A fuse machine for titanium alloy wire rope production

By using a loading and unloading assembly consisting of sliders and slide bars on a support frame and mounting frame, combined with a servo motor and telescopic rod, the cyclic clamping and efficient melting of titanium alloy wire ropes are achieved. This solves the problems of low efficiency and uneven heat distribution in existing titanium alloy wire rope melting machines, and improves processing accuracy and efficiency.

CN120306529BActive Publication Date: 2025-11-04JIANGSU RONGRUN STAINLESS STEEL CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510653708.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-11-04
Estimated Expiration
2045-05-21

AI Technical Summary

Technical Problem

Existing titanium alloy wire rope melting machines are inefficient, the conductive rings are difficult to adapt to titanium alloy wire ropes of different thicknesses, and the heat distribution is uneven, affecting mechanical properties and processing efficiency.

Method used

The loading and unloading assembly consists of a support frame, mounting frame, slider, and slide bar. It forms a closed-loop high-frequency electric field through a rotating block and a fuse. Combined with a servo motor and telescopic rod to adjust the length, it realizes the cyclic clamping and efficient melting of titanium alloy wire rope.

Benefits of technology

This technology achieves efficient cyclic melting of titanium alloy wire ropes, solves the problem of conductive ring compatibility, improves heat concentration and processing accuracy, and avoids unnecessary heating that could affect mechanical properties.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120306529B_ABST
    Figure CN120306529B_ABST
Patent Text Reader

Abstract

The application belongs to the technical field of metal wire rope production, in particular to a fusing machine for titanium alloy wire rope production, which comprises a support frame, a mounting frame is fixed on one side of the upper end of the support frame, a limiting groove is formed at the mounting position of the mounting frame and the support frame, a sliding block is slidably connected in the inner cavity of the limiting groove, and a feeding and discharging assembly is installed between the sliding blocks. The method for fusing titanium alloy wire rope by the existing fusing machine has low efficiency, and the size of the conductive ring is difficult to adapt to the fusing processing of titanium alloy wire ropes with different thicknesses. Moreover, the conductive ring is too large, which cannot concentrate heat on the fusing area of the titanium alloy wire rope when heating and fusing the titanium alloy wire rope with a smaller thickness, resulting in uneven heat distribution, which not only reduces the fusing efficiency, but also unnecessarily heats other parts of the wire rope, thereby affecting the mechanical properties. Conversely, when fusing the titanium alloy wire rope with a larger thickness, the titanium alloy wire rope is difficult to pass through the conductive ring, which affects the processing efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of metal wire rope production, in particular to a fuse machine for titanium alloy wire rope production. BACKGROUND

[0002] Titanium alloy wire rope has excellent properties such as high strength, low density, corrosion resistance, and high and low temperature resistance, and is widely used in fields such as aerospace, medical treatment, and chemical industry. After titanium alloy wire rope is produced and processed, a fuse machine is usually used to fuse and process the bundled titanium alloy wire rope into a fixed length, and then a packaging machine is used to package and sell the titanium alloy wire rope according to a certain quantity.

[0003] A patent with publication number CN113617978B discloses a fuse machine for steel wire rope production and processing. The device is provided with a cooling cylinder, an adaptive plastic plate, a refrigeration pipe, and a temperature transfer plate. After the steel wire rope is cut by the fuse machine, it is moved out of the fuse machine, so that the fusion point of the steel wire rope passes through each adaptive plastic plate. The adaptive plastic plate is in contact with the fusion point of the steel wire rope driven by the hydraulic cylinder. The adaptive plastic plate is a conical structure and is in contact with the fusion point of the steel wire rope, thereby protecting the fusion point of the steel wire rope. Then, the sliding block is driven by the push rod motor to slide on the inner wall of the sliding groove, driving the steel wire rope to move inside the cooling cylinder. The refrigeration pipe cools and shapes the fusion point of the steel wire rope, further protecting the fusion point. During the cooling and shaping process, the temperature transfer plate and the contact rod directly transfer the temperature of the outer wall of the refrigeration pipe to the adaptive plastic plate, improving the cooling and shaping effect of the fusion point. The device directly shapes the fusion point of the steel wire rope to ensure that the fusion point does not split, and also avoids contact deformation of the fusion point due to high temperature.

