A copper bar processing device for convenient feeding

By designing a copper tray processing device including conveyor belt, pallet rack and rack, using technical means such as hydraulic parts and flexible racks, the existing copper tray processing device is inefficient and easy to fall off, and the automatic loading and smooth transportation of copper trays are achieved, and processing efficiency and product quality are improved.

CN119429642BActive Publication Date: 2025-06-03WETOWN ELECTRIC GRP CO LTD
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Patent Information

Application Number
CN202411938130.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-06-03
Estimated Expiration
2044-12-26

AI Technical Summary

Technical Problem

The existing copper flask processing equipment relies on manual loading and is inefficient. In addition, mechanical copper flasks are prone to accelerate and fold sections during loading, resulting in unstable transportation and the copper flasks are at risk of falling off.

Method used

A copper tray processing device including transmission belts, pallet racks and racks was designed, and the copper tray processing device was used to achieve automatic loading and smooth transport of copper trays using technical means such as hydraulic parts, guide rails, flexible frames and constraint modules.

Benefits of technology

Through the synergy between the hydraulic parts and the flexible frame, the copper strip remains stable during the loading process, prevents falling off, improves processing efficiency and reduces the risk of surface wear of the copper strip.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a copper bar processing device for convenient loading, comprising a conveyor belt, a tray rack and a frame, wherein the tray rack is arranged on one side of the conveyor belt, the frame is arranged on the side of the conveyor belt away from the tray rack, a guide rail is arranged on the frame, and a guide table is slidably connected to the guide rail. Under the action of a hydraulic component, the copper bar processing device enables the linkage table to be linked to the position of the copper bar, and under the action of a main channel, the gaseous medium in a hollow seat can be guided to the outside, so that the inner empty bag will be concave, and the part of the flexible frame facing the copper bar will be curved. After the operation of the constraint module is completed, the main channel is reversely controlled, and the inner empty bag bulges at this time, causing the flexible frame to flip inward. Under the action of the triangular seat, the two ends of the copper bar can be guided to the U-shaped groove position, and under the action of the U-shaped pad, the copper bar can be introduced into the U-shaped groove for constraint, thereby improving the stability of the copper bar during loading.
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Description

Technical Field

[0001] The present invention belongs to the technical field of copper bar processing, and specifically relates to a copper bar processing device convenient for loading materials. Background Art

[0002] Copper bars, also known as copper busbars or copper busbars, play a role in transporting current and connecting electrical equipment in a circuit. In the production process of copper bars, it is necessary to first place the copper material raw materials on a conveyor, then punch the copper materials, and then install screws on the processed copper parts;

[0003] Common copper bar processing devices use manual loading of copper bars, which is inefficient and affects the efficiency of copper bar processing. However, during the loading process of mechanical copper bars, there will be acceleration or breakage, resulting in an unstable phenomenon during the transfer process, and there is a risk of copper bars falling off;

[0004] In view of this, a copper bar processing device convenient for loading materials is proposed. Summary of the Invention

[0005] The purpose of this part is to outline some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this part, as well as in the abstract and title of the present application, to avoid obscuring the purpose of this part, the abstract, and the title. However, such simplifications or omissions shall not be used to limit the scope of the present invention.

[0006] In view of the following technical problems existing in the prior art: Common copper bar processing devices use manual loading of copper bars, which is inefficient and affects the efficiency of copper bar processing. However, during the loading process of mechanical copper bars, there will be acceleration or breakage, resulting in an unstable phenomenon during the transfer process, and there is a risk of copper bars falling off.

