Fusing machine for titanium alloy wire rope production
The titanium alloy wire rope cutting machine addresses inefficiencies in existing methods by using a support frame and sliding blocks to securely hold the wire rope, ensuring precise and efficient cutting with consistent heat application and improved mechanical properties.
Patent Information
- Application Number
- CN202510653708.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2045-05-21
AI Technical Summary
The existing titanium alloy wire rope fuse machines are inefficient, and the conductive ring is difficult to adapt to titanium alloy wire ropes of different thicknesses, resulting in uneven heat distribution and affecting mechanical performance and processing efficiency.
The titanium alloy wire rope is clamped with a slide rod and a rotating block. The screw rod is driven by a servo motor to realize the thread connection of the slider, and the telescopic rod and the beads are fixed, forming a closed-loop high-frequency electric field for fuse. The titanium alloy wire rope is clamped and straightened with a guide block and a torsion spring to achieve circular clamping and fuse.
The efficiency and accuracy of titanium alloy wire rope fusing is improved, the conductive ring adaptation problem is solved, the heat concentration is ensured, unnecessary heating is avoided to affect mechanical performance, and the efficient cyclic production of titanium alloy wire rope is achieved.
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Figure CN120306529A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of wire rope production, and specifically relates to a fusing machine for the production of titanium alloy wire ropes. Background Art
[0002] Titanium alloy wire ropes have excellent properties such as high strength, low density, corrosion resistance, and resistance to high and low temperatures. They are widely used in fields such as aerospace, medical, and chemical industries. After the titanium alloy wire ropes are produced and processed, a fusing machine is usually used to fuse the bundled titanium alloy wire ropes into a quantitative length, and then they are packed and sold in a certain quantity by a packing machine.
[0003] A patent with the publication number CN113617978B discloses a fusing machine for the production and processing of wire ropes. The device is provided with a cooling cylinder, a matching shaping plate, a refrigeration pipe, and a temperature transfer plate. After the wire rope is cut by the fusing machine and moved out of the fusing machine, the fusing point of the wire rope passes through each matching shaping plate. The adjusting hydraulic cylinder drives the matching shaping plate to contact the fusing point of the wire rope. The matching shaping plate is a conical structure and fits with the fusing point of the wire rope, so as to perform shaping protection on the fusing point of the wire rope. Then, the push rod motor drives the sliding block to slide on the inner wall of the sliding groove, driving the wire rope to move inside the cooling cylinder. The refrigeration pipe cools and shapes the fusing point of the wire rope to further protect the fusing point. During the cooling and shaping process, the temperature transfer plate and the contact rod directly transfer the temperature on the outer wall of the refrigeration pipe to the matching shaping plate, improving the cooling and shaping effect of the fusing point. By directly shaping the fusing point of the wire rope with this device, it is ensured that no bifurcation occurs at the fusing point. At the same time, it also avoids the contact deformation of the fusing point due to excessive temperature.
[0004] The above solution still has some problems in actual application. Usually, the titanium alloy wire rope is pulled out from the winding rack, and at the same time, the titanium alloy wire rope passes through the slip ring. Then, the length of the titanium alloy wire rope to be fused and processed is adjusted. After the adjustment is completed, the fusing machine is started to energize the slip 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 and fusing titanium alloy wire ropes has low efficiency, and it is difficult for the size of the slip ring to adapt to the fusing processing of titanium alloy wire ropes of different thicknesses. Moreover, when the slip ring is too large, when heating and fusing a thinner titanium alloy wire rope, the heat cannot be concentrated on the fusing area of the titanium alloy wire rope, resulting in uneven heat distribution. This will not only reduce the fusing efficiency but also cause unnecessary heating of other parts of the wire rope, thus affecting its mechanical properties.
[0005] Therefore, the present invention provides a fusing machine for the production of titanium alloy wire ropes. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art and solve at least one technical problem proposed in the background art.
