Large particle impurity removal mechanism for cobalt salt
By designing a mechanism for removing impurities with large particles of cobalt salt, centrifugal force is used to remove large particles of impurities in cobalt salt, and cleaning and recycling cobalt salts remaining on the surface of impurities, the problems of degradation of cobalt salt quality and equipment damage are solved, and efficient cobalt salt treatment and environmental protection are achieved.
Patent Information
- Application Number
- CN202421904338.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-07
AI Technical Summary
The prior art cannot effectively remove large-particle impurities in cobalt salts, and cannot quickly recover cobalt salts remaining on the surface of impurities, resulting in degradation of cobalt salt quality, equipment damage and environmental pollution problems.
A large particle impurity removal mechanism for cobalt salt is designed. Through the cooperation of the rotating disc and the compression assembly, the impurities of large particles are removed by centrifugal force, and the cobalt salt remaining on the surface of the impurity is cleaned by the treatment assembly, and the rinsing liquid is uniformly recovered and processed.
It has achieved rapid removal of large particles of cobalt salt, improved the quality of cobalt salt, extended the service life of the equipment, reduced environmental pollution, and saved resources and economic costs.
Smart Images

Figure CN223171072U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cobalt salt production, in particular to a large particle impurity removal mechanism for cobalt salts. Background Technique
[0002] Cobalt, with the element symbol Co, is a silver-white ferromagnetic metal. Its surface is silver-white with a slightly pinkish tint. It is located in the 4th period and the VIIIth group in the periodic table, with an atomic number of 27, an atomic weight of 58.9332, and a close-packed hexagonal crystal. The common valence states are +2 and +3. Cobalt is a shiny steel-gray metal, relatively hard and brittle, with ferromagnetism. Its magnetism disappears when heated to 1150 °C. It does not react with water at room temperature and is also very stable in humid air. When heated in air above 300 °C, it oxidizes to form CoO, and burns to form Co3O4 at white heat. The fine metal cobalt powder made by the hydrogen reduction method can spontaneously combust in air to form cobalt oxide.
[0003] In an impurity removal device for industrial salt production disclosed in the Chinese utility model patent application publication specification CN221335249U, although on the one hand, it can achieve rapid closing, can be used to stop the salt particles continuously conveyed by the conveyor belt, and can quickly replace the screening installation plate. At the same time, by using a stop cleaning part, it can also assist in cleaning and rubbing the gap to adjust the installation mesh plate during daily use, realizing auxiliary work of replacing without stopping the machine, without the need to stop the salt particle conveyor belt. At the same time, this structure can assist in efficient adjustment work, ensure the processing quality of the structure, and can assist in efficient gap adjustment. However, the existing equipment only realizes auxiliary cleaning and rubbing the gap to adjust the installation mesh plate during daily use and replacing the industrial salt impurity removal equipment without stopping the machine to improve work efficiency. It cannot quickly and effectively remove large particle impurities in cobalt salts to improve the quality of cobalt salts, nor can it quickly recover and refine the residual cobalt salts on the surface of the removed impurities for repeated use. It cannot wash the inside of the equipment to reduce the damage of cobalt salts to the equipment and increase the service life, and cannot uniformly recover the rinsed liquid for subsequent treatment to reduce environmental pollution. Therefore, a utility model is proposed to solve the above problems. Summary of the Utility Model
[0004] (I) Technical Problems to be Solved
[0005] Aiming at the deficiencies of the prior art, the utility model provides a large particle impurity removal mechanism for cobalt salts, which solves the problems of removing cobalt salt impurities to improve the quality of cobalt salts, recovering and reusing the residual cobalt salts on the removed impurities, flushing the equipment to increase the service life, and recovering the flushing liquid to reduce environmental pollution.
