Regeneration device for water treatment adsorption material prepared from waste residues
By designing the collaborative operation of the driving unit, separation unit, and auxiliary cleaning unit, the problems of uneven distribution and clogging in the regeneration process of adsorbent material prepared from waste residue were solved, achieving efficient and simple regeneration results.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUNAN HEQING ENVIRONMENTAL TECH CO LTD
- Filing Date
- 2025-06-20
- Publication Date
- 2026-05-19
AI Technical Summary
Existing adsorption material regeneration devices are prone to uneven distribution and clogging when processing adsorption materials prepared from waste residue, and their operation is highly complex, increasing material loss and energy consumption.
A regeneration device comprising a drive unit, a separation unit, and an auxiliary cleaning unit was designed. The reciprocating motion of the moving frame and the guidance of the arc-shaped baffle achieve uniform distribution of the adsorbent material. The cleaning brush and airflow work together to remove residues from the outer wall of the cylinder. The regeneration process is optimized by combining camera monitoring and a controller.
It achieves efficient regeneration of adsorbent materials, simplifies the operation process, reduces material loss, improves regeneration efficiency and adaptability, and solves the problems of uneven distribution and clogging.
Smart Images

Figure CN224258318U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water treatment and resource recycling technology, and in particular to a device for regenerating water treatment adsorbent materials prepared from waste residue. Background Technology
[0002] In water treatment, adsorbent materials are widely used to remove pollutants from water. However, after a period of use, these materials reach saturation, leading to a decrease in adsorption capacity. Therefore, regeneration is crucial to extend the lifespan of adsorbent materials and reduce treatment costs. Existing adsorbent regeneration devices mostly employ chemical or physical methods, but these methods often require high energy consumption and have poor adaptability to adsorbent materials prepared from waste residue.
[0003] Because the adsorbent material prepared from waste residue has a porous and irregular particle morphology, it is prone to uneven distribution and clogging during regeneration, which significantly affects regeneration efficiency. Furthermore, existing devices typically require additional cleaning or sorting steps when processing adsorbent materials prepared from waste residue, which not only increases operational complexity but may also lead to the loss of some material. Therefore, designing a highly efficient and adaptable regeneration device has become an urgent technical problem to be solved. Utility Model Content
[0004] The purpose of this utility model is to provide a device for regenerating water treatment adsorbent materials prepared from waste residue, which solves the problems mentioned in the background art.
[0005] This invention is implemented as follows: a device for regenerating water treatment adsorbent materials prepared from waste residue, comprising a base, a drive unit, a separation unit, and an auxiliary cleaning unit. The base is a rectangular frame structure, with a first support plate and a second support plate fixedly mounted on both sides of the top of the base. A guide rail frame is bolted between the first and second support plates, and a slidingly connected movable frame is mounted on the guide rail frame. The drive unit includes a power mechanism installed on the outside of the first support plate. The output end of the power mechanism is connected to one side of the movable frame via a coupling, used to drive the movable frame to reciprocate along the guide rail frame. The separation unit is located inside the movable frame and includes a cylinder rotatably mounted within the movable frame. Multiple evenly distributed through holes are opened on the outer wall of the cylinder, and multiple arc-shaped baffles are fixedly mounted on the inner wall of the cylinder. The arc-shaped baffles are spaced apart along the axial direction of the cylinder, and their ends form receiving cavities with the inner wall of the cylinder. The auxiliary cleaning unit is installed on one side of the movable frame and is used to clean the outer wall of the cylinder.
[0006] Furthermore, the movable frame includes two parallel side plates, and a crossbeam is fixedly connected between the two side plates by bolts. The crossbeam has an installation groove, and a bearing seat is fixedly connected to the installation groove by bolts. A rolling bearing is installed in the bearing seat, and the inner ring of the rolling bearing is interference-fitted with the rotating shaft of the cylinder, so that the cylinder can rotate freely within the movable frame.
