Anti-scald automatic discharging and feeding structure and copper strip annealing equipment

By using an automatic feeding and unloading structure to prevent burns, and employing a clamping device with servo motors and gear meshing to automatically clamp and unload copper strips, the problem of burns and damage during copper strip transportation is solved, improving safety and production efficiency.

CN223522616UActive Publication Date: 2025-11-07QINGYUAN CHUJIANG HIGH PRECISION COPPER STRIP CO LTD
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Patent Information

Application Number
CN202422377357.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-11-07
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

Currently, copper strips need to be manually transported to the annealing equipment after production. The excessively high temperature can cause burns and damage due to misalignment of the copper strips, increasing costs.

Method used

It adopts an automatic feeding and discharging structure to prevent burns, including a clamping device and a moving mechanism. It uses a servo motor and gear meshing to drive the connecting plate and rollers to clamp the copper strip, and combines the elasticity of the spring to achieve automatic clamping and discharging.

Benefits of technology

It enables automatic discharge of copper strips, avoiding burns to workers due to excessive temperature, reducing copper strip damage, and lowering production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-scald automatic discharging and feeding structure and copper strip annealing equipment, and relates to the technical field of copper strip discharging and feeding, the anti-scald automatic discharging and feeding structure comprises a conveying shell and a discharging machine shell, the front side of the conveying shell is fixedly connected with the front side of the discharging machine shell, and clamping equipment is arranged above the discharging machine shell. And the clamping equipment comprises a third servo motor, an output shaft of the third servo motor is fixedly connected with a second rotating gear, the outer side of the second rotating gear is provided with a second gear strip, and the second gear strip and the second rotating gear are meshed through a tooth groove. The anti-scald automatic discharging and feeding structure and the copper strip annealing equipment disclosed by the utility model have an automatic clamping effect on a copper strip, and the servo motor II drives the connecting frame to move downwards, so that the fixing effect of the copper strip is enhanced, and automatic discharging of the copper strip is effectively realized; and the situation that workers are scalded due to the fact that the temperature is too high when the copper strip is discharged is avoided.
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Description

TECHNICAL FIELD

[0001] The utility model relates to copper strip send out material technology field especially relates to a kind of anti-scald automatic out, feeding structure and copper strip annealing equipment. BACKGROUND

[0002] The working principle of copper strip's out, feeding equipment is usually by driving device to tighten the conveyor belt, and the middle frame and the carrier roller are composed.When the driving device works, the rotation of driving shaft is driven, thereby the rotation of carrier roller is driven, and the carrier roller drives the circulating rotation of conveyor belt by friction, thereby the effect of copper strip transportation is achieved.

[0003] The existing device needs to be transported to annealing equipment by artificial when copper strip is made, because temperature is too high, it can scald the staff, because the thickness of copper strip is thin, position deviation is caused when automatic discharging, and curling, cause the damage of copper strip, increase production cost. UTILITY MODEL CONTENT

[0004] The utility model discloses a kind of anti-scald automatic out, feeding structure and copper strip annealing equipment, to solve the technical problem that when copper strip is just made into annealing stage, when staff manually operates, because temperature is too high, there is certain security risk.

[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme:

[0006] A kind of anti-scald automatic out, feeding structure and copper strip annealing equipment, including conveying shell and discharging machine shell, the front side of conveying shell is fixedly connected between the front side of discharging machine shell, the upper portion of discharging machine shell is provided with clamping equipment, and clamping equipment includes servo motor three, the output shaft of servo motor three is fixedly connected with rotary gear two, the outer side of rotary gear two is provided with gear strip two, gear strip two and rotary gear two are all engaged with each other by tooth slot, the front side of gear strip two is fixedly connected with connecting rod, the lower side of connecting rod is fixedly connected with telescopic rod two, the lower side of telescopic rod two is fixedly connected with connecting plate, and the upper side of connecting plate is fixedly connected with pressure spring two, pressure spring two is located at the outer side of telescopic rod two, the lower side of connecting plate is fixedly connected with symmetrical connecting shaft, the outer side of connecting shaft is movably connected with movable frame, and the outer side of movable frame is movably connected with roller, the lower portion of roller is provided with extrusion plate, and the upper side of extrusion plate is in contact with the outer side of roller.

