A rotary core welding device for capacitor production and processing

By designing automated clamping positioning, rotation and recycling devices in the rotary core welding equipment for capacitor production and processing, the problem of manual intervention affecting welding efficiency is solved, and an efficient, accurate and stable welding process is achieved, which is suitable for large-scale automated production.

CN119387744BActive Publication Date: 2025-05-30YIYANG QUANCHENG ELECTRONIC TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411889516.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-05-30
Estimated Expiration
2044-12-20

AI Technical Summary

Technical Problem

The existing rotary core welding equipment for capacitor production and processing requires manual intervention in the rotation angle adjustment during the welding process, which affects the welding efficiency.

Method used

A rotary core welding device including a clamping positioning device, a rotating device and a recycling device is designed. The clamping positioning device operates through L-shaped plates, oblique blocks, support plates and other components to adjust the angle of the electrical chip; the rotating device realizes the automation of the feeding of the electrical chip through components such as slide chutes, convex plates, and half-tooth plates; the recycling device realizes the automatic recycling and discharge of the electrical chip through components such as rotating shafts, socket cylinders, push plates and other components.

Benefits of technology

Through automated clamping positioning, rotation and recycling devices, manual intervention is reduced, welding efficiency and quality is improved, labor and production costs are saved, and it is suitable for large-scale automated production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a rotary core welding device for capacitor production and processing, which relates to the technical field of rotary core welding engineering. The rotary core welding device for capacitor production and processing includes a fixed frame and an electrical chip. An electric push rod is fixedly installed above the frame, and a sleeve cylinder one is fixedly installed on the circumferential surface of the output end of the electric push rod. A clamping and positioning device is also included. Among them, the clamping and positioning device includes an L-shaped plate one, an inclined block one, a support plate, a support rod, a clamping plate, a square plate, a connecting block one, a connecting rod one, a concave plate one, a U-shaped plate one, a convex block one, an inclined block two, a pushing block one, a connecting block two, a semi-toothed disc and a telescopic elastic rod one. By rotating the convex block one and driving the electrical chip to start rotating, the angle of the capacitor can be adjusted, thereby improving the welding efficiency, reducing manual intervention, ensuring the welding quality, and saving labor costs and production costs.
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Description

Technical Field

[0001] The present invention relates to the technical field of rotary core welding engineering, and specifically to a rotary core welding device for capacitor production and processing. Background Art

[0002] The rotary core welding device for capacitor production and processing is a key production device for welding the metal leads inside the capacitor to the electrode core. The function of this device is to ensure a firm connection between the leads and the core of the capacitor, with good electrical conductivity and mechanical strength, thus ensuring the reliability and performance of the capacitor.

[0003] The patent with the patent announcement number CN113695800B relates to a rotary core welding device for capacitor production and processing. This patent includes: a capacitor core box for temporarily storing the capacitor cores to be welded; a rotary conveying mechanism, where the rotary conveying mechanism includes an outer rotating disk, and a plurality of core welding boxes are equidistantly installed on the circumferential side wall of the outer rotating disk. The core welding box rotated to the position directly below the middle of the two capacitor core boxes is used to receive the cores output from the two capacitor core boxes; an insulating plate pushing mechanism arranged inside the outer rotating disk for conveying an insulating plate to the middle part of the core welding box rotated to the directly above position; a moving mechanism, with a clamping mechanism arranged on one side of the bottom of the moving mechanism. The clamping mechanism is used to clamp and fix the cores inside the core welding box during welding. The advantages of this patent are: automatic feeding and discharging, fast speed, high efficiency, strong structural linkage, and high practical value.

[0004] In the above patent, the clamping mechanism is used to clamp and fix the cores inside the core welding box during welding. However, during the welding process of the capacitor, the surface of the capacitor may need to be welded multiple times, and manual intervention is required to adjust the angle, which thus affects the welding efficiency of the capacitor. Therefore, a rotary core welding device for capacitor production and processing with an adjustable clamping and positioning device is designed. Summary of the Invention

[0005] Aiming at the deficiencies of the prior art, the present invention provides a soldering device for mobile phone data cable production, which solves the problems raised in the above background art.

