Directional feeding mechanism for lithium battery slitting machine based on eccentric rotating direction sorting
By adopting a directional loading mechanism based on eccentric rotation sorting on the lithium battery stripper, using centrifugal force and precise orientation design, the problem of inaccurate material orientation in the traditional loading mechanism is solved, efficient and accurate material transportation and automatic loading are achieved, and scrap rate and production costs are reduced.
Patent Information
- Application Number
- CN202510393633.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-06-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The loading mechanism of traditional lithium battery strippers lacks an accurate and effective orientation mechanism, which causes materials to deviate from the predetermined direction, resulting in high cutting waste rate, serious waste of raw materials and increased production costs.
The directional feeding mechanism based on eccentric rotation is adopted to carry the material conveyed on the feeding trough through the sorting seat and accurately oriented with centrifugal force. Combined with the design of the guide ring, guide channel and push-out plate, the correct guidance and automatic loading of the material is achieved.
It effectively solves the problem of inaccurate directional material transportation, reduces the cutting waste rate, reduces raw material waste, improves production efficiency and reduces production costs.
Smart Images

Figure CN120080374A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of lithium battery processing, in particular to a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting. Background Art
[0002] In the current booming lithium battery industry, lithium battery slitting machines play a pivotal role. The slitting process of accurately slitting lithium battery raw materials into strips of a specific width is undoubtedly the core of the entire production process. The accuracy and stability of this link are directly related to whether the subsequent battery assembly can proceed smoothly, and thus affect the performance, safety and overall quality of lithium battery products. In the operation system of the slitting machine, the stability and efficiency of the feeding link play a fundamental role in the overall production efficiency, and also profoundly affect the quality of the product. If there is a problem in the feeding link, the subsequent slitting, winding and other processes will also be negatively affected;
[0003] However, the feeding mechanism of the traditional lithium battery slitting machine currently widely used in the market has exposed a series of thorny problems in actual production practice. In terms of directional material transportation, due to the lack of accurate and effective directional mechanism, it is very easy to deviate from the predetermined direction during the transportation process. When these materials with directional deviations enter the slitting process, the cutting tool cannot cut according to the preset standard position, and the edge of the material will appear uneven, resulting in a large amount of waste that does not meet the size specifications, which greatly wastes raw materials and increases production costs. Summary of the invention
[0004] The purpose of the present invention is to provide a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting, so as to solve the problem that the traditional lithium battery slitting machine feeding mechanism proposed in the above background technology lacks an accurate and effective directional mechanism in the directional transportation of materials, which makes the material easily deviate from the predetermined direction, thereby causing a high cutting scrap rate, serious waste of raw materials and increased production costs.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting, comprising a fixed seat, a support plate is fixedly arranged on the lower surface of one end of the fixed seat, and a rotating flap is installed on one end of the support plate, a mounting seat is fixedly arranged on the outer surface of one side of the fixed seat, and a material discharge trough is fixedly connected to the upper end of the mounting seat, a material discharge channel is arranged on one side of the flap, and a sorting mechanism is arranged on the upper surface of the fixed seat and the flap, which ensures that the material can be transported and fed in a predetermined direction by receiving and directional limiting the material falling on the assembly line;
[0006] The sorting mechanism includes: a guiding groove, which is formed on the upper surfaces of the fixed seat and the flap. The outer surface arcs of the guiding grooves on the surface of the fixed seat are all major arcs. A sliding guiding ring is installed inside the guiding groove on the surface of the fixed seat. Installation plates are fixedly arranged on the upper surfaces at both ends of the guiding ring. An angle motor is fixedly installed on the outer surface of one of the installation plates. One end of the output shaft of the angle motor is fixedly connected to a sorting seat;
[0007] A guiding channel is fixedly arranged inside the sorting seat. An ejection electric push rod is fixedly installed on the outer surface of the sorting seat. One end of the ejection electric push rod is fixedly connected to a pushing plate. A supporting seat is fixedly arranged on the outer surface of the middle section of the guiding ring. A rotating motor is fixedly installed inside the side surface of the supporting seat. One end of the output shaft of the rotating motor penetrates through the outer surface of the supporting seat. One end of the output shaft of the rotating motor is fixedly connected to a driving gear. Transmission teeth are fixedly arranged on the upper surfaces of the fixed seat and the flap. A closing plate is fixedly arranged on the upper surface of the supporting seat;
[0008] One end of the sorting seat facing the feeding chute is provided with an opening. A rotating guiding buffer plate is installed on the inner surface at the opening of the sorting seat. An eccentric column is fixedly arranged on the inner bottom surface of the sorting seat. The outer surface of the eccentric column is penetrated by a deceleration buffer plate. The deceleration buffer plate is slidably connected to the eccentric column. A spring is connected between the deceleration buffer plate and the eccentric column;
[0009] A piston cylinder is fixedly arranged on the upper surface at one end of the guiding channel facing the guiding buffer plate. A piston column is fixedly arranged on the upper side surface of the piston cylinder. A piston plate is arranged inside the piston column. A limiting stop column is installed inside the piston cylinder;
[0010] A lifting electric push rod is fixedly installed on the outer surface of one side of the fixed seat. A transfer channel is fixedly installed at the upper end of the lifting electric push rod. An avoidance groove is formed on the outer surface of the transfer channel.