[0004] The above-mentioned scheme still has some problems in actual application. Usually, the titanium alloy wire rope is pulled out from the winding frame, and then the titanium alloy wire rope is threaded through the conductive ring. Then, the length of the titanium alloy wire rope that needs to be fused and processed is adjusted. After the adjustment is completed, the fuse machine is started to electrify the conductive ring to form a high-frequency electric field between the upper and lower electrodes to heat and fuse the titanium alloy wire rope. However, this method of producing fused titanium alloy wire rope is low in efficiency, and the size of the conductive ring is difficult to adapt to the fusion processing of titanium alloy wire ropes of different thicknesses. Moreover, the conductive ring is too large, which causes the heat to be unable to concentrate on the fusion area of the titanium alloy wire rope when heating and fusing the titanium alloy wire rope with a smaller diameter, resulting in uneven heat distribution. This not only reduces the fusion efficiency, but also causes unnecessary heating of other parts of the wire rope, thereby affecting its mechanical properties.

[0005] Therefore, the present application provides a fuse machine for titanium alloy wire rope production. SUMMARY

[0006] To make up for the deficiencies of the prior art, solve at least one technical problem raised in the background art.

[0007] The technical scheme adopted by the present application to solve its technical problems is: a fuse machine for titanium alloy wire rope production, comprising a support frame, a mounting frame is fixedly connected to one side of the upper end of the support frame, a limiting groove is formed at the mounting position of the mounting frame and the support frame, a sliding block is slidably connected in the limiting groove, and an upper and lower feeding assembly is installed between the sliding blocks;

[0008] The upper and lower feeding assembly comprises a sliding rod fixedly connected between the sliding blocks, a plurality of material taking grooves are formed in one side of the sliding rod, recesses are formed in the upper and lower walls of the material taking groove, a rotating block is rotatably connected in the recess, and the rotating block is triangularly arranged, so that after the titanium alloy wire rope passes between the two rotating blocks, the titanium alloy wire rope can be clamped by the mutual abutment of the two rotating blocks.

[0009] A fuse processing assembly is slidably connected in the inner cavity of the mounting frame.

[0010] The fuse processing assembly comprises a sliding plate slidably connected in the inner cavity of the mounting frame, and a fuse bottom plate is installed at the lower end of the support frame.

[0011] A fuse groove is formed in the mutually approaching surface of the fuse bottom plate and the sliding plate, a fuse is arranged on the inner wall of the fuse groove, and the fuses form a closed loop by mutually approaching, so as to form a high-frequency electric field between the upper and lower electrodes for fusing the titanium alloy wire rope.

[0012] Preferably, a lead screw is rotatably connected in the limiting groove, the sliding block is threadedly connected with the lead screw, a servo motor is installed in one side of the mounting frame, and the output shaft end of the servo motor is fixedly connected with the lead screw.

[0013] Preferably, telescopic rods are rotatably connected to the outer ends of the sliding rod, one end of the telescopic rod is rotatably connected with the sliding plate, and the telescopic rod can be adjusted according to the length requirement, and is clamped and fixed by using the internal clamping beads.

[0014] Preferably, two receiving grooves are formed in the inner wall of the material taking groove, a spring is arranged in the inner cavity of the receiving groove, and a T-shaped abutting block is fixedly connected to the two ends of the spring.

[0015] Preferably, a conical plug is slidably connected in the upper end of the sliding rod, the conical plug is inserted with the T-shaped abutting block, one end of the conical plug is arranged in a semicircular arc shape, a bottom plate is installed in the inner cavity of the mounting frame, and the bottom plate can push the conical plug to slide into the receiving groove, and simultaneously push the T-shaped abutting blocks to move towards each other.

[0016] Preferably, a U-shaped mounting plate is installed in the inner cavity of the mounting frame, a plurality of limiting slide columns are fixedly connected to the upper end of the U-shaped mounting plate, a plurality of sliding sleeves are slidably connected to the outer portions of the limiting slide columns, and the sliding sleeves are fixedly connected with the sliding plate.

[0017] Preferably, a filter screen is arranged in the upper end of the slide plate, and a plurality of T-shaped sliding blocks are uniformly arranged in the upper wall of the fusing groove and slide downward by their own weight.

[0018] Preferably, a collection box is mounted at the lower end of the fusing bottom plate, and the inner cavity of the collection box is in communication with the inner cavity of the fusing groove.

[0019] Preferably, a conical material guiding cover is mounted at the lower end of the support frame, and a recovery opening is formed at the lower end of the conical material guiding cover for collecting the titanium alloy wire rope after fusing, and a titanium alloy wire rope mounting roller is mounted at one side of the upper end of the support frame for mounting the titanium alloy wire rope to be fused.

