Integrated advanced treatment activated carbon filter water purification equipment

Through the integrated deep-treat activated carbon filter equipment, the exhaust pipes, electric exhaust valves, activated carbon conveying cranes and dispersed parts are used to solve the problems of gas blockage in the traditional filter tank and uneven filter materials, and efficient and uniform sewage filtration and filter material use are achieved.

CN120346589APending Publication Date: 2025-07-22NANFANG PUMP SMART WATER(HANGZHOU) TECH CO LTD
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Patent Information

Application Number
CN202510540445.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-07-22

AI Technical Summary

Technical Problem

Traditional civilian activated carbon filters are prone to gas blockage during operation, which affects the filtration efficiency and effect, and the uneven use of the filter material layer leads to poor filtration effect.

Method used

The integrated deep-treated activated carbon filter device is used to discharge gas through the exhaust pipe and the electric exhaust valve, and the filter material is agitated by the activated carbon conveying twist and the dispersion part. The synchronous belt transmission assembly and the reciprocating moving assembly are used to achieve uniform transportation and dispersion of the activated carbon filter material, forming a low-pressure space to absorb gas and reduce gas blockage.

Benefits of technology

Effectively reduce gas blockage, improve the filter efficiency of the filter tank, extend the service life of the filter material, ensure the normal operation of the filter tank, and use the filter material evenly to maintain the efficient filtration effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of sewage treatment, in particular to integrated advanced treatment activated carbon filter water purification equipment. The device comprises a filter tank, a water distribution assembly is arranged on the filter tank, a water inlet pipe is arranged on the water distribution assembly, the interior of the filter tank is divided into three independent cavities through two overflowing plates, and a water inlet V-shaped groove is formed in the filter tank; an activated carbon filter material layer, a bearing layer-fine gravel layer, a bearing layer-coarse gravel layer and a filter material supporting plate are laid in the two cavities located on the two sides respectively from top to bottom, and a filter head is arranged on the filter material supporting plate. By means of the exhaust pipe, the electric exhaust valve, stirring of the activated carbon conveying auger and gas absorption of a water supply pipe network, the phenomenon of gas blockage of the activated carbon filter material layer is reduced, and normal filtering operation of the filter is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of sewage treatment, and in particular to an integrated advanced treatment activated carbon filter water purification device. Background Art

[0002] Sewage treatment is a process of purifying sewage to meet the water quality requirements for discharging into a certain water body or reusing it. Sewage is generated in people's daily lives and production processes. If this sewage is discharged randomly, it will pollute the environment. Therefore, it needs to be professionally treated before being discharged.

[0003] In current sewage treatment processes, sewage needs to be transported into an activated carbon filter for filtration to remove some impurities. However, in actual applications of traditional civil engineering activated carbon filters, during the process of filtering sewage, as the operation cycle of the filter is too long, anaerobic decomposition may occur inside the filter layer, generating gas. These gases accumulate in the filter layer, resulting in an air resistance phenomenon. Or when the water depth above the filter layer is insufficient, a negative water head phenomenon may occur in the filter media layer. At this time, a vacuum state appears in the filter media layer of the filter layer, causing the dissolved gases in the water to escape and accumulate in the filter layer. These accumulated air occupies the pores originally used to intercept sludge, leading to the occurrence of the air resistance phenomenon. With the generation of the air resistance phenomenon, it will affect the filtration efficiency and filtration effect of the filter. Summary of the Invention

[0004] In view of the problems in the background art, an integrated advanced treatment activated carbon filter water purification device is proposed.