[0006] To achieve the above object, the present invention is realized by the following technical solutions: A rotary core welding device for capacitor production and processing, including a fixed frame and an electrical chip. An electric push rod is fixedly installed above the frame. A sleeve cylinder one is fixedly installed on the circumferential surface of the output end of the electric push rod. A transverse plate is fixedly installed on the circumferential surface of the sleeve cylinder one. A welding pen is fixedly installed on the inner wall of the transverse plate. A recovery plate is fixedly installed above the frame. A rotating shaft one is rotatably installed above the fixed frame. A placing tray is fixedly installed on the circumferential surface of the rotating shaft one. It also includes a clamping and positioning device, a rotating device, and a recovery device. Among them, the clamping and positioning device includes an L-shaped plate one, an inclined block one, a support plate, a support rod, a clamping plate, a square plate, a connecting block one, a connecting rod one, a concave plate one, a U-shaped plate one, a convex block one, an inclined block two, a push block one, a connecting block two, a semi-toothed disc, and a telescopic spring rod one. Start the electric push rod. The output end of the electric push rod drives the sleeve cylinder one to move downward. The downward movement of the sleeve cylinder one drives the transverse plate to start moving downward. The downward movement of the transverse plate drives the L-shaped plate one to move downward. The downward movement of the L-shaped plate one drives the inclined block one on its surface to move downward. The L-shaped plate one is fixedly installed on the side of the transverse plate. The inclined block one is fixedly installed on the side of the L-shaped plate one. The support plate is fixedly installed on the surface of the placing tray. The support rod slides through the inner wall of the support plate. The clamping plate is fixedly installed at the end of the support rod away from the support plate. The square plate is fixedly installed on the side close to the support plate. The connecting block one is fixedly installed on the side of the transverse plate. The connecting rod one is rotatably installed on the surface of the connecting block one. The concave plate one is slidably installed above the frame. The U-shaped plate one slides through the surface of the concave plate one. The convex block one is fixedly installed at the end close to the semi-toothed disc. The inclined block two is slidably installed on the surface of the concave plate one. The push block one is slidably installed on the surface of the concave plate one. The connecting block two is fixedly installed above the push block one. The semi-toothed disc is rotatably installed above the placing tray. The telescopic spring rod one is fixedly installed at one end of the inclined block two. The continuous lateral movement of the push block one drives the concave plate one to move laterally under the action of the U-shaped plate one, and drives the semi-toothed disc to rotate under the action of the convex block one. The rotation of the semi-toothed disc drives the electrical chip to rotate, thereby realizing the adjustment of the angle of the electrical chip, enabling the welding pen to weld the other side of the surface of the electrical chip, quickly completing the welding of both sides of the chip, reducing manual intervention, ensuring the welding quality, and saving labor costs and production costs.

[0007] According to the above technical solution, the free end of the telescopic spring rod one is fixedly connected to the surface of the concave plate one. The push block one is slidably connected to the inclined surface of the inclined block two. The end of the connecting rod one away from the connecting block one is rotatably connected to the connecting block two. The inclined block two is fixedly connected to the surface of the U-shaped plate one. The push block one moves laterally and squeezes the inclined surface of the inclined block two to move in the direction close to the semi-toothed disc.

[0008] According to the above technical solution, a spring is arranged between the support plate and the clamping plate. The front end of the clamping plate is set in a semi-circular arc shape. The square plate is squeezed and pushes the clamping plate to move away from the support plate.

[0009] According to the above technical solution, the rotating device includes a first chute, a convex plate, a second concave plate, a second U-shaped plate, a second connecting rod, a second convex block, a third inclined block, a second pushing block and a gear. The upward movement of the cross plate drives the upward movement of the first L-shaped plate. The upward movement of the first L-shaped plate drives the upward movement of the convex plate through the first chute. The upward movement of the convex plate drives one end of the second connecting rod close to the convex plate to rotate and drives the second connecting rod to move horizontally. A first chute is formed on the surface of the first L-shaped plate. The convex plate is slidably installed on the inner wall of the first chute. The second concave plate is slidably installed above the frame. The second U-shaped plate slidably penetrates through the surface of the second concave plate. One end of the second connecting rod is rotatably installed on the surface of the convex plate. The second convex block is fixedly installed on the surface of the second U-shaped plate. The third inclined block is slidably installed on the surface of the second concave plate. The second pushing block is slidably installed on the surface of the second concave plate. The gear is fixedly installed on the circumferential surface of the first rotating shaft. The second convex block moves forward and contacts the gear to rotate, so that the next electrical chip starts to be welded, realizing the automation of the feeding of electrical chips, improving the welding efficiency, reducing the dependence on manual operation, reducing the possible errors or instabilities in manual operation, providing more efficient, accurate and stable working conditions, being able to improve the production efficiency, welding quality and consistency, and being particularly suitable for large-scale automated production.

