Intelligent slitting equipment for alloy thin strip

The intelligent cutting equipment, which combines upper and lower laser heads with a transmission mechanism, solves the problem of burrs on metal strips and the risks of laser cutting, achieving efficient and safe cutting of alloy strips.

CN223762414UActive Publication Date: 2026-01-06JIANGSU CHANGFENG ELECTRIC POWER TECH CO LTD
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Patent Information

Application Number
CN202520302383.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-06
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

Existing alloy strip cutting machines are prone to producing metal burrs during cutting, affecting aesthetics and usability. At the same time, laser cutting requires high power and poses a risk of accidental skin injury and damage to the equipment.

Method used

By employing an upper and lower laser head in conjunction with a transmission mechanism, and through intermittent transmission and cutting, the opening and closing motion of the upper and lower laser heads is used to protect the laser head, reduce the laser beam power, and achieve intelligent cutting.

Benefits of technology

It effectively reduces metal burrs, lowers laser cutting power, avoids accidental injury to skin and machinery, and improves cutting efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to intelligent alloy ribbon slitting equipment which comprises a rack, and a conveying mechanism and a cutting mechanism are arranged on the rack. The conveying mechanism comprises a conveying belt, the conveying belt is arranged at the top of the rack, and the conveying belt intermittently moves to convey the alloy thin strip needing to be cut to the cutting mechanism; the cutting mechanism comprises an upper laser head and a lower laser head, the upper laser head is used for emitting laser beams from the top, the lower laser head is used for emitting laser beams from the bottom, and therefore intelligent cutting of the alloy thin strip is completed. The conveying mechanism and the cutting mechanism are matched, so that intermittent conveying and cutting of the alloy thin strip are completed, the alloy thin strip is conveyed into the cutting mechanism at the beginning, after cutting is completed, the upper laser head and the lower laser head are away from each other, the laser heads are protected, and the conveying mechanism conveys the alloy thin strip into the cutting mechanism while the upper laser head and the lower laser head are away from each other. Therefore, circulating and reciprocating conveying and cutting are formed.
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Description

Technical Field

[0001] This utility model relates to a wide range of applications, specifically an intelligent slitting device for alloy strips. Background Technology

[0002] Alloy strips are metallic materials prepared through specific processes. Their thickness is usually less than 0.5 mm. The specific definition may vary depending on the application field and material type. Alloy strips are sheet-like materials composed of multiple metallic elements. According to different manufacturing processes and uses, alloy strips can be divided into various types, such as amorphous alloy strips, nanocrystalline alloy strips, copper-based alloy strips, etc.

[0003] When alloy strips are slit, cutting machines are required. Existing cutting machines often produce burrs during cutting, which are difficult to finish and thus affect the aesthetics and usability.

[0004] Meanwhile, existing laser cutting methods often involve setting up a laser beam for cutting, which requires a large laser power and poses risks such as accidental injury to the skin and equipment. Utility Model Content

[0005] The purpose of this invention is to provide an intelligent slitting device for alloy strips to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] An intelligent alloy strip slitting device includes a frame, on which a transmission mechanism and a cutting mechanism are provided;

[0008] The transmission mechanism includes a conveyor belt disposed on the top of the frame, and the conveyor belt moves intermittently to transport the alloy strip to be cut to the cutting mechanism.

[0009] The cutting mechanism includes an upper laser head and a lower laser head. The upper laser head emits a laser beam from the top, and the lower laser head emits a laser beam from the bottom, thereby completing the intelligent cutting of the alloy strip.

[0010] The intelligent alloy strip slitting equipment described above includes: a motor fixedly mounted on the frame; a drive wheel fixedly mounted on the output shaft of the motor; a driven wheel meshing with the drive wheel; the driven wheel rotatably connected to the frame; and the driven wheel connected to the transmission mechanism.

[0011] The intelligent alloy strip slitting equipment described above includes a first roller, a second roller, and a conveyor belt. The first roller is fixedly mounted on a driven wheel, and the conveyor belt is rotatably mounted on a frame. The first roller and the conveyor belt are connected through the second roller.