[0007] When the copper strip is completed, the copper strip is placed on the extrusion plate, the servo motor three is started, and the rotating gear two is driven to rotate, and the connecting plate is driven downward through the meshing of the gear groove, and the connecting rod two is driven to stretch the roller on the extrusion plate, and the copper strip is located between the extrusion plate and the roller. When the copper strip is sent to the specified position, the servo motor three is closed, and the connecting plate is returned to the original position under the elastic action of the pressure spring two. In the process, the mutual extrusion between the roller and the extrusion plate is beneficial to better automatic clamping of the copper strip. The servo motor two drives the connecting plate to move downward, strengthens the fixing effect of the copper strip, and effectively realizes the automatic discharge of the copper strip.

[0008] In a preferred scheme, the upper side of the discharging machine shell is provided with a chute, and the inside of the chute is provided with a moving mechanism. The moving mechanism comprises a servo motor two, and the output shaft of the servo motor two is fixedly connected with a rotating gear one. The two sides of the discharging machine shell are fixedly connected with gear strips one. The gear strips one and the rotating gear one are meshed with each other through gear grooves. The upper side of the rotating gear one is movably connected with a connecting frame. The connecting frame is located in the inside of the chute, and the inner side of the connecting frame and the outer side of the gear strip one are movably connected. The front side of the connecting frame and the two sides of the extrusion plate are fixedly connected. The lower side of the gear strip two and the upper side of the connecting frame are fixedly connected. The upper side of the connecting frame below the servo motor three is fixedly connected with a telescopic rod one. The upper side of the telescopic rod one is fixedly connected with a base, and the upper side of the base and the lower side of the servo motor three are fixedly connected. The upper side of the connecting frame is fixedly connected with a pressure spring one, and the pressure spring one is located on the outer side of the telescopic rod one.

[0009] When the copper strip is automatically discharged, the clamping device fixes the first end of the copper strip. The servo motor two is started, and the rotating gear one reciprocates under the meshing of the gear grooves. The connecting frame connected with the rotating gear one is displaced in the gear strip one, so as to move the clamping device to the specified position, realize the discharge of the copper strip, and effectively realize the automatic discharge of the copper strip without manual operation, so as to avoid the situation that the worker is scalded due to the high temperature of the copper strip during discharge.

[0010] In a preferred scheme, the conveying shell is provided with a conveying belt, the inner wall of the conveying belt is provided with two symmetrical rotating shafts, the outer sides of the two rotating shafts are movably connected with the inner side of the conveying shell, and one side of one of the rotating shafts is provided with a servo motor one, the output end of the servo motor one is fixedly connected with one side of the rotating shaft through a shaft coupling, and the two sides of the rotating shaft close to the conveying shell are fixedly connected with rotating rods, and the two sides of the discharging machine shell are provided with arc-shaped hole grooves, and the front sides of the rotating rods are fixedly connected with arc-shaped plates through the hole grooves.

[0011] By being provided with the servo motor one, the conveying belt, the rotating rod, the arc-shaped plate and the rotating shaft, when the copper belt reaches the specified position, the servo motor one is started, the conveying belt is conveyed through the rotating action of the rotating shaft, the arc-shaped plate connected with the rotating shaft is rotated to the fixed position in the hole groove, and the copper belt is moved from the feeder to the conveyor, when the copper belt is moved to the conveyor, the rollers on the clamping device are separated from the pressing plate by a certain distance, and in the process of being moved to the middle position of the discharging machine shell, the automatic feeding of the copper belt is effectively realized, the clamping device is moved to the middle position, and displacement of the copper belt in the operation process is avoided.

[0012] The copper belt annealing equipment comprises the anti-scald automatic feeding and discharging structure.

