Cut-off machine for aluminum-titanium-boron wire production
By designing an aluminum-titanium boron wire cutting machine including a cutting table and a conveying mechanism, a double-axis motor drive cutting knife is used to cut multiple aluminum-titanium boron wires, the problem of low cutting efficiency in the prior art is solved and efficient multiple cutting is achieved.
Patent Information
- Application Number
- CN202422318921.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing aluminum-titanium boron wire cutting device can only cut one aluminum-titanium boron wire at a time, and the cutting efficiency is low and cannot meet the needs of cash production.
A cutting machine for the production of aluminum-titanium boron wire is designed, including a cutting table, a conveying mechanism and a U-shaped frame. A double-axis motor drives a rotary rod to drive a cutting knife to cut multiple aluminum-titanium boron wires, and combines the conveying mechanism to achieve efficient cutting.
The simultaneous cutting of multiple aluminum-titanium boron wires is achieved, which improves the cutting efficiency and meets the needs of cash production.
Smart Images

Figure CN223129216U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum-titanium-boron wire processing, and particularly relates to a cutting machine for producing aluminum-titanium-boron wire. Background Technique
[0002] Aluminum-titanium-boron wire refers to a metal material prepared by taking aluminum as the main raw material and adding various raw materials such as titanium and boron in a certain proportion. Aluminum-titanium-boron wire is suitable for being added into the melt during the direct water-cooled casting, semi-continuous casting and fixed mold casting of aluminum and aluminum alloys, so that the cast product has good grain refinement. When producing aluminum-titanium-boron wire, a cutting machine is required to cut it and then package it.
[0003] After a large number of searches in the patent literature database, it is known that: Application No.
CN202222123580.6
CN217991089U
[0004] For the above-mentioned traditional aluminum-titanium-boron wire cutting device, when in use, only one aluminum-titanium-boron wire can be cut at a time, and the cutting efficiency is low, greatly reducing the output, and it can no longer meet the needs of current production. Content of the Utility Model
[0005] The purpose of the utility model is to provide a cutting machine for producing aluminum-titanium-boron wire, which has the advantages of cutting multiple aluminum-titanium-boron wires at one time, high cutting efficiency, and increased output to meet the needs of current production. The problems mentioned in the background technique are solved.
[0006] To achieve the above object, the present utility model provides the following technical solutions: A cutting machine for producing aluminum-titanium-boron wire, comprising a cutting table, a conveying mechanism and a U-shaped frame. On the upper surface of the cutting table, from left to right, a turning roller, two limiting rollers, a conveying mechanism, a mounting seat and a U-shaped frame are sequentially installed. A row of round tubes are equidistantly installed on the upper surface of the mounting seat. In the middle of the bottom of the cross beam of the U-shaped frame, a double-shaft motor is installed. At the ends of the two output shafts of the double-shaft motor, rotating rods are installed. At the same end of the two rotating rods, a round pin is installed. On the inner sides of the two U-shaped sides of the U-shaped frame, limiting grooves are symmetrically opened. In the two limiting grooves, a cutting knife is installed in a limiting manner. At both ends of the top of the cutting knife, two movable piles are symmetrically installed. The two movable piles are connected to the two round pins one by one through two connecting rods. On the upper surface of the cutting table, directly below the U-shaped frame, a support seat is installed. On the right side of the cutting table, a drainage trough is installed.
[0007] Preferably, four support legs are installed at the four corners of the bottom end of the cutting table in a rectangular array, and a reinforcing rod is installed between the lower ends of the four support legs. By setting a reinforcing rod between the lower ends of the four support legs, the support strength of the four support legs is increased.
