Aluminum titanium boron wire processing cutting device and operation method thereof

By using an electric rotating telescopic rod and a limit plate in conjunction with an electrically controlled telescopic frame, along with electric rollers and a funnel tube, accurate cutting and efficient processing of aluminum-titanium-boron wire are achieved. This solves the problems of inaccurate cutting and low efficiency in existing equipment and meets the dimensional requirements of high-end smelting.

CN121732672BActive Publication Date: 2026-04-28AMC ALUMINUM (CHINA) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
AMC ALUMINUM (CHINA) CO LTD
Filing Date
2026-02-13
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing cutting equipment for aluminum-titanium-boron wire processing suffers from inaccurate cutting lengths and low efficiency due to the relatively soft nature of aluminum-titanium-boron wire, making it difficult to meet the dimensional requirements of high-end smelting. Furthermore, the intermittent processing mode can easily cause displacement of the aluminum-titanium-boron wire, affecting cutting accuracy.

Method used

An electric rotating telescopic rod drives the wire roll to rotate, and a limit plate and an electrically controlled telescopic frame are used for positioning and cutting. An electric roller is used to pull the boron wire so that it is discharged in a straight line. The wire is then continuously cut through a funnel tube and a collection tube to avoid machine stoppage and displacement.

Benefits of technology

It achieves accurate cutting and efficient processing of aluminum-titanium-boron wire, meets the dimensional requirements of high-end smelting, avoids the problems of boron wire bending and displacement, and improves cutting accuracy and production efficiency.

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Abstract

This invention discloses a cutting device and its operating method for processing aluminum-titanium-boron wire, relating to the field of metal wire processing technology. It includes a cutting body and a wire roll. Guide rails are fixedly connected to both ends of the bottom inner wall of the cutting body, and a moving platform is slidably connected to the top of the guide rails. This invention uses an electrically operated rotary telescopic rod to drive the wire roll to rotate along the extension direction of the boron wire. During this process, the electrically operated rotary telescopic rod reciprocates, ensuring that the exit end of the boron wire in the wire roll remains perpendicular to the constraint tube, allowing the boron wire to be smoothly and straightly discharged through the take-up tube. This further solves the problem that in traditional aluminum-titanium-boron wire cutting equipment, due to the soft texture of the aluminum-titanium-boron wire, the wire drawn from the wire roll is often curved, resulting in a cutting length that often exceeds the predetermined length during positioning and cutting, thus failing to meet the stringent dimensional requirements of high-end smelting.
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Description

Technical Field

[0001] This invention relates to the field of metal wire processing technology, specifically to a cutting device and its operating method for processing aluminum-titanium-boron wires. Background Technology

[0002] Aluminum-titanium-boron (ATiB) wire is a core online grain refiner in the field of aluminum and aluminum alloy smelting. It is a filamentous functional material with aluminum as the matrix and uniformly distributed TiB2 ceramic particles and TiAl3 intermetallic compounds. Through online feeding of the wire into the molten aluminum, it achieves heterogeneous nucleation and grain refinement. It is a key basic material for improving the strength, plasticity, and processing performance of aluminum alloys, and is widely used in high-end aluminum alloy manufacturing fields such as aerospace, new energy vehicles, high-end rail transportation, and precision die casting. It is also one of the core supporting materials for achieving high performance and homogenization in modern aluminum processing industry. However, due to the relatively soft texture of ATiB wire, the wire drawn from the coil is often quite curved. When it is cut, the cut length often exceeds the predetermined length, making it difficult to meet the stringent dimensional requirements of high-end smelting. Furthermore, large-scale cutting of ATiB wire often employs an intermittent processing mode of conveying, stopping, cutting, and re-conveying, which is not only inefficient but also prone to displacement of the ATiB wire during shutdown, thus affecting the cutting accuracy.

[0003] The existing technology has the following problems:

[0004] 1. In the process of using existing aluminum-titanium-boron wire cutting equipment, due to the relatively soft texture of aluminum-titanium-boron wire, the aluminum-titanium-boron wire drawn from the wire roll is relatively curved. When it is cut, the cut length often exceeds the predetermined length, which makes it difficult to meet the stringent requirements of high-end smelting for material dimensions.

[0005] 2. Existing cutting equipment for aluminum-titanium-boron wire processing often adopts an intermittent processing mode of conveying, stopping, cutting, and conveying again during use. This is not only inefficient, but also causes the aluminum-titanium-boron wire to shift during the moment of stopping, thus affecting the cutting accuracy of the aluminum-titanium-boron wire. Summary of the Invention

[0006] This invention provides a cutting device and its operating method for processing aluminum-titanium-boron wires, in order to solve the problems mentioned in the background art.

