Anti-blocking conveying mechanism and feeding equipment

By introducing a baffle and a return mechanism into the battery conveying mechanism, adjusting the material conveying attitude and collecting materials that are not transmitted correctly, the problem of blockage of material parts in battery production is solved and production efficiency is improved.

CN222988486UActive Publication Date: 2025-06-17GUANGDONG SENEASY INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202422064772.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-06-17
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

During the battery production process, when the transmission line transmits the battery to the discharge transfer assembly, the material parts are prone to clogging, which affects the normal operation of the discharge transfer assembly and leads to a decrease in production efficiency.

Method used

A material-proof transfer mechanism is designed to adjust the material conveying attitude through the baffle, and the return mechanism blocks and collects materials that are not in the correct transfer attitude to ensure orderly conveying of materials and reduce material blocking.

Benefits of technology

It effectively reduces the occurrence of material plugging, ensures the smoothness of the feeding process, and improves the overall production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of battery production equipment, and discloses an anti-blocking conveying mechanism and a feeding device.The anti-blocking conveying mechanism comprises a feeding conveying belt which comprises a feeding end and a conveying end; the baffle is arranged on the feeding conveying belt and located between the feeding end and the conveying end, a notch used for adjusting the conveying posture of the materials is formed in the baffle, and the notch is matched with the materials; the backflow mechanism comprises a guide plate used for blocking the materials which are not adjusted to the correct conveying posture, the guide plate is located on one side of the notch, a backflow conveying belt is arranged on one side of the guide plate, and the backflow conveying belt receives the materials blocked by the guide plate; and the discharging channel is arranged on one side of the feeding end, and the discharging channel is used for discharging materials. The feeding equipment provided by the utility model comprises the anti-blocking conveying mechanism. The feeding device has the technical effects that the smoothness of the feeding process is ensured, and the overall production efficiency is further improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of battery production equipment, and particularly relates to a material-blocking prevention conveying mechanism and a feeding device. Background Art

[0002] During the battery production process, it is necessary to perform outer packaging or packing on the assembled batteries. The batteries to be packaged in batches usually need to be neatly loaded onto a predetermined station first, and then the batteries to be packaged are packaged by a packaging machine.

[0003] At present, the batteries to be packaged can be loaded using a battery feeding device. Among them, the battery feeding device includes a battery conveying mechanism. The battery conveying mechanism includes a conveying line for conveying batteries. A blanking chute is arranged on one side of the conveying line. The blanking end of the conveying line is connected to the blanking chute. A blanking pushing component is arranged at the blanking end of the conveying line. When the battery is conveyed to the blanking end by the conveying line, the blanking pushing component pushes the battery into the blanking chute, and the battery is discharged along the blanking chute. The battery conveying mechanism can realize continuous feeding of the battery.

[0004] However, when the conveying line conveys the battery to the blanking pushing component, the conveying line is still continuously feeding materials. The battery is prone to material blockage, which affects the normal operation of the blanking pushing component and causes material blockage. The staff needs to stop the machine for material arrangement, and the production efficiency of the battery is affected. Content of the Utility Model

[0005] In order to solve the deficiencies of the existing technology, the utility model provides a material-blocking prevention conveying mechanism and a feeding device. The material adjusts the conveying posture through a baffle, and the materials are conveyed in an orderly manner. The reflux mechanism blocks and collects the materials that are not in the correct conveying posture, which is beneficial to ensuring the smoothness of the feeding process, reducing the possibility of material blockage, and thus improving the overall production efficiency.

[0006] The technical effects to be achieved by the utility model are realized through the following technical aspects:

[0007] In the first aspect, the utility model provides a battery conveying mechanism for preventing material blockage, including a feeding conveyor belt with a feeding end and a feeding end; a baffle arranged on the feeding conveyor belt and located between the feeding end and the feeding end. The baffle is provided with a notch for adjusting the conveying posture of the material, and the notch is adapted to the material; a reflux mechanism including a guide plate for blocking the material that has not been adjusted to the correct conveying posture. The guide plate is located on one side of the notch, and a reflux conveyor belt is arranged on one side of the guide plate. The reflux conveyor belt receives the material blocked and dropped by the guide plate; and a blanking channel arranged on one side of the feeding end for discharging the material.

