Method and device for processing welding interconnection strips

The modular design and linear motion pressure claw cutter structure solves the problems of large material loss and poor welding in the processing of welding interconnection strips, achieving cost savings and improved welding quality.

CN119839353BActive Publication Date: 2025-09-26SUZHOU SOLET AUTOMATION TECH CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510053200.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-14
Publication Date
2025-09-26
Estimated Expiration
2045-01-14

AI Technical Summary

Technical Problem

Existing solutions for welding interconnect strips suffer from high material loss, high maintenance costs, and poor welding. In particular, each short interconnect strip is approximately 170 cm long, and cutting off 10 cm results in a loss of approximately 5.5-6%. Furthermore, the overall design requires frequent disassembly and maintenance, and the rotational action causes torsional deformation.

Method used

The modular design of the welding interconnection bar processing device includes a first frame, a second frame and a third frame. The spacing is adjusted by a spacing drive mechanism, and the linear motion pressure claw and cutter structure are combined to ensure the accuracy of the cutting and pressing process.

Benefits of technology

It effectively reduces material loss, lowers maintenance workload and costs, and at the same time improves welding yield, avoids rubbing and torsional deformation of welded interconnect strips, and ensures accurate cutting and pressing.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119839353B_ABST
    Figure CN119839353B_ABST
Patent Text Reader

Abstract

The present invention relates to the technical field of welding interconnection bar processing, and specifically to a welding interconnection bar processing method and device; the method comprises a first frame, multiple second frames, a third frame and a spacing drive mechanism, the second frame is composed of two auxiliary frames and two fastening plates, and a connecting plate is provided below the first frame, the third frame and one of the auxiliary frames, and two longitudinal sliders and a drive mechanism are provided below the connecting plate. The first frame, multiple second frames and the third frame are respectively slidably set on the spacing drive mechanism through the longitudinal sliders, and the drive mechanism is set on one side of the spacing drive mechanism. The spacing between the first frame, the second frame and the third frame of this design can be adjusted according to actual needs under the action of the drive mechanism. The welding interconnection bar is cut off by the device, which avoids the problem of material waste caused by the cutting of the welding interconnection bar, and saves 5% of the cost of the welding interconnection bar.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of welding interconnection bar processing, and in particular to a welding interconnection bar processing method and device. Background Art

[0002] Solar cell welding is the process of welding solar cells and interconnecting bars together at high temperature. The interconnecting bars are used to connect the cells in series or in parallel to form a battery module. During welding, the cells are arranged at set intervals, and the interconnecting bars cross across the surface of the cells to achieve series connection of the cells.

[0003] In the prior art, in order to prevent the edges of the front and rear adjacent battery cells or the ends of the front and rear adjacent welding interconnection strips from contacting each other and causing a short circuit, a gap of 0.5 to 2 mm is left between adjacent battery cells, and the two ends of each welding interconnection strip are indented 2 to 5 mm from the edge of the battery cell. This requires that a distance of about 10 mm be maintained between the ends of two adjacent welding interconnection strips. In order to obtain a group of interconnection strips distributed along the length and with a head-to-tail spacing of 10 mm at one time, the current practice is to pull a long welding interconnection strip and lay it on a stamping die, and several evenly spaced cutters will cut the welding interconnection strip into several evenly spaced short welding interconnection strips at one time. The welding interconnection strips at a gap of about 10 mm between the welding interconnection strips will be cut off when truncated, that is, a long interconnection strip is cut off by 10 mm at a certain distance to obtain a group of short interconnection strips with a head-to-tail spacing of 10 mm.

