Copper sulfate concentration and recovery equipment

By designing an adjustable copper sulfate concentration and recovery equipment, the problem of unsatisfactory recovery effect of existing equipment when facing waste liquids of different concentrations and types has been solved. It realizes flexible gas flow rate control and a stable recovery process, thereby improving recovery efficiency and safety.

CN224071166UActive Publication Date: 2026-04-03JIANGSU HAOSHANSHUI ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing equipment cannot dynamically adjust to different concentrations and types of waste liquid when recovering copper sulfate, resulting in unsatisfactory recovery effect. Furthermore, the fixed gas emission rate cannot adapt to changing operating conditions, affecting recovery efficiency and safety.

Method used

A copper sulfate concentration and recovery device was designed, comprising a cylinder, an exhaust pipe, a heating ring, a cooling cylinder, and a regulating component. The regulating component precisely controls the gas flow rate, and the control component finely adjusts the gas flow rate to ensure the flexibility and stability of the recovery process.

Benefits of technology

It enables flexible adjustment according to processing needs, improves the recovery efficiency of copper sulfate, reduces resource waste, and ensures the stability and safety of the gas concentration and recovery process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses copper sulfate concentrating and recycling equipment which comprises a fixing frame, a processing assembly is arranged on the fixing frame, the processing assembly comprises a cylinder body, an exhaust pipe, a feeding pipe, a shielding cover and a shell, the cylinder body is arranged on the fixing frame, the exhaust pipe is connected to the feeding pipe, the feeding pipe is arranged at the top of the cylinder body, and the shielding cover is arranged on the top of the cylinder body. The shielding cover is arranged on the feeding pipe, the shell is arranged on the outer side of the barrel, an adjusting assembly is arranged on the exhaust pipe and comprises a connecting pipe, a control pipe and an adjusting pipe, the connecting pipe is connected to one end of the exhaust pipe, the control pipe is rotationally connected to the connecting pipe, the adjusting pipe is rotationally connected to the control pipe, and the adjusting pipe is rotationally connected to the control pipe. And one end of the adjusting pipe is connected with the other end of the exhaust pipe, so that the technical problem that the recovery effect is possibly not ideal when the existing equipment is used for recovering copper sulfate and faces copper sulfate waste liquid with different concentrations and different types in the prior art is solved.
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Description

Technical Field

[0001] This utility model relates to the field of recycling equipment technology, and more specifically, it relates to a copper sulfate concentration and recycling equipment. Background Technology

[0002] In existing technologies, existing equipment often adopts fixed operating modes and processes when recovering copper sulfate, and cannot be dynamically adjusted according to different treatment needs or working conditions. This results in the equipment's recovery effect being less than ideal when facing copper sulfate waste liquid of different concentrations and types. This not only reduces the recovery efficiency, but may also lead to waste of equipment resources or incomplete treatment.

[0003] In existing equipment, the gas emission process is usually fixed and singular. The exhaust pipe channels and flow rates are often preset and cannot be quickly adjusted as needed. For example, some processing steps may require higher exhaust flow rates, while other stages may require lower gas emission rates to ensure the stability and safety of the recovery process. However, the exhaust systems of existing equipment typically lack this flexibility; once set up, the gas emission rate is difficult to adjust quickly.

[0004] The gas discharge rate of existing equipment is usually controlled by a fixed valve or mechanical structure. However, this fixed design cannot cope with the changing working conditions. The gas discharge rate directly affects the efficiency of copper sulfate recovery and the control of gas concentration. If the discharge rate is too fast, the copper sulfate may not be sufficiently cooled or concentrated, affecting the recovery effect. If the discharge rate is too slow, gas accumulation may occur, leading to instability in the reaction process or safety hazards. Utility Model Content

[0005] To address the problems existing in the prior art, this utility model provides a copper sulfate concentration and recovery equipment to solve the technical problem mentioned in the background art that the recovery effect of existing equipment may not be ideal when dealing with copper sulfate waste liquid of different concentrations and types.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a copper sulfate concentration and recovery equipment, comprising a fixed frame, on which a processing component is mounted. The processing component includes a cylinder, an exhaust pipe, a feed pipe, a shielding cover, and a shell. The cylinder is mounted on the fixed frame, the exhaust pipe is connected to the feed pipe, the feed pipe is located at the top of the cylinder, the shielding cover is located on the feed pipe, and the shell is located on the outside of the cylinder. An adjustment component is mounted on the exhaust pipe, the adjustment component including a connecting pipe, a control pipe, and an adjusting pipe. The connecting pipe is connected to one end of the exhaust pipe, the control pipe is rotatably connected to the connecting pipe, and the adjusting pipe is rotatably connected to the control pipe. One end of the adjusting pipe is connected to the other end of the exhaust pipe.

