Bus duct processing equipment and processing method

By introducing a movable waste box and a rotating disc system driven by servo motors into the busbar trough processing equipment, the problem of frequent manual sorting of waste boxes is solved, automatic waste sorting is realized, and processing efficiency and equipment utilization are improved.

CN120572344AActive Publication Date: 2025-09-02SICHUAN SHUTENG BUS CO LTD
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Patent Information

Application Number
CN202511086248.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-05
Publication Date
2025-09-02
Estimated Expiration
2045-08-05

AI Technical Summary

Technical Problem

When cutting off the strips of existing busbar processing equipment, the waste box needs to be manually sorted frequently, which affects work efficiency and increases work burden.

Method used

A busbar trough processing equipment including cutting unit, bending unit and punching unit is designed, and a rotating disc system driven by a movable waste box and a servo motor is used to realize the automatic shaking and finishing of the waste box. The drive gears and rotating discs are driven by the servo motor, which drives the reciprocating movement of the jaws and the waste box, and automatically organizes the waste.

Benefits of technology

It improves the processing efficiency of busbar troughs, reduces the frequency of manual waste sorting, improves the capacity of waste boxes, and reduces the labor intensity of staff.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides bus duct processing equipment and a bus duct processing method, and relates to the technical field of bus duct processing. The bus duct processing equipment comprises a processing machine, the processing machine is provided with a processing table, a cutting unit, a bending unit and a punching unit, and the bending unit is arranged on the processing table; the cutting-off unit is arranged on the side wall of the machining table, a fixing strip is arranged on the machining table, a push block is connected to the fixing strip in a sliding mode, a working cavity is formed in the machining table, a servo motor is installed in the working cavity, a driving gear is arranged at the output end of the servo motor, a through hole is formed in the side wall of the working cavity, and the through hole is communicated with the push block. The driving gear extends out of the through hole, a rotating gear is arranged on the side wall of the machining table, and the driving gear is meshed with the rotating gear. The movable waste box capable of periodically shaking and arranging is arranged on the side wall of the cutting-off unit, so that more rows of waste can be contained in the waste box at a time, and then the bus duct machining efficiency is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of bus duct processing, and in particular relates to a bus duct processing device and a processing method. Background Art

[0002] Busbar ducting is a core component of modern medium- and low-voltage power distribution systems, ensuring efficient, reliable, flexible, and safe transmission and distribution of high currents. Primarily used for indoor high-current transmission, it is gradually replacing wires and cables in many applications, efficiently and reliably delivering electrical energy from the power source to various devices or downstream distribution points. The complete busbar ducting process requires cutting, structural shaping, surface treatment, insulation treatment, and final assembly and testing. To improve processing efficiency, many manufacturers currently use multi-functional processing machines such as busbar processing machines.

[0003] Busbar processing machines usually include functions such as cutting, bending, and punching. During the cutting step, the staff needs to first align the strips with the fixed strips on the processing table, and then use the push block sliding on the fixed strip to push the strips into the cutting unit for cutting. The cut waste will fall directly into the waste bin placed next to the processing machine. However, the hard strips will stack together irregularly when falling, so the actual capacity will be much smaller than the theoretical capacity. Therefore, after cutting a certain number of strips, the staff needs to manually shake and organize the waste bin to make the waste in the waste bin more regularly arranged to accommodate more waste. The staff's need to manually shake and organize the waste bin regularly will increase the staff's workload and affect the efficiency of cutting the strips. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the above-mentioned prior art and provide a bus duct processing equipment and a processing method.

[0005] The technical solutions adopted to solve the above technical problems are: A bus duct processing device includes a processing machine, wherein the processing machine is provided with a processing table, a cutting unit, a bending unit and a punching unit, wherein the bending unit is provided on the processing table; The cam is provided with a toothed plate, and the toothed plate is provided with a toothed plate, and the toothed plate is provided with a toothed plate, and the toothed plate is provided with a toothed plate. The punching unit is also arranged on the side wall of the processing table, and the punching unit and the cutting unit are arranged on the same side of the processing table.