[0004] However, each short interconnection bar is about 170 cm long. If 10 cm is cut off every 170 cm, the loss is about 5.5-6%, which is a relatively large loss. At the same time, the existing welding interconnection bar processing solution adopts an overall design method, and due to process requirements, the interconnection bar processing device needs to be frequently disassembled, maintained or replaced. When a part of it fails and needs maintenance or replacement, the entire part needs to be disassembled for maintenance or replacement, which not only requires a lot of work but also causes a huge waste of cost. In addition, the existing welding interconnection bar cutting and pressing structure adopts a cylinder plus connecting rod structure. When cutting and pressing, the cutter and the pressing block have a rotating downward pressing action. In the actual production process, this rotating action will cause the welding interconnection bar to rub and produce torsional deformation around the center axis. Whether rubbing or deformation, the interconnection bar cannot be accurately placed in the predetermined welding position, resulting in poor welding. Summary of the Invention

[0005] The purpose of the present invention is to provide a method and device for processing welding interconnection bars, aiming to solve the problem that each short interconnection bar is about 170 cm long, and the loss is about 5.5% to 6% calculated by cutting 10 cm every 170 cm, which is a large loss; at the same time, the existing welding interconnection bar processing scheme adopts an overall design method, and due to process requirements, the interconnection bar processing device needs to be disassembled and maintained or replaced frequently. When a part of it fails and needs maintenance or replacement, the part needs to be disassembled as a whole for maintenance or replacement, which not only requires a large workload but also causes a huge waste of cost; and the existing welding interconnection bar cutting and pressing structure adopts a cylinder plus connecting rod structure. When cutting and pressing, the cutter and the pressing block have a rotating and pressing action. In the actual production process, this rotation action will cause the welding interconnection bar to rub and produce torsional deformation around the center axis. Whether rubbing or deformation, the interconnection bar cannot be accurately placed in the predetermined welding position, resulting in a technical problem of poor welding.

[0006] To achieve the above-mentioned purpose, the present invention adopts a method and device for processing welded interconnected strips, including a first frame, multiple second frames, a third frame and a spacing drive mechanism, the second frame is composed of two auxiliary frames and two fastening plates, and a connecting plate is provided below the first frame, the third frame and one of the auxiliary frames, and two longitudinal sliders and a drive mechanism are provided below the connecting plate, and the first frame, multiple second frames and the third frame are respectively slidably set on the spacing drive mechanism through the longitudinal sliders, and the drive mechanism is set on one side of the spacing drive mechanism.

[0007] Wherein, the first frame, the two auxiliary frames and the third frame are all provided with transverse guide rails, slot plates and translation cylinders, two transverse sliders are slidingly provided on the transverse guide rails, and movable seats are provided on the two transverse sliders, and a fixed plate is provided on the movable seat, and the end face of the fixed plate is provided with a pressure claw mechanism, and the fixed plate is driven by the translation cylinder, and a limit plate and a plurality of guide slots are provided on the slot plate, and a plurality of limit slots are provided on the limit plate, and the other end faces of the fixed plates of the first frame and the two auxiliary frames are all provided with a lower cutter lifting cylinder and a plurality of upper cutter bodies, and a lower cutter sliding plate is provided at the output end of the lower cutter lifting cylinder, and a plurality of lower cutter bodies are provided on the lower cutter sliding plate.

[0008] Wherein, the transverse guide rail is located at the inner bottom of the first frame, the two auxiliary frames and the third frame, the slot plate is located above the first frame, the two auxiliary frames and the third frame, and the translation motor is located on the inner side of the first frame, the two auxiliary frames and the third frame.

[0009] Among them, the other end surface of the fixed plate of the first frame and the two auxiliary frames is also provided with two lower cutter lifting guide rails, and both ends of the sliding plate are provided with lower cutter lifting sliders, and the lower cutter lifting sliders are sleeved on the lower cutter lifting slide rails.

[0010] Among them, the pressure claw mechanism includes a pressure claw sliding plate, two pressure claw lifting guide rails and a pressure claw lifting cylinder, a plurality of pressure claw bodies are arranged on the pressure claw sliding plate, and two pressure claw lifting sliders are arranged on the end face of the pressure claw sliding plate, the pressure claw sliding plate is fixedly connected to the pressure claw lifting cylinder and is located at the output end of the pressure claw lifting cylinder, the two pressure claw lifting guide rails are respectively fixedly connected to the fixed plate and are located on the end face of the fixed plate, the pressure claw lifting cylinder is fixedly connected to the fixed plate and is located on the end face of the fixed plate, and the two pressure claw lifting sliders are respectively mounted on the corresponding pressure claw lifting guide rails.

