Battery carbon stick dispensing feed mechanism and method of use

CN115092459BActive Publication Date: 2026-08-18CHENZHOU HAOYING GRAPHITE CARBON PROD CO LTD
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Patent Information

Application Number
CN202210560253.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-23
Publication Date
2026-08-18
Estimated Expiration
2042-05-23

AI Technical Summary

Technical Problem

[0002]现有的碳棒在送料加工包装时,多组料棒会集中进行运输装盘,再进行后续人工检测包装,但是碳棒在集中装盘时,多组碳棒之间便会相互贴合接触碰撞挤压,导致多组碳棒自身会造成磨损,严重甚至断裂,导致碳棒自身质量受到影响,为此,我们提出了电池碳棒分料送料机构及其使用方法

Benefits of technology

[0021] This invention provides a battery carbon rod feeding mechanism and its usage method. It has the following beneficial effects:

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Abstract

The application relates to the technical field of battery processing, and discloses a battery carbon rod distributing and feeding mechanism and a using method thereof, which comprises two groups of first driving shafts and first driving rollers fixedly installed on the outer sides of the first driving shafts, and the two groups of first driving rollers are movably connected together through guide belts. In the application, after the carbon rods are transferred to a packaging box through feeding and distributing, the carbon rods can be guided to the inside of the packaging box by downward rolling through the guide plates and the guide baffles. When the carbon rods fall onto the bottom loading plate, the carbon rods can be tilted and rolled downward along with the loading plate to the discharging groove on the bottom inclined side of the loading plate for fitting and clamping. When multiple groups of carbon rods fall downward in sequence, the carbon rods can be gradually clamped into the discharging grooves on the loading plate. In this way, the bottom loading plate can be pressed downward to be fitted and supported with the bottom of the inner box through the bottom support under the extrusion of the multiple groups of carbon rods, so that the multiple groups of carbon rods can be prevented from colliding and abrading with each other, and the packaging and processing quality of the carbon rods is improved.
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Description

Technical Field

[0001] This invention relates to the field of battery processing technology, and in particular to a battery carbon rod feeding mechanism and its usage method. Background Technology

[0002] In existing carbon rod feeding, processing, and packaging processes, multiple sets of carbon rods are transported and palletized together, followed by manual inspection and packaging. However, when carbon rods are palletized together, they come into contact with each other, collide, and are squeezed, causing wear and tear on the carbon rods themselves, and even breakage, which affects the quality of the carbon rods. To address this, we have proposed a battery carbon rod feeding and dispensing mechanism and its usage method. Summary of the Invention

[0003] (a) Technical problems to be solved

[0004] The present invention mainly addresses the technical problems existing in the prior art, and provides a battery carbon rod feeding mechanism and its usage method.

[0005] (II) Technical Solution

[0006] To achieve the above objectives, the present invention adopts the following technical solution: a battery carbon rod feeding mechanism, comprising two sets of first drive shafts and first drive rollers fixedly installed on the outside of the first drive shafts. The two sets of first drive rollers are movably connected together by a guide belt. Two sets of second drive shafts are provided on one side of the first drive rollers, and second drive rollers are fixedly installed on the outer surfaces of both sets of second drive shafts. The two sets of second drive rollers are movably connected together by a conveyor belt. A feeding box is provided on the outer side of the second drive shafts. The feeding box is a circular hollow box. A third drive roller is connected through one side of the inner side of the feeding box. A connecting roller is fixedly installed on the outer surface of the third drive roller. A connecting roller is fixedly installed on the outer surface of the connecting roller. A guide sleeve is used for feeding and distributing carbon rods. The guide sleeve is annular and elastic. A carbon rod is placed on the top of the guide belt. A packaging box for collecting and packaging carbon rods is placed at the bottom of the feeding box. The packaging box is a rectangular hollow box. A limiting groove is opened on one side of the packaging box, extending horizontally to the other side of the inside of the packaging box. The limiting groove is connected to the inside of the packaging box. Multiple inner boxes are set inside the packaging box. The inner boxes are rectangular hollow boxes with open tops. The inner boxes are movably engaged with the limiting grooves. A loading plate for distributing carbon rods is set inside the inner boxes. The loading plate is rectangular and elastic. A discharge groove is opened on the top of the loading plate.