[0020] Preferably, a feeding plate is mounted in the inner cavity of the support frame, a plurality of material guiding grooves are formed at one side of the feeding plate, rotating grooves are formed in the upper and lower walls of the inner cavity of the material guiding grooves, guiding blocks are rotatably connected in the inner cavities of the rotating grooves, the guiding blocks are fixedly connected to each other in series, fixed discs are fixedly connected to the inner and outer portions of the guiding blocks, torsional springs are fixedly connected to one side of the fixed discs, and the torsional springs are fixedly connected to the inner wall of the feeding plate.

[0021] The beneficial effects of the present application are as follows:

[0022] 1. The fusing machine for titanium alloy wire rope production according to the present application, by moving the slide rod to the feeding plate, the titanium alloy wire rope inside the feeding plate is inserted into the inner cavity of the material taking groove, and the two rotating blocks are actuated to flip, at the same time, one end of the titanium alloy wire rope abuts against the T-shaped abutting block, so that the one ends of the plurality of titanium alloy wire ropes abut against the T-shaped abutting block and remain on the same horizontal line, then the slide rod is driven to move away from the feeding plate, so that the slide rod moves the titanium alloy wire rope by using the rotating blocks, and after the slide rod moves to the bottom plate, the conical insertion block is inserted into the receiving groove, and the conical insertion block is inserted into the two sides of the T-shaped abutting block, so that the T-shaped abutting block extrudes the spring and slides into the inner cavity of the receiving groove, and after the titanium alloy wire rope is fused, the slide rod moves to the feeding plate, so that the titanium alloy wire rope to be processed moves the titanium alloy wire rope inside the slide rod to between the T-shaped abutting blocks, and then slides out of the slide rod to be discharged, thereby forming the circulation clamping and discharging of the titanium alloy wire rope 1.

[0023] 2. The invention discloses a fuse machine for titanium alloy wire rope production, by using torsional spring to twist the fixed disc to rotate, and make the fixed disc drive the guide block to rotate, and then make the guide block clamp the titanium alloy wire rope, make the slide rod pull the titanium alloy wire rope, and use the guide block to clamp and straighten the titanium alloy wire rope, avoid the titanium alloy wire rope after pulling out of the feeding plate, the titanium alloy wire rope is discharged, which will cause the titanium alloy wire rope not to be in the straight state, affect the precision of titanium alloy wire rope heating and fusing, and the slide rod pulls the titanium alloy wire rope to move, and the titanium alloy wire rope drives the titanium alloy wire rope installation roller to rotate, and after the slide rod stops pulling, the titanium alloy wire rope installation roller rotates continuously under the influence of gravity, which will push the titanium alloy wire rope to move to the inside of the feeding plate, at this time, the torsional spring twists the guide block to clamp and fix the titanium alloy wire rope, avoid the titanium alloy wire rope to discharge too much and push the titanium alloy wire rope to be fused, affect the heating and fusing length. BRIEF DESCRIPTION OF DRAWINGS

[0024] The invention will be further described below in conjunction with the drawings.

[0025] Figure 1 is the overall structure of the invention from the front view;

[0026] Figure 2 is the overall structure of the invention from the bottom view;

[0027] Figure 3 is the partial structure of the installation frame of the invention;

[0028] Figure 4 is the disassembly and display schematic diagram of the fuse processing assembly of the invention;

[0029] Figure 5 is the half-partial structure of the slide rod of the invention;

[0030] Figure 6 is the half-partial structure of the support frame of the invention;

[0031] Figure 7 is the assembly structure schematic diagram of the fuse processing assembly of the invention;

[0032] Figure 8 is the partial structure of the slide rod of the invention;

[0033] Figure 9 is the partial structure of the feeding plate of the invention;

[0034] In the diagram: 1. Support frame; 2. Mounting frame; 3. Limiting groove; 4. Lead screw; 5. Slider; 6. Loading / unloading assembly; 61. Sliding rod; 62. Material picking groove; 63. Groove; 64. Rotating block; 65. Storage groove; 66. Spring; 67. T-shaped stop block; 68. Conical insert block; 7. Fusible link assembly; 71. Slide plate; 72. Fusible link groove; 73. Fusible link; 74. Filter screen; 75. T-shaped slider; 8. Feeding plate; 9. Titanium alloy wire rope mounting roller; 10. Titanium alloy wire rope; 11. U-shaped mounting plate; 12. Limiting slide column; 13. Fusible link base plate; 14. Collection box; 15. Conical guide cover; 16. Recycling port; 17. Telescopic rod; 18. Base plate; 19. Sliding sleeve; 20. Guide groove; 21. Rotating groove; 22. Guide block; 23. Fixed plate; 24. Torsion spring. Detailed Implementation

[0035] 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.