[0011] Wherein, the plurality of upper cutter bodies and the plurality of pressure claw bodies are all higher than the corresponding guide grooves, and the plurality of lower cutter bodies are all lower than the corresponding guide grooves.

[0012] In which, the spacing drive mechanism includes two spacing guide rails, a rack plate and a base plate, the two spacing guide rails are respectively fixedly connected to the base plate and are located above the base plate, and multiple second frames and the third frames are respectively slidably arranged on the corresponding spacing guide rails through the longitudinal sliders, the rack plate is fixedly connected to the base plate and is located on one side of the base plate, and the drive mechanism is arranged on the rack plate.

[0013] In which, the driving mechanism includes a gear, a motor and a bracket, the gear is fixedly connected to the motor and is located at the output end of the motor, and the gear is engaged with the rack plate and is located on the rack plate, the motor is fixedly connected to the bracket and is located below the bracket, and the gear extends into the bracket, and the bracket is fixedly connected to the connecting plate and is located below the connecting plate.

[0014] The pressing and cutting actions of the pressing claw body and the lower cutter body are in a vertical state, and are perpendicular to the direction of the slot plate and perform linear motion.

[0015] The present invention further provides a method for processing a welded interconnection bar, which is applied to the aforementioned welded interconnection bar processing device and comprises the following steps:

[0016] The welding interconnection strips are laid in the corresponding guide grooves, and the upper cutter bodies, the lower cutter bodies and the pressure claw bodies are translated toward the guide grooves under the action of the translation cylinder and cover the corresponding welding interconnection strips;

[0017] Then, the plurality of pressing claw bodies are controlled to press down the interconnected welding strip, and then the lower cutter body is pushed upward by the lower cutter lifting cylinder to move, thereby cutting off the interconnected welding strip;

[0018] After the welding interconnection strip is cut off, the lower cutter body descends, and the states of the plurality of pressing claw bodies remain unchanged;

[0019] Based on the driving mechanism, the first frame, multiple second frames and the third frame are moved to the specified distance respectively, and then the multiple pressure claw bodies are raised, and then the multiple pressure claw bodies and the multiple upper cutter bodies are controlled to move horizontally and reset to make room for the next paving.

[0020] The present invention provides a method and device for processing welding interconnection strips, including a first frame, multiple second frames, a third frame and a spacing drive mechanism, the second frame consisting of two auxiliary frames and two fastening plates, the first frame, the third frame and one of the auxiliary frames are each provided with a connecting plate below, two longitudinal sliders and a driving mechanism are provided below the connecting plate, the first frame, multiple second frames and the third frame are respectively slidably arranged on the spacing drive mechanism through the longitudinal sliders, and the driving mechanism is arranged on one side of the spacing drive mechanism, the spacing between the first frame, the second frame and the third frame of this design can be adjusted according to actual needs under the action of the driving mechanism, and the welding interconnection strip is cut off by the device, thereby avoiding the problem of material waste caused by cutting the welding interconnection strip, and saving 5% of the cost of welding interconnection strips. The method effectively solves the problem that each short interconnection bar is about 170 cm long. Calculated by cutting 10 cm every 170 cm, the loss is about 5.5-6%, which is a relatively large loss. At the same time, the existing welding interconnection bar processing solution adopts an overall design method, and due to process requirements, the interconnection bar processing device needs to be frequently disassembled and maintained or replaced. When a part of it fails and needs maintenance or replacement, the part needs to be disassembled as a whole for maintenance or replacement, which not only requires a lot of work but also causes a huge waste of cost. In addition, the existing welding interconnection bar cutting and pressing structure adopts a cylinder plus connecting rod structure. When cutting and pressing, the cutter and the pressing block have a rotating downward pressing action. In the actual production process, this rotating action will cause the welding interconnection bar to rub and produce torsional deformation around the central axis. Whether rubbing or deformation, the interconnection bar cannot be accurately placed in the predetermined welding position, resulting in technical problems such as poor welding. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0022] Figure 1 It is a three-dimensional stereogram of the welding interconnection bar processing method and device of the present invention.