[0008] In some implementations, a first side plate is provided on one side of the baffle along the material conveying direction, and a second side plate is provided on the other side. A limiting conveying area matching the material is formed between the first side plate and the second side plate.

[0009] In some implementations, a cutoff assembly for stopping the conveyed material is provided on one side of the baffle.

[0010] In some implementations, a receiving opening is formed on the first side plate; the cutoff assembly includes a clamping block for cooperating with the second side plate to clamp the material. The clamping block is located within the receiving opening, and the clamping block is drivingly connected to a clamping driving member for driving the clamping block to approach or move away from the second side plate.

[0011] In some implementations, a groove is formed on one side of the clamping block close to the limiting conveying area, and the groove is adapted to the surface of the material.

[0012] In some implementations, it further includes a mounting plate. The feeding conveyor belt is arranged on the mounting plate, and a buffer member for buffering the first side plate is arranged between the mounting plate and the first side plate.

[0013] In some implementations, the feeding assembly includes a feeding push plate. The feeding push plate is drivingly connected to a feeding driving member for driving the feeding push plate to push the material, and a sensor for detecting the material is arranged on the feeding push plate.

[0014] In some implementations, a feeding assembly is arranged on one side of the feeding end of the feeding conveyor belt. The feeding assembly includes a plurality of moving inclined plates, and a transition inclined plate is arranged between adjacent two of the moving inclined plates; the plurality of moving inclined plates are drivingly connected to a lifting driving member for driving the plurality of moving inclined plates to lift relative to the transition inclined plate, and the material is conveyed to the feeding conveyor belt through the transition inclined plate and successively by the plurality of moving inclined plates.

[0015] In some implementations, a sensor for sensing the material is arranged at the end of the material conveying direction of the blanking channel.

[0016] In a second aspect, the present utility model provides a feeding device, including the anti-blocking conveying mechanism described above.

[0017] In summary, the present utility model has at least the following beneficial effects:

[0018] 1. The anti-blocking conveying mechanism provided by the present utility model feeds materials at the feeding end of the feeding conveyor belt. The feeding conveyor belt transports the materials to the feeding end. During the transportation process, the materials pass through the baffle. The baffle adjusts the conveying posture of the materials at the notch so that multiple successively fed materials can be adjusted to the correct placement position. The guiding plate blocks the materials that have not been adjusted to the correct conveying posture. The materials are blocked and guided by the guiding plate to fall onto the return conveyor belt. The return conveyor belt receives the fallen materials and enables them to flow back for re-feeding. The baffle cooperates with the return mechanism, which is beneficial to improving the blocking phenomenon caused by material congestion. The materials can be conveyed orderly on the feeding conveyor belt to solve the problem that the normal feeding of the blanking pushing component is affected due to material blockage.

[0019] 2. The feeding device provided by the present utility model can reduce the occurrence of blocking situations, the material conveyance is smooth, and by reducing the frequency of workers stopping the machine for material sorting, the overall production efficiency is improved. Description of the Drawings

[0020] Figure 1 It is a schematic diagram of the overall structure of an anti-blocking conveying mechanism according to a specific embodiment of the present utility model.

[0021] Figure 2 It is a schematic diagram of the partial structure of the baffle and the return mechanism according to a specific embodiment of the present utility model.

[0022] Figure 3 It is Figure 1 a schematic diagram of the structure from another angle.

[0023] Figure 4 It is a schematic diagram of the partial structure of the cut-off component and the feeding component according to a specific embodiment of the present utility model.

[0024] Figure 5 It is Figure 4 a schematic diagram of the partial structure from another angle.

[0025] Figure 6 It is a schematic diagram of the feeding component according to a specific embodiment of the present utility model.

[0026] Figure 7 It is a schematic diagram of the blanking channel according to a specific embodiment of the present utility model.

[0027] Figure 8 It is a schematic diagram of the overall structure of a feeding device according to a specific embodiment of the present utility model.