[0011] Preferably, a spring is connected between the supporting plate and the flap. The outer surface of the guiding ring is designed as a major arc. The longitudinal section of the guiding ring is designed as a T shape. The outer surfaces at both ends of the guiding ring are designed with arc chamfers.
[0012] With the above technical solution, the spring between the supporting plate and the flap can keep the flap at a certain angle when no external force is applied, and play a buffering role when the flap is pressed due to the rotation of the sorting seat or other situations, avoiding rigid collision and damaging the equipment. The superior arc design on the outer side of the guiding ring fits better with the guiding grooves on the fixed seat and the flap, ensuring the stable sliding of the guiding ring. The T-shaped longitudinal section design increases the contact area between the guiding ring and the guiding groove, making it more stable during the sliding process, not easy to shake or deviate. The arc chamfer design at both ends can smoothly squeeze the inner surface of the flap guiding groove when the guiding ring rotates, preventing the flap from deforming due to long-term extrusion, and then ensuring the smooth rotation of the guiding ring and maintaining the stable operation of the equipment.
[0013] Preferably, the sorting seat and the guiding channel are eccentrically arranged, and one end of the guiding channel penetrates through the outer surface of the sorting seat. The pushing plate is arc-shaped, and the inner surface of the pushing plate is flush with the inner surface of the guiding channel, and the outer surface of the pushing plate is flush with the outer surface of the guiding channel. The driving gear is meshed and connected with the fixed seat through transmission teeth. The closing plate and the sorting seat are concentrically arranged, and the outer surfaces at both ends of the closing plate are fitted with the inner surface of the opening at one end of the sorting seat.
[0014] With the above technical solution, the eccentric arrangement of the sorting seat and the guiding channel enables the material to move more efficiently and directionally towards the guiding channel under the action of the centrifugal force generated by the rotation of the sorting seat. The guiding channel penetrates through the outer surface of the sorting seat, facilitating the smooth discharge of the material therefrom. The meshing connection between the driving gear and the transmission teeth can drive the guiding ring to drive the sorting seat to rotate through a rotating motor, realizing the centrifugal sorting of the material. The closing plate and the sorting seat are concentric and fit with the inner surface of the opening, which can effectively prevent the material from being thrown out from the opening during the centrifugal sorting process, ensuring the accuracy and stability of the sorting process.
[0015] Preferably, a spring is connected between the guiding buffer plate and the sorting seat. The deceleration buffer plate is arranged opposite to the opening at one end of the sorting seat, and the eccentric column and one end of the guiding channel are concentrically arranged.
[0016] With the above technical solution, the spring between the guiding buffer plate and the sorting seat plays a buffering role when the material falls, reducing the impact of the material, and at the same time assisting in the preliminary orientation of the material. The deceleration buffer plate is arranged opposite to the opening, which can directly receive the falling material, further buffering the impact force of the material, and cooperating with the eccentric column, can assist in the preliminary adjustment of the position of the material in the sorting seat, making it more easily oriented under the action of centrifugal force.