[0005] The present invention provides an integrated advanced treatment activated carbon filter water purification device, including a filter. A water distribution assembly is arranged on the filter, and a water inlet pipe is arranged on the water distribution assembly. The filter is divided into three independent chambers by two flow-through plates. An inlet water V-shaped groove is installed on the filter. In the two chambers on both sides, an activated carbon filter media layer, a support layer - fine gravel layer, a support layer - coarse gravel layer, and a filter media support plate are laid from top to bottom respectively. Filter nozzles are arranged on the filter media support plate, and an air distribution pipe network is arranged below the filter nozzles. A water outlet pipe is arranged on the filter, and a backwash pipe is arranged on the water outlet pipe. A sewage discharge inclined plate is installed on the outer walls of the two flow-through plates close to each other. A sewage discharge pipe is installed on the filter, and an exhaust pipe is installed on the filter. An electric exhaust valve is arranged on the exhaust pipe. Through the combined action of the exhaust pipe and the electric exhaust valve, the gas generated by the activated carbon filter media layer can be discharged to avoid the occurrence of air blockage.

[0006] Preferably, activated carbon delivery barrel tubes are provided on both of the overcurrent plates, activated carbon delivery augers are provided in both of the activated carbon delivery barrel tubes, a rotating motor is installed on the filter tank, the rotating motor drives the two activated carbon delivery augers to rotate through a synchronous belt drive assembly, two openings are formed on the outer wall of the activated carbon delivery barrel tube for the discharge and intake of activated carbon filter media, an exhaust pipe network is installed on the two activated carbon delivery barrel tubes, and the exhaust pipe network is communicated with the exhaust pipe.

[0007] Preferably, the activated carbon delivery barrel tube is arranged in an inclined shape, and the opening on the activated carbon delivery barrel tube close to the water distribution assembly is the inlet of the activated carbon filter media.

[0008] Preferably, a plurality of dispersing members are installed on the spiral blades of the activated carbon delivery auger for dispersing the activated carbon filter media entering the activated carbon delivery barrel tube.

[0009] Preferably, a reciprocating movement assembly is provided on the filter tank, one of the activated carbon delivery augers drives the reciprocating movement assembly to perform reciprocating movement through a gear drive assembly, a transfer adjustment cylinder is installed on the filter tank, a gas pushing member is provided on the transfer adjustment cylinder, the gas pushing member performs reciprocating movement in the transfer adjustment cylinder under the action of the reciprocating movement assembly, a water supply pipe network is provided on the filter tank, the water supply pipe network is communicated with the transfer adjustment cylinder, a water guide pipe network is installed on the transfer adjustment cylinder, the water guide pipe network is communicated with the exhaust pipe network, and one-way valves are provided on both the water supply pipe network and the water guide pipe network.

[0010] Preferably, a water inlet head is provided on the water supply pipe network, the water inlet head is located below the filter head, and a filter plate is provided on the water inlet head for filtering the water flowing into the water inlet head.

[0011] Preferably, the reciprocating movement assembly is composed of a rotating column, a rotating disk, a fixed rod and a rotating bar, the rotating column is rotatably installed on the filter tank, the rotating disk is installed at one end of the rotating column, the fixed rod is installed on the rotating disk, the fixed rod is eccentrically arranged, and the rotating bar is rotatably installed on the fixed rod.

[0012] Preferably, the gear drive assembly is composed of two bevel gears, one of the bevel gears is sleeved on one end of the corresponding activated carbon delivery auger, the other bevel gear is sleeved on the rotating column, and the two bevel gears are meshed and connected.

[0013] Preferably, the gas pushing member is composed of a pushing rod and a piston, the pushing rod is slidably installed on the transfer adjustment cylinder, the piston is slidably installed on the inner wall of the transfer adjustment cylinder, the piston is connected to one end of the pushing rod, and the pushing rod is rotatably connected to the rotating bar.

[0014] Preferably, during operation, when the piston moves within the transfer and adjustment cylinder, when the piston contracts, the water flow in the filter tank is introduced into the transfer and adjustment cylinder through the water supply pipe network. When the piston extends, the water flow in the transfer and adjustment cylinder is discharged into the exhaust pipe network through the water guide pipe network, and the activated carbon filter material moving within the activated carbon delivery pipe cylinder is flushed and dispersed.

