Automatic control feeding device for new energy battery aluminum shell machining

By designing an automatic control feeding device and using components such as slides, sliders and hydraulic cylinders to achieve the expansion and height adjustment of the placement plate, the problem of poor adaptability of the existing feeding device is solved, and stable transportation and efficient docking of aluminum shells of different specifications are achieved, thereby improving production efficiency and precision.

CN120622020AInactive Publication Date: 2025-09-12XINGHUA SENRONG METAL PROD CO LTD
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Patent Information

Application Number
CN202510718194.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-30
Publication Date
2025-09-12
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing feeding device has poor adaptability and cannot effectively adapt to aluminum shells of different specifications and materials. It is also difficult to dock between platforms at different heights, which increases production costs and cycles.

Method used

An automatic feeding device was designed. Through the combination of chutes, sliders, hydraulic cylinders and stepper motors, the expansion and height adjustment of the placement plate were achieved. It can adapt to the transportation of aluminum shells of different specifications and achieve stable docking between the end platforms.

Benefits of technology

It realizes the stable transportation and efficient docking of aluminum shells of different specifications, reduces production costs and cycles, and improves production efficiency and aluminum shell processing accuracy.

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Abstract

The invention discloses an automatic control feeding device for new energy battery aluminum shell machining, and belongs to the technical field of industrial automatic control system device manufacturing. A plurality of sliding grooves are formed in the two sides of a containing plate, side plates are installed in the sliding grooves in a sliding mode, a limiting clamp is further fixedly installed below the containing plate, a wide notch is formed in the middle of the limiting clamp, and symmetrical narrow notches are formed in the two sides of the limiting clamp. A sliding block is clamped in the wide notch; when the battery aluminum shell conveying device is used, battery aluminum shells of different specifications can be conveyed, when large battery aluminum shells are conveyed, the side plates on the side faces of the containing plates can stretch out towards the two sides, the expanded side plates can still slide on the sliding rail frames, the sliding rail frames can synchronously move, and stable supporting is still provided under the condition that conveying and sliding are not affected.
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Description

Technical Field

[0001] The present invention relates to the technical field of industrial automatic control system device manufacturing, and in particular to an automatic control feeding device for processing aluminum shells of new energy batteries. Background Art

[0002] Against the backdrop of rising global demand for clean energy, the new energy industry is experiencing explosive growth. Batteries, as its core energy carrier, are in increasing demand. Battery aluminum shells are important protective components of batteries, and their processing quality and efficiency are directly related to battery performance and industry competitiveness. Under this situation, the automatic control feeding system for new energy battery aluminum shell processing came into being, becoming a key force in promoting the development of the industry.

[0003] The automatic control feeding system for new energy battery aluminum shell processing is an automated solution designed specifically to meet the needs of battery aluminum shell processing. It abandons traditional manual feeding or simple mechanical feeding methods, and through highly integrated automation equipment and advanced control logic, it realizes the precise and stable transportation of aluminum shell raw materials from storage to processing equipment. During operation, the system can automatically adjust the feeding speed, rhythm and position according to the real-time status and process requirements of the processing equipment to ensure that each aluminum shell can enter the processing link at the optimal time.

[0004] The application of the automatic control feeding system has brought many significant significances to the new energy battery aluminum shell processing industry; it realizes the automation and high-speed of the feeding process, and can deliver the aluminum shell to the processing equipment at a constant and fast speed, avoiding pauses, waiting and operational errors during manual feeding, and greatly shortening the production cycle; compared with traditional feeding methods, production efficiency can be increased several times, effectively meeting the market demand for large-scale and rapid supply of new energy batteries; the automatic control feeding system ensures that the position and posture of each aluminum shell during the feeding process meet the processing requirements through precise positioning and control; this reduces the processing error caused by feeding deviation and improves the processing accuracy and consistency of the aluminum shell; for new energy batteries, high-precision processing of aluminum shells can better ensure the sealing, safety and performance stability of the battery, thereby improving the overall quality and market competitiveness of the battery; the automatic control feeding system for new energy battery aluminum shell processing, with its high efficiency, precision and stability, has brought a new production model and development opportunities to the new energy battery aluminum shell processing industry, and has become an important support for promoting the high-quality development of the new energy industry.