[0007] To solve the above technical problems, the present invention provides the following technical solution: A copper bar processing device convenient for loading materials, including a conveyor belt, a tray rack, and a frame. The tray rack is arranged on one side of the conveyor belt, the frame is installed on the side of the conveyor belt away from the tray rack, a guide rail is configured on the frame, and a guide table is slidably docked in the guide rail;

[0008] The center position of the guide table is docked with a first hydraulic component, the output part of the first hydraulic component is provided with an air separation seat, a linkage table is arranged in parallel on the back of the air separation seat, the air separation seat and the linkage table are docked by a bearing column, guide grooves are reserved in a mirror image on the linkage table, a guide seat is slidably docked in the guide grooves, a first hollow seat is arranged on the mirror axis of the linkage table, a flexible frame is arranged on the back of the guide seat, a transverse channel is docked around the first hollow seat, an outer channel is slidably docked on the circumferential surface of the transverse channel, and a vertical channel is docked on the outer channel;

[0009] A central control module is installed between the hollow seat 1 and the partition seat, a constraint module is installed on the back of the hollow seat 1, and the constraint module includes a branch channel, a hollow seat 2 and a flexible arc bucket. The branch channel is installed below the hollow seat 1, and the edge of the hollow seat 2 is connected to the back of the linkage platform by means of mirror-distributed pillars, and the branch channel is connected to the hollow seat 2;

[0010] A motion module is installed on the linkage table, a protection module is installed on the outer circumference of the outer channel, and the protection module includes a linkage frame, a guide plate and a soft pad. The linkage frame is installed at the outward portion of the outer channel, and another portion of the linkage frame is connected to the edge of the guide seat.

[0011] As an optimal technical solution for a copper busbar processing device that facilitates loading, the mirror-distributed flexible frames are continuously provided with inner empty bags on their back sides, and several of the inner empty bags are docked with each other through guide channels. The inner empty bags on the upper layer are docked with vertical channels, and the vertical channels pass through the middle of the guide seat.

[0012] As an optimal technical solution for a copper busbar processing device that is convenient for loading, the central control module includes a fan and a main channel. The fan is connected to the back of the partition seat, the main channel is connected to the lower position of the fan, and the main channel is connected to the hollow seat.

[0013] As an optimal technical solution for a copper busbar processing device that facilitates loading, an opening and closing switch is installed at the middle section of the docking position between the 301) and the hollow seat 2, the flexible arc-shaped bucket is docked at the lower position of the hollow seat 2, and a docking frame is installed at the inner edge of the opening of the hollow seat 2 facing the flexible arc-shaped bucket, and a switch is placed at the center of the docking frame, and the axis of the switch coincides with the axis of the hollow seat 2.

[0014] As an optimal technical solution for a copper busbar processing device that facilitates loading, a carrying plate is installed at the opening of the flexible arc-shaped bucket facing the copper busbar, a transmission hole 1 is reserved on the carrying plate, a smooth floppy disk is installed on the back of the carrying plate, a transmission hole 2 is reserved on the smooth floppy disk, and the transmission hole 2 is directly opposite to the transmission hole 1.

[0015] As an optimal technical solution for a copper busbar processing device that facilitates loading, a cross frame is installed at the edge of the hollow seat 2, and a guide column is slidably docked on the cross frame. The lower position of the guide column touches the supporting plate, and an expansion plate is installed above the guide column. The guide column is located at the upper section of the cross frame and is surrounded by an elastic member.

[0016] As a preferred technical solution for a copper busbar processing device that facilitates material loading, a U-shaped groove is milled on the inner edge of the flexible frame, and a U-shaped pad is installed on the inner edge of the U-shaped groove.

[0017] As a preferred technical solution of a copper bar processing device for convenient feeding, a triangular seat is installed below the flexible frame near the U-shaped groove.

[0018] As a preferred technical solution of a copper bar processing device for convenient feeding, the motion module includes a linkage shaft and a second hydraulic component. The second hydraulic component is installed at the edge of the linkage table in a mirror image manner. The linkage shaft is connected to the output position of the second hydraulic component. The linkage shaft is located in the guiding groove, and the linkage shaft is connected to the guiding seat.

[0019] As a preferred technical solution of a copper bar processing device for convenient feeding, guiding shafts are installed on both sides of the hollow seat one close to the horizontal channel. The guiding disc is slidably connected to the periphery of the horizontal channel. The guiding shafts pass through the guiding disc, and the soft pad is installed between the guiding disc and the outer channel.

