Continuous extrusion production equipment for copper busbar processing
By using gear meshing between the base roller and the moving roller, as well as a stabilizing and limiting component, the problem of uneven force distribution during copper busbar processing is solved, thereby improving the processing quality and conductivity of the copper busbar.
Patent Information
- Application Number
- CN202423008037.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-12-06
AI Technical Summary
In the processing of copper busbars, traditional extrusion equipment causes uneven stress on the upper and lower sides of the copper billet, affecting the density difference and conductivity of the copper busbars, resulting in poor processing quality.
The system employs a gear meshing structure between the base roller and the moving roller, combined with a gap adjustment component and a stabilizing limit component, to ensure that the copper billet is subjected to uniform force during the extrusion process. The gear meshing and stabilizing limit component maintain the stability and accuracy of power transmission.
This achieves uniform stress distribution on both the upper and lower sides of the copper busbar, improving processing quality and conductivity, and reducing safety hazards and maintenance costs.
Smart Images

Figure CN223465311U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to copper busbar technical field, concretely is a copper busbar processing continuous extrusion production facility. BACKGROUND
[0002] Copper busbar is indispensable conductive material for manufacturing bus duct, high and low voltage electrical apparatus and switch contact. It has high mechanical property, good conductivity, heat conductivity, excellent corrosion resistance, electroplating property, brazing property, and has beautiful metal luster and good forming processing property.
[0003] In copper busbar processing, copper blank needs continuous extrusion, and deforms under high temperature, high pressure and three-way compression stress, which can eliminate casting defects such as blowhole and shrinkage in raw material, so that the internal organization of copper busbar is more compact. Meanwhile, continuous extrusion can also refine grain size and improve the comprehensive performance of the material, such as strength, hardness and toughness.
[0004] When the traditional extrusion device is used, one extrusion roller on the extrusion device is driven to rotate by a motor, and the other extrusion roller is in an idle state. When the copper blank is conveyed between the two extrusion rollers, the copper blank is conveyed between the two extrusion rollers by the extrusion roller in the driving state, and the copper blank drives the extrusion roller in the idle state to rotate. The two extrusion rollers synchronously extrude and deform the copper blank, so that the extruded and deformed copper blank becomes finished copper busbar.
[0005] In order to produce copper busbar of different thicknesses, the extrusion roller in the idle state is usually set to an adjustable state, and the distance between the extrusion roller in the idle state and the extrusion roller in the driving state is adjusted to adapt to blanks of different thicknesses.
[0006] However, when such equipment is used, one of the two extrusion rollers is in the driving state, and the other is in the driven state. The friction force generated by the extrusion roller in the driving state on the copper blank is opposite to the direction of the friction force generated by the extrusion roller in the driven state on the copper blank, so that the upper and lower surfaces of the copper blank are unevenly stressed, resulting in a large difference in density between the upper and lower sides of the copper busbar after extrusion and deformation, which easily affects the normal conduction of the copper busbar, and leads to poor processing quality of the copper busbar. In order to solve the above problems, we propose a copper busbar processing continuous extrusion production equipment. UTILITY MODEL CONTENTS
[0007] The utility model aims at providing a copper busbar processing continuous extrusion production equipment to solve the problem of uneven stress on the upper and lower sides of the copper blank during continuous extrusion.
[0008] In order to achieve the above object, the utility model provides the following technical scheme: a copper busbar processing continuous extrusion production device, including extruder side plate, the extruder side plate is equipped with base roll and moving roller rotation, be equipped with first gear on the base roll, be equipped with second gear on the moving roller, the first gear is meshed with third gear, the second gear is meshed with fourth gear meshed with third gear, the extruder side plate is equipped with gap adjusting assembly for driving moving roller vertical movement, the moving roller is equipped with the pusher connected with third gear, the extruder side plate is equipped with guide piece, third gear and fourth gear are rotationally arranged on the guide piece, the extruder side plate is equipped with stable limiting component for limiting the moving track of third gear.
[0009] According to the above technical scheme, the stable limiting component includes a limiting arc groove provided on the extruder side plate, a connecting shaft is slidably arranged in the limiting arc groove, one end of the connecting shaft is connected with the guide piece, and the other end of the connecting shaft is provided with a stabilizing piece.
