Adjusting and feeding device for aluminum-titanium-boron wire machining
By designing an aluminum-titanium-boron wire feeding device with a limiting sliding and lifting structure, the problems of limiting the tail end of the aluminum-titanium-boron wire and cleaning its surface were solved, ensuring stable feeding and cleaning of the aluminum-titanium-boron wire and improving processing quality.
Patent Information
- Application Number
- CN202520251377.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-02-18
AI Technical Summary
The existing feeding device cannot effectively limit the tail end and keep the surface clean during the processing of aluminum-titanium-boron wire, which affects the subsequent processing effect.
An adjustable feeding device for processing aluminum-titanium-boron wire was designed. A servo motor drives a screw and a slide rod to form a limiting sliding structure. Combined with a brush and a servo motor-driven limiting lifting structure, the device enables the limiting movement and surface cleaning of the tail end of the aluminum-titanium-boron wire.
This method achieves stable positioning and surface cleaning of the aluminum-titanium-boron wire tail end, ensuring smooth subsequent processing and improving processing results.
Smart Images

Figure CN223765763U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of aluminum-titanium-boron wire processing technology, specifically to an adjustable feeding device for aluminum-titanium-boron wire processing. Background Technology
[0002] Aluminum-titanium-boron (ATiB) wire is a type of metal wire mainly composed of aluminum, titanium, and boron. It possesses excellent thermal conductivity, wear resistance, and corrosion resistance, making it widely used in high-temperature, high-pressure, and corrosive environments. During the processing of ATiB wire, a feeding device is used to move the wire automatically into the processing machine for related operations.
[0003] The feeding device, during operation, uses height-adjustable take-up rollers and limiting devices to ensure the aluminum-titanium-boron wire moves along a predetermined trajectory, thus completing the feeding process. However, existing feeding devices are inconvenient for limiting the movement of the aluminum-titanium-boron wire tail end and for ensuring the cleanliness of the wire surface, which can easily affect the subsequent processing results. Therefore, an adjustable feeding device for aluminum-titanium-boron wire processing is proposed to solve these problems. Utility Model Content
[0004] The purpose of this utility model is to provide an adjustable feeding device for processing aluminum-titanium-boron wire, so as to solve the problem mentioned in the background art that the existing feeding device is inconvenient to limit the movement of the tail end of the aluminum-titanium-boron wire during use, and is inconvenient to ensure the cleanliness of the surface of the aluminum-titanium-boron wire, which easily affects the subsequent processing effect of the aluminum-titanium-boron wire.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an adjustable feeding device for processing aluminum-titanium-boron wire, comprising a support frame, a take-up roller between the support frames, and aluminum-titanium-boron wire wound on the take-up roller, the other end of the aluminum-titanium-boron wire being inserted into the processing machine body, a first fixed frame on one side of the support frame, and a first servo motor inside the first fixed frame, one end of the output shaft of the first servo motor being connected to a first screw through a coupling, and a first slide rod correspondingly provided on one side of the first screw, a first movable block being inserted through the first screw and the first slide rod, and connecting rods being provided on the outer walls of the first movable block on both sides, the other end of the connecting rods being connected to a second fixed frame, and multiple sets of balls being embedded in the lower end face of the second fixed frame, and fixed rods being provided on the outer walls of the processing machine body on both sides, and a slider correspondingly provided on the outer side of the second fixed frame, the slider being inserted into the fixed rod;
[0006] The second fixed frame has a second servo motor inside, and one end of the output shaft of the second servo motor is connected to a second screw through a coupling. A first synchronous pulley is sleeved on the second screw, and a second synchronous pulley is correspondingly provided on one side of the first synchronous pulley. A synchronous belt is sleeved on the outer wall of the first and second synchronous pulleys, and a second screw is inserted inside the second synchronous pulley. A second slide rod is correspondingly provided on the outer side of the second screw, and two sets of second movable blocks are inserted on the second screw and the second slide rod respectively. A connecting rod is provided on the lower end of the second movable block, and the other end of the connecting rod is connected to a first fixed block. A concave connecting rod is provided on the lower end face of the first fixed block, and a second fixed block is provided on the other end of the concave connecting rod. A through hole is opened on the second fixed block, and a brush is provided on the inner wall of the through hole.
