Magnetic coagulation magnetic powder purification and recovery equipment
By designing a rotation and cleaning drive mechanism, combined with a water equalization mechanism, efficient adsorption and cleaning recycling of magnetic powder are achieved, solving the problems of low magnetic powder recycling quality and inconvenient cleaning in existing technologies, and improving the efficiency and quality of magnetic powder recycling.
Patent Information
- Application Number
- CN202422910695.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing magnetic powder purification and recycling technologies result in low-quality magnetic powder recovery and are difficult to clean, leading to reduced practicality.
A magnetic powder purification and recycling device is designed, which includes a rotating mechanism, a water equalization mechanism, a recycling mechanism, a cleaning drive mechanism, and a cleaning mechanism. The rotating drive mechanism drives the recycling mechanism to rotate, and combined with the water equalization mechanism and the cleaning drive mechanism, the magnetic powder is efficiently adsorbed and recycled.
This improved the efficiency and quality of magnetic powder recovery and enhanced the practicality of the equipment.
Smart Images

Figure CN223659889U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of magnetic powder purification and recycling, and in particular to a magnetic coagulation magnetic powder purification and recycling device. Background Technology
[0002] In magnetic coagulation sedimentation processes, the recovery and treatment of magnetic powder is particularly important. Utilizing a magnetic field, magnetic sludge is separated from wastewater, thus achieving the recovery of magnetic powder and the purification of wastewater. When wastewater containing magnetic powder enters the equipment, the powder is adsorbed onto the magnetic drum or roller under the influence of the magnetic field. As the drum or roller rotates, the magnetic powder is carried away from the wastewater and detached from the drum or roller by scrapers or flushing water, thus achieving magnetic powder recovery. Simultaneously, non-magnetic materials are discharged from the sludge outlet, completing the wastewater purification process.
[0003] Existing magnetic powder purification and recovery technologies, such as the prior art with application number CN201920142942.1, include a reaction tank, a reaction tank inlet pipe, valves, connecting flanges, a feed pipe, a solenoid valve, a coagulant storage tank, a storage tank cover, a filter inlet pipe, a filter housing, and an outlet pipe. The rotation of the drum causes the polymer inside the drum to rotate, at which point the magnet can more comprehensively adsorb the magnetic powder inside the polymer, reducing the cost of wastewater treatment.
[0004] However, existing technologies have low magnetic powder recovery quality and are not convenient for cleaning the recovered magnetic powder, which reduces their practicality. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a magnetic coagulation magnetic powder purification and recycling equipment that facilitates the cleaning and recycling of magnetic powder and improves the efficiency and quality of magnetic powder recycling.
[0006] This utility model discloses a magnetic coagulation and magnetic powder purification and recovery device, including a water equalization mechanism; it also includes a rotating mechanism, a rotating drive mechanism, a recovery mechanism, a cleaning drive mechanism, and a cleaning mechanism. The rotating drive mechanism is installed on the rotating mechanism, the water equalization mechanism is installed on the outer wall of the rotating mechanism, the recovery mechanism is installed on the rotating mechanism, the cleaning drive mechanism is installed on the rotating mechanism, and the cleaning mechanism is installed on the recovery mechanism. The rotating drive mechanism drives the rotating mechanism to rotate, thereby causing the recovery mechanism to rotate. The water equalization mechanism evenly passes the magnetic coagulation wastewater through the recovery mechanism, where the magnetic powder is adsorbed. The cleaning drive mechanism drives the cleaning mechanism to clean and recover the magnetic powder adsorbed by the recovery mechanism. By driving the rotating mechanism to rotate, the recovery mechanism can continue to adsorb magnetic powder in the magnetic coagulation wastewater during the cleaning and recovery process, thus improving the efficiency of magnetic powder recovery. The water equalization mechanism evenly passes the magnetic coagulation wastewater through the recovery mechanism, improving the adsorption quality of magnetic powder by the recovery mechanism, thereby improving the quality of magnetic powder recovery. The cleaning drive mechanism drives the cleaning mechanism to clean and recover the magnetic powder adsorbed by the recovery mechanism, improving practicality.