[0010] According to the above technical scheme, one end of the connecting shaft close to the stabilizing piece is provided with a sliding cavity, the stabilizing piece includes a plurality of stabilizing rods penetrating through the side wall of the connecting shaft, the inner wall of the limiting arc groove is uniformly provided with a plurality of insertion holes for the stabilizing rods, a push block connected with the stabilizing rods is slidably arranged in the sliding cavity, and the stabilizing rods are provided with air cylinders connected with the push block.
[0011] According to the above technical scheme, the limiting arc groove and the first gear have the same center.
[0012] According to the above technical scheme, the pusher is a push plate, the second gear and the fourth gear are rotationally connected with the pusher respectively, and the length of the pusher is equal to the sum of the radii of the second gear and the fourth gear.
[0013] According to the above technical scheme, each stabilizing rod is provided with an elastic piece connected with the connecting shaft, and one end of the stabilizing rod in the sliding cavity is provided with an inclined surface facing the push block.
[0014] According to the above technical scheme, the outer wall of the connecting shaft is provided with a sliding ring, the inner wall of the limiting arc groove is provided with a sliding groove for the sliding ring to slide, and the insertion hole is arranged in the sliding groove.
[0015] According to the above technical scheme, the shaft end of the moving roller penetrates through the extruder side plate and is connected with a bearing seat, the gap adjusting assembly includes a nut fixedly connected with the bearing seat, a threaded rod is rotationally connected with the extruder side plate, the threaded rod is threadedly connected with the nut, and the extruder side plate is provided with an avoiding groove for the shaft movement of the moving roller.
[0016] According to the above technical scheme, the extruder side plate is fixedly connected with a sliding rail, and a sliding block fixedly connected with the bearing seat is slidably connected with the sliding rail.
[0017] According to the above technical scheme, the guide piece comprises a mounting seat fixedly connected with the connecting shaft, the third gear and the fourth gear are rotationally connected with the mounting seat, a guide rod is arranged on the side plate of the extruding machine, and a moving guide plate sliding along the guide rod is arranged through the side wall of the mounting seat.
[0018] Compared with the prior art, the utility model has the advantages that:
[0019] The first gear on the base roll and the second gear on the moving roll are meshed through the third gear and the fourth gear, so that the copper blank is more uniformly and stably stressed during the extrusion process, the gap adjusting assembly is arranged on the side plate of the extruding machine, the gap distance between the base roll and the moving roll can be adjusted according to the thickness of the copper blank, different thicknesses of the copper blank are adapted to, and the applicability of the extruding machine is improved. Moreover, during the adjustment of the gap, the moving roll is moved by the driving gear through the pushing piece, the third gear and the fourth gear are always kept in good meshing state with the first gear and the second gear by cooperation of the stable limiting assembly, and stable power transmission is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is the overall structure schematic view of the continuous extrusion production equipment of the utility model;
[0021] Figure 2 is the schematic view of the first gear, the second gear, the third gear and the fourth gear of the utility model;
[0022] Figure 3 is the connection view of the stable limiting assembly and the side plate of the extruding machine of the utility model;
[0023] Figure 4 is the connection view of the third gear and the stable limiting assembly of the utility model;
[0024] Figure 5 is the schematic view of the utility model Figure 4 A part of the utility model;
[0025] Figure 6 is the schematic view of the utility model Figure 3 B part of the utility model;
[0026] Figure 7 is the schematic view of the gap adjusting assembly of the utility model;
[0027] Figure 8 is the schematic view of the sliding block and the bearing seat of the utility model;
[0028] Figure 9 is the schematic view of the first gear and the limiting arc groove of the utility model.
[0029] In the drawing:
[0030] 1, extruder side plate; 2, base roller; 3, first gear; 4, moving roller; 5, second gear; 6, guide; 61, mounting seat; 62, guide rod; 63, moving guide plate; 7, gap adjusting assembly; 71, nut; 72, threaded rod; 73, avoidance groove; 74, sliding rail; 75, sliding block; 8, pusher; 9, stable limiting assembly; 91, limiting arc groove; 92, connecting shaft; 93, stabilizing piece; 931, stabilizing rod; 932, insertion hole; 933, push block; 934, air cylinder; 935, elastic piece; 936, inclined surface; 94, sliding ring; 95, sliding groove; 10, bearing seat; 11, third gear; 12, fourth gear. DETAILED DESCRIPTION
[0031] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0032] Please refer to Figures 1-9 The utility model provides a kind of copper busbar processing continuous extrusion production equipment technical scheme: including extruder side plate 1, extruder side plate 1 is rotationally equipped with base roller 2 and moving roller 4, base roller 2 is connected with external drive, power is provided by external drive device, realizes stable rotary motion.Extruder side plate 1 is provided with two, moving roller 4 is equipped with second gear 5, base roller 2 and moving roller 4 are all arranged between two extruder side plates 1.