[0028] Markings in the figure:

[0029] 1. Loading conveyor belt; 11. Feeding end; 12. Material feeding end; 2. Baffle; 21. Notch; 22. First side plate; 23. Second side plate; 231. Accommodating opening; 24. Limiting conveying area; 3. Return mechanism; 31. Guide plate; 32. Return conveyor belt; 321. Enclosing plate; 33. Flap; 34. Adjusting plate; 4. Unloading channel; 41. Inductor; 5. Cut-off assembly; 51. Clamping block; 511. Groove; 52. Clamping driving part; 53. Buffer part; 6. Feeding assembly; 61. Feeding push plate; 62. Feeding driving part; 63. Sensor; 64. Bearing seat; 641. Limiting groove; 7. Loading assembly; 71. Moving inclined plate; 72. Lifting driving part; 721. Lifting seat; 722. Lifting guiding part; 73. Transition inclined plate; 8. Machine frame; 81. Mounting plate; 82. Connecting plate; 9. Bin; 10. Battery. Detailed implementation mode

[0030] In order to make the purpose, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the drawings in the embodiments of the present utility model. The described embodiments are part of the embodiments of the present utility model, rather than all of the embodiments.

[0031] Therefore, the following detailed description of the embodiments of the present utility model provided in the drawings is not intended to limit the scope of the present utility model to be protected, but merely represents the selected embodiments of the present utility model. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0032] Embodiment 1:

[0033] Please refer to the attached Figures 1-3 , the anti-blocking conveying mechanism of the present utility model includes a loading conveyor belt 1, a baffle 2 is arranged on the loading conveyor belt 1, and a return mechanism 3 is arranged on one side of the loading conveyor belt. It can be used in feeding equipment, especially battery 10 feeding equipment, to realize the loading and shaping of the battery 10, which is beneficial to improving the blocking problem of the existing conveying mechanism.

[0034] Among them, please refer to the attached Figure 1 , the anti-blocking conveying mechanism of the present utility model further includes a machine frame 8, the loading conveyor belt 1 is arranged on the machine frame 8, the loading conveyor belt 1 includes a feeding end 11 and a material feeding end 12. During the feeding process, the battery 10 enters the loading conveyor belt 1 at the feeding end 11 for loading and leaves the loading conveyor belt 1 at the material feeding end 12 for unloading. A baffle 2 is arranged on the conveying surface of the loading conveyor belt 1. Specifically, the baffle 2 can be installed on the machine frame 8 and is located between the feeding end 11 and the material feeding end 12.

[0035] Please refer to the attached Figure 1 and Figure 2 , on one side of the baffle 2 close to the feeding conveyor belt 1, there is a notch 21 for adjusting the conveying posture of the battery 10. When the battery 10 enters the notch 21, it can maintain the correct conveying posture. In a preferred embodiment, the baffle 2 is provided with a first side plate 22 and a second side plate 23 at the notch 21. Among them, the first side plate 22 is located on one side of the baffle 2 along the conveying direction of the battery 10, and the second side plate 23 is located on the other side. The first side plate 22 and the second side plate 23 are arranged oppositely. Specifically, both the first side plate 22 and the second side plate 23 are vertically arranged long plates, and a limiting conveying area 24 matching the battery 10 is formed between the two, so that the battery 10 maintains the correct conveying posture and passes through the limiting conveying area 24. In some specific embodiments shown, the connection part of the baffle 2 and the first side plate 22 is arc-shaped to guide the battery 10 to adjust the conveying posture at the notch 21 and enter the notch 21 through the conveying of the feeding conveyor belt 1.

[0036] Please refer to the attached Figure 3 , on one side of the notch 21 of the baffle 2, there is a return mechanism 3. The return mechanism 3 includes a guide plate 31. Specifically, the guide plate 31 is located on one side of the second side plate 23 close to the feeding end 11 and is connected to the second side plate 23. The guide plate 31 extends to the outside of the feeding conveyor belt 1 along one side of the feeding conveyor belt 1 in the conveying direction. The guide plate 31 can block the battery 10 that has not been adjusted to the correct conveying posture. During the continuous conveying of the battery 10 on the feeding conveyor belt 1, the guide plate 31 guides the battery 10 that is not in the correct conveying posture to leave the feeding conveyor belt 1.