[0006] Through the above technical solution, a movable waste box that can be shaken and sorted periodically is set on the side wall of the cutting unit. During the shaking process, the strip waste in the bottom bin will continue to shake until it is in a stable state, so that the waste box can accommodate more strip waste at one time, thereby improving the bus duct processing efficiency.

[0007] Furthermore, the top of the top bin is tilted, the end of the top bin facing the cutting unit is the low end, and the end away from the cutting unit is the high end.

[0008] Through the above technical solution, the strips cut by the cutting unit will be pushed into the movable waste box by the push block. In order to better receive the waste, the shorter end faces the cutting unit, so the top bin can easily accommodate the strip waste entering from the cutting unit, and the higher end of the top bin can prevent the waste from being pushed out of the top bin range, thereby collecting the strip waste more completely into the bottom bin.

[0009] Furthermore, the side wall of the column is rotatably connected to a rotating ring, the side wall of the rotating ring is fixedly connected to the claw, and the torsion spring is arranged between the rotating ring and the column.

[0010] Through the above technical solution, the directions of the torsion spring forces inside the two rotating rings are also different. Specifically, the torsion spring force close to the protrusion is smaller than the torsion spring force away from the protrusion. Under the action of two different torsion springs, the two claws and the rotating ring will maintain contact with the bottom bin, thereby ensuring that after the protrusion leaves the claw, the torsion spring will bring the bottom bin back to its initial position, thereby facilitating subsequent multiple shaking.

[0011] Furthermore, the push block includes a slider and a top block, the slider is slidably connected to the top of the fixed bar, the top block is fixedly arranged on the side wall of the slider, and the bottom of the top block abuts against the top of the processing table.

[0012] Through the above technical solution, the push block is divided into a slider in contact with the fixed bar, and a top block in contact with the processing table. The setting of the slider can help the push block move along the fixed bar. Therefore, the height of the slider is greater than the height of the fixed bar, which is more convenient for the staff to slide the position of the slider. At the same time, the top block will hit the top of the processing table, so that the top block can better push the strips toward the cutting unit, thereby better adapting to strips of different thicknesses.

[0013] Furthermore, the bottom of the rotating ring is rotatably connected to a bottom plate, a fixed block is installed on the top of one end of the bottom plate away from the rotating ring, and two fixed grooves are opened at the bottom of the bottom bin, and the two fixed blocks are respectively inserted into the two fixed grooves.

[0014] Through the above technical solution, when the entire movable waste box is installed on the cutting unit, the bottom bin can be placed on the bottom plate first, and the two fixed blocks can be inserted into the fixed grooves first. At this time, the bottom plate can support the bottom bin and the top bin. At the same time, since the bottom plate and the rotating ring can rotate relative to each other, when the protrusion pushes the claw and the bottom bin to reciprocate, the bottom plate can also reciprocate, which is convenient for shaking and sorting the strip waste that falls into the bottom bin.

[0015] Furthermore, a scale line is provided on the top of the fixing bar, and the scale line is etched on the fixing bar.

[0016] Through the above technical solution, the setting of the scale lines can help workers quickly determine the length of the strips that need to be cut, and because the scale lines are etched on the fixed bar, the slider will not rub against the scale lines when sliding on the fixed bar, and the scale lines will not be blurred due to friction. In actual production, an additional wear-resistant layer can be added to the top of the fixed bar to further ensure the safety of the scale lines.

[0017] Furthermore, the side wall of the slider is rotatably connected to a first support rod, a vertical groove is provided on the top of the top block, a moving block is slidably connected in the vertical groove, the top of the moving block is rotatably connected to a second support rod, the first support rod and the second support rod are rotatably connected, a telescopic spring is provided between the moving block and the vertical groove, and an insertion rod is fixedly provided on the side wall of the moving block facing away from the telescopic spring.

[0018] Through the above technical solution, under the action of the telescopic spring, the moving block will be pushed until it moves to the end of the vertical slot. In this state, the angle between the first support rod and the second support rod will be close to a right angle, which makes it convenient for the staff to use the palm to press the connection position of the first support rod and the second support rod, so that the moving block can compress the telescopic spring, and then make the insertion rod follow the moving block away from the fixed bar. The staff first places the row bar close to the fixed bar, and then uses the palm to press the connection position of the first support rod and the second support rod, so that the moving block drives the insertion rod to compress the telescopic spring together and away from the fixed bar. At this time, the staff can slide the push block along the fixed bar, and then adjust the position of the push block to adapt to the length of different row bars.