[0006] (II) Technical Solutions
[0007] To achieve the above object, the utility model is realized by the following technical solutions: A large particle impurity removal mechanism for cobalt salts, including a fixed seat, a device bottom plate is provided at the bottom of one side of the fixed seat, a material box is provided on one side of the fixed seat, an impurity removal barrel is provided inside the fixed seat, an impurity removal cover is inserted on the upper surface of the impurity removal barrel, a rotating disk is rotatably connected to the inner bottom wall of the material box, a rotating component is inserted inside the rotating disk, one end of the rotating component is engaged with a compression component, a processing component is provided on one side of the device bottom plate, a cleaning component is provided on one side of the fixed seat, a liquid outlet pump is inserted on one side of the processing component, one end of the liquid outlet pump is sleeved with a storage tank, a storage pump is inserted on one side of the storage tank, impurity removal grooves are provided on the surface of the impurity removal barrel, impurity removal springs are provided at the bottom of the impurity removal grooves, one end of the impurity removal spring is sleeved with a pressing plate, and an impurity removal filter plate is provided on one side of the pressing plate.
[0008] Optionally, the rotating component includes a turntable shaft, a first belt, a belt motor, a second belt, a first connecting shaft, a third belt, a second connecting shaft, and a rotating gear. The first belt is provided on the surface of the turntable shaft, the belt motor is provided inside the first belt, the second belt is provided on the surface of the belt motor, the first connecting shaft is provided inside the second belt, the third belt is provided on the surface of the first connecting shaft, and the rotating gear is sleeved at one end of the second connecting shaft.
[0009] Optionally, the compression component includes a compression gear, a compression shaft, a compression cylinder, and a compression block. The compression shaft is inserted at one end of the compression gear, the compression cylinder is sleeved on the surface of the compression shaft, and the compression block is provided on the surface of the compression cylinder.
[0010] Optionally, the processing component includes a processing barrel, a processing motor, a processing cover, and a stirrer. The processing motor is provided at one end of the processing barrel, the processing cover is provided at one end of the processing motor, and the stirrer is sleeved inside the processing cover.
[0011] Optionally, the cleaning component includes a cleaning water tank, a cleaning pump, a cleaning pipe, and a cleaning head. The cleaning pump is inserted on one side of the cleaning water tank, the cleaning pipe is inserted at one end of the cleaning pump, and the cleaning head is inserted at one end of the cleaning pipe.
[0012] Optionally, a cleaning seat is provided at the top of one side of the cleaning water tank, and the cleaning seat of the cleaning water tank fixes the cleaning head to prevent it from falling off.
[0013] Optionally, a processing hole is provided at the bottom of one side of the processing barrel, and a processing filter screen is provided inside the processing hole of the processing barrel.
[0014] Optionally, a discharge chute is clamped inside the device bottom plate, a discharge pipe is arranged at the bottom of the surface of the impurity removal barrel, the discharge chute is connected to the discharge pipe, and a feed pipe is arranged on the upper surface of the impurity removal cover.
[0015] In summary, the technical effects and advantages of the present utility model are as follows:
[0016] 1. The structure of the present utility model is reasonable. By adding cobalt salt to the impurity removal barrel, the cobalt salt falls onto the impurity removal filter plate. The belt motor drives the turntable shaft to drive the turntable to rotate, and the rotating gear drives the compression gear to rotate, so that the compression shaft drives the compression cylinder to rotate and the compression block rotates synchronously. When the compression block abuts against the pressure plate, the pressure plate drives the impurity removal filter plate to move vertically downward. When the compression block disengages from the pressure plate, the elastic force of the impurity removal spring makes the pressure plate move vertically upward, so that large-particle impurities in the cobalt salt stay at the top of the impurity removal filter plate, and the cobalt salt falls onto the turntable. The rotation of the turntable generates centrifugal force, and the cobalt salt is discharged into the material box, quickly removing the cobalt salt with large-particle impurities. The centrifugal force discharges the cobalt salt, solving the problem that it is time-consuming and laborious for manual recovery of cobalt salt, and can effectively remove large-particle impurities in the cobalt salt, improving the quality of the cobalt salt.