[0008] Preferably, the main body of the conveying mechanism is composed of two support plates, a conveying motor, a conveying roller, two lifting electric rods, a horizontal fixing frame and a pressing roller. Between the lower ends of the two support plates, a conveying roller is rotatably installed. The rotating shaft of the conveying roller passes through the support plate and is connected to the output shaft of the conveying motor through a flange. The conveying motor is fixed to the side of the support plate through a mounting plate. At the same position at the upper ends of the outer sides of the two support plates, fixing blocks are installed. On the fixing blocks, lifting electric rods are installed. Rectangular notch openings are symmetrically opened in the two support plates below the fixing blocks. The two ends of the horizontal fixing frame pass through the rectangular notch openings and are fixed to the extending ends of the lifting electric rods. On the horizontal fixing frame, two support rods are symmetrically slidably installed. Springs are sleeved on the two support rods, and a pressing roller is installed between the lower ends. By setting the conveying mechanism, the conveying of the aluminum-titanium-boron wire is realized.
[0009] Preferably, two sliding rods are symmetrically installed at the lower right ends of the two U-shaped sides of the U-shaped frame. On the two sliding rods, a baffle is jointly slidably installed. At the connection positions of the two ends of the baffle and the sliding rods, adjusting screws are screwed.
[0010] Preferably, a control box is installed on the inner side of the right support leg close to the bottom of the cutting table. The control box is electrically connected to the conveying motor, the lifting electric rod and the double-shaft motor. By setting the control box, the start and stop of the conveying motor, the lifting electric rod and the double-shaft motor can be conveniently controlled as a whole.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] When the utility model is in use, two lifting electric rods, a conveying motor and a double-shaft motor are sequentially started through a control box. When the two lifting electric rods work, they drive the pressing roller to descend to press the aluminum-titanium-boron wire. When the conveying motor works, it drives the conveying roller to rotate to convey the aluminum-titanium-boron wire. When the double-shaft motor works, it drives the rotating rods installed on the output shafts at both ends thereof to rotate. The rotation of the two rotating rods drives the cutter to move up and down through the connecting rod, so as to realize cutting multiple aluminum-titanium-boron wires at one time, with high cutting efficiency, increased output and meeting the needs of current production. Brief Description of the Drawings
[0013] Figure 1 is a schematic structural diagram of the utility model;
[0014] Figure 2 is a structural diagram of the conveying mechanism of the utility model;
[0015] Figure 3 is a right view of the utility model.
[0016] In the figure: 1, cutting table; 2, mounting seat; 3, support plate; 4, mounting plate; 5, conveying motor; 6, limiting roller; 7, support leg; 8, turning roller; 9, spring; 10, rectangular notch; 11, fixing block; 12, lifting electric rod; 13, horizontal fixing frame; 14, round tube; 15, U-shaped frame; 16, baffle; 17, sliding rod; 18, adjusting screw; 19, drainage groove; 20, control box; 21, conveying roller; 22, pressing roller; 23, support rod; 24, limiting groove; 25, cutter; 26, movable pile; 27, connecting rod; 28, rotating rod; 29, round pin; 30, double-shaft motor; 31, support seat. Specific Embodiments
[0017] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0018] Please refer to Figures 1 to 3, the present utility model provides a technical solution for a cutting machine used in the production of aluminum-titanium-boron wire: A cutting machine for the production of aluminum-titanium-boron wire includes a cutting table 1, a conveying mechanism, and a U-shaped frame 15. Four support legs 7 are installed at the four corners of the bottom end of the cutting table 1 in a rectangular array. A reinforcing rod is installed between the lower ends of the four support legs 7. On the upper surface of the cutting table 1, a steering roller 8, two limiting rollers 6, a conveying mechanism, a mounting seat 2, and a U-shaped frame 15 are installed in sequence from left to right. A row of round tubes 14 are equidistantly installed on the upper surface of the mounting seat 2. The main body of the conveying mechanism is composed of two support plates 3, a conveying motor 5, a conveying roller 21, two lifting electric rods 12, a horizontal fixing frame 13, and a pressing roller 22. A conveying roller 21 is rotatably installed between the lower ends of the two support