[0010] According to the above technical solution, a second telescopic spring rod is arranged between the second U-shaped plate and the third inclined block. The third inclined block is fixedly connected to the surface of the second U-shaped plate. The second pushing block moves horizontally and squeezes the inclined surface of the third inclined block.

[0011] According to the above technical solution, the second pushing block is slidably connected to the inclined surface of the third inclined block. The gear meshes with the second convex block. The second convex block moves forward and contacts the gear to rotate.

[0012] According to the above technical solution, the recycling device includes a second rotating shaft, a second socket cylinder, a socket plate, a dial plate, an L-shaped plate II, a telescopic spring rod III, a connecting plate, a second chute, and a push plate. The rotation of the gear drives the first rotating shaft to start rotating. The rotation of the first rotating shaft drives the second socket cylinder to start rotating. The rotation of the second socket cylinder drives the socket plate to start rotating. The rotation of the socket plate drives the dial plate on its surface to start rotating. The second rotating shaft is fixedly installed above the first rotating shaft. The second socket cylinder is fixedly installed on the circumferential surface of the second rotating shaft. The socket plate is fixedly installed on the circumferential surface of the second socket cylinder. The dial plate is fixedly installed on the side surface of the socket plate. The L-shaped plate II is fixedly installed above the frame. The L-shaped plate II is provided with a second chute. The telescopic spring rod III is fixedly installed on the inner wall of the second chute. The connecting plate is fixedly installed at the free end of the telescopic spring rod III. The push plate is fixedly installed below the connecting plate. The dial plate starts to rotate and contacts and presses the push plate to start moving forward. The push plate slides forward through the telescopic spring rod III under the connection of the connecting plate. The push plate moves forward and presses and pushes the electrical chip to discharge materials, thereby greatly improving production efficiency, reducing manual intervention and downtime. Through recycling treatment, welding and repair can be quickly carried out without affecting the production progress.

[0013] According to the above technical solution, the push plate is slidably connected to the surface of the L-shaped plate II. The L-shaped plate II is rotatably connected to the circumferential surface of the second rotating shaft. The push plate slides forward through the telescopic spring rod III under the connection of the connecting plate.

[0014] The present invention provides a rotary core welding device for capacitor production and processing. It has the following beneficial effects:

[0015] (1) For the rotary core welding device for capacitor production and processing, through the setting of the clamping and positioning device, through the cooperation of the L-shaped plate I, the first inclined block, the support plate, the support rod, the clamping plate, the square plate, the first connecting block, the first connecting rod, the concave plate I, the U-shaped plate I, the first convex block, the second inclined block, the first pushing block, the second connecting block, the semi-toothed disk, and the first telescopic spring rod, the first connecting rod moves horizontally, driving the second connecting block to move horizontally. The horizontal movement of the second connecting block drives the first pushing block to start moving horizontally. The first pushing block moves horizontally and presses the inclined surface of the second inclined block to move forward. The forward movement of the second inclined block drives the U-shaped plate I to move forward. The forward movement of the U-shaped plate I drives the first convex block on its surface to move forward. At the same time, the contact convex block starts to rotate. The rotation of the first convex block drives the electrical chip to start rotating, thereby realizing the adjustment of the angle of the capacitor, improving the welding efficiency, reducing manual intervention, ensuring the welding quality, and saving labor costs and production costs.

[0016] (2) The rotary core welding equipment for capacitor production and processing, through the setting of the rotating device, operates through the cooperation among the first chute, convex plate, second concave plate, second U-shaped plate, second connecting rod, second convex block, third inclined block, second pushing block and gear. The second pushing block moves horizontally and squeezes the inclined surface of the third inclined block. When the third inclined block is squeezed, it also squeezes the second convex block on its surface to move forward. The second convex block moves forward and contacts the gear to rotate, enabling the next electrical chip to start welding, realizing the automation of electrical chip feeding, improving the welding efficiency, reducing the dependence on manual operation, reducing the errors or instabilities that may occur in manual operation, providing more efficient, precise and stable working conditions, and being able to improve production efficiency, welding quality and consistency, especially suitable for large-scale automated production.