[0033] Base roller 2 is equipped with first gear 3, moving roller 4 is equipped with second gear 5, first gear 3 is engaged with third gear 11, second gear 5 is engaged with fourth gear 12 engaged with third gear 11, so that base roller 2 rotates, can drive moving roller 4 synchronous reverse rotation, when using continuous extruder, copper blank is placed between base roller 2 and moving roller 4, external drive can make base roller 2 rotate, drive first gear 3 to rotate, in turn drive second gear 5 to rotate by third gear 11 and fourth gear 12, to drive moving roller 4 and base roller 2 synchronous reverse rotation, so that copper blank is more uniform and stable in the process of extrusion, avoid the density difference of copper busbar row upper and lower sides caused by uneven stress, significantly improve the processing quality of copper busbar row.Meanwhile, it can also ensure that the performance of copper busbar row is more reliable in subsequent conductive work, reduce the security risks and maintenance costs caused by quality problems.
[0034] The gap adjusting assembly 7 is arranged on the extruder side plate 1 and used to drive the vertical movement of the moving roller 4. When producing copper busbars with different thicknesses, the gap adjusting assembly 7 can adjust the gap distance between the base roller 2 and the moving roller 4 according to the thickness of the copper blank, so as to adapt to copper blanks with different thicknesses.
[0035] The pushing piece 8 is connected with the third gear 11 and arranged on the moving roller 4. During the movement of the moving roller 4 by the gap adjusting assembly 7, the moving roller 4 can drive the third gear 11 to move through the pushing piece 8. The guiding piece 6 is arranged on the extruder side plate 1. The third gear 11 and the fourth gear 12 are rotatably arranged on the guiding piece 6, so that the guiding piece 6 provides stable support and guidance for the third gear 11 and the fourth gear 12. The stable limiting assembly 9 is arranged on the extruder side plate 1 and used to limit the movement track of the fourth gear 12.
[0036] The stable limiting assembly 9 can ensure that the first gear 3, the second gear 5, the third gear 11 and the fourth gear 12 always maintain a good meshing state, prevent the third gear 11 and the fourth gear 12 from deviating or jumping during operation, ensure the accuracy and stability of gear meshing, and thus ensure the stable transmission of power. The third gear 11 and the fourth gear 12 are rotatably arranged on the guiding piece 6, so that the third gear 11 and the fourth gear 12 always maintain a meshing state and can move synchronously with the moving roller 4, and further prevent the third gear 11 and the fourth gear 12 from deviating during operation.
[0037] Specifically, the stable limiting assembly 9 includes a limiting arc groove 91 arranged on the extruder side plate 1. A connecting shaft 92 is slidably arranged in the limiting arc groove 91, so that the limiting arc groove 91 provides a stable and accurate track for the sliding of the connecting shaft 92. One end of the connecting shaft 92 is rotatably connected with the guiding piece 6. When the fourth gear 12 is driven to move by the pushing piece 8, the connecting shaft 92 can move along the track of the limiting arc groove 91. The other end of the connecting shaft 92 is provided with a stabilizing piece 93. After the moving roller 4 is moved to a suitable position, the third gear 11 and the fourth gear 12 are driven to move by the pushing piece 8. The stabilizing piece 93 can fix the connecting shaft 92, so as to prevent the connecting shaft 92 from shaking or deviating from the limiting arc groove 91 during operation of the equipment, and thus affect the meshing of the third gear 11 and the fourth gear 12 with the first gear 3 and the second gear 5.