[0007] Furthermore, the drive unit also includes a geared motor fixedly mounted on the outside of the first support plate. The output shaft of the geared motor is connected to a connecting rod on one side of the movable frame via a coupling. The two ends of the connecting rod are respectively fixed to the two side plates of the movable frame with bolts. A rack is fixedly mounted on the bottom of the guide rail frame, and a gear meshing with the rack is fixedly mounted on the bottom of the movable frame. The gear is fixed to the output shaft of the geared motor via a key connection. When the geared motor starts, the meshing of the gear and the rack causes the movable frame to reciprocate along the guide rail frame.
[0008] Furthermore, the separation unit also includes an arc-shaped guide plate fixedly installed inside the movable frame. The arc-shaped guide plate is arranged radially along the cylinder. The two ends of the arc-shaped guide plate are fixedly connected to the two side plates of the movable frame, respectively. A gap of 5mm-10mm is left between the inner wall of the arc-shaped guide plate and the outer wall of the cylinder to ensure that the adsorbent material prepared from the waste residue can smoothly enter the cylinder.
[0009] Furthermore, the auxiliary cleaning unit includes a cleaning box fixedly installed on one side of the movable frame. The top of the cleaning box has an air inlet with a dustproof net fixedly connected inside. The bottom of the cleaning box has an air outlet with a one-way valve fixedly connected inside. A slidingly connected push rod is installed inside the cleaning box. One end of the push rod is fixedly connected to a cleaning brush, the bristles of which contact the outer wall of the cylinder. The other end of the push rod is fixedly connected to a connecting rod. Both ends of the connecting rod are connected to a cam mechanism inside the cleaning box via pins. The cam mechanism is connected to a gear at the bottom of the movable frame via a belt drive. When the movable frame reciprocates, the gear drives the cam mechanism to rotate via the belt drive. The cam mechanism pushes the connecting rod to make the cleaning brush reciprocate along the outer wall of the cylinder.
[0010] Furthermore, a sealing partition is fixedly installed inside the cleaning box, which divides the internal space of the cleaning box into a cleaning chamber and a working chamber. A through hole is opened on the sealing partition, and a sealing ring is fixedly connected in the through hole. The push rod passes through the sealing ring and is slidably connected to the sealing partition. The sealing partition is made of flexible rubber to prevent gas in the cleaning chamber from leaking into the working chamber.
[0011] Furthermore, an air passage is provided inside the push rod. One end of the air passage is connected to the cleaning brush, and the other end of the air passage is connected to the air inlet at the top of the cleaning box through a hose. Multiple air holes are provided on the bristles of the cleaning brush, and the air holes are connected to the air passage. When the cleaning brush moves along the outer wall of the cylinder, the gas drawn in by the air inlet is blown toward the outer wall of the cylinder through the air passage and air holes to remove the residue on the outer wall of the cylinder.
[0012] Furthermore, a detection box is fixedly connected to the side of the movable frame away from the cleaning box. An observation window is opened on the top of the detection box, and a transparent glass is fixedly connected inside the observation window. A camera is installed inside the detection box, and the camera is connected to an external controller via a data cable to monitor the distribution of adsorbent material inside the cylinder in real time. Electromagnetic clutches are fixedly connected to both sides of the detection box. The electromagnetic clutches are connected to gears at the bottom of the movable frame via a transmission shaft to control the movement state of the movable frame.
[0013] Furthermore, an openable and closable unloading door is provided on one side of the cylinder. The unloading door is connected to one side of the cylinder by a hinge, and the other side of the unloading door is fixedly connected to the cylinder by bolts. A sealing gasket is fixedly provided on the inner wall of the unloading door. The sealing gasket is made of silicone and is used to prevent gas leakage inside the cylinder.