[0007] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows:

[0008] A cutting device for processing aluminum-titanium-boron wire includes a cutting body and a wire roll. The two ends of the bottom of the inner wall of the cutting body are fixedly connected to guide rails, and a moving table is slidably connected to the top of the guide rails. A support frame is fixedly connected to one end of the top of the moving table, and a first limiting plate and a second limiting plate are rotatably connected to the two ends of the inner wall of the support frame, respectively. A transmission component is provided at the end of the top of the moving table away from the support frame.

[0009] A placement platform is fixedly connected to one side of the outer wall of the cutting body, and a limiting plate is slidably connected to one end of the top of the placement platform. The inner wall of the limiting plate is slidably connected to the outer wall of the wire roll, and boron wire is wound around the outer wall of the wire roll.

[0010] A further improvement of the technical solution of the present invention is that: the transmission component includes a first motor fixedly connected to the top of the moving platform away from the support frame, and the output end of the first motor is fixedly connected to the center of one side of the outer wall of the first limiting plate. A first electrically controlled telescopic frame is fixedly connected to the top of one side of the outer wall of the first limiting plate, and a push block is fixedly connected to the output end of the first electrically controlled telescopic frame.

[0011] A further improvement of the technical solution of the present invention is that: a second electrically controlled telescopic frame is fixedly connected to the top of one side of the outer wall of the second limiting plate, and an installation block is fixedly connected to the output end of the second electrically controlled telescopic frame. A sliding groove is provided on one side of the outer wall of the installation block, and a cutting tool is slidably connected to the inner wall of the sliding groove. A bolt is inserted into one end of the top of the cutting tool, and the end of the bolt is threadedly connected to the top of the installation block.

[0012] A further improvement of the technical solution of the present invention is that: a connecting plate is fixedly connected between the first limiting plate and the second limiting plate, and a support block is fixedly connected to both ends of the first limiting plate and the second limiting plate near the connecting plate, and the top of the support block is slidably connected to the outer wall of the boron wire; a telescopic box is fixedly connected to one end of the outer wall of the first limiting plate and the second limiting plate, and an elastic block is slidably connected to the inner wall of the telescopic box.

[0013] A further improvement of the technical solution of the present invention is that: a second motor is fixedly connected to the side of the outer wall of the cutting body away from the placement table, and a lead screw is fixedly connected to the output end of the second motor. One end of the outer wall of the lead screw penetrates and is rotatably connected to the outer wall of the cutting body. A nut tube is threadedly connected to one end of the outer wall of the lead screw, and the top of the nut tube is fixedly connected to the center of the bottom of the moving table.

[0014] A further improvement of the technical solution of the present invention is that: an electric rotating telescopic rod is fixedly connected to one end of the top of the placement platform away from the limiting plate, and a limiting tube is fixedly connected to the output end of the electric rotating telescopic rod, while the outer wall of the limiting tube is slidably connected to the inner wall of the silk roll.

[0015] A further improvement of the technical solution of the present invention is that: a screw hole is provided at the center of one side of the outer wall of the limiting tube, and a limiting block is threadedly connected to the inner wall of the screw hole, while one side of the outer wall of the limiting block is in contact with the outer wall of the wire roll.

[0016] A further improvement of the technical solution of the present invention is that: a constraint tube is fixedly connected to one end of the top of the cutting body, and the inner wall of the constraint tube is slidably connected to the outer wall of the boron wire; a gathering tube is fixedly connected to one end of the top of the cutting body away from the constraint tube, and a funnel tube is fixedly connected to the end of the gathering tube, while the inner wall of the funnel tube is slidably connected to the outer wall of the boron wire.

[0017] A further improvement of the technical solution of the present invention is that: a guide frame is fixedly connected to the inner wall of the receiving tube, and several mutually symmetrical electric rollers are rotatably connected to both ends of the inner wall of the guide frame, while the outer wall of the electric rollers is connected to the outer wall of the boron wire through a transmission connection.

[0018] A method for cutting aluminum-titanium-boron wire during processing, the method employing the aforementioned cutting equipment for aluminum-titanium-boron wire processing, as follows:

[0019] S1: By setting a placement platform on one side of the outer wall of the cut body, the wire roll with boron wire is placed on the limiting plate set on the top of the placement platform. Then, the limiting plate is pushed so that the limiting tube is inserted into the center of the inner wall of the wire roll. Then, the limiting block is installed in the screw hole set on one side of the outer wall of the limiting tube and the wire roll is fixed. At this time, the boron wire is pulled out and its end passes through the constraint tube, then through the surface of the support block, and finally through the take-up tube. At this time, the transmission component is started to cut the boron wire at a specified distance.

[0020] S2: The transmission assembly drives the lead screw through the second motor, so that the lead screw passes through the nut tube set at the center of the bottom of the moving table, and controls the support frame, the first limit plate and the second limit plate to move along the trajectory of the guide rail. When the moving table moves to the appropriate position, the first electric telescopic frame and the second electric telescopic frame are activated at the same time, so that the cutter and the push block set at their output ends respectively come into contact with each other and cut the boron wire.