[0038] When the moving roller 4 moves vertically under the action of the gap adjusting assembly 7, the pushing piece 8 on the moving roller 4 drives the fourth gear 12 to move, and then drives the third gear 11 to move through the guide piece, and the connecting shaft 92 slides along the limiting arc groove 91 under the action of the guide piece 6, so that the third gear 11 and the fourth gear 12 can always be in good meshing state with the first gear 3 and the second gear 5, thereby effectively preventing the third gear 11 and the fourth gear 12 from deviating or jumping during operation, greatly improving the accuracy and stability of gear meshing, and providing a solid guarantee for stable power transmission.
[0039] When the third gear 11 and the fourth gear 12 need to be moved, the stabilizing piece 93 can also release the fixation of the connecting shaft 92, so that the third gear 11 and the fourth gear 12 move with the connecting shaft 92.
[0040] Specifically, the end of the connecting shaft 92 close to the stabilizing piece 93 is provided with a sliding cavity, the stabilizing piece 93 includes a plurality of stabilizing rods 931 penetrating the side wall of the connecting shaft 92, the inner wall of the limiting arc groove 91 is uniformly provided with insertion holes 932 for the stabilizing rods 931, a push block 933 connected with the stabilizing rods 931 is slidably arranged in the sliding cavity, and a pneumatic cylinder 934 connected with the push block 933 is arranged on the stabilizing rod 931. After the moving roller 4 moves to the appropriate position, the third gear 11 and the fourth gear 12 are driven to move by the pushing piece 8, the push block 933 is pushed by the pneumatic cylinder 934 arranged, so that the push block 933 drives the stabilizing rod 931 to be inserted into the corresponding insertion hole 932, thereby realizing the stable fixation of the connecting shaft 92.
[0041] The connecting shaft 92 is effectively prevented from shaking or deviating from the limiting arc groove 91 during equipment operation, so that the third gear 11 and the fourth gear 12 can stably operate and keep good meshing state with the first gear 3 and the second gear 5.
[0042] Specifically, the limiting arc groove 91 is in the same center position with the first gear 3, so that the fourth gear 12 can always mesh with the first gear 3 during movement, thereby improving the precision and stability of gear transmission.
[0043] Specifically, the pushing piece 8 is in the form of a push plate, the second gear 5 and the fourth gear 12 are respectively rotationally connected with the pushing piece 8, and the length of the pushing piece 8 is accurately designed to be equal to the sum of the radii of the second gear 5 and the fourth gear 12. When the second gear 5 is pushed to move by the pushing piece 8, the second gear 5 can always mesh with the fourth gear 12,
[0044] Specifically, each stabilizing rod 931 is provided with an elastic piece 935 connected with the connecting shaft 92, and one end of the stabilizing rod 931 located in the sliding cavity is provided with an inclined surface 936 facing the push block 933.
[0045] Specifically, an elastic member 935 is arranged on each stabilizing rod 931 and connected with the connecting shaft rod 92. The elastic member 935 can play a role of resetting during the operation of the stabilizing rod 931.
[0046] The stabilizing rod 931 is provided with a slope 936 at one end in the sliding cavity and faces the push block 933. When the push block 933 is pushed by the air cylinder 934 and moves towards the stabilizing rod 931, the push block 933 first contacts the slope 936 of the stabilizing rod 931. Due to the existence of the slope 936, the pushing force of the push block 933 can be decomposed into a component perpendicular to the stabilizing rod 931 and a component along the slope 936. The component perpendicular to the stabilizing rod 931 can push the stabilizing rod 931 to move towards the insertion hole 932, thereby realizing the fixation of the connecting shaft rod 92.
[0047] When the fixation of the connecting shaft rod 92 needs to be released, the air cylinder 934 is contracted to drive the push block 933 to move, so that the push block 933 releases the blockage to the stabilizing rod 931. Under the action of the elastic force of the elastic member 935, the stabilizing rod 931 is pulled out of the insertion hole 932 and quickly returns to the initial position, so that the connecting shaft rod 92 can move freely.
[0048] Specifically, the outer wall of the connecting shaft rod 92 is provided with a sliding ring 94, the inner wall of the limiting arc groove 91 is provided with a sliding groove 95 for the sliding of the sliding ring 94, and the insertion hole 932 is arranged in the sliding groove 95. The cooperation of the sliding ring 94 and the sliding groove 95 provides a stable guiding effect for the movement of the connecting shaft rod 92 in the limiting arc groove 91, and ensures that the movement of the connecting shaft rod 92 is more stable and accurate.