[0014] This utility model provides a water treatment adsorbent material regeneration device prepared from waste residue. A drive unit moves a moving frame reciprocating along a guide rail. Combined with the design of the cylinder and arc-shaped baffle in the separation unit, it achieves uniform distribution and efficient regeneration of the adsorbent material prepared from waste residue within the cylinder. A key feature is the use of the reciprocating motion of the moving frame. Through the meshing of gears and racks and the cooperation of a cam mechanism, a cleaning brush reciprocates along the outer wall of the cylinder, effectively removing residues. Furthermore, the air passages within the push rod and the air holes on the cleaning brush further enhance the cleaning effect. In summary, this utility model, through the cooperation of simple mechanical structures, achieves adsorbent material regeneration while simultaneously solving the problems of uneven distribution and clogging, offering the advantages of easy operation and high cleaning efficiency. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention, showing the main frame of the regeneration device and the layout of its main units, including the base, drive unit, separation unit and auxiliary cleaning unit.
[0016] Figure 2 This is a schematic diagram of the separation unit in this utility model, which mainly shows the arrangement of the cylinder, the arc-shaped baffle and the arc-shaped guide plate, as well as the flow path of the adsorbent material in the cylinder.
[0017] Figure 3This is a partial enlarged view of the auxiliary cleaning unit in this utility model, which shows in detail the connection between the cleaning brush and the push rod and their cooperation with the outer wall of the cylinder.
[0018] The attached diagram is labeled as follows: 1. Base; 2. First support plate; 3. Second support plate; 4. Guide rail frame; 5. Moving frame; 6. Gear motor; 7. Cylinder; 8. Arc-shaped baffle; 9. Cleaning box; 10. Cleaning brush; 11. Push rod; 12. Rack; 13. Gear; 14. Detection box; 15. Unloading gate. Detailed Implementation
[0019] This invention provides a device for regenerating water treatment adsorbent materials prepared from waste residue, the structure of which is as follows: Figure 1 As shown, the device includes a base 1, a first support plate 2, a second support plate 3, a guide rail frame 4, a moving frame 5, a reduction motor 6, a cylinder 7, an arc-shaped baffle 8, a cleaning box 9, a cleaning brush 10, a push rod 11, a rack 12, a gear 13, a detection box 14, and a discharge door 15. The specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0020] The base 1 is a rectangular frame structure welded from steel, possessing sufficient strength and stability to support the entire device. A first support plate 2 and a second support plate 3 are bolted to the top two sides of the base 1, both vertically arranged steel plates used to install other components and ensure the overall structural stability. A guide rail frame 4 is bolted between the first support plate 2 and the second support plate 3. The guide rail frame 4 consists of two parallel steel rails, the surfaces of which are polished to reduce friction. A slidingly connected movable frame 5 is mounted on the guide rail frame 4. The movable frame 5 includes two parallel side plates, with a crossbeam bolted between them. An installation groove is provided on the crossbeam, and a bearing seat is bolted into the groove. A rolling bearing is installed in the bearing seat, and the inner ring of the rolling bearing is interference-fitted with the shaft of the cylinder 7, allowing the cylinder 7 to rotate freely within the movable frame 5.
[0021] The drive unit includes a geared motor 6 mounted on the outside of the first support plate 2. The output shaft of the geared motor 6 is connected to a connecting rod on one side of the moving frame 5 via a coupling. The two ends of the connecting rod are respectively fixed to the two side plates of the moving frame 5 with bolts. A rack 12 is fixedly installed at the bottom of the guide rail frame 4, and a gear 13 that meshes with the rack 12 is fixedly installed at the bottom of the moving frame 5. The gear 13 is fixed to the output shaft of the geared motor 6 via a key connection. When the geared motor 6 starts, the meshing of the gear 13 and the rack 12 causes the moving frame 5 to reciprocate along the guide rail frame 4, thereby driving the cylinder 7 to move synchronously.