[0007] A connecting frame is provided between the second movable blocks at the upper end of the second screw, and an electric push rod is provided inside the connecting frame. The electric push rod is provided with a telescopic arm below, and a first fixing block is provided at the lower end of the telescopic arm. Soft rubber pads are provided on the lower end face of the first fixing blocks, and aluminum-titanium-boron wires are inserted between the first fixing blocks.
[0008] Preferably, the second fixed frame, under the action of the first servo motor, forms a limiting sliding structure with the first fixed frame through the first screw, the first slide rod, and the first movable block.
[0009] Preferably, the brush, under the action of the second servo motor, forms a limiting lifting structure with the second fixed frame via the second screw, the second slide rod, the second movable block, and the second servo motor.
[0010] Preferably, the first fixed block, under the action of the electric push rod, forms a vertical lifting structure with the connecting frame through the telescopic arm.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: The second fixed frame of the aluminum-titanium boron wire processing adjustment feeding device forms a limiting sliding structure with the first fixed frame through the first screw, the first slide rod, the first movable block and the first fixed frame under the action of the first servo motor. Thus, the limiting sliding second fixed frame facilitates the limited movement of the tail end of the aluminum-titanium boron wire, thereby facilitating the complete feeding of the aluminum-titanium boron wire. The brush of the device forms a limiting lifting structure with the second fixed frame through the second screw, the second slide rod, the second movable block and the second fixed frame under the action of the second servo motor. Thus, the second servo motor and its related components ensure that the brush can be synchronously adjusted in height with the aluminum-titanium boron wire feeding component. Thus, the brush can prevent dust and other impurities remaining on the surface of the aluminum-titanium boron wire from affecting the subsequent processing effect. The first fixed block of the device forms a vertical lifting structure with the connecting frame through the telescopic arm under the action of the electric push rod. Thus, the first electric push rod ensures that the two sets of first fixed blocks can squeeze and limit the tail end of the aluminum-titanium boron wire, so as to drive its tail end to move in a limited position. Attached Figure Description
[0012] Figure 1 This is a side view of the adjustable feeding device for processing aluminum-titanium-boron wire according to the present invention.
[0013] Figure 2 This is a schematic diagram of the brush connection assembly structure of an adjustable feeding device for processing aluminum-titanium-boron wire according to this utility model.
[0014] Figure 3 This is a schematic diagram of the first fixing block assembly of an adjustable feeding device for processing aluminum-titanium-boron wire according to this utility model.
[0015] Figure 4 This is a schematic diagram of the brush assembly structure of an adjustable feeding device for processing aluminum-titanium-boron wire according to this utility model.
[0016] Figure 5 This is a schematic diagram of the second fixed frame limiting sliding assembly of an adjustable feeding device for processing aluminum-titanium-boron wire according to this utility model.
[0017] In the diagram: 1. Support frame, 2. Aluminum-titanium-boron wire, 3. Processing machine body, 4. First fixed frame, 5. First servo motor, 6. First screw, 7. First slide bar, 8. First movable block, 9. Second fixed frame, 10. Ball bearing, 11. Second servo motor, 12. Second screw, 13. Second slide bar, 14. Second movable block, 15. First fixed block, 16. Concave connecting rod, 17. Second fixed block, 18. Brush, 19. Connecting frame, 20. Electric push rod, 21. Telescopic arm. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Please see Figure 1-5This utility model provides a technical solution: an adjustable feeding device for processing aluminum-titanium-boron wire, including a support frame 1, a take-up roller between the support frames 1, and aluminum-titanium-boron wire 2 wound on the take-up roller. The other end of the aluminum-titanium-boron wire 2 is inserted into the processing machine body 3. A first fixed frame 4 is provided on one side of the support frame 1, and a first servo motor 5 is provided inside the first fixed frame 4. One end of the output shaft of the first servo motor 5 is connected to a first screw 6 through a coupling. A first slide rod 7 is provided on one side of the first screw 6. A first movable block 8 is inserted through the first screw 6 and the first slide rod 7. Connecting rods are provided on the outer walls of the first movable block 8 on both sides. The other end of the connecting rods is connected to a second fixed frame 9. Multiple sets of ball bearings 10 are embedded in the lower end face of the second fixed frame 9. Fixed rods are provided on the outer walls of the processing machine body 3 on both sides. A slider is provided on the outer side of the second fixed frame 9, and the slider is inserted into the fixed rod. It should be noted that a height adjustment mechanism is provided in the first support frame 1 to ensure that the height of the take-up roller can be adjusted.