[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: A fusing machine for the production of titanium alloy wire ropes according to the present invention includes a support frame. One side of the upper end of the support frame is fixedly connected with a mounting frame. A limiting groove is opened at the installation position of the mounting frame and the support frame. A slider is slidably connected in the inner cavity of the limiting groove. A loading and unloading component is installed between the sliders; And the loading and unloading component includes a slide rod fixedly connected between the sliders. A plurality of material taking grooves are opened on one side of the slide rod. Grooves are opened on the upper and lower walls of the inner cavity of the material taking groove. A rotating block is rotatably connected in the inner cavity of the groove, and the rotating block is triangular in shape. After the titanium alloy wire rope is passed through between the rotating blocks, the titanium alloy wire rope can be clamped by the two rotating blocks abutting against each other; A fusing processing component is slidably connected in the inner cavity of the mounting frame; And the fusing processing component includes a slide plate slidably connected in the inner cavity of the mounting frame. A fusing bottom plate is installed at the lower end of the support frame; Fusing grooves are opened on the mutually approaching surfaces of the fusing bottom plate and the slide plate. A fuse is arranged on the inner wall of the fusing groove, and the fuses approach 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.
[0008] Preferably, a lead screw is rotatably connected in the inner cavity of the limiting groove. The slider is threadedly connected with the lead screw. A servo motor is installed inside one side of the mounting frame, and the output shaft end of the servo motor is fixedly connected with the lead screw.
[0009] Preferably, telescopic rods are rotatably connected to the outer parts of both ends of the slide rod. One end of the telescopic rod is rotatably connected with the slide plate. The telescopic rod can be adjusted according to the length requirement and is fixed by internal beads.
[0010] Preferably, two storage grooves are opened on the inner wall of the material taking groove. A spring is arranged in the inner cavity of the storage groove, and T-shaped abutting blocks are fixedly connected to both ends of the spring.
[0011] Preferably, a conical plug is slidably connected in the upper end of the slide rod, and the conical plug is inserted into the T-shaped abutting block. One end of the conical plug is semicircular in shape. A bottom plate is installed in the inner cavity of the mounting frame, and the bottom plate can push the conical plug into the storage groove and simultaneously push the T-shaped abutting blocks to move closer to each other.
[0012] Preferably, a U-shaped mounting plate is installed in the inner cavity of the mounting frame. A plurality of limiting sliding columns are fixedly connected to the upper end of the U-shaped mounting plate. A sliding sleeve is slidably connected to the outer parts of the plurality of limiting sliding columns, and the sliding sleeve is fixedly connected with the slide plate.
[0013] Preferably, a filter screen plate is arranged inside the upper end of the sliding plate. A number of T-shaped sliders are evenly and slidably arranged inside the upper wall of the fusing groove, and the T-shaped sliders slide downward by their own weight.
[0014] Preferably, a collection box is installed inside the lower end of the fusing bottom plate, and the inner cavity of the collection box is communicated with the inner cavity of the fusing groove.
[0015] Preferably, a conical material guiding cover is installed at the lower end of the support frame, and a recovery port is opened at the lower end of the conical material guiding cover for collecting the fused titanium alloy wire rope. A titanium alloy wire rope installation roller is installed on one side of the upper end of the support frame for installing the titanium alloy wire rope to be fused.
[0016] Preferably, a feeding plate is installed inside the support frame, and a number of material guiding grooves are opened on one side of the feeding plate. Rotating grooves are opened on both the upper and lower walls of the inner cavity of the material guiding groove, and a guiding block is rotatably connected inside the rotating groove. The guiding blocks are connected in series and fixed. A fixed disk is fixedly connected to the inside or outside of the feeding plate where the guiding block is located. A torsion spring is fixedly connected to one side of the fixed disk, and the torsion spring is fixedly connected to the inner wall of the feeding plate.