[0015] Compared with the prior art, the present invention has the following beneficial technical effects: Through the combined action of the exhaust pipe and the electric exhaust valve, the gas generated during the filtration process of the filter tank can be discharged, reducing the occurrence of air blockage; Through the action of the rotating motor and the activated carbon delivery auger, the activated carbon filter material within the activated carbon filter material layer can be transported. During this process, the combined action with the dispersing member can agitate and disperse the activated carbon filter material, and the gas generated during this process is discharged into the exhaust pipe and then discharged under the action of the exhaust pipe network, thereby further reducing the occurrence of air blockage; Through the rotation of the activated carbon delivery auger, under the action of the synchronous belt drive assembly and the reciprocating movement assembly, the air pushing member reciprocates within the transfer and adjustment cylinder. Thus, under the action of the water supply pipe network and the water guide pipe network, the water flow below the filter head can be absorbed and transported into the activated carbon delivery pipe cylinder, thereby forming a low-pressure space below the activated carbon filter material layer, absorbing the gas within the activated carbon filter material layer along with the water flow, further reducing the occurrence of air blockage. After the absorbed water flow and gas are transported into the activated carbon delivery pipe cylinder, the gas is discharged through the exhaust pipe network, and the water flow acts on the moving activated carbon filter material, improving the dispersing effect and indirectly reducing the occurrence of air blockage in the activated carbon filter material layer. During this process, the water flow and gas will flow through the filter head, cleaning the filter head and reducing the probability of filter head blockage, ensuring the normal use of the filter tank; Moreover, by driving the movement of the activated carbon filter material with the activated carbon delivery auger, the activated carbon filter material near the water distribution assembly can be replaced with the activated carbon filter material far from the water distribution assembly, enabling the activated carbon filter material to filter the sewage more evenly, and avoiding the premature absorption saturation of the activated carbon filter material near the water distribution assembly, resulting in a deterioration of the sewage filtration effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is another schematic structural diagram of the present invention; Figure 3 is a schematic side sectional view of the present invention; Figure 4 is a partial schematic structural diagram of the present invention; Figure 5 is a schematic structural diagram of the activated carbon delivery auger in the present invention; Figure 6 This is a schematic structural diagram of the reciprocating moving component and the transfer and adjustment cylinder in the present invention.

[0017] Reference numerals: 1, filter tank; 2, water distribution assembly; 3, water inlet pipe; 4, water inlet V-shaped groove; 5, flow-through plate; 6, sewage discharge inclined plate; 7, exhaust pipe; 8, electric exhaust valve; 9, activated carbon filter layer; 10, support layer - fine gravel layer; 11, support layer - coarse gravel layer; 12, filter support plate; 13, filter head; 14, aeration pipe network; 15, water outlet pipe; 16, backwash pipe; 17, activated carbon delivery pipe cylinder; 18, activated carbon delivery auger; 19, rotating motor; 20, exhaust pipe network; 21, synchronous belt drive assembly; 22, gear drive assembly; 23, reciprocating moving component; 24, transfer and adjustment cylinder; 25, air pushing component; 26, water supply pipe network; 27, water guide pipe network; 28, overflow pipe; 29, sewage discharge pipe; 30, dispersing component. Detailed implementation manners