plates 3. The rotating shaft of the conveying roller 21 passes through the support plate 3 and is connected to the output shaft of the conveying motor 5 through a flange. The conveying motor 5 is fixed to the side of the support plate 3 through a mounting plate 4. Fixed blocks 11 are installed at the same position on the upper ends of the two support plates 3. Lifting electric rods 12 are installed on the upper ends of the two fixed blocks 11. Rectangular notches 10 are symmetrically opened on the two support plates 3 below the fixed blocks 11. The two ends of the horizontal fixing frame 13 pass through the rectangular notches 10 and are fixed to the extending ends of the lifting electric rods 12. Two support rods 23 are symmetrically and slidably installed on the horizontal fixing frame 13. Springs 9 are sleeved on the two support rods 23, and a pressing roller 22 is installed between the lower ends; by sequentially starting the two lifting electric rods 12, the conveying motor 5, and the double-shaft motor 30 through the control box 20, the two lifting electric rods 12 work to drive the pressing roller 22 to descend (descend until the two springs 9 are deformed) to press the aluminum-titanium-boron wire, and the conveying motor 5 works to drive the conveying roller 21 to rotate to convey the aluminum-titanium-boron wire.
[0019] A double-shaft motor 30 is installed in the middle of the bottom of the cross beam of the U-shaped frame 15. Rotating rods 28 are installed at the ends of the two output shafts of the double-shaft motor 30. A round pin 29 is installed at the same end of the two rotating rods 28. Limiting grooves 24 are symmetrically opened on the inner sides of the two U-shaped sides of the U-shaped frame 15. A cutting knife 25 is installed in the two limiting grooves 24 in a limiting manner. Two movable piles 26 are symmetrically installed at both ends of the top of the cutting knife 25. The two movable piles 26 are connected to the two round pins 29 through two connecting rods 27 one by one; when the double-shaft motor 30 works, it drives the rotating rods 28 installed at both ends of its output shafts to rotate. The rotation of the two rotating rods 28 drives the cutting knife 25 to move up and down through the connecting rods 27. The up and down movement of the cutting knife 25 performs fixed-length cutting on multiple aluminum-titanium-boron wires during conveying. Two sliding rods 17 are symmetrically installed at the lower right ends of the two U-shaped sides of the U-shaped frame 15. A baffle 16 is slidably installed on the two sliding rods 17 together. Adjusting screws 18 are screwed at the joints of the two ends of the two baffles 16 and the sliding rods 17. A support seat 31 is installed on the upper surface of the cutting table 1 directly below the U-shaped frame 15. A drainage groove 19 is installed on the right side of the cutting table 1. A control box 20 is installed inside the right support leg 7 close to the bottom of the cutting table 1. The control box 20 is electrically connected to the conveying motor 5, the lifting electric rods 12, and the double-shaft motor 30.
[0020] All the motors of the present utility model are designed by selecting small servo motors of model 14HS2408. This model of motor is only for reference by those skilled in the art. Those skilled in the art can select and match motors with the same parameters and functions for installation, debugging and use according to actual production needs, and the present utility model will not elaborate on this.
[0021] When the present utility model is in use, first, according to the cutting length of the aluminum-titanium-boron wire, loosen the two adjusting screws 18, adjust the distance between the baffle 16 and the cutting knife 25. After adjustment, pass multiple aluminum-titanium-boron wires one by one over the upper surface of the turning roller 8, through between the two limiting rollers 6, then through the conveying mechanism, and finally into a row of round tubes 14 and exit from its right end to contact the baffle 16 and stop. Sequentially start the two lifting electric rods 12, the conveying motor 5 and the double-shaft motor 30 through the control box 20. The two lifting electric rods 12 work to drive the pressing roller 22 to descend (it can descend until the two springs 9 are deformed) to press the aluminum-titanium-boron wire. The conveying motor 5 works to drive the conveying roller 21 to rotate to convey the aluminum-titanium-boron wire. The double-shaft motor 30 works to drive the rotating rods 28 installed on its two output shafts to rotate. The rotation of the two rotating rods 28 drives the cutting knife 25 to move up and down through the connecting rod 27. The up and down movement of the cutting knife 25 performs fixed-length cutting on the multiple aluminum-titanium-boron wires being conveyed.