[0007] Preferably, the side surface of the filling plate near the inner box is movably connected to one side of the inner box via a connecting mechanism, a support spring is fixedly installed on the bottom edge side surface of the filling plate, the end of the support spring away from the filling plate is fixedly connected to one side surface inside the inner box, and a bottom support is fixedly installed on the bottom of the filling plate.

[0008] Preferably, the outer surface of the guide belt is fixedly equipped with a plurality of equally spaced deceleration convex pads for uniformly guiding the carbon rods, and the deceleration convex pads are arc-shaped pads.

[0009] Preferably, the conveyor belt is fitted with an outer pad, and the outer surface of the outer pad has a plurality of bonding grooves for discharging and separating carbon rods. The bonding grooves are arc-shaped, and the outer surface of the carbon rods is bonded to the inside of the bonding grooves.

[0010] Preferably, a rotating shaft is provided between the second drive roller and the feeding box. A circular roller is fixedly installed on the outer surface of the rotating shaft. Several material transfer plates are fixedly installed on the outer surface of the circular roller to guide and transfer carbon rods in pairs. The material transfer plates are inclined plates. One set of the second drive shaft and the rotating shaft are movably connected together by a linkage belt.

[0011] Preferably, the outer surface of the feeding box is provided with a feeding groove for feeding carbon rods on the side near the circular roller. The feeding groove is rectangular and sloping downwards. A feeding guide plate for guiding the material is fixedly installed inside the feeding groove. The outer surface of the guiding sleeve is provided with a plurality of guiding grooves for guiding the carbon rods. The guiding grooves are arc-shaped. An alarm device is provided on the outside of the feeding box to detect and position the carbon rods on the guiding sleeve one by one. An alarm light that can emit an alarm is provided on the top of the alarm device.

[0012] Preferably, a square groove is formed on the outer surface of the feeding bin near the alarm device. An elastic pad is provided inside the square groove. The elastic pad is arc-shaped and has deformation characteristics. A trigger button for activating the alarm device is provided on the side of the alarm device near the elastic pad. A trigger block for pressing the trigger button is fixedly installed on the side surface of the elastic pad near the trigger button. Magnetic blocks are fixedly installed on the corresponding sides of the trigger block and the trigger button.

[0013] Preferably, the outer surface of the feeding compartment is provided with a feeding trough for feeding carbon rods on the side near the packaging box. A feeding guide plate is fixedly installed on one side of the inner surface of the feeding trough. The feeding guide plate is a rectangular downward inclined plate. A feeding baffle that cooperates with the feeding guide plate is fixedly installed on the outer surface of the feeding compartment. The feeding baffle is an L-shaped plate.

[0014] Preferably, one end of the feeding box has several slots that cooperate with the guide trough. The outside of the feeding box is provided with a push plate. A detection push rod that can push and position the carbon rod inside the guide trough is fixedly installed on the end of the push plate near the slot. The push plate is movably inserted into the slot through the detection push rod. A push handle that can push the push plate is provided on the side surface of the push plate away from the feeding box.

[0015] The method of using the battery carbon rod feeding mechanism includes the following steps:

[0016] S1: The formed carbon rods are placed on the guide belt and then transferred sequentially through the bonding groove on the conveyor belt. The transfer plate on the round roller then guides the carbon rods to the feeding box for inspection.

[0017] S2: Start the connecting roller to feed the carbon rod and perform positioning detection through the alarm device;

[0018] S3: The push handle controls the detection push rod to be pushed into the feeding bin to move and position multiple carbon rods and detect defective products;

[0019] S4: After the carbon rods have been inspected, they are sent to the packaging box and packaged by the inner loading plate.

[0020] Beneficial effects

[0021] This invention provides a battery carbon rod feeding mechanism and its usage method. It has the following beneficial effects:

[0022] (1) The battery carbon rod feeding and dispensing mechanism and its usage method: The guide belt, conveyor belt, feeding bin, and packaging box as a whole device can be used for powder feeding, inspection, and packaging of external carbon rods. In traditional carbon rod feeding and packaging, multiple groups of carbon rods are transported and palletized together, and then manually inspected and packaged. However, when carbon rods are palletized together, multiple groups of carbon rods will come into contact, collide, and be squeezed together, causing wear and even breakage of the carbon rods themselves, which affects the quality of the carbon rods. After the carbon rods are fed to the packaging box through the feeding bin, they can roll downwards into the packaging box through the guide plate and guide baffle. The inner box can be inserted sequentially from bottom to top inside the carton. The inner box is equipped with an inclined loading plate. When the carbon rods fall onto the loading plate at the bottom, they can roll downwards with the loading plate and fit into the discharge groove on the inclined side of the loading plate. As multiple sets of carbon rods fall downwards in sequence, they will gradually fall onto the loading plate and fit into the discharge groove. In this way, the loading plate at the bottom is pressed down by multiple sets of carbon rods and is supported by the bottom support against the bottom of the inner box. Similarly, the multiple loading plates at the top can sequentially package the carbon rods, avoiding collisions and compression between multiple sets of carbon rods. This achieves the effect of avoiding collisions and wear between multiple sets of carbon rods and improving the packaging quality of the carbon rods.

[0023] (2) The battery carbon rod feeding mechanism and its usage method: The multiple groups of carbon rods are first conveyed sequentially by the guide belt outside the first drive roller. After the external carbon rods are processed, the carbon rods can fall onto the guide belt and roll downwards. Multiple sets of deceleration convex pads are installed on the outer surface of the guide belt. The deceleration convex pads have an arc-shaped appearance. When the carbon rods fall onto the guide belt and roll downwards, the carbon rods will pass through multiple sets of deceleration convex pads in sequence, so that the falling carbon rods are buffered and decelerated in sequence, so that they are fed evenly one by one, avoiding concentrated feeding and transmission of carbon rods, and making multiple groups of carbon rods roll and contact each other, thereby achieving the effect of feeding carbon rods evenly and avoiding carbon rod wear.

[0024] (3) The battery carbon rod feeding mechanism and its usage method: The outer surface of the outer pad is provided with several equally spaced bonding grooves. When the carbon rods fall and roll down in sequence, as the outer pad rotates, multiple sets of carbon rods can fall into the bonding grooves. The carbon rods are individually packaged and stored through multiple sets of bonding grooves, avoiding the carbon rods from rolling on the outer wall of the conveyor belt. This achieves the effect of limiting the feeding of multiple sets of carbon rods and improving the feeding efficiency.

[0025] (4) The battery carbon rod feeding mechanism and its usage method: When the second drive roller drives the outer cover pad to rotate, the carbon rods that are limited and packaged inside the bonding groove will move and be fed. The transfer plate on the round roller can rotate to collect the carbon rods falling from the bonding groove under the drive of the linkage belt. When the transfer plate on the round roller rotates the carbon rod to the position of the feed guide plate, it will enter the guide groove on the outside of the guide sleeve. When the sleeve roller rotates and drives the guide sleeve to rotate, the guide sleeve can drive the carbon rod to the side of the elastic pad through multiple sets of guide grooves. If the diameter of the carbon rod entering the guide groove is large, the carbon rod will squeeze the guide sleeve when the guide sleeve rotates and rotates to the elastic pad. The elastic pad itself has elasticity. When a larger diameter carbon rod moves to the elastic pad, the elasticity of the guide sleeve will squeeze the carbon rod out and press against the elastic pad. The trigger block on the elastic pad can then squeeze the trigger button on the side of the alarm device. The trigger button and the trigger block can be quickly attracted by a magnetic block, so the trigger button on the alarm device can be quickly squeezed and activated. At this time, the alarm light on the top of the alarm device will be triggered. After receiving the alarm device information, the overall drive device on the sleeve roller will stop. The carbon rod that has passed through the elastic pad can be driven to the bottom guide plate for discharge and subsequent packaging. At this time, the oversized carbon rod can be extracted and pulled out from the open side of the feeding box, thus achieving the effect of automatic detection, positioning and removal of carbon rods.

[0026] (5) The battery carbon rod feeding mechanism and its usage method: The other end of the feeding box is equipped with a push plate. When multiple sets of carbon rods enter the feeding box, the carbon rods will be divided into each set of guide grooves for feeding. At this time, the multiple sets of detection push rods on the push plate can be pushed by the push handle, so that the detection push rods are inserted into the slots to push and squeeze the carbon rods in each set of guide grooves. When the length specification of the carbon rod is not up to standard, when the carbon rod enters the guide groove, the detection push rod will push the carbon rod when it enters the slot. Under normal standard conditions, the other end of the carbon rod can be moved to be horizontally aligned with the open side of the feeding box and the other side of the feeding box. The carbon rods that are too long or too short will protrude from the inside of the feeding box or have one end in the feeding box. At this time, these non-standard carbon rods can be taken out one by one, thereby achieving the effect of convenient detection and positioning of the carbon rods. Attached Figure Description

[0027] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.