[0019] Furthermore, a buckle is fixedly provided on the side wall of the top bin facing the cutting unit, and a clamping seat is provided on the side wall of the cutting unit, and the buckle is clamped in the clamping seat.

[0020] Through the above technical solution, the clamping state of the buckle and the holder depends on the effect of gravity. Therefore, in daily use, the top bin will be naturally fixed on the side wall of the cutting unit. When the strips are continuously cut, the strip waste will continuously fall into the bottom bin. Although the reciprocating shaking will increase the amount of waste that the movable waste box can accommodate to a certain extent, the movable waste box must be removed regularly for cleaning. The setting of the buckle and the holder is one of the simple and convenient detachable mechanisms, which can also be replaced with other detachable mechanisms in actual production.

[0021] Furthermore, a disc is fixedly provided on the side wall of the driving gear facing away from the servo motor, and a spiral block is provided on the side wall of the disc facing away from the driving gear. The side wall of the working chamber is rotatably connected to a swing rod, and the side wall of the swing rod is against the side wall of the spiral block. The other end of the swing rod is rotatably connected to a tilting rod, and the other end of the tilting rod is rotatably connected to a push rod. The middle position of the push rod is rotatably connected to the side wall of the working chamber, and the push rod is rotatably connected to an I-plate at one end away from the tilting rod. A sliding rod is provided on the side wall of the I-plate, and a sliding groove is provided on the side wall of the working chamber. The sliding rod is slidably connected to the inner wall of the sliding groove. A bottom groove is provided on the bottom of the fixing bar, and the I-plate passes through the bottom groove. A plurality of through holes are provided on the top side wall of the I-plate, and the insertion rod is inserted into one of the through holes.

[0022] Through the above technical solution, the servo motor drives the drive gear to rotate while also driving the disc to rotate. The spiral block set on the side wall of the disc will rotate accordingly. The spiral block as a whole is in a spiral enlargement state. The swing rod that presses against the side wall of the spiral block will be pushed away due to the gradual expansion of the spiral block. In addition, through the setting of the tilting rod and the pushing rod, the I-plate can reciprocate. Since the insertion rod is inserted in the through hole, the top block will drive the strip to reciprocate together, and then continuously push the strip into the cutting unit for cutting.