[0018] As Figures 1-6 shown, an integrated advanced treatment activated carbon filter water purification device proposed by the present invention includes: a filter tank 1, a water distribution assembly 2 is arranged on the filter tank 1, a water inlet pipe 3 is arranged on the water distribution assembly 2, an overflow pipe 28 is arranged on the water distribution assembly 2, and when the input water flow is excessive, the water flow can be discharged through the overflow pipe 28. The filter tank 1 is divided into three independent chambers by two flow-through plates 5. An inlet water V-shaped groove 4 is installed on the filter tank 1. In the two chambers on both sides, an activated carbon filter layer 9, a support layer - fine gravel layer 10, a support layer - coarse gravel layer 11 and a filter support plate 12 are laid from top to bottom respectively. A filter head 13 is arranged on the filter support plate 12, and an aeration pipe network 14 is arranged below the filter head 13. A water outlet pipe 15 is arranged on the filter tank 1, and a backwash pipe 16 is arranged on the water outlet pipe 15. A sewage discharge inclined plate 6 is installed on the outer walls of the two flow-through plates 5 close to each other. A sewage discharge pipe 29 is installed on the filter tank 1. Through the arrangement of the sewage discharge inclined plate 6 and the sewage discharge pipe 29, the wastewater and impurities generated during the backwashing process can be discharged from the filter tank 1. An exhaust pipe 7 is installed on the filter tank 1, and an electric exhaust valve 8 is arranged on the exhaust pipe 7. Through the combined action of the exhaust pipe 7 and the electric exhaust valve 8, the gas generated by the activated carbon filter layer 9 can be discharged to avoid air blockage. Two maintenance manholes are opened on the filter tank 1, and through the two maintenance manholes, operators can conveniently perform maintenance. The two maintenance manholes are in a closed state under normal circumstances.

[0019] As Figures 1-6As shown in the figure, activated carbon delivery pipe cylinders 17 are provided on both of the two overcurrent plates 5. The material used for the activated carbon delivery pipe cylinders 17 is the same as that of the overcurrent plates 5. Activated carbon delivery augers 18 are provided inside both of the two activated carbon delivery pipe cylinders 17. One end of each of the two activated carbon delivery augers 18 extends outside the filter tank 1 and is rotatably connected to the filter tank 1. The rotation is provided with a sealed bearing. A rotation motor 19 is installed on the filter tank 1. The rotation motor 19 drives the two activated carbon delivery augers 18 to rotate through a synchronous belt drive assembly 21. The synchronous belt drive assembly 21 is composed of existing technologies, that is, it is composed of two synchronous pulleys and a synchronous belt. The two synchronous pulleys are respectively sleeved on the two activated carbon delivery augers 18, and the synchronous belt is sleeved on the two synchronous pulleys. Thus, the rotation motor 19 can drive the two activated carbon delivery augers 18 to rotate synchronously. Two openings are provided on the outer wall of the activated carbon delivery pipe cylinder 17 for the discharge and intake of activated carbon filter materials. An exhaust pipe network 20 is installed on the two activated carbon delivery pipe cylinders 17. The exhaust pipe network 20 is communicated with the exhaust pipe 7. An electric exhaust valve 8 is also provided on the exhaust pipe network 20 for controlling the entry of gas into the exhaust pipe 7.

[0020] As Figures 1-6 shown in the figure, the activated carbon delivery pipe cylinder 17 is arranged in an inclined shape, and the opening on the activated carbon delivery pipe cylinder 17 close to the water distribution assembly 2 is the inlet of the activated carbon filter material. One end of the activated carbon delivery pipe cylinder 17 close to the water distribution assembly 2 is lower. Thus, the positions of the activated carbon filter materials close to the water distribution assembly 2 and far from the water distribution assembly 2 can be replaced. Since the sewage flows from the water distribution assembly 2 into the filter tank 1, the sewage impurities discharged near the water distribution assembly 2 are more to a certain extent. This will cause the activated carbon filter materials near the water distribution assembly 2 to become saturated prematurely, while the activated carbon filter materials far from the water distribution assembly 2 are not saturated. In such a case, replacing the activated carbon filter materials will cause a certain amount of resource waste and increase the cost of sewage treatment. Therefore, after replacing the activated carbon filter materials, the service life of the activated carbon filter material layer 9 can be extended, and at the same time, the sewage can be filtered better.

[0021] As Figures 1-6 shown in the figure, a plurality of dispersing members 30 are installed on the spiral blades of the activated carbon delivery auger 18 for dispersing the activated carbon filter materials entering the activated carbon delivery pipe cylinder 17. The dispersing members 30 are composed of a plurality of round bars. When the activated carbon delivery auger 18 conveys the activated carbon filter materials, the effect of dispersion is achieved by the contact of the plurality of round bars with the activated carbon filter materials.