[0028] The structures, proportions, sizes, etc. illustrated in this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed herein, and are not intended to limit the conditions under which the present invention can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and objectives that the present invention can produce, should still fall within the scope of the technical content disclosed in the present invention.

[0029] Figure 1 This is a structural diagram of the present invention;

[0030] Figure 2 For the present invention Figure 1 Enlarged view of A in the middle;

[0031] Figure 3 For the present invention Figure 1 Enlarged view of B in the middle;

[0032] Figure 4 For the present invention Figure 1 Enlarged view of C;

[0033] Figure 5 For the present invention Figure 1 Enlarged view of D;

[0034] Figure 6 For the present invention Figure 1 Enlarged view of E in the middle;

[0035] Figure 7 For the present invention Figure 1 Enlarged view of F in the middle;

[0036] Figure 8 This is a partial schematic diagram of the detection push rod of the present invention.

[0037] Legend:

[0038] 1. First drive shaft; 2. First drive roller; 3. Guide belt; 4. Second drive shaft; 5. Second drive roller; 6. Conveyor belt; 7. Feed box; 8. Third drive roller; 9. Connecting roller; 10. Guide sleeve; 11. Guide chute; 12. Carbon rod; 13. Packaging box; 14. Limiting groove; 15. Inner box; 16. Loading plate; 17. Discharge chute; 18. Connecting mechanism; 19. Support spring; 20. Bottom support; 21. Discharge chute; 22. 23. Guide plate; 24. Guide baffle; 25. Deceleration pad; 26. Outer layer pad; 27. Adhesion groove; 28. Rotary shaft; 29. ​​Circular roller; 30. Material transfer plate; 31. Linkage belt; 32. Feed chute; 33. Feed guide plate; 34. Square groove; 35. Elastic pad; 36. Alarm device; 37. Alarm light; 38. Trigger button; 39. Trigger block; 40. Magnetic block; 41. Slot; 42. Push plate; 43. Detection push rod; 44. Push handle. Detailed Implementation

[0039] The technical solution of the present invention will be further described in detail below through embodiments and in conjunction with the accompanying drawings.