[0012] The intelligent alloy strip slitting equipment described above has the following configuration: a lower gear is fixedly mounted on the drive wheel, and an upper gear meshes with the lower gear; both the lower gear and the upper gear are rotatably mounted on the frame.

[0013] The intelligent alloy strip slitting equipment described above includes: a swing arm rotatably mounted on the frame; a through groove on the swing arm; protrusions fixedly mounted on both the lower and upper gears; two swing arms; and the lower and upper gears are movably connected to their respective swing arms.

[0014] The alloy strip intelligent slitting equipment described above includes: a vertical slide rail fixedly mounted on the frame; a slide block slidably mounted on the vertical slide rail; two slide blocks, one above the other; and guide posts fixedly mounted on each slide block; both slide blocks are movably connected to two swing rods.

[0015] The intelligent alloy strip slitting equipment described above: both slide blocks are fixedly equipped with longitudinal slide rails, and cylinders are fixedly equipped on the longitudinal slide rails.

[0016] The alloy strip intelligent slitting equipment described above: the upper laser head and the lower laser head are respectively slidably mounted on the corresponding longitudinal slide rails, and the upper laser head and the lower laser head are respectively rotatably connected to the output end of the corresponding cylinder.

[0017] Compared with the prior art, the beneficial effects of this utility model are: this utility model completes the intermittent transmission and cutting of alloy strip by setting up a transmission mechanism and a cutting mechanism. At the beginning, the alloy strip is transported to the cutting mechanism. After the cutting is completed, the upper and lower laser heads are moved away to protect the laser heads. At the same time as they are moved away, the transmission mechanism transports the alloy strip to the cutting mechanism again, thus forming a cycle of transmission and cutting.

[0018] This utility model also features an upper and lower swing arm that continuously opens and closes to protect the laser head. The design of two laser heads, one above the other, reduces the power required for the laser beam, thereby preventing accidental injury to the skin, machinery, and high-quality metal structures on the equipment. Attached Figure Description

[0019] Figure 1 This is a three-dimensional schematic diagram of the overall structure of an intelligent alloy strip slitting device.

[0020] Figure 2 This is a schematic diagram of another aspect of the intelligent alloy strip slitting equipment.

[0021] Figure 3 This is a front view schematic diagram of the overall structure of the intelligent alloy strip slitting equipment.

[0022] Figure 4This is a schematic diagram of the cutting mechanism in an intelligent alloy strip slitting device.

[0023] Figure 5 for Figure 3 A schematic diagram of the lower gear, upper gear, and surrounding structures.

[0024] In the diagram: 1. Frame; 2. Motor; 3. Drive wheel; 4. Driven wheel; 5. First roller; 6. Second roller; 7. Conveyor belt; 8. Lower gear; 9. Upper gear; 10. Swing arm; 11. Vertical slide rail; 12. Slide block; 13. Longitudinal slide rail; 14. Cylinder; 15. Upper laser head; 16. Lower laser head. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0026] Please see Figures 1-5 As an embodiment of the present utility model, the intelligent alloy strip slitting equipment includes a frame 1, on which a transmission mechanism and a cutting mechanism are provided;

[0027] The transmission mechanism includes a conveyor belt 7, which is disposed on the top of the frame 1. The conveyor belt 7 moves intermittently to transport the alloy strip to be cut to the cutting mechanism.

[0028] The cutting mechanism includes an upper laser head 15 and a lower laser head 16. The upper laser head 15 is used to emit a laser beam from the top, and the lower laser head 16 is used to emit a laser beam from the bottom, thereby completing the intelligent cutting of the alloy strip.

[0029] In this embodiment, when cutting the alloy strip, the alloy strip is first placed on the conveyor belt 7, and the alloy strip is intermittently transported by the set transmission mechanism. When it is transported to the middle of the cutting mechanism, the upper laser head 15 and the lower laser head 16 in the cutting mechanism will simultaneously emit laser beams of the required power to cut the alloy strip.

[0030] The machine uses an upper laser head 15 and a lower laser head 16 to cut simultaneously, which reduces the required cutting power and further saves costs.

