Efficient sorting and recycling device for power batteries

By designing a power battery efficient sorting and recycling device, the driving motor and gear system are used to achieve large-scale sorting and impurity removal of power batteries, solving the problems of inconvenient sorting and incomplete impurity removal in existing devices, and improving the recycling efficiency of used power batteries.

CN120394361AActive Publication Date: 2025-08-01MANFRED AUTOMATION (CHINA) CO LTD

Patent Information

Application Number
CN202510602990.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-12
Publication Date
2025-08-01
Estimated Expiration
2045-05-12

AI Technical Summary

Technical Problem

The existing waste power battery sorting and recycling devices cannot efficiently sort power batteries of different sizes, and it is difficult to effectively remove impurities on the battery surface, resulting in interference in the subsequent recycling process.

Method used

An efficient sorting and recycling device for power batteries is designed, including a main bracket, a drive motor, a rotating shaft, a screening ring, a discharge assembly and a sorting assembly. The drive motor drives the rotating shaft and a gear system to realize the size and sorting of the power batteries, and remove impurities through the screening ring and a discharging groove.

Benefits of technology

Efficient sorting according to the size of the power battery and rapid removal of impurities are achieved, recycling efficiency is improved, and interference of impurities on subsequent recycling processes is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of power battery recycling, in particular to an efficient sorting and recycling device for power batteries. The technical problems that according to an existing waste power battery sorting and recycling device, sorting is not convenient according to the size of waste power batteries, and the power batteries with impurities attached to the surfaces of the waste power batteries are not convenient to remove are solved. The invention discloses an efficient sorting and recycling device for power batteries. The driving motor is fixedly connected to the upper part of the main bracket; the feeding frame is fixedly connected to the upper portion of the main support. A transmission straight gear rotates reversely to drive a straight gear ring, a screening ring, a small limiting frame, a middle limiting frame, a large limiting frame and a limiting ring to rotate reversely, and the waste power batteries sequentially pass through three discharging groove rows in a multi-groove discharging frame from small to large and then fall downwards. And a worker collects the waste power batteries falling downwards from the three discharging grooves in the multi-groove discharging frame so as to sort the waste power batteries according to the sizes of the waste power batteries.
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Description

Technical Field

[0001] The present invention relates to the technical field of power battery recycling, and particularly to an efficient sorting and recycling device for power batteries. Background Art

[0002] With the popularization of new energy vehicles, after the new energy vehicles have been used for a certain number of years or a certain number of kilometers, the performance of the power batteries will decay to a certain extent, and it is necessary to replace the power batteries used in the new energy vehicles. The replaced waste power batteries contain metal resources such as lithium, cobalt, and nickel. Therefore, it is necessary to recycle the waste power batteries.

[0003] In the process of recycling waste power batteries, the existing sorting and recycling devices for waste power batteries have a relatively simple structure, which is not convenient for sorting waste power batteries according to their sizes, not convenient for subsequent precise disassembly of waste power batteries, and when the waste power batteries are disassembled from the battery pack, there may be a small amount of impurities attached to the surface of the waste power batteries. The existing sorting and recycling devices for waste power batteries cannot fully remove the impurities attached to the surface of the waste power batteries, and these impurities may interfere with the subsequent recycling of waste power batteries. Summary of the Invention

[0004] In order to overcome the above disadvantages, the present invention provides an efficient sorting and recycling device for power batteries that can efficiently sort according to the size of waste power batteries and can efficiently remove the impurities attached to the surface of waste power batteries.

[0005] The technical solution of the present invention is: an efficient sorting and recycling device for power batteries, comprising:

[0006] A main bracket;

[0007] A driving motor, fixedly connected to the upper part of the main bracket;

[0008] A feeding frame, fixedly connected to the upper part of the main bracket;

[0009] A rotating shaft, rotatably connected to the upper part of the main bracket, one end of the rotating shaft is fixedly connected to the output shaft of the driving motor, and the rotating shaft passes through the feeding frame;

[0010] A supporting circular frame, rotatably connected between the rotating shaft and the feeding frame;

[0011] A screening ring, rotatably connected to the outside of the supporting circular frame, and a plurality of impurity discharge grooves are opened on the screening ring;

[0012] A discharging assembly, arranged on the main bracket;

[0013] [[ID=##]]A sorting assembly, arranged on the screening ring;

[0014] An auxiliary adjusting assembly, arranged on the main bracket.