[0017] 2. In the present utility model, the treatment cover rotates on the treatment barrel to open and close. Water and methanol are added into the treatment barrel, and the stirrer fully mixes the water and methanol. The impurity removal cover is opened to take out the impurities on the impurity removal filter plate and put them into the treatment barrel, and the stirrer rotates to wash the impurities to remove the cobalt salt remaining on the surface of the impurities. The liquid outflow pump rotates and the liquid flows into the storage tank for storage, so as to remove the cobalt salt remaining on the surface of the impurities, facilitating the subsequent refining and reuse of the cobalt salt in the liquid, effectively saving resources and the economic expenditure of the factory. The cleaning pump rotates to flush the equipment with clean water, and the flushed liquid flows into the material box for recycling and then poured into the storage tank for unified recycling and subsequent treatment. The flushing inside the equipment avoids the damage of the cobalt salt to the equipment, increases the service life of the equipment, and the unified recycling and subsequent treatment of the flushed liquid avoid direct discharge, which causes serious pollution to the environment and reduces environmental pollution. Description of the Drawings
[0018] Figure 1 is a schematic structural diagram of the present utility model; [[ID=z17]]
[0019] Figure 2 is an exploded schematic view of the fixed seat structure of the present utility model;
[0020] Figure 3 is an exploded schematic view of the liquid outflow pump structure of the present utility model;
[0021] Figure 4 is a schematic plan view of the impurity removal barrel structure of the present utility model;
[0022] Figure 5 is a schematic plan view of the impurity removal spring structure of the present utility model;
[0023] Figure 6 This is a schematic structural diagram of the belt motor of the present utility model;
[0024] Figure 7 This is a schematic structural diagram of the compression gear of the present utility model;
[0025] Figure 8 This is a schematic structural diagram of the treatment barrel of the present utility model;
[0026] Figure 9 This is an exploded schematic structural diagram of the cleaning water tank of the present utility model.
[0027] In the figure: 1, fixed seat; 2, equipment bottom plate; 3, material box; 4, impurity removal barrel; 5, impurity removal cover; 6, rotating disk; 7, rotating assembly; 701, rotating disk shaft; 702, first belt; 703, belt motor; 704, second belt; 705, first connecting shaft; 706, third belt; 707, second connecting shaft; 708, rotating gear; 8, compression assembly; 801, compression gear; 802, compression shaft; 803, compression cylinder; 804, compression block; 9, treatment assembly; 901, treatment barrel; 902, treatment motor; 903, treatment cover; 904, stirrer; 10, cleaning assembly; 1001, cleaning water tank; 1002, cleaning pump; 1003, cleaning pipe; 1004, cleaning head; 11, liquid outlet pump; 12, storage tank; 13, storage pump; 14, impurity removal tank; 15, impurity removal spring; 16, pressing plate; 17, impurity removal filter plate; 18, discharge chute. Specific embodiments
[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0029] Embodiment: Refer to Figures 1-9A large-particle impurity removal mechanism for cobalt salt shown in the figure includes a fixed seat 1. At the bottom of one side of the fixed seat 1, there is an equipment bottom plate 2. On one side of the fixed seat 1, there is a material box 3. Inside the fixed seat 1, there is an impurity removal barrel 4. An impurity removal cover 5 is inserted into the upper surface of the impurity removal barrel 4. The inner bottom wall of the material box 3 is rotatably connected to a rotating disk 6. A rotating component 7 is inserted into the rotating disk 6. One end of the rotating component 7 meshes with a compression component 8. On one side of the equipment bottom plate 2, there is a treatment component 9. On one side of the fixed seat 1, there is a cleaning component 10. A liquid outlet pump 11 is inserted into one side of the treatment component 9. One end of the liquid outlet pump 11 is sleeved with a storage tank 12. A storage pump 13 is inserted into one side of the storage tank 12. Impurity removal grooves 14 are formed on the surface of the impurity removal barrel 4. Impurity removal springs 15 are arranged at the bottoms of the impurity removal grooves 14. One end of each impurity removal spring 15 is sleeved with a pressing plate 16. An impurity removal filter plate 17 is arranged on one side of the pressing plate 16.