[0017] The beneficial effects of the present invention are as follows: 1. For the fusing machine for titanium alloy wire rope production of the present invention, the sliding rod moves to the feeding plate, so that the titanium alloy wire rope inside the feeding plate is inserted into the inner cavity of the material taking groove, and two rotating blocks are pushed to turn over. At the same time, one end of the titanium alloy wire rope abuts against the T-shaped abutting block, so that one ends of multiple titanium alloy wire ropes abut against the T-shaped abutting block and are kept at the same horizontal line. Then, the sliding rod is driven to move away from the feeding plate, so that the sliding rod pulls the titanium alloy wire rope to move by using the rotating block. After the sliding rod moves to the bottom plate, the sliding rod drives the conical plug to insert into the receiving groove, and the conical plug is inserted into both sides of the T-shaped abutting block, so that the T-shaped abutting block squeezes the spring and slides into the inner cavity of the receiving groove. After the titanium alloy wire rope is fused, the sliding rod moves towards the feeding plate, so that the titanium alloy wire rope to be processed pushes the titanium alloy wire rope inside the sliding rod to move between the T-shaped abutting blocks, and then slides out from inside the sliding rod for discharging, thus forming a cyclic clamping and discharging of the titanium alloy wire rope 1.
[0018] 2. A fuse machine for the production of titanium alloy wire ropes according to the present invention uses a torsion spring to twist a fixed disk to rotate, and the fixed disk drives a guiding block to rotate, and then the guiding block clamps the titanium alloy wire rope. When the sliding rod pulls the titanium alloy wire rope, the guiding block clamps and straightens the titanium alloy wire rope, avoiding the situation that after the titanium alloy wire rope is pulled out of the feeding plate, the excessive discharge of the titanium alloy wire rope will cause the titanium alloy wire rope not to be in a straight state, affecting the precision of heating and fusing the titanium alloy wire rope. When the sliding rod pulls the titanium alloy wire rope to move, the titanium alloy wire rope will drive the titanium alloy wire rope mounting roller to rotate. After the sliding rod stops pulling, the titanium alloy wire rope mounting roller continues to rotate under the influence of gravity, which will push the titanium alloy wire rope into the feeding plate. At this time, the torsion spring is used to twist the guiding block to clamp and fix the titanium alloy wire rope, avoiding the situation that the excessive discharge of the titanium alloy wire rope pushes the titanium alloy wire rope to be fused, affecting the situation that the heating and fusing length is too long. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention will be further described below with reference to the accompanying drawings.
[0020] Figure 1 is a schematic structural diagram of the overall front view of the present invention; Figure 2 is a schematic structural diagram of the overall bottom view of the present invention; Figure 3 is a schematic structural diagram of a partial section of the mounting frame of the present invention; Figure 4 is a schematic diagram showing the disassembly of the fuse treatment assembly of the present invention; Figure 5 is a schematic diagram of a half-section of the sliding rod of the present invention; Figure 6 is a schematic diagram of a half-section of the support frame of the present invention; Figure 7 is a schematic diagram of the assembled structure of the fuse treatment assembly of the present invention; Figure 8 is a schematic diagram of a partial section of the sliding rod of the present invention; Figure 9 is a schematic diagram of a partial section of the feeding plate of the present invention; In the figure: 1, support frame; 2, mounting frame; 3, limiting groove; 4, lead screw; 5, slider; 6, loading and unloading assembly; 61, slide bar; 62, material taking groove; 63, groove; 64, rotating block; 65, storage groove; 66, spring; 67, T-shaped abutting block; 68, conical inserting block; 7, fusing treatment assembly; 71, slide plate; 72, fusing groove; 73, fuse; 74, filter screen plate; 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 post; 13, fusing bottom plate; 14, collection box; 15, conical material guiding cover; 16, recycling port; 17, telescopic rod; 18, bottom plate; 19, sliding sleeve; 20, material guiding groove; 21, rotating groove; 22, guiding block; 23, fixed disk; 24, torsion spring. Detailed implementation manners
[0021] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.