[0023] Figure 2 It is a structural schematic diagram of the first frame in the method and device for processing welded interconnect strips of the present invention.

[0024] Figure 3 The present invention Figure 2 A partial enlarged view of point A in the middle.

[0025] Figure 4 It is a structural schematic diagram of the second frame in the method and device for processing welding interconnection bars of the present invention.

[0026] Figure 5 It is a structural schematic diagram of the third frame in the method and device for processing welding interconnection strips of the present invention.

[0027] Figure 6 It is a schematic diagram of the internal structure of the driving mechanism in the welding interconnection bar processing method and device of the present invention.

[0028] Figure 7 It is a top view of the method and device for processing soldered interconnect strips of the present invention.

[0029] Figure 8 It is a schematic diagram of the disassembly of the first frame in the method and device for processing welding interconnection bars of the present invention.

[0030] Figure 9 This is a schematic diagram of the disassembly of the third frame in the method and device for processing welded interconnection bars of the present invention.

[0031] Figure 10 It is a schematic diagram of the disassembly of the auxiliary frame in the welding interconnection bar processing method and device of the present invention.

[0032] Figure 11 The present invention is a flowchart of the steps of a method for processing welding interconnection strips.

[0033] 1-first frame, 2-auxiliary frame, 3-third frame, 4-fastening plate, 5-transverse guide rail, 6-slot plate, 7-translational cylinder, 8-transverse slider, 9-moving seat, 10-fixed plate, 11-limiting plate, 12-guide groove, 13-limiting groove, 14-connecting plate, 15-longitudinal slider, 16-lower cutter lifting cylinder, 17-upper cutter body, 18-lower cutter sliding plate, 19-lower cutter body, 20-lower cutter lifting guide rail, 21-lower cutter lifting slider, 22-pressure claw sliding plate, 23-pressure claw lifting guide rail, 24-pressure claw lifting cylinder, 25-pressure claw body, 26-pressure claw lifting slider, 27-pitch guide rail, 28-rack plate, 29-bottom plate, 30-gear, 31-motor, 32-bracket. DETAILED DESCRIPTION

[0034] The following describes embodiments of the present invention in detail, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and are not to be construed as limiting the present invention.

[0035] See also Figures 1 to 11 The present invention provides a method and device for processing welded interconnection strips, comprising a first frame 1, multiple second frames, a third frame 3 and a spacing drive mechanism, wherein the second frame is composed of two auxiliary frames 2 and two fastening plates 4, and a connecting plate 14 is provided below the first frame 1, the third frame 3 and one of the auxiliary frames 2, and two longitudinal sliders 15 and a drive mechanism are provided below the connecting plate 14, and the first frame 1, multiple second frames and the third frame 3 are respectively slidably provided on the spacing drive mechanism through the longitudinal sliders 15, and the drive mechanism is provided on one side of the spacing drive mechanism.

[0036] In this embodiment, the distance between the first frame 1, the second frame and the third frame 3 of the present design can be adjusted according to actual needs under the action of the driving mechanism. The welding interconnection strip is cut off by the device, thereby avoiding the problem of material waste caused by the cutting of the welding interconnection strip, and saving 5% of the cost of the welding interconnection strip. In this way, the problem of each short interconnection strip being about 170 cm long and cutting 10 cm every 170 cm is effectively solved, and the loss is about 5.5-6%, which is a large loss. At the same time, the existing welding interconnection strip processing solution adopts an overall design method, and due to process requirements, it needs to be frequently The interconnection bar processing device is disassembled for maintenance or replacement. When a part of it fails and needs maintenance or replacement, the entire part needs to be disassembled for maintenance or replacement, which not only requires a lot of work but also causes a huge waste of cost. In addition, the existing welding interconnection bar cutting and pressing structure adopts a cylinder plus connecting rod structure. When cutting and pressing, the cutter and the pressing block have a rotating downward pressing action. In the actual production process, this rotating action will cause the welding interconnection bar to rub and produce torsional deformation around the central axis. Whether rubbing or deformation, the interconnection bar cannot be accurately placed in the predetermined welding position, resulting in technical problems of poor welding.