[0007] The present invention is further configured such that a motor is provided at the bottom of the cylinder, a stirring rod is connected to the output end of the motor, stirring blades are evenly connected to the stirring rod, a stirring plate is connected to the top of the stirring rod, a heating ring is installed between the outer shell and the cylinder, a flipping rod is rotatably connected to the cylinder, a flipping plate is connected to the flipping rod, and a fixing plate is installed on the cylinder. The rotation of the stirring rod is completed through the coordinated use of the various components.

[0008] The present invention is further configured such that bolts are detachably installed between the fixing plate and the flipping rod, one end of the exhaust pipe is connected to a cooling cylinder, a cooling pipe is installed inside the cooling cylinder, a water injection pipe is connected to the top of the cooling pipe through the cooling cylinder, a drain pipe is connected to the other end of the cooling pipe through the cooling cylinder, a valve is installed on the drain pipe, an installation bracket is installed at the bottom of the cooling cylinder, and a discharge pipe is connected to one end of the cooling pipe through the cooling cylinder. Through the coordinated use of these components, the discharge process of copper sulfate is completed.

[0009] The present invention is further configured such that an adjusting ring is slidably connected to the adjusting tube, a tension spring is connected between the adjusting ring and the adjusting tube, and a rotating ring is rotatably connected to the adjusting tube, so that the compression process of the tension spring is completed through the cooperation of the various components.

[0010] The present invention is further configured such that adjusting rods are evenly installed on the adjusting ring, and fixing rods are installed on the adjusting rods. The rotating ring has fixing holes and through holes. The through holes are adapted to the adjusting rods, and the fixing holes are adapted to the fixing rods. The fixing process of the adjusting rods is completed through the cooperation of the various components.

[0011] The present invention is further configured such that a control component is provided on the control tube, the control component including a flow tube, a flow hole and a threaded rod, the flow tube being slidably connected to the regulating tube, the flow hole being evenly opened on the flow tube, and the threaded rod being installed on the inner side of the control tube and threadedly connected to the flow tube. The rotation process of the threaded rod is completed through the cooperative use of each component.

[0012] The present invention is further configured such that a guide rod is connected to one end of the flow tube, the guide rod is slidably connected to the regulating tube, and a moving block is slidably connected to the regulating tube, so that the moving block can be moved by the cooperation of the various components.

[0013] The present invention is further configured such that springs are evenly connected between the moving block and the adjusting tube, one end of the moving block abuts against the adjusting ring, the other end of the moving block is inserted into the control tube, and a flip cover is connected to the flipping rod. The compression process of the spring is completed through the cooperation of the various components. Beneficial effects

[0014] Compared with the prior art, this utility model provides a copper sulfate concentration and recovery equipment, which has the following beneficial effects:

[0015] 1. The processing components include a cylinder, heating ring, and cooling cylinder, which can effectively heat copper sulfate waste liquid, causing it to vaporize. The gas is then introduced into the cooling cylinder through the exhaust pipe for cooling. Cooling water in the cooling pipe flows into the cooling cylinder, which can effectively reduce the temperature of the gas, thereby improving the recovery efficiency and reducing the waste of copper sulfate.

[0016] 2. The regulating components include regulating pipes, regulating rings, rotating rings, etc. Through the cooperation between the regulating rings and the regulating rods, the gas outflow rate can be precisely adjusted to ensure that the concentration and recovery process of copper sulfate gas can be carried out at the ideal flow rate. This adjustability provides flexible operating space to adapt to different processing needs.

[0017] 3. The control component, through the combination of a flow tube, a flow orifice, and a threaded rod, can precisely regulate the gas flow rate during the adjustment process. By sliding the flow tube, the opening and closing degree of the gas flow orifice is adjusted, and the flow rate is finely controlled. This not only ensures the stability of the gas flow, but also allows for the adjustment of the concentration and flow rate of copper sulfate gas according to actual needs, thereby improving the recovery efficiency. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a copper sulfate concentration and recovery equipment according to the present invention;

[0019] Figure 2 This is a cross-sectional view of the structure of this utility model;

[0020] Figure 3 This is a side view of the structure of this utility model;

[0021] Figure 4 This is a cross-sectional view of the cooling cylinder in this utility model;

[0022] Figure 5 This is a schematic diagram of the adjustment component in this utility model;

[0023] Figure 6 This is a cross-sectional view of the adjustment component in this utility model;

[0024] Figure 7 This is a partial cross-sectional view of the adjustment component in this utility model.