[0022] The separation unit is located within the movable frame 5. The separation unit includes a cylindrical body 7 rotatably mounted within the movable frame 5. The cylindrical body 7 is a cylindrical structure made of stainless steel, with multiple evenly distributed through holes on its outer wall. Each through hole has a diameter of 5 mm and is used to facilitate the exchange of substances between the adsorbent material and the external environment. Multiple arc-shaped baffles 8 are fixedly mounted on the inner wall of the cylindrical body 7. The arc-shaped baffles 8 are arranged at intervals along the axial direction of the cylindrical body 7, with a spacing of 100 mm between adjacent arc-shaped baffles. The two ends of each arc-shaped baffle 8 form receiving cavities with the inner wall of the cylindrical body 7, guiding the flow path of the adsorbent material within the cylindrical body 7. An arc-shaped guide plate is fixedly mounted inside the movable frame 5, arranged radially along the cylindrical body 7. The two ends of the arc-shaped guide plate are fixedly connected to two side plates of the movable frame 5. A gap of 8 mm is left between the inner wall of the arc-shaped guide plate and the outer wall of the cylindrical body 7 to ensure that the adsorbent material prepared from the waste residue can smoothly enter the interior of the cylindrical body 7.
[0023] An auxiliary cleaning unit is installed on one side of the movable frame 5. The auxiliary cleaning unit includes a cleaning box 9 fixedly mounted on one side of the movable frame 5. The cleaning box 9 is a rectangular box structure made of stainless steel. An air inlet is located at the top, and a dust filter is fixedly connected inside the air inlet to prevent external impurities from entering the cleaning box 9. An air outlet is located at the bottom of the cleaning box 9, and a one-way valve is fixedly connected inside the air outlet to control the direction of air flow. A slidingly connected push rod 11 is installed inside the cleaning box 9. One end of the push rod 11 is fixedly connected to a cleaning brush 10, the bristles of which contact the outer wall of the cylinder 7. The other end of the push rod 11 is fixedly connected to a connecting rod, and both ends of the connecting rod are connected to a cam mechanism inside the cleaning box 9 via pins. The cam mechanism is connected to a gear 13 at the bottom of the movable frame 5 via belt drive. When the movable frame 5 reciprocates, the gear 13 drives the cam mechanism to rotate via belt drive. The cam mechanism pushes the connecting rod to make the cleaning brush 10 reciprocate along the outer wall of the cylinder 7, thereby removing residue from the outer wall of the cylinder 7.
[0024] A sealing partition is fixedly installed inside the cleaning box 9, dividing the internal space of the cleaning box 9 into a cleaning chamber and a working chamber. A through hole is provided on the sealing partition, and a sealing ring is fixedly connected inside the through hole. The push rod 11 passes through the sealing ring and is slidably connected to the sealing partition. The sealing partition is made of flexible rubber to prevent gas from leaking from the cleaning chamber into the working chamber. An air passage is provided inside the push rod 11. One end of the air passage is connected to the cleaning brush 10, and the other end is connected to the air inlet at the top of the cleaning box 9 via a flexible hose. Multiple air holes are provided on the bristles of the cleaning brush 10, and these air holes are connected to the air passage. When the cleaning brush 10 moves along the outer wall of the cylinder 7, the gas drawn in by the air inlet is blown towards the outer wall of the cylinder 7 through the air passage and air holes to remove residue from the outer wall of the cylinder 7.
[0025] A detection box 14 is fixedly connected to the side of the moving frame 5 away from the cleaning box 9. The detection box 14 is a rectangular box structure made of transparent glass, with an observation window on its top. A transparent glass pane is fixedly connected inside the observation window for real-time observation of the distribution of the adsorbent material inside the cylinder 7. A camera is installed inside the detection box 14, and the camera is connected to an external controller via a data cable for real-time monitoring of the distribution of the adsorbent material inside the cylinder 7. Electromagnetic clutches are fixedly connected to both sides of the detection box 14. These electromagnetic clutches are connected to a gear 13 at the bottom of the moving frame 5 via a drive shaft to control the movement of the moving frame 5.