[0031] As a further embodiment of this utility model, a motor 2 is fixedly mounted on the frame 1, a drive wheel 3 is fixedly mounted on the output shaft of the motor 2, a driven wheel 4 is meshed on the drive wheel 3, the driven wheel 4 is rotatably connected to the frame 1, and the driven wheel 4 is connected to the transmission mechanism.

[0032] In this embodiment, during cutting, motor 2 is started first. The output shaft of motor 2 drives the driving wheel 3 to rotate continuously. While the driving wheel 3 is rotating continuously, it will intermittently drive the driven wheel 4 to rotate. As can be seen from the figure, when the driving wheel 3 rotates one revolution, the driven wheel 4 will rotate one-quarter revolution, thus making the driven wheel 4 move continuously and intermittently.

[0033] As a further embodiment of this utility model, the transmission mechanism includes a first roller 5, a second roller 6, and a conveyor belt 7. The first roller 5 is fixedly mounted on the driven wheel 4, and the conveyor belt 7 is rotatably mounted on the frame 1. The first roller 5 and the conveyor belt 7 are connected through the second roller 6.

[0034] In this embodiment, the driven wheel 4 drives the first roller 5 to rotate when it rotates. The cooperation between the first roller 5 and the second roller 6 causes the conveyor belt 7 to run intermittently, thereby transporting the alloy strip on the surface to the middle position of the cutting mechanism.

[0035] As a further embodiment of this utility model, a lower gear 8 is fixedly mounted on the drive wheel 3, and an upper gear 9 meshes with the lower gear 8. Both the lower gear 8 and the upper gear 9 are rotatably mounted on the frame 1.

[0036] In this embodiment, the driving wheel 3 drives the lower gear 8 to rotate while it is rotating continuously. The lower gear 8 drives the upper gear 9 to rotate continuously while it is rotating, and the upper gear 9 and the lower gear 8 rotate in opposite directions.

[0037] Here, the forward rotation of the lower gear 8 can be converted into the reverse rotation of the upper gear 9, thus completing the change of rotation direction.

[0038] As a further embodiment of this utility model, a swing arm 10 is rotatably mounted on the frame 1. A through groove is provided on the swing arm 10. Both the lower gear 8 and the upper gear 9 are fixedly provided with protrusions. There are two swing arms 10, and the lower gear 8 and the upper gear 9 are respectively movably connected to the corresponding swing arm 10.

[0039] In this embodiment, as can be seen from the figure, while the lower gear 8 and the upper gear 9 rotate synchronously, they will drive the rocker arm 10 to swing up and down continuously around the rotation axis on one side of itself through the protrusion. This causes the two rocker arms 10 to continuously open and close, that is, the two rocker arms 10 continuously approach and separate, thus forming a movement similar to the movement of scissors.

[0040] As a further embodiment of this utility model, a vertical slide rail 11 is fixedly installed on the frame 1, and a slide block 12 is slidably installed on the vertical slide rail 11. The slide block 12 is configured as two slide blocks, one above the other, and guide posts are fixedly installed on the two slide blocks 12. Both slide blocks 12 are movably connected to the two swing rods 10.

[0041] In this embodiment, when the two swing arms 10 move up and down, they are connected to the guide post on the slide block 12, which causes the slide block 12 to slide up and down on the vertical slide rail 11. In other words, both the upper and lower slide blocks 12 will run on the vertical slide rail 11.

[0042] As a further embodiment of this utility model, each of the two slide blocks 12 is fixedly provided with a longitudinal slide rail 13, and a cylinder 14 is fixedly provided on the longitudinal slide rail 13.

[0043] In this embodiment, a longitudinal slide rail 13 is installed on the slide block 12. The longitudinal slide rail 13 moves up and down with the slide block 12. A cylinder 14 is installed on the longitudinal slide rail 13. The cylinder 14 is used to drive the upper laser head 15 and the lower laser head 16.

[0044] As a further embodiment of this utility model, the upper laser head 15 and the lower laser head 16 are respectively slidably mounted on the corresponding longitudinal slide rails 13, and the upper laser head 15 and the lower laser head 16 are respectively rotatably connected to the output end of the corresponding cylinder 14.