[0020] Advantages of the present invention:

[0021] 1. Under the action of the first hydraulic component, the linkage table of this copper bar processing device is linked to the position of the copper bar. Under the action of the main channel, the gaseous medium in the hollow seat one can be guided to the outside. Under the horizontal channel, outer channel and vertical channel, the inner air bag will be concave, and the part of the flexible frame facing the copper bar will have an arc change, so that the copper bars are located between the mirror-image flexible frames. After the operation of the constraint module is completed, reverse control the main channel. At this time, the inner air bag bulges, causing the flexible frame to turn inward. Under the action of the triangular seat, the two ends of the copper bar can be guided to the position of the U-shaped groove. Under the action of the U-shaped pad, the copper bar can be introduced into the U-shaped groove for constraint, improving the stability of the copper bar during feeding.

[0022] 2. When the first hydraulic component of this copper bar processing device moves towards the position of the copper bar, during this process, the smooth flexible disc will first touch the copper bar. After the flexible arc-shaped bucket deforms, the bearing disc acts on the lower position of the switch. Under the action of opening and closing, the internal space of the hollow seat one can communicate with the internal space of the hollow seat two. Under the action of vacuum, the copper bar will be acted on the smooth flexible disc. When the flexible arc-shaped bucket deforms to the set value, reverse control the opening and closing, so that a vacuum state can always be maintained between the flexible arc-shaped bucket and the copper bar, ensuring the stability of the copper bar during feeding and preventing the copper bar from falling off.

[0023] 3. Due to the gradual bulging of the inner air bag and the flexibility of the flexible frame of this copper bar processing device, hard contact with the edge of the copper bar can be prevented, and the situation of surface wear of the copper bar caused by hard collision during the feeding process of the copper bar can be prevented.

[0024] 4. Under the action of the second hydraulic component and the linkage shaft of this copper bar processing device, the guiding seat slides in the guiding groove, thereby changing the position of the flexible frame, which is applied to the use of copper bars with different specifications.

[0025] 5. Under the action of the linkage frame, the outer channel of this copper bar processing device moves together with the guide seat. When the outer channel slides, the soft pad and the guiding disc move together with it. The soft pad can prevent the medium from overflowing at the docking place of the outer channel and the transverse channel, so that when the flexible frame is applied to copper bars of different specifications, the overall operation can be ensured to be stable and smooth.

[0026] Other features and advantages of the present invention will be described in the subsequent specification, and part of them will be obvious from the specification or understood by implementing the present invention. The objectives and other advantages of the present invention can be achieved and obtained through the structures specifically pointed out in the specification and the drawings. Brief Description of the Drawings

[0027] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:

[0028] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0029] Figure 2 It is a schematic bottom view of the guide rail of the present invention.

[0030] Figure 3 Based on the present invention Figure 2 It is an enlarged schematic diagram of the linkage table.

[0031] Figure 4 Based on the present invention Figure 3 It is a semi-sectional view.

[0032] Figure 5 Based on the present invention Figure 4 It is an enlarged schematic diagram of the hollow seat II.

[0033] Figure 6 Based on the present invention Figure 4 It is an enlarged schematic diagram of the guide seat.

[0034] Figure 7 Based on the present invention Figure 6 It is an enlarged schematic diagram at X.

[0035] Figure 8 Based on the present invention Figure 4 It is an enlarged schematic diagram of the flexible frame.

[0036] Reference Signs:

[0037] 10. Conveyor belt; 11. Pallet rack; 12. Rack; 13. Guide rail; 14. Guide platform; 20. Hydraulic component 1; 21. Spacer seat; 22. Bearing column; 23. Linkage platform; 24. Guide groove; 25. Guide seat; 26. Hollow seat 1; 27. Horizontal channel; 28. External channel; 29. ​​Vertical channel; 30. Flexible frame; 31. Inner empty bag; 32. Guide channel; 40. Fan; 41. Main channel; 50. Branch channel; 51. Start Closing switch; 52, hollow seat 2; 53, flexible arc bucket; 54, docking frame; 55, switch; 56, cross frame; 57, guide column; 58, expansion disk; 59, elastic part; 60, bearing disk; 61, transmission hole 1; 62, smooth floppy disk; 63, transmission hole 2; 70, linkage shaft; 71, hydraulic part 2; 80, linkage frame; 81, guide shaft; 82, guide disk; 83, soft pad; 90, U-shaped groove; 91, U-shaped pad; 92, triangular seat. DETAILED DESCRIPTION

[0038] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.