[0036] Example 1: As Figures 1 to 9 As shown in the embodiment of the present invention, a melting machine for producing titanium alloy wire rope includes a support frame 1, an mounting frame 2 is fixedly connected to one side of the upper end of the support frame 1, a limit groove 3 is opened at the mounting position of the mounting frame 2 and the support frame 1, a slider 5 is slidably connected to the inner cavity of the limit groove 3, and a loading and unloading assembly 6 is installed between the sliders 5.

[0037] The loading and unloading assembly 6 includes a slide rod 61 fixed between the sliders 5. A plurality of material picking slots 62 are provided on one side of the slide rod 61. Grooves 63 are provided on the upper and lower walls of the inner cavity of the material picking slots 62. Rotating blocks 64 are rotatably connected to the inner cavity of the grooves 63. The rotating blocks 64 are arranged in a triangular shape. After the titanium alloy wire rope 10 is passed through the rotating blocks 64, the titanium alloy wire rope 10 can be clamped by the two rotating blocks 64 abutting against each other.

[0038] The mounting bracket 2 has a sliding connection with a fusible component 7 in its inner cavity;

[0039] Furthermore, the fuse-breaking assembly 7 includes a slide plate 71 that is slidably connected in the inner cavity of the mounting frame 2, and a fuse-breaking base plate 13 is installed at the lower end of the support frame 1;

[0040] Both the base plate 13 and the slide plate 71 have fusing grooves 72 on their close surfaces. The inner wall of the fusing groove 72 is provided with fuses 73, and the fuses 73 are close to each other to form a closed loop, which is used to form a high-frequency electric field between the upper and lower electrodes to fuse the titanium alloy wire rope 10.

[0041] Specifically, in the prior art, the titanium alloy wire rope is usually pulled out from the winding frame, and then passes through the conductive ring. Then, the length of the titanium alloy wire rope is adjusted, and the titanium alloy wire rope is heated and fused. However, this method has low efficiency, and the size of the conductive ring is difficult to adapt to the fusion processing of titanium alloy wire ropes of different thicknesses. Moreover, when the titanium alloy wire rope is relatively thin, the heat cannot be concentrated on the fusion area of the titanium alloy wire rope, resulting in uneven heat distribution, which not only reduces the fusion efficiency, but also causes unnecessary heating of other parts of the wire rope, thereby affecting the mechanical properties of the wire rope. Conversely, when the titanium alloy wire rope is relatively thick, the titanium alloy wire rope is difficult to pass through the conductive ring, affecting the processing efficiency.

[0042] The titanium alloy wire rope 10 is pulled out from the titanium alloy wire rope roll, and one end of the titanium alloy wire rope 10 is installed in the inner cavity of the material taking groove 62. The titanium alloy wire rope 10 is flipped by pushing the rotating block 64, and then the sliding rod 61 is driven to move and pull the titanium alloy wire rope 10. During the movement of the sliding rod 61, the two rotating blocks 64 and the grooves 63 are used to flip and clamp and fix the titanium alloy wire rope 10. Then, the sliding rod 61 pulls the titanium alloy wire rope 10 to move and adjust the length, and the sliding plate 71 moves downward and is connected with the fuse bottom plate 13. Thus, the titanium alloy wire rope 10 is covered, and the fuse 73 in the sliding plate 71 and the fuse bottom plate 13 forms a closed loop. Then, the fuse 73 is started to form a high-frequency electric field between the upper and lower electrodes to heat and fuse the titanium alloy wire rope 10. After the titanium alloy wire rope 10 is fused, the sliding rod 61 moves towards the titanium alloy wire rope 10, and the subsequent titanium alloy wire rope 10 pushes the fused titanium alloy wire rope 10 to be recycled. Thus, the titanium alloy wire rope 10 is recycled and fused, and the above problems are solved.