[0040] Example: Battery carbon rod feeding mechanism, such as Figures 1-8As shown, the system includes two sets of first drive shafts 1 and first drive rollers 2 fixedly mounted on the outside of the first drive shafts 1. The two sets of first drive rollers 2 are movably connected together by a guide belt 3. Two sets of second drive shafts 4 are provided on one side of the first drive rollers 2. Second drive rollers 5 are fixedly mounted on the outer surface of each set of second drive shafts 4. The two sets of second drive rollers 5 are movably connected together by a conveyor belt 6. A feeding box 7 is provided on the outer side of the second drive shafts 4. The feeding box 7 is a circular hollow box. A third drive roller 8 is connected through the inner side of the feeding box 7. A connecting roller 9 is fixedly mounted on the outer surface of the third drive roller 8. A guide sleeve 10 for distributing and feeding external material bars is fixedly mounted on the outer surface of the connecting roller 9. 10 is an annular pad and the guide sleeve 10 itself is elastic. A carbon rod 12 is set on the top of the guide belt 3. Several guide grooves 11 for guiding the carbon rod 12 are opened on the outer surface of the guide sleeve 10. The guide grooves 11 are arc-shaped grooves. The bottom of the feeding box 7 is set with a packaging box 13 for collecting and packaging the carbon rod 12. The packaging box 13 is a rectangular hollow box. A limiting groove 14 is opened on one side surface of the packaging box 13, which extends horizontally to the other side surface inside the packaging box 13. The limiting groove 14 is connected to the inside of the packaging box 13. Multiple sets of inner boxes 15 are set inside the packaging box 13. The inner box 15 is a rectangular hollow box and the top of the inner box 15 is open. The inner box 15 is movably engaged with the limiting groove 14 inside. The interior of box 15 is provided with a loading plate 16 for dispensing carbon rods 12. The loading plate 16 has a rectangular structure and is elastic. A feeding groove 17 is opened on the top of the loading plate 16. The side surface of the loading plate 16 near the inner box 15 is movably connected to one side of the inner box 15 through a connecting mechanism 18. A support spring 19 is fixedly installed on the bottom edge side surface of the loading plate 16. The end of the support spring 19 away from the loading plate 16 is fixedly connected to one side surface inside the inner box 15. A bottom support 20 is fixedly installed on the bottom of the loading plate 16. A feeding groove 21 for dispensing carbon rods 12 is opened on the outer surface of the feeding compartment 7 near the packaging box 13. A feeding guide is fixedly installed on one side surface inside the feeding groove 21. The material plate 22 and the guide plate 22 are rectangular downwardly inclined plates. A guide baffle 23, which cooperates with the guide plate 22, is fixedly installed on the outer surface of the feeding box 7. The guide baffle 23 is L-shaped. Several equally spaced deceleration convex pads 24 for uniformly guiding the carbon rods 12 are fixedly installed on the outer surface of the guide belt 3. The deceleration convex pads 24 are arc-shaped. An outer layer cover 25 is sleeved on the outside of the conveyor belt 6. Several bonding grooves 26 are formed on the outer surface of the outer layer cover 25 for discharging and separating the carbon rods 12. The bonding grooves 26 are arc-shaped. The outer surface of the carbon rods 12 is bonded to the inside of the bonding grooves 26. A rotating shaft 27 is provided between the second drive roller 5 and the feeding box 7. A circular roller 28 is fixedly installed on the outer surface of the rotating shaft 27.Several material transfer plates 29 are fixedly installed on the outer surface of the roller 28, which cooperate in pairs to guide and transfer the carbon rods 12. The material transfer plates 29 are inclined plates. One set of second drive shafts 4 and rotating shafts 27 are movably connected together by a linkage belt 30. A feeding groove 31 for feeding carbon rods 12 is opened on the outer surface of the feeding box 7 near the roller 28. The feeding groove 31 is a rectangular downward inclined groove. A feeding guide plate 32 for guiding material is fixedly installed inside the feeding groove 31. A square groove 33 is opened on the outer surface of the feeding box 7 near the alarm device 35. An elastic pad 34 is set inside the square groove 33. The elastic pad 34 is arc-shaped and has deformation characteristics. An alarm device 35 is set on the outside of the feeding box 7 to detect and position the carbon rods 12 on the guide pad 10 one by one. The top of the alarm device 35 An alarm light 36 is provided to emit an alarm. A trigger button 37 for activating the alarm device 35 is located on the side of the alarm device 35 near the elastic pad 34. A trigger block 38 for pressing the trigger button 37 is fixedly installed on the surface of the elastic pad 34 near the trigger button 37. Magnetic blocks 39 are fixedly installed on the corresponding sides of the trigger blocks 38 and the trigger button 37. Several slots 40 that mate with the guide trough 11 are opened at one end of the feeding bin 7. A push plate 41 is provided on the outside of the feeding bin 7. A detection push rod 42 for pushing and positioning the carbon rod 12 inside the guide trough 11 is fixedly installed on the end of the push plate 41 near the slots 40. The push plate 41 is movably inserted into the slots 40 through the detection push rod 42. A push handle 43 for pushing the push plate 41 is provided on the surface of the push plate 41 away from the feeding bin 7.

[0041] The method of using the battery carbon rod feeding mechanism includes the following steps:

[0042] S1: The formed carbon rod 12 is placed on the guide belt 3, and then transferred sequentially through the bonding groove 26 on the conveyor belt 6. The transfer plate 29 on the round roller 28 then guides the carbon rod 12 to the feeding box 7 for inspection.

[0043] S2: Start the connecting roller 9 to feed the carbon rod 12 and perform positioning detection through the alarm device 35;

[0044] S3: The push handle 43 controls the detection push rod 42 to be pushed into the feeding box 7 to push and position multiple carbon rods 12 and detect defective products;

[0045] S4: After the carbon rod 12 is inspected, the feeding box 7 sends it into the packaging box 13 and is then packaged and received by the material loading plate 16 inside the inner box 15.