[0020] Furthermore, under the action of the first servo motor 5, the second fixed frame 9 forms a limiting sliding structure with the first fixed frame 4 through the first screw 6, the first slide rod 7, and the first movable block 8, thereby driving the tail end of the aluminum titanium boron wire 2 to move in a limited position through the limiting sliding of the second fixed frame 9.
[0021] The second fixed frame 9 has a second servo motor 11 inside, and one end of the output shaft of the second servo motor 11 is connected to the second screw 12 through a coupling. A first synchronous pulley is sleeved on the second screw 12, and a second synchronous pulley is correspondingly provided on one side of the first synchronous pulley. A synchronous belt is sleeved on the outer wall of the first and second synchronous pulleys, and the second screw 12 is inserted inside the second synchronous pulley. A second slide rod 13 is correspondingly provided on the outer side of the second screw 12, and two sets of second movable rods are respectively inserted on the second screw 12 and the second slide rod 13. Block 14, and the second movable block 14 at the lower end is provided with connecting rods. The other end of the connecting rods is connected to the first fixed block 15. The first fixed block 15 is provided with a concave connecting rod 16 on the lower end face, and the other end of the concave connecting rod 16 is provided with a second fixed block 17. The second fixed block 17 is provided with a through hole, and the inner wall of the through hole is provided with a brush 18. It should be noted that the inner wall of the synchronous belt is provided with internal teeth that mesh with the external teeth of the first synchronous pulley and the second synchronous pulley, so as to ensure that the synchronous belt can drive the two sets of second screws 12 to rotate synchronously.
[0022] Furthermore, under the action of the second servo motor 11, the brush 18 forms a limiting lifting structure with the second screw 12, the second slide rod 13, the second movable block 14 and the second fixed frame 9, thereby ensuring that the brush 18 can be adjusted in height in conjunction with the take-up roller, so as to clean the surface of the aluminum titanium boron wire 2 while adapting to the adjustment process of the aluminum titanium boron wire 2 feeding mechanism.
[0023] A connecting frame 19 is provided between the second movable block 14 at the upper end of the second screw 12, and an electric push rod 20 is provided inside the connecting frame 19. A telescopic arm 21 is provided below the electric push rod 20, and a first fixing block 15 is provided at the lower end of the telescopic arm 21. Soft rubber pads are provided on the lower end face of the first fixing block 15, and aluminum titanium boron wire 2 is inserted between the first fixing blocks 15. It should be noted that the first movable block 8 and the second movable block 14 are respectively provided with spiral holes and through holes, so as to ensure that the two sets of movable blocks can slide on the screw with limited positioning. In addition, the electrical equipment in this device is connected to the power supply equipment through a power cord, and its working status is controlled by a controller, thereby ensuring that the device can be used normally.
[0024] Furthermore, under the action of the electric push rod 20, the first fixing block 15 forms a vertical lifting structure with the connecting frame 19 through the telescopic arm 21, thereby ensuring that the first fixing block 15 can be lifted and lowered by the electric push rod 20, so that the tail end of the aluminum titanium boron wire 2 can be squeezed and limited by the two sets of first fixing blocks 15, which facilitates the subsequent limited feeding of the aluminum titanium boron wire 2.
[0025] Working Principle: In the adjustable feeding device for processing aluminum-titanium boron wire, the height of the take-up roller is first adjusted via the support frame 1 to ensure that the aluminum-titanium boron wire 2 can be fed normally into the processing machine body 3. Simultaneously, the second servo motor 11 is activated. The movement of the output shaft of the second servo motor 11 drives the second screw 12 to rotate via a coupling. The second screw 12 drives another set of second screws 12 to rotate synchronously via the first synchronous pulley, the second synchronous pulley, and the synchronous belt. This allows the first fixed block 15 to be limited and raised / lowered via the second slide bar 13 and the second movable block 14, ensuring that the first fixed block 15 and the brush 18 assembly maintain a suitable angle with the take-up roller for feeding. After the brush 18 position is adjusted, one end of the aluminum-titanium boron wire 2 is inserted into the brush 18 to clean the surface of the wire 2, thus preventing surface damage. Dust and other impurities can affect subsequent processing. Meanwhile, the aluminum-titanium boron wire 2 is fed normally by passing one end between two sets of first fixed blocks 15. When the aluminum-titanium boron wire 2 is about to complete the feeding process, the electric push rod 20 can be activated, which drives the upper first fixed block 15 to descend via the telescopic arm 21. This allows the two sets of first fixed blocks 15 to squeeze and limit the tail end of the aluminum-titanium boron wire 2, ensuring the stability of the feeding process. Next, the first servo motor 5 can be activated. The output shaft of the first servo motor 5 drives the first screw 6 to rotate via a coupling, and drives the second fixed frame 9 to slide and limit its movement via the first slide rod 7, the first movable block 8, and the ball bearing 10. This limits the feeding of the tail end of the aluminum-titanium boron wire 2, ensuring the feeding stability. This is the process of using the adjustable feeding device for aluminum-titanium boron wire processing.