[0015] In one embodiment, the discharge assembly includes: an inclined frame, which is slidably connected to the middle part of the main bracket and has several through slots on the inclined frame; a return spring is connected between the inclined frame and the main bracket; a baffle is fixed to the lower part of the inclined frame; a guide seat is fixed to the lower part of the main bracket; a transmission frame, which is slidably connected to the guide seat; a multi-slot discharge frame, which is fixed to one side of the transmission frame and has three discharge slots on the multi-slot discharge frame; and an impurity frame is fixed to the transmission frame.

[0016] In one embodiment, the sorting assembly includes: three small limit frames, fixedly connected to the screening ring; three medium limit frames, fixedly connected to the screening ring; three large limit frames, fixedly connected to the screening ring; a small spur gear, fixedly connected to the rotating shaft; a support rod, fixedly connected to the upper part of the main bracket, and the support rod is fixed to the supporting circular frame; a transmission spur gear, rotatably connected to the support rod, and the transmission spur gear is meshed with the small spur gear; a spur gear ring, fixedly connected to one side of the screening ring, and the transmission spur gear is meshed with the spur gear ring.

[0017] In one embodiment, the auxiliary adjustment component includes: a limiting ring, fixed to the outer side of the screening ring, and provided with an inner arc surface, a middle arc surface and an outer arc surface; a guide frame, fixed to the main bracket; a lifting frame, slidably connected to the guide frame; a coil spring, a coil spring is connected between the guide frame and the lifting frame; a transmission push frame, fixed to the bottom of the lifting frame, and a transmission groove is opened on the transmission push frame; a support rod, fixed to one side of the transmission frame, and the support rod is located in the transmission groove on the transmission push frame.

[0018] In one embodiment, a flipping assembly is further included, which is arranged on the rotating shaft and is used to flip the waste power batteries. The flipping assembly includes: two rotating frames fixedly connected to the rotating shaft; and a flipping ring fixedly connected between the two rotating frames.

[0019] In one embodiment, a screening auxiliary component is also included, which is arranged on the rotating shaft. The screening auxiliary component is used to shake the inclined frame. The screening auxiliary component includes: a support plate, fixedly connected to the rotating shaft; a plurality of protrusions, fixedly connected to the support plate; and a pushing frame, fixedly connected to the side of the inclined frame close to the reset spring.

[0020] In one embodiment, an auxiliary collection assembly is further included, which is arranged on the inclined frame. The auxiliary collection assembly is used to limit the waste power batteries. The auxiliary collection assembly includes: a support plate, fixedly connected to the inclined frame; a limiting curtain, fixedly connected to the support plate; two arc-shaped bars, fixedly connected to the inner side of the inclined frame, and the upper side surfaces of the two arc-shaped bars are in contact with the limiting curtain.

[0021] In one embodiment, a buffer pad is further included, which is fixed to the inclined frame.

[0022] The beneficial effects are as follows: 1. Workers put a certain amount of waste power batteries into the supporting circular frame through the feeding frame, and then the workers start the driving motor. The output shaft of the driving motor drives the rotating shaft and the small spur gear to rotate clockwise. The clockwise rotation of the small spur gear drives the transmission spur gear to rotate counterclockwise. The counterclockwise rotation of the transmission spur gear drives the straight-tooth ring, the screening ring, the small limiting frame, the middle limiting frame, the large limiting frame and the limiting ring to rotate counterclockwise. The waste power batteries in the supporting circular frame fall downward successively from small to large through the small limiting frame, the middle limiting frame and the large limiting frame. The waste power batteries fall on the inclined frame and then fall downward along the inclined frame. Finally, the waste power batteries fall downward successively from small to large and then are discharged downward through the three discharge slots on the multi-slot discharge frame. Workers collect the waste power batteries falling downward through the three discharge slots on the multi-slot discharge frame respectively, so as to sort the waste power batteries according to their sizes, which is convenient for subsequent recycling of waste power batteries of different sizes, and thus improves the recycling efficiency of waste power batteries.