[0017] Preferably, the piston column and the piston plate are in sliding friction connection, and the end of the piston column away from the piston cylinder is open, and a block-shaped protrusion is arranged on the inner surface of the end of the piston column away from the piston cylinder. The limiting stop column and the piston cylinder are in sliding friction connection, and a spring is connected between the limiting stop column and the piston cylinder. The lower end of the limiting stop column penetrates through the inner top surface of one end of the guiding channel.
[0018] With the above technical solution, the piston column and the piston plate are connected by sliding friction, enabling the piston plate to slide within the piston column under the action of centrifugal force, thereby driving the limit stop column to move. The opening design at the end of the piston column away from the piston cylinder and the inner block-shaped protrusion prevent the piston plate from sliding out of the piston column excessively. The sliding friction connection between the limit stop column and the piston cylinder and the spring arrangement enable it to stably block the material from entering the guiding channel.
[0019] Preferably, one end of the transfer channel facing the sorting seat is in contact with the outer surface of the sorting seat, and one end of the transfer channel facing the sorting seat is directly opposite to the end where the guiding channel penetrates the outer surface of the sorting seat. The end of the transfer channel away from the sorting seat is in contact with one end of the discharge channel.
[0020] With the above technical solution, the transfer channel is in contact with the sorting seat and is directly opposite to the outlet of the guiding channel, enabling it to accurately receive the material pushed out from the guiding channel. The other end of the transfer channel is in contact with the discharge channel, providing a smooth conveying path for the material, enabling the material to be smoothly conveyed from the guiding channel through the transfer channel to the discharge channel and discharged, ensuring the continuity and stability of the material conveying process.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows: The orientation feeding mechanism for the lithium battery strip cutting machine based on eccentric rotation sorting:
[0022] 1. By using the sorting seat to receive the material conveyed on the feeding chute and using centrifugal force for accurate orientation, the falling material can be correctly guided. Combining with the rotation of the sorting seat after the material falls, the material can be accurately stacked under the action of centrifugal force. Combining with the pushing of the stacked material by the pushing plate to achieve automatic feeding, the material can be correctly conveyed through the discharge channel to the strip cutting machine for cutting;
[0023] 2. Further, by using the angle motor to drive the sorting seat to rotate, the sorting seat can receive the falling material and engage with the closing plate by changing the angle, thereby ensuring that the sorting seat can actively feed and ensuring that the material will not be thrown out of the sorting seat from the opening of the sorting seat during the centrifugal sorting process;
[0024] 3. Furthermore, by using the guiding buffer plate and the deceleration buffer plate to receive and buffer the falling material, it is ensured that the material can be preliminarily oriented during the falling process and will not be damaged. Combining with the way that the limit stop column gradually moves upward to release the blockage of the material during the centrifugal process, the material will only enter the interior of the guiding channel after being accurately positioned, ensuring the normal conveying of the material. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic three-dimensional structure diagram of the whole of the present invention;
[0026] Figure 2 Schematic diagram of the three-dimensional structure of the fixing seat, supporting plate and turning plate of the present invention;
[0027] Figure 3 Schematic diagram of the three-dimensional structure of the cross-section of the connection between the fixing seat, lifting electric push rod and transfer path of the present invention;
[0028] Figure 4 Schematic diagram of the three-dimensional structure of the overall cross-section of the present invention;
[0029] Figure 5 Schematic diagram of the three-dimensional structure of the cross-section of the connection between the sorting seat, eccentric column and deceleration buffer plate of the present invention;
[0030] Figure 6 Schematic diagram of the three-dimensional structure of the cross-section of the connection between the sorting seat, discharging electric push rod and pushing plate of the present invention;
[0031] Figure 7 Schematic diagram of the three-dimensional structure of the cross-section of the connection between the fixing seat and the guide ring of the present invention;
[0032] Figure 8 Schematic diagram of the three-dimensional structure of the overall working state of the present invention;
[0033] Figure 9 Schematic diagram of the three-dimensional structure of the cross-section of the overall working state of the present invention;
[0034] Figure 10 For the present invention Figure 5 Enlarged structure diagram at position A in
[0035] In the figure: 1. Fixing seat; 2. Supporting plate; 3. Turning plate; 4. Mounting seat; 5. Feeding chute; 6. Discharging path; 7. Guide groove; 8. Guide ring; 9. Mounting plate; 10. Angle motor; 11. Sorting seat; 12. Guide path; 13. Discharging electric push rod; 14. Pushing plate; 15. Supporting seat; 16. Rotating motor; 17. Driving gear; 18. Transmission gear; 19. Sealing plate; 20. Guide buffer plate; 21. Eccentric column; 22. Deceleration buffer plate; 23. Piston cylinder; 24. Piston rod; 25. Piston plate; 26. Limit stop post; 27. Lifting electric push rod; 28. Transfer path; 29. Avoidance groove. Detailed implementation manners
[0036] 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.