[0025] In the diagram: 1. Fixing frame; 2. Cylinder body; 3. Exhaust pipe; 4. Feed pipe; 5. Cover; 6. Outer shell; 7. Connecting pipe; 8. Control pipe; 9. Adjusting pipe; 10. Motor; 11. Stirring rod; 12. Stirring blade; 13. Stirring plate; 14. Heating ring; 15. Tilting rod; 16. Tilting plate; 17. Fixing plate; 18. Bolt; 19. Cooling cylinder; 20. Cooling pipe; 21. Water injection pipe; 22. Drain pipe; 23. Valve; 24. Mounting frame; 25. Discharge pipe; 26. Adjusting ring; 27. Tension spring; 28. Rotating ring; 29. ​​Adjusting rod; 30. Fixing rod; 31. Fixing hole; 32. Through hole; 33. Flow pipe; 34. Flow hole; 35. Threaded rod; 36. Guide rod; 37. Moving block; 38. Spring; 39. Tilting cover. Detailed Implementation

[0026] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0027] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0028] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0029] Please see Figures 1-7A copper sulfate concentration and recovery equipment includes a fixed frame 1, on which a processing component is mounted. The processing component includes a cylinder 2, an exhaust pipe 3, a feed pipe 4, a shielding cover 5, and an outer shell 6. The cylinder 2 is mounted on the fixed frame 1, the exhaust pipe 3 is connected to the feed pipe 4, the feed pipe 4 is located at the top of the cylinder 2, the shielding cover 5 is located on the feed pipe 4, and the outer shell 6 is located on the outside of the cylinder 2. An adjustment component is mounted on the exhaust pipe 3, which includes a connecting pipe 7, a control pipe 8, and an adjustment pipe 9. The connecting pipe 7 is connected to one end of the exhaust pipe 3, the control pipe 8 is rotatably connected to the connecting pipe 7, and the adjustment pipe 9 is rotatably connected to the control pipe 8. One end of the adjustment pipe 9 is connected to the other end of the exhaust pipe 3.

[0030] A motor 10 is provided at the bottom of the cylinder 2. A stirring rod 11 is connected to the output end of the motor 10. Stirring blades 12 are evenly connected to the stirring rod 11. A stirring plate 13 is connected to the top of the stirring rod 11. A heating ring 14 is installed between the outer shell 6 and the cylinder 2. A flipping rod 15 is rotatably connected to the cylinder 2. A flipping plate 16 is connected to the flipping rod 15. A fixing plate 17 is installed on the cylinder 2.

[0031] Bolts 18 are detachably installed between the fixed plate 17 and the flip rod 15. One end of the exhaust pipe 3 is connected to a cooling cylinder 19. A cooling pipe 20 is installed inside the cooling cylinder 19. A water injection pipe 21 is connected to the top of the cooling pipe 20 through the cooling cylinder 19. A drain pipe 22 is connected to the other end of the cooling pipe 20 through the cooling cylinder 19. A valve 23 is installed on the drain pipe 22. A mounting bracket 24 is installed at the bottom of the cooling cylinder 19. A discharge pipe 25 is connected to one end of the cooling pipe 20 through the cooling cylinder 19.

[0032] An adjusting ring 26 is slidably connected to the adjusting tube 9, a tension spring 27 is connected between the adjusting ring 26 and the adjusting tube 9, and a rotating ring 28 is rotatably connected to the adjusting tube 9.

[0033] Adjusting rods 29 are evenly installed on the adjusting ring 26, and fixing rods 30 are installed on the adjusting rods 29. The rotating ring 28 has a fixing hole 31 and a through hole 32. The through hole 32 is adapted to the adjusting rod 29, and the fixing hole 31 is adapted to the fixing rod 30.