[0023] 2. When the transmission spur gear rotates counterclockwise to drive the screening ring to rotate counterclockwise, some impurities in the supporting circular frame fall on the inclined frame through the impurity discharge slots, the small limiting frame, the middle limiting frame and the large limiting frame. Some impurities pass through the through slots on the inclined frame and fall on the impurity frame, and then are discharged along the impurity frame. Workers collect the impurities. In this way, some impurities on the waste power batteries are quickly removed, reducing the interference of impurities on the subsequent recycling of waste power batteries.

[0024] 3. The clockwise rotation of the rotating shaft drives the rotating frame and the turning ring to rotate clockwise. The clockwise rotation of the turning ring pushes some of the lower-layer waste power batteries to move, and some of the upper-layer waste power batteries fall downward and contact the screening ring. In this way, when the turning ring rotates clockwise, it continuously turns the waste power batteries in the supporting circular frame, so that when there are more waste power batteries loaded in the supporting circular frame, the screening ring, the small limiting frame, the middle limiting frame and the large limiting frame can still efficiently sort the waste power batteries, and can still efficiently remove the impurities on the waste power batteries. In this way, the waste power batteries are sorted more efficiently. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is the first three-dimensional structure schematic diagram of the present invention.

[0026] Figure 2 It is the second three-dimensional structure schematic diagram of the present invention.

[0027] Figure 3 It is the partial three-dimensional structure schematic diagram of the sorting component and the auxiliary adjustment component of the present invention.

[0028] Figure 4 It is the partial three-dimensional structure schematic diagram of the sorting component, the auxiliary adjustment component and the screening auxiliary component of the present invention.

[0029] Figure 5This is a partially sectional perspective structural schematic diagram of the sorting component and the turning component of the present invention.

[0030] Figure 6 This is a partially sectional perspective structural schematic diagram of the discharging component, the auxiliary collection component and the buffer pad of the present invention.

[0031] Figure 7 This is a partial perspective structural schematic diagram of the discharging component and the auxiliary collection component of the present invention.

[0032] Figure 8 This is a perspective structural schematic diagram of the sorting component, the turning component and the screening auxiliary component of the present invention.

[0033] Figure 9 This is a perspective structural schematic diagram of a partially separated state of the present invention.

[0034] In the reference numerals: 1 - main support, 2 - driving motor, 3 - feeding frame, 31 - rotating shaft, 4 - supporting circular frame, 5 - screening ring, 51 - inclined frame, 511 - return spring, 52 - baffle, 53 - guiding seat, 54 - transmission frame, 55 - multi - groove discharging frame, 56 - impurity frame, 61 - small limiting frame, 62 - medium limiting frame, 63 - large limiting frame, 65 - small spur gear, 66 - support rod, 67 - transmission spur gear, 68 - spur gear ring, 71 - limiting ring, 72 - guiding frame, 73 - lifting frame, 74 - helical spring, 75 - transmission pushing frame, 76 - support rod, 81 - rotating frame, 82 - turning ring, 91 - support disc, 92 - convex block, 93 - pushing frame, 101 - support plate, 102 - limiting curtain, 103 - arc - shaped strip, 11 - buffer pad. Detailed implementation manners

[0035] The present invention will be further described below with reference to the drawings and embodiments.