[0021] S3: By setting a guide frame on the inner wall of the coiling tube and setting several mutually symmetrical electric rollers at both ends of the inner wall of the guide frame, the cut boron wire is pulled by the electric rollers, so that the cut boron wire is discharged from the cutting body.

[0022] Due to the adoption of the above technical solution, the technical progress achieved by this invention compared to the prior art is as follows:

[0023] 1. This invention provides a cutting device and its operating method for processing aluminum-titanium-boron wire. An electric rotary telescopic rod drives the wire roll to rotate along the extension direction of the boron wire. During this process, the electric rotary telescopic rod reciprocates, ensuring that the exit end of the boron wire in the wire roll remains perpendicular to the constraint tube. This allows the boron wire to pass smoothly and straight through the take-up tube and be discharged. This further solves the problem that in traditional aluminum-titanium-boron wire cutting devices, due to the softness of the aluminum-titanium-boron wire, the wire drawn from the wire roll is often curved, resulting in a cutting length that often exceeds the predetermined length during positioning and cutting, thus failing to meet the stringent dimensional requirements of high-end smelting.

[0024] 2. This invention provides a cutting device and its operating method for processing aluminum-titanium-boron wire. By setting a funnel tube at the end of the coiling tube, the end of the wrapped boron wire contacts the inclined surface of the inner wall of the funnel tube. Under the continuous pushing of the moving table, the end of the boron wire extends into the coiling tube. With the help of electric rollers set on the inner wall of the coiling tube, the end of the boron wire is pulled. Then the moving table resets and moves to a suitable position to perform a second cutting process on the aluminum-titanium-boron wire. This further solves the problem that traditional cutting devices for processing aluminum-titanium-boron wire often adopt an intermittent processing mode of conveying, stopping, cutting, and re-conveying during use. This is not only inefficient, but also prone to displacement of the aluminum-titanium-boron wire during the moment of stopping, thus affecting the cutting accuracy of the aluminum-titanium-boron wire. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the structure of the present invention;

[0026] Figure 2 This is a schematic diagram of the guide track structure of the present invention;

[0027] Figure 3 This is a schematic diagram of the receiving tube structure of the present invention;

[0028] Figure 4 This is a schematic diagram of the disassembled structure of the receiving tube of the present invention;

[0029] Figure 5 This is a schematic diagram of the placement platform structure of the present invention;

[0030] Figure 6 This is a schematic cross-sectional view of the placement platform of the present invention;

[0031] Figure 7 This is a schematic diagram of the mobile station structure of the present invention;

[0032] Figure 8 This is a schematic diagram of the first limiting disk structure of the present invention;

[0033] Figure 9 This is a schematic diagram of the push block structure of the present invention;

[0034] Figure 10 This is a schematic diagram of the cutting tool structure of the present invention.

[0035] In the diagram: 1. Cutting body; 2. Wire roll; 3. Guide rail; 4. Moving table; 5. Support frame; 6. First limiting plate; 7. Second limiting plate; 8. Placement table; 9. Limiting plate; 10. Boron wire; 11. First motor; 12. First electrically controlled telescopic frame; 13. Pushing block; 14. Second electrically controlled telescopic frame; 15. Mounting block; 16. Slide groove; 17. Cutting tool; 18. Bolt; 19. Connecting plate; 20. Support block; 21. Telescopic box; 22. Elastic block; 23. Second motor; 24. Lead screw; 25. Nut tube; 26. Electric rotating telescopic rod; 27. Limiting tube; 28. Screw hole; 29. ​​Limiting block; 30. Constraint tube; 31. Gathering tube; 32. Funnel tube; 33. Guide frame; 34. Electric roller. Detailed Implementation