[0046] Working principle of the invention:

[0047] After the outer carbon rod 12 is processed, it can fall onto the guide belt 3 and roll downwards. As it rolls downwards, it passes through multiple sets of deceleration pads 24, which buffer and slow it down, ensuring even feeding. As the outer cover 25 rotates, the carbon rods fall into the bonding grooves 26, allowing them to be individually packaged and stored, preventing them from rolling on the outer wall of the conveyor belt 6. When the second drive roller 5 rotates the outer cover 25, the carbon rods packaged inside the bonding grooves 26 move and are fed through the transfer plate on the circular roller 28. Driven by the linkage belt 30, the 29 can rotate to collect and load the carbon rods 12 falling from the bonding groove 26. When the material transfer plate 29 on the circular roller 28 rotates the carbon rod 12 to the position of the feed guide plate 32, it will enter the guide groove 11 on the outside of the guide sleeve 10. When the larger diameter carbon rod 12 moves to the elastic pad 34, the elasticity of the guide sleeve 10 will squeeze the carbon rod 12 out and push it against the elastic pad 34. The trigger block 38 on the elastic pad 34 can then press the trigger button 37 on one side of the alarm device 35. At this time, the alarm light 36 on the top of the alarm device 35 will be triggered. The overall drive device on the connecting roller 9 will stop after receiving the information from the alarm device 35. The carbon rod 12 that has passed through the elastic pad 34 will then... The carbon rods can be driven to the bottom guide plate 22 for discharge and subsequent packaging. After multiple sets of carbon rods 12 enter the feeding bin 7, the push handle 43 can push the multiple sets of detection push rods 42 on the push plate 41, causing the detection push rods 42 to insert into the slots 40 and push and squeeze the carbon rods 12 inside each set of guide grooves 11. When the length of the carbon rod 12 is not up to standard, the detection push rod 42 will push the carbon rod 12 when it enters the slot 40. Under normal conditions, the other end of the carbon rod 12 can be moved to be horizontally aligned with the open side of the feeding bin 7. The longer or shorter carbon rods 12 will then protrude from the feeding bin 7 or have one end inside the feeding bin 7. At this time, these carbon rods can be discharged. The non-standard carbon rods 12 are removed one by one. After being fed into the packaging box 13 through the feeding compartment 7, the carbon rods 12 are guided downwards through the guide plate 22 and the guide baffle 23 into the packaging box 13. The inner box 15 can then be inserted into the packaging box 13 from bottom to top. When the carbon rods 12 fall onto the bottom loading plate 16, they can roll downwards along with the loading plate 16 and fit into the discharge groove 17 on the inclined side of the bottom of the loading plate 16. As multiple sets of carbon rods 12 fall downwards in sequence, they gradually fall onto the loading plate 16 and fit into the discharge groove 17. In this way, the bottom loading plate 16 is pressed down by the multiple sets of carbon rods 12, and is supported by the bottom support 20 against the bottom of the inner box 15.Similarly, the multiple assembly plates 16 above can be used to sequentially package the carbon rods 12.