[0036] Embodiment 1: An efficient sorting and recycling device for power batteries, as Figures 1-9 shown, includes:

[0037] Main support 1;

[0038] Driving motor 2, connected to the upper part of the main support 1 by bolts;

[0039] Feeding frame 3, connected to the upper part of the main support 1 by bolts;

[0040] Rotating shaft 31, rotatably connected to the upper part of the main support 1, one end of the rotating shaft 31 is fixedly connected to the output shaft of the driving motor 2, and the rotating shaft 31 passes through the feeding frame 3;

[0041] Supporting circular frame 4, rotatably connected between the rotating shaft 31 and the feeding frame 3;

[0042] The screening ring 5 is rotatably connected to the outside of the support circular frame 4, and a plurality of impurity discharge grooves are formed in the screening ring 5;

[0043] The discharging assembly is arranged on the main support 1 and is used for discharging waste power batteries;

[0044] The sorting assembly is arranged on the screening ring 5 and is used for sorting waste power batteries;

[0045] The auxiliary adjustment assembly is arranged on the main support 1 and is used for adjusting the position of the multi-groove discharging frame 55.

[0046] The discharging assembly includes: an inclined frame 51 which is slidably connected to the middle of the main support 1, and a plurality of through grooves are formed in the inclined frame 51; a reset spring 511 is connected between the inclined frame 51 and the main support 1 by a hook; a baffle 52 is welded to the lower part of the inclined frame 51; a guide seat 53 is connected to the lower part of the main support 1 by bolts; a transmission frame 54 is slidably connected to the guide seat 53; a multi-groove discharging frame 55 is connected to one side of the transmission frame 54 by bolts, and three discharging grooves are formed in the multi-groove discharging frame 55; an impurity frame 56 is connected to the transmission frame 54 by bolts.

[0047] The sorting assembly includes: three small limit frames 61 which are connected to the screening ring 5 by bolts; three medium limit frames 62 which are connected to the screening ring 5 by bolts; three large limit frames 63 which are connected to the screening ring 5 by bolts; a small spur gear 65 which is connected to the rotating shaft 31 by a flat key; a support rod 66 which is connected to the upper part of the main support 1 by bolts, and the support rod 66 is fixedly connected to the support circular frame 4; a transmission spur gear 67 which is rotatably connected to the support rod 66, and the transmission spur gear 67 meshes with the small spur gear 65; a spur gear ring 68 which is welded to one side of the screening ring 5, and the transmission spur gear 67 meshes with the spur gear ring 68.

[0048] The auxiliary adjustment assembly includes: a limit ring 71 which is welded to the outside of the screening ring 5, and an inner arc surface, a middle arc surface and an outer arc surface are provided on the limit ring 71; a guide frame 72 which is welded to the main support 1; a lifting frame 73 which is slidably connected to the guide frame 72; a spiral spring 74 is connected between the guide frame 72 and the lifting frame 73 by a hook; a transmission push frame 75 which is connected to the bottom of the lifting frame 73 by bolts, and a transmission groove is formed in the transmission push frame 75; a support rod 76 which is welded to one side of the transmission frame 54, and the support rod 76 is located in the transmission groove on the transmission push frame 75.