[0037] Furthermore, the first frame 1, the two auxiliary frames 2 and the third frame 3 are all provided with transverse guide rails 5, slot plates 6 and translation cylinders 7, two transverse sliders 8 are slidingly provided on the transverse guide rails 5, and the two transverse sliders 8 are provided with moving seats 9, and a fixed plate 10 is provided on the moving seat 9. The end face of the fixed plate 10 is provided with a pressure claw mechanism, and the fixed plate 10 is driven by the translation cylinder 7, and a limiting plate 11 and a plurality of guide grooves 12 are provided on the slot plate 6, and the limiting plate 11 has a plurality of limiting grooves 13. The other end faces of the fixed plates 10 of the first frame 1 and the two auxiliary frames 2 are all provided with a lower cutter lifting cylinder 16 and a plurality of upper cutter bodies 17, and the output end of the lower cutter lifting cylinder 16 is provided with a lower cutter sliding plate 18, and the lower cutter sliding plate 18 is provided with a plurality of lower cutter bodies 19.

[0038] Furthermore, the transverse guide rail 5 is located at the inner bottom of the first frame 1, the two auxiliary frames 2 and the third frame 3, the groove plate 6 is located above the first frame 1, the two auxiliary frames 2 and the third frame 3, and the translation motor 31 is located on the inner side of the first frame 1, the two auxiliary frames 2 and the third frame 3.

[0039] Furthermore, the other end surface of the fixed plate 10 of the first frame 1 and the two auxiliary frames 2 is also provided with two lower cutter lifting guide rails 20, and both ends of the sliding plate are provided with lower cutter lifting sliders 21, and the lower cutter lifting sliders 21 are mounted on the lower cutter lifting slide rails.

[0040] Furthermore, the pressure claw mechanism includes a pressure claw sliding plate 22, two pressure claw lifting guide rails 23 and a pressure claw lifting cylinder 24, a plurality of pressure claw bodies 25 are provided on the pressure claw sliding plate 22, and two pressure claw lifting sliders 26 are provided on the end face of the pressure claw sliding plate 22, the pressure claw sliding plate 22 is fixedly connected to the pressure claw lifting cylinder 24, and is located at the output end of the pressure claw lifting cylinder 24, the two pressure claw lifting guide rails 23 are respectively fixedly connected to the fixed plate 10, and are located on the end face of the fixed plate 10, the pressure claw lifting cylinder 24 is fixedly connected to the fixed plate 10, and is located on the end face of the fixed plate 10, and the two pressure claw lifting sliders 26 are respectively mounted on the corresponding pressure claw lifting guide rails 23.

[0041] In this embodiment, by starting the pressure claw lifting cylinder 24, the pressure claw lifting cylinder 24 pushes the pressure claw sliding plate 22 upward, and the multiple pressure claw bodies 25 move in the direction away from the guide groove 12, which is convenient for the entry of the welding interconnection strip. Then, the pressure claw sliding plate 22 is moved downward by the pressure claw lifting cylinder 24, so that the multiple pressure claw bodies 25 move downward and press the welding interconnection strip, thereby achieving the clamping and release of the welding interconnection strip, ensuring that the welding interconnection strip will not shift during the cutting process, thereby improving the accuracy and stability of the cutting.

[0042] Furthermore, the plurality of upper cutter bodies 17 and the plurality of pressing claw bodies 25 are all higher than the corresponding guide grooves 12 , and the plurality of lower cutter bodies 19 are all lower than the corresponding guide grooves 12 .

[0043] In this embodiment, this structure can ensure that the cutting and pressing operations can act on the welding interconnection strip at the same time, thereby improving the cutting efficiency and accuracy.

[0044] Furthermore, the spacing drive mechanism includes two spacing guide rails 27, a rack plate 28 and a base plate 29, the two spacing guide rails 27 are respectively fixedly connected to the base plate 29 and are located above the base plate 29, and the plurality of second frames and the third frame 3 are respectively slidably arranged on the corresponding spacing guide rails 27 through the longitudinal slider 15, the rack plate 28 is fixedly connected to the base plate 29 and is located on one side of the base plate 29, and the driving mechanism is arranged on the rack plate 28.