[0005] However, the existing feeding devices have poor adaptability. Some automatic feeding devices on the market can only adapt to aluminum shells of specific specifications and shapes. For the processing needs of aluminum shells of larger sizes and different materials, the feeding devices need to be frequently replaced or complex adjustments need to be made, which increases production costs and production cycles. In addition, the existing feeding devices require the participation of robots for docking after transportation, and cannot dock well with platforms of different heights. Summary of the Invention

[0006] In response to the above technical problems, the present invention discloses an automatic control feeding device for processing new energy battery aluminum shells, which can effectively solve the problems in the background technology. When in use, the present invention can convey battery aluminum shells of different specifications. When conveying larger battery aluminum shells, the side panels on the side of the placement plate can extend to both sides, and the extended side panels can still slide on the slide rail frame, and the slide rail frame will also move synchronously, providing stable support without affecting the conveying slide; when conveying to the end point, the present invention can dock with platforms of different heights. The placement plate is independent, and the support frame can lift the placement plate to the specified height for easy docking.

[0007] An automatic control feeding device for processing aluminum shells of new energy batteries is characterized in that multiple slide grooves are provided on both sides of the placement plate, the distance between each slide groove is equal, there are two side plates, and the evenly spaced plates on the inner end of each side plate correspond to the slide grooves on both sides of the placement plate, are slidably connected to the slide grooves, and the side plates are provided with hollow treatment; a limit card is also fixedly installed in the middle of the bottom of the placement plate, and a wide slot is provided in the middle of the limit card, and symmetrical narrow slots are provided on both sides; a slider is clamped in the wide slot.

[0008] Preferably, a door-shaped extension frame is provided at one end of the table top, the extension frame is fixedly connected to one end of the square slide rail, the other end of the square slide rail is extended out of the table top for a distance, and is fixedly connected to the middle position of the T-shaped bracket. At the same time, the extension frame is also fixedly connected to one end of the circular slide rail, and the other end of the circular slide rail is flush with the other end of the square slide rail, and is also fixedly connected to the middle position of the T-shaped bracket, but is positioned further outward than the square slide rail; the extension frame is also rotatably connected to one end of the screw rod, and the other end of the screw rod also extends out of the table top and is rotatably installed in the circular hole in the middle of the T-shaped bracket. One end of the screw rod is also connected to the motor shaft of the stepper motor, and the stepper motor is fixedly installed at the outer end of the T-shaped bracket.

[0009] Preferably, the screw rod is threadedly connected to the slider, the circular slide rail is slidably connected to the circular hole on the slider, and the two sides of the slider are on the inner side of the square slide rail without contact.

[0010] Preferably, sliding rods are fixedly installed at both ends of the table top, and the sliding rods are slidably connected to the circular holes on the bosses under the slide rail frames. There are two slide rail frames, which are symmetrically installed. A cross beam is also provided in the middle of the bosses under each slide rail frame, and multiple short shafts are provided on the cross beam. The slide rail frames are also slidably connected to the slide grooves under the side panels.

[0011] Preferably, a card slot is fixedly installed in the middle position of the table top, and a long rod is slidably installed in the card slot. The long rod is provided with multiple short shafts, and there are two rows of them. Each short shaft is rotatably connected to one end of one of the multiple connecting rods, and the other end of each connecting rod is rotatably connected to the short shaft on the sliding rod, and the connecting rods in each row of the two rows of connecting rods are parallel to each other; one end of the long rod is also fixedly connected to the piston rod of hydraulic cylinder I, and the cylinder body of hydraulic cylinder I is fixedly installed on the extension plate on the table top.

[0012] Preferably, the lower end of the T-shaped bracket is fixedly mounted on the edge of the base plate, and two symmetrical telescopic sleeves are fixedly welded on the base plate. A support frame is slidably mounted in the slide groove of the telescopic sleeve. There are two support frames, and the upper end of each support frame contacts the positions on both sides of the bottom of the placement plate and is stuck by the protrusion under the placement plate. The extension plate on the side of the support frame is also fixedly connected to the piston rod of the hydraulic cylinder II, and the cylinder body of the hydraulic cylinder II is fixedly mounted on the telescopic sleeve.

[0013] Preferably, slide grooves are provided on both sides of the T-shaped bracket, and the slide grooves are slidably connected to one end of the two slide rail frames.

[0014] The beneficial effects of the present invention compared with the prior art are: 1. When in use, the present invention can convey battery aluminum shells of different specifications. When conveying larger battery aluminum shells, the side panels on the side of the placement plate can extend to both sides, and the extended side panels can still slide on the slide rail frame, and the slide rail frame will also move synchronously, providing stable support without affecting the conveying sliding.