[0043] As shown in Figure 1 , Figure 6 and Figure 7 , the limiting groove 3 has a rotatingly connected screw rod 4, the sliding block 5 is threadedly connected with the screw rod 4, the mounting frame 2 has a servo motor installed on one side, and the output shaft of the servo motor is fixedly connected with the screw rod 4.

[0044] Specifically, when the titanium alloy wire rope 10 is fused, the servo motor is started to drive the screw rod 4 to rotate, and the screw rod 4 threadedly drives the sliding block 5 to slide in the limiting groove 3. At the same time, the sliding block 5 drives the feeding and discharging assembly 6 to cyclically clamp the titanium alloy wire rope 10, so as to realize the cyclic fusion processing of the titanium alloy wire rope 10.

[0045] As shown in Figure 1 ,Figure 3 and Figure 7 As shown in

[0046] Specifically, when the length of the titanium alloy wire rope 10 needs to be adjusted, the length of the telescopic rod 17 is adjusted, and then the slide rod 61 pulls the titanium alloy wire rope 10 to adjust the length to be melted, and the slide rod 61 drives the telescopic rod 17 to move, and the telescopic rod 17 drives the sliding plate 71 to drive the sliding sleeve 19 to move, and the sliding sleeve 19 slides outside the limiting slide column 12, and then the slide plate 71 is attached to the melting bottom plate 13 to cover the titanium alloy wire rope 10, and then the fuse 73 is started to melt the titanium alloy wire rope 10 in the melting groove 72, thereby solving the problem that the melting machine for titanium alloy wire rope production is difficult to form a circulating melting production of titanium alloy wire rope due to the need for length adjustment and calibration of titanium alloy wire rope during the melting production process of titanium alloy wire rope each time, resulting in low melting production efficiency.

[0047] As shown in Figure 5 , Figure 6 and Figure 8 The inner wall of the material taking groove 62 is provided with two receiving grooves 65, the inner cavity of the receiving groove 65 is provided with a spring 66, and the two ends of the spring 66 are fixedly connected with T-shaped blocks 67.

[0048] As shown in Figure 5 , Figure 6 and Figure 8 The upper end of the slide rod 61 is slidably connected with a conical plug 68, and the conical plug 68 is inserted with the T-shaped block 67. One end of the conical plug 68 is provided in a semicircular arc shape, a bottom plate 18 is installed in the inner cavity of the mounting frame 2, and the bottom plate 18 can push the conical plug 68 to slide into the receiving groove 65, and at the same time push the T-shaped blocks 67 to move close to each other.

[0049] As shown in Figure 3 , Figure 6 and Figure 7 The inner cavity of the mounting frame 2 is provided with a U-shaped mounting plate 11, the upper end of the U-shaped mounting plate 11 is fixedly connected with a plurality of limiting slide columns 12, the outer surface of the plurality of limiting slide columns 12 is slidably connected with a sliding sleeve 19, and the sliding sleeve 19 is fixedly connected with the sliding plate 71.

[0050] Specifically, when the titanium alloy wire rope 10 is clamped, the slide rod 61 is moved to the feeding plate 8, and then the titanium alloy wire rope 10 inside the feeding plate 8 is inserted into the inner cavity of the material taking groove 62, and the two rotating blocks 64 are actuated to overturn, and one end of the titanium alloy wire rope 10 abuts against the T-shaped abutting block 67, so that the one end of the plurality of titanium alloy wire ropes 10 abuts against the T-shaped abutting block 67 and is kept on the same horizontal line, and then the slide rod 61 is driven to move away from the feeding plate 8, so that the slide rod 61 pulls the titanium alloy wire rope 10 to move by the rotating block 64, and when the slide rod 61 moves to the bottom plate 18, the slide rod 61 drives the conical plug 68 to be inserted into the storage groove 65, and the conical plug 68 is inserted into the two sides of the T-shaped abutting block 67, so that the T-shaped abutting block 67 extrudes the spring 66 to slide into the inner cavity of the storage groove 65, and when the titanium alloy wire rope 10 is fused and broken, the slide rod 61 moves to the feeding plate 8, so that the titanium alloy wire rope 10 to be processed pushes the titanium alloy wire rope 10 inside the slide rod 61 to move between the T-shaped abutting blocks 67, and then slides out from the inside of the slide rod 61 to be discharged, thereby forming a cycle of clamping and discharging the titanium alloy wire rope 10, solving the problem that the existing titanium alloy wire rope production fusing and breaking machine cannot conveniently adjust the length of the titanium alloy wire rope for fusing and breaking processing, resulting in the need to waste a lot of time to adjust the length of the titanium alloy wire rope every time the titanium alloy wire rope is fused and broken, and then the titanium alloy wire rope is heated and fused, which is troublesome and affects the production efficiency of the titanium alloy wire rope.