[0022] Embodiment 1: As Figures 1 to 9 shown, a fusing machine for the production of titanium alloy wire ropes according to an embodiment of the present invention includes a support frame 1, one side of the upper end of the support frame 1 is fixedly connected with a mounting frame 2, a limiting groove 3 is opened at the installation place of the mounting frame 2 and the support frame 1, a slider 5 is slidably connected in the inner cavity of the limiting groove 3, and a loading and unloading assembly 6 is installed between the sliders 5; And the loading and unloading assembly 6 includes a slide bar 61 fixedly connected between the sliders 5, a plurality of material taking grooves 62 are opened on one side of the slide bar 61, grooves 63 are opened on the upper and lower walls of the inner cavity of the material taking groove 62, a rotating block 64 is rotatably connected in the inner cavity of the groove 63, and the rotating block 64 is triangularly arranged, and after the titanium alloy wire rope 10 passes through between the rotating blocks 64, the titanium alloy wire rope 10 can be clamped by the two rotating blocks 64 abutting against each other; A fusing treatment assembly 7 is slidably connected in the inner cavity of the mounting frame 2; And the fusing treatment assembly 7 includes a slide plate 71 slidably connected in the inner cavity of the mounting frame 2, and a fusing bottom plate 13 is installed at the lower end of the support frame 1; Fusing grooves 72 are opened on the mutually approaching surfaces of the fusing bottom plate 13 and the slide plate 71, fuses 73 are arranged on the inner walls of the fusing grooves 72, and the fuses 73 approach each other to form a closed loop for forming a high-frequency electric field between the upper and lower electrodes to fuse the titanium alloy wire rope 10.
[0023] Specifically, in the prior art, a titanium alloy wire rope is usually pulled out from a winding rack, and at the same time, the titanium alloy wire rope is passed through a conductive ring, and then the length of the titanium alloy wire rope that needs to be melted and processed is adjusted. After the adjustment is completed, the conductive ring is energized by starting a melting machine to form a high-frequency electric field between the upper and lower electrodes to heat and melt the titanium alloy wire rope. However, this method of producing and melting the titanium alloy wire rope has low efficiency, and it is difficult for the size of the conductive ring to adapt to the melting and processing of titanium alloy wire ropes of different thicknesses. Moreover, if the conductive ring is too large, when heating and melting a thinner titanium alloy wire rope, the heat cannot be concentrated on the melting area of the titanium alloy wire rope, resulting in uneven heat distribution. This will not only reduce the melting efficiency, but also cause unnecessary heating of other parts of the wire rope, thus affecting its mechanical properties. On the contrary, when melting and processing a thicker titanium alloy wire rope, it is difficult for the titanium alloy wire rope to pass through the conductive ring, affecting the processing efficiency; In the present invention, the titanium alloy wire rope 10 is pulled out from the titanium alloy wire rope coil, and one end of the titanium alloy wire rope 10 is installed in the inner cavity of the material taking groove 62, and one end of the titanium alloy wire rope 10 is used to push the rotating block 64 to turn over. Then, the sliding rod 61 is driven to move to traction the titanium alloy wire rope 10, and during the movement of the sliding rod 61, the two rotating blocks 64 are used to turn over with the groove 63 to clamp and fix the titanium alloy wire rope 10. Furthermore, the sliding rod 61 pulls the titanium alloy wire rope 10 to move through the rotating block 64 to adjust the length. At the same time, the sliding plate 71 is driven to move downward, and the sliding plate 71 is docked with the melting bottom plate 13, so as to cover the titanium alloy wire rope 10, and the fuse 73 in the sliding plate 71 and the melting bottom plate 13 forms a closed loop. 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 melting of the titanium alloy wire rope 10 is completed, the sliding rod 61 moves towards the outlet of the titanium alloy wire rope 10, and then the subsequent titanium alloy wire rope 10 abuts against and pushes the melted titanium alloy wire rope 10 for recovery, so as to realize the cyclic melting production of the titanium alloy wire rope 10, and thus solve the above problems.
[0024] As Figure 1 , Figure 6 and Figure 7 shown, a lead screw 4 is rotatably connected to the inner cavity of the limit groove 3, a slider 5 is threadedly connected to the lead screw 4, and a servo motor is installed inside one side of the mounting frame 2, and the output shaft end of the servo motor is fixedly connected to the lead screw 4.
[0025] Specifically, when melting and processing the titanium alloy wire rope 10, the servo motor is started to drive the lead screw 4 to rotate, and the lead screw 4 threadedly drives the slider 5 to slide in the inner cavity of the limit groove 3. At the same time, the slider 5 drives the loading and unloading assembly 6 to circularly clamp the titanium alloy wire rope 10, so as to realize the cyclic melting processing of the titanium alloy wire rope 10.