[0017] (3) The rotary core welding equipment for capacitor production and processing, through the setting of the cleaning device, operates through the cooperation among the second rotating shaft, second socket cylinder, socket plate, dial plate, second L-shaped plate, third telescopic spring rod, connecting plate and pushing plate. The rotation of the gear drives the first rotating shaft to start rotating. The rotation of the first rotating shaft drives the second socket cylinder to start rotating. The rotation of the second socket cylinder drives the socket plate to start rotating. The rotation of the socket plate drives the dial plate on its surface to start rotating. The dial plate starts rotating and contacts and squeezes the pushing plate to start moving forward. The pushing plate slides forward through the third telescopic spring rod under the connection of the connecting plate. The pushing plate moves forward and squeezes and pushes the electrical chip for recycling. The rotary equipment can greatly improve production efficiency, reduce manual intervention and downtime. Through the recycling process, the rotary equipment can quickly perform welding and repair without affecting the production progress. Description of the Drawings

[0018] Figure 1 Schematic diagram of the overall structure of the present invention;

[0019] Figure 2 Schematic diagram of the first inclined block and the square plate of the present invention;

[0020] Figure 3 In the present invention Figure 2 Schematic diagram of the enlarged structure of part A;

[0021] Figure 4 Schematic diagram of the first convex block and the semi-toothed disc of the present invention;

[0022] Figure 5 Schematic diagram of the second convex block and the gear of the present invention;

[0023] Figure 6 Schematic diagram of the second rotating shaft and the socket plate of the present invention;

[0024] Figure 7 In the present invention Figure 6Schematic diagram of the enlarged structure of part B of the Chinese figure;

[0025] Figure 8 Schematic diagram of the structure of the first rotating shaft and the second socket cylinder of the present invention.

[0026] In the figure: 1. Frame; 2. Electric push rod; 3. First socket cylinder; 4. Horizontal plate; 5. Welding pen; 6. Recycling plate; 7. First rotating shaft; 8. Placing tray; 9. Electrical chip; 11. First L-shaped plate; 12. First inclined block; 13. Support plate; 14. Support rod; 15. Clamp; 16. Square plate; 17. Spring; 18. First connecting block; 19. First connecting rod; 120. First concave plate; 121. First U-shaped plate; 122. First convex block; 123. Second inclined block; 124. First pushing block; 125. Second connecting block; 126. Half-toothed disc; 127. First telescopic elastic rod; 21. First chute; 22. Convex plate; 23. Second concave plate; 24. Second U-shaped plate; 25. Second connecting rod; 26. Second convex block; 27. Third inclined block; 28. Second pushing block; 29. Gear; 210. Second telescopic elastic rod; 31. Second rotating shaft; 32. Second socket cylinder; 33. Socket plate; 34. Poking plate; 35. Second L-shaped plate; 36. Third telescopic elastic rod; 37. Connecting plate; 38. Second chute; 39. Pushing plate. Specific embodiments