[0022] As Figures 1-6As shown in the figure, a reciprocating movement component 23 is arranged on the filter tank 1. The reciprocating movement component 23 is composed of a rotating column, a rotating disk, a fixed rod and a rotating bar. The rotating column is rotatably installed on the filter tank 1. The rotating disk is installed at one end of the rotating column. The fixed rod is installed on the rotating disk. The fixed rod is eccentrically arranged. The rotating bar is rotatably installed on the fixed rod. One of the activated carbon conveying augers 18 drives the reciprocating movement component 23 to perform reciprocating movement through a gear transmission component 22. The gear transmission component 22 is composed of two bevel gears. One of the bevel gears is sleeved on one end of the corresponding activated carbon conveying auger 18, and the other bevel gear is sleeved on the rotating column. The two bevel gears are meshed and connected. A transfer adjusting cylinder 24 is installed on the filter tank 1. A gas pushing member 25 is arranged on the transfer adjusting cylinder 24. The gas pushing member 25 performs reciprocating movement in the transfer adjusting cylinder 24 under the action of the reciprocating movement component 23. The gas pushing member 25 is composed of a pushing rod and a piston. The pushing rod is slidably installed on the transfer adjusting cylinder 24. The piston is slidably installed on the inner wall of the transfer adjusting cylinder 24. The piston is connected to one end of the pushing rod. The pushing rod is rotatably connected to the rotating bar. A water supply network 26 is arranged on the filter tank 1. The water supply network 26 is communicated with the transfer adjusting cylinder 24. A water guiding network 27 is installed on the transfer adjusting cylinder 24. The water guiding network 27 is communicated with the exhaust pipe network 20. Check valves are arranged on both the water supply network 26 and the water guiding network 27. An inlet head is arranged on the water supply network 26. The inlet head is located below the filter head 13. A filter plate is arranged on the inlet head to filter the water flow entering the inlet head. A plurality of branch pipes II are arranged on the water guiding network 27. The plurality of branch pipes II are all communicated with the exhaust pipe network 20. Solenoid valves are arranged on both the water guiding network 27 and the exhaust pipe network 20. The solenoid valve located on the water guiding network 27 is used to block the water flow transmission in the water guiding network 27. Similarly, the solenoid valve located on the exhaust pipe network 2 can block the water flow entering the exhaust pipe network 20 through the water guiding network 27. Through the setting of the solenoid valve, it is possible to avoid the influence of the water flow transmission in the water guiding network 27 on the gas transmission in the exhaust pipe network 20, and ensure that the exhaust pipe network 20 can also discharge the air flow in the activated carbon conveying tube 17 during the water flow transmission.

[0023] During operation, when the piston moves in the transfer adjusting cylinder 24 and the piston contracts, the water flow in the filter tank 1 is introduced into the transfer adjusting cylinder 24 through the water supply network 26 after being filtered. When the piston extends, the water flow in the transfer adjusting cylinder 24 is discharged into the exhaust pipe network 20 through the water guiding network 27 and flushes and disperses the moving activated carbon filter material in the activated carbon conveying tube 17.

[0024] Electric valves are arranged on the outlet pipe 15, the backwashing pipe 16, the end of the aeration pipe network 14 extending out of the filter tank 1 and the sewage discharge pipe 29 to control the entry and output of water flow or air flow. Specific adjustment can be made according to the actual use situation.