[0015] 2. When the present invention is transported to the end point, it can dock with platforms of different heights. The placement plate is independent, and the support frame can lift the placement plate to a specified height for easy docking. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is an isometric view of the overall structure of the present invention.

[0017] Figure 2 It is a top view of the overall structure of the present invention.

[0018] Figure 3 This is a first perspective view of the connection relationship between the placement plate and the side plate of the present invention.

[0019] Figure 4 This is a second perspective view of the connection relationship between the placement plate and the side plate of the present invention.

[0020] Figure 5 This is a diagram showing the connection between the placement plate and the limit card of the present invention.

[0021] Figure 6 It is a structural diagram of the transmission relationship of the present invention.

[0022] Figure 7 This is a first perspective view of the connection relationship of the slide rail frame of the present invention.

[0023] Figure 8 A second perspective view of the connection relationship of the slide rail frame of the present invention Figure 9 This is a first perspective view of the connection relationship of the support frame of the present invention.

[0024] Figure 10 This is a second perspective view of the connection relationship of the support frame of the present invention.

[0025] Figure numbers: 1. Placement plate; 2. Side panel; 3. Limit card; 4. Slider; 5. Table; 6. Square slide rail; 7. Round slide rail; 8. Screw rod; 9. T-shaped bracket; 10. Stepper motor; 11. Slide rail frame; 12. Crossbeam; 13. Long rod; 14. Slot; 15. Connecting rod; 16. Hydraulic cylinder I; 17. Bottom plate; 18. Telescopic sleeve; 19. Support frame; 20. Hydraulic cylinder II. DETAILED DESCRIPTION

[0026] The technical solution of the present invention will be further described in detail below through examples and in conjunction with the accompanying drawings. Many specific details are set forth in the following description to facilitate a full understanding of the present invention. However, the present invention can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0027] In the description of the present invention, it should be noted that the terms "upper," "lower," "front," "back," "left," and "right" and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, or the orientations or positional relationships in which the inventive product is typically placed during use. These terms are intended to simplify the description of the present invention and are not intended to indicate or imply that the device or element referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, for ease of description, spatially relative terms, such as "below," "below," "below," "above," and "above," may be used herein to describe the relationship of one element or feature relative to other elements or features as shown in the drawings. Spatially relative terms are intended to encompass different orientations of the device in use or operation other than those shown in the accompanying drawings. The device may have other orientations (rotated 90 degrees or in other orientations), and the spatially relative descriptors used herein should be interpreted accordingly.

[0028] Implementation example Figures 1-10 As shown, an automatic control feeding device for processing aluminum shells of new energy batteries; In an optional implementation of the embodiment of the present invention, Figure 3 、 Figure 4 、 Figure 5 As shown, the placement plate 1 is provided with multiple slide grooves on both sides, the distance between each slide groove is equal, there are two side panels 2, and the equally spaced plates on the inner end of each side panel 2 correspond to the slide grooves on both sides of the placement plate 1, and are slidably connected to the slide grooves, and the side panels 2 are provided with a hollow treatment; a limit card 3 is also fixedly installed in the middle of the bottom of the placement plate 1, and a wide slot is provided in the middle of the limit card 3, and symmetrical narrow slots are provided on both sides; a slider 4 is clamped in the wide slot.

[0029] In an optional implementation of the embodiment of the present invention, Figure 6 As shown, a door-shaped extension frame is provided at one end of the table top 5, which is fixedly connected to one end of the square slide rail 6, and the other end of the square slide rail 6 is extended out of the table top 5 for a distance and is fixedly connected to the middle position of the T-shaped bracket 9. At the same time, the extension frame is also fixedly connected to one end of the circular slide rail 7, and the other end of the circular slide rail 7 is flush with the other end of the square slide rail 6, and is also fixedly connected to the middle position of the T-shaped bracket 9, but is positioned further outward than the square slide rail 6; the extension frame is also rotatably connected to one end of the screw rod 8, and the other end of the screw rod 8 also extends out of the table top 5 and is rotatably installed in the circular hole in the middle of the T-shaped bracket 9. One end of the screw rod 8 is also connected to the motor shaft of the stepper motor 10, and the stepper motor 10 is fixedly mounted on the outer end of the T-shaped bracket 9.

[0030] In an optional implementation of the embodiment of the present invention, Figure 6As shown, the screw rod 8 is threadedly connected to the slider 4, the circular slide rail 7 is slidably connected to the circular hole on the slider 4, and the two sides of the slider 4 are on the inner side of the square slide rail 6 without contact.