[0023] A processing method for bus duct processing equipment includes the following specific steps: S1. The staff first places the strips on the processing table so that the side walls of the strips touch the side walls of the fixed strips; S2. Then adjust the position of the push block so that one end of the strip is close to the cutting unit. During this process, the side wall of the push block abuts against the side wall of the strip; S3. Start the servo motor. The rotation of the servo motor drives the driving gear to rotate. The rotating gear meshing with the driving gear drives the rotating disk to rotate. The protrusions on the side wall of the rotating disk will lift the clamping claws in turn. Under the action of the torsion spring inside the clamping claws, the bottom bin clamped by the clamping claws will reciprocate. S4, start the servo motor and the cutting unit at the same time, the strips cut by the cutting unit will fall into the movable waste box, and due to the reciprocating motion of the bottom bin, the strip waste falling into the movable waste box will be continuously sorted, thereby accommodating more strip waste; S5. The staff removes the cut busbars and bends them using a bending unit or punches them using a punching unit, and finally processes the busbars into qualified bus ducts; The beneficial effects of the present invention are as follows: The present invention provides a movable waste box with upper and lower ends that can move relative to each other on the side wall of the cutting unit, and a rotating disk and a protrusion that can push the bottom bin of the movable waste box to move back and forth, so that the bottom bin can achieve reciprocating shaking. During the shaking process, the strip waste in the bottom bin will shake continuously until it is in a stable state, so that the waste box can accommodate more strip waste at one time, thereby improving the processing efficiency of the bus duct; The present invention arranges a disc and a spiral block on the side wall of the driving gear, so that the servo motor drives the driving gear to rotate and the disc to rotate at the same time. At this time, the spiral block arranged on the side wall of the disc will rotate accordingly, and the swing rod abutting against the side wall of the spiral block will swing periodically due to the gradual expansion and contraction of the spiral block. Then, the I-shaped plate is reciprocated by the arrangement of the tilting rod and the pushing rod. Since the insertion rod is inserted into the through hole, the top block will drive the strips to reciprocate together, and then the strips abutting against the side wall of the top block will be continuously pushed into the cutting unit for cutting. The movable waste box consists of three parts: a top bin, a connecting bin and a bottom bin. The top bin and the connecting bin are both connected from top to bottom, the upper end of the bottom bin is open, and the bottom is closed. Therefore, the strip waste pushed into the movable waste box will fall along the top bin and the connecting bin, and finally fall into the bottom bin. Moreover, the connecting bin in the middle is made of flexible material, so when the claw drives the bottom bin to reciprocate, it will not affect the fixing effect of the top bin. The material of the top bin and the bottom bin can be hard materials such as hard plastic, and the material of the connecting bin can be thermoplastic polyurethane, namely TPU, or other flexible materials with good wear resistance, which can not only ensure the relative movement between the bottom bin and the top bin, but also will not be scratched by the sharp edges of the strip waste. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the structural connection between the cutting unit and the movable waste box in the present invention; Figure 3 It is a schematic diagram of the structural connection between the upright column and the rotating ring in the present invention; Figure 4 It is a structural schematic diagram of the cutting unit for removing the movable waste box in the present invention; Figure 5 This is a schematic diagram of the structural connection of the movable waste box of the present invention; Figure 6 This is a schematic diagram of the structural connection inside the working chamber of the present invention; Figure 7 yes Figure 6 A partial enlarged view of point A in the middle; Figure 8 It is a schematic diagram of the structural connection between the servo motor, the driving gear and the rotating disk in the present invention; Figure 9 It is a cross-sectional view of the push block and the working chamber in the present invention; Figure 10 yes Figure 9 A partial enlarged view of point B in the middle.

[0025] Reference numerals: 1, processing table; 2, cutting unit; 3, bending unit; 4, punching unit; 5, fixing bar; 6, servo motor; 7, driving gear; 8, through hole; 9, rotating gear; 10, rotating disk; 11, protrusion; 12, column; 13, claw; 14, torsion spring; 15, top chamber; 16, connecting chamber; 17, bottom chamber; 18, rotating ring; 19, slider; 20, top block; 21, bottom plate; 22. Fixed block; 23. Fixed slot; 24. Scale line; 25. First support rod; 26. Vertical slot; 27. Moving block; 28. Second support rod; 29. ​​Telescopic spring; 30. Insert rod; 31. Buckle; 32. Holder; 33. Disc; 34. Screw block; 35. Swing rod; 36. Tilt rod; 37. Push rod; 38. I-plate; 40. Slide rod; 41. Slide slot; 42. Bottom slot; 43. Perforation. DETAILED DESCRIPTION

[0026] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0027] like Figure 1 As shown, a bus duct processing equipment in this embodiment includes a processing machine, which is provided with a processing table 1, a cutting unit 2, a bending unit 3 and a punching unit 4. The bending unit 3 is arranged on the processing table 1, and the punching unit 4 is also arranged on the side wall of the processing table 1. The punching unit 4 and the cutting unit 2 are arranged on the same side of the processing table 1. The three units are respectively located at different positions on the processing table 1, so that multiple workers can use three different units to operate at the same time.

[0028] The cutting unit 2 is arranged on the side wall of the processing table 1, and a fixed bar 5 is arranged on the processing table 1. A scale line 24 is arranged on the top of the fixed bar 5, and the scale line 24 is etched on the fixed bar 5. The setting of the scale line 24 can help the staff to quickly determine the length of the strips to be cut, and because the scale line 24 is etched on the fixed bar 5, when the slider 19 slides on the fixed bar 5, the slider 19 will not generate friction with the scale line 24, and the scale line 24 will not be blurred due to friction.