[0036] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0037] like Figures 1 to 10As shown in the embodiment of the present invention, a cutting device for processing aluminum-titanium-boron wire includes a cutting body 1 and a wire roll 2. Guide rails 3 are fixedly connected to both ends of the bottom inner wall of the cutting body 1, and a moving platform 4 is slidably connected to the top of the guide rails 3. A support frame 5 is fixedly connected to one end of the top of the moving platform 4, and a first limiting plate 6 and a second limiting plate 7 are rotatably connected to both ends of the inner wall of the support frame 5. A transmission assembly is provided at the end of the top of the moving platform 4 away from the support frame 5. A placement platform 8 is fixedly connected to one side of the outer wall of the cutting body 1, and a limiting plate 9 is slidably connected to one end of the top of the placement platform 8. The inner wall of the limiting plate 9 is slidably connected to the outer wall of the wire roll 2. The outer wall of the 2 is wound with boron wire 10. The transmission assembly includes a first motor 11 fixedly connected to the top of the moving platform 4 away from the support frame 5, and the output end of the first motor 11 is fixedly connected to the center of one side of the outer wall of the first limiting plate 6. A first electrically controlled telescopic frame 12 is fixedly connected to the top of one side of the outer wall of the first limiting plate 6, and a push block 13 is fixedly connected to the output end of the first electrically controlled telescopic frame 12. A second electrically controlled telescopic frame 14 is fixedly connected to the top of one side of the outer wall of the second limiting plate 7, and a mounting block 15 is fixedly connected to the output end of the second electrically controlled telescopic frame 14. A groove 16 is opened on one side of the outer wall of the mounting block 15, and a cutter 1 is slidably connected to the inner wall of the groove 16. 7. A bolt 18 is inserted into one end of the top of the cutter 17, and the end of the bolt 18 is threadedly connected to the top of the mounting block 15. A connecting plate 19 is fixedly connected between the first limiting plate 6 and the second limiting plate 7, and support blocks 20 are fixedly connected to both ends of the first limiting plate 6 and the second limiting plate 7 near the connecting plate 19. The top of the support block 20 is slidably connected to the outer wall of the boron wire 10. A telescopic box 21 is fixedly connected to one end of the outer wall of the first limiting plate 6 and the second limiting plate 7, and an elastic block 22 is slidably connected to the inner wall of the telescopic box 21. A second motor 23 is fixedly connected to the side of the outer wall of the cutting body 1 away from the placement table 8, and the output end of the second motor 23 is fixedly connected to the second limiting plate 1. A lead screw 24 is fixedly connected, and one end of the outer wall of the lead screw 24 penetrates and is rotatably connected to the outer wall of the cutting body 1. A nut tube 25 is threadedly connected to one end of the outer wall of the lead screw 24, and the top of the nut tube 25 is fixedly connected to the center of the bottom of the moving platform 4. An electric rotating telescopic rod 26 is fixedly connected to the top of the placement platform 8 away from the limiting plate 9, and a limiting tube 27 is fixedly connected to the output end of the electric rotating telescopic rod 26. The outer wall of the limiting tube 27 is slidably connected to the inner wall of the wire roll 2. A screw hole 28 is opened at the center of one side of the outer wall of the limiting tube 27, and a limiting block 29 is threadedly connected to the inner wall of the screw hole 28. One side of the outer wall of the limiting block 29 is in contact with the outer wall of the wire roll 2.

[0038] During operation, a placement platform 8 is set on one side of the outer wall of the cutting body 1, and a limiting plate 9 is set at one end of the top of the placement platform 8. The wire roll 2 wound with aluminum titanium boron wire 10 is placed on the surface of the limiting plate 9. Since an electric rotating telescopic rod 26 (here, the electric rotating telescopic rod 26 is composed of a motor and an electrically controlled telescopic rod, which is the prior art) is set at the end of the top of the placement platform 8 away from the limiting plate 9, and a limiting tube 27 is set at the output end of the electric rotating telescopic rod 26, the wire roll 2 placed on the surface of the limiting plate 9 is pushed so that the end of the limiting tube 27 is inserted into the center of the inner wall of the wire roll 2. By setting a screw hole 28 at the center of one side of the outer wall of the limiting tube 27, the limiting block 29 (here, the limiting block 29) is placed. A customized threaded cap (belonging to existing technology) is installed in the threaded hole 28 and clamps and fixes the wire roll 2 on the outer wall of the limiting tube 27. At this time, one end of the boron wire 10 in the wire roll 2 passes through the constraint tube 30 set at one end of the top of the cutting body 1. Guide rails 3 are set at both ends of the bottom of the inner wall of the cutting body 1, and a moving platform 4 is set at the top of the guide rails 3. A support frame 5 is set at one end of the top of the moving platform 4, and a first limiting plate 6 and a second limiting plate 7 are respectively set at both ends of the inner wall of the support frame 5. A connecting plate 19 is set between the first limiting plate 6 and the second limiting plate 7, and a support block 2 is set at both ends of the first limiting plate 6 and the second limiting plate 7 near the connecting plate 19. 0, thus placing the boron wire 10 extending from the constraint tube 30 onto the surface of the two support blocks 20, and then continuing to stretch the boron wire 10 so that the end of the boron wire 10 extends into the gathering tube 31 located at the top of the cutting body 1 away from the constraint tube 30. At this time, the electric rotating telescopic rod 26 and the electric roller 34 located inside the gathering tube 31 start synchronously, using the electric roller 34 to pull the boron wire 10. At the same time, the electric rotating telescopic rod 26 drives the wire roll 2 to rotate along the extension direction of the boron wire 10. During this period, the electric rotating telescopic rod 26 moves back and forth, so that the exit end of the boron wire 10 in the wire roll 2 always remains perpendicular to the constraint tube 30, allowing the boron wire 10 to be smoothly and straightly discharged through the gathering tube 31. A limiting plate 9 is provided between the wire roll 2 and the placement table 8. When the electric rotating telescopic rod 26 frequently pushes the wire roll 2 to move back and forth, the limiting plate 9 reduces the friction between the wire roll 2 and the placement table 8. This not only makes the movement of the wire roll 2 smoother, but also avoids wear on the wire roll 2 during reciprocating movement, which would make it difficult to reuse the wire roll 2. This further solves the problem that in the traditional cutting equipment for processing aluminum titanium boron wire 10, the aluminum titanium boron wire 10 is relatively soft, resulting in the aluminum titanium boron wire 10 being relatively curved when pulled out of the wire roll. When it is positioned and cut, the cut length often exceeds the predetermined length, which makes it difficult to meet the strict requirements of high-end smelting for the size of the material.