[0034] In this embodiment, during use, the shielding cover 5 is opened, and then the waste liquid containing copper sulfate is injected into the cylinder 2 along the feed pipe 4. The heating ring 14 between the outer shell 6 and the cylinder 2 is activated to fully heat the copper sulfate. During heating, the gaseous copper sulfate flows into the cooling cylinder 19 along the exhaust pipe 3, and cooling water is injected into the cooling cylinder 19 along the water injection pipe 21 for thorough cooling. The used water is discharged through the drain pipe 22, and the process is controlled by the valve 23. The cooled copper sulfate is discharged through the discharge pipe 25. The operator can collect it using external equipment. During use, it is necessary to monitor the formation of the gas. When adjusting the outflow rate of the gaseous copper sulfate, the through hole 32 on the rotating ring 28 is adjusted to be aligned with the adjusting rod 29. At this time, the adjusting ring 26 slides along the adjusting rod 29. During its sliding movement, the tension spring 27 between the adjusting tube 9 and the adjusting ring 26 is compressed. As it continues to compress, the adjusting rod 29 on it passes through the rotating ring 28, and the rotating ring 28 rotates along the adjusting rod 29. When the fixing hole 31 on the rotating ring 28 is aligned with the fixing rod 30 on the adjusting rod 29, the adjusting ring 26 is released, so that under the action of the elastic potential energy of the tension spring 27, the adjusting rod 29 is locked on the rotating ring 28.

[0035] Please see Figure 5-6 As an embodiment of a copper sulfate concentration and recovery equipment for a control component: a control component is provided on the control pipe 8. The control component includes a flow pipe 33, a flow hole 34 and a threaded rod 35. The flow pipe 33 is slidably connected to the regulating pipe 9. The flow holes 34 are evenly opened on the flow pipe 33. The threaded rod 35 is installed inside the control pipe 8 and is threadedly connected to the flow pipe 33.

[0036] One end of the flow tube 33 is connected to a guide rod 36, which is slidably connected to the regulating tube 9. A moving block 37 is slidably connected to the regulating tube 9.

[0037] Springs 38 are evenly connected between the moving block 37 and the adjusting tube 9. One end of the moving block 37 abuts against the adjusting ring 26, and the other end of the moving block 37 is inserted into the control tube 8. A flip cover 39 is connected to the flip rod 15.

[0038] More specifically, during the movement of the regulating ring 26, the inner side of the ring releases the fixation of the moving block 37, allowing the moving block 37 to move out under the elastic potential energy of the spring 38, thus releasing the fixation of the control tube 8. At this time, the control tube 8 rotates along the connecting tube 7, and as it rotates, it drives the threaded rod 35 to rotate. During its continuous rotation, the flow rate tube 33 at one end slides along the inner side of the regulating tube 9. During its sliding movement, the guide rod 36 on the flow rate tube 33 moves along the inner side of the regulating tube 9, thereby guiding the flow and adjusting the size of the obstruction at both ends of the flow hole 34 on the flow rate tube 33. This allows the flow rate of the gas to be regulated when it flows through the control tube 8.

[0039] In summary, during the use or operation of the overall equipment: During use, open the cover 5, then inject the waste liquid containing copper sulfate into the cylinder 2 along the feed pipe 4, and activate the heating ring 14 between the outer shell 6 and the cylinder 2 to fully heat the copper sulfate. During heating, the gaseous copper sulfate flows into the cooling cylinder 19 along the exhaust pipe 3, and cooling water is injected into the cooling cylinder 19 along the water injection pipe 21 for thorough cooling. The used water is discharged through the drain pipe 22, and the process is controlled by the valve 23. The cooled copper sulfate is discharged through the discharge pipe 25. The operator can collect it using external equipment. During use, it is necessary to... To adjust the outflow rate of the copper sulfate gas, the through hole 32 on the rotating ring 28 is adjusted to be aligned with the adjusting rod 29. At this time, the adjusting ring 26 slides along the adjusting rod 29. During this sliding movement, the tension spring 27 between the adjusting tube 9 and the adjusting ring 26 is compressed. As it continues to compress, the adjusting rod 29 passes through the rotating ring 28, and the rotating ring 28 rotates along the adjusting rod 29. When the fixing hole 31 on the rotating ring 28 is aligned with the fixing rod 30 on the adjusting rod 29, the adjusting ring 26 is released, so that the adjusting rod 29 is locked onto the rotating ring 28 under the action of the elastic potential energy of the tension spring 27.

[0040] During the movement of the regulating ring 26, the inner side of the ring is released from fixing the moving block 37, allowing the moving block 37 to move out under the elastic potential energy of the spring 38, thus releasing the fixing process of the control tube 8. At this time, the control tube 8 rotates along the connecting tube 7, and as it rotates, it drives the threaded rod 35 to rotate. During its continuous rotation, the flow rate tube 33 at one end slides along the inner side of the regulating tube 9. During its sliding movement, the guide rod 36 on the flow rate tube 33 moves along the inner side of the regulating tube 9, thereby guiding the flow and adjusting the size of the blockage at both ends of the flow hole 34 on the flow rate tube 33, thereby regulating the flow rate of the gas when it flows through the control tube 8.