[0026] A discharge door 15, which can be opened and closed, is provided on one side of the cylinder 7. The discharge door 15 is connected to one side of the cylinder 7 by a hinge, and the other side of the discharge door 15 is fixedly connected to the cylinder 7 by bolts. A sealing gasket made of silicone is fixedly installed on the inner wall of the discharge door 15 to prevent gas leakage inside the cylinder 7. The opening and closing of the discharge door 15 is completed manually, which facilitates the removal of the adsorbent material after the regeneration process.
[0027] The operation process of this utility model is as follows: First, the adsorbent material prepared from waste residue is loaded into the cylinder 7 from one side. The adsorbent material enters the cylinder 7 through the gap of the arc-shaped guide plate and flows along the inner wall of the cylinder 7 under the guidance of the arc-shaped baffle 8. The reduction motor 6 is started, and the output shaft of the reduction motor 6 drives the gear 13 to rotate through the coupling. The meshing of the gear 13 and the rack 12 causes the moving frame 5 to reciprocate along the guide rail frame 4, thereby driving the cylinder 7 to move synchronously. During the movement, the adsorbent material continuously tumbles inside the cylinder 7 and exchanges substances with the external environment through the through holes on the outer wall of the cylinder 7, realizing the regeneration of the adsorbent material. At the same time, the gear 13 drives the cam mechanism to rotate through the belt drive. The cam mechanism pushes the connecting rod to make the cleaning brush 10 reciprocate along the outer wall of the cylinder 7. The bristles of the cleaning brush 10 contact the outer wall of the cylinder 7 to remove the residue on the outer wall of the cylinder 7. The gas drawn in by the air inlet is blown towards the outer wall of the cylinder 7 through the air passage and air hole, further enhancing the cleaning effect. A camera inside the detection chamber 14 monitors the distribution of the adsorbent material inside the cylinder 7 in real time and transmits the monitoring results to an external controller. The external controller adjusts the working state of the electromagnetic clutch based on the monitoring results, thereby controlling the movement speed and direction of the moving frame 5. After the regeneration process is completed, the discharge door 15 is opened to remove the regenerated adsorbent material from the cylinder 7, completing the entire regeneration process.
[0028] To enable those skilled in the art to fully understand and implement this utility model, the following supplementary explanation of the operating principle and implementation process of this utility model is provided in conjunction with specific application scenarios.
[0029] In practical applications, when regenerating the adsorbent material prepared from waste residue, the adsorbent material to be treated is first loaded into the cylinder 7. The adsorbent material enters the cylinder through the gap between the arc-shaped guide plate and the outer wall of the cylinder 7, and flows along the inner wall of the cylinder under the guidance of the arc-shaped baffle 8. This design, through the receiving cavity structure formed by the arc-shaped baffle 8, ensures that the adsorbent material can form a uniformly distributed flow path within the cylinder 7, avoiding clogging problems caused by irregular particle shapes.
[0030] Subsequently, the geared motor 6 is started, which drives the gear 13 to rotate via a coupling. The meshing of the gear 13 with the rack 12 causes the moving frame 5 to reciprocate along the guide rail 4. The reciprocating motion of the moving frame 5 drives the cylinder 7 to move synchronously, causing the adsorbent material to continuously tumble inside the cylinder 7. During this process, the adsorbent material exchanges substances with the external environment through the through holes on the outer wall of the cylinder 7, completing the regeneration process. Since the diameter of the through holes in the cylinder 7 is 5mm, it ensures effective contact between the adsorbent material and the external environment while preventing leakage of the adsorbent material from the through holes, thus achieving efficient substance exchange.