[0029] A push block is slidably connected to the fixed bar 5, and the push block includes a slider 19 and a top block 20. The slider 19 is slidably connected to the top of the fixed bar 5, and the top block 20 is fixedly set on the side wall of the slider 19. The bottom of the top block 20 is against the top of the processing table 1. The push block is divided into a slider 19 in contact with the fixed bar 5, and a top block 20 in contact with the processing table 1. The setting of the slider 19 can help the push block move along the fixed bar 5, and at the same time, the top block 20 will be against the top of the processing table 1, so that the top block 20 can better push the strip toward the cutting unit 2.

[0030] Apart from Figure 1 In addition, combined with reference Figure 9 and Figure 10 The side wall of the slider 19 is rotatably connected to the first support rod 25, and a vertical slot 26 is opened at the top of the top block 20. A moving block 27 is slidably connected in the vertical slot 26. The top of the moving block 27 is rotatably connected to the second support rod 28. The first support rod 25 and the second support rod 28 are rotatably connected. A telescopic spring 29 is provided between the moving block 27 and the vertical slot 26. A plug rod 30 is fixedly provided on the side wall of the moving block 27 facing away from the telescopic spring 29. Under the action of the telescopic spring 29, the moving block 27 will be pushed until it moves to the end of the vertical slot 26. In this state, the angle between the first support rod 25 and the second support rod 28 will be close to a right angle, which makes it convenient for the staff to use the palm to press the connection position of the first support rod 25 and the second support rod 28, so that the moving block 27 can compress the telescopic spring 29, and then the plug rod 30 follows the moving block 27 away from the direction of the fixed bar 5.

[0031] The staff first places the row bar close to the fixed bar 5, and then uses the palm of his hand to press the connection position between the first support rod 25 and the second support rod 28, so that the moving block 27 drives the insertion rod 30 to compress the telescopic spring 29 and move away from the fixed bar 5. At this time, the staff can slide the push block along the fixed bar 5, and then adjust the position of the push block to adapt to the length of different row bars.

[0032] Combined with reference Figure 2-Figure 4 as well as Figure 8 A working chamber is provided in the processing table 1, in which a servo motor 6 is installed. A driving gear 7 is provided at the output end of the servo motor 6. A through hole 8 is provided on the side wall of the working chamber, and the driving gear 7 extends from the through hole 8. A rotating gear 9 is provided on the side wall of the processing table 1, and the driving gear 7 is engaged with the rotating gear 9. A rotating disk 10 is provided on the side wall of the rotating gear 9. A plurality of protrusions 11 are provided on the side wall of the rotating disk 10 facing away from the rotating gear 9. Both ends of the protrusion 11 are arc-shaped, which makes it easier for the protrusion 11 to squeeze and contact with the claw 13, and there is a distance between two adjacent protrusions 11. Therefore, during the rotation of the rotating disk 10, the rotating protrusions 11 will cause the claw 13 to achieve reciprocating motion.

[0033] Two columns 12 are provided in the cutting unit 2, and the side walls of the two columns 12 are rotatably connected to claws 13, and a torsion spring 14 is provided inside the claw 13. The side wall of the column 12 is rotatably connected to a rotating ring 18, and the side wall of the rotating ring 18 is fixedly connected to the claw 13. The torsion spring 14 is provided between the rotating ring 18 and the column 12, and the two claws 13 are both against the side wall of the bottom bin 17, and the protrusion 11 is against the side wall of one of the claws 13. The elastic direction of the torsion spring 14 inside the two rotating rings 18 is also different. Under the action of two different torsion springs 14, the two claws 13 and the rotating ring 18 will maintain contact with the bottom bin 17, thereby ensuring that after the protrusion 11 leaves the claw 13, the torsion spring 14 will bring the bottom bin 17 back to its initial position.

[0034] The elastic forces of the two torsion springs 14 are also slightly different. The torsion spring 14 inside the claw 13 away from the protrusion 11 has a greater elastic force. Therefore, after the protrusion 11 pushes the claw 13, in the gap between the two protrusions 11, the torsion spring 14 inside the claw 13 away from the protrusion 11 has a greater internal elastic force, so it can drive the bottom bin 17 and the other claw 13 to return to the original state of contact with the protrusion 11.