[0037] Please refer to Figures 1 - 10The present invention provides a technical solution: a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting.
[0038] Embodiment 1
[0039] The present embodiment discloses: a fixed seat 1, a supporting plate 2 is fixedly arranged on the lower surface of one end of the fixed seat 1, and a rotating flap 3 is installed on one end of the supporting plate 2, a mounting seat 4 is fixedly arranged on the outer surface of one side of the fixed seat 1, and a material discharge chute 5 is fixedly connected to the upper end of the mounting seat 4, and a material discharge channel 6 is arranged on one side of the flap 3, and a sorting mechanism is arranged on the upper surface of the fixed seat 1 and the flap 3, which ensures that the material can be transported and loaded in a predetermined direction by receiving and directional limiting the material falling on the assembly line;
[0040] The sorting mechanism includes: a guide groove 7, which is provided on the upper surface of the fixed seat 1 and the flap 3, and the fixed seat 1 and the outer surface arc of the guide groove 7 on the surface of the fixed seat 1 are both major arcs, a sliding guide ring 8 is installed inside the guide groove 7 on the surface of the fixed seat 1, and mounting plates 9 are fixedly provided on the upper surfaces of both ends of the guide ring 8, and an angle motor 10 is fixedly installed on the outer surface of the mounting plate 9 on one side, and one end of the output shaft of the angle motor 10 is fixedly connected to the sorting seat 11;
[0041] A guideway 12 is fixedly arranged inside the sorting seat 11, and a discharge electric push rod 13 is fixedly installed on the outer surface of the sorting seat 11, and one end of the discharge electric push rod 13 is fixedly connected to a push plate 14, a support seat 15 is fixedly arranged on the outer surface of the middle section of the guide ring 8, and a rotating motor 16 is fixedly installed inside the side surface of the supporting seat 15, and one end of the output shaft of the rotating motor 16 passes through the outer surface of the supporting seat 15, and one end of the output shaft of the rotating motor 16 is fixedly connected to a driving gear 17, a transmission tooth 18 is fixedly arranged on the upper surface of the fixed seat 1 and the flap 3, and a closing plate 19 is fixedly arranged on the upper surface of the supporting seat 15;
[0042] An opening is provided at one end of the sorting seat 11 facing the material discharge chute 5, and a rotating guide buffer plate 20 is installed on the inner surface of the opening of the sorting seat 11, an eccentric column 21 is fixedly provided on the inner bottom surface of the sorting seat 11, and the outer surface of the eccentric column 21 is penetrated by a deceleration buffer plate 22, the deceleration buffer plate 22 is slidably connected to the eccentric column 21, and a spring is connected between the deceleration buffer plate 22 and the eccentric column 21;
[0043] A spring is connected between the support plate 2 and the flap 3, the outer surface of the guide ring 8 is designed as an arc, the longitudinal section of the guide ring 8 is designed as a T-shape, and the outer surfaces of both ends of the guide ring 8 are designed as arc chamfers;
[0044] The sorting seat 11 and the guiding channel 12 are eccentrically arranged, and one end of the guiding channel 12 penetrates through the outer surface of the sorting seat 11. The pushing plate 14 is arc-shaped, and the inner surface of the pushing plate 14 is flush with the inner surface of the guiding channel 12, and the outer surface of the pushing plate 14 is flush with the outer surface of the guiding channel 12. The driving gear 17 is meshed and connected with the fixed seat 1 through the transmission teeth 18. The closing plate 19 and the sorting seat 11 are concentrically arranged, and the outer surfaces at both ends of the closing plate 19 are attached to the inner surface of the opening at one end of the sorting seat 11;