[0031] Meanwhile, gear 13 drives the cam mechanism inside the cleaning box 9 to rotate via belt drive. The cam mechanism pushes the connecting rod, causing push rod 11 to drive cleaning brush 10 to reciprocate along the outer wall of cylinder 7. The bristles of cleaning brush 10 contact the outer wall of cylinder 7, removing residual adsorbent material or impurities from its surface. In addition, multiple air holes are opened on the bristles of cleaning brush 10, which are connected to the air inlet at the top of cleaning box 9 through the air passage inside push rod 11. When cleaning brush 10 moves along the outer wall of cylinder 7, the gas drawn in by the air inlet is blown onto the outer wall of cylinder 7 through the air passage and air holes, further enhancing the cleaning effect. This design, which combines mechanical cleaning with airflow assistance, effectively solves the problem of waste residue adsorbent material easily adhering to the outer wall of cylinder during the regeneration process, avoiding a decrease in equipment efficiency due to residue accumulation.
[0032] During the regeneration process, a camera inside the detection chamber 14 monitors the distribution of the adsorbent material within the cylinder 7 in real time and transmits the monitoring results to an external controller. Based on the monitored distribution of the adsorbent material, the external controller adjusts the operating state of the electromagnetic clutch, thereby controlling the speed and direction of the moving frame 5. For example, if the adsorbent material is detected to be too concentrated in a certain area within the cylinder 7, the external controller can reduce the speed of the moving frame 5 via the electromagnetic clutch, extending the tumbling time of the adsorbent material in that area to promote its uniform distribution. This feedback mechanism significantly improves the device's adaptability to preparing adsorbent materials from waste residue, ensuring the high efficiency and stability of the regeneration process.
[0033] After the regeneration process is complete, manually open the discharge door 15 to remove the regenerated adsorbent material from the cylinder 7. The silicone sealing gasket fixed to the inner wall of the discharge door 15 effectively prevents gas leakage from the cylinder 7 when closed, and facilitates quick unloading by the operator when open. The entire regeneration process requires no additional cleaning or sorting steps, simplifying the operation and reducing the loss of adsorbent material.
[0034] In summary, this invention achieves efficient regeneration of adsorbent materials prepared from waste residue through the coordinated operation of the drive unit, separation unit, and auxiliary cleaning unit. The reciprocating motion of the moving frame 5, combined with the guiding effect of the arc-shaped baffle 8, ensures uniform distribution of the adsorbent material within the cylinder 7; the combined design of the cleaning brush 10 and airflow assistance effectively removes residues from the outer wall of the cylinder; and the real-time monitoring function of the detection box 14 further optimizes the control precision of the regeneration process. These designs collectively solve the technical problems of uneven distribution and clogging during the regeneration of adsorbent materials prepared from waste residue, demonstrating strong practicality and promotional value.
[0035] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A device for regenerating water treatment adsorbent materials prepared from waste residue, comprising a base (1), wherein a first support plate (2) and a second support plate (3) are respectively fixedly arranged on both sides of the top of the base (1), and a guide rail frame (4) is fixedly connected between the first support plate (2) and the second support plate (3) by bolts, characterized in that, Also includes: The movable frame (5) is slidably connected to the guide rail frame (4). The movable frame (5) includes two parallel side plates. A crossbeam is fixedly connected between the two side plates by bolts. An installation groove is provided on the crossbeam. A bearing seat is fixedly connected in the installation groove by bolts. A rolling bearing is provided in the bearing seat. The drive unit includes a geared motor (6) fixedly mounted on the outside of the first support plate (2). The output shaft of the geared motor (6) is connected to a connecting rod on one side of the moving frame (5) via a coupling. The two ends of the connecting rod are respectively fixed to the two side plates of the moving frame (5) by bolts. A rack (12) is fixedly mounted on the bottom of the guide rail frame (4). A gear (13) meshing with the rack (12) is fixedly mounted on the bottom of the moving frame (5). The gear (13) is fixedly mounted on the output shaft of the geared motor (6) via a key connection. The separation unit is located inside the movable frame (5). The separation unit includes a cylinder (7) rotatably disposed inside the movable frame (5). Multiple evenly distributed through holes are opened on the outer wall of the cylinder (7). Multiple arc-shaped baffles (8) are fixedly disposed on the inner wall of the cylinder (7). The arc-shaped baffles (8) are arranged at intervals along the axial direction of the cylinder (7). The two ends of the arc-shaped baffles (8) respectively form receiving cavities with the inner wall of the cylinder (7). The inner ring of the rolling bearing is interference-fitted with the rotating shaft of the cylinder (7) so that the cylinder (7) can rotate freely inside the movable frame (5). An auxiliary cleaning unit is installed on one side of the movable frame (5) and is used to clean the outer wall of the cylinder (7).