[0051] As shown in Figure 1 , Figure 4 and Figure 6 , the slide plate 71 is provided with a filter screen 74 at the upper end, and a plurality of T-shaped sliding blocks 75 are uniformly arranged on the upper wall of the fusing groove 72 and slide downward by their own weight.

[0052] As shown in Figure 2 , Figure 3 and Figure 6 , the collecting box 14 is installed at the lower end of the fusing bottom plate 13, and the inner cavity of the collecting box 14 is communicated with the inner cavity of the fusing groove 72.

[0053] As shown in Figure 3 , Figure 3 and Figure 6 , the conical material guide cover 15 is installed at the lower end of the support frame 1, and the recovery port 16 is formed at the lower end of the conical material guide cover 15 for collecting the titanium alloy wire rope 10 after fusing and breaking, and the titanium alloy wire rope installation roller 9 is installed at one side of the upper end of the support frame 1 for installing the titanium alloy wire rope 10 to be fused and broken.

[0054] Specifically, when the titanium alloy wire rope 10 is produced by fusing, the titanium alloy wire rope 10 is pulled out from the feeding plate 8 by the slide rod 61 to adjust the length, then the slide rod 61 drives the telescopic rod 17 to pull the sliding plate 71 to move downward, at the same time, the sliding plate 71 slides in the outer part of the limiting slide column 12 to move downward by the sliding sleeve 19, so that the sliding plate 71 is connected with the fusing bottom plate 13, and the T-shaped sliding block 75 abuts against the outer part of the titanium alloy wire rope 10, slides into the inner part of the sliding plate 71, and shields the fusing groove 72, then when the titanium alloy wire rope 10 in the inner cavity of the fusing groove 72 is heated and fused, the smoke generated by the heating and fusing of the titanium alloy wire rope 10 is filtered by the filter screen 74 at the upper end of the sliding plate 71 and then discharged, and the sparks generated by the heating and fusing of the titanium alloy wire rope 10 fall into the collecting box 14 for collection and treatment, thereby solving the problem that if the sparks and smoke generated by the heating and fusing of the titanium alloy wire rope are not purified when the existing fusing machine for titanium alloy wire rope production heats and fuses the titanium alloy wire rope, the metal dust is contained in the smoke, and workers are prone to lung fibrosis after long-term adsorption, which causes safety hazards.

[0055] As shown in Figure 1 , Figure 2 and Figure 9 , the feeding plate 8 is installed in the inner cavity of the support frame 1, a plurality of material guiding grooves 20 are formed on one side of the feeding plate 8, rotating grooves 21 are formed on the upper and lower walls of the inner cavity of the material guiding groove 20, guide blocks 22 are rotatably connected in the inner cavity of the rotating groove 21, the guide blocks 22 are connected with each other, fixed discs 23 are fixedly connected to the inner and outer parts of the feeding plate 8, torsional springs 24 are fixedly connected to one side of the fixed disc 23, and the torsional springs 24 are fixedly connected to the inner wall of the feeding plate 8.

[0056] Specifically, when the titanium alloy wire rope 10 is pulled out from the inside of the feeding plate 8 by the slide rod 61, the fixed disc 23 is twisted to rotate by the torsional spring 24, and the fixed disc 23 drives the guide block 22 to rotate, and then the guide block 22 clamps the titanium alloy wire rope 10, so that the titanium alloy wire rope 10 is clamped and straightened by the guide block 22 during the pulling of the titanium alloy wire rope 10 by the slide rod 61, thereby avoiding the titanium alloy wire rope 10 from being discharged after being pulled out of the feeding plate 8, which will cause the titanium alloy wire rope 10 not to be in a straight state, affecting the precision of the heating and melting of the titanium alloy wire rope 10. When the titanium alloy wire rope 10 is pulled by the slide rod 61 to move, the titanium alloy wire rope 10 drives the titanium alloy wire rope installation roller 9 to rotate, and after the slide rod 61 stops pulling, the titanium alloy wire rope installation roller 9 continues to rotate under the influence of gravity, which pushes the titanium alloy wire rope 10 to move towards the inside of the feeding plate 8. At this time, the guide block 22 is twisted by the torsional spring 24 to clamp and fix the titanium alloy wire rope 10, thereby avoiding the titanium alloy wire rope 10 from being discharged to push the titanium alloy wire rope 10 to be melted, affecting the length of the heating and melting, thereby solving the problem that the existing melting machine for titanium alloy wire rope production cannot clamp and straighten the titanium alloy wire rope when adjusting the length of the titanium alloy wire rope, which will cause the titanium alloy wire rope to be too long or too short after being melted.

