Conveying equipment for capacitor manufacturing and processing

By designing capacitor conveying equipment including screen plate and guide rod system, the problem that existing equipment cannot automatically classify capacitors is solved, and the automatic classification and conveying of capacitors is realized, which improves working efficiency.

CN223011116UActive Publication Date: 2025-06-24GUOSHAN ELECTRONICS (JIANGSU) CO LTD
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Patent Information

Application Number
CN202422028660.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-06-24
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

Existing capacitor conveying equipment cannot be classified and transported according to the size of the capacitor, and it requires manual classification, which is time-consuming and labor-intensive, affecting work efficiency.

Method used

A conveying equipment for capacitor manufacturing and processing is designed, including a classification device and a conveying device. The classification device automatically classifies the capacitors through the screen plate and the guide rod system. The screen plate improves the classification efficiency through spring vibration, and the classified capacitors are transported through the conveying device.

Benefits of technology

Automatic classification and conveying of capacitors is realized, manual workload is reduced, and work efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223011116U_ABST
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Abstract

The utility model discloses conveying equipment for capacitor manufacturing and processing, and relates to the technical field of capacitor manufacturing, the conveying equipment comprises a classification device, the left side and the right side in the classification device are fixedly provided with second guide rods, the exteriors of the two second guide rods are in sliding sleeve connection with second guide blocks, and the second guide blocks are in sliding sleeve connection with the second guide rods. A sieve plate is arranged between the two second guide blocks, a through hole is formed in the right side of the sieve plate, first springs connected to the exteriors of the two second guide rods in a sleeving mode are arranged at the lower ends of the two second guide blocks, a first guide plate is arranged on the right side of the lower end of the sieve plate, and a second guide plate is arranged on the right side of the first guide plate; classification boxes are arranged on the two sides of the lower portion of the classification device correspondingly, discharging ports are formed in the lower portions of the two classification boxes correspondingly, and conveying devices are arranged on the lower portions of the two classification boxes correspondingly. According to the capacitor conveying device capable of automatically classifying, the subsequent working efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of capacitor manufacturing, in particular to a conveying device for capacitor manufacturing and processing. Background Technique

[0002] A capacitor is a device that stores electric charge. It consists of two conductors that are close to each other with a layer of non-conductive insulating medium in between. Generally, its ability to store electric charge is called capacitance, denoted by the letter C. Capacitors are one of the most widely used electronic components in electronic devices and are widely used in aspects such as DC blocking and AC passing, coupling, bypassing, filtering, tuning circuits, energy conversion, and control in circuits.

[0003] For example, patent number CN202022245906.3 discloses a conveying device for capacitor production, whose structure includes a vibrating disk, a pulse oscillator, a main motor, a rotating disk, and a conveying device; the vibrating disk includes a conveying surface and a limiting notch; the vibrating disk is fixedly connected above the pulse oscillator, and the pulse oscillator is fixedly connected above the main motor; the rotating disk includes a feeding port, a rotating gear, and a pulley; the limiting notch is located above the feeding port; the conveying device includes a limiting track, a gear belt, a driving gear, and a secondary motor; the rotating disk is located above the conveying device. In the utility model, the bottom surface of the vibrating disk is a convex panel. After most of the capacitors in the disk are conveyed, when there are only a few capacitors left, the capacitors will automatically slide along the convex wall at the bottom of the disk to the edge and actively enter the bottom end of the conveying surface. The pulse oscillator drives the vibrating disk to generate vibrations. During the vibration process, the capacitors will move along the conveying surface to the top of the vibrating disk and leave the vibrating disk from the limiting notch;

[0004] The conveying device in this patent only conducts conveying processing on capacitors, but it cannot classify and transport capacitors according to their sizes and requires manual classification, which is time-consuming and laborious and reduces the subsequent work efficiency. Content of the Utility Model

[0005] Aiming at the deficiencies of the prior art, the utility model provides a conveying device for capacitor manufacturing and processing, which solves the problem that the conveying device only conducts conveying processing on capacitors, but it cannot classify and transport capacitors according to their sizes and requires manual classification, which is time-consuming and laborious and reduces the subsequent work efficiency.