[0026] As Figure 1 , Figure 3 andFigure 7 As shown, telescopic rods 17 are rotatably connected to the outer sides of both ends of the sliding rod 61. One end of the telescopic rod 17 is rotatably connected to the sliding plate 71. The telescopic rod 17 can be adjusted according to the length requirement, and at the same time, it is clamped and fixed by the internal beads.
[0027] Specifically, when it is necessary to adjust the fusing length of the titanium alloy wire rope 10, by adjusting the length of the telescopic rod 17, the sliding rod 61 can further pull the titanium alloy wire rope 10 to adjust the length to be fused. At the same time, the sliding 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 limit sliding column 12, so that the sliding plate 71 fits and covers the titanium alloy wire rope 10. Then, the fuse 73 is started to fuse the titanium alloy wire rope 10 in the inner cavity of the fusing groove 72, thus solving the problem that when the fusing machine for the production of titanium alloy wire ropes fuses the titanium alloy wire ropes, since it is necessary to adjust and calibrate the length of the titanium alloy wire ropes during each fusing production process of the titanium alloy wire ropes, the fusing production efficiency is low and it is difficult to form a cyclic fusing production for the titanium alloy wire ropes.
[0028] As Figure 5 、 Figure 6 and Figure 8 As shown, two storage grooves 65 are respectively opened on the inner walls of the material taking grooves 62. A spring 66 is arranged in the inner cavity of the storage groove 65, and T-shaped abutting blocks 67 are fixedly connected to both ends of the spring 66.
[0029] As Figure 5 、 Figure 6 and Figure 8 As shown, a conical plug 68 is slidably connected inside the upper end of the sliding rod 61, and the conical plug 68 is inserted into the T-shaped abutting block 67. One end of the conical plug 68 is arranged in a semi-circular arc shape. A bottom plate 18 is installed inside the mounting frame 2, and the bottom plate 18 can push the conical plug 68 to slide into the storage groove 65, and at the same time, push the T-shaped abutting blocks 67 to move closer to each other.
[0030] As Figure 3 、 Figure 6 and Figure 7 As shown, a U-shaped mounting plate 11 is installed inside the mounting frame 2. A plurality of limit sliding columns 12 are fixedly connected to the upper end of the U-shaped mounting plate 11, and a sliding sleeve 19 is slidably connected to the outside of the plurality of limit sliding columns 12, and the sliding sleeve 19 is fixedly connected to the sliding plate 71.
[0031] Specifically, when clamping the titanium alloy wire rope 10, it moves to the feeding plate 8 through the sliding rod 61, so that the titanium alloy wire rope 10 inside the feeding plate 8 is inserted into the inner cavity of the material taking groove 62, and two rotating blocks 64 are pushed to turn over. At the same time, one end of the titanium alloy wire rope 10 abuts against the T-shaped abutting block 67, so that one end of multiple titanium alloy wire ropes 10 abuts against the T-shaped abutting block 67 and remains on the same horizontal line. Then, the sliding rod 61 is driven to move away from the feeding plate 8, so that the sliding rod 61 pulls the titanium alloy wire rope 10 to move by using the rotating block 64. After the sliding rod 61 moves to the bottom plate 18, the sliding rod 61 will drive the conical insertion block 68 to insert into the storage groove 65, and the conical insertion block 68 is inserted into both sides of the T-shaped abutting block 67, so that the T-shaped abutting block 67 squeezes the spring 66 and slides into the inner cavity of the storage groove 65. After the titanium alloy wire rope 10 is melted, the sliding rod 61 moves towards the feeding plate 8, so that the titanium alloy wire rope 10 to be processed pushes the titanium alloy wire rope 10 inside the sliding rod 61 to move between the T-shaped abutting blocks 67, and then slides out from inside the sliding rod 61 for discharging, thus forming a cyclic clamping and discharging of the titanium alloy wire rope 10, solving the problem that when the existing melting machine for titanium alloy wire rope production melts and processes the titanium alloy wire rope, due to the inconvenience of cyclic clamping and adjusting the length of the titanium alloy wire rope for melting and processing, every time the titanium alloy wire rope is melted and processed, a large amount of time is wasted for adjusting the length of the titanium alloy wire rope, and then heating and melting it, which is not only cumbersome in operation but also affects the production efficiency of the titanium alloy wire rope.