[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0028] Please refer to Figures 1 - 8, an embodiment of the present invention is: a rotary core welding device for capacitor production and processing, including a fixed frame 1 and an electrical chip 9. An electric push rod 2 is fixedly installed above the frame 1. A sleeve cylinder 1 is fixedly installed on the circumferential surface of the output end of the electric push rod 2. A transverse plate 4 is fixedly installed on the circumferential surface of the sleeve cylinder 1. A welding pen 5 is fixedly installed on the inner wall of the transverse plate 4. A recovery plate 6 is fixedly installed above the frame 1. A rotating shaft 1 is rotatably installed above the fixed frame 1. A placing disk 8 is fixedly installed on the circumferential surface of the rotating shaft 1. It also includes a clamping and positioning device, a rotating device, and a recovery device; among them, the clamping and positioning device includes an L-shaped plate 11, an inclined block 12, a support plate 13, a support rod 14, a clamping plate 15, a square plate 16, a connecting block 18, a connecting rod 19, a concave plate 120, a U-shaped plate 121, a convex block 122, an inclined block 123, a pushing block 124, a connecting block 125, a semi-toothed disk 126, and a telescopic spring rod 127. Start the electric push rod 2. The output end of the electric push rod 2 drives the sleeve cylinder 1 to move downward. The downward movement of the sleeve cylinder 1 drives the transverse plate 4 to start moving downward. The downward movement of the transverse plate 4 drives the L-shaped plate 11 to move downward. The downward movement of the L-shaped plate 11 drives the inclined block 12 on its surface to move downward. The L-shaped plate 11 is fixedly installed on the side of the transverse plate 4, and the inclined block 12 is fixedly installed on the side of the L-shaped plate 11. The support plate 13 is fixedly installed on the surface of the placing disk 8. The support rod 14 slides through the inner wall of the support plate 13. The clamping plate 15 is fixedly installed at the end of the support rod 14 away from the support plate 13. The square plate 16 is fixedly installed on the side close to the support plate 13. The connecting block 18 is fixedly installed on the side of the transverse plate 4. The connecting rod 19 is rotatably installed on the surface of the connecting block 18. The concave plate 120 is slidably installed above the frame 1. The U-shaped plate 121 slides through the surface of the concave plate 120. The convex block 122 is fixedly installed at the end close to the semi-toothed disk 126. The inclined block 123 is slidably installed on the surface of the concave plate 120. The pushing block 124 is slidably installed on the surface of the concave plate 120. The connecting block 125 is fixedly installed above the pushing block 124. The semi-toothed disk 126 is rotatably installed above the placing disk 8. The telescopic spring rod 127 is fixedly installed at one end of the inclined block 123. The continuous lateral movement of the pushing block 124 drives the concave plate 120 to move laterally under the action of the U-shaped plate 121, and drives the semi-toothed disk 126 to rotate under the action of the convex block 122. The rotation of the semi-toothed disk 126 drives the electrical chip 9 to rotate, thereby realizing the adjustment of the angle of the electrical chip 9, enabling the welding pen 5 to weld the other side of the surface of the electrical chip 9, quickly completing the welding of both sides of the chip, reducing manual intervention, ensuring welding quality, and saving labor costs and production costs.

[0029] The free end of the telescopic elastic rod 127 is fixedly connected to the surface of the first concave plate 120. The first push block 124 is slidably connected to the inclined surface of the second inclined block 123. One end of the first connecting rod 19 away from the first connecting block 18 is rotatably connected to the second connecting block 125. The second inclined block 123 is fixedly connected to the surface of the first U-shaped plate 121. The first push block 124 moves horizontally and squeezes the inclined surface of the second inclined block 123 to move in the direction close to the semi-toothed disc 126.

[0030] A spring 17 is arranged between the support plate 13 and the clamping plate 15. The front end of the clamping plate 15 is set in a semi-circular arc shape. The square plate 16 is squeezed and pushes the clamping plate 15 to move away from the support plate 13.

[0031] When this embodiment works: During use, the electric push rod 2 is started. The output end of the electric push rod 2 drives the first sleeve 3 to move downward. The downward movement of the first sleeve 3 drives the cross plate 4 to start moving downward. The downward movement of the cross plate 4 drives the first L-shaped plate 11 to move downward. The downward movement of the first L-shaped plate 11 drives the inclined block 12 on the surface to move downward. The inclined block 12 moves downward and contacts the square plate 16 and starts to squeeze. When the square plate 16 is squeezed and pushes the clamping plate 15 to move away from the support plate 13, the clamping plate 15 moves and starts to clamp and position the electrical chip 9. At the same time, the soldering pen 5 starts to weld the electrical chip 9, improving the welding accuracy and stability, ensuring the consistency of welding, stabilizing the electrical chip 9 from shaking during welding, and improving the safety during the production process. Subsequently, after the first welding is completed, the electric push rod 2 starts to drive the first sleeve 3 to move upward. The upward movement of the first sleeve 3 drives the cross plate 4 to move upward. The upward movement of the cross plate 4 drives the first connecting block 18 to move upward. The upward movement of the first connecting block 18 drives one end of the first connecting rod 19 to move upward. One end of the first connecting rod 19 moving upward drives the other end to drive the second connecting block 125 to move in the direction close to the second inclined block 123 through the other end. The second connecting block 125 drives the first push block 124 to move. The first push block 124 moves horizontally and squeezes the inclined surface of the second inclined block 123 to move in the direction close to the semi-toothed disc 126. The forward movement of the second inclined block 123 drives the first U-shaped plate 121 to move. The movement of the first U-shaped plate 121 drives the convex block 122 on the surface to move. The movement of the convex block 122 meshes with the semi-toothed disc 126. At this time, the first push block 124 continues to move horizontally and drives the first concave plate 120 to move horizontally under the action of the first U-shaped plate 121, and drives the semi-toothed disc 126 to rotate under the action of the convex block 122. The rotation of the semi-toothed disc 126 drives the electrical chip 9 to rotate, thereby realizing the adjustment of the angle of the electrical chip 9, enabling the soldering pen 5 to weld the other side of the surface of the electrical chip 9, quickly completing the welding of both sides of the chip, reducing manual intervention, ensuring the welding quality, and saving labor costs and production costs.