[0030] As a preferred implementation manner in this embodiment, as Figures 2 to 9As shown in the figure, a device bottom plate 2 is provided at the bottom of one side of the fixed seat 1. A material box 3 is provided on one side of the fixed seat 1. The fixed seat 1 and the material box 3 are not fixedly connected. An impurity removal barrel 4 is provided inside the fixed seat 1. An impurity removal cover 5 is inserted on the upper surface of the impurity removal barrel 4. A rotating disk 6 is rotatably connected to the inner bottom wall of the material box 3. A rotating component 7 is inserted inside the rotating disk 6. The rotating component 7 includes a rotating disk shaft 701, a first belt 702, a belt motor 703, a second belt 704, a first connecting shaft 705, a third belt 706, a second connecting shaft 707, and a rotating gear 708. The first belt 702 is provided on the surface of the rotating disk shaft 701. The belt motor 703 is provided inside the first belt 702. The second belt 704 is provided on the surface of the belt motor 703. The first connecting shaft 705 is provided inside the second belt 704. The third belt 706 is provided on the surface of the first connecting shaft 705. The second connecting shaft 707 is provided inside the third belt 706. A rotating gear 708 is sleeved at one end of the second connecting shaft 707. The rotating gear 708 meshes with a compression gear 801. One end of the rotating component 7 meshes with a compression component 8. The compression component 8 includes a compression gear 801, a compression shaft 802, a compression cylinder 803, and a compression block 804. The compression shaft 802 is inserted at one end of the compression gear 801. The compression cylinder 803 is sleeved on the surface of the compression shaft 802. The compression block 804 is provided on the surface of the compression cylinder 803. A bracket is provided on the upper surface of the device bottom plate 2. The first shaft seat is sleeved on the surface of the compression shaft 802. The first shaft seat is connected to the bracket. A processing component 9 is provided on one side of the device bottom plate 2. The processing component 9 includes a processing barrel 901, a processing motor 902, a processing cover 903, and a stirrer 904. The processing motor 902 is provided at one end of the processing barrel 901. The processing cover 903 is provided at one end of the processing motor 902. The stirrer 904 is sleeved inside the processing cover 903. A processing hole is opened at the bottom of one side of the processing barrel 901. A processing filter plate is provided inside the processing hole of the processing barrel 901. The material of the processing barrel 901 is stainless steel. A cleaning component 10 is provided on one side of the fixed seat 1. The cleaning component 10 includes a cleaning water tank 1001, a cleaning pump 1002, a cleaning pipe 1003, and a cleaning head 1004. The cleaning pump 1002 is inserted on one side of the cleaning water tank 1001. The cleaning pipe 1003 is inserted at one end of the cleaning pump 1002. The cleaning head 1004 is inserted at one end of the cleaning pipeAt the bottom of the surface of the impurity removal barrel 4, there is a discharge pipe, and the discharge chute 18 is connected to the discharge pipe. On the upper surface of the impurity removal cover 5, there is a feed pipe. During use, cobalt salt is added to the impurity removal barrel 4 through the feed pipe on the impurity removal cover 5. The cobalt salt added into the impurity removal barrel 4 drops onto the impurity removal filter plate 17. By rotating the belt motor 703, the first belt 702 drives the turntable shaft 701 to rotate, so that the turntable shaft 701 drives the rotating disk 6 to rotate. By rotating the belt motor 703, the second belt 704 drives the first connecting shaft 705 to rotate. By rotating the first connecting shaft 705, the third belt 706 drives the second connecting shaft 707 to rotate, so that