[0007] Preferably, the rotating mechanism includes a recycling cylinder, a rotating cylinder, a first discharge port, and a second discharge port. The rotating cylinder is rotatably mounted on the recycling cylinder, the first discharge port is mounted on the side wall of the recycling cylinder, and the second discharge port is mounted on the bottom end of the recycling cylinder. The recycling cylinder is installed at a certain angle. By opening the rotating drive mechanism, the rotating cylinder is driven to rotate, which in turn drives the recycling mechanism to rotate, thereby facilitating the cleaning and recycling of iron powder on the recycling mechanism. Magnetic powder is recycled through the first discharge port and the second discharge port.
[0008] Preferably, the rotation drive mechanism includes a first gear, a second gear, and a rotation motor. The first gear is mounted on the rotating cylinder, and the second gear is rotatably mounted on the recycling cylinder via a rotating shaft. The first gear meshes with the second gear. The rotation motor is mounted on the outer wall of the recycling cylinder via a motor frame, and the output end of the rotation motor is connected to the rotating shaft of the second gear. By turning on the rotation motor, the second gear is driven to rotate, and then the meshing relationship drives the rotating cylinder to rotate, which in turn drives the recycling mechanism to rotate, thereby facilitating the cleaning and recycling of iron powder on the recycling mechanism. Magnetic powder is recycled through the first discharge port and the second discharge port.
[0009] Preferably, the water distribution mechanism includes multiple water distribution pipes, water distribution pipes, and water inlet pipes. The multiple water distribution pipes are installed on the outer wall of the recovery cylinder, the water distribution pipes are installed on the water distribution pipes, and the water inlet pipes are installed on the water distribution pipes. The water distribution pipes are connected to external sewage pipes. Sewage enters the water distribution pipes through the water inlet pipes and is then added to the recovery mechanism inside the recovery cylinder through the water inlet pipes for magnetic powder adsorption, thereby improving the uniformity of sewage addition and improving the quality of magnetic powder recovery.
[0010] Preferably, the recycling mechanism includes two magnetic plates, two baffles, and a water outlet. The two magnetic plates are mounted on the rotating drum, the baffles are mounted on the magnetic plates, and the water outlet is mounted on the outer wall of the recycling drum. Wastewater enters the distribution pipe through the inlet pipe, and then is added to the magnetic plates in the recycling drum through the inlet pipe for magnetic powder adsorption. The baffles guide the wastewater to be discharged through the water outlet, improving the uniformity of wastewater addition and the quality of magnetic powder recycling. While one of the two magnetic plates adsorbs magnetic powder in the wastewater, the other magnetic plate can clean and recycle the magnetic powder on the magnetic plate, improving the efficiency of magnetic powder recycling. By turning on the rotating motor, the second gear is driven to rotate, and then the meshing relationship drives the rotating drum to rotate, thereby driving the two magnetic plates to rotate and switch.
[0011] Preferably, the cleaning drive mechanism includes a lead screw, a cleaning motor, a cleaning chute, and a sliding transmission frame. The lead screw is rotatably installed inside the rotating cylinder, the cleaning motor is installed on the outer wall of the rotating cylinder, and the output end of the cleaning motor is connected to the lead screw. The rotating cylinder is provided with a cleaning chute, and the sliding transmission frame is slidably installed inside the rotating cylinder and inside the cleaning chute. The sliding transmission frame is threadedly engaged with the lead screw. When cleaning the magnetic powder on the baffle, the cleaning motor is turned on to drive the lead screw to rotate, which in turn drives the sliding transmission frame to slide in the cleaning chute through the threaded connection. This drives the cleaning mechanism to clean and recycle the magnetic powder on the baffle, and discharges the magnetic powder from the first discharge port and the second discharge port.