[0032] Embodiment 2: As Figure 1 , Figure 4 and Figure 6 shown, a filter screen plate 74 is arranged inside the upper end of the sliding plate 71, and a plurality of T-shaped sliders 75 are evenly and slidably arranged inside the upper wall of the melting groove 72, and the T-shaped sliders 75 slide downward by their own weight.
[0033] As Figure 2 , Figure 3 and Figure 6 shown, a collection box 14 is installed inside the lower end of the melting bottom plate 13, and the inner cavity of the collection box 14 is communicated with the inner cavity of the melting groove 72.
[0034] As Figure 3 , Figure 3 and Figure 6 shown, a conical guiding cover 15 is installed at the lower end of the support frame 1, and a recovery port 16 is opened at the lower end of the conical guiding cover 15 for collecting the melted titanium alloy wire rope 10. A titanium alloy wire rope installation 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.
[0035] Specifically, when the titanium alloy wire rope 10 is fuse-produced, after the length of the titanium alloy wire rope 10 is adjusted by pulling it out from the feeding plate 8 by the sliding rod 61, the sliding rod 61 will drive the telescopic rod 17 to pull the sliding plate 71 downward. At the same time, the sliding plate 71 slides downward outside the limit sliding column 12 by using the sliding sleeve 19. Thus, the sliding plate 71 is docked with the fuse bottom plate 13. At the same time, the T-shaped slider 75 will abut against the outside of the titanium alloy wire rope 10 and slide into the inside of the sliding plate 71 to block the fuse groove 72. Then, when the titanium alloy wire rope 10 located in the inner cavity of the fuse groove 72 is heated and fused, the smoke generated by the heating and fusing of the titanium alloy wire rope 10 will be filtered by the filter screen plate 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 will fall into the collection box 14 for collection and treatment. Thereby, it solves the problem that when the existing fuse machine for titanium alloy wire rope production heats and fuses the titanium alloy wire rope, if the sparks and smoke generated by the heating and fusing of the titanium alloy wire rope are not purified, the smoke contains metal dust, and workers are prone to pulmonary fibrosis and other safety hazards after long-term inhalation.
[0036] As Figure 1 , Figure 2 and Figure 9 shown, a feeding plate 8 is installed inside the support frame 1, and a plurality of guide 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 guide groove 20, and a guiding block 22 is rotatably connected to the inner cavity of the rotating groove 21. The guiding blocks 22 are connected in series and fixedly connected. A fixing disk 23 is fixedly connected to the inside and outside of the guiding block 22 located inside the feeding plate 8. A torsion spring 24 is fixedly connected to one side of the fixing disk 23, and the torsion spring 24 is fixedly connected to the inner wall of the feeding plate 8.
[0037] Specifically, when using the sliding rod 61 to pull the titanium alloy wire rope 10 out from inside the feeding plate 8, by using the torsion spring 24 to twist the fixed disk 23 to rotate, and making the fixed disk 23 drive the guiding block 22 to rotate, then the guiding block 22 clamps the titanium alloy wire rope 10. When the sliding rod 61 pulls the titanium alloy wire rope 10, the guiding block 22 clamps and straightens the titanium alloy wire rope 10 to prevent the titanium alloy wire rope 10 from being discharged in a disorderly manner after being pulled out of the feeding plate 8, which would cause the titanium alloy wire rope 10 not to be in a taut state, affecting the precision of heating and fusing the titanium alloy wire rope 10. When the sliding rod 61 pulls the titanium alloy wire rope 10 to move, the titanium alloy wire rope 10 will drive the titanium alloy wire rope mounting roller 9 to rotate. After the sliding rod 61 stops pulling, the titanium alloy wire rope mounting roller 9 continues to rotate under the influence of gravity, which will push the titanium alloy wire rope 10 to move inside the feeding plate 8. At this time, the torsion spring 24 is used to twist the guiding block 22 to clamp and fix the titanium alloy wire rope 10, preventing the excessive discharge of the titanium alloy wire rope 10 from pushing the titanium alloy wire rope 10 to be fused, which may affect the situation of too long heating and fusing length. Thus, it solves the problem that when the existing fusing machine for titanium alloy wire rope production adjusts the length of the titanium alloy wire rope by traction, if the titanium alloy wire rope is not clamped and straightened, and the titanium alloy wire rope always remains in a soft state, the length of the titanium alloy wire rope is likely to be too long or too short after fusing.