the rotating gear 708 drives the compression gear 801 to rotate. By driving the compression gear 801, the compression shaft 802 rotates, so that the compression shaft 802 drives the compression cylinder 803 to rotate. By rotating the compression cylinder 803, the compression block 804 rotates synchronously. When the compression block 804 abuts against the pressing plate 16, by rotating the compression block 804, the pressing plate 16 drives the impurity removal filter plate 17 to move vertically downward. When the compression block 804 disengages from the pressing plate 16, the elastic force of the impurity removal spring 15 makes the pressing plate 16 move vertically upward, and the pressing plate 16 moves to make the impurity removal filter plate 17 move vertically upward. Through repeated cycles, the reciprocating vibration of the impurity removal filter plate 17 in the vertical direction can be realized. The vibration of the impurity removal filter plate 17 causes large-particle impurities in the cobalt salt to stay at the top of the impurity removal filter plate 17. The cobalt salt passes through the impurity removal filter plate 17 and drops onto the rotating disk 6. By driving the rotating disk 6 to rotate through the turntable shaft 701, the rotation of the rotating disk 6 generates a centrifugal force. Through the centrifugal force, the cobalt salt enters the material box 3 through the discharge pipe and the discharge chute 18, so that the cobalt salt with large-particle impurities can be quickly removed, which improves the working efficiency. The centrifugal force discharges the cobalt salt, solving the problem that it is time-consuming and laborious for manual recovery of cobalt salt. After the impurities are removed from the cobalt salt, by driving the treatment cover 903 to rotate through the treatment motor 902, the treatment cover 903 rotates and opens and closes on the treatment barrel 901. By opening the treatment cover 903, water and methanol are added into the treatment barrel 901. By closing the treatment cover 903 and rotating the stirrer 904, the water and methanol in the treatment barrel 901 are fully mixed. After opening the treatment cover 903, the impurities on the impurity removal filter plate 17 are taken out and put into the treatment barrel 901 by opening the impurity removal cover 5, and then the treatment cover 903 is closed. By rotating the stirrer 904, the impurities are washed with the mixed water and methanol to remove the cobalt salt remaining on the surface of the impurities. After the removal, the liquid in the treatment barrel 901 is pumped by the liquid outlet pump 11 to flow into the storage tank 12 for storage, so that the cobalt salt remaining on the surface of the impurities can be quickly removed, which is convenient for subsequent refining and reuse of the cobalt salt in the liquid, effectively saving resources and saving the economic expenditure of the factory. After the equipment is used up, by adding clean water into the cleaning water tank 1001, the clean water in the cleaning water tank 1001 is pumped by the cleaning pump 1002, and the impurity removal barrel 4, the impurity removal cover 5, the rotating disk 6, the impurity removal filter plate 17, and the discharge chute 18 are rinsed through the cleaning pipe 1003 and the cleaning head 1004.When removing impurities from cobalt salts, cobalt salts remain in the impurity removal barrel 4, impurity removal cover 5, rotating disk 6, impurity removal filter plate 17, and discharge chute 18. The rinsed liquid flows into the material box 3, is recycled, and then poured into the storage tank 12 for unified subsequent recycling treatment. Thus, the rinsing inside the equipment avoids damage to the equipment caused by cobalt salts, increases the service life of the equipment, and the unified subsequent recycling treatment of the rinsed liquid avoids serious environmental pollution caused by direct discharge, reducing environmental pollution.