[0039] It should be further explained that after the boron wire 10 is discharged straight from the receiving tube 31, the second motor 23, located on the side of the outer wall of the cutting body 1 away from the placement table 8, is activated. This causes the second motor 23 to drive the lead screw 24 at its output end to rotate. Since a nut tube 25 is located at the center of the bottom of the moving table 4, and in conjunction with the guide rail 3 restricting the moving table 4, the lead screw 24 controls the moving table 4 to move within the guide rail 3 via the nut tube 25. When cutting the boron wire 10 to a specified size, the lead screw 24 controls the moving table 4 to move synchronously with the boron wire 10. During this period, a first electrically controlled telescopic frame 12 is installed on the top of the outer wall of the first limiting plate 6, causing the pushing block 13 at the output end of the first electrically controlled telescopic frame 12 to gradually move closer to the top. The boron wire 10 is positioned between the two support blocks 20. Simultaneously, a second electrically controlled telescopic frame 14, located on the top of one side of the outer wall of the second limiting plate 7, moves the mounting block 15 at its output end towards the boron wire 10. Since the outer wall of the mounting block 15 is equipped with a cutter 17 (made of hard alloy), the cutter 17 and the push block 13 simultaneously clamp and cut the boron wire 10. Subsequently, the first electrically controlled telescopic frame 12 and the second electrically controlled telescopic frame 14 respectively reset the push block 13 and the cutter 17. The cut boron wire 10 remains vertical under the support of the support blocks 20 and is cut as the moving table 4 continues to move. When the moving table 4 moves to one-third of the guide rail 3, it is cut. The center of gravity of the boron wire 10 is located in the coiling tube 31. At this time, the first motor 11, located at the end of the top of the moving platform 4 away from the support frame 5, is activated. The first motor 11 drives the second limit plate 7 to rotate synchronously clockwise by ninety degrees through the first limit plate 6 and the connecting plate 19, causing the cut boron wire 10 to detach from the support block 20. At the same time, the other end of the boron wire 10, which is wound around the surface of the wire roll 2, is gradually detached from the support block 20 and is clamped by the elastic block 22 set between the first limit plate 6 and the second limit plate 7. Since telescopic boxes 21 are set between the first limit plate 6 and the second limit plate 7, and soft springs are set inside the telescopic boxes 21, and the ends of the soft springs are connected to the elastic blocks 22, and the elastic blocks 22 are made of silicone rubber, due to... The hardness of the aluminum-titanium boron wire 10 is 48 to 70 HV, while the hardness of the elastic block 22 is much lower than that of the aluminum-titanium boron wire 10. As the first limiting disc 6 and the second limiting disc 7 rotate, the elastic block 22, under the action of extrusion force, wraps around the surface of the aluminum-titanium boron wire 10. The soft spring cushions this, preventing deformation of the surface of the aluminum-titanium boron wire 10. At this time, the cut boron wire 10 is discharged from the collecting tube 31, while the boron wire 10 wrapped by the clamped elastic block 22 approaches the collecting tube 31 under the continuous movement of the moving table 4. By providing a funnel tube 32 at the end of the collecting tube 31, the end of the wrapped boron wire 10 contacts the inclined surface of the inner wall of the funnel tube 32. Under the continuous pushing of the moving table 4, the end of the boron wire 10 extends into the collecting tube 31.The electric rollers 34 installed on the inner wall of the coiling tube 31 pull the end of the boron wire 10. Then, the moving table 4 resets and moves to a suitable position for a second cutting of the aluminum-titanium-boron wire 10. This further solves the problem that traditional cutting equipment for aluminum-titanium-boron wire 10 often uses an intermittent processing mode of conveying, stopping, cutting, and re-conveying, which is not only inefficient but also prone to displacement of the aluminum-titanium-boron wire 10 during shutdown, thus affecting the cutting accuracy.