[0038] Working principle: Pull out the titanium alloy wire rope 10 from the titanium alloy wire rope coil, install one end of the titanium alloy wire rope 10 in the inner cavity of the material taking groove 62, and make one end of the titanium alloy wire rope 10 push the rotating block 64 to turn over. Then drive the sliding rod 61 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 groove 63 are used to turn over to clamp and fix the titanium alloy wire rope 10. Thus, the sliding rod 61 pulls the titanium alloy wire rope 10 to move through the rotating block 64 to adjust the length. At the same time, drive the sliding plate 71 to move downward and make the sliding plate 71 dock with the fusing bottom plate 13, so as to cover the titanium alloy wire rope 10, and form a closed loop between the sliding plate 71 and the fuse 73 in the fusing bottom plate 13. At the same time, start the fuse 73 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 fusing of the titanium alloy wire rope 10 is completed, the sliding rod 61 moves towards the titanium alloy wire rope 10, and then the subsequent titanium alloy wire rope 10 abuts against and pushes the fused titanium alloy wire rope 10 for recycling, thus realizing the cyclic fusing production of the titanium alloy wire rope 10. When fusing and producing the titanium alloy wire rope 10, after the slide bar 61 pulls the titanium alloy wire rope 10 out of the feeding plate 8 for length adjustment, the slide bar 61 will drive the telescopic rod 17 to pull the sliding plate 71 downward. At the same time, the sliding plate 71 slides downward outside the limit sliding column 12 by using the sliding sleeve 19, so that the sliding plate 71 is docked with the fusing bottom plate 13. At the same time, the T-shaped slider 75 will abut against the outside of the titanium alloy wire rope 10 and slide into the inside of the sliding plate 71 to block the fusing groove 72. Then, when heating and fusing the titanium alloy wire rope 10 located in the inner cavity of the fusing groove 72, the smoke generated by the heating and fusing of the titanium alloy wire rope 10 will be filtered and discharged through the filter screen plate 74 at the upper end of the sliding plate 71, and the sparks generated by the heating and fusing of the titanium alloy wire rope 10 will fall into the collection box 14 for collection and treatment; When using the slide bar 61 to pull the titanium alloy wire rope 10 out of the inside of the feeding plate 8, by using the torsion spring 24 to twist the fixed disk 23 to rotate, and making the fixed disk 23 drive the guiding block 22 to rotate, then the guiding block 22 clamps the titanium alloy wire rope 10. When the slide bar 61 pulls the titanium alloy wire rope 10, the guiding block 22 is used to clamp and straighten the titanium alloy wire rope 10 to prevent the titanium alloy wire rope 10 from being in a non-straight state after being pulled out of the feeding plate 8, which will affect the precision of the heating and fusing of the titanium alloy wire rope 10. When the slide bar 61 pulls the titanium alloy wire rope 10 to move, the titanium alloy wire rope 10 will drive the titanium alloy wire rope mounting roller 9 to rotate. After the slide bar 61 stops pulling, the titanium alloy wire rope mounting roller 9 continues to rotate under the influence of gravity, which will push the titanium alloy wire rope 10 into the inside of the feeding plate 8. At this time, the torsion spring 24 is used to twist the guiding block 22 to clamp and fix the titanium alloy wire rope 10 to prevent the titanium alloy wire rope 10 from being pushed by the excessive discharge of the titanium alloy wire rope 10, resulting in the situation that the heating and fusing length is too long.