[0006] To achieve the above object, the utility model is realized by the following technical solutions: A conveying device for capacitor manufacturing and processing, including a classification device. On the left and right sides inside the classification device, second guide rods are fixedly arranged. On the outer sides of the two second guide rods, second guide blocks are slidably sleeved. Between the two second guide blocks, a sieve plate is arranged. Through holes are opened inside the right side of the sieve plate. At the lower ends of the two second guide blocks, a first spring sleeved on the outer sides of the two second guide rods is arranged. On the right side of the lower end of the sieve plate, a first guide plate is arranged. On the right side of the first guide plate, a second guide plate is arranged. On both sides below the classification device, classification boxes are arranged. Below the two classification boxes, discharge ports are arranged. Below the two classification boxes, conveying devices are arranged;

[0007] On the left and right sides of the classification device, support blocks are arranged. On one side of the left support block, a motor is arranged. On the right side of the motor, a double-headed screw rod is connected. On the outer sides of both sides of the double-headed screw rod, threaded blocks are meshed and sleeved. On the left and right sides of the front end face of the threaded block, connection blocks are fixedly arranged. On the rear end face of the classification box, an installation block located between the two connection blocks is arranged. A second through hole groove is opened inside the installation block. Inside the two connection blocks, first through hole grooves are opened. Inside the first through hole groove and the second through hole groove, insertion rods are connected through. At the upper and lower ends inside the left and right sides of the insertion rod, spring grooves are arranged. Inside the spring groove, a second spring is arranged. At one end of the second spring, a trapezoidal block is arranged. On the left and right sides of the insertion rod, limit fixing blocks are arranged. At the upper and lower ends inside the limit fixing block, trapezoidal grooves are opened. The trapezoidal block is clamped into the trapezoidal groove.

[0008] Preferably, inside the two conveying devices, conveyor belts are arranged. Inside the two conveyor belts, a plurality of evenly arranged conveyor rollers are arranged.

[0009] Preferably, inside the limit fixing block, a slot is arranged. The insertion rod is inserted into the slot. On the surface of the limit fixing block, a rubber pad is arranged.

[0010] Preferably, at the upper and lower ends of the double-headed screw rod, first guide rods located between the two support blocks are arranged. At the upper and lower ends of the two threaded blocks, first guide blocks slidably sleeved on the outer sides of the two first guide rods are arranged.

[0011] Preferably, above the classification device, a feed hopper is arranged. Inside the feed hopper, a feed inlet is opened.

[0012] Preferably, below the two conveying devices, a base is arranged. At the four end feet below the base, support feet are arranged.

[0013] Preferably, reinforcing blocks are fixedly arranged on both the left and right sides of the two conveying devices above the base, and a triangular support frame is arranged below the motor.

[0014] Preferably, a storage opening is arranged inside each of the two sorting bins, and extension blocks are fixedly arranged on both sides of the sieve plate on one side of the two second guiding blocks.

[0015] Beneficial effects

[0016] The present utility model provides a conveying device for capacitor processing. Compared with the prior art, the following beneficial effects are achieved:

[0017] 1. When the capacitor is poured into the sorting device through the feed hopper, the sieve plate inside classifies capacitors of different sizes. At the same time, the second guiding blocks sleeved outside the two second guiding rods slide, causing the sieve plate to vibrate by compressing the first spring, improving the classification and screening efficiency. Finally, they enter the sorting bins through the first guiding plates respectively, and the remaining capacitors enter the second sorting bin through the through holes, and finally fall onto the surface of the conveying device through the discharge port for conveying. It can automatically classify, reducing the manual workload and improving the subsequent work efficiency.

[0018] 2. One end of the mounting block of the sorting bin is clamped between the two connecting blocks, then fixed by inserting the insertion rod through the first through-hole groove and the second through-hole groove, and finally, by installing limit fixing blocks on both sides of the insertion rod, the trapezoidal blocks at the upper and lower ends inside the insertion rod are clamped into the trapezoidal grooves inside the limit fixing blocks to strengthen the fixation, thus completing the installation of the sorting bin. Description of the drawings

[0019] Figure 1 It is a three-dimensional structural schematic diagram of the conveying device of the present utility model;

[0020] Figure 2 It is a top view of the three-dimensional structure of the conveying device of the present utility model;

[0021] Figure 3 It is a partial enlarged structural schematic diagram of the sorting bin of the present utility model;

[0022] Figure 4 It is a cross-sectional structural schematic diagram inside the conveying device of the present utility model;

[0023] Figure 5 It is a cross-sectional structural schematic diagram at the connection of the sorting bin of the present utility model.

[0024] In the figure: 1. Base; 2. Conveyor device; 3. Sorting device; 4. Feeding hopper; 5. Sorting box; 6. Discharge port; 7. Support block; 8. Motor; 9. Double-headed lead screw; 10. First guide rod; 11. Threaded block; 12. First guide block; 13. Connecting block; 14. Limit fixing block; 15. Sieve plate; 16. Extension block; 17. Second guide block; 18. Through hole; 19. First spring; 20. Second guide rod; 21. First guide plate; 22. Second guide plate; 23. Mounting block; 24. First through hole groove; 25. Second through hole groove; 26. Trapezoidal groove; 27. Plug rod; 28. Spring groove; 29. Second spring; 30. Trapezoidal block. Detailed implementation mode

[0025] 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.