[0040] It should be further explained that when the aluminum-titanium boron wire 10 needs to be cut to a specified length, the second motor 23 drives the lead screw 24 to control the movement of the moving table 4. The cutting starts from the aluminum-titanium boron wire 10 located between the cutter 17 and the push block 13. The above operation is repeated. After the elastic block 22 wraps the aluminum-titanium boron wire 10 and enters the receiving tube 31, the first motor 11 drives the first limiting plate 6 and the second limiting plate 7 to rotate counterclockwise by 90 degrees, and the elastic block 22 is released from wrapping the aluminum-titanium boron wire 10. Then, the second motor 23 again controls the moving table 4 to move in the opposite direction of the aluminum-titanium boron wire 10 via the lead screw 24. The moving table 4 moves faster than the conveying speed of the aluminum titanium boron wire 10. When it moves to the appropriate position, the aluminum titanium boron wire 10 between the cutter 17 and the push block 13 is cut as the endpoint. The aluminum titanium boron wire 10 at the starting point is pulled by the electric roller 34 to extend out of the coiling tube 31. At this time, the center of gravity of the cut aluminum titanium boron wire 10 is in the coiling tube 31. The electric roller 34 is used to pull the cut aluminum titanium boron wire 10 repeatedly, so as to achieve continuous and uninterrupted cutting of the aluminum titanium boron wire 10 while avoiding the problem of bending of the aluminum titanium boron wire 10 and resulting in insufficient length accuracy.

[0041] It should be noted again that, in order to avoid slight deformation of the cutting edge of the tool 17 when it cuts the aluminum titanium boron wire 10 at high frequency, which would cause deformation of the cross-section of the aluminum titanium boron wire 10, a groove 16 is provided on one side of the outer wall of the mounting block 15. The tool 17 is installed using the groove 16, and then the bolt 18 is inserted from one end of the top of the tool 17 and the end of the bolt 18 is connected to the top of the mounting block 15, which facilitates timely replacement of the tool 17.

[0042] One end of the top of the cutting body 1 is fixedly connected to a constraint tube 30, and the inner wall of the constraint tube 30 is slidably connected to the outer wall of the boron wire 10. The end of the top of the cutting body 1 away from the constraint tube 30 is fixedly connected to a gathering tube 31, and the end of the gathering tube 31 is fixedly connected to a funnel tube 32. The inner wall of the funnel tube 32 is slidably connected to the outer wall of the boron wire 10. The inner wall of the gathering tube 31 is fixedly connected to a guide frame 33, and the two ends of the inner wall of the guide frame 33 are rotatably connected to several mutually symmetrical electric rollers 34. The outer wall of the electric rollers 34 is drively connected to the outer wall of the boron wire 10.

[0043] During operation, a constraint tube 30 is provided at one end of the top of the cutting body 1 to constrain the boron wire 10 extending from the wire roll 2, making the bent boron wire 10 straight after passing through the constraint tube 30. A gathering tube 31 is provided at the top of the cutting body 1 away from the constraint tube 30, and a funnel tube 32 is provided at the end of the gathering tube 31, so that the continuously extending boron wire 10 passes through the inner wall of the funnel tube 32 under the guidance of the inclined surface of the inner wall of the funnel tube 32 and enters the gathering tube 31. Since a guide frame 33 is provided on the inner wall of the gathering tube 31, the boron wire 10 entering the gathering tube 31 is constrained by the guide frame 33. Several mutually symmetrical electric rollers 34 are provided at both ends of the inner wall of the guide frame 33, so that the surface of the boron wire 10 is pulled by the electric rollers 34 and the boron wire 10 is discharged from the gathering tube 31 under the push of the electric rollers 34.

[0044] A method for cutting aluminum-titanium-boron wire during processing, the method employing the aforementioned cutting equipment for aluminum-titanium-boron wire processing, as follows:

[0045] S1: By setting a placement platform 8 on one side of the outer wall of the cutting body 1, the wire roll 2 with boron wire 10 is placed on the limiting plate 9 set on the top of the placement platform 8. Then, the limiting plate 9 is pushed so that the limiting tube 27 is inserted into the center of the inner wall of the wire roll 2. Then, the limiting block 29 is installed in the screw hole 28 set on one side of the outer wall of the limiting tube 27 and the wire roll 2 is fixed. At this time, the boron wire 10 is pulled out and its end passes through the constraint tube 30, then through the surface of the support block 20, and finally through the gathering tube 31. At this time, the transmission assembly is started to cut the boron wire 10 at a specified distance.

[0046] S2: The transmission assembly drives the lead screw 24 through the second motor 23, so that the lead screw 24 passes through the nut tube 25 set at the center of the bottom of the moving table 4, and controls the support frame 5, the first limit plate 6 and the second limit plate 7 to move along the trajectory of the guide rail 3. When the moving table 4 moves to the appropriate position, the first electric telescopic frame 12 and the second electric telescopic frame 14 are activated at the same time, so that the cutter 17 set at its output end and the push block 13 respectively come into contact with each other and cut the boron wire 10.