[0031] Specifically, before officially using the equipment to transport battery aluminum shells, the operator must clearly understand the specifications of the battery aluminum shells to be transported. If the specifications of the battery aluminum shells to be transported are small, they can directly enter the transport link. The battery aluminum shells are placed steadily on the placement plate 1 through an automated control system to ensure that the position of the battery aluminum shells on the placement plate 1 is accurate and stable, avoiding shaking or displacement during transportation. After placement is completed, start the stepper motor 10. As a power source, the stepper motor 10 starts to run and drives the screw rod 8 connected to it to rotate. The rotation of the screw rod 8 will generate a driving force to cause the slider 4 to slide. During the sliding process, the slider 4 will tightly drive the placement plate 1 to move toward the other end of the device. When the slider 4 drives the placement plate 1 to slide to the other end of the device, the stepper motor 10 will automatically stop running. At this time, the battery aluminum shell has completed this stage of transportation and reached the designated position.

[0032] In an optional implementation of the embodiment of the present invention, Figure 7 、 Figure 8 As shown, in an optional implementation of the embodiment of the present invention, as Figure 4 、 Figure 5 As shown, slide rods 12 are fixedly installed at both ends of the table 5, and the slide rods 12 are slidably connected to the circular holes on the boss below the slide rail frame 11. There are two slide rail frames 11, which are symmetrically installed. A crossbeam is also provided in the middle of the boss below each slide rail frame 11, and a plurality of short shafts are provided on the crossbeam. The slide rail frame 11 is also slidably connected to the slide groove below the side panel 2.

[0033] In an optional implementation of the embodiment of the present invention, Figure 7 、 Figure 8 As shown, a card slot 14 is fixedly installed in the middle position of the table 5, and a long rod 13 is slidably installed in the card slot 14. The long rod 13 is provided with multiple short shafts, and there are two rows. Each short shaft is rotatably connected to one end of a plurality of connecting rods 15, and the other end of each connecting rod 15 is rotatably connected to the short shaft on the sliding rod 12. The connecting rods 15 in each row of the two rows of connecting rods 15 are parallel to each other; one end of the long rod 13 is also fixedly connected to the piston rod of the hydraulic cylinder I 16, and the cylinder body of the hydraulic cylinder I 16 is fixedly installed on the extension plate on the table 5.

[0034] Specifically, the situation is different when the battery aluminum shells to be transported are larger in size. Since larger battery aluminum shells are relatively large in volume and size, placing them directly on the existing conveying area may not allow for stable placement or smooth transport. Therefore, the conveying area must be expanded first. At this point, hydraulic cylinder I 16 begins to operate. Through its internal hydraulic system, hydraulic cylinder I 16 generates powerful force, pushing the long rod 13 connected to it to slide. As the long rod 13 slides, it drives the hinged connecting rod 15 to move. The direction and force of the connecting rod 15's movement are further transmitted to the crossbeam 12, causing the crossbeam 12 to be squeezed to the sides. Under the compressive action of the crossbeam 12, the slide rail frame 11 connected to it begins to slide to the sides. The sliding of the slide rail frame 11 in turn drives the side panels 2 to expand to the sides, effectively expanding the area of ​​the entire conveying equipment. When the conveying area is expanded to accommodate the larger battery aluminum shells, the automatic control system steadily places the battery aluminum shells on the expanded placement plate 1 and side panels 2.

[0035] In an optional implementation of the embodiment of the present invention, Figure 9 、 Figure 10 As shown, the lower end of the T-shaped bracket 9 is fixedly mounted on the edge of the base plate 17, and two symmetrical telescopic sleeves 18 are fixedly welded on the base plate 17. A support frame 19 is slidably mounted in the slide groove of the telescopic sleeve 18. There are two support frames 19, and the upper end of each support frame 19 is in contact with the positions on both sides of the lower side of the placement plate 1 and is stuck by the protrusion under the placement plate 1. The extension plate on the side of the support frame 19 is also fixedly connected to the piston rod of the hydraulic cylinder II 20, and the cylinder body of the hydraulic cylinder II 20 is fixedly mounted on the telescopic sleeve 18.