[0041] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.

Claims

1. A copper sulfate concentration recovery equipment comprising a fixed frame (1), characterized by: The fixed frame (1) is provided with a processing assembly, the processing assembly includes a cylinder (2), an exhaust pipe (3), a feeding pipe (4), a shielding cover (5) and a shell (6), the cylinder (2) is arranged on the fixed frame (1), the exhaust pipe (3) is connected on the feeding pipe (4), the feeding pipe (4) is arranged on the top of the cylinder (2), the shielding cover (5) is arranged on the feeding pipe (4), the shell (6) is arranged on the outside of the cylinder (2), the exhaust pipe (3) is provided with an adjusting assembly, the adjusting assembly includes a connecting pipe (7), a control pipe (8) and an adjusting pipe (9), the connecting pipe (7) is connected on one end of the exhaust pipe (3), the control pipe (8) is rotatably connected on the connecting pipe (7), the adjusting pipe (9) is rotatably connected on the control pipe (8), one end of the adjusting pipe (9) is connected with the other end of the exhaust pipe (3).

2. A copper sulfate concentration and recovery apparatus according to claim 1, characterized in that: The bottom of the cylinder (2) is provided with a motor (10), the output end of the motor (10) is connected with a stirring rod (11), the stirring rod (11) is uniformly connected with stirring blades (12), the top of the stirring rod (11) is connected with a stirring piece (13), a heating ring (14) is installed between the shell (6) and the cylinder (2), a turnover rod (15) is rotatably connected on the cylinder (2), a turnover plate (16) is connected on the turnover rod (15), a fixed plate (17) is installed on the cylinder (2).

3. A copper sulfate concentration and recovery apparatus according to claim 2, characterized in that: A bolt (18) is detachably installed between the fixed plate (17) and the turnover rod (15), a cooling cylinder (19) is connected on one end of the exhaust pipe (3), a cooling pipe (20) is installed in the cooling cylinder (19), a water injection pipe (21) is connected on the top of the cooling pipe (20) and penetrates through the cooling cylinder (19), a drainage pipe (22) is connected on the other end of the cooling pipe (20) and penetrates through the cooling cylinder (19), a valve (23) is installed on the drainage pipe (22), a mounting bracket (24) is installed on the bottom of the cooling cylinder (19), a discharge pipe (25) is connected on one end of the cooling pipe (20) and penetrates through the cooling cylinder (19).

4. A copper sulphate concentration and recovery apparatus according to claim 3, characterised in that: An adjusting ring (26) is slidably connected on the adjusting pipe (9), a tension spring (27) is connected between the adjusting ring (26) and the adjusting pipe (9), a rotating ring (28) is rotatably connected on the adjusting pipe (9).

5. A copper sulphate concentration and recovery apparatus as claimed in claim 4, characterised in that: Adjusting rods (29) are uniformly installed on the adjusting ring (26), fixed rods (30) are installed on the adjusting rods (29), fixed holes (31) and through holes (32) are formed on the rotating ring (28), the through holes (32) are matched with the adjusting rods (29), and the fixed holes (31) are matched with the fixed rods (30).

6. A copper sulphate concentration and recovery apparatus as claimed in claim 5, characterised in that: The control pipe (8) is provided with a control assembly, the control assembly comprises a flow rate pipe (33), flow through holes (34) and a threaded rod (35), the flow rate pipe (33) is slidingly connected to the adjusting pipe (9), the flow through holes (34) are uniformly arranged on the flow rate pipe (33), and the threaded rod (35) is arranged in the inner side of the control pipe (8) and is in threaded connection with the flow rate pipe (33).

7. A copper sulphate concentration and recovery apparatus according to claim 6, characterised in that: One end of the flow rate pipe (33) is provided with a guide rod (36), the guide rod (36) is in sliding connection with the adjusting pipe (9), and the adjusting pipe (9) is slidingly connected with a moving block (37).

8. A copper sulphate concentration and recovery apparatus according to claim 7, characterised in that: Spring (38) is uniformly arranged between the moving block (37) and the adjusting pipe (9), one end of the moving block (37) is in abutment with the adjusting ring (26), the other end of the moving block (37) is inserted into the control pipe (8), and the turnover rod (15) is connected with a turnover cover (39).