[0049] First, the lifting frame 73 contacts the inner arc surface of the limit ring 71. The discharge slot on the multi-slot discharge frame 55 closest to the transmission frame 54 is located obliquely below the inclined frame 51. Workers put a certain amount of waste power batteries into the support circular frame 4 through the feed frame 3. Then the workers start the driving motor 2. The output shaft of the driving motor 2 drives the rotating shaft 31 and the small spur gear 65 to rotate clockwise. The clockwise rotation of the small spur gear 65 drives the transmission spur gear 67 to rotate counterclockwise. The counterclockwise rotation of the transmission spur gear 67 drives the straight tooth ring 68, the screening ring 5, the small limit frame 61, the medium limit frame 62, the large limit frame 63, and the limit ring 71 to rotate counterclockwise. When the small limit frame 61 rotates to below the support circular frame 4 and separates from the support circular frame 4, the smaller waste power batteries in the support circular frame 4 fall downward through the small limit frame 61. The smaller waste power batteries fall on the inclined frame 51 and then fall downward along the inclined frame 51. Finally, they fall downward through the discharge slot on the multi-slot discharge frame 55 closest to the transmission frame 54. Workers collect the smaller waste power batteries that fall downward through the discharge slot on the multi-slot discharge frame 55 closest to the transmission frame 54. Then the transmission spur gear 67 continues to rotate counterclockwise to drive the straight tooth ring 68, the screening ring 5, the small limit frame 61, the medium limit frame 62, the large limit frame 63, and the limit ring 71 to continue rotating counterclockwise. The limit ring 71 squeezes the lifting frame 73 and the transmission push frame 75 to move downward. The lifting frame 73 contacts the middle arc surface of the limit ring 71, and the spiral spring 74 is stretched. The transmission push frame 75 moves downward to squeeze the support rod 76, the transmission frame 54, the multi-slot discharge frame 55, and the impurity frame 56 to move, so that the middle discharge slot on the multi-slot discharge frame 55 is located obliquely below the inclined frame 51. The medium-sized waste power batteries fall downward through the limit frame, the inclined frame 51, and the middle discharge slot on the multi-slot discharge frame 55. Workers collect the medium-sized waste power batteries that fall downward through the middle discharge slot on the multi-slot discharge frame 55. Then the transmission spur gear 67 continues to rotate counterclockwise to drive the straight tooth ring 68, the screening ring 5, the small limit frame 61, the medium limit frame 62, the large limit frame 63, and the limit ring 71 to continue rotating counterclockwise. The limit ring 71 squeezes the lifting frame 73 and the transmission push frame 75 to move downward again. The lifting frame 73 contacts the outer arc surface of the limit ring 71. The transmission push frame 75 moves downward to squeeze the support rod 76, the transmission frame 54, the multi-slot discharge frame 55, and the impurity frame 56 to move, so that the discharge slot on the multi-slot discharge frame 55 farthest from the transmission frame 54 is located obliquely below the inclined frame 51. The larger waste power batteries fall downward through the limit frame, the inclined frame 51, and the discharge slot on the multi-slot discharge frame 55 farthest from the transmission frame 54. Workers collect the larger waste power batteries that fall downward through the discharge slot on the multi-slot discharge frame 55 farthest from the transmission frame 54. Finally, the transmission spur gear 67 continues to rotate counterclockwise to drive the straight tooth ring 68, the screening ring 5, the small limit frame 61, the medium limit frame 62, the large limit frame 63, and the limit ring 71 to rotate counterclockwise and reset. The lifting frame 73 separates from the outer arc surface of the limit ring 71, and the elastic rebound of the spiral spring 74 drives the lifting frame 73 and the transmission push frame 75 to move upward and reset.The lifting frame 73 comes into contact with the inner arc surface on the limit ring 71 again, and the transmission push frame 75 moves upward to squeeze the support rod 76, the transmission frame 54, the multi-slot discharge frame 55 and the impurity frame 56 to move in the reverse direction and reset. The worker turns off the drive motor 2, so as to sort the waste power batteries according to their sizes, which is convenient for subsequent recycling of waste power batteries of different sizes, and thus improves the recycling efficiency of waste power batteries.

[0050] When the transmission spur gear 67 reversely rotates to drive the straight tooth ring 68, the screening ring 5, the small limit frame 61, the medium limit frame 62, the large limit frame 63 and the limit ring 71 to reversely rotate, part of the impurities in the support circular frame 4 fall on the inclined frame 51 through the impurity discharge slots on the screening ring 5, the small limit frame 61, the medium limit frame 62 and the large limit frame 63. Part of the impurities pass through the through slots on the inclined frame 51 and fall on the impurity frame 56, and then are discharged along the impurity frame 56. The worker collects the impurities. In this way, part of the impurities on the waste power batteries are quickly removed, reducing the interference of the impurities on the subsequent recycling of waste power batteries.

[0051] Embodiment 2: On the basis of Embodiment 1, as Figure 5 shown, it further includes a turning assembly, which is arranged on the rotating shaft 31. The turning assembly is used to turn the waste power batteries. The turning assembly includes: two rotating frames 81 are welded to the rotating shaft 31; a turning ring 82 is welded between the two rotating frames 81.