[0036] Specifically, when the battery aluminum shell is transported to the other end of the equipment, that is, the terminal position, it is also necessary to lift and lower the battery aluminum shell according to the docking height of the terminal platform to ensure that the battery aluminum shell can be accurately and safely unloaded onto the terminal platform. At this time, the hydraulic cylinder II 20 starts to start. The hydraulic cylinder II 20 also generates power through the internal hydraulic system to push the support frame 19 connected to it to slide upward. In the process of sliding upward, the support frame 19 will drive the placement plate 1 to lift up together. As the placement plate 1 is lifted, the connection between the placement plate 1 and the slider 4 gradually disengages. At the same time, since the side plate 2 is connected to the slide frame 11, the side plate 2 will also gradually disengage from the slide frame 11 during the process of the placement plate 1 being lifted. When the placement plate 1 is lifted to the specified height, the battery aluminum shell is in a position that matches the height of the terminal platform. At this time, the unloading operation can be performed. After the unloading is completed, in order to restore the equipment to its initial state for the next transportation task, the placement plate 1 and the side plate 2 need to be lowered and reset. When the placement plate 1 is re-docked with the slider 4 and the side plate 2 is re-docked with the slide frame 11, the equipment returns to its initial state. In an optional implementation of the embodiment of the present invention, Figure 9 、 Figure 10 As shown, slide grooves are provided on both sides of the T-shaped bracket 9 , and the slide grooves are slidably connected to one end of the two slide rail frames 11 .

[0037] Working Principle: In the field of industrial automatic control system device manufacturing, the application of this invention is particularly important for key production links such as battery aluminum shell conveying. When the present invention is put into actual use scenarios, the first operating step is to determine the specific specifications of the battery aluminum shell to be conveyed. This is because different specifications of battery aluminum shells have different requirements for the adaptability and operation of the conveying device during the conveying process.

[0038] In the actual application of this invention, a specific operation process must be followed to complete the task of conveying the battery aluminum shell. The specific operation steps are as follows: First of all, before officially using the equipment to transport battery aluminum shells, the operator must clearly understand the specifications of the battery aluminum shells to be transported. If the specifications of the battery aluminum shells to be transported are small, they can directly enter the transportation link. The battery aluminum shells are placed steadily on the placement plate 1 through an automated control system to ensure that the position of the battery aluminum shells on the placement plate 1 is accurate and stable, avoiding shaking or displacement during transportation. After placement is completed, start the stepper motor 10. As a power source, the stepper motor 10 starts to run and drives the screw rod 8 connected to it to rotate. The rotation of the screw rod 8 will generate a driving force to cause the slider 4 to slide. During the sliding process, the slider 4 will tightly drive the placement plate 1 to move toward the other end of the device. When the slider 4 drives the placement plate 1 to slide to the other end of the device, the stepper motor 10 will automatically stop running. At this time, the battery aluminum shell has completed this stage of transportation and reached the specified position.

[0039] However, the situation is different when the battery aluminum shells to be transported are larger in size. Due to their relatively large size, placing them directly on the existing conveying area may not allow for stable placement or smooth transport. Therefore, the conveying area must be expanded. At this point, hydraulic cylinder I 16 begins to operate. Its internal hydraulic system generates powerful force, pushing the long rod 13 connected to it to slide. This sliding movement of the long rod 13 drives the hinged connecting rod 15 to move. The direction and force of the connecting rod 15 are further transmitted to the crossbeam 12, causing it to be squeezed to the sides. Under the compressive force of the crossbeam 12, the connected slide rails 11 begin to slide to the sides. The sliding movement of the slide rails 11 in turn drives the side panels 2 to expand, effectively expanding the conveying area of ​​the entire conveyor. When the conveying area is expanded to accommodate the larger battery aluminum shells, the automatic control system smoothly places the battery aluminum shells on the expanded placement plate 1 and side panels 2. Once placement is complete, the conveyor mechanism is activated again, ensuring smooth transportation of the battery aluminum shells.

[0040] When the battery aluminum shell is transported to the other end of the equipment, that is, the final destination, it needs to be raised and lowered according to the docking height of the terminal platform to ensure that the battery aluminum shell can be accurately and safely unloaded onto the terminal platform. At this time, hydraulic cylinder II 20 begins to activate. Hydraulic cylinder II 20 also generates power through its internal hydraulic system, pushing the connected support frame 19 upward. As the support frame 19 slides upward, it also drives the placement plate 1 upward. As the placement plate 1 is lifted, the connection between the placement plate 1 and the slider 4 is gradually disconnected. At the same time, since the side plate 2 is connected to the slide frame 11, the side plate 2 will gradually disconnect from the slide frame 11 during the process of the placement plate 1 being lifted. When the placement plate 1 is lifted to the specified height, the battery aluminum shell is in a position that matches the height of the terminal platform. At this time, the unloading operation can be performed. After the unloading is completed, in order to restore the equipment to its initial state for the next conveying task, the placement plate 1 and the side plate 2 need to be lowered and reset. When the placement plate 1 is re-docked with the slider 4 and the side plate 2 is re-docked with the slide frame 11, the equipment is restored to its initial state and can be prepared for the next battery aluminum shell conveying task.

