Application of stirring device in stirring high temperature smelting materials

By designing a stirring device with an eccentric push rod and a bite assembly, the problem that copper pin-like materials are difficult to melt during high-temperature smelting and easy to melt the stirring device is solved, and the effect of efficient stirring and protection device is achieved.

CN111023854BActive Publication Date: 2025-08-12XIAJIN COUNTY HAOMEI METAL PROD CO LTD
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Patent Information

Application Number
CN201911415612.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2019-12-31
Publication Date
2025-08-12
Estimated Expiration
2039-12-31

AI Technical Summary

Technical Problem

During high-temperature smelting, the copper pin-like material floats due to its similar density to copper water, which makes it difficult to melt, and the existing stirring device is easy to melt when used at high temperatures for a long time.

Method used

A stirring device including a substrate, a rotating plate, a push rod and a driving device is designed. The push rod is reciprocating through an eccentric push rod and a bite assembly. The push rod continuously pushes the floating material into the copper water, and adjusts the height through the hydraulic cylinder to avoid long-term soaking in high temperatures.

Benefits of technology

Effectively stir high-temperature melting materials to prevent melting of the stirring device, improve the material melting efficiency, and protect the device from high-temperature damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of high-temperature smelting, and in particular relates to a high-temperature smelting material stirring device, comprising a base plate, a rotating plate, a push rod, and a first drive device capable of pushing the push rod to and fro. The rotating plate is rotatably connected to the base plate, the first drive device is eccentrically arranged on the rotating plate, and is connected to the push rod through the rotating plate, the rotating plate is provided with a clamping portion and a bite assembly cooperating with the clamping portion, and the base plate is provided with a second drive device capable of pushing the bite assembly to and fro. The present invention provides a new stirring device suitable for high-temperature smelting, wherein a floating copper pin-shaped object is continuously pushed into the copper liquid by the push rod, the push rod moves downward to push the floating copper pin-shaped object into the copper liquid, and the push rod moves upward to be exposed to the water surface, thereby preventing the push rod from being placed in the high-temperature copper liquid for a long time and effectively preventing the stirring device from being melted.
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Description

Technical Field

[0001] The invention belongs to the technical field of high-temperature smelting, and in particular relates to an application of a stirring device in stirring high-temperature smelting materials. Background Art

[0002] The pin-shaped materials produced during the mechanical production process need to undergo secondary smelting to extract useful metals. For example, the smelting of copper pin-shaped materials needs to be carried out in molten copper water. The copper pin-shaped materials are melted by the molten copper water. However, since the density of the copper pin and the copper water is similar, the copper pin-shaped materials will float above the copper water, which is not conducive to their melting. Therefore, a stirring device is generally required in the melting container. Due to the high temperature of the copper water, if the stirring device is left in the copper water for a long time, the stirring device will gradually melt. This is a relatively serious problem that is not easy to solve. Summary of the Invention

[0003] The present invention provides an application of a stirring device in stirring high-temperature smelting materials, which can solve the problems pointed out in the background technology.

[0004] 7. The swiftly and minutely adjusting device for a wood-planer working table as claimed in claim 1, wherein said linking rod and said adjusting base are pivotally connected to each other with a bolt, and said bolt has a round shank to contact with said linking rod. said linking rod is pivotally connected to said linking rod of said second driving mechanism. said bolt has a round shank to contact with said linking rod of said second driving mechanism. The cam is connected to the first hydraulic cylinder via a gear train connected to the gear train, and the cam is connected to the gear train by a gear train connected to the gear train.

[0005] Preferably, the movable pulley is slidably connected to the sliding column via a sliding sleeve.

[0006] The present invention provides an application of a stirring device in stirring high-temperature smelting materials. The present invention provides a new stirring device suitable for high-temperature smelting, in which a floating copper pin-shaped object is continuously pushed into the copper liquid by a push rod. The push rod moves downward to push the floating copper pin-shaped object into the copper liquid. The push rod moves upward to be exposed to the water surface, thereby preventing the push rod from being placed in the high-temperature copper liquid for a long time and effectively preventing the stirring device from being melted. BRIEF DESCRIPTION OF THE DRAWINGS

[0007] Figure 1 It is a structural schematic diagram of the present invention,

[0008] Figure 2 For the present invention Figure 1 -A enlarged schematic diagram,

[0009] Figure 3 is a schematic diagram of the engaging assembly and the clamping portion of the present invention,

[0010] Figure 4 is a schematic structural diagram of the occlusal assembly of the present invention,

[0011] Figure 5 This is a top view of the rotating plate of the present invention.

[0012] Figure 6 This is a schematic diagram of the connection between the first hydraulic cylinder and the push rod of the present invention.

[0013] Figure 7 For the present invention Figure 6 -B enlarged schematic diagram,

[0014] Figure 8 This is a schematic diagram of the drive assembly of the present invention.

[0015] Figure 9 This is a working schematic diagram of the present invention.

