Continuous forming die for soft connecting piece of new energy power battery

By designing an automated continuous forming mold for battery soft connectors and using a hydraulic cylinder and rack to drive the mold to achieve automatic loading and unloading, the problems of low efficiency and safety hazards in the existing technology are solved, and efficient and safe production of battery soft connectors is achieved.

CN223352715UActive Publication Date: 2025-09-19ANHUI GUOSHUNYUAN NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422769328.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-13
Publication Date
2025-09-19
Estimated Expiration
2034-11-13

AI Technical Summary

Technical Problem

The existing continuous molding molds for battery soft connectors rely on manual operation, resulting in low processing efficiency and safety hazards.

Method used

A continuous forming mold is designed, which includes a support platform, a hydraulic cylinder, a mold, a rack and loading and unloading components. The hydraulic cylinder drives the mold and the rack drives the power transmission component to realize automatic loading and unloading, avoiding manual operation.

Benefits of technology

The processing efficiency of battery soft connectors is improved, the safety hazards caused by manual operation are eliminated, and automated production is realized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a continuous forming die for a flexible connecting piece of a new energy power battery, which relates to the technical field of processing of the flexible connecting piece of the battery and comprises a support table, a feeding and discharging component and a power transmission component. When the flexible connecting piece is machined and formed, the controller controls the hydraulic cylinder to work, the hydraulic cylinder can drive the second die at the output end of the hydraulic cylinder to move downwards, the second die and the first die are matched with each other to form the flexible connecting piece, and when the hydraulic cylinder drives the second die to move downwards, the flexible connecting piece is formed. The second die can drive the power transmission part to work through the first racks fixedly connected to the two ends, so that power is provided for the feeding and discharging part through the power transmission part, and when the second die moves upwards, the feeding and discharging part can sequentially conduct feeding on the flexible connecting pieces on the second die firstly, and then feeding is conducted; in this way, the machining efficiency of the flexible connecting piece can be effectively improved, and meanwhile, manual operation is not used, so that potential safety hazards are avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of battery soft connecting piece processing, in particular to a continuous forming die for new energy power battery soft connecting pieces. Background Art

[0002] New energy power battery flexible connectors are highly conductive, flexible, and durable components used to connect power batteries internally or between external battery packs. Primarily made from highly conductive materials (such as copper, nickel, or copper-nickel alloys), they offer excellent flexibility and corrosion resistance. They ensure stable current transmission between battery modules or packs while accommodating minor deformations that may occur during charging and discharging, improving the overall safety and reliability of the battery system.

[0003] The existing continuous forming die for battery soft connectors uses a hydraulic cylinder to drive the upper stamping die down and cooperate with the lower stamping die to complete the stamping of the battery soft connector. After stamping once, the hydraulic cylinder stops working, and the worker takes out the battery soft connector in the lower stamping die and places a new battery soft connector to be stamped in the lower stamping die. However, the manual picking and placing method not only makes the forming processing efficiency of the soft connector low, but also manual operation will pose a safety hazard. Utility Model Content

[0004] The purpose of the present invention is to provide a continuous forming die for a flexible connector of a new energy power battery, so as to solve the problems raised in the above-mentioned background technology.

[0005] In order to solve the above technical problems, the technical solution adopted by the present invention is:

[0006] A continuous forming die for a new energy power battery soft connector sheet, comprising:

[0007] A support platform, a first mold is fixedly connected to the top of the support platform, a support seat is fixedly connected to the top of the support platform, a hydraulic cylinder is fixedly connected to the top of the support seat, an output end of the hydraulic cylinder is fixedly connected to the second mold, both ends of the second mold are respectively fixedly connected to the first rack, the first mold and the second mold are used in conjunction with each other, a loading box is provided on one side of the first mold, and a collecting box is provided on the side of the first mold away from the loading box, and the loading box and the collecting box are respectively fixedly connected to the support platform;

[0008] A loading and unloading component, the loading component is located on one side of the first mold and is used to control the loading and unloading of the flexible connecting piece;

[0009] A power transmission component is located at both ends of the first mold and is used to provide power for the loading and unloading components.

[0010] When it is necessary to process and form the soft connecting piece, the hydraulic cylinder is controlled by the controller to work, and the hydraulic cylinder will drive the second mold at its output end to move downward, so that the second mold and the first mold cooperate with each other to form the soft connecting piece. Among them, when the hydraulic cylinder drives the second mold to move downward, the second mold will drive the power transmission component to work through the first rack fixedly connected at both ends, thereby providing power to the loading and unloading components through the power transmission component, so that when the second mold moves upward, the loading and unloading components will first unload the soft connecting piece on the second mold in turn, and then load it. In this way, the efficiency of the soft connecting piece processing can be effectively improved, and at the same time, the existence of safety hazards can be avoided without the use of manual operation.

[0011] A further improvement of the technical solution of the present utility model is that: the loading and unloading parts include a slider, two sides of the slider are fixedly connected with a fixed rod respectively, the slider is provided with a slide groove, and a push plate is rotatably connected in the slide groove, the push plate is arranged in an L shape, the push plate is rotatably connected to the slider through the slide groove, a torsion spring is provided between the push plate and the slider, the two ends of the torsion spring are respectively fixedly connected to the push plate and the slider, the slider is fixedly connected with a limiting block, one side of the loading box is fixedly connected with a slide plate, the bottom of the loading box is respectively provided with a push groove, a discharge port and a limit groove, the limit groove extends to the slide plate, and the push plate is used in conjunction with the push groove and the limit groove respectively.

[0012] The above-mentioned technical solution is adopted, in which when the second mold punches the soft connecting piece, the power transmission component will provide power to the fixed rod. When the second mold is in an upward state, the fixed rod will drive the slider to move, and the slider will drive the push plate to move. The push plate will cooperate with the push groove and the limit groove to drive the soft connecting piece at the bottom of the loading box to move. Under the action of the push plate, the soft connecting piece will move to the second mold through the discharge port and the slide plate. When the second mold moves downward, the fixed rod moves in the opposite direction, driving the slider to move in the opposite direction. When the push plate moves to the bottom of the loading box, it is blocked by the soft connecting piece, the push plate will rotate, and the torsion spring will deform. At this time, the end of the push plate away from the slider will contact the soft connecting piece until it moves to the push groove. The push plate will reset under the action of the torsion spring and contact the limit block, thereby preparing to load the soft connecting piece again.

[0013] A further improvement of the technical solution of the present utility model is that the loading and unloading parts further include a push rod, which