[0025] In this embodiment, during use, sewage flows into the water distribution assembly 2 through the water inlet pipe 3, and then evenly flows into the two side chambers in the filter tank 1 through the two water inlet V-shaped grooves 4. The sewage is filtered by the activated carbon filter layer 9, the supporting layer - fine gravel layer 10, the supporting layer - coarse gravel layer 11, the filter media support plate 12 and the filter head 13. After that, it can be discharged through the outlet pipe 15 to complete the sewage filtration operation; During daily use, in order to prevent air blockage in the activated carbon filter layer 9, air can be input into the filter tank 1 through the air distribution pipe network 14, and cleaning water flow can be input into the filter tank 1 through the backwash pipe 16. The gas and water flow are combined and act on the activated carbon filter layer 9 to clean the impurities on it. The cleaning water flow and impurities will flow between the two overflow plates 5 and then be discharged through the sewage discharge pipe 29. In this way, the cleaning of the activated carbon filter is completed, reducing the air blockage phenomenon. This operation is a conventional backwash operation; During daily use, through the setting of the exhaust pipe 7 and the electric exhaust valve 8, the gas in the filtered water flow can be discharged to reduce the air blockage phenomenon; During daily use, the rotation motor 19 can be started, and the two activated carbon conveying augers 18 are driven to rotate through the synchronous belt transmission assembly 21. Under the action of the activated carbon conveying pipe barrel 17 and the openings on it, the activated carbon filter media is input and output. During this process, the activated carbon conveying auger 18 can stir the activated carbon filter media, thereby reducing the generation of gas in the activated carbon filter layer 9. At the same time, the activated carbon filter media can be dispersed by the dispersing member 30, which is more conducive to the diffusion of gas. Then, through the action of the exhaust pipe network 20, the gas can be transported to the exhaust pipe 7 for discharge, thereby further reducing the generation of air blockage in the activated carbon filter layer 9; During daily use, during the process of the rotation motor 19 driving the activated carbon conveying auger 18 to rotate, the push air member 25 can be driven to reciprocate in the transfer adjustment cylinder 24 through the gear transmission assembly 22 and the reciprocating movement assembly 23. Thus, the water flow located below the filter head 13 can be absorbed through the water supply pipe network 26, generating a suction force to absorb the gas generated in the activated carbon filter layer 9 downward with the water flow. Then, the water flow and gas are transported to the exhaust pipe network 20 through the water guide pipe network 27 and then act on the activated carbon conveying pipe barrel 17. The air flow entering the activated carbon conveying pipe barrel 17 will be discharged through the exhaust pipe network 20, and the water flow entering the activated carbon conveying pipe barrel 17 will wash and disperse the activated carbon filter media moving inside, improving the cleaning effect of the activated carbon filter media and reducing the generation of air blockage phenomenon. And during this process, the downward-absorbed water flow and air flow will wash the filter head 13, reducing the probability of the filter head 13 being blocked and ensuring the normal operation of the filter tank 1.

[0026] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto, and various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those skilled in the relevant technical field.

Claims

1. An integrated advanced treatment activated carbon filter water purification device, comprising: Filter tank (1), a water distribution assembly (2) is arranged on the filter tank (1), a water inlet pipe (3) is arranged on the water distribution assembly (2), the filter tank (1) is divided into three independent chambers by two flow-through plates (5), an inlet water V-shaped groove (4) is installed on the filter tank (1), activated carbon filter material layers (9), a supporting layer - fine gravel layer (10), a supporting layer - coarse gravel layer (11) and filter material support plates (12) are respectively laid from top to bottom in the two chambers on both sides, filter heads (13) are arranged on the filter material support plates (12), an air distribution pipe network (14) is arranged below the filter heads (13), a water outlet pipe (15) is arranged on the filter tank (1), a backwash pipe (16) is arranged on the water outlet pipe (15), sewage discharge inclined plates (6) are installed on the outer walls of the two sides of the two flow-through plates (5) close to each other, a sewage discharge pipe (29) is installed on the filter tank (1), and its characteristics are as follows: An exhaust pipe (7) is installed on the filter tank (1), an electric exhaust valve (8) is arranged on the exhaust pipe (7), and the gas generated by the activated carbon filter material layer (9) can be discharged through the combined action of the exhaust pipe (7) and the electric exhaust valve (8) to avoid the phenomenon of air blockage.