[0026] Please refer to Figures 1 - 5 , the present invention provides a technical solution: a conveying device for capacitor manufacturing and processing, including a sorting device 3. Second guide rods 20 are fixedly arranged on both the left and right sides inside the sorting device 3. Second guide blocks 17 are slidably sleeved on the outer sides of the two second guide rods 20. A sieve plate 15 is arranged between the two second guide blocks 17. Through holes 18 are formed inside the right side of the sieve plate 15. First springs 19 sleeved on the outer sides of the two second guide rods 20 are arranged at the lower ends of the two second guide blocks 17. A first guide plate 21 is arranged on the right side of the lower end of the sieve plate 15. A second guide plate 22 is arranged on the right side of the first guide plate 21. Conveyor belts are arranged inside the two conveyor devices 2. A plurality of evenly arranged conveyor rollers are arranged inside the two conveyor belts. A slot is arranged inside the limit fixing block 14. The plug rod 27 is inserted into the slot. A rubber pad is arranged on the surface of the limit fixing block 14. First, when the capacitors are poured into the inside of the sorting device 3 through the feeding hopper 4, the sieve plate 15 inside is used to classify capacitors of different sizes. At the same time, the second guide blocks 17 sleeved on the outer sides of the second guide rods 20 on both sides slide, so that the sieve plate 15 compresses and vibrates through the first spring 19, improving the efficiency of classification and screening;

[0027] On both sides below the sorting device 3, sorting bins 5 are provided. Below both of the two sorting bins 5, discharge ports 6 are provided. Below both of the two sorting bins 5, conveying devices 2 are provided. On both the left and right sides of the sorting device 3, support blocks 7 are provided. On one side of the left support block 7, a motor 8 is provided. On the right side of the motor 8, a double-headed lead screw 9 is connected. On both sides outside the double-headed lead screw 9, threaded blocks 11 are meshed and sleeved. On the left and right sides of the front end face of the threaded block 11, connecting blocks 13 are fixedly provided. On the rear end face of the sorting bin 5, there is a mounting block 23 located between the two connecting blocks 13. At both the upper and lower ends of the double-headed lead screw 9, first guide rods 10 located between the two support blocks 7 are provided. At both the upper and lower ends of the two threaded blocks 11, first guide blocks 12 slidably sleeved outside the two first guide rods 10 are provided. Above the sorting device 3, a feed hopper 4 is provided. Inside the feed hopper 4, a feed opening is provided. Finally, they enter the sorting bin 5 through the first guide plate 21 respectively. The remaining capacitors enter the second sorting bin 5 through the through holes 18. Finally, they fall onto the surface of the conveying device 2 through the discharge port 6 for conveying. It can automatically sort, reducing the workload of manual labor and improving the subsequent work efficiency;

[0028] Inside the mounting block 23, a second through-hole groove 25 is provided. Inside both of the two connecting blocks 13, first through-hole grooves 24 are provided. Inside the first through-hole grooves 24 and the second through-hole groove 25, insertion rods 27 are connected through. At the upper and lower ends of the left and right sides inside the insertion rod 27, spring grooves 28 are provided. Inside the spring grooves 28, second springs 29 are provided. At one end of the second spring 29, a trapezoidal block 30 is provided. On both the left and right sides of the insertion rod 27, limit fixing blocks 14 are provided. At the upper and lower ends inside the limit fixing blocks 14, trapezoidal grooves 26 are provided. The trapezoidal block 30 is snapped into the trapezoidal groove 26. Below the two conveying devices 2, a base 1 is provided. At the four end feet below the base 1, support feet are provided. On both the left and right sides of the two conveying devices 2, strengthening blocks located above the base 1 are fixedly provided. Below the motor 8, a triangular support frame is provided. Inside both of the two sorting bins 5, storage openings are provided. On both sides of the sieve plate 15, extension blocks 16 located on one side of the two second guide blocks 17 are fixedly provided. For this sorting bin 5, by snapping the mounting block 23 at one end between the two connecting blocks 13, then through the insertion rod 27 passing through the first through-hole groove 24 and the second through-hole groove 25 and inserting through for fixation. Finally, by installing limit fixing blocks 14 on both sides of the insertion rod 27, the trapezoidal blocks 30 at the upper and lower ends inside the insertion rod 27 are both snapped into the trapezoidal grooves 26 inside the limit fixing blocks 14 to strengthen the fixation, and thus the installation of the sorting bin 5 can be completed.