[0052] When the output shaft of the drive motor 2 drives the rotating shaft 31 and the small spur gear 65 to rotate forward, the rotating shaft 31 rotates forward to drive the rotating frame 81 and the turning ring 82 to rotate forward. The turning ring 82 rotates forward to push part of the waste power batteries in the lower layer to move, and part of the waste power batteries in the upper layer fall downward and contact the screening ring 5. In this way, when the turning ring 82 rotates forward, it continuously turns the waste power batteries in the support circular frame 4, so that when there are more waste power batteries loaded in the support circular frame 4, the screening ring 5, the small limit frame 61, the medium limit frame 62 and the large limit frame 63 can still efficiently sort the waste power batteries, and can still efficiently remove the impurities on the waste power batteries. In this way, the waste power batteries are sorted more efficiently.

[0053] Embodiment 3: On the basis of Embodiment 2, as Figure 2 、 Figure 4 and Figure 8 shown, it further includes a screening auxiliary assembly, which is arranged on the rotating shaft 31. The screening auxiliary assembly is used to shake the inclined frame 51. The screening auxiliary assembly includes: a support disk 91 is welded to the rotating shaft 31; a plurality of convex blocks 92 are welded to the support disk 91; a push frame 93 is fixedly connected to the side of the inclined frame 51 close to the return spring 511.

[0054] When the output shaft of the driving motor 2 drives the rotating shaft 31 and the small spur gear 65 to rotate clockwise, the rotating shaft 31 rotates clockwise to drive the support disk 91 and the convex blocks 92 to rotate clockwise. A plurality of convex blocks 92 rotate clockwise in sequence to squeeze and push the push frame 93 and the inclined frame 51 to move. When the convex block 92 is separated from the push frame 93, the return spring 511 rebounds to drive the inclined frame 51 and the push frame 93 to move in the reverse direction and reset. In this way, the inclined frame 51 can vibrate quickly, so that impurities can pass through the through grooves on the inclined frame 51 more efficiently, thereby removing impurities on the used power battery more fully and further reducing the interference of impurities on the subsequent recycling of used power batteries.

[0055] Embodiment 4: On the basis of Embodiment 3, as Figure 1 、 Figure 6 and Figure 7 shown, it further includes an auxiliary collection component, which is arranged on the inclined frame 51. The auxiliary collection component is used to limit the used power battery. The auxiliary collection component includes: a support plate 101, welded to the inclined frame 51; a limiting curtain 102, fixedly connected to the support plate 101; two arc-shaped strips 103, welded to the inner side of the inclined frame 51, and the upper sides of the two arc-shaped strips 103 are in contact with the limiting curtain 102.

[0056] When the used power battery moves downward along the inner side of the inclined frame 51 under its own gravity, if there is stacking between the used power batteries, the used power battery located above will contact the limiting curtain 102. The limiting curtain 102 can limit the used power battery, so that the used power battery will not fall into the discharge slot of the multi-slot discharge frame 55 in a stacked state, making it more smooth to fall into the multi-slot discharge frame 55 and reducing the probability of blockage during the collection of used power batteries.

[0057] Embodiment 5: On the basis of Embodiment 4, as Figure 6 shown, it further includes a buffer pad 11, fixedly connected to the inclined frame 51. The buffer pad 11 is used to buffer the used power battery.

[0058] When the used power battery falls onto the buffer pad 11 through the small limiting frame 61, the medium limiting frame 62 and the large limiting frame 63, the buffer pad 11 can buffer the used power battery, thereby protecting the used power battery and further maintaining the integrity of the used power battery more fully.

[0059] Although the present disclosure has been described with respect to only a limited number of embodiments, those skilled in the art who benefit from the present disclosure will understand that various other embodiments can be designed without departing from the scope of the present invention. Therefore, the scope of the present invention should be limited only by the appended claims.

Claims

1. An efficient sorting and recycling device for power batteries, characterized in that: Including: Main support (1); Drive motor (2), fixedly connected to the upper part of the main support (1); Feeding frame (3), fixedly connected to the upper part of the main support (1); Rotating shaft (31), rotatably connected to the upper part of the main support (1), one end of the rotating shaft (31) is fixedly connected to the output shaft of the drive motor (2), and the rotating shaft (31) passes through the feeding frame (3); Supporting circular frame (4), rotatably connected between the rotating shaft (31) and the feeding frame (3); Screening ring (5), rotatably connected to the outside of the supporting circular frame (4), and a plurality of impurity discharge grooves are formed on the screening ring (5); Discharge assembly, arranged on the main support (1); Sorting assembly, arranged on the screening ring (5); Auxiliary adjustment assembly, arranged on the main support (1).

