly acts on the blockages in the micropores and flow channels of the nozzles 16. The diameter of the thimbles 21 is precisely matched with the size of the micropores of the nozzles 16, and it can penetrate into the narrow flow channels that are difficult to reach by traditional tools. The solid or semi-solid blockages are mashed, pushed or taken out through axial movement. At the same time, the taken-out blockages fall into the internal part of the collection cover 36 on one side, solving the problem of cleaning blind spots caused by complex structures. Compared with the traditional manual disassembly and cleaning method, the thimbles 21 do not need to stop the machine to disassemble the nozzles 16 for cleaning and unblocking. The cleaning and unblocking program can be automatically triggered regularly during the operation of the equipment, shortening the single cleaning and unblocking time from several hours to several minutes, greatly improving the cleaning efficiency, and ensuring the treatment effect of subsequent spraying of microbial agents by the nozzles 16 for water pollution treatment.

[0041] At the same time, after the overall blockage clearing is completed, the cylinder 2 19 can be controlled to extend and reset, thereby driving several ejectors 21 to disengage from the inside of the nozzle 16, and then the limit rack 8 can be driven to extend and reset by controlling the cylinder 1 7, so that the gear 1 9 and the gear 2 10 drive the rotating column 11 and the rotating column 2 12 to rotate 90 degrees in the opposite direction to complete the blockage clearing. Then, the injection pump 5 is started again, and the conduction guidance of the guide pipe 6 and the conduction connection of the connecting pipe 13 with the several discharge pipes 15 are coordinated, so that the injection pump 5 can inject the microbial agent in the microbial agent tank 4 into the inside of the water pollution treatment tank 1 when it is running, so as to continue to treat the masterbatch production wastewater inside the water pollution treatment tank 1.

[0042] Example 2: Please refer to Figure 6 - Figure 10 This embodiment further illustrates the first embodiment. A piston cylinder 23 is longitudinally provided on the outside of one side of each ejector pin 21 . One side of the piston cylinder 23 is fixedly mounted on the outside of one side of the limiting frame 20 through a fixing seat.

[0043] The bottom end of the piston cylinder 23 is longitudinally provided with a resistance rod 24, and the top end of the resistance rod 24 is fixedly installed with a piston block 26. The piston block 26 is slidingly sealed and installed inside the piston cylinder 23 on the corresponding side. A one-way liquid inlet valve pipe 30 is penetrated and connected on one side of the top end of the piston cylinder 23. The input end of the one-way liquid inlet valve pipe 30 is fixedly installed inside the bottom side of the sodium hypochlorite solution tank 29.

[0044] A one-way discharge valve tube 31 is provided through the other side of the top of the piston cylinder 23. A conduction cavity 32 is provided inside the top of each ejector pin 21. The output end of the one-way discharge valve tube 31 is fixedly installed inside the conduction cavity 32 at the top of the ejector pin 21.

[0045] An annular groove 33 is embedded around the outside of one side of each ejector pin 21 close to the conducting cavity 32 , and a plurality of drainage holes 35 are arranged at equal angles around and through the bottom wall of the annular groove 33 and the interior of the conducting cavity 32 . A sponge ring 34 is fitted and fixed on the outer surface of the annular groove 33 .

[0046] A resistance block 25 is fixedly installed at the bottom end of the resistance rod 24, and the bottom wall of the resistance block 25 is in contact with the outer surface of one side of the rotating column 12. A retaining ring 27 is fixedly sleeved on the outside of the bottom end of the piston cylinder 23, and a return spring 28 is sleeved on the outside of the resistance rod 24. The two ends of the return spring 28 are respectively fixedly installed on one side of the resistance block 25 and the retaining ring 27.