[0045] A spring is connected between the guiding buffer plate 20 and the sorting seat 11. The decelerating buffer plate 22 is arranged opposite to the opening at one end of the sorting seat 11, and the eccentric column 21 is concentric with one end of the guiding channel 12;
[0046] The material falls from the feeding chute 5 at the upper end of the mounting seat 4. The sorting seat 11 rotates to an appropriate angle under the drive of the angle motor 10 mounted on the upper end of the mounting plate 9 to receive the material. The guiding buffer plate 20 and the decelerating buffer plate 22 receive and buffer the falling material. The material is initially oriented during the buffering process and will not be damaged due to the impact of falling. The decelerating buffer plate 22 is slidably connected with the eccentric column 21 and is connected by a spring. The design of the eccentric column 21 can assist the material to initially adjust its position in the sorting seat 11;
[0047] After the material falls, the angle motor 10 drives the sorting seat 11 to rotate and reset. At this time, the closing plate 19 and the sorting seat 11 are concentrically arranged, and the outer surfaces at both ends are attached to the inner surface of the opening of the sorting seat 11 to prevent the material from being thrown out from the opening during the centrifugal sorting process. The rotation motor 16 on the supporting seat 15 drives the driving gear 17 to rotate. The driving gear 17 meshes with the transmission teeth 18 on the fixed seat 1 and the flap 3, so that the guiding ring 8 slides in the guiding groove 7, and then drives the sorting seat 11 to rotate, thereby generating a centrifugal force to adjust the orientation of the material. By setting a power supply slip ring at the exact middle position at the lower end of the sorting seat 11, the rotating electrical equipment can obtain a stable power supply;
[0048] Before the material enters the guiding channel 12, the discharging electric push rod 13 starts to push the pushing plate 14 into the interior of the guiding channel 12 to ensure that the material will not be directly thrown out through the other end of the guiding channel 12 under the action of centrifugal force after entering the guiding channel 12. Then the rotating motor 16 stops working to reset the sorting seat 11. At this time, the discharging electric push rod 13 starts to drive the pushing plate 14 to slide to release the blockage of the material. Then the angle motor 10 drives the sorting seat 11 to rotate to continue to receive the material falling from the blanking chute 5. At the same time, the material inside the guiding channel 12 slides downward under the action of gravity to the end inside the guiding channel 12 that penetrates the outer surface of the guiding channel 12. Then the angle motor 10 drives the sorting seat 11 to rotate and reset. At this time, the discharging electric push rod 13 starts to drive the pushing plate 14 to slide to push the material out from one end of the guiding channel 12 and finally discharge it through the discharging channel 6 to complete the discharging. Then the discharging electric push rod 13 starts to drive the pushing plate 14 to slide and contract and stay at the temporal part of the guiding channel 12 to block the next material;
[0049] The flap 3 is pressed to rotate and compress the spring between it and the supporting plate 2 when the sorting seat 11 rotates. The guiding ring 8 squeezes the inner surface of the guiding groove 7 of the flap 3 through the arc chamfers at both ends during the rotation process to prevent the guiding ring 8 from rotating smoothly due to the deformation of the flap 3 after long-term use.