[0012] Preferably, the cleaning mechanism includes two scrapers, two drive frames, two transmission grooves, and two transmission sliders. The two scrapers are slidably mounted on two baffles, and the two drive frames are mounted on the two scrapers. Each drive frame is provided with a transmission groove, and the sliding transmission frame is provided with two guide grooves. The transmission sliders are slidably mounted in the guide grooves and transmission grooves. When cleaning the magnetic powder on the baffles, gravity causes the lower transmission slider to slide within the guide grooves and transmission grooves, while the upper transmission slider slides into the guide grooves. At this time, the cleaning motor is turned on to drive the lead screw to rotate, which in turn drives the sliding transmission frame to slide in the cleaning grooves through the threaded connection. This, in turn, drives the scraper on the magnetic plate to be cleaned to slide on the baffles, thereby cleaning and recycling the magnetic powder on the baffles, and discharging the magnetic powder from the first discharge port and the second discharge port.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: the rotation drive mechanism drives the rotation mechanism to rotate, thereby enabling the magnetic powder in the magnetic coagulation wastewater to continue to be adsorbed during the magnetic powder cleaning and recycling process, thus improving the efficiency of magnetic powder recycling; the water equalization mechanism evenly passes the magnetic coagulation wastewater through the recycling mechanism, improving the adsorption quality of magnetic powder by the recycling mechanism, thereby improving the quality of magnetic powder recycling; the cleaning drive mechanism is opened to drive the cleaning mechanism to clean and recycle the magnetic powder adsorbed by the recycling mechanism, thus improving practicality. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the first isometric structure of this utility model;
[0015] Figure 2 This is a schematic diagram of the second isometric structure of this utility model;
[0016] Figure 3 This is a schematic diagram of the third isometric structure of this utility model;
[0017] Figure 4 This is a side view sectional structural schematic diagram of this utility model;
[0018] Figure 5 This is a first side view sectional isometric structural schematic diagram of this utility model;
[0019] Figure 6 This is a second side view sectional isometric structural schematic diagram of this utility model;
[0020] Figure 7 This is a schematic diagram of the third side view sectional section of this utility model;
[0021] Figure 8 This is a schematic diagram of the fourth side view sectional section of this utility model;
[0022] The attached diagram is labeled as follows: 01, Rotating mechanism; 11, Recycling cylinder; 12, Rotating cylinder; 13, First discharge port; 14, Second discharge port; 02, Rotating drive mechanism; 21, First gear; 22, Second gear; 23, Rotating motor; 03, Water distribution mechanism; 31, Water distribution pipe; 32, Water distribution pipe; 33, Water inlet pipe; 04, Recycling mechanism; 41, Magnetic plate; 42, Baffle; 43, Water outlet; 05, Cleaning drive mechanism; 51, Lead screw; 52, Cleaning motor; 53, Cleaning chute; 54, Sliding transmission frame; 06, Cleaning mechanism; 61, Scraper; 62, Drive frame; 63, Transmission groove; 64, Transmission slider. Detailed Implementation
[0023] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.
[0024] Example 1
[0025] like Figures 1 to 8As shown, a magnetic coagulation and magnetic powder purification and recycling device includes a water equalization mechanism 03, a rotation mechanism 01, a rotation drive mechanism 02, a recycling mechanism 04, a cleaning drive mechanism 05, and a cleaning mechanism 06. The rotation drive mechanism 02 is installed on the rotation mechanism 01, the water equalization mechanism 03 is installed on the outer wall of the rotation mechanism 01, the recycling mechanism 04 is installed on the rotation mechanism 01, the cleaning drive mechanism 05 is installed on the rotation mechanism 01, and the cleaning mechanism 06 is installed on the recycling mechanism 04.
[0026] The rotating drive mechanism 02 drives the rotating mechanism 01 to rotate the recycling mechanism 04. The water equalization mechanism 03 evenly feeds the magnetic coagulation wastewater through the recycling mechanism 04. The recycling mechanism 04 adsorbs the magnetic powder. The cleaning drive mechanism 05 drives the cleaning mechanism 06 to clean and recycle the magnetic powder adsorbed by the recycling mechanism 04.