[0057] The working principle is that the titanium alloy wire rope 10 is pulled out from the titanium alloy wire rope roll, and one end of the titanium alloy wire rope 10 is installed in the inner cavity of the material taking groove 62, and the titanium alloy wire rope 10 pushes the rotating block 64 to overturn, then the slide rod 61 is driven to move to pull the titanium alloy wire rope 10, and in the moving process of the slide rod 61, the two rotating blocks 64 and the grooves 63 are used to overturn to clamp and fix the titanium alloy wire rope 10, and then the slide rod 61 pulls the titanium alloy wire rope 10 to move to adjust the length, and at the same time, the slide plate 71 is driven to move downward, and the slide plate 71 is connected with the melting bottom plate 13, so as to cover the titanium alloy wire rope 10, and the fuse 73 in the slide plate 71 and the melting bottom plate 13 forms a closed loop, and at the same time, the fuse 73 is started to form a high-frequency electric field between the upper and lower electrodes to heat and melt the titanium alloy wire rope 10. After the titanium alloy wire rope 10 is melted, the slide rod 61 moves to the titanium alloy wire rope 10, and then the subsequent titanium alloy wire rope 10 pushes the melted titanium alloy wire rope 10 to be recycled, thereby realizing the cyclic melting production of the titanium alloy wire rope 10;

[0058] When the titanium alloy wire rope 10 is pulled out from the feeding plate 8 by the slide rod 61 for length adjustment, the slide rod 61 drives the telescopic rod 17 to pull the sliding plate 71 to move downwards, and the sliding plate 71 moves downwards outside the limiting slide column 12 by sliding in the slide sleeve 19, so that the sliding plate 71 is connected with the fuse bottom plate 13, and the T-shaped sliding block 75 abuts against the titanium alloy wire rope 10 outside and slides into the sliding plate 71 to shield the fuse groove 72. When the titanium alloy wire rope 10 in the fuse groove 72 is heated and fused, the smoke generated by the heating and fusing of the titanium alloy wire rope 10 is filtered by the filter screen 74 at the upper end of the sliding plate 71 and then discharged, and the sparks generated by the heating and fusing of the titanium alloy wire rope 10 fall into the collection box 14 for collection and treatment.

[0059] When the titanium alloy wire rope 10 is pulled out from the feeding plate 8 by the slide rod 61, the fixed disc 23 is twisted and rotated by the torsional spring 24, and the fixed disc 23 drives the guide block 22 to rotate, so that the guide block 22 clamps and straightens the titanium alloy wire rope 10 during the pulling of the titanium alloy wire rope 10 by the slide rod 61, thereby preventing the titanium alloy wire rope 10 from being discharged after being pulled out of the feeding plate 8, which affects the precision of the heating and fusing of the titanium alloy wire rope 10. When the titanium alloy wire rope 10 is pulled by the slide rod 61, the titanium alloy wire rope 10 drives the titanium alloy wire rope installation roller 9 to rotate, and after the pulling of the slide rod 61 is stopped, the titanium alloy wire rope installation roller 9 continues to rotate under the influence of gravity and drives the titanium alloy wire rope 10 to move towards the inside of the feeding plate 8. At this time, the guide block 22 clamps and fixes the titanium alloy wire rope 10 by the torsional spring 24, thereby preventing the titanium alloy wire rope 10 from being excessively discharged to drive the titanium alloy wire rope 10 to be fused, which affects the length of the heating and fusing.