[0031] The working principle of this utility model:
[0032] During use, cobalt salt is added to the impurity removal barrel 4 through the feed pipe on the impurity removal cover 5, and the cobalt salt in the impurity removal barrel 4 falls onto the impurity removal filter plate 17. The belt motor 703 rotates to make the first belt 702 drive the turntable shaft 701 to rotate, and the turntable shaft 701 drives the rotating disk 6 to rotate. The belt motor 703 rotates to make the second belt 704 drive the first connecting shaft 705 to rotate. The first connecting shaft 705 rotates to make the third belt 706 drive the second connecting shaft 707 to rotate, so that the rotating gear 708 drives the compression gear 801 to rotate, and the compression gear 801 drives the compression shaft 802 to rotate, so that the compression shaft 802 drives the compression cylinder 803 to rotate, and the compression cylinder 803 rotates and the compression shaft 807 rotates. The compression block 804 rotates synchronously. When the compression block 804 conflicts with the pressure plate 16, the compression block 804 rotates and the pressure plate 16 drives the impurity removal filter plate 17 to move vertically downward. When the compression block 804 is separated from the pressure plate 16, the elastic force of the impurity removal spring 15 causes the pressure plate 16 to move vertically upward. The pressure plate 16 moves and causes the impurity removal filter plate 17 to move vertically upward. The reciprocating vibration of the impurity removal filter plate 17 in the vertical direction can be achieved through reciprocating circulation. The vibration of the impurity removal filter plate 17 causes large particles of impurities in the cobalt salt to stay on the top of the impurity removal filter plate 17. The cobalt salt passes through the impurity removal filter plate 17 and falls onto the rotating disk 6. The rotating disk 6 is driven to rotate by the turntable shaft 701. The rotation of the rotating disk 6 generates centrifugal force, which causes the cobalt salt to pass through the discharge pipe and the discharge The material trough 18 enters the material box 3, and after the cobalt salt is discharged from the impurities, the processing motor 902 drives the processing cover 903 to rotate, so that the processing cover 903 is rotated on the processing barrel 901 to open and close. By opening the processing cover 903, water and methanol are added to the processing barrel 901. The processing cover 903 is closed and the water and methanol in the processing barrel 901 are fully mixed by rotating the agitator 904. After opening the processing cover 903, the impurities on the impurity removal filter plate 17 are taken out by opening the impurity removal cover 5 and put into the processing barrel 901. The processing cover 903 is closed and the impurities are cleaned by the mixed water and methanol through the rotation of the agitator 904, and the cobalt salt remaining on the surface of the impurities is removed. After removal, the liquid flow in the processing barrel 901 is extracted by rotating the liquid outlet pump 11. The cleaning fluid is put into the storage box 12 for storage. After the equipment is used, clean water is added to the cleaning water tank 1001, and the clean water in the cleaning water tank 1001 is extracted by rotating the cleaning pump 1002. The impurity removal barrel 4, the impurity removal cover 5, the rotating disk 6, the impurity removal filter plate 17, and the discharge trough 18 are rinsed through the cleaning pipe 1003 and the cleaning head 1004. When the cobalt salt is removed from the impurities, the impurity removal barrel 4, the impurity removal cover 5, the rotating disk 6, the impurity removal filter plate 17, and the discharge trough 18 have cobalt salts remaining therein. The liquid after rinsing flows into the material box 3 for recovery and then poured into the storage box 12 for unified recovery and subsequent processing. The equipment can quickly remove cobalt salts with large particles of impurities, speeding up work efficiency. The centrifugal force causes the cobalt salts to be discharged, solving the time-consuming and labor-intensive problem of manually recovering cobalt salts.It can effectively remove large particle impurities in cobalt salt, improve the quality of cobalt salt, quickly remove the cobalt salt remaining on the surface of impurities, facilitate the subsequent refining and reuse of cobalt salt in the liquid, effectively save resources, save the economic expenditure of the factory, and avoid the damage of cobalt salt to the equipment by flushing the inside of the equipment, increase the service life of the equipment, and uniformly recycle and post-process the flushing liquid to avoid direct discharge, which causes serious pollution to the environment and reduces environmental pollution.
[0033] The electrical components appearing in this article are all electrically connected to an external main controller and 220V mains power, and the main controller can be a conventional known device such as a computer for control.