[0047] In this embodiment, when the second cylinder 19 drives the limit frame 20 and the ejector pin 21 to move to physically contact and clear the blockage of the nozzle 16, the contact rod 24 will be resisted by the second rotating column 12 when the limit frame 20 moves, thereby driving the piston block 26 to perform a squeezing movement inside the piston cylinder 23. As a result, the sodium hypochlorite solution previously drawn into the piston cylinder 23 is squeezed into the conduction cavity 32 inside the ejector pin 21 through the existing one-way liquid discharge valve pipe 31. Then, through the conduction of a number of drainage holes 35, the sponge ring 34 can adsorb the sodium hypochlorite solution in the conduction cavity 32, so that when the subsequent ejector pin 21 is inserted into the nozzle 16 for blockage clearance, the sponge ring 34 is in full contact with the inner wall of the nozzle 16 and the surface of the flow channel, releasing the sodium hypochlorite solution. As a strong oxidant, sodium hypochlorite can quickly decompose the residual resin polymer or other organic adhesives, destroy their molecular structure, and convert them from solid or colloidal state to liquid or small molecule substances. When the subsequent microbial agent is added to the nozzle 16, the decomposition products are carried out by the flow impact force of the agent, so that the device can effectively clean the residual blockage inside the nozzle 16 through the dual mechanisms of physical extrusion and chemical dissolution, ensuring the subsequent water pollution treatment effect.

[0048] It should also be noted that when the second cylinder 19 drives the limit frame 20 and the ejector pin 21 to move back to the reset position, at this time, with the rebound of the reset spring 28, the contact rod 24 drives the piston block 26 to perform a suction movement inside the piston cylinder 23. With the conduction of the existing one-way liquid inlet valve pipe 30, when the piston block 26 performs suction inside the piston cylinder 23, a certain dose of the existing sodium hypochlorite solution previously injected into the sodium hypochlorite solution tank 29 can be extracted into the piston cylinder 23 to ensure the subsequent secondary cleaning and liquid discharge operation, enabling the whole to be recycled, and the overall use convenience is high.

[0049] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0050] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A circulating treatment device for the wastewater in masterbatch production, comprising a water pollution treatment tank (1), a fixing frame (2) fixed at the top of the water pollution treatment tank (1), and a microbial inoculant tank (4) fixed outside one side of the water pollution treatment tank (1), characterized in that: One side of the outer part of the fixing frame (2) is longitudinally fixed with a first cylinder (7), the output end of the first cylinder (7) is provided with a driving and steering component, both sides of the inner part at the bottom end of the fixing frame (2) are symmetrically and rotatably provided with a first rotating column (11) and a second rotating column (12), one side of the first rotating column (11) is provided with a disengaging and aligning component, and one side of the second rotating column (12) is provided with a blockage clearing and decomposing component; The blockage clearing and decomposing component includes a limiting frame (20), a plurality of ejector pins (21) and a sodium hypochlorite solution tank (29). The limiting frame (20) is horizontally arranged on one side of the top end of the second rotating column (12). A plurality of the ejector pins (21) are longitudinally and fixedly installed at equal intervals inside one side of the bottom end of the limiting frame (20). The sodium hypochlorite solution tank (29) is fixedly installed on the outer part of one side of the top end of the limiting frame (20).

2. The color masterbatch production wastewater recycling treatment device according to claim 1, characterized in that: The top end of the fixing frame (2) is fixedly connected with a mounting frame (3). An injection pump (5) is fixedly installed at the top end of the mounting frame (3). The input end of the injection pump (5) is conductively fixed with a guiding pipe (6). The input end of the guiding pipe (6) penetrates and is fixedly installed inside one side of the bottom end of the microbial inoculum tank (4).

3. The color masterbatch production wastewater recycling treatment device according to claim 2, characterized in that: Inside one side of the bottom end of the fixing frame (2) close to the mounting frame (3), a positioning frame (14) is horizontally and fixedly installed. A plurality of discharge pipes (15) are fixedly penetrated at equal intervals inside the positioning frame (14). A connecting pipe (13) is conductively fixedly connected between the input ends of the plurality of discharge pipes (15). The input end of the connecting pipe (13) is conductively fixedly connected with the output end of the injection pump (5).