[0060] The basic principles, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only to illustrate the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A fusing machine for the production of titanium alloy wire ropes, characterized in that: Includes a support frame (1), a mounting frame (2) is fixedly connected to one side of the upper end of the support frame (1), a limiting groove (3) is opened at the mounting position of the mounting frame (2) and the support frame (1), a slider (5) is slidably connected to the inner cavity of the limiting groove (3), and a loading and unloading assembly (6) is installed between the sliders (5). The loading and unloading assembly (6) includes a slide rod (61) fixed between the sliders (5). A plurality of material picking slots (62) are provided on one side of the slide rod (61). Grooves (63) are provided on the upper and lower walls of the inner cavity of the material picking slots (62). Rotating blocks (64) are rotatably connected to the inner cavity of the grooves (63). The rotating blocks (64) are arranged in a triangular shape. After the titanium alloy wire rope (10) is passed between the rotating blocks (64), the titanium alloy wire rope (10) can be clamped by the two rotating blocks (64) abutting against each other. Two storage slots (65) are provided on the inner wall of the material feeding slot (62). A spring (66) is provided in the inner cavity of the storage slot (65), and T-shaped blocks (67) are fixed to both ends of the spring (66). A conical insert (68) is slidably connected to the upper end of the slide rod (61), and the conical insert (68) is inserted into the T-shaped abutment (67). One end of the conical insert (68) is set in a semi-circular arc shape. A base plate (18) is installed in the inner cavity of the mounting bracket (2), and the base plate (18) can push the conical insert (68) into the storage groove (65) and at the same time push the T-shaped abutment (67) to move closer to each other. The mounting bracket (2) has a slidably connected fuse treatment component (7) in its inner cavity; Furthermore, the fuse-breaking assembly (7) includes a slide plate (71) that is slidably connected in the inner cavity of the mounting frame (2), and a fuse-breaking base plate (13) is installed at the lower end of the support frame (1). The fuse base plate (13) and the slide plate (71) are provided with fuse grooves (72) on their close surfaces. The inner wall of the fuse groove (72) is provided with fuses (73), and the fuses (73) are close to each other to form a closed loop, which is used to form a high-frequency electric field between the upper and lower electrodes to fuse the titanium alloy wire rope (10).

2. The fusing machine for producing titanium alloy wire rope according to claim 1, characterized in that: The inner cavity of the limiting groove (3) is rotatably connected to the lead screw (4), the slider (5) is threadedly connected to the lead screw (4), and a servo motor is installed in one side of the mounting bracket (2), and the output shaft end of the servo motor is fixedly connected to the lead screw (4).

3. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: The slide bar (61) is externally rotatably connected to telescopic rods (17) at both ends. One end of the telescopic rod (17) is rotatably connected to the slide plate (71). The telescopic rod (17) can be adjusted according to the length requirements and is locked in place by internal locking beads.

4. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: The mounting bracket (2) has a U-shaped mounting plate (11) installed in its inner cavity. Multiple limiting slides (12) are fixedly connected to the upper end of the U-shaped mounting plate (11), and multiple limiting slides (12) are slidably connected to the outside of a sliding sleeve (19), and the sliding sleeve (19) is fixedly connected to the sliding plate (71).

5. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: A filter screen plate (74) is provided inside the upper end of the slide plate (71), and a number of T-shaped sliders (75) are uniformly slidably arranged inside the upper wall of the fusion groove (72), and the T-shaped sliders (75) slide downward by their own weight.

6. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: A collection box (14) is installed inside the lower end of the fuse base plate (13), and the inner cavity of the collection box (14) is connected to the inner cavity of the fuse groove (72).

7. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: The support frame (1) is equipped with a conical guide cover (15) at the lower end, and a recycling port (16) is opened at the lower end of the conical guide cover (15) for collecting the melted titanium alloy wire rope (10). A titanium alloy wire rope mounting roller (9) is installed on one side of the upper end of the support frame (1) for installing the titanium alloy wire rope (10) to be melted.

8. A fusing machine for producing titanium alloy wire ropes according to claim 1, characterized in that: The inner cavity of the support frame (1) is equipped with a feeding plate (8), and a number of guide grooves (20) are opened on one side of the feeding plate (8). The upper and lower walls of the inner cavity of the guide groove (20) are provided with rotating grooves (21), and the inner cavity of the rotating groove (21) is rotatably connected with a guide block (22). The guide blocks (22) are connected in series and fixedly connected. The guide block (22) is located inside the feeding plate (8) and fixedly connected to a fixed plate (23). A torsion spring (24) is fixedly connected to one side of the fixed plate (23), and the torsion spring (24) is fixedly connected to the inner wall of the feeding plate (8).

Citation Information

Patent Citations

  • A melting machine for steel wire rope production and processing

    CN113617978B

  • Steel bar cutting machine

    CN212070272U

  • Continuous steel wire rope fusing device

    CN216138034U