[0016] Description of reference numerals:

[0017] Reference numerals in the figure: 1. base plate; 2. rotating plate; 3. push rod; 4. clamping part; 5. L-shaped plate; 51. horizontal plate; 52. vertical plate; 6. rotating shaft; 7. eccentric wheel; 8. connecting plate; 9. first sliding sleeve; 10. mounting through hole; 11. second sliding sleeve; 12. connecting rod; 13. third hydraulic cylinder; 14. fixed pulley; 15. movable pulley; 16. pull rope; 17. first hydraulic cylinder; 18. second hydraulic cylinder; 19. sliding sleeve; 20. support member; 21. smelting container; 22. bearing; 23. support frame. DETAILED DESCRIPTION

[0018] A specific embodiment of the present invention is described in detail below with reference to the accompanying drawings, but it should be understood that the protection scope of the present invention is not limited by the specific embodiment.

[0019] Example 1: Figure 1-5 As shown, an embodiment of the present invention provides an application of a stirring device in stirring high-temperature smelting materials, comprising a base plate 1, a rotating plate 2, a push rod 3, and a first driving device capable of pushing the push rod 3 to and fro. The first driving device is a first hydraulic oil cylinder 17, which is connected to the push rod 3 to drive the push rod 3 to reciprocate. The rotating plate 2 is rotatably connected to the base plate 1 through a bearing 22. The base plate 1 is annular. When in use, the base plate 1 is connected to the base plate 1. Figure 9 As shown, the base plate 1 is placed directly above the smelting container 21 via a support 20 , and the first driving device is eccentrically arranged on the rotating plate 2 and connected to the push rod 3 through the rotating plate 2 ;

[0020] The rotating plate 2 is provided with a clamping portion 4 and a bite assembly cooperating with the clamping portion 4. The clamping portion 4 is a circular annular boss, which is fixed on the upper surface of the rotating plate 2. The bite assembly includes an L-shaped plate 5, a rotating shaft 6, an eccentric wheel 7 and a connecting plate 8. The rotating shaft 6 is rotatably connected to the horizontal plate 51 of the L-shaped plate 5. The lower end of the rotating shaft 6 is provided with an eccentric wheel 7. The upper end of the rotating shaft 6 is connected to the connecting plate 8. The connecting plate 8 is connected to the piston rod of the second driving device. The second driving device is a second hydraulic cylinder 18. A support frame 23 is provided below the second hydraulic cylinder 18, and the support frame 23 is fixed to the base plate 1; the circular annular boss is located between the eccentric wheel 7 and the vertical plate 52 of the L-shaped plate 5. The second hydraulic cylinder 18 drives the connecting plate 8 to rotate, and the connecting plate 8 drives the eccentric wheel The heart wheel 7 rotates, and during the rotation of the eccentric wheel 7, the annular boss is gradually clamped with the vertical plate 52 of the L-shaped plate 5. After the annular boss is clamped, the rotating plate 2 is rotated under the drive of the second hydraulic cylinder 18, thereby driving the push rod 3 to rotate to change the orientation. When the piston rod of the second hydraulic cylinder 18 returns, the second hydraulic cylinder 18 drives the connecting plate 8 to rotate in the opposite direction, and the connecting plate 8 drives the eccentric wheel 7 to rotate in the opposite direction. During the reverse rotation of the eccentric wheel 7, the annular boss is gradually released from the vertical plate 52 of the L-shaped plate 5, so that under the drive of the second hydraulic cylinder 18, the engaging assembly returns to the initial position, and the above action is repeated, so that the rotating plate 2 continuously rotates a certain angle, thereby causing the push rod 3 to continuously change its orientation, which can not only play the role of stirring and pushing the material, but also ensure that the push rod 3 is not placed in the high-temperature copper water for a long time.

[0021] Embodiment 2: With reference to Figures 6-9, as the smelting progresses, the liquid level of the molten copper will continue to rise, and it is possible that it will even submerge the highest point of the push rod 3. Through the following structure, the height of the first hydraulic cylinder 17 can be adjusted according to the liquid level of the molten copper to ensure that the highest point of the push rod 3 is always higher than the liquid level of the molten copper. The first hydraulic cylinder 17 is arranged on the rotating plate 2 through a first sleeve 9. The rotating plate 2 is provided with a mounting through hole 10 that matches the first sleeve 9. A second sleeve 11 is provided in the first sleeve 9. The second sleeve 11 can only slide up and down in the first sleeve 9. The second sleeve 11 is fixedly connected to the lower end of the first hydraulic cylinder 17. A connecting rod 12 is provided in the second sleeve 11. The upper end of the connecting rod 12 is fixedly connected to the piston rod of the first hydraulic cylinder 17, and the lower end thereof is connected to the push rod 3. A driving assembly for driving the first hydraulic cylinder 17 to move up and down is provided above the first hydraulic cylinder 17; the height of the first hydraulic cylinder 17 can be changed at any time by the driving assembly.