4. A color masterbatch production wastewater recycling treatment device according to claim 1, characterized in that: The driving and steering component includes a limiting rack (8), a first gear (9) and a second gear (10). The limiting rack (8) is longitudinally fixedly installed outside the output end of the first cylinder (7). The first gear (9) and the second gear (10) are symmetrically meshed and connected outside both sides of the limiting rack (8). One side of the first gear (9) is fixedly installed with one end of the first rotating column (11). One side of the second gear (10) is fixedly installed with one end of the second rotating column (12).

5. A masterbatch production wastewater recycling treatment device according to claim 3, characterized in that: The disengaging and aligning component includes a plurality of spray heads (16) and a plurality of baffle plates (18). The plurality of spray heads (16) are fixedly penetrated at equal intervals inside the first rotating column (11). One end of each of the plurality of baffle plates (18) is fixedly installed outside the bottom end of a corresponding discharge pipe (15). The plurality of baffle plates (18) are all arranged in a semi-circular arc shape. Flexible sealing rings (17) are fixedly installed at the input ends of the plurality of spray heads (16). A collecting cover (36) is fixedly installed outside one side of the bottom end of the fixing frame (2) close to the plurality of spray heads (16).

6. The color masterbatch production wastewater recycling treatment device according to claim 1, wherein: At the middle position of the top end of the second rotating column (12), a second cylinder (19) is longitudinally and fixedly installed. The top end of the second cylinder (19) is fixedly installed with the bottom end side of the limit frame (20). Inside one side of each second rotating column (12) close to each thimble (21), a through hole (22) is penetrated and conducted. The bottom end of each thimble (21) penetrates into the inside of the corresponding through hole (22). Outside one side of each thimble (21), a piston cylinder (23) is longitudinally arranged. One side of each piston cylinder (23) is fixedly installed on the outside of one side of the limit frame (20) through a fixing seat.

7. The color masterbatch production wastewater recycling treatment device according to claim 6, characterized in that: At the bottom end of each piston cylinder (23), a contact rod (24) is longitudinally arranged. At the top end of each contact rod (24), a piston block (26) is fixedly installed. The piston block (26) is slidably and sealingly installed inside the corresponding piston cylinder (23). At one side of the top end of the piston cylinder (23), a one-way liquid inlet valve pipe (30) is penetrated and conducted. The input end of the one-way liquid inlet valve pipe (30) is fixedly installed through the bottom end side inside of the sodium hypochlorite solution tank (29).

8. A masterbatch production wastewater recycling treatment device according to claim 7, characterized in that: At the other side of the top end of the piston cylinder (23), a one-way liquid discharge valve pipe (31) is penetrated and conducted. Inside the top end of each thimble (21), a conduction cavity (32) is opened. The output end of the one-way liquid discharge valve pipe (31) is fixedly installed through the inside of the conduction cavity (32) at the top end of the thimble (21).

9. The color masterbatch production wastewater recycling treatment device according to claim 8, wherein: Outside one side of each thimble (21) close to the conduction cavity (32), an annular groove (33) is surrounded and embedded. Between the bottom wall of the annular groove (33) and the inside of the conduction cavity (32), a plurality of drainage holes (35) are surrounded and penetrated at equal angles. A sponge ring (34) is sleeved and fitted on the outer surface of the annular groove (33).

10. A color masterbatch production wastewater recycling treatment device according to claim 7, characterized in that: At the bottom end of the contact rod (24), a contact block (25) is fixedly installed. The bottom wall of the contact block (25) is in contact and fit with the outer surface of one side of the second rotating column (12). Outside the bottom end of the piston cylinder (23), a retaining ring (27) is fixedly sleeved. Outside the contact rod (24), a return spring (28) is sleeved. The two ends of the return spring (28) are respectively fixedly installed on one side of the contact block (25) and the retaining ring (27).

Citation Information

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