[0029] During operation, first, the capacitors are poured into the interior of the sorting device 3 through the feed hopper 4 via the capacitor. Then, the capacitors of different sizes are sorted by the sieve plate 15 inside. Meanwhile, it slides through the second guide blocks 17 sleeved outside the second guide rods 20 on both sides, causing the sieve plate 15 to vibrate by compressing the first spring 19, improving the sorting and screening efficiency. Finally, they enter the sorting box 5 through the first guide plate 21 respectively, and the remaining capacitors enter the second sorting box 5 through the through holes 18. Finally, they fall onto the surface of the conveying device 2 through the discharge port 6 for conveying. It can automatically sort, reducing the manual workload and improving the subsequent work efficiency. The sorting box 5 is installed by clamping the mounting block 23 at one end between the two connecting blocks 13, then inserting and fixing it through the insertion rod 27 passing through the first through-hole groove 24 and the second through-hole groove 25. Finally, by installing the limit fixing blocks 14 on both sides of the insertion rod 27, the trapezoidal blocks 30 at the upper and lower ends inside the insertion rod 27 are both clamped into the trapezoidal grooves 26 inside the limit fixing blocks 14 to strengthen the fixation, thus completing the installation of the sorting box 5.

[0030] Meanwhile, the content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

Claims

1. A conveying device for capacitor manufacturing and processing, comprising a sorting device (3), characterized in that: Second guide rods (20) are fixedly arranged on both left and right sides of the interior of the classification device (3), and second guide blocks (17) are slidably sleeved on the exteriors of the two second guide rods (20). A sieve plate (15) is arranged between the two second guide blocks (17), and a through hole (18) is opened inside the right side of the sieve plate (15). The lower ends of the two second guide blocks (17) are provided with first springs (19) sleeved on the exteriors of the two second guide rods (20). A first guide plate (21) is arranged on the right side of the lower end of the sieve plate (15), and a second guide plate (22) is arranged on the right side of the first guide plate (21). Classification boxes (5) are arranged on both sides below the classification device (3), and discharge ports (6) are arranged below the two classification boxes (5), and conveying devices (2) are arranged below the two classification boxes (5); The classification device (3) is provided with support blocks (7) on both sides, a motor (8) is provided on one side of the left support block (7), a double-headed screw (9) is connected to the right side of the motor (8), both sides of the outside of the double-headed screw (9) are meshed with threaded blocks (11), and the left and right sides of the front end surface of the threaded block (11) are fixedly provided with connecting blocks (13), and the rear end surface of the classification box (5) is provided with a mounting block (23) located between the two connecting blocks (13), and a second through hole groove (25) is provided inside the mounting block (23), and the insides of the two connecting blocks (13) are both opened. A first through hole groove (24) is provided, and the first through hole groove (24) and the second through hole groove (25) are both penetrated by an insertion rod (27), and the upper and lower ends of the left and right sides of the insertion rod (27) are both provided with spring grooves (28), and the second spring (29) is provided inside the spring groove (28), and a trapezoidal block (30) is provided at one end of the second spring (29), and the left and right sides of the insertion rod (27) are both provided with a limited fixed block (14), and the upper and lower ends of the limited fixed block (14) are both provided with a trapezoidal groove (26), and the trapezoidal block (30) is inserted into the trapezoidal groove (26).

2. The conveying equipment for capacitor manufacturing and processing according to claim 1, characterized in that: Conveyor belts are arranged inside the two conveying devices (2), and multiple evenly arranged conveyor rollers are arranged inside the two conveyor belts.

3. The conveying equipment for capacitor manufacturing and processing according to claim 1, characterized in that: The interior of the position-limiting fixing block (14) is provided with a slot, the insertion rod (27) is inserted into the slot, and the surface of the position-limiting fixing block (14) is provided with a rubber pad.

4. The conveying equipment for capacitor manufacturing and processing according to claim 1, characterized in that: The upper and lower ends of the double-headed screw rod (9) are both provided with a first guide rod (10) located between the two support blocks (7), and the upper and lower ends of the two threaded blocks (11) are both provided with a first guide block (12) slidably sleeved on the outside of the two first guide rods (10).

5. The conveying equipment for capacitor manufacturing and processing according to claim 1, characterized in that: A feed hopper (4) is arranged above the classification device (3), and a feed port is provided inside the feed hopper (4).

6. The conveying equipment for capacitor manufacturing and processing according to claim 1, characterized in that: A base (1) is provided below the two conveying devices (2), and four end feet below the base (1) are all provided with supporting feet.

7. The conveying equipment for capacitor manufacturing and processing according to claim 6, characterized in that: Reinforcement blocks located above the base (1) are fixedly arranged on the left and right sides of the two conveying devices (2), and a triangular support frame is arranged below the motor (8).

8. The capacitor manufacturing and processing conveying equipment according to claim 1, characterized in that: The two classification boxes (5) are each provided with a material storage opening, and both sides of the sieve plate (15) are fixedly provided with an extension block (16) located on one side of the two second guide blocks (17).

Citation Information

Patent Citations

  • Conveying device for capacitor production

    CN214358644U