2. The high-efficiency sorting and recycling device for a power battery according to claim 1, wherein: The discharge assembly includes: inclined frame (51), slidably connected to the middle part of the main support (1), and a number of through grooves are formed on the inclined frame (51); a return spring (511) is connected between the inclined frame (51) and the main support (1); baffle (52), fixedly connected to the lower part of the inclined frame (51); guide seat (53), fixedly connected to the lower part of the main support (1); transmission frame (54), slidably connected to the guide seat (53); multi-groove discharge frame (55), fixedly connected to one side of the transmission frame (54), and three discharge grooves are formed on the multi-groove discharge frame (55); impurity box (56), fixedly connected to the transmission frame (54).

3. The high-efficiency sorting and recycling device for a power battery according to claim 2, characterized in that: The sorting assembly includes: three small limit frames (61), fixedly connected to the screening ring (5); three medium limit frames (62), fixedly connected to the screening ring (5); three large limit frames (63), fixedly connected to the screening ring (5); small spur gear (65), fixedly connected to the rotating shaft (31); support rod (66), fixedly connected to the upper part of the main support (1), and the support rod (66) is fixedly connected to the supporting circular frame (4); transmission spur gear (67), rotatably connected to the support rod (66), and the transmission spur gear (67) meshes with the small spur gear (65); straight tooth ring (68), fixedly connected to one side of the screening ring (5), and the transmission spur gear (67) meshes with the straight tooth ring (68).

4. The high-efficiency sorting and recycling device for a power battery according to claim 3, wherein: The auxiliary adjustment assembly includes: limit ring (71), fixedly connected to the outside of the screening ring (5), and an inner arc surface, a middle arc surface and an outer arc surface are provided on the limit ring (71); guide frame (72), fixedly connected to the main support (1); lifting frame (73), slidably connected to the guide frame (72); helical spring (74), a helical spring (74) is connected between the guide frame (72) and the lifting frame (73); transmission push frame (75), fixedly connected to the bottom of the lifting frame (73), and a transmission groove is formed on the transmission push frame (75); support rod (76), fixedly connected to one side of the transmission frame (54), and the support rod (76) is located in the transmission groove on the transmission push frame (75).

5. The high-efficiency sorting and recycling device for a power battery according to claim 4, wherein: It also includes a turning assembly, arranged on the rotating shaft (31), and the turning assembly is used to turn the waste power battery. The turning assembly includes: two rotating frames (81) fixedly connected to the rotating shaft (31); turning ring (82), fixedly connected between the two rotating frames (81).

6. The high-efficiency sorting and recycling device for a power battery according to claim 5, characterized in that: It further includes a screening auxiliary component which is arranged on the rotating shaft (31). The screening auxiliary component is used to shake the inclined frame (51). The screening auxiliary component includes: a support disk (91) fixedly connected to the rotating shaft (31); a plurality of bumps (92) fixedly connected to the support disk (91); and a pushing frame (93) fixedly connected to the side of the inclined frame (51) close to the return spring (511).

7. The high-efficiency sorting and recycling device for a power battery according to claim 6, wherein: It further includes an auxiliary collection component which is arranged on the inclined frame (51). The auxiliary collection component is used to limit the waste power batteries. The auxiliary collection component includes: a support plate (101) fixedly connected to the inclined frame (51); a limiting curtain (102) fixedly connected to the support plate (101); and two arc-shaped strips (103) fixedly connected to the inner side of the inclined frame (51), and the upper sides of the two arc-shaped strips (103) are in contact with the limiting curtain (102).

8. The high-efficiency sorting and recycling device for a power battery according to claim 7, wherein: It further includes a buffer pad (11) fixedly connected to the inclined frame (51).

Citation Information

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