[0022] Although the embodiments of the present utility model have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. A cutting machine for producing aluminum-titanium-boron wire, comprising a cutting table (1), a conveying mechanism and a U-shaped frame (15), characterized in that: On the upper surface of the cutting table (1), from left to right, there are installed a turning roller (8), two limit rollers (6), a conveying mechanism, a mounting seat (2), and a U-shaped frame (15) in sequence. A row of round tubes (14) are equidistantly installed on the upper surface of the mounting seat (2). In the middle of the bottom of the cross beam of the U-shaped frame (15), a double-shaft motor (30) is installed. At the ends of the two output shafts of the double-shaft motor (30), there are installed rotating rods (28). At the same end of the two rotating rods (28), there is installed a round pin (29). On the inner sides of the two U-shaped sides of the U-shaped frame (15), there are symmetrically opened limit slots (24). A cutting knife (25) is installed in the two limit slots (24) in a limited manner. At both ends of the top of the cutting knife (25), there are symmetrically installed two movable piles (26). The two movable piles (26) are connected to the two round pins (29) one by one through two connecting rods (27). On the upper surface of the cutting table (1), a support seat (31) is installed directly below the U-shaped frame (15). On the right side of the cutting table (1), a drainage trough (19) is installed.
2. The cutting machine for producing aluminum-titanium-boron wire according to claim 1, wherein: At the four corners of the bottom end of the cutting table (1), there are installed four support legs (7) in a rectangular array. Between the lower ends of the four support legs (7), a reinforcing rod is installed.
3. A cutting machine for the production of aluminum-titanium-boron wire according to claim 1, characterized in that: The main body of the conveying mechanism is composed of two support plates (3), a conveying motor (5), a conveying roller (21), two lifting electric rods (12), a horizontal fixing frame (13), and a pressing roller (22). Between the lower ends of the two support plates (3), a conveying roller (21) is rotatably installed. The rotating shaft of the conveying roller (21) passes through the support plate (3) and is connected to the output shaft of the conveying motor (5) through a flange. The conveying motor (5) is fixed on the side of the support plate (3) through a mounting plate (4). At the same position on the upper ends of the outer sides of the two support plates (3), there are installed fixing blocks (11). On the upper ends of the two fixing blocks (11), there are installed lifting electric rods (12). On the two support plates (3), rectangular notch openings (10) are symmetrically opened below the fixing blocks (11). The two ends of the horizontal fixing frame (13) pass through the rectangular notch openings (10) and are fixed on the extending ends of the lifting electric rods (12). On the horizontal fixing frame (13), two support rods (23) are symmetrically and slidably installed. Springs (9) are sleeved on the two support rods (23), and a pressing roller (22) is installed between the lower ends.
4. A cutting machine for producing aluminum-titanium-boron wire according to claim 1, characterized in that: On the lower right ends of the two U-shaped sides of the U-shaped frame (15), there are symmetrically installed two sliding rods (17). A baffle (16) is slidably installed on the two sliding rods (17) together. At the connection positions of the two ends of the two baffles (16) and the sliding rods (17), there are screwed adjusting screws (18).
5. A cutting machine for the production of aluminum-titanium-boron wire according to claim 1, characterized in that: At the bottom of the cutting table (1), close to the inner side of the right support leg (7), a control box (20) is installed. The control box (20) is electrically connected to the conveying motor (5), the lifting electric rods (12), and the double-shaft motor (30).
Citation Information
Patent Citations
Quantitative cutting device for producing aluminum-titanium-boron wires
CN217991089U