[0035] Combined with reference Figure 5 As shown, the bottom of the rotating ring 18 is rotatably connected to the bottom plate 21, and a fixed block 22 is installed on the top of the bottom plate 21 away from the rotating ring 18. A movable waste box is clamped between the two claws 13. The movable waste box includes a top bin 15, a connecting bin 16 and a bottom bin 17. Two fixing grooves 23 are provided at the bottom of the bottom bin 17. The cross-sections of the fixing block 22 and the fixing groove 23 are both circular, which makes it more convenient for the staff to install the bottom bin 17 on the bottom plate 21. The two fixing blocks 22 are respectively inserted into the two fixing grooves 23 When the entire movable waste box is installed on the cutting unit 2, the bottom bin 17 can be placed on the bottom plate 21 first, and the two fixing blocks 22 can be inserted into the fixing grooves 23 first. At this time, the bottom plate 21 can support the bottom bin 17 and the top bin 15. At the same time, since the bottom plate 21 and the rotating ring 18 can rotate relative to each other, when the protrusion 11 pushes the claw 13 and the bottom bin 17 to reciprocate, the bottom plate 21 can also reciprocate, which is convenient for shaking and sorting the waste strips that fall into the bottom bin 17.

[0036] from Figure 2It can be seen that the connecting bin 16 is made of flexible material, and the top bin 15 and the bottom bin 17 are both made of hard materials. The materials of the top bin 15 and the bottom bin 17 can be hard materials such as hard plastic, while the material of the connecting bin 16 can be thermoplastic polyurethane, namely TPU, or other flexible materials with good wear resistance. The top of the top bin 15 is tilted, and the end of the top bin 15 facing the cutting unit 2 is the low end, and the end away from the cutting unit 2 is the high end. The strips cut by the cutting unit 2 will be pushed into the movable waste box by the top block 20. In order to better receive the waste, the tilted top bin 15 can easily accommodate the waste and prevent the waste from being pushed out of the range of the top bin 15.

[0037] Recombination Figure 4 and Figure 5 As shown, a buckle 31 is fixedly provided on the side wall of the top bin 15 facing the cutting unit 2, and a holder 32 is provided on the side wall of the cutting unit 2. The buckle 31 is engaged in the holder 32. When the strips are continuously cut, the strip waste will continuously fall into the bottom bin 17. Although the reciprocating shaking will increase the amount of waste that the movable waste box can accommodate to a certain extent, the movable waste box still needs to be removed regularly for cleaning. The setting of the buckle 31 and the holder 32 is one of the simple and convenient detachable mechanisms, which can also be replaced with other detachable mechanisms in actual production.

[0038] Comprehensive Reference Figure 6-Figure 8 As shown, a disk 33 is fixedly provided on the side wall of the driving gear 7 facing away from the servo motor 6, and a spiral block 34 is provided on the side wall of the disk 33 facing away from the driving gear 7. The spiral block 34 is in a spirally enlarged state as a whole. Figure 8 It can be clearly seen from the figure that the spiral block 34 is in a spiral shape similar to a snail shell.

[0039] The side wall of the working chamber is rotatably connected to a swing rod 35, and the side wall of the swing rod 35 is against the side wall of the spiral block 34. The other end of the swing rod 35 is rotatably connected to a tilting rod 36, and the other end of the tilting rod 36 is rotatably connected to a push rod 37. The middle position of the push rod 37 is rotatably connected to the side wall of the working chamber, and the push rod 37 is rotatably connected to the end of the push rod 37 away from the tilting rod 36. The side wall of the I-plate 38 is provided with a slide rod 40, and the side wall of the working chamber is provided with a slide groove 41. The setting of the slide rod 40 and the slide groove 41 can make the I-plate 38 more stable in the transverse movement of the working chamber, and Figure 6 and Figure 7 It can be seen that the I-shaped plate 38 can be regarded as an upper horizontal plate, a connecting plate and a bottom plate. The bottom plate is rotatably connected to the push rod 37, and the upper horizontal plate passes through the bottom groove 42. The length of the bottom plate is smaller than the upper horizontal plate. Therefore, the push rod 37 drives the bottom plate to move a shorter distance, and the upper horizontal plate can drive the push block and the strips to move a longer distance, thereby facilitating the cutting of the strips.