[0045] In this embodiment, in conjunction with the previous embodiment, when the slide 12 moves up and down, when the two slides 12 are parallel to the two swing rods 10, the distance between the slides 12 is the shortest, and the distance between the upper laser head 15 and the lower laser head 16 is also the closest. At this time, the cutting of alloy strip is the best.

[0046] During cutting, cylinder 14 pushes the upper laser head 15 and the lower laser head 16 to move longitudinally at the same time, thereby completing the cutting of the alloy strip in the width direction. After the cutting is completed, the upper laser head 15 and the lower laser head 16 move away synchronously. At this time, the transmission mechanism will transport the alloy strip to the cutting mechanism again for cutting, thereby completing intermittent transmission and intermittent cutting.

[0047] After the cutting is completed, the upper laser head 15 and the lower laser head 16 will move away synchronously to avoid close-range laser beam confrontation.

[0048] The above embodiments are exemplary and not restrictive. Therefore, without departing from the spirit or basic characteristics of this utility model, any technical solutions that can be implemented in other specific forms are included in this utility model.

Claims

1. An alloy ribbon smart slitting apparatus, characterized by, The alloy strip intelligent cutting equipment comprises a rack (1), a transmission mechanism and a cutting mechanism are arranged on the rack (1); The transmission mechanism comprises a conveying belt (7), the conveying belt (7) is arranged on the top of the rack (1), and the conveying belt (7) moves intermittently to convey the alloy strip to be cut to the cutting mechanism; The cutting mechanism comprises an upper laser head (15) and a lower laser head (16), the upper laser head (15) is used for emitting a laser beam from the top, and the lower laser head (16) is used for emitting a laser beam from the bottom, so that the intelligent cutting of the alloy strip is completed.

2. The alloy ribbon smart slitting device of claim 1, wherein, A motor (2) is fixedly arranged on the rack (1), a driving wheel (3) is fixedly arranged on the output shaft of the motor (2), a driven wheel (4) is engaged with the driving wheel (3), the driven wheel (4) is rotatably connected with the rack (1), and the driven wheel (4) is connected with the transmission mechanism.

3. The alloy ribbon smart slitting device of claim 2, wherein, The transmission mechanism comprises a first roller (5), a second roller (6) and a conveying belt (7), the first roller (5) is fixedly arranged on the driven wheel (4), the conveying belt (7) is rotatably arranged on the rack (1), and the first roller (5) and the conveying belt (7) are connected through the second roller (6).

4. The alloy ribbon smart slitting device of claim 2, wherein, A lower gear (8) is fixedly arranged on the driving wheel (3), an upper gear (9) is engaged with the lower gear (8), and the lower gear (8) and the upper gear (9) are rotatably arranged on the rack (1).

5. The alloy ribbon smart slitting device of claim 4, wherein, Swing rods (10) are rotatably arranged on the rack (1), a through groove is formed in each swing rod (10), protrusions are fixedly arranged on the lower gear (8) and the upper gear (9), and two swing rods (10) are arranged on the rack (1) and movably connected with the lower gear (8) and the upper gear (9) respectively.

6. The alloy ribbon smart slitting apparatus of claim 5, wherein, A vertical sliding rail (11) is fixedly arranged on the rack (1), sliding seats (12) are slidably arranged on the vertical sliding rail (11), the sliding seats (12) are arranged in two layers, guide columns are fixedly arranged on the two sliding seats (12), and the two sliding seats (12) are movably connected with the two swing rods (10).

7. The alloy ribbon smart slitting device of claim 6, wherein, Longitudinal sliding rails (13) are fixedly arranged on the two sliding seats (12), and air cylinders (14) are fixedly arranged on the longitudinal sliding rails (13).

8. The alloy ribbon smart slitting device of claim 1 or 7, wherein, The upper laser head (15) and the lower laser head (16) are slidably arranged on the corresponding longitudinal sliding rails (13), and the upper laser head (15) and the lower laser head (16) are rotatably connected with the output ends of the corresponding air cylinders (14).