[0049] Specifically, the shaft end of the moving roller 4 penetrates through the extruder side plate 1 and is connected with a bearing seat 10. The gap adjusting assembly 7 includes a nut 71 fixedly connected with the bearing seat 10. A threaded rod 72 is rotatably connected to the extruder side plate 1 and is in threaded connection with the nut 71. The extruder side plate 1 is provided with an avoiding slot 73 for the movement of the moving roller 4.
[0050] Specifically, the shaft end of the moving roller 4 passes through the extruder side plate 1 and is connected with a bearing seat 10. The gap adjusting assembly 7 includes a nut 71 fixedly connected with the bearing seat 10. On the extruder side plate 1, a threaded rod 72 is rotationally connected, and the threaded rod 72 is threadedly connected with the nut 71. In addition, the extruder side plate 1 is also provided with a clearance groove 73 for the movement of the shaft of the moving roller 4, which provides space for the movement of the shaft of the moving roller 4. When adjusting the gap distance between the base roller 2 and the moving roller 4, the threaded rod 72 is driven to rotate by the motor, which can drive the nut 71 and the bearing seat 10 and the moving roller 4 connected therewith to move, thereby achieving the adjustment of the gap between the moving roller 4 and the base roller 2. This gap adjusting method is simple in operation and high in precision, which can meet the precise adjustment of the gap between the rollers under different production requirements, and improves the applicability and production efficiency of the extruder.
[0051] Specifically, the extruder side plate 1 is fixedly connected with a sliding rail 74, and a sliding block 75 fixedly connected with the bearing seat 10 is slidingly connected with the sliding rail 74. The cooperation of the sliding rail 74 and the sliding block 75 provides further stable guiding effect for the movement of the bearing seat 10 and the moving roller 4. During the gap adjusting process, when the threaded rod 72 drives the nut 71 to move, the bearing seat 10 connected therewith will also move. At this time, the sliding block 75 slides on the sliding rail 74, ensuring that the moving direction of the bearing seat 10 always remains stable and does not deviate or shake. This not only improves the precision and reliability of the gap adjustment, but also makes the operation of the entire extruder more stable, which helps to improve the quality and production efficiency of the product.
[0052] Specifically, the insertion end of the stabilizing rod 931 is arc-shaped, facilitating the insertion of the stabilizing rod 931 into the insertion hole 932.
[0053] Specifically, the guide 6 includes a mounting seat 61 fixedly connected with the connecting shaft 92, and the third gear 11 and the fourth gear 12 are rotationally connected with the mounting seat 61. The extruder side plate 1 is provided with a guide rod 62, and the side wall of the mounting seat 61 is provided with a moving guide plate 63 sliding along the guide rod 62,
[0054] Specifically, the guide 6 is composed of a mounting base 61, a guide rod 62 and a moving guide plate 63. The mounting base 61 is fixedly connected with the connecting shaft 92, and provides a stable mounting base for the third gear 11 and the fourth gear 12, so that the two gears can move together with the mounting base 61 while rotating. The guide rod 62 arranged on the extruder side plate 1 provides a precise moving track for the moving guide plate 63. The side wall of the mounting base 61 is provided with the moving guide plate 63 which can vertically slide along the guide rod 62, further enhancing the stability and accuracy of the guide 6 in guiding the movement of the third gear 11 and the fourth gear 12, preventing the mounting base 61 and the connecting shaft 92 from moving during the movement of the third gear 11 and the fourth gear 12, and ensuring that the third gear 11 and the fourth gear 12 always maintain good meshing state with the first gear 3 and the second gear 5, thereby providing a strong guarantee for the stable operation of the whole copper busbar processing continuous extrusion production equipment.
[0055] In the description of the present application, it should be understood that the terms "coaxial", "bottom", "one end", "top", "middle", "the other end", "upper", "one side", "top", "inner", "front", "central", "both ends" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0056] In addition, the terms "first", "second", "third", "fourth" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated, so that the features limited by "first", "second", "third", "fourth" can be explicitly or implicitly included at least one of the features.
[0057] In the present application, unless otherwise explicitly specified and limited, the terms "mounting", "setting", "connecting", "fixing", "threading" and the like should be understood in a broad sense, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the communication or interaction relationship between two elements, unless otherwise explicitly limited, the above-mentioned terms in the present application can be understood according to the specific meaning of the above-mentioned terms in the present application according to the specific situation.