[0050] Embodiment 2
[0051] This embodiment discloses on the basis of Embodiment 1: A piston cylinder 23 is fixedly arranged on the upper surface of one end of the guiding channel 12 facing the guiding buffer plate 20, and a piston column 24 is fixedly arranged on the upper side surface of the piston cylinder 23. A piston plate 25 is arranged inside the piston column 24, and a limiting stop column 26 is installed inside the piston cylinder 23;
[0052] A lifting electric push rod 27 is fixedly installed on the outer surface of one side of the fixed seat 1, and a transfer channel 28 is fixedly installed at the upper end of the lifting electric push rod 27. An avoidance groove 29 is arranged on the outer surface of the transfer channel 28;
[0053] The piston column 24 and the piston plate 25 are in sliding friction connection, and the end of the piston column 24 away from the piston cylinder 23 is designed with an opening. And a block-shaped protrusion is arranged on the inner surface of the end of the piston column 24 away from the piston cylinder 23. The limiting stop column 26 and the piston cylinder 23 are in sliding friction connection, and a spring is connected between the limiting stop column 26 and the piston cylinder 23. The lower end of the limiting stop column 26 penetrates the top surface of the interior of one end of the guiding channel 12;
[0054] One end of the transfer channel 28 facing the sorting seat 11 is attached to the outer surface of the sorting seat 11, and one end of the transfer channel 28 facing the sorting seat 11 is directly opposite to the end of the guiding channel 12 that penetrates the outer surface of the sorting seat 11. One end of the transfer channel 28 away from the sorting seat 11 is attached to one end of the discharging channel 6;
[0055] When the material is centrifugally sorted in the sorting seat 11, during the centrifugation process, one end of the material first fits against the lower end of the limit stop post 26 on one side. As the rotation speed of the sorting seat 11 increases, the end of the material that fits against the guiding buffer plate 20 gradually presses the guiding buffer plate 20, causing the guiding buffer plate 20 to rotate until one end of the material presses the guiding buffer plate 20 and then fits against the limit stop post 26 on the other side. At the same time, as the centrifugal force increases, the piston plate 25 slides inside the piston column 24 under the action of the centrifugal force and drives the limit stop post 26 inside the piston cylinder 23 to gradually move upward through the pressure until the limit stop post 26 releases the block on the material, and the material enters the guiding channel 12;
[0056] The lifting electric push rod 27 on one side of the fixed seat 1 can adjust the height of the transfer channel 28 to prevent the transfer channel 28 from blocking the sorting seat 11 when the angle motor 10 drives the sorting seat 11 to adjust the angle. After the material is pushed out from the guiding channel 12, it is transported to the discharge channel 6 through the transfer channel 28 and finally discharged. The avoidance groove 29 can prevent the discharge electric push rod 13 protruding from the outer surface of the sorting seat 11 from being blocked by the transfer channel 28 during the rotation of the sorting seat 11.
[0057] In the above specific embodiments, the purpose, technical solution and beneficial effects of the present invention have been further described in detail. It should be understood that the above are only specific embodiments of the present invention and do not limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention are included in the protection scope of the present invention.
Claims
1. A directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting, comprising a fixed seat (1), a support plate (2) is fixedly arranged on the lower surface of one end of the fixed seat (1), and a rotating flap (3) is installed on one end of the support plate (2), a mounting seat (4) is fixedly arranged on the outer surface of one side of the fixed seat (1), and a feeding trough (5) is fixedly connected to the upper end of the mounting seat (4), and a discharge channel (6) is arranged on one side of the flap (3), characterized in that: The upper surfaces of the fixed seat (1) and the flap (3) are provided with a sorting mechanism, which receives and directional limits the materials falling on the assembly line, thereby ensuring that the materials can be transported and loaded in a predetermined direction; The sorting mechanism comprises: a guide groove (7), the guide groove (7) being provided on the upper surfaces of the fixed seat (1) and the flap (3), and the fixed seat (1) and the outer surface arcs of the guide groove (7) on the surface of the fixed seat (1) are both major arcs, a sliding guide ring (8) is installed inside the guide groove (7) on the surface of the fixed seat (1), and mounting plates (9) are fixedly provided on the upper surfaces of both ends of the guide ring (8), and an angle motor (10) is fixedly installed on the outer surface of the mounting plate (9) on one side, and one end of the output shaft of the angle motor (10) is fixedly connected to the sorting seat (11).