[0026] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An aluminum titanium boron wire processing conditioning feeding device, comprising a support frame (1), a winding roller is arranged between the support frame (1), and an aluminum titanium boron wire (2) is wound on the winding roller, and the other end of the aluminum titanium boron wire (2) is inserted into a processing machine body (3), characterized in that: One side of the support frame (1) is provided with a first fixed frame (4), and the first fixed frame (4) is internally provided with a first servo motor (5), one end of the output shaft of the first servo motor (5) is connected with a first screw rod (6) through a shaft coupling, and the first screw rod (6) is correspondingly provided with a first sliding rod (7) on one side, a first movable block (8) is inserted on the first screw rod (6) and the first sliding rod (7), and the first movable block (8) is respectively provided with a connecting rod on the outer wall of both sides, one end of the connecting rod is respectively connected with a second fixed frame (9), and the second fixed frame (9) is embedded with a plurality of groups of balls (10) in the lower end surface, and the processing machine body (3) is respectively provided with a fixed rod on the outer wall of both sides, and the second fixed frame (9) is correspondingly provided with a sliding block on the outer side, and the sliding block is inserted into the fixed rod; The second fixed frame (9) is internally provided with a second servo motor (11), and one end of the output shaft of the second servo motor (11) is connected with a second screw rod (12) through a shaft coupling, a first synchronous pulley is sleeved on the second screw rod (12), and a second synchronous pulley is correspondingly provided on one side of the first synchronous pulley, the first synchronous pulley and the second synchronous pulley are sleeved with a synchronous belt on the outer wall, and the second synchronous pulley is internally sleeved with the second screw rod (12) which is inserted, the second screw rod (12) is correspondingly provided with a second sliding rod (13) on the outer side, and two groups of second movable blocks (14) are respectively inserted on the second screw rod (12) and the second sliding rod (13), and the second movable blocks (14) on the lower end are respectively provided with connecting rods, one end of the connecting rod is connected with a first fixed block (15), and the first fixed block (15) is provided with a concave connecting rod (16) on the lower end surface, and the other end of the concave connecting rod (16) is provided with a second fixed block (17), a through hole is formed in the second fixed block (17), and a brush (18) is arranged on the inner wall of the through hole; The second movable blocks (14) on the upper end of the second screw rod (12) are provided with a connecting frame (19), and the connecting frame (19) is internally provided with an electric push rod (20), the electric push rod (20) is provided with a telescopic arm (21) below, and the telescopic arm (21) is provided with a first fixed block (15) on the lower end, the first fixed block (15) is respectively provided with a soft rubber pad on the lower end surface, and an aluminum titanium boron wire (2) is inserted between the first fixed blocks (15).
2. The aluminum titanium boron wire processing conditioning and feeding device according to claim 1, characterized in that: The second fixed frame (9) is connected with the first fixed frame (4) through the first screw rod (6), the first sliding rod (7), the first movable block (8) and the first servo motor (5) to form a limiting sliding structure.
3. The aluminum titanium boron wire processing conditioning and feeding device according to claim 1, characterized in that: The brush (18) is connected with the second fixed frame (9) through the second screw rod (12), the second sliding rod (13), the second movable block (14) and the second servo motor (11) to form a limiting lifting structure.
4. The aluminum titanium boron wire processing conditioning and feeding device according to claim 1, characterized in that: The first fixed block (15) is connected with the connecting frame (19) through the telescopic arm (21) and the electric push rod (20) to form a vertical lifting structure.