[0027] The rotating mechanism 01 includes a recycling cylinder 11, a rotating cylinder 12, a first discharge port 13, and a second discharge port 14. The rotating cylinder 12 is rotatably mounted on the recycling cylinder 11, the first discharge port 13 is mounted on the side wall of the recycling cylinder 11, and the second discharge port 14 is mounted on the bottom end of the recycling cylinder 11. The recycling cylinder 11 is installed at a certain angle.
[0028] The rotation drive mechanism 02 includes a first gear 21, a second gear 22, and a rotation motor 23. The first gear 21 is mounted on the rotating cylinder 12, and the second gear 22 is rotatably mounted on the recycling cylinder 11 via a rotating shaft. The first gear 21 and the second gear 22 mesh with each other. The rotation motor 23 is mounted on the outer wall of the recycling cylinder 11 via a motor frame, and the output end of the rotation motor 23 is connected to the rotating shaft of the second gear 22.
[0029] The water distribution mechanism 03 includes multiple water distribution pipes 31, water distribution pipes 32 and water inlet pipes 33. The multiple water distribution pipes 31 are installed on the outer wall of the recovery cylinder 11, the water distribution pipes 32 are installed on the water distribution pipes 31, the water inlet pipes 33 are installed on the water distribution pipes 32, and the water distribution pipes 32 are connected to the external sewage pipes.
[0030] By turning on the rotating motor 23, the second gear 22 is driven to rotate, and then the rotating cylinder 12 is driven to rotate, which in turn drives the recycling mechanism 04 to rotate, thus facilitating the cleaning and recycling of iron powder on the recycling mechanism 04. Magnetic powder is recycled through the first discharge port 13 and the second discharge port 14. Wastewater enters the water distribution pipe 32 through the water inlet pipe 33, and then is added to the magnetic plate 41 in the recycling cylinder 11 through the water inlet pipe 33 for magnetic powder adsorption. The wastewater is guided by the baffle 42 to be discharged through the water outlet 43, improving the uniformity of wastewater addition and improving the quality of magnetic powder recycling. While one of the two magnetic plates 41 adsorbs magnetic powder in the wastewater, the other magnetic plate 41 can clean and recycle the magnetic powder on the magnetic plate 41, improving the efficiency of magnetic powder recycling. By turning on the rotating motor 23, the second gear 22 is driven to rotate, and then the rotating cylinder 12 is driven to rotate, which in turn drives the two magnetic plates 41 to rotate and switch.
[0031] Example 2
[0032] like Figures 3 to 8 As shown, a magnetic coagulation and magnetic powder purification and recycling device includes a water equalization mechanism 03, a rotation mechanism 01, a rotation drive mechanism 02, a recycling mechanism 04, a cleaning drive mechanism 05, and a cleaning mechanism 06. The rotation drive mechanism 02 is installed on the rotation mechanism 01, the water equalization mechanism 03 is installed on the outer wall of the rotation mechanism 01, the recycling mechanism 04 is installed on the rotation mechanism 01, the cleaning drive mechanism 05 is installed on the rotation mechanism 01, and the cleaning mechanism 06 is installed on the recycling mechanism 04.
[0033] The rotating drive mechanism 02 drives the rotating mechanism 01 to rotate the recycling mechanism 04. The water equalization mechanism 03 evenly feeds the magnetic coagulation wastewater through the recycling mechanism 04. The recycling mechanism 04 adsorbs the magnetic powder. The cleaning drive mechanism 05 drives the cleaning mechanism 06 to clean and recycle the magnetic powder adsorbed by the recycling mechanism 04.
[0034] The recycling mechanism 04 includes two magnetic plates 41, two baffles 42 and a water outlet 43. The two magnetic plates 41 are installed on the rotating cylinder 12, the baffles 42 are installed on the magnetic plates 41, and the water outlet 43 is installed on the outer wall of the recycling cylinder 11.