[0032] Please refer to Figures 1 - 8, on the basis of the above embodiments, in another embodiment of the present invention, the rotating device includes a first chute 21, a convex plate 22, a second concave plate 23, a second U-shaped plate 24, a second connecting rod 25, a second convex block 26, an inclined block 27, a second pushing block 28 and a gear 29. The upward movement of the horizontal plate 4 drives the upward movement of the first L-shaped plate 11. The upward movement of the first L-shaped plate 11 drives the upward movement of the convex plate 22 through the first chute 21. The upward movement of the convex plate 22 drives the rotation of one end of the second connecting rod 25 close to the convex plate 22 and drives the lateral movement of the second connecting rod 25. A first chute 21 is formed on the surface of the first L-shaped plate 11. The convex plate 22 is slidably installed on the inner wall of the first chute 21. The second concave plate 23 is slidably installed above the frame 1. The second U-shaped plate 24 slidably penetrates the surface of the second concave plate 23. One end of the second connecting rod 25 is rotatably installed on the surface of the convex plate 22. The second convex block 26 is fixedly installed on the surface of the second U-shaped plate 24. The inclined block 27 is slidably installed on the surface of the second concave plate 23. The second pushing block 28 is slidably installed on the surface of the second concave plate 23. The gear 29 is fixedly installed on the circumferential surface of the first rotating shaft 7. The second convex block 26 moves forward and contacts the gear 29 to rotate, so that the next electrical chip 9 starts to be welded, realizing the automation of the feeding of the electrical chip 9, improving the welding efficiency, reducing the dependence on manual operation, reducing the errors or instabilities that may occur in manual operation, providing more efficient, accurate and stable working conditions, and being able to improve production efficiency, welding quality and consistency, and is particularly suitable for large-scale automated production.

[0033] A second telescopic spring rod 210 is provided between the second U-shaped plate 24 and the inclined block 27. The inclined block 27 is fixedly connected to the surface of the second U-shaped plate 24. The second pushing block 28 moves laterally and presses the inclined surface of the inclined block 27.

[0034] The second pushing block 28 is slidably connected to the inclined surface of the inclined block 27. The gear 29 meshes with the second convex block 26. The second convex block 26 moves forward and contacts the gear 29 to rotate.

[0035] The recycling device includes a second rotating shaft 31, a second socket cylinder 32, a socket plate 33, a dial plate 34, an L-shaped second plate 35, a third telescopic elastic rod 36, a connecting plate 37, a second chute 38 and a push plate 39. The rotation of the gear 29 drives the first rotating shaft 7 to start rotating. The rotation of the first rotating shaft 7 drives the second socket cylinder 32 to start rotating. The rotation of the second socket cylinder 32 drives the socket plate 33 to start rotating. The rotation of the socket plate 33 drives the dial plate 34 on its surface to start rotating. The second rotating shaft 31 is fixedly installed above the first rotating shaft 7. The second socket cylinder 32 is fixedly installed on the circumferential surface of the second rotating shaft 31. The socket plate 33 is fixedly installed on the circumferential surface of the second socket cylinder 32. The dial plate 34 is fixedly installed on the side surface of the socket plate 33. The L-shaped second plate 35 is fixedly installed above the frame 1. The L-shaped second plate 35 is provided with a second chute 38. The third telescopic elastic rod 36 is fixedly installed on the inner wall of the second chute 38. The connecting plate 37 is fixedly installed at the free end of the third telescopic elastic rod 36. The push plate 39 is fixedly installed below the connecting plate 37. The dial plate 34 starts to rotate and contacts and squeezes the push plate 39 to start moving forward. The push plate 39 slides forward through the third telescopic elastic rod 36 under the connection of the connecting plate 37. The push plate 39 moves forward and squeezes and pushes the electrical chip 9 to discharge materials, thereby greatly improving production efficiency, reducing manual intervention and downtime. Through recycling, welding and repair can be quickly carried out without affecting the production progress.