[0039] In the following description, many specific details are set forth to facilitate a full understanding of the present invention, but the present invention may also be implemented in other ways different from those described herein, and those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0040] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The term "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor is it a separate or selective embodiment that is mutually exclusive with other embodiments.

[0041] Secondly, the present invention is described in detail with reference to the schematic diagram. When describing the embodiments of the present invention in detail, for the sake of convenience, the cross-sectional diagrams showing the device structure will not be partially enlarged according to the general scale, and the schematic diagrams are only examples, which should not limit the scope of protection of the present invention. In addition, in actual production, the three-dimensional dimensions of length, width and depth should be included.

[0042] Example, see Figure 1 and 2 A copper bar processing device for convenient loading includes a conveyor belt 10, a tray rack 11 and a frame 12. The tray rack 11 is arranged on one side of the conveyor belt 10, and the frame 12 is arranged on the side of the conveyor belt 10 away from the tray rack 11. A guide rail 13 is arranged on the frame 12, and a guide platform 14 is slidably connected to the guide rail 13;

[0043] The above can be achieved as follows: By operating the transmission structure of the guiding rail 13, the guiding table 14 moves on the guiding rail 13, and the hydraulic component I 20, the flexible frame 30, and the flexible arc-shaped bucket 53 convey the copper bar from the position of the pallet rack 11 to the conveyor belt 10.

[0044] Refer to Figure 2 、 3 As shown in FIGS. 4, at the central position of the guiding table 14, a hydraulic component I 20 is docked. An air separation seat 21 is arranged at the output part of the hydraulic component I 20. A linkage table 23 is arranged in parallel on the back of the air separation seat 21. The air separation seat 21 and the linkage table 23 are docked by a bearing column 22. Guide grooves 24 are reserved in a mirror image manner on the linkage table 23. A guide seat 25 is slidably docked with the guide grooves 24. A hollow seat I 26 is arranged on the mirror axis of the linkage table 23. A flexible frame 30 is arranged on the back of the guide seat 25. Inner empty bags 31 are continuously arranged on the opposite sides of the mirror-image distributed flexible frames 30. A number of inner empty bags 31 are docked by a guiding channel 32. A vertical channel 29 is docked on the upper-layer inner empty bag 31. The vertical channel 29 passes through the middle of the guide seat 25. A transverse channel 27 is docked around the hollow seat I 26. An outer channel 28 is slidably docked on the peripheral surface of the transverse channel 27. The vertical channel 29 is docked on the outer channel 28. A central control module is arranged at the middle position between the hollow seat I 26 and the air separation seat 21. A constraint module is arranged on the back of the hollow seat I 26. A motion module is arranged on the linkage table 23. A protection module is arranged on the outer peripheral surface of the outer channel 28;

[0045] The above can be achieved as follows: By relying on the motion module to change the spacing of the flexible frame 30, so as to be applied to copper bars of different specifications. Under the action of the hydraulic component I 20, the linkage table 23 is linked to the position of the copper bar. Under the action of the central control module, the gaseous medium in the hollow seat I 26 can be guided to the outside. Under the action of the transverse channel 27, the outer channel 28, and the vertical channel 29, the inner empty bags 31 will be concave. At this time, the flexible frame 30 is affected by the inner empty bags 31, and the part of the flexible frame 30 facing the copper bar will undergo arc deformation. Operate the hydraulic component I 20 to move towards the position of the copper bar. During this process, the constraint module will touch the copper bar first. At this time, the constraint module directly acts on the upper surface of the copper bar. After completing this step of operation, reverse the operation of the hydraulic component I 20 and reverse the operation of the control constraint module, so that the inner empty bags 31 bulge, and the inner edge of the flexible frame 30 turns towards the side of the copper bar to constrain both sides of the copper bar. And as the inner empty bags 31 gradually bulge, it can prevent hard contact with the edge of the copper bar. Under the dual characteristics of the constraint module and the flexible frame 30, the copper bar can be ensured to be stable during feeding, and it can prevent the surface of the copper bar from being worn due to hard collision during the feeding process of the copper bar.