[0048] The foregoing has shown and described the basic principles and main features of the present invention, namely, its advantages. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A battery carbon rod feeding mechanism, comprising two sets of first drive shafts (1) and first drive rollers (2) fixedly mounted on the outside of the first drive shafts (1), the two sets of first drive rollers (2) being movably connected together by a guide belt (3), two sets of second drive shafts (4) being provided on one side of the first drive rollers (2), and second drive rollers (5) being fixedly mounted on the outer surface of each of the two sets of second drive shafts (4), the two sets of second drive rollers (5) being movably connected together by a conveyor belt (6), characterized in that: A feeding box (7) is provided on the outer side of the second drive shaft (4). A third drive roller (8) is connected through the inner side of the feeding box (7). A sleeve roller (9) is fixedly installed on the outer surface of the third drive roller (8). A guide sleeve (10) for feeding external material bars is fixedly installed on the outer surface of the sleeve roller (9). The guide sleeve (10) is annular and elastic. A carbon rod (12) is provided at the top of the guide belt (3). A packaging box (13) is provided at the bottom of the feeding box (7). A horizontal through-hole is opened on one side surface of the packaging box (13). The packaging box (13) has a limiting groove (14) on the other side surface inside. The packaging box (13) is provided with multiple sets of inner boxes (15). The inner box (15) is provided with a loading plate (16) for dispensing carbon rods (12). The loading plate (16) is rectangular and elastic. The top of the loading plate (16) is provided with a feeding groove (17). A rotating shaft (27) is provided between the second drive roller (5) and the feeding box (7). A round roller (28) is fixedly installed on the outer surface of the rotating shaft (27). A material transfer card is fixedly installed on the outer surface of the round roller (28) for guiding and transferring carbon rods (12) in pairs. Plate (29), in which a set of second drive shafts (4) and rotating shafts (27) are movably connected together by a linkage belt (30); the outer surface of the feed box (7) near the round roller (28) is provided with a feed groove (31) for feeding carbon rods (12), the feed groove (31) is a rectangular downward inclined groove, the feed groove (31) is fixedly installed inside the feed groove (31) for guiding the material, the outer surface of the guide sleeve (10) is provided with a guide groove (11), and the outside of the feed box (7) is provided with an alarm device (35) that can detect and position the carbon rods (12) on the guide sleeve (10) one by one. The alarm device (35) is provided with an alarm light (36) that can emit an alarm on its top; a square groove (33) is provided on the outer surface of the feed box (7) near the side of the alarm device (35), and an elastic pad (34) is provided inside the square groove (33). A trigger button (37) for activating the alarm device (35) is provided on the side of the alarm device (35) near the elastic pad (34). A trigger block (38) is fixedly installed on the side surface of the elastic pad (34) near the trigger button (37). A magnetic block (39) is fixedly installed on the corresponding side surface of the trigger block (38) and the trigger button (37).The feeding box (7) has a slot (40) at one end that mates with the guide trough (11). A push plate (41) is provided on the outside of the feeding box (7). A detection push rod (42) is fixedly installed on the end of the push plate (41) near the slot (40) to push and position the carbon rod (12) inside the guide trough (11). The push plate (41) is movably inserted into the slot (40) via the detection push rod (42). A push handle (43) is provided on the side of the push plate (41) away from the feeding box (7).

2. The battery carbon rod feeding mechanism according to claim 1, characterized in that: The side surface of the loading plate (16) near the inner box (15) is movably connected to one side of the inner box (15) through a connecting mechanism (18). A support spring (19) is fixedly installed on the bottom edge side surface of the loading plate (16). The end of the support spring (19) away from the loading plate (16) is fixedly connected to one side surface inside the inner box (15). A bottom support (20) is fixedly installed at the bottom of the loading plate (16).

3. The battery carbon rod feeding mechanism according to claim 1, characterized in that: The outer surface of the guide belt (3) is fixedly equipped with a deceleration convex pad (24) for uniformly guiding the carbon rod (12). The deceleration convex pad (24) is arc-shaped.

4. The battery carbon rod feeding mechanism according to claim 1, characterized in that: The conveyor belt (6) is fitted with an outer pad (25), and the outer surface of the outer pad (25) is provided with a bonding groove (26) for discharging and distributing carbon rods (12). The outer surface of the carbon rods (12) is bonded to the inside of the bonding groove (26).

5. The battery carbon rod feeding mechanism according to claim 1, characterized in that: The outer surface of the feeding box (7) near the packaging box (13) is provided with a feeding trough (21) for feeding carbon rods (12). A feeding guide plate (22) is fixedly installed on one side of the inner surface of the feeding trough (21). A feeding baffle (23) that cooperates with the feeding guide plate (22) is fixedly installed on the outer surface of the feeding box (7).

6. A method of using a battery carbon rod feeding mechanism, for use with the battery carbon rod feeding mechanism described in any one of claims 1-5, characterized in that: Includes the following steps: S1: Place the formed carbon rod (12) onto the guide belt (3), and then transfer it sequentially through the bonding groove (26) on the conveyor belt (6). The transfer plate (29) on the round roller (28) then guides the carbon rod (12) to the feeding box (7) for testing. S2: Start the connecting roller (9) to feed the carbon rod (12) and perform positioning detection through the alarm device (35); S3: The push handle (43) controls the detection push rod (42) to be pushed into the feeding box (7) to push and position multiple carbon rods (12) and detect defective products; S4: Feeding box (7) After the carbon rod (12) is inspected, it is sent into the packaging box (13) and packaged by the loading plate (16) inside the inner box (15).

Citation Information

Patent Citations

  • Bar magnet automatic feeding system

    CN208560831U