[0047] S3: By setting a guide frame 33 on the inner wall of the gathering tube 31, and setting several mutually symmetrical electric rollers 34 at both ends of the inner wall of the guide frame 33, the electric rollers 34 are used to pull the cut boron wire 10, so that the cut boron wire 10 is discharged from the cutting body 1.

[0048] The working principle of the cutting equipment and its operation method for processing aluminum-titanium-boron wire will be explained in detail below.

[0049] like Figures 1 to 10As shown, a placement platform 8 is provided on one side of the outer wall of the cut body 1, and a limiting plate 9 is provided at one end of the top of the placement platform 8. The wire roll 2 wrapped with aluminum titanium boron wire 10 is placed on the surface of the limiting plate 9. Since an electric rotating telescopic rod 26 is provided at the end of the top of the placement platform 8 away from the limiting plate 9, and a limiting tube 27 is provided at the output end of the electric rotating telescopic rod 26, the wire roll 2 placed on the surface of the limiting plate 9 is pushed so that the end of the limiting tube 27 is inserted into the center of the inner wall of the wire roll 2. By providing a screw hole 28 at the center of one side of the outer wall of the limiting tube 27, the limiting block 29 is installed in the screw hole 28 and the wire roll 2 on the outer wall of the limiting tube 27 is clamped. The boron wire 10 in the wire roll 2 is then passed through the constraint tube 30 at the top end of the cutting body 1. Guide rails 3 are provided at both ends of the bottom of the inner wall of the cutting body 1, and a moving platform 4 is provided at the top of the guide rails 3. A support frame 5 is provided at one end of the top of the moving platform 4, and a first limiting plate 6 and a second limiting plate 7 are respectively provided at both ends of the inner wall of the support frame 5. A connecting plate 19 is provided between the first limiting plate 6 and the second limiting plate 7, and support blocks 20 are provided at both ends of the first limiting plate 6 and the second limiting plate 7 near the connecting plate 19. This allows the boron wire 10 extending from the constraint tube 30 to be placed on the surfaces of the two support blocks 20. The boron wire 10 is then stretched further until its end extends into the receiving tube 31 located at the top of the cutting body 1, away from the constraint tube 30. At this time, the electric rotating telescopic rod 26 and the electric roller 34 located inside the receiving tube 31 start synchronously, using the electric roller 34 to pull the boron wire 10. Simultaneously, the electric rotating telescopic rod 26 drives the wire roll 2 to rotate along the extension direction of the boron wire 10. During this period, the electric rotating telescopic rod 26 moves back and forth, ensuring that the exit end of the boron wire 10 in the wire roll 2 remains perpendicular to the constraint tube 30, allowing the boron wire 10 to pass smoothly and straight through the receiving tube 31 and be discharged. Due to the limited space between the wire roll 2 and the placement platform 8... Positioning plate 9, so that when the electric rotating telescopic rod 26 frequently pushes the wire roll 2 to move back and forth, the limiting plate 9 reduces the friction between the wire roll 2 and the placement table 8. This not only makes the movement of the wire roll 2 smoother, but also avoids wear on the wire roll 2 during reciprocating movement, which would make the wire roll 2 difficult to reuse. This further solves the problem that in the process of using traditional cutting equipment for processing aluminum titanium boron wire 10, the aluminum titanium boron wire 10 is relatively soft, which causes the aluminum titanium boron wire 10 drawn from the wire roll to be relatively curved. When it is positioned and cut, the cut length often exceeds the predetermined length, which makes it difficult to meet the strict requirements of high-end smelting for the size of the material.

[0050] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the scope of protection of the present invention.

Claims

1. A cutting device for processing aluminum-titanium-boron wire, comprising a cutting body (1) and a wire roll (2), characterized in that: The bottom two ends of the inner wall of the cutting body (1) are fixedly connected to guide rails (3), and the top of the guide rails (3) is slidably connected to a moving platform (4). One end of the top of the moving platform (4) is fixedly connected to a support frame (5), and the two ends of the inner wall of the support frame (5) are respectively rotatably connected to a first limiting plate (6) and a second limiting plate (7). A transmission component is provided at the top of the moving platform (4) away from the support frame (5). A placement platform (8) is fixedly connected to one side of the outer wall of the cutting body (1), and a limiting plate (9) is slidably connected to one end of the top of the placement platform (8). The inner wall of the limiting plate (9) is slidably connected to the outer wall of the wire roll (2), and boron wire (10) is wound around the outer wall of the wire roll (2). A second motor (23) is fixedly connected to the side of the outer wall of the cutting body (1) away from the placement table (8), and a lead screw (24) is fixedly connected to the output end of the second motor (23). One end of the outer wall of the lead screw (24) is connected to the outer wall of the cutting body (1) through and rotatably. One end of the outer wall of the lead screw (24) is threadedly connected to a nut tube (25), and the top of the nut tube (25) is fixedly connected to the center of the bottom of the moving table (4). An electric rotating telescopic rod (26) is fixedly connected to the top of the placement platform (8) away from the limiting plate (9), and the output end of the electric rotating telescopic rod (26) is fixedly connected to the limiting tube (27), while the outer wall of the limiting tube (27) is slidably connected to the inner wall of the silk roll (2). The top of one side of the outer wall of the second limiting plate (7) is fixedly connected to the second electric telescopic frame (14), and the output end of the second electric telescopic frame (14) is fixedly connected to the mounting block (15). A sliding groove (16) is opened on one side of the outer wall of the mounting block (15), and a cutting tool (17) is slidably connected to the inner wall of the sliding groove (16). A bolt (18) is inserted into one end of the top of the cutting tool (17), and the end of the bolt (18) is threadedly connected to the top of the mounting block (15).