2. The integrated advanced treatment activated carbon filter water purification equipment according to claim 1, wherein Activated carbon delivery pipe cylinders (17) are arranged on both of the two flow-through plates (5), activated carbon delivery augers (18) are arranged in both of the two activated carbon delivery pipe cylinders (17), a rotating motor (19) is installed on the filter tank (1), the rotating motor (19) drives the two activated carbon delivery augers (18) to rotate through a synchronous belt transmission assembly (21), two through openings are formed on the outer walls of the activated carbon delivery pipe cylinders (17) for the inlet and outlet of activated carbon filter material, an exhaust pipe network (20) is installed on the two activated carbon delivery pipe cylinders (17), and the exhaust pipe network (20) is communicated with the exhaust pipe (7).

3. An integrated advanced treatment activated carbon filter water purification device according to claim 2, characterized in that, The activated carbon delivery pipe cylinder (17) is arranged in an inclined shape, and the through opening of the activated carbon delivery pipe cylinder (17) close to the water distribution assembly (2) is the inlet of the activated carbon filter material.

4. An integrated advanced treatment activated carbon filter water purification device according to claim 2, characterized in that, A plurality of dispersing parts (30) are installed on the spiral blades of the activated carbon delivery auger (18) for dispersing the activated carbon filter material entering the activated carbon delivery pipe cylinder (17).

5. An integrated advanced treatment activated carbon filter water purification device according to claim 2, characterized in that, A reciprocating movement assembly (23) is arranged on the filter tank (1), one of the activated carbon delivery augers (18) drives the reciprocating movement assembly (23) to perform reciprocating movement through a gear transmission assembly (22), a transfer adjusting cylinder (24) is installed on the filter tank (1), a gas pushing part (25) is arranged on the transfer adjusting cylinder (24), the gas pushing part (25) performs reciprocating movement in the transfer adjusting cylinder (24) under the action of the reciprocating movement assembly (23), a water supply pipe network (26) is arranged on the filter tank (1), the water supply pipe network (26) is communicated with the transfer adjusting cylinder (24), a water guide pipe network (27) is installed on the transfer adjusting cylinder (24), the water guide pipe network (27) is communicated with the exhaust pipe network (20), and one-way valves are arranged on both the water supply pipe network (26) and the water guide pipe network (27).

6. The integrated advanced treatment activated carbon filter water purification equipment according to claim 5, characterized in that, A water inlet head is arranged on the water supply pipe network (26), the water inlet head is located below the filter head (13), and a filter plate is arranged on the water inlet head for filtering the water flowing into the water inlet head.

7. An integrated advanced treatment activated carbon filter water purification device according to claim 5, characterized in that, The reciprocating moving component (23) is composed of a rotating column, a rotating disk, a fixed rod, and a rotating bar. The rotating column is rotatably installed on the filter tank (1), the rotating disk is installed at one end of the rotating column, the fixed rod is installed on the rotating disk, the fixed rod is eccentrically arranged, and the rotating bar is rotatably installed on the fixed rod.

8. An integrated advanced treatment activated carbon filter water purification device according to claim 5, characterized in that The gear transmission component (22) is composed of two bevel gears. One of the bevel gears is sleeved at one end of the corresponding activated carbon conveying auger (18), and the other bevel gear is sleeved on the rotating column. The two bevel gears are meshed and connected.

9. An integrated advanced treatment activated carbon filter water purification device according to claim 5, characterized in that, The air pushing part (25) is composed of a pushing rod and a piston. The pushing rod is slidably installed on the transfer adjusting cylinder (24), the piston is slidably installed on the inner wall of the transfer adjusting cylinder (24), the piston is connected to one end of the pushing rod, and the pushing rod is rotatably connected to the rotating bar.

10. An integrated advanced treatment activated carbon filter water purification device according to claim 9, characterized in that, During operation, when the piston moves in the transfer adjusting cylinder (24) and the piston contracts, the water flow in the filter tank (1) guides the filtered water flow into the transfer adjusting cylinder (24) through the water supply network (26). When the piston extends, the water flow in the transfer adjusting cylinder (24) is discharged into the exhaust pipe network (20) through the water guide network (27) and flushes and disperses the activated carbon filter material moving in the activated carbon conveying tube cylinder (17).