[0037] In a preferred embodiment, an adjusting plate 34 is provided on the side of the second side plate 23 away from the first side plate 22. The adjusting plate 34 is detachably connected to the second side plate 23, and the adjusting plate 34 can be adjusted in position along the conveying direction of the feeding conveyor belt 1. Specifically, a waist-shaped hole is opened on the second side plate 23, and the adjusting plate 34 can be detachably connected to the second side plate 23 through the waist-shaped hole and bolts. A flap 33 is rotatably arranged on the adjusting plate 34. The flap 33 is located on one side of the guide plate 31 close to the feeding end 11, and the distance between the flap 33 and the guide plate 31 can be adjusted through the adjusting plate 34. Specifically, the flap 33 can be hinged to the adjusting plate 34 using a hinge, and the axis direction of the rotating shaft at the hinge is consistent with the conveying direction of the battery 10. When the battery 10 that has not been adjusted to the correct conveying posture is blocked by the guide plate 31 and leaves the feeding conveyor belt 1, the battery 10 pushes up the flap 33, and the flap 33 flips to provide an avoidance space for the battery 10 to leave the feeding conveyor belt 1. The flap 33 can cooperate with the guide plate 31 to limit the leaving path of the battery 10.

[0038] A return conveyor belt 32 is provided at the bottom of the guide plate 31. The battery 10 falls onto the return conveyor belt 32 after leaving the feeding conveyor belt 1. Specifically, the conveying direction of the return conveyor belt 32 is opposite to that of the feeding conveyor belt 1, so that the return conveyor belt 32 can return the received battery 10 to the feeding end 11. Specifically, both the return conveyor belt 32 and the feeding conveyor belt 1 can be driven by a shaft sticking device and a motor to increase the service life of the motor. In some specific embodiments shown, a panel 321 is provided around the outer side of the return conveyor belt 32, which can prevent the battery 10 from falling off the return conveyor belt 32, thereby affecting the feeding efficiency.

[0039] The loading conveyor belt 1 is provided with a unloading channel 4 on one side of the feeding end 12, and the unloading channel 4 is connected with the feeding end 12 to continue to convey the battery 10. Specifically, the unloading channel 4 is an inclined pipe, and the battery 10 slides along the unloading channel 4 to achieve unloading.

[0040] Please refer to the attached Figures 1-3 During material transmission, the battery 10 is continuously fed from the feed end 11, and the feeding conveyor belt 1 transmits the battery 10 to the baffle 2. The battery 10 adjusts the transmission posture through the notch 21. After the battery 10 is straightened, it enters the notch 21 and the limited transmission area 24. The first side plate 22 and the second side plate 23 limit the transmission of the battery 10, so that the battery 10 always maintains the correct transmission posture during the transmission process. The baffle 2 adjusts the transmission posture of the battery 10 through the notch 21, and can ensure that only one battery 10 passes through the notch 21 at a time, so as to reduce the blocking phenomenon caused by the crowding of the battery 10. The battery 10 that has not been adjusted to the correct transmission posture falls onto the return conveyor belt 32 under the blocking effect of the baffle 2. The return conveyor belt 32 transmits the battery 10, and the battery 10 flows back to the feed end 11, and circulates in sequence to achieve the anti-blocking effect. At the same time, the anti-blocking transmission mechanism can improve the smoothness of the battery 10 feeding process, thereby improving the production efficiency of the battery 10. The loading conveyor belt 1 conveys the battery 10 to the feeding end 12, and the battery 10 is discharged along the unloading channel 4 to enter the next process, and the battery 10 completes the feeding operation.

[0041] Embodiment 2:

[0042] The difference between this embodiment and embodiment 1 is that this embodiment further includes a cut-off component 5, see Figure 4 and Figure 5 In a preferred embodiment, the cut-off assembly 5 is located on a side of the baffle plate 2 close to the feed end 11, wherein a receiving opening 231 is provided on the second side plate 23, and the receiving opening 231 is specifically a rectangular opening.