2. According to claim 1, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized by: A guideway (12) is fixedly arranged inside the sorting seat (11), and a discharge electric push rod (13) is fixedly installed on the outer surface of the sorting seat (11), and one end of the discharge electric push rod (13) is fixedly connected to a push plate (14), a support seat (15) is fixedly arranged on the outer surface of the middle section of the guide ring (8), and a rotating motor (16) is fixedly installed inside the side surface of the supporting seat (15), and one end of the output shaft of the rotating motor (16) passes through the outer surface of the supporting seat (15), and one end of the output shaft of the rotating motor (16) is fixedly connected to a driving gear (17), the upper surfaces of the fixed seat (1) and the flap (3) are fixedly arranged with transmission teeth (18), and the upper surface of the supporting seat (15) is fixedly arranged with a closing plate (19).
3. According to claim 2, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized by: The sorting seat (11) is provided with an opening at one end facing the material discharge chute (5), and a rotatable guide buffer plate (20) is installed on the inner surface of the opening of the sorting seat (11). An eccentric column (21) is fixedly provided on the inner bottom surface of the sorting seat (11), and the outer surface of the eccentric column (21) is penetrated by a deceleration buffer plate (22). The deceleration buffer plate (22) is slidably connected to the eccentric column (21), and a spring is connected between the deceleration buffer plate (22) and the eccentric column (21).
4. According to claim 3, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized in that: A piston cylinder (23) is fixedly arranged on the upper surface of one end of the guide path (12) facing the guide buffer plate (20), and a piston column (24) is fixedly arranged on the upper end side surface of the piston cylinder (23), a piston plate (25) is arranged inside the piston column (24), and a limit stop column (26) is installed inside the piston cylinder (23).
5. According to claim 4, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized in that: A lifting electric push rod (27) is fixedly mounted on the outer surface of one side of the fixing seat (1), and a transfer track (28) is fixedly mounted on the upper end of the lifting electric push rod (27), and an avoidance groove (29) is provided on the outer surface of the transfer track (28).
6. According to claim 1, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized by: A spring is connected between the support plate (2) and the flap (3); the outer surface of the guide ring (8) is designed as an arc, the longitudinal section of the guide ring (8) is designed as a T-shape, and the outer surfaces at both ends of the guide ring (8) are designed as arc chamfers.
7. According to claim 3, a directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting is characterized by: The sorting seat (11) and the guide path (12) are eccentrically arranged, and one end of the guide path (12) passes through the outer surface of the sorting seat (11); the push plate (14) is designed to be arc-shaped, and the inner surface of the push plate (14) is flush with the inner surface of the guide path (12), and the outer surface of the push plate (14) is flush with the outer surface of the guide path (12); the driving gear (17) is meshed and connected with the fixed seat (1) through the transmission teeth (18); the closing plate (19) and the sorting seat (11) are concentrically arranged, and the outer surfaces of both ends of the closing plate (19) are in contact with the inner surface of an opening at one end of the sorting seat (11).
8. The directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting according to claim 3 is characterized in that: A spring is connected between the guide buffer plate (20) and the sorting seat (11), the deceleration buffer plate (22) is arranged opposite to the opening at one end of the sorting seat (11), and the eccentric column (21) and one end of the guide path (12) are arranged concentrically.
9. The directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting according to claim 4, characterized in that: The piston column (24) and the piston plate (25) are connected by sliding friction, and the end of the piston column (24) away from the piston cylinder (23) is designed to be open, and the inner surface of the end of the piston column (24) away from the piston cylinder (23) is provided with a block-shaped protrusion, the limit stop column (26) and the piston cylinder (23) are connected by sliding friction, and a spring is connected between the limit stop column (26) and the piston cylinder (23), and the lower end of the limit stop column (26) passes through the inner top surface of one end of the guide path (12).
10. The directional feeding mechanism for a lithium battery slitting machine based on eccentric rotational sorting according to claim 5, characterized in that: One end of the transfer channel (28) facing the sorting seat (11) is in contact with the outer surface of the sorting seat (11), and one end of the transfer channel (28) facing the sorting seat (11) is directly opposite to one end of the guide channel (12) penetrating the outer surface of the sorting seat (11), and one end of the transfer channel (28) away from the sorting seat (11) is in contact with one end of the discharge channel (6).