[0039] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A fuse machine for the production of titanium alloy wire ropes, characterized in that: It includes a support frame (1), on one side of the upper end of the support frame (1), there is a fixedly connected mounting frame (2). At the installation position of the mounting frame (2) and the support frame (1), there is a limit groove (3). A slider (5) is slidably connected in the inner cavity of the limit groove (3). Between the sliders (5), there is a loading and unloading assembly (6). And the loading and unloading assembly (6) includes a slide rod (61) fixedly connected between the sliders (5). On one side of the slide rod (61), there are a plurality of material taking grooves (62). On the upper and lower walls of the inner cavity of the material taking groove (62), there are grooves (63). In the inner cavity of the groove (63), there is a rotatable block (64). And the rotatable block (64) is triangularly arranged. After the titanium alloy wire rope (10) passes through between the rotatable blocks (64), the titanium alloy wire rope (10) can be clamped by the mutual abutment of the two rotatable blocks (64). A fusing treatment assembly (7) is slidably connected in the inner cavity of the mounting frame (2). And the fusing treatment assembly (7) includes a slide plate (71) slidably connected in the inner cavity of the mounting frame (2). At the lower end of the support frame (1), there is a fusing bottom plate (13). On the mutually approaching surfaces of the fusing bottom plate (13) and the slide plate (71), there are fusing grooves (72). On the inner wall of the fusing groove (72), there is a fuse (73). And the fuses (73) approach 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 fuse machine for the production of titanium alloy wire ropes according to claim 1, wherein: A lead screw (4) is rotatably connected in the inner cavity of the limit groove (3). The slider (5) is threadedly connected with the lead screw (4). Inside one side of the mounting frame (2), there is a servo motor, and the output shaft end of the servo motor is fixedly connected with the lead screw (4).
3. A fuse machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: At the outer parts of both ends of the slide rod (61), there is a rotatable telescopic rod (17). One end of the telescopic rod (17) is rotatably connected with the slide plate (71). The telescopic rod (17) can be adjusted according to the length requirement, and at the same time, it is clamped and fixed by the internal beads.
4. A fusing machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: On the inner walls of the material taking grooves (62), there are two storage grooves (65). Inside the inner cavity of the storage groove (65), there is a spring (66). And both ends of the spring (66) are fixedly connected with a T-shaped abutting block (67).
5. A fusing machine for the production of titanium alloy wire ropes according to claim 4, characterized in that: A conical plug (68) is slidably connected inside the upper end of the slide rod (61). And the conical plug (68) is inserted into the T-shaped abutting block (67). One end of the conical plug (68) is arranged in a semi-circular arc shape. Inside the inner cavity of the mounting frame (2), there is a bottom plate (18). And the bottom plate (18) can push the conical plug (68) into the storage groove (65), and at the same time, push the T-shaped abutting blocks (67) to move closer to each other.
6. A fuse machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: Inside the inner cavity of the mounting frame (2), there is a U-shaped mounting plate (11). At the upper end of the U-shaped mounting plate (11), there are a plurality of limit sliding columns (12). And a sliding sleeve (19) is slidably connected outside the plurality of limit sliding columns (12). And the sliding sleeve (19) is fixedly connected with the slide plate (71).
7. A fuse machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: Inside the upper end of the slide plate (71), there is a filter screen plate (74). Inside the upper wall of the fusing groove (72), a number of T-shaped sliders (75) are uniformly slidably arranged, and the T-shaped sliders (75) slide downward by their own weight.
8. A fusing machine for the production of titanium alloy wire ropes according to claim 7, 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 communicated with the inner cavity of the fuse groove (72).
9. A fuse machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: A conical material guiding cover (15) is installed at the lower end of the support frame (1), and a recovery port (16) is opened at the lower end of the conical material guiding cover (15) for collecting the fused titanium alloy wire rope (10). A titanium alloy wire rope installation 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 fused.
10. A fuse machine for the production of titanium alloy wire ropes according to claim 1, characterized in that: A feeding plate (8) is installed inside the support frame (1), and a plurality of material guiding grooves (20) are opened on one side of the feeding plate (8). Rotating grooves (21) are opened on both the upper and lower walls of the inner cavity of the material guiding groove (20), and a guiding block (22) is rotatably connected inside the rotating groove (21). The guiding blocks (22) are connected in series and fixed. A fixing disk (23) is fixedly connected to the inside and outside of the feeding plate (8) where the guiding block (22) is located. A torsion spring (24) is fixedly connected to one side of the fixing disk (23), and the torsion spring (24) is fixedly connected to the inner wall of the feeding plate (8).
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