[0040] The sliding rod 40 is slidably connected to the inner wall of the sliding groove 41, and a bottom groove 42 is provided at the bottom of the fixing bar 5. The I-plate 38 passes through the bottom groove 42. A number of through-holes 43 are provided on the top side wall of the I-plate 38. The insertion rod 30 is inserted into one of the through-holes 43. While driving the driving gear 7 to rotate, the servo motor 6 will also drive the disc 33 to rotate. The spiral block 34 set on the side wall of the disc 33 will rotate accordingly, and the swing rod 35 that is against the side wall of the spiral block 34 will be pushed away due to the gradual expansion of the spiral block 34. Moreover, through the setting of the tilting rod 36 and the pushing rod 37, the I-plate 38 is made to reciprocate. Since the insertion rod 30 is inserted into the through-hole 43, the top block 20 will drive the strips to reciprocate together, and then continuously push the strips into the cutting unit 2 for cutting.

[0041] A processing method for bus duct processing equipment includes the following specific steps: S1. The staff first places the strips on the processing table 1 so that the side walls of the strips touch the side walls of the fixing strips 5; S2, then adjust the position of the push block so that one end of the strip is close to the cutting unit 2, during which the side wall of the push block abuts against the side wall of the strip; S3. Start the servo motor 6. The rotation of the servo motor 6 drives the driving gear 7 to rotate. The rotating gear 9 meshing with the driving gear 7 drives the rotating disk 10 to rotate. The protrusions 11 on the side wall of the rotating disk 10 successively lift the claws 13. Under the action of the torsion spring 14 inside the claws 13, the bottom bin 17 clamped by the claws 13 reciprocates. S4, start the servo motor 6 and the cutting unit 2 at the same time, the strips cut by the cutting unit 2 will fall into the movable waste box, and due to the reciprocating motion of the bottom bin 17, the strip waste falling into the movable waste box will be continuously sorted, thereby accommodating more strip waste; S5. The staff removes the cut busbars and bends them using the bending unit 3 or punches them using the punching unit 4, and finally processes the busbars into qualified bus ducts.

[0042] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.

Claims

1. A busbar duct processing device, comprising a processing machine, wherein the processing machine is provided with a processing table (1), a cutting unit (2), a bending unit (3) and a punching unit (4), characterized in that: The bending unit (3) is arranged on the processing table (1); The cutting unit (2) is arranged on the side wall of the processing table (1), the processing table (1) is provided with a fixing bar (5), the fixing bar (5) is slidably connected to a push block, a working chamber is provided in the processing table (1), a servo motor (6) is installed in the working chamber, a driving gear (7) is provided at the output end of the servo motor (6), a through hole (8) is provided on the side wall of the working chamber, the driving gear (7) extends from the through hole (8), a rotating gear (9) is provided on the side wall of the processing table (1), the driving gear (7) is meshed with the rotating gear (9), a rotating disk (10) is provided on the side wall of the rotating gear (9), and the side wall of the rotating disk (10) faces away from the rotating gear (9). A plurality of protrusions (11) are provided on one side of the gear (9), and two columns (12) are provided in the cutting unit (2), and the side walls of the two columns (12) are rotatably connected with claws (13), and a torsion spring (14) is provided inside the claws (13). A movable waste box is clamped between the two claws (13), and the movable waste box includes a top bin (15), a connecting bin (16) and a bottom bin (17), and the connecting bin (16) is made of a flexible material, and the top bin (15) and the bottom bin (17) are both made of a hard material. The two claws (13) are both pressed against the side wall of the bottom bin (17), and the protrusion (11) is pressed against the side wall of one of the claws (13); The punching unit (4) is also arranged on the side wall of the processing table (1), and the punching unit (4) and the cutting unit (2) are arranged on the same side of the processing table (1).

2. The bus duct processing equipment according to claim 1, characterized in that: The top of the top bin (15) is arranged to be inclined, and the end of the top bin (15) facing the cutting unit (2) is the lower end, and the end away from the cutting unit (2) is the higher end.

3. The bus duct processing equipment according to claim 1, characterized in that: The side wall of the column (12) is rotatably connected to a rotating ring (18), the side wall of the rotating ring (18) is fixedly connected to the claw (13), and the torsion spring (14) is arranged between the rotating ring (18) and the column (12).