[0058] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A continuous extrusion production device for processing copper busbar, comprising an extruder side plate (1), a base roller (2) and a moving roller (4) are rotatably arranged on the extruder side plate (1), characterized in that: The base roller (2) is provided with a first gear (3), the moving roller (4) is provided with a second gear (5), the first gear (3) is engaged with a third gear (11), the second gear (5) is engaged with a fourth gear (12) engaged with the third gear (11), the extruder side plate (1) is provided with a gap adjusting assembly (7) for driving the moving roller (4) to move vertically, the moving roller (4) is provided with a pusher (8) connected with the third gear (11), the extruder side plate (1) is provided with a guide (6), the third gear (11) and the fourth gear (12) are both rotationally arranged on the guide (6), and the extruder side plate (1) is provided with a stable limiting assembly (9) for limiting the moving track of the third gear (11).
2. A continuous extrusion production equipment for copper busbar processing according to claim 1, characterized in that: The stable limiting assembly (9) comprises a limiting arc groove (91) arranged on the extruder side plate (1), a connecting shaft (92) is slidably arranged in the limiting arc groove (91), one end of the connecting shaft (92) is connected with the guide (6), and the other end of the connecting shaft (92) is provided with a stabilizing piece (93).
3. A continuous extrusion production apparatus for processing a copper busbar according to claim 2, characterized in that: The end of the connecting shaft (92) close to the stabilizing piece (93) is provided with a sliding cavity, the stabilizing piece (93) comprises a plurality of stabilizing rods (931) penetrating through the side wall of the connecting shaft (92), the inner wall of the limiting arc groove (91) is uniformly provided with a plurality of insertion holes (932) for the stabilizing rods (931), a push block (933) connected with the stabilizing rods (931) is slidably arranged in the sliding cavity, and the stabilizing rods (931) are provided with air cylinders (934) connected with the push block (933).
4. The continuous extrusion production equipment for copper busbar processing according to claim 2, characterized in that: The limiting arc groove (91) and the first gear (3) have the same center.
5. A continuous extrusion production apparatus for processing a copper busbar according to claim 4, characterized in that: The second gear (5) and the fourth gear (12) are rotationally connected with the pusher (8), and the length of the pusher (8) is equal to the sum of the radii of the second gear (5) and the fourth gear (12).
6. The continuous extrusion production equipment for copper busbar processing according to claim 3, characterized in that: Each stabilizing rod (931) is provided with an elastic piece (935) connected with the connecting shaft (92), and one end of the stabilizing rod (931) located in the sliding cavity is provided with an inclined surface (936) facing the push block (933).
7. The continuous extrusion production equipment for copper busbar processing according to claim 3, characterized in that: The outer wall of the connecting shaft (92) is provided with a sliding ring (94), the inner wall of the limiting arc groove (91) is provided with a sliding groove (95) for the sliding of the sliding ring (94), and the insertion hole (932) is arranged in the sliding groove (95).
8. The continuous extrusion production equipment for copper busbar processing according to claim 1, characterized in that: The shaft end of the moving roller (4) penetrates through the extruder side plate (1) and is connected with a bearing seat (10), the gap adjusting assembly (7) comprises a nut (71) fixedly connected with the bearing seat (10), the extruder side plate (1) is rotationally connected with a threaded rod (72), the threaded rod (72) is threadedly connected with the nut (71), and the extruder side plate (1) is provided with an avoiding groove (73) for the movement of the shaft of the moving roller (4).
9. A continuous extrusion production apparatus for processing a copper busbar according to claim 8, characterized in that: The extruder side plate (1) is fixedly connected with a sliding rail (74), and the sliding rail (74) is slidably connected with a sliding block (75) fixedly connected with the bearing seat (10).
10. The continuous extrusion production equipment for copper busbar processing according to claim 2, characterized in that: The guide (6) comprises a mounting base (61) fixed with a connecting shaft (92), the third gear (11) and the fourth gear (12) are both rotationally connected with the mounting base (61), a guide rod (62) is arranged on the extruder side plate (1), and a moving guide plate (63) sliding along the guide rod (62) is arranged through the side wall of the mounting base (61).