[0043] The cutoff assembly 5 includes a material clamping block 51 which is located at the accommodating opening 231. When the feeding conveyor belt 1 conveys the battery 10 to the cutoff assembly 5, the material clamping block 51 cooperates with the first side plate 22 to clamp the battery 10. In some specific embodiments shown, a groove 511 adapted to the battery 10 is formed on one side of the material clamping block 51 close to the first side plate 22, which is beneficial to improving the adaptability between the material clamping block 51 and the battery 10, and further improving the stability during clamping. Specifically, the groove 511 can be an arc-shaped groove matching the outer shell of the battery 10. It can be understood that this is not a specific limitation on the shape of the groove 511, and those skilled in the relevant art can make replacements according to the shape of the material. For example, in some other specific embodiments, the groove 511 can be a square groove.

[0044] The material clamping block 51 is drivingly connected to a material clamping driving member 52. Specifically, the material clamping driving member 52 is preferably but not limited to a material clamping cylinder. The driving end of the material clamping driving member 52 is drivingly connected to the material clamping block 51, and the material clamping driving member 52 drives the material clamping block 51 to approach or move away from the first side plate 22. When the material clamping block 51 approaches the first side plate 22, it cooperates with the first side plate 22 to clamp the battery 10 to stop the battery 10 being conveyed, and the battery 10 is separated from the battery 10 conveyed in front, further improving the problem of material blockage during the conveyance of the battery 10. At the same time, the material clamping block 51 clamps the battery 10 in cooperation with the first side plate 22 at the groove 511, and the battery 10 is separated from the feeding conveyor belt 1, which can reduce the friction between the battery 10 and the feeding conveyor belt 1 during conveyance and reduce the damage of the battery 10 caused by friction transmission of sound.

[0045] In a preferred embodiment, the frame 8 includes a mounting plate 81 which is located on one side of the feeding conveyor belt 1 along the conveyance direction of the battery 10, and the feeding conveyor belt 1 is connected to the mounting plate 81. A buffer member 53 is provided between the first side plate 22 and the mounting plate 81. When the material clamping driving member 52 drives the material clamping block 51 to approach the first side plate 22 to clamp the battery 10, the buffer member 53 can buffer the impact force exerted on the first side plate 22 by the battery 10 and the material clamping block 51, and reduce the influence after the first side plate 22 is collided. In some specific embodiments shown, bolts are passed through the mounting plate 81. The buffer member 53 is preferably but not limited to a spring. Through holes for the bolts to pass through are formed on the first side plate 22. The buffer member 53 is sleeved on the bolts and is located between the first side plate 22 and the mounting plate 81. When the material clamping driving member 52 drives the material clamping block 51 to approach the first side plate 22, the material clamping block 51 drives the battery 10 to abut against the first side plate 22, and the buffer member 53 expands and contracts to play a buffering role.

[0046] In a preferred embodiment, the loading conveyor belt 1 is provided with a feeding assembly 6 at the loading end, and the feeding assembly 6 includes a feeding push plate 61 for pushing the battery 10 into the unloading channel 4. As shown in some specific embodiments, the feeding push plate 61 includes a positioning section, a pushing section and a limiting section, wherein the pushing section is a vertically arranged long plate and the length direction is consistent with the conveying direction of the loading conveyor belt 1, the positioning section is located on the side of the pushing section close to the feeding end 12, the positioning section spans the feeding end 12 of the loading conveyor belt 1, and when the loading conveyor belt 1 conveys the battery 10 to the feeding end 12, the positioning section can block the battery 10 from continuing to be conveyed, and the limiting section is located on the side of the pushing section close to the cut-off assembly 5.