[0035] The cleaning drive mechanism 05 includes a lead screw 51, a cleaning motor 52, a cleaning groove 53, and a sliding transmission frame 54. The lead screw 51 is rotatably installed inside the rotating cylinder 12. The cleaning motor 52 is installed on the outer wall of the rotating cylinder 12. The output end of the cleaning motor 52 is connected to the lead screw 51. The rotating cylinder 12 is provided with a cleaning groove 53. The sliding transmission frame 54 is slidably installed inside the rotating cylinder 12 and inside the cleaning groove 53. The sliding transmission frame 54 is threadedly engaged with the lead screw 51.
[0036] The cleaning mechanism 06 includes two scrapers 61, two drive frames 62, two transmission grooves 63, and two transmission sliders 64. The two scrapers 61 are slidably mounted on two baffles 42 respectively, and the two drive frames 62 are respectively mounted on the two scrapers 61. Each drive frame 62 is provided with a transmission groove 63. The sliding transmission frame 54 is provided with two guide grooves, and the transmission sliders 64 are slidably mounted in the guide grooves and the transmission grooves 63.
[0037] When cleaning the magnetic powder on the baffle 42, gravity causes the lower transmission slider 64 to slide within the guide groove and transmission groove 63, while the upper transmission slider 64 slides into the guide groove. At this time, the cleaning motor 52 is turned on to drive the lead screw 51 to rotate, which in turn drives the sliding transmission frame 54 to slide within the cleaning groove 53 through the threaded connection. This, in turn, drives the scraper 61 on the magnetic plate 41 to be cleaned to slide on the baffle 42, thereby cleaning and recycling the magnetic powder on the baffle 42, and discharging the magnetic powder from the first discharge port 13 and the second discharge port 14.
[0038] like Figures 1 to 8 As shown, this utility model discloses a magnetic coagulation and magnetic powder purification and recovery device. During operation, the rotating motor 23 drives the second gear 22 to rotate, which in turn drives the rotating cylinder 12 to rotate, thereby rotating the recovery mechanism 04. This facilitates the cleaning and recovery of iron powder on the recovery mechanism 04. Magnetic powder is recovered through the first discharge port 13 and the second discharge port 14. Wastewater enters the distribution pipe 32 through the inlet pipe 33, and then is added to the magnetic plate 41 inside the recovery cylinder 11 for magnetic powder adsorption. The baffle 42 guides the wastewater to be discharged through the outlet 43, improving the uniformity of wastewater addition and the quality of magnetic powder recovery. While one of the two magnetic plates 41 adsorbs magnetic powder from the wastewater, the other magnetic plate 41 can also adsorb magnetic powder from the magnetic field. The magnetic powder on plate 41 is cleaned and recycled to improve the efficiency of magnetic powder recycling. By turning on the rotating motor 23, the second gear 22 is driven to rotate, and then the rotating cylinder 12 is driven to rotate, which in turn drives the two magnetic plates 41 to rotate and switch. When the magnetic powder on the baffle 42 needs to be cleaned, the lower transmission slider 64 slides in the guide groove and transmission groove 63 by gravity, while the upper transmission slider 64 slides into the guide groove. At this time, the cleaning motor 52 is turned on to drive the lead screw 51 to rotate, which in turn drives the sliding transmission frame 54 to slide in the cleaning groove 53 through the threaded relationship. This drives the scraper 61 on the magnetic plate 41 that needs to be cleaned to slide on the baffle 42, thereby cleaning and recycling the magnetic powder on the baffle 42, and discharging the magnetic powder from the first discharge port 13 and the second discharge port 14.
[0039] The rotary motor 23 and cleaning motor 52 of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0040] The main function achieved by this utility model is to facilitate the cleaning and recycling of magnetic powder during the magnetic powder purification and recycling process, thereby improving the efficiency and quality of magnetic powder recycling.