4. The bus duct processing equipment according to claim 1, characterized in that: The push block includes a slider (19) and a top block (20), wherein the slider (19) is slidably connected to the top of the fixed bar (5), and the top block (20) is fixedly arranged on the side wall of the slider (19), and the bottom of the top block (20) abuts against the top of the processing table (1).

5. The bus duct processing equipment according to claim 3, characterized in that: The bottom of the rotating ring (18) is rotatably connected to a bottom plate (21), and a fixing block (22) is installed on the top of one end of the bottom plate (21) away from the rotating ring (18). Two fixing grooves (23) are provided at the bottom of the bottom bin (17), and the two fixing blocks (22) are respectively inserted into the two fixing grooves (23).

6. The bus duct processing equipment according to claim 4, characterized in that: A scale line (24) is provided on the top of the fixing bar (5), and the scale line (24) is etched on the fixing bar (5).

7. The bus duct processing equipment according to claim 4, characterized in that: The side wall of the slider (19) is rotatably connected to a first support rod (25), a vertical slot (26) is provided on the top of the top block (20), a motion block (27) is slidably connected in the vertical slot (26), a top of the motion block (27) is rotatably connected to a second support rod (28), the first support rod (25) and the second support rod (28) are rotatably connected, a telescopic spring (29) is provided between the motion block (27) and the vertical slot (26), and an insertion rod (30) is fixedly provided on the side wall of the motion block (27) on the side facing away from the telescopic spring (29).

8. The bus duct processing equipment according to claim 1, characterized in that: A buckle (31) is fixedly provided on the side wall of the top bin (15) facing the cutting unit (2), and a clamping seat (32) is provided on the side wall of the cutting unit (2), and the buckle (31) is clamped in the clamping seat (32).

9. The bus duct processing equipment according to claim 7, characterized in that: A disk (33) is fixedly provided on the side wall of the driving gear (7) facing away from the servo motor (6), and a spiral block (34) is provided on the side wall of the disk (33) facing away from the driving gear (7). The side wall of the working chamber is rotatably connected to a swing rod (35), and the side wall of the swing rod (35) abuts against the side wall of the spiral block (34). The other end of the swing rod (35) is rotatably connected to a tilting rod (36), and the other end of the tilting rod (36) is rotatably connected to a push rod (37). The middle position of the push rod (37) is rotatably connected to the side wall of the working chamber. The push rod (37) is rotatably connected to an I-shaped plate (38) at one end away from the tilt rod (36), a sliding rod (40) is provided on the side wall of the I-shaped plate (38), a sliding groove (41) is provided on the side wall of the working chamber, the sliding rod (40) is slidably connected to the inner wall of the sliding groove (41), a bottom groove (42) is provided on the bottom of the fixing bar (5), the I-shaped plate (38) passes through the bottom groove (42), a plurality of through holes (43) are provided on the top side wall of the I-shaped plate (38), and the insertion rod (30) is inserted into one of the through holes (43).

10. A processing method for a bus duct processing device, according to the bus duct processing device of claim 1, characterized in that: The specific steps include: S1. The staff first places the strips on the processing table (1) so that the side walls of the strips touch the side walls of the fixed strips (5); S2, then adjust the position of the push block so that one end of the strip is close to the cutting unit (2), and during this process, the side wall of the push block abuts against the side wall of the strip; S3, start the servo motor (6), the rotation of the servo motor (6) drives the driving gear (7) to rotate, the rotating gear (9) meshing with the driving gear (7) drives the rotating disk (10) to rotate, the protrusions (11) on the side wall of the rotating disk (10) will sequentially lift the claws (13), and under the action of the torsion spring (14) inside the claws (13), the bottom bin (17) clamped by the claws (13) will reciprocate; S4, starting the servo motor (6) and simultaneously starting the cutting unit (2), the strips cut by the cutting unit (2) will fall into the movable waste box, and due to the reciprocating motion of the bottom bin (17), the strip waste falling into the movable waste box will be continuously sorted, thereby accommodating more strip waste; S5. The staff removes the cut busbars and bends them using the bending unit (3) or punches them using the punching unit (4), and finally processes the busbars into qualified bus ducts.

Citation Information

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