[0047] The feeding push plate 61 is transmission-connected with a feeding drive member 62. Specifically, the feeding drive member 62 is preferably, but not limited to, a feeding cylinder. The transmission end of the feeding drive member 62 is transmission-connected with the feeding push plate 61. When the stroke of the feeding drive member 62 changes, the battery 10 can be pushed into the unloading channel 4 for unloading. A bearing seat 64 is provided on one side of the feeding push plate 61. The feeding drive member 62 is mounted on the bearing seat 64. In some specific embodiments shown, a limiting groove 641 is provided on the bearing seat 64. The limiting groove 641 is a U-shaped groove. The limiting section of the feeding push plate 61 can slide in the limiting groove 641 to play a certain limiting role in the pushing distance of the feeding push plate 61, which is conducive to improving the accuracy of the feeding push plate 61 in pushing the battery 10.

[0048] As shown in some specific embodiments, a sensor 63 for sensing the battery 10 is provided on the pushing section of the feeding push plate 61. Specifically, the sensor 63 is preferably but not limited to an optical fiber sensor 63. When the loading conveyor belt 1 transmits the battery 10 to the feeding component 6, the sensor 63 senses the battery 10, and the clamping drive 52 immediately operates to separate the battery 10 at the cut-off component 5 and the battery 10 at the feeding component 6 through the clamping block 51. The feeding drive 62 delays the operation and pushes the battery 10 at the feeding component 6 into the unloading channel 4. At this time, the cut-off component 5 can reduce the interference between the battery 10 at the cut-off component 5 and the battery 10 at the feeding component 6. The battery 10 at the cut-off component 5 is difficult to affect the feeding action of the feeding component 6, which is conducive to further improving the blockage problem in the feeding process and is convenient to use.

[0049] When the loading conveyor belt 1 conveys the battery 10 to the cut-off component 5, the cut-off component 5 stops the battery 10, and the feeding component 6 pushes the battery 10 at the corresponding position into the unloading channel 4. The cut-off component 5 and the feeding component 6 work in sequence and in an orderly manner, and the battery 10 is continuously unloaded, and the possibility of blockage is effectively reduced.

[0050] Embodiment 3:

[0051] The difference between this embodiment and the above embodiment is that this embodiment further includes a feeding assembly 7, see Figure 6 and Figure 7 The loading assembly 7 includes a plurality of movable inclined plates 71, and the plurality of movable inclined plates 71 are arranged side by side. In some specific embodiments shown, the movable inclined plates 71 include movable inclined planes for conveying the batteries 10, and the movable inclined planes are arranged obliquely relative to the arrangement direction of the plurality of movable inclined plates 71, so that the batteries 10 are conveyed on the movable inclined planes of the plurality of movable inclined plates. A transition inclined plate 73 is arranged between two adjacent movable inclined plates 71. In some specific embodiments shown, the transition inclined plate 73 includes a transition inclined plane, and the inclination direction of the transition inclined plane is consistent with the inclination direction of the movable inclined plane. Further, a connecting plate 82 is arranged between the transition inclined plate 73 and the rack 8, and the connecting plate 82 is arranged on both sides of the transition inclined plate 73 along the feeding direction of the batteries 10, and the connecting plate 82 is detachably connected to the transition inclined plate 73 and the rack 8, respectively, so that the transition inclined plate 73 is installed and fixed.

[0052] In a preferred embodiment, a lifting seat 721 is provided on one side of the plurality of movable inclined plates 71. When the lifting seat 721 moves up and down, it drives the plurality of movable inclined plates 71 to move up and down synchronously. A lifting guide 722 is provided between the lifting seat 721 and the frame 8. In some specific embodiments shown, the lifting guide 722 includes a guide rail, which is mounted on the frame 8. The lifting seat 721 is slidably connected to the guide rail, and the guide rail can play a certain guiding role in the lifting and lowering movement of the lifting seat 721. The lifting seat 721 is transmission-connected with a lifting drive 72. Specifically, the lifting drive 72 is preferably, but not limited to, a lifting cylinder. The output end of the lifting drive 72 moves up and down with one of the plurality of movable inclined plates 71. The movable inclined plate 71 drives the remaining movable inclined plates 71 to move up and down together through the lifting seat 721.