[0036] The push plate 39 is slidably connected to the surface of the L-shaped second plate 35. The L-shaped second plate 35 is rotatably connected to the circumferential surface of the second rotating shaft 31. The push plate 39 slides forward through the third telescopic elastic rod 36 under the connection of the connecting plate 37.

[0037] When this embodiment works: At the same time, the horizontal plate 4 moves upward to drive the L-shaped first plate 11 to move upward. The upward movement of the L-shaped first plate 11 drives the convex plate 22 to move upward through the first chute 21. The upward movement of the convex plate 22 drives the end of the connecting rod 25 close to the convex plate 22 to rotate and drives the connecting rod 25 to move horizontally. The horizontal movement of the connecting rod 25 drives the other end of itself to start moving horizontally. The horizontal movement of the other end of the connecting rod 25 drives the push block 28 to move horizontally. The push block 28 moves horizontally and squeezes the inclined surface of the inclined block 27. When the inclined block 27 is squeezed, it also squeezes the convex block 26 on the surface of the inclined block 27 to move forward. The forward movement of the convex block 26 contacts and rotates the gear 29, so that the next electrical chip 9 starts to be welded, realizing the automation of the feeding of the electrical chip 9, improving the welding efficiency, reducing the dependence on manual operation, reducing the errors or instabilities that may occur in manual operation, providing more efficient, accurate and stable working conditions, and being able to improve production efficiency, welding quality and consistency, especially suitable for large-scale automated production.

[0038] Meanwhile, the rotation of gear 29 drives the rotation of the first rotating shaft 7. The rotation of the first rotating shaft 7 drives the rotation of the second socket cylinder 32. The rotation of the second socket cylinder 32 drives the rotation of the socket plate 33. The rotation of the socket plate 33 drives the rotation of the dial plate 34 on its surface. The rotation of the dial plate 34 contacts and squeezes the push plate 39 to start moving forward. The push plate 39 slides forward through the telescopic spring rod three 36 under the connection of the connecting plate 37. The forward movement of the push plate 39 squeezes and pushes the electrical chip 9 to discharge materials, thereby greatly improving production efficiency, reducing manual intervention and downtime. Through recycling and processing, welding and repair can be quickly carried out without affecting the production progress.

[0039] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A rotary core welding device for capacitor production and processing, comprising a fixed frame (1) and an electrical chip (9), an electric push rod (2) is fixedly mounted on the top of the frame (1), a sleeve tube (3) is fixedly mounted on the circumferential surface of the output end of the electric push rod (2), a horizontal plate (4) is fixedly mounted on the circumferential surface of the sleeve tube (3), a welding pen (5) is fixedly mounted on the inner wall of the horizontal plate (4), a recovery plate (6) is fixedly mounted on the top of the frame (1), a rotating shaft (7) is rotatably mounted on the top of the fixed frame (1), and a placing plate (8) is fixedly mounted on the circumferential surface of the rotating shaft (7), characterized in that: It also includes a clamping and positioning device, a rotating device and a recovery device; The clamping and positioning device comprises an L-shaped plate (11), an inclined block (12), a support plate (13), a support rod (14), a clamping plate (15), a square plate (16), a connecting block (18), a connecting rod (19), a concave plate (120), a U-shaped plate (121), a convex block (122), an inclined block (123), a push block (124), a connecting block (125), a semi-toothed plate (126) and a telescopic elastic rod (127), wherein the L-shaped plate (11) is fixedly mounted on the side of the horizontal plate (4), the inclined block (12) is fixedly mounted on the side of the L-shaped plate (11), the support plate (13) is fixedly mounted on the surface of the placing plate (8), the support rod (14) slides through the inner wall of the support plate (13), the clamping plate (15) is fixedly mounted on the end of the support rod (14) away from the support plate (13), and the square plate (16) ) is fixedly mounted on one side of the clamping plate (15) close to the supporting plate (13), the connecting block 1 (18) is fixedly mounted on the side of the transverse plate (4), the connecting rod 1 (19) is rotatably mounted on the surface of the connecting block 1 (18), the concave plate 1 (120) is slidably mounted above the frame (1), the U-shaped plate 1 (121) slides through the surface of the concave plate 1 (120), the protrusion 1 (122) is fixedly mounted on one end close to the semi-toothed plate (126), the inclined block 2 (123) is slidably mounted on the surface of the concave plate 1 (120), the push block 1 (124) is slidably mounted on the surface of the concave plate 1 (120), the connecting block 2 (125) is fixedly mounted above the push block 1 (124), the semi-toothed plate (126) is rotatably mounted above the placing plate (8), and the telescopic elastic rod 1 (127) is fixedly mounted on one end of the inclined block 2 (123).