[0045] Furthermore, the driving mechanism includes a gear 30, a motor 31 and a bracket 32, the gear 30 is fixedly connected to the motor 31 and is located at the output end of the motor 31, and the gear 30 is engaged with the rack plate 28 and is located on the rack plate 28, the motor 31 is fixedly connected to the bracket 32 ​​and is located below the bracket 32, and the gear 30 extends into the bracket 32, and the bracket 32 ​​is fixedly connected to the connecting plate 14 and is located below the connecting plate 14.

[0046] In this embodiment, by starting the motor 31, the motor 31 drives the gear 30 to rotate, and the connecting plate 14 moves under the action of the rack plate 28 and the gear 30, thereby realizing spacing adjustment, and then the spacing between the welded interconnected strips can be accurately adjusted to meet different truncation requirements.

[0047] Furthermore, the pressing and cutting actions of the pressing claw body 25 and the lower cutter body 19 are in a vertical state, and are perpendicular to the direction of the slot plate 6 and perform linear motion.

[0048] In the invention, the welding interconnection strip is first laid in the corresponding guide groove 12, and the multiple upper cutter bodies 17 and the multiple lower cutter bodies 19 are moved toward the position of the guide groove 12 under the action of the translation cylinder 7 and cover the guide groove 12. At this time, the upper cutter body 17, the lower cutter body 19 and the guide groove 12 restrict the welding interconnection strip from four directions of up, down, left and right. Then, the lower cutter lifting cylinder 16 pushes the lower cutter body 19 upward to move and cut off the welding interconnection strip. After the welding interconnection strip is cut off, the lower cutter body 19 descends, and then the upper cutter body 17 and the lower cutter body 19 move to the left. Repeating the above operation process can continuously cut off the welding interconnection strip.

[0049] In the invention, first, the pressure claw body 25 presses and fixes the welding interconnection strip to prevent the welding interconnection strip from deviating during cutting. Secondly, after the cutting is completed, the welding interconnection strip is spaced apart. The first frame 1, multiple second frames and the third frame 3 move to both sides with the welding interconnection strip. The pressure claw body 25 fixes the welding interconnection strip to prevent the welding interconnection strip from slipping and causing uneven spacing. The fixed plate 10 is slidably connected to the frame through the transverse slider 8 and the transverse guide rail 5, and the frame can push the fixed plate 10 to move back and forth in the horizontal direction under the translation cylinder 7, thereby driving the pressure claw body 25, multiple upper cutter bodies 17 and the lower cutter body 19 to move back and forth in the horizontal direction to make room for laying the welding interconnection strip. The pressure claw body 25 is slidably connected to the pressure claw lifting guide rail 23 and the fixed plate 10 through the pressure claw lifting slider 26, and the pressure claw body 25 reciprocates up and down under the action of the pressure claw lifting cylinder 24 to press the welding interconnection strip.

[0050] The present invention further provides a method for processing a welded interconnection bar, which is applied to the aforementioned welded interconnection bar processing device and comprises the following steps:

[0051] S1: Laying the interconnected welding strips in the corresponding guide grooves 12, and the upper cutter bodies 17, the lower cutter bodies 19, and the pressure claw bodies 25 are translated toward the guide grooves 12 under the action of the translation cylinder 7, and cover the corresponding interconnected welding strips;

[0052] S2: Control the plurality of pressing claw bodies 25 to press down the interconnected welding strips, and then push the lower cutter body 19 upwards based on the lower cutter lifting cylinder 16 to cut off the interconnected welding strips;

[0053] S3: After the interconnected welding strip is cut off, the lower cutter body 19 descends, and the states of the plurality of pressing claw bodies 25 remain unchanged;

[0054] S4: Based on the driving of the driving mechanism, the first frame 1, multiple second frames and the third frame 3 are moved to the specified distance respectively, and then the multiple pressure claw bodies 25 are raised, and then the multiple pressure claw bodies 25 and the multiple upper cutter bodies 17 are controlled to move horizontally and reset to make room for the next paving.