[0013] As can be seen from the above, the anti-scald automatic feeding and discharging structure and the copper belt annealing equipment have the technical effect that the mutual extrusion between the rollers and the pressing plate is favorable for better automatic clamping of the copper belt, the servo motor two drives the connecting frame to move downward, the fixing effect of the copper belt is strengthened, automatic discharging of the copper belt is effectively realized, and the situation that the temperature of the copper belt is too high to cause scalding of the workers during discharging of the copper belt is avoided. BRIEF DESCRIPTION OF DRAWINGS

[0014] Figure 1 A main structure schematic view of the anti-scald automatic feeding and discharging structure is provided.

[0015] Figure 2 A conveying shell structure schematic view of the anti-scald automatic feeding and discharging structure is provided.

[0016] Figure 3 A discharging machine shell structure schematic view of the anti-scald automatic feeding and discharging structure is provided.

[0017] Figure 4 A moving mechanism structure schematic view of the anti-scald automatic feeding and discharging structure is provided.

[0018] Figure 5The utility model provides a kind of anti-scald automatic out, feeding structure's clamping equipment structural diagram.

[0019] In the drawing: 1, conveying shell;2, discharging machine shell;3, annealing box;4, servo motor one;5, conveying belt;6, rotating rod;7, arc plate;8, rotating shaft;9, moving mechanism;901, gear strip one;902, servo motor two;903, rotary gear one;904, connecting frame;905, pressure spring one;906, telescopic rod one;907, base;10, clamping equipment;1001, servo motor three;1002, rotary gear two;1003, gear strip two;1004, connecting rod;1005, telescopic rod two;1006, pressure spring two;1007, connecting plate;1008, connecting shaft;1009, movable frame;1010, gyro wheel;11, extrusion plate. DETAILED DESCRIPTION

[0020] 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.

[0021] The copper strip annealing equipment disclosed by the utility model is mainly applied to the scene that existing device needs to transport copper strip to annealing equipment by manual when copper strip is made, because high temperature can cause scald to worker, and there is certain danger in transportation process, which can also cause copper strip damage and increase cost.

[0022] Refer to Figures 1-5The utility model provides an anti-scald automatic out, feed structure, including conveying shell 1 and the outfeed machine shell 2, the front side of conveying shell 1 is connected with the front side of outfeed machine shell 2 through bolt, the upper side of outfeed machine shell 2 is provided with clamping equipment 10, and clamping equipment 10 includes servo motor three 1001, the output shaft of servo motor three 1001 is connected with rotary gear two 1002 through bolt, the outside of rotary gear two 1002 is provided with gear strip two 1003, gear strip two 1003 and rotary gear two 1002 are all through the intermeshing of tooth slot, the front side of gear strip two 1003 is all connected with connecting rod 1004 through bolt, the lower side of connecting rod 1004 is all connected with telescopic link two 1005 through bolt, the lower side of telescopic link two 1005 is all connected with connecting plate 1007 through bolt, and the upper side of connecting plate 1007 is all connected with pressure spring two 1006 through bolt, and pressure spring two 1006 is located the outside of telescopic link two 1005, the lower side of connecting plate 1007 is connected with the connecting shaft 1008 of symmetry through bolt, the outside of connecting shaft 1008 is all connected with movable frame 1009 through rotation, and the outside of movable frame 1009 is all connected with gyro wheel 1010 through rotation, and the lower of gyro wheel 1010 is provided with extrusion plate 11, and the upper side of extrusion plate 11 is in contact with the outside of gyro wheel 1010.