[0041] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A magnetic coagulation and magnetic powder purification and recovery device, comprising a water equalization mechanism (03); characterized in that, It also includes a rotating mechanism (01), a rotating drive mechanism (02), a recycling mechanism (04), a cleaning drive mechanism (05), and a cleaning mechanism (06). The rotating drive mechanism (02) is installed on the rotating mechanism (01), the water distribution mechanism (03) is installed on the outer wall of the rotating mechanism (01), the recycling mechanism (04) is installed on the rotating mechanism (01), the cleaning drive mechanism (05) is installed on the rotating mechanism (01), and the cleaning mechanism (06) is installed on the recycling mechanism (04). The rotation drive mechanism (02) drives the rotation mechanism (01) to rotate the recycling mechanism (04), the water equalization mechanism (03) evenly passes the magnetic coagulation sewage through the recycling mechanism (04), the recycling mechanism (04) adsorbs the magnetic powder, and the cleaning drive mechanism (05) drives the cleaning mechanism (06) to clean and recycle the magnetic powder adsorbed by the recycling mechanism (04).
2. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 1, characterized in that, The rotating mechanism (01) includes a recycling cylinder (11), a rotating cylinder (12), a first discharge port (13), and a second discharge port (14). The rotating cylinder (12) is rotatably mounted on the recycling cylinder (11), the first discharge port (13) is mounted on the side wall of the recycling cylinder (11), and the second discharge port (14) is mounted on the bottom end of the recycling cylinder (11). The recycling cylinder (11) is installed at a certain angle.
3. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 2, characterized in that, The rotation drive mechanism (02) includes a first gear (21), a second gear (22) and a rotation motor (23). The first gear (21) is mounted on the rotating cylinder (12), and the second gear (22) is rotatably mounted on the recycling cylinder (11) via a rotating shaft. The first gear (21) meshes with the second gear (22). The rotation motor (23) is mounted on the outer wall of the recycling cylinder (11) via a motor frame. The output end of the rotation motor (23) is connected to the rotating shaft of the second gear (22).
4. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 2, characterized in that, The water distribution mechanism (03) includes multiple water distribution pipes (31), water distribution pipes (32) and water inlet pipes (33). Multiple water distribution pipes (31) are installed on the outer wall of the recycling cylinder (11), water distribution pipes (32) are installed on the water distribution pipes (31), water inlet pipes (33) are installed on the water distribution pipes (32), and water distribution pipes (32) are connected to external sewage pipes.
5. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 2, characterized in that, The recycling mechanism (04) includes two magnetic plates (41), two baffles (42) and a water outlet (43). The two magnetic plates (41) are installed on the rotating cylinder (12), the baffles (42) are installed on the magnetic plates (41), and the water outlet (43) is installed on the outer wall of the recycling cylinder (11).
6. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 2, characterized in that, The cleaning drive mechanism (05) includes a lead screw (51), a cleaning motor (52), a cleaning groove (53), and a sliding transmission frame (54). The lead screw (51) is rotatably installed inside the rotating cylinder (12). The cleaning motor (52) is installed on the outer wall of the rotating cylinder (12). The output end of the cleaning motor (52) is connected to the lead screw (51). The rotating cylinder (12) is provided with a cleaning groove (53). The sliding transmission frame (54) is slidably installed inside the rotating cylinder (12) and inside the cleaning groove (53). The sliding transmission frame (54) is threadedly engaged with the lead screw (51).
7. The magnetic coagulation and magnetic powder purification and recovery equipment as described in claim 6, characterized in that, The cleaning mechanism (06) includes two scrapers (61), two drive frames (62), two transmission grooves (63) and two transmission sliders (64). The two scrapers (61) are slidably mounted on two baffles (42) respectively. The two drive frames (62) are mounted on the two scrapers (61) respectively. Each drive frame (62) is provided with a transmission groove (63). The sliding transmission frame (54) is provided with two guide grooves. The transmission sliders (64) are slidably mounted in the guide grooves and the transmission grooves (63).
Citation Information
Patent Citations
Magnetic coagulating sedimentation purification device
CN209554981U