[0041] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An automatic control feeding device for processing aluminum shells of new energy batteries, characterized in that: The placement plate (1) is provided with a plurality of slide grooves on both sides, and the distance between each slide groove is equal. There are two side plates (2), and the equally spaced plates on the inner side end of each side plate (2) correspond to the slide grooves on both sides of the placement plate (1), and are slidably connected with the slide grooves, and the side plates (2) are provided with a hollowing treatment; a limit card (3) is also fixedly installed in the middle of the lower side of the placement plate (1), and a wide slot is provided in the middle of the limit card (3), and symmetrical narrow slots are provided on both sides; a slider (4) is clamped in the wide slot.

2. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 1 is characterized in that: One end of the table top (5) is provided with a door-shaped extension frame, which is fixedly connected to one end of the square slide rail (6), and the other end of the square slide rail (6) is extended from the table top (5) for a distance and fixedly connected to the middle position of the T-shaped bracket (9). At the same time, the extension frame is also fixedly connected to one end of the circular slide rail (7), and the other end of the circular slide rail (7) is flush with the other end of the square slide rail (6). It is also fixedly connected to the middle position of the T-shaped bracket (9), but is positioned further outward than the square slide rail (6); the extension frame is also rotatably connected to one end of the screw rod (8), and the other end of the screw rod (8) is also extended from the table top (5) and rotatably installed in the circular hole in the middle of the T-shaped bracket (9). One end of the screw rod (8) is also connected to the motor shaft of the stepper motor (10), and the stepper motor (10) is fixedly installed at the outer end of the T-shaped bracket (9).

3. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 2 is characterized in that: The screw rod (8) is threadedly connected to the slider (4), and the circular slide rail (7) is slidably connected to the circular hole on the slider (4). The two sides of the slider (4) are on the inner side of the square slide rail (6) without contact.

4. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 3 is characterized in that: Slide rods (12) are fixedly installed at both ends of the table top (5), and the slide rods (12) are slidably connected to the circular holes on the boss below the slide rail frame (11). There are two slide rail frames (11) which are symmetrically installed. A crossbeam is also provided in the middle of the boss below each slide rail frame (11), and a plurality of short shafts are provided on the crossbeam. The slide rail frame (11) is also slidably connected to the slide groove below the side plate (2).

5. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 4 is characterized in that: A slot (14) is fixedly installed at the middle position of the table (5), and a long rod (13) is slidably installed in the slot (14). The long rod (13) is provided with multiple short shafts, and there are two rows of them. Each short shaft is rotatably connected to one end of one of the multiple connecting rods (15), and the other end of each connecting rod (15) is rotatably connected to the short shaft on the slide rod (12). The connecting rods (15) in each row of the two rows of connecting rods (15) are parallel to each other; one end of the long rod (13) is also fixedly connected to the piston rod of the hydraulic cylinder I (16), and the cylinder body of the hydraulic cylinder I (16) is fixedly installed on the extension plate on the table (5).

6. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 5 is characterized in that: The lower end of the T-shaped bracket (9) is fixedly mounted on the edge of the base plate (17). Two symmetrical telescopic sleeves (18) are fixedly welded on the base plate (17). A support frame (19) is slidably mounted in the slide groove of the telescopic sleeve (18). There are two support frames (19). The upper end of each support frame (19) contacts the positions on both sides of the lower side of the placement plate (1) and is stuck by the protrusion under the placement plate (1). The extension plate on the side of the support frame (19) is also fixedly connected to the piston rod of the hydraulic cylinder II (20). The cylinder body of the hydraulic cylinder II (20) is fixedly mounted on the telescopic sleeve (18).

7. The automatic control feeding device for processing aluminum shells of new energy batteries according to claim 6 is characterized in that: Slide grooves are provided on both sides of the T-shaped bracket (9), and the slide grooves are slidably connected to one end of the two slide rail frames (11).