[0053] In some specific embodiments shown, three movable inclined plates 71 may be provided, wherein the three movable inclined plates 71 are sequentially the first movable inclined plate, the second movable inclined plate and the third movable inclined plate along the feeding direction of the battery 10; two transition inclined plates 73 may be provided, wherein the two transition inclined plates 73 are sequentially the first transition inclined plate and the second transition inclined plate along the feeding direction of the battery 10, and the first movable inclined plate, the second movable inclined plate, the third movable inclined plate, the first transition inclined plate and the second transition inclined plate are mutually attached. At this time, the lifting drive member 72 is transmission-connected with the third movable inclined plate.

[0054] When the battery 10 is fed from the feeding end 11 to the loading conveyor belt 1 through the feeding assembly 7, the lifting driving member 72 drives the third moving inclined plate to rise. The third moving inclined plate drives the lifting seat 721, the second moving inclined plate and the first moving inclined plate to rise. The first moving inclined plate rises relative to the first transition inclined plate, and the battery 10 on the first moving inclined plate slides down along the moving inclined surface to the first transition inclined plate; the lifting driving member 72 drives the third moving inclined plate to descend, and the third moving inclined plate drives the lifting seat 721, the second moving inclined plate and the first moving inclined plate to descend. When the second moving inclined plate descends to a position lower than the first transition inclined plate, the battery 10 on the first transition inclined plate slides down along the transition inclined surface to the first transition inclined plate. By repeating the above operations, the battery 10 is sequentially conveyed through the first moving inclined plate, the first transition inclined plate, the second moving inclined plate, the second transition inclined plate and the third moving inclined plate. Finally, when the lifting driving member 72 drives the third moving inclined plate to rise to a position higher than the conveying surface of the loading conveyor belt 1, the battery 10 is fed from the feeding end 11 onto the loading conveyor belt 1. The operation is simple, which is beneficial to realizing the automatic feeding of the battery 10 and improving the feeding efficiency of the battery 10.

[0055] Specifically, the return conveyor belt 32 is located at the top of the second transition inclined plate and the third moving inclined plate, so that the battery 10 can be returned to the feeding assembly 7 through the return mechanism 3.

[0056] In a preferred embodiment, a sensor 41 for sensing the battery 10 is provided at the end of the blanking channel 4 in the conveying direction of the battery 10. Specifically, the sensor 41 is preferably but not limited to an optical fiber sensor 41. When the sensor 41 senses the battery 10, there is a battery 10 in the blanking channel 4 and there is no need to continue blanking, and the anti-blocking conveying mechanism stops feeding; when the sensor 41 does not sense the battery 10, the anti-blocking conveying mechanism continues to feed, so as to ensure the continuity of the production process and further reduce the possibility of the battery 10 being blocked.

[0057] Embodiment 4:

[0058] On the basis of the above embodiment, this embodiment provides a feeding device. Please refer to Figure 8 .

[0059] A feeding device includes a storage bin 9 and the above anti-blocking conveying mechanism. Among them, the storage bin 9 is arranged on one side of the anti-blocking conveying mechanism, so that the battery 10 can enter from the storage bin 9 onto the loading conveyor belt 1. In some specific embodiments shown, the bottom surface of the storage bin 9 is inclined and located at the top of the feeding assembly 7. The battery 10 can slide down along the bottom surface of the storage bin 9 to the moving inclined plate 71 and then realize feeding through the feeding assembly 7. The setting of the storage bin 9 is beneficial to putting more batteries 10 at one time, improving the operation convenience and eliminating the cumbersome operation of frequent feeding by the operator.

[0060] The feeding device of the present utility model can reduce the occurrence of material blockage during the feeding of batteries, ensuring smooth battery transmission and facilitating the improvement of the overall production efficiency.

[0061] In the present utility model, unless otherwise clearly defined and limited, terms such as "installation", "connection", "connection", "fixation" and other terms should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0062] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by terms such as "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the utility model product is usually placed during use. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model. In addition, terms such as "first", "second", "third", etc. are only used for distinguishing descriptions and cannot be understood as indicating or implying relative importance.

[0063] In addition, terms such as "horizontal", "vertical", "overhanging", etc. do not mean that the components are required to be absolutely horizontal or overhanging, but can be slightly inclined. For example, "horizontal" only means that its direction is more horizontal relative to "vertical", and does not mean that the structure must be completely horizontal, but can be slightly inclined.