2. The rotary core welding equipment for capacitor production and processing according to claim 1 is characterized in that: The free end of the telescopic elastic rod 1 (127) is fixedly connected to the surface of the concave plate 1 (120), the push block 1 (124) is slidably connected to the inclined surface of the inclined block 2 (123), the end of the connecting rod 1 (19) away from the connecting block 1 (18) is rotatably connected to the connecting block 2 (125), and the inclined block 2 (123) is fixedly connected to the surface of the U-shaped plate 1 (121).

3. The rotary core welding equipment for capacitor production and processing according to claim 2 is characterized in that: A spring (17) is provided between the support plate (13) and the clamping plate (15), and the shape of the front end of the clamping plate (15) is set to be a semi-arc shape.

4. The rotary core welding equipment for capacitor production and processing according to claim 3 is characterized in that: The rotating device comprises a slide groove (21), a convex plate (22), a concave plate (23), a U-shaped plate (24), a connecting rod (25), a convex block (26), a slant block (27), a push block (28) and a gear (29). The surface of the L-shaped plate (11) is provided with a slide groove (21). The convex plate (22) is slidably mounted on the inner wall of the slide groove (21). The concave plate (23) is slidably mounted on the upper side of the frame (1). The U-shaped plate 2 (24) slides through the surface of the concave plate 2 (23), one end of the connecting rod 2 (25) is rotatably mounted on the surface of the convex plate (22), the convex block 2 (26) is fixedly mounted on the surface of the U-shaped plate 2 (24), the inclined block 3 (27) is slidably mounted on the surface of the concave plate 2 (23), the push block 2 (28) is slidably mounted on the surface of the concave plate 2 (23), and the gear (29) is fixedly mounted on the circumferential surface of the rotating shaft 1 (7).

5. The rotary core welding equipment for capacitor production and processing according to claim 4 is characterized in that: A telescopic elastic rod 2 (210) is provided between the U-shaped plate 2 (24) and the inclined block 3 (27), and the inclined block 3 (27) is fixedly connected to the surface of the U-shaped plate 2 (24).

6. The rotary core welding equipment for capacitor production and processing according to claim 5 is characterized in that: The push block 2 (28) is slidably connected to the inclined surface of the inclined block 3 (27), and the gear (29) is meshed with the protrusion 2 (26).

7. The rotary core welding equipment for capacitor production and processing according to claim 6 is characterized in that: The recovery device comprises a second rotating shaft (31), a second sleeve tube (32), a sleeve plate (33), a dial plate (34), a second L-shaped plate (35), a third telescopic elastic rod (36), a connecting plate (37), a second slide groove (38) and a push plate (39), wherein the second rotating shaft (31) is fixedly mounted above the first rotating shaft (7), the second sleeve tube (32) is fixedly mounted on the circumferential surface of the second rotating shaft (31), and the sleeve plate (33) is fixedly mounted on the sleeve tube (33). The circumferential surface of the sliding plate (32) is fixedly mounted on the side of the sleeve plate (33), the L-shaped plate (35) is fixedly mounted on the top of the frame (1), the L-shaped plate (35) is provided with a second slide groove (38), the telescopic spring rod (36) is fixedly mounted on the inner wall of the second slide groove (38), the connecting plate (37) is fixedly mounted on the free end of the telescopic spring rod (36), and the push plate (39) is fixedly mounted below the connecting plate (37).

8. The rotary core welding equipment for capacitor production and processing according to claim 7 is characterized in that: The push plate (39) is slidably connected to the surface of the second L-shaped plate (35), and the second L-shaped plate (35) is rotatably connected to the circumferential surface of the second rotating shaft (31).

Citation Information

Patent Citations

  • A rotary core welding equipment for capacitor manufacturing and processing

    CN113695800B

  • Rotary core welding equipment for capacitor production and processing

    CN113695800A

  • Gap welding equipment for U-shaped stainless steel pipe

    CN118699627A