[0046] Refer to Figure 4The central control module includes a fan 40 and a trunk channel 41. The fan 40 is connected to the back of the spacer seat 21, and the trunk channel 41 is connected to the lower position of the fan 40. The trunk channel 41 is connected to the hollow seat 26;

[0047] Through the above content, it can be achieved that the fan 40 can transport the gaseous medium in the hollow seat 26 in two directions by relying on the main channel 41.

[0048] Reference Figure 4 and 5 The constraint module includes a branch channel 50, a hollow seat 26 and a flexible arc-shaped bucket 53. The branch channel 50 is arranged below the hollow seat 1 26. The edge of the hollow seat 26 is connected to the back of the linkage platform 23 by means of pillars distributed in a mirror image. The branch channel 50 is connected to the hollow seat 26. A start-close switch 51 is installed at the middle section of the connection position between the branch channel 50 and the hollow seat 26. The flexible arc-shaped bucket 53 is connected to the lower position of the hollow seat 26. A docking frame 54 is installed at the inner edge of the opening of the hollow seat 26 facing the flexible arc-shaped bucket 53. A switch 55 is arranged at the center of the docking frame 54. The axis of the switch 55 coincides with the axis of the hollow seat 26.

[0049] Through the above content, it can be achieved that: after the flexible frame 30 is arc-shaped, the linkage platform 23 moves toward the position of the copper bar. After the flexible arc-shaped bucket 53 touches the copper bar, as the movement continues, the copper bar will cause deformation of the flexible arc-shaped bucket 53, thereby touching the switch 55. The switch 55 controls the opening and closing of the switch 51, so that the internal space of the hollow seat 1 26 and the internal space of the hollow seat 2 52 can communicate with each other, and the space between the flexible arc-shaped bucket 53 and the copper bar will gradually become vacuum, and the copper bar is constrained on the flexible arc-shaped bucket 53.

[0050] Reference Figure 4 and 5 A carrier plate 60 is installed at the opening of the flexible arc-shaped bucket 53 facing the copper bar, and a transmission hole 61 is reserved on the carrier plate 60. A smooth floppy disk 62 is installed on the back of the carrier plate 60, and a transmission hole 63 is reserved on the smooth floppy disk 62. The transmission hole 63 is directly opposite to the transmission hole 61. A cross frame 56 is installed at the edge of the hollow seat 2 52, and a guide column 57 is slidably connected to the cross frame 56. The lower part of the guide column 57 touches the carrier plate 60, and the upper part of the guide column 57 is installed with an expansion plate 58. The guide column 57 is surrounded by an elastic member 59 outside the upper section of the cross frame 56;

[0051] The following can be achieved: when the linkage platform 23 moves towards the position of the copper bar, the smooth flexible disk 62 will touch the surface of the copper bar. After the flexible arc-shaped bucket 53 deforms, the bearing plate 60 acts on the lower position of the switch 55. Under the action of the opening and closing mechanism 51, the internal space of the first hollow seat 26 and the internal space of the second hollow seat 52 can communicate with each other. Under the action of vacuum, the copper bar will act on the smooth flexible disk 62, and the guide post 57 moves upward. The elastic member 59 will deform. When the elastic member 59 deforms to a preset state, the opening and closing mechanism 51 can be reversely controlled. Structures similar to the switch 55 can be added above the expansion disk 58 according to actual needs, so that a vacuum state can always be maintained between the flexible arc-shaped bucket 53 and the copper bar. After the flexible arc-shaped bucket 53 restrains the copper bar, the first hydraulic member 20 gradually leaves the tray rack 11. Under the action of their own materials, the elastic member 59 and the flexible arc-shaped bucket 53 will jointly eject a part of the copper bar. In a vacuum state, it can ensure that the flexible arc-shaped bucket 53 and the copper bar are always in a butt-jointed relationship, prevent the copper bar from falling off, and ensure that the fan 40 does not need to be driven continuously, saving energy to a certain extent, and also just dealing with the situation that the concave degree of the inner empty bag 31 has an upper limit. When the copper bar gradually leaves the tray rack 11 with the first hydraulic member 20, at the same time, the fan 40 is driven reversely, and the inner empty bag 31 bulges at this time, causing the flexible frame 30 to turn inward. The deformed end of the flexible frame 30 restrains the edge of the copper bar. It should be noted here that when the fan 40 is driven reversely, the opening and closing mechanism 51 is already in a reverse control state. Under the dual action of the flexible frame 30 and the smooth flexible disk 62, it ensures a stable effect when loading the copper bar.