2. The water treatment adsorbent material regeneration device prepared from waste residue according to claim 1, characterized in that, An arc-shaped guide plate is fixedly installed inside the movable frame (5). The arc-shaped guide plate is arranged radially along the cylinder (7). The two ends of the arc-shaped guide plate are fixedly connected to the two side plates of the movable frame (5). A gap is left between the inner wall of the arc-shaped guide plate and the outer wall of the cylinder (7). The gap width is 5mm to 10mm.
3. The water treatment adsorbent material regeneration device prepared from waste residue according to claim 1, characterized in that, The auxiliary cleaning unit includes a cleaning box (9) fixedly installed on one side of the movable frame (5). The top of the cleaning box (9) has an air inlet, and a dustproof net is fixedly connected inside the air inlet. The bottom of the cleaning box (9) has an air outlet, and a one-way valve is fixedly connected inside the air outlet. A push rod (11) is slidably connected inside the cleaning box (9). One end of the push rod (11) is fixedly connected to a cleaning brush (10). The bristles of the cleaning brush (10) are in contact with the outer wall of the cylinder (7). The other end of the push rod (11) is fixedly connected to a connecting rod. The two ends of the connecting rod are respectively connected to the cam mechanism inside the cleaning box (9) through pins. The cam mechanism is connected to the gear (13) at the bottom of the movable frame (5) through belt drive.
4. The water treatment adsorbent material regeneration device prepared from waste residue according to claim 3, characterized in that, The cleaning box (9) is fixedly provided with a sealing partition, which divides the internal space of the cleaning box (9) into a cleaning chamber and a working chamber. A through hole is provided on the sealing partition, and a sealing ring is fixedly connected in the through hole. The push rod (11) passes through the sealing ring and slides in connection with the sealing partition. The material of the sealing partition is flexible rubber.
5. A device for regenerating water treatment adsorbent materials prepared from waste residue according to claim 3, characterized in that, An air passage is provided inside the push rod (11). One end of the air passage is connected to the cleaning brush (10), and the other end of the air passage is connected to the air inlet at the top of the cleaning box (9) through a hose. Multiple air holes are provided on the bristles of the cleaning brush (10), and the air holes are connected to the air passage.
6. The water treatment adsorbent material regeneration device prepared from waste residue according to claim 1, characterized in that, A detection box (14) is fixedly connected to the side of the mobile frame (5) away from the cleaning box (9). An observation window is opened on the top of the detection box (14), and a transparent glass is fixedly connected inside the observation window. A camera is installed inside the detection box (14), and the camera is connected to an external controller through a data cable. Electromagnetic clutches are fixedly connected to both sides of the detection box (14), and the electromagnetic clutches are connected to the gear (13) at the bottom of the mobile frame (5) through a transmission shaft.
7. The water treatment adsorbent material regeneration device prepared from waste residue according to claim 1, characterized in that, The cylinder (7) is provided with an openable and closable unloading door (15) on one side. The unloading door (15) is connected to one side of the cylinder (7) by a hinge. The other side of the unloading door (15) is fixedly connected to the cylinder (7) by bolts. A sealing gasket is fixedly provided on the inner wall of the unloading door (15). The sealing gasket is made of silicone.