[0034] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A large-particle impurity removal mechanism for cobalt salts, comprising a fixed seat (1), characterized in that: A device base plate (2) is provided at the bottom of one side of the fixed base (1). A material box (3) is provided on one side of the fixed base (1). An impurity removal barrel (4) is provided inside the fixed base (1). An impurity removal cover (5) is inserted on the upper surface of the impurity removal barrel (4). A rotating disk (6) is rotatably connected to the inner bottom wall of the material box (3). A rotating assembly (7) is inserted inside the rotating disk (6). One end of the rotating assembly (7) meshes with a compression assembly (8). A processing assembly (9) is provided on one side of the device base plate (2). A cleaning assembly (10) is provided on one side of the fixed base (1). A liquid outlet pump (11) is inserted on one side of the processing assembly (9). One end of the liquid outlet pump (11) is sleeved with a storage tank (12). A storage pump (13) is inserted on one side of the storage tank (12). Impurity removal grooves (14) are formed on the surface of the impurity removal barrel (4). Impurity removal springs (15) are provided at the bottoms of the impurity removal grooves (14). One end of each impurity removal spring (15) is sleeved with a pressing plate (16). An impurity removal filter plate (17) is provided on one side of the pressing plate (16).
2. The large particle impurity removal mechanism for cobalt salt according to claim 1, characterized in that: The rotating assembly (7) includes a rotating disk shaft (701), a first belt (702), a belt motor (703), a second belt (704), a first connecting shaft (705), a third belt (706), a second connecting shaft (707), and a rotating gear (708). The first belt (702) is provided on the surface of the rotating disk shaft (701). The belt motor (703) is provided inside the first belt (702). The second belt (704) is provided on the surface of the belt motor (703). The first connecting shaft (705) is provided inside the second belt (704). The third belt (706) is provided on the surface of the first connecting shaft (705). The second connecting shaft (707) is provided inside the third belt (706). The rotating gear (708) is sleeved on one end of the second connecting shaft (707).
3. The large particle impurity removal mechanism for cobalt salt according to claim 1, characterized in that: The compression assembly (8) includes a compression gear (801), a compression shaft (802), a compression cylinder (803), and a compression block (804). The compression shaft (802) is inserted on one end of the compression gear (801). The compression cylinder (803) is sleeved on the surface of the compression shaft (802). The compression block (804) is provided on the surface of the compression cylinder (803).
4. A large-particle impurity removal mechanism for cobalt salts according to claim 1, characterized in that: The processing assembly (9) includes a processing barrel (901), a processing motor (902), a processing cover (903), and a stirrer (904). The processing motor (902) is provided at one end of the processing barrel (901). The processing cover (903) is provided at one end of the processing motor (902). The stirrer (904) is sleeved inside the processing cover (903).
5. The large-particle impurity removal mechanism for cobalt salt according to claim 1, wherein: The cleaning component (10) includes a cleaning water tank (1001), a cleaning pump (1002), a cleaning pipe (1003), and a cleaning head (1004). One side of the cleaning water tank (1001) is plugged with the cleaning pump (1002), one end of the cleaning pump (1002) is plugged with the cleaning pipe (1003), and one end of the cleaning pipe (1003) is plugged with the cleaning head (1004).
6. A large-particle impurity removal mechanism for cobalt salts according to claim 5, characterized in that: A cleaning base is provided at the top of one side of the cleaning water tank (1001), and the cleaning base of the cleaning water tank (1001) fixes the cleaning head (1004) to prevent it from falling off.
7. A large particle impurity removal mechanism for cobalt salts according to claim 4, characterized in that: A treatment hole is formed at the bottom of one side of the treatment barrel (901), and a treatment filter screen is provided inside the treatment hole of the treatment barrel (901).
8. A large-particle impurity removal mechanism for cobalt salts according to claim 1, characterized in that: A discharge chute (18) is clamped inside the equipment base plate (2). A discharge pipe is provided at the bottom of the surface of the impurity removal barrel (4). The discharge chute (18) is connected to the discharge pipe, and a feed pipe is provided on the upper surface of the impurity removal cover (5).
Citation Information
Patent Citations
Impurity removal device for industrial salt production
CN221335249U