[0052] Referring to Figure 8 , a U-shaped groove 90 is milled on the inner edge of the flexible frame 30, a U-shaped pad 91 is installed on the inner edge of the U-shaped groove 90, and a triangular seat 92 is installed at the lower position of the flexible frame 30 close to the U-shaped groove 90;

[0053] The following can be achieved: when the flexible frame 30 moves towards the edge position of the copper bar, first, under the action of the triangular seat 92, the two ends of the copper bar can be guided to the position of the U-shaped groove 90. Under the action of the U-shaped pad 91, the U-shaped pad 91 is chamfered at the opening, and the copper bar can be introduced into the U-shaped groove 90 for secondary restraint, improving the stability when loading the copper bar.

[0054] Referring to Figure 6 and 7 , the motion module includes a linkage shaft 70 and a second hydraulic member 71. The second hydraulic member 71 is mirror-mounted on the side of the linkage platform 23. The linkage shaft 70 is connected to the output position of the second hydraulic member 71. The linkage shaft 70 is located in the guide groove 24, and the linkage shaft 70 is connected to the guide seat 25;

[0055] Through the above, the following can be achieved: relying on the action of the second hydraulic component 71 and the linkage shaft 70, the guide seat 25 can slide in the guide groove 24, thereby changing the position of the flexible frame 30, which is applied to the use of copper bars with different specifications.

[0056] Referring to Figure 6 and 7 , the protection module includes a linkage frame 80, a guiding disc 82 and a soft pad 83. The linkage frame 80 is installed at the part of the outer channel 28 facing outwards, and the other part of the linkage frame 80 is butted against the edge of the guide seat 25. Guide shafts 81 are installed on both sides of the hollow seat 1 26 close to the transverse channel 27. The guiding disc 82 is slidably butted against the periphery of the transverse channel 27. The guide shafts 81 pass through the guiding disc 82, and the soft pad 83 is installed between the guiding disc 82 and the outer channel 28;

[0057] Through the above, the following can be achieved: relying on the linkage frame 80, the outer channel 28 moves together with the guide seat 25. When the outer channel 28 slides, the soft pad 83 and the guiding disc 82 move together. The soft pad 83 can prevent the medium from overflowing at the butt joint of the outer channel 28 and the transverse channel 27. The guide shafts 81 play a bearing role in the movement of the guiding disc 82, so that when the flexible frame 30 is applied to copper bars of different specifications, the overall operation can be ensured to be stable and smooth.

[0058] It should be understood that in the development process of any actual implementation, in any engineering or design project, a large number of specific implementation decisions can be made. Such development efforts may be complex and time-consuming, but for those ordinary technical personnel who benefit from this disclosure, without excessive experimentation, the development efforts will be a routine work of design, manufacturing and production.

[0059] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered by the scope of the claims of the present invention.