[0023] Refer to Figure 1 、 Figure 3 And Figure 4 In a preferred embodiment, the upper side of the outfeed machine shell 2 is provided with a chute, the inside of the chute is provided with a moving mechanism 9, the moving mechanism 9 includes a servo motor two 902, and the output shaft of the servo motor two 902 is connected with a rotary gear one 903 through a bolt, the two sides of the outfeed machine shell 2 are all connected with a gear strip one 901 through a bolt, the gear strip one 901 and the rotary gear one 903 are all intermeshed through a tooth slot, the upper side of the rotary gear one 903 is all rotationally connected with a connecting frame 904, the connecting frame 904 is located inside the chute, and the inside of the connecting frame 904 and the outside of the gear strip one 901 are connected through sliding, the front side of the connecting frame 904 and the two sides of the extrusion plate 11 are all fixedly connected, and the front side of the connecting frame 904 and the two sides of the extrusion plate 11 are all connected through a bolt, the lower side of the gear strip two 1003 and the upper side of the connecting frame 904 are all connected through a bolt, the upper side of the connecting frame 904 below the servo motor three 1001 is connected with a telescopic link one 906 through a bolt, the upper side of the telescopic link one 906 is connected with a base 907 through a bolt, and the upper side of the base 907 and the lower side of the servo motor three 1001 are connected through a bolt, the upper side of the connecting frame 904 is connected with a pressure spring one 905 through a bolt, and the pressure spring one 905 is located outside the telescopic link one 906.

[0024] Refer to Figure 1 、 Figure 2 And Figure 3In a preferred embodiment, the conveying shell 1 is provided with a conveying belt 5, the inner wall of the conveying belt 5 is provided with two symmetrical rotating shafts 8, the outer side of the two rotating shafts 8 is rotatably connected with the inner side of the conveying shell 1, and one side of one of the rotating shafts 8 is provided with a servo motor 4, the output end of the servo motor 4 is connected with one side of the rotating shaft 8 through a shaft coupling, and the two sides of the rotating shaft 8 close to the conveying shell 1 are both connected with rotating rods 6 through bolts, the two sides of the annealing box 3 are provided with arc-shaped holes, and the front side of each rotating rod 6 is connected with an arc-shaped plate 7 through a bolt, and the upper side of the conveying shell 1 is connected with the annealing box 3 through a bolt.

[0025] As shown in Figures 1-2 A copper strip annealing device, comprising the anti-scald automatic feeding and discharging structure as described above, further comprising an annealing box 3.

[0026] Working principle: when the copper strip is completed, the copper strip is placed on the pressing plate 11, the servo motor three 1001 is started to drive the rotating gear two 1002 to rotate, the connecting plate 1007 is pressed downward through the meshing of the gear groove of the gear strip two 1003, the telescopic rod two 1005 connected with the connecting plate 1007 is telescoped, and the roller 1010 is stretched on the pressing plate 11, the copper strip is clamped between the pressing plate 11 and the roller 1010, and the copper strip is sent to the specified position, when the servo motor three 1001 is turned off, the connecting plate 1007 returns to the original position under the elastic action of the pressure spring two 1006;

[0027] When the copper strip is automatically discharged, the clamping device 10 fixes the first end of the copper strip, the servo motor two 902 is started to drive the rotating gear one 903 to reciprocate under the meshing of the gear groove, the connecting frame 904 connected with the rotating gear one 903 is displaced in the gear strip one 901, so that the clamping device 10 is moved to the specified position to realize the discharging of the copper strip;

[0028] When the copper strip reaches the specified position, the servo motor one 4 is started to rotate the conveying belt 5 through the rotating shaft 8 to realize the conveying effect of the copper strip, the arc-shaped plate 7 connected with the rotating shaft 8 rotates to the fixed position in the hole groove, and the copper strip is moved from the feeder to the conveyor, when the copper strip is moved to the conveyor, the roller 1010 on the clamping device 10 is separated from the pressing plate 11 by a certain distance, and the clamping device 10 is moved to the middle position of the discharging machine shell 2 through the moving mechanism 9.

[0029] The above merely describes a preferred embodiment of the present application, and the protection scope of the present application is not limited thereto. The replacement can be a replacement of part of the structure, device, method step, or a complete technical solution. According to the technical solution and the inventive concept of the present application, equivalent replacement or change should be covered in the protection scope of the present application.