[0022] The driving assembly includes a third hydraulic cylinder 13, a fixed pulley 14, a movable pulley 15 and a pull rope 16. The movable pulley 15 is slidably connected to the slide column. The movable pulley 15 is slidably connected to the slide column through a sliding sleeve 19. The lower end of the slide column is fixed to the rotating plate 2. The third hydraulic cylinder 13 and the fixed pulley 14 are respectively fixed on the slide column. The two ends of the pull rope 16 are respectively connected to the third hydraulic cylinder 13 and the second hydraulic cylinder 18, and are sequentially wound around the movable pulley 15 and the fixed pulley 14 from one end of the third hydraulic cylinder 13. The piston rod of the third hydraulic cylinder 13 is connected to the movable pulley 15. The movable pulley 15 is driven to move downward by the third hydraulic cylinder 13, and the first hydraulic cylinder 17 is pulled upward by the pull rope 16, so that the height of the first hydraulic cylinder 17 can be adjusted according to the liquid level of the molten copper.

[0023] The above disclosures are only a few specific embodiments of the present invention. However, the embodiments of the present invention are not limited thereto. Any changes that can be conceived by those skilled in the art should fall within the scope of protection of the present invention.

Claims

1. Application of a stirring device in stirring high-temperature smelting materials, characterized in that The stirring device comprises a base plate (1), a rotating plate (2), a push rod (3) and a first driving device capable of pushing the push rod (3) to reciprocate, the rotating plate (2) is rotatably connected to the base plate (1), the first driving device is eccentrically arranged on the rotating plate (2) and is connected to the push rod (3) through the rotating plate (2), the rotating plate (2) is provided with a clamping portion (4) and a bite assembly matched with the clamping portion (4), the base plate (1) is provided with a second driving device capable of pushing the bite assembly to reciprocate, the clamping portion (4) is a circular annular boss, the circular annular boss is fixed on the upper surface of the rotating plate (2), the bite assembly comprises an L-shaped plate (5), a rotating shaft (6), an eccentric wheel (7) and a connecting plate (8), the rotating shaft (6) is rotatably connected to the horizontal plate (51) of the L-shaped plate (5), the lower end of the rotating shaft (6) is provided with an eccentric wheel (7), the upper end of the rotating shaft (6) is connected to the connecting plate (8), and the The connecting plate (8) is connected to the second driving device, the annular boss is located between the eccentric wheel (7) and the vertical plate (52) of the L-shaped plate (5), the first driving device is a first hydraulic cylinder (17), the second driving device is a second hydraulic cylinder (18), the first hydraulic cylinder (17) is arranged on the rotating plate (2) through a first sliding sleeve (9), the rotating plate (2) is provided with a mounting through hole (10) that matches the first sliding sleeve (9), the first sliding sleeve (9) is provided with a second sliding sleeve (11), the second sliding sleeve (11) only slides up and down in the first sliding sleeve (9), and the second sliding sleeve (11) is in contact with the lower end of the first hydraulic cylinder (17). The second sliding sleeve (11) is fixedly connected, a connecting rod (12) is provided in the second sliding sleeve (11), the upper end of the connecting rod (12) is fixedly connected to the piston rod of the first hydraulic oil cylinder (17), and the lower end of the connecting rod (12) is connected to the push rod (3). A driving component for driving the first hydraulic oil cylinder (17) to move up and down is provided above the first hydraulic oil cylinder (17). The height of the first hydraulic oil cylinder (17) can be changed at any time by the driving component. The driving component includes a third hydraulic oil cylinder (13), a fixed pulley (14), a movable pulley (15) and a pull rope (16). The movable pulley (15) is slidably connected to the sliding column, and the lower end of the sliding column is fixed to the rotating plate (2). The third hydraulic cylinder (13) and the fixed pulley (14) are respectively fixed on the slide column, and the two ends of the pull rope (16) are respectively connected to the third hydraulic cylinder (13) and the second hydraulic cylinder (18), and are sequentially connected to the movable pulley (15) and the fixed pulley (14) from one end of the third hydraulic cylinder (13). The second hydraulic cylinder (18) drives the connecting plate (8) to rotate, and the connecting plate (8) drives the eccentric wheel (7) to rotate. During the rotation of the eccentric wheel (7), the vertical plate (52) of the L-shaped plate (5) gradually clamps the annular boss. After the annular boss is clamped, the rotating plate (2) rotates under the drive of the second hydraulic cylinder (18).Thus, the push rod (3) is driven to rotate to change its orientation. When the piston rod of the second hydraulic oil cylinder (18) returns, the second hydraulic oil cylinder (18) drives the connecting plate (8) to rotate in the opposite direction. The connecting plate (8) drives the eccentric wheel (7) to rotate in the opposite direction. During the reverse rotation of the eccentric wheel (7), the vertical plate (52) of the L-shaped plate (5) gradually releases the annular boss. As a result, the engaging assembly returns to its initial position under the drive of the second hydraulic oil cylinder (18). The above-mentioned action is repeated to make the rotating plate (2) continuously rotate a certain angle, thereby making the push rod (3) continuously change its orientation.

2. Application of a stirring device according to claim 1 in stirring high-temperature smelting materials, characterized in that: The movable pulley (15) is slidably connected to the sliding column via a sliding sleeve (19).

Citation Information

Patent Citations

  • Mechanical agitating device of aluminum melting furnace

    CN202869296U

  • Copper liquid stirring device

    CN209541464U

  • High-temperature smelting material stirring device

    CN212158197U