[0055] In the present invention, the design scheme makes parts with the same function and structure into separate modules, and the modules are assembled together to realize maintenance or replacement of the separate modules. The production and processing of the modules are also simpler, and the modular design can reduce a lot of workload and maintenance costs. At the same time, the linear motion cutting and pressing method of the present design constrains and cuts the interconnection strips in one direction to ensure the shape of the interconnection strips is intact, so as to improve the welding yield. In this way, the problem that each short interconnection strip is about 170 cm long and is calculated by cutting 10 cm every 170 cm, the loss is about 5.5-6%, which is a large loss. At the same time, the existing welding interconnection strip processing scheme adopts an overall design method, and Due to process requirements, the interconnection bar processing device needs to be frequently disassembled, maintained or replaced. When a part of it fails and needs maintenance or replacement, the entire part needs to be disassembled for maintenance or replacement, which not only requires a lot of work but also causes a huge waste of cost. In addition, the existing welding interconnection bar cutting and pressing structure adopts a cylinder plus connecting rod structure. When cutting and pressing, the cutter and the pressing block have a rotating downward pressing action. In the actual production process, this rotating action will cause the welding interconnection bar to rub and produce torsional deformation around the center axis. Whether rubbing or deformation, the interconnection bar cannot be accurately placed in the predetermined welding position, resulting in technical problems of poor welding.

[0056] In the present invention, the pressure claw body 25 and the lower cutter body 19 on the first frame 1 press and cut an odd number of welding interconnection bars; the pressure claw body 25 and the lower cutter body 19 on the second frame press and cut an even number of welding interconnection bars; the pressure claw body 25 and the lower cutter body 19 on one of the auxiliary frames 2 of the second frame press and cut an even number of welding interconnection bars, and the pressure claw body 25 and the lower cutter body 19 on the other auxiliary frame 2 press and cut an odd number of welding interconnection bars; the pressure claw body 25 on the third frame 3 presses an odd and even number of welding interconnection bars. This design adopts a modular design instead of making the two auxiliary frames 2 on the second frame into a whole in order to reduce the maintenance and replacement workload and processing costs. At the same time, the cutting action adopted in this design is vertical lifting and there is no rotation action to ensure that the welding interconnection bars do not rub or twist during pressing and cutting, thereby greatly improving the welding yield.

[0057] The above disclosure is only a preferred embodiment of the present invention, and certainly cannot be used to limit the scope of the rights of the present invention. Ordinary technicians in this field can understand that all or part of the processes of the above embodiment and equivalent changes made in accordance with the claims of the present invention are still within the scope of the invention.

Claims

1. A device for processing welding interconnection bars, characterized in that: The invention comprises a first frame, a plurality of second frames, a third frame and a spacing drive mechanism, wherein the second frame is composed of two auxiliary frames and two fastening plates, a connecting plate is provided below the first frame, the third frame and one of the auxiliary frames, two longitudinal sliders and a drive mechanism are provided below the connecting plate, the first frame, the plurality of second frames and the third frame are respectively slidably arranged on the spacing drive mechanism through the longitudinal sliders, and the drive mechanism is arranged on one side of the spacing drive mechanism, and the first frame, the two auxiliary frames and the third frame are all provided with transverse guide rails, grooves Plate and translation cylinder, two transverse sliders are slidingly provided on the transverse guide rail, a movable seat is provided on the two transverse sliders, a fixed plate is provided on the movable seat, the end surface of the fixed plate is provided with a pressure claw mechanism, and the fixed plate is driven by the translation cylinder, a limit plate and a plurality of guide grooves are provided on the slot plate, and a plurality of limit grooves are provided on the limit plate. The other end surfaces of the fixed plates of the first frame body and the two auxiliary frames are provided with a lower cutter lifting cylinder and a plurality of upper cutter bodies, the output end of the lower cutter lifting cylinder is provided with a lower cutter sliding plate, and a plurality of lower cutter bodies are provided on the lower cutter sliding plate.