Claims

1. A burn-proof automatic discharging and feeding structure, comprising a conveying shell (1) and a discharging machine shell (2), characterized in that, The front side of the conveying shell (1) is fixedly connected with the front side of the discharging machine shell (2), the upper side of the discharging machine shell (2) is provided with a clamping device (10), and the clamping device (10) comprises a servo motor three (1001), the output shaft of the servo motor three (1001) is fixedly connected with a rotating gear two (1002), the outer side of the rotating gear two (1002) is provided with a gear strip two (1003), the gear strip two (1003) and the rotating gear two (1002) are engaged with each other through a gear slot, the front side of the gear strip two (1003) is fixedly connected with a connecting rod (1004), the lower side of the connecting rod (1004) is fixedly connected with a telescopic rod two (1005), the lower side of the telescopic rod two (1005) is fixedly connected with a connecting plate (1007), and the upper side of the connecting plate (1007) is fixedly connected with a pressure spring two (1006), the pressure spring two (1006) is located on the outer side of the telescopic rod two (1005), and the lower side of the connecting plate (1007) is fixedly connected with the symmetrical connecting shaft (1008), the outer side of the connecting shaft (1008) is movably connected with a movable frame (1009), and the outer side of the movable frame (1009) is movably connected with a roller (1010), the lower side of the roller (1010) is provided with an extrusion plate (11), and the upper side of the extrusion plate (11) is in contact with the outer side of the roller (1010).

2. The anti-scald automatic outlet and feed structure according to claim 1, characterized in that, The upper side of the discharging machine shell (2) is provided with a chute, and the inside of the chute is provided with a moving mechanism (9), the moving mechanism (9) comprises a servo motor two (902), and the output shaft of the servo motor two (902) is fixedly connected with a rotating gear one (903), the two sides of the discharging machine shell (2) are fixedly connected with a gear strip one (901), and the gear strip one (901) and the rotating gear one (903) are engaged with each other through a gear slot.

3. The anti-scald automatic outlet and feed structure according to claim 2, wherein, The upper side of the rotating gear one (903) is movably connected with a connecting frame (904), the connecting frame (904) is located in the inside of the chute, and the inner side of the connecting frame (904) and the outer side of the gear strip one (901) are movably connected, and the front side of the connecting frame (904) and the two sides of the extrusion plate (11) are fixedly connected.

4. The anti-scald automatic outlet and feed structure according to claim 1, wherein, The lower side of the gear strip two (1003) and the upper side of the connecting frame (904) are fixedly connected, the upper side of the connecting frame (904) below the servo motor three (1001) is fixedly connected with a telescopic rod one (906), the upper side of the telescopic rod one (906) is fixedly connected with a base (907), the upper side of the base (907) and the lower side of the servo motor three (1001) are fixedly connected, the upper side of the connecting frame (904) is fixedly connected with a pressure spring one (905), and the pressure spring one (905) is located on the outer side of the telescopic rod one (906).

5. The anti-scald automatic outlet and feed structure according to claim 1, wherein, The conveying shell (1) is provided with a conveying belt (5), the inner wall of the conveying belt (5) is provided with two symmetrical rotating shafts (8), the outer side of the two rotating shafts (8) is movably connected with the inner side of the conveying shell (1), and one side of one of the rotating shafts (8) is provided with a servo motor (4), and the output end of the servo motor (4) is fixedly connected with one side of the rotating shaft (8) through a shaft coupling.

6. The anti-scald automatic outlet and feed structure according to claim 5, wherein, The two sides of the rotating shaft (8) of the conveying shell (1) are fixedly connected with rotating rods (6), arc-shaped holes are formed in the two sides of the discharge machine shell (2), and the front side of the rotating rod (6) is fixedly connected with an arc-shaped plate (7) through the hole.

7. A copper strip annealing apparatus comprising the anti-scald automatic outfeed and feed structure according to any one of claims 1 to 6, characterized in that, It also includes an annealing box (3).