[0064] In the present utility model, unless otherwise clearly defined and limited, the first feature being above or below the second feature may include direct contact between the first and second features, or may include the first and second features not being in direct contact but in contact through other features therebetween. Moreover, the first feature being above, over and on the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being below, under and beneath the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is less than that of the second feature.

[0065] Although the description of the present utility model is carried out in combination with the above specific embodiments, it is obvious that those skilled in the art can make many substitutions, modifications and changes based on the above content. Therefore, all such substitutions, improvements and changes are included within the spirit and scope of the appended claims.

Claims

1. A conveying mechanism for anti-blocking material, characterized in that: include A loading conveyor belt (1), comprising a feeding end (11) and a delivery end (12); A baffle (2) is provided on the loading conveyor belt (1) and is located between the feeding end (11) and the feeding end (12); a notch (21) is provided on the baffle (2) for adjusting the conveying posture of the material, and the notch (21) is adapted to the material; A reflux mechanism (3), comprising a guide plate (31) for blocking materials that are not adjusted to a correct conveying posture, the guide plate (31) being located on one side of the notch (21), a reflux conveyor belt (32) being provided on one side of the guide plate (31), the reflux conveyor belt (32) receiving materials blocked by the guide plate (31); and A material discharge channel (4) is provided at one side of the feeding end (12), and the material discharge channel (4) is used for discharging the material.

2. The anti-blocking material conveying mechanism according to claim 1, characterized in that: The baffle (2) is provided with a first side plate (22) on one side along the material conveying direction, and a second side plate (23) on the other side, and a position limiting conveying area (24) matching the material is formed between the first side plate (22) and the second side plate (23).

3. The anti-blocking material conveying mechanism according to claim 2, characterized in that: A cut-off component (5) for stopping the material being transported is arranged on one side of the baffle (2).

4. The anti-blocking material conveying mechanism according to claim 3, characterized in that: The first side plate (22) is provided with a receiving opening (231); The cut-off assembly (5) comprises a clamping block (51) for cooperating with the second side plate (23) to clamp the material; the clamping block (51) is located in the accommodating opening (231); the clamping block (51) is transmission-connected to a clamping driving member (52) for driving the clamping block (51) to move closer to or away from the second side plate (23).

5. The anti-blocking material conveying mechanism according to claim 4, characterized in that: A groove (511) is provided on one side of the clamping block (51) close to the position limiting conveying area (24), and the groove (511) is adapted to the surface of the material.

6. The anti-blocking material conveying mechanism according to claim 4, characterized in that: It also comprises a mounting plate (81), the loading conveyor belt (1) is arranged on the mounting plate (81), and a buffer member (53) for buffering the first side plate (22) is arranged between the mounting plate (81) and the first side plate (22).

7. The anti-blocking material conveying mechanism according to claim 1, characterized in that: The invention also comprises a feeding assembly (6), wherein the feeding assembly (6) comprises a feeding push plate (61), wherein the feeding push plate (61) is transmission-connected to a feeding driving member (62) for driving the feeding push plate (61) to push the material, and a sensor (63) for detecting the material is arranged on the feeding push plate (61).

8. The anti-blocking material conveying mechanism according to claim 1, characterized in that: The feeding conveyor belt (1) is provided with a feeding assembly (7) at one side of the feeding end (11), and the feeding assembly (7) comprises a plurality of movable inclined plates (71), and a transition inclined plate (73) is provided between two adjacent movable inclined plates (71); The plurality of movable inclined plates (71) are transmission-connected to a lifting drive member (72) for driving the plurality of movable inclined plates (71) to lift and lower relative to the transition inclined plate (73); the material passes through the transition inclined plate (73) and is sequentially transferred from the plurality of movable inclined plates (71) to the loading conveyor belt (1).

9. The anti-blocking material conveying mechanism according to claim 8, characterized in that: The material discharge channel (4) is provided with a sensor (41) for sensing the material at the end in the material conveying direction.

10. A feeding device, characterized in that: A conveying mechanism for anti-blocking material comprising any one of claims 1 to 9.