2. The device for processing welding interconnection bars according to claim 1, wherein: The transverse guide rail is located at the inner bottom of the first frame, the two auxiliary frames and the third frame, the slot plate is located above the first frame, the two auxiliary frames and the third frame, and the translation motor is located on the inner side of the first frame, the two auxiliary frames and the third frame.

3. The device for processing interconnection bars according to claim 2, wherein: Two lower cutter lifting guide rails are further provided on the other end surfaces of the fixed plates of the first frame and the two auxiliary frames, lower cutter lifting sliders are provided at both ends of the sliding plate, and the lower cutter lifting sliders are sleeved on the lower cutter lifting slide rails.

4. The device for processing interconnection bars according to claim 3, wherein: The pressure claw mechanism includes a pressure claw sliding plate, two pressure claw lifting guide rails and a pressure claw lifting cylinder. A plurality of pressure claw bodies are arranged on the pressure claw sliding plate. Two pressure claw lifting sliders are arranged on the end face of the pressure claw sliding plate. The pressure claw sliding plate is fixedly connected to the pressure claw lifting cylinder and is located at the output end of the pressure claw lifting cylinder. The two pressure claw lifting guide rails are respectively fixedly connected to the fixed plate and are located on the end face of the fixed plate. The pressure claw lifting cylinder is fixedly connected to the fixed plate and is located on the end face of the fixed plate, and the two pressure claw lifting sliders are respectively sleeved on the corresponding pressure claw lifting guide rails.

5. The device for processing interconnection bars according to claim 4, wherein: The plurality of upper cutter bodies and the plurality of pressure claw bodies are all higher than the corresponding guide grooves, and the plurality of lower cutter bodies are all lower than the corresponding guide grooves.

6. The device for processing interconnection bars according to claim 5, wherein: The spacing drive mechanism includes two spacing guide rails, a rack plate and a base plate. The two spacing guide rails are respectively fixedly connected to the base plate and are located above the base plate, and multiple second frames and third frames are respectively slidably arranged on the corresponding spacing guide rails through the longitudinal sliders. The rack plate is fixedly connected to the base plate and is located on one side of the base plate, and the drive mechanism is arranged on the rack plate.

7. The device for processing interconnection bars according to claim 6, wherein: The driving mechanism includes a gear, a motor and a bracket, the gear is fixedly connected to the motor and is located at the output end of the motor, the gear is engaged with the rack plate and is located on the rack plate, the motor is fixedly connected to the bracket and is located below the bracket, and the gear extends into the bracket, and the bracket is fixedly connected to the connecting plate and is located below the connecting plate.

8. The device for processing interconnection bars according to claim 7, wherein: The pressing and cutting actions of the pressing claw body and the lower cutter body are in a vertical state, and are perpendicular to the direction of the slot plate and perform linear motion.

9. A method for processing a welded interconnection bar, applied to the welded interconnection bar processing device according to claim 8, characterized in that: The steps include: The welding interconnection strips are laid in the corresponding guide grooves, and the upper cutter bodies, the lower cutter bodies and the pressure claw bodies are translated toward the guide grooves under the action of the translation cylinder and cover the corresponding welding interconnection strips; Then, the plurality of pressing claw bodies are controlled to press down the interconnected welding strip, and then the lower cutter body is pushed upward by the lower cutter lifting cylinder to move, thereby cutting off the interconnected welding strip; After the welding interconnection strip is cut off, the lower cutter body descends, and the states of the plurality of pressing claw bodies remain unchanged; Based on the driving mechanism, the first frame, multiple second frames and the third frame are moved to the specified distance respectively, and then the multiple pressure claw bodies are raised, and then the multiple pressure claw bodies and the multiple upper cutter bodies are controlled to move horizontally and reset to make room for the next paving.

Citation Information

Patent Citations

  • An interconnected strip conveyor cutting device

    CN102263163A

  • Sectional shearing hydraulic gate type plate shearing machine

    CN107775083A

  • Section bar mounting hole machining device based on portal frame structure

    CN213645943U