2. The cutting device for processing aluminum-titanium-boron wire according to claim 1, characterized in that: The transmission assembly includes a first motor (11) fixedly connected to the top of the moving platform (4) away from the support frame (5), and the output end of the first motor (11) is fixedly connected to the center of one side of the outer wall of the first limiting plate (6). A first electrically controlled telescopic frame (12) is fixedly connected to the top of one side of the outer wall of the first limiting plate (6), and a push block (13) is fixedly connected to the output end of the first electrically controlled telescopic frame (12).

3. The cutting device for processing aluminum-titanium-boron wire according to claim 2, characterized in that: A connecting plate (19) is fixedly connected between the first limiting plate (6) and the second limiting plate (7), and a support block (20) is fixedly connected to both ends of the first limiting plate (6) and the second limiting plate (7) near the connecting plate (19). The top of the support block (20) is slidably connected to the outer wall of the boron wire (10). A telescopic box (21) is fixedly connected to one end of the outer wall of the first limiting plate (6) and the second limiting plate (7), and an elastic block (22) is slidably connected to the inner wall of the telescopic box (21).

4. The cutting device for processing aluminum-titanium-boron wire according to claim 3, characterized in that: A screw hole (28) is provided at the center of one side of the outer wall of the limiting tube (27), and a limiting block (29) is threadedly connected to the inner wall of the screw hole (28), while one side of the outer wall of the limiting block (29) is in contact with the outer wall of the wire roll (2).

5. The cutting device for processing aluminum-titanium-boron wire according to claim 4, characterized in that: One end of the top of the cutting body (1) is fixedly connected to a constraint tube (30), and the inner wall of the constraint tube (30) is slidably connected to the outer wall of the boron wire (10). The top end of the cutting body (1) away from the constraint tube (30) is fixedly connected to a gathering tube (31), and the end of the gathering tube (31) is fixedly connected to a funnel tube (32), and the inner wall of the funnel tube (32) is slidably connected to the outer wall of the boron wire (10).

6. The cutting device for processing aluminum-titanium-boron wire according to claim 5, characterized in that: The inner wall of the gathering tube (31) is fixedly connected to a guide frame (33), and the two ends of the inner wall of the guide frame (33) are rotatably connected to several mutually symmetrical electric rollers (34), while the outer wall of the electric rollers (34) is connected to the outer wall of the boron wire (10) through transmission.

7. A method for cutting aluminum-titanium-boron wire during processing, the method employing the cutting equipment for aluminum-titanium-boron wire processing as described in claim 6, characterized in that: The method is as follows: S1: By setting a placement platform (8) on one side of the outer wall of the cutting body (1), the wire roll (2) with boron wire (10) is placed on the limiting plate (9) set on the top of the placement platform (8). Then push the limiting plate (9) so that the limiting tube (27) is inserted into the center of the inner wall of the wire roll (2). Then install the limiting block (29) in the screw hole (28) set on one side of the outer wall of the limiting tube (27) and fix the wire roll (2). At this time, the boron wire (10) is pulled out and its end passes through the constraint tube (30), then through the surface of the support block (20), and finally through the gathering tube (31). At this time, the transmission assembly is started to cut the boron wire (10) at a specified distance. S2: The transmission assembly drives the lead screw (24) through the second motor (23), so that the lead screw (24) passes through the nut tube (25) set at the bottom center of the moving table (4), and controls the support frame (5), the first limit plate (6) and the second limit plate (7) to move along the trajectory of the guide rail (3). When the moving table (4) moves to the appropriate position, the first electric telescopic frame (12) and the second electric telescopic frame (14) are activated at the same time, so that the cutter (17) set at its output end and the push block (13) fit together and cut the boron wire (10). S3: By setting a guide frame (33) on the inner wall of the coiling tube (31) and setting several mutually symmetrical electric rollers (34) at both ends of the inner wall of the guide frame (33), the electric rollers (34) are used to pull the cut boron wire (10) so that the cut boron wire (10) is discharged from the cutting body (1).

Citation Information

Patent Citations

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