Claims

1. A copper bar processing device that is convenient for loading, characterized in that: The machine comprises a conveyor belt (10), a tray rack (11) and a frame (12), wherein the tray rack (11) is arranged on one side of the conveyor belt (10), and the frame (12) is installed on the side of the conveyor belt (10) away from the tray rack (11). A guide rail (13) is arranged on the frame (12), and a guide platform (14) is slidably connected to the guide rail (13); The center position of the guide platform (14) is docked with a hydraulic component (20), the output portion of the hydraulic component (20) is provided with a spacer seat (21), the back of the spacer seat (21) is provided with a linkage platform (23) in parallel, the spacer seat (21) and the linkage platform (23) are docked with each other by means of a bearing column (22), a guide groove (24) is reserved on the linkage platform (23) in a mirror-like manner, the guide groove (24) is slidably docked with a guide seat (25), a hollow seat (26) is provided on the mirror axis of the linkage platform (23), a flexible frame (30) is provided on the back of the guide seat (25), the periphery of the hollow seat (26) is docked with a transverse channel (27), the circumference of the transverse channel (27) is slidably docked with an outer channel (28), and the outer channel (28) is docked with a vertical channel (29); A central control module is installed between the hollow seat 1 (26) and the partition seat (21); a constraint module is installed on the back of the hollow seat 1 (26); the constraint module includes a branch channel (50), a hollow seat 2 (52) and a flexible arc-shaped bucket (53); the branch channel (50) is installed at a lower position of the hollow seat 1 (26); the edge of the hollow seat 2 (52) is connected to the back of the linkage platform (23) by means of mirror-distributed pillars; the branch channel (50) is connected to the hollow seat 2 (52); A motion module is mounted on the linkage platform (23), and a protection module is mounted on the outer peripheral surface of the outer channel (28), the protection module comprising a linkage frame (80), a guide plate (82) and a soft pad (83), the linkage frame (80) being mounted on the outward portion of the outer channel (28), and another portion of the linkage frame (80) being butted against an edge of the guide seat (25); The mirror-distributed flexible frames (30) are continuously provided with inner hollow bags (31) on the back side thereof, and a plurality of the inner hollow bags (31) are connected to each other by means of a guide channel (32). A vertical channel (29) is connected to the inner hollow bags (31) located at the upper layer, and the vertical channel (29) passes through the middle of the guide seat (25); A U-shaped groove (90) is milled on the inner edge of the flexible frame (30), and a U-shaped pad (91) is installed on the inner edge of the U-shaped groove (90).

2. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: The central control module comprises a fan (40) and a main channel (41), wherein the fan (40) is connected to the back of the spacer seat (21), the main channel (41) is connected to the lower part of the fan (40), and the main channel (41) is connected to the hollow seat (26).

3. The copper bar processing device for convenient loading according to claim 1 is characterized in that: An opening and closing switch (51) is installed at the middle section of the docking position between the branch channel (50) and the second hollow seat (52); the flexible arc-shaped bucket (53) is docked at the lower position of the second hollow seat (52); a docking frame (54) is installed at the inner edge of the opening of the second hollow seat (52) facing the flexible arc-shaped bucket (53); a switch (55) is installed at the center of the docking frame (54); and the axis of the switch (55) coincides with the axis of the second hollow seat (52).

4. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: A carrier plate (60) is installed at the opening of one side of the flexible arc-shaped bucket (53) facing the copper bar, and a transmission hole (61) is reserved on the carrier plate (60). A smooth floppy disk (62) is installed on the back of the carrier plate (60), and a transmission hole (63) is reserved on the smooth floppy disk (62), and the transmission hole (63) is directly opposite to the transmission hole (61).

5. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: A cross frame (56) is installed at the edge of the second hollow seat (52), and a guide column (57) is slidably connected to the cross frame (56). The lower part of the guide column (57) contacts the supporting plate (60), and the upper part of the guide column (57) is installed with an expansion plate (58). The guide column (57) is located at the upper section of the cross frame (56) and is surrounded by an elastic member (59).

6. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: A triangular seat (92) is installed at a lower position of the flexible frame (30) close to the U-shaped groove (90).

7. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: The motion module comprises a linkage shaft (70) and a second hydraulic component (71); the second hydraulic component (71) is mirror-mounted on the edge of the linkage platform (23); the linkage shaft (70) is docked at the output position of the second hydraulic component (71); the linkage shaft (70) is located in the guide groove (24); and the linkage shaft (70) is docked with the guide seat (25).

8. The copper busbar processing device for convenient loading according to claim 1 is characterized in that: Guide shafts (81) are arranged on both sides of the hollow seat (26) near the transverse channel (27); the guide plate (82) is slidably connected to the periphery of the transverse channel (27); the guide shaft (81) passes through the guide plate (82); and the soft pad (83) is arranged between the guide plate (82) and the outer channel (28).

Citation Information

Patent Citations

  • Automatic carrying equipment for stirrups

    CN114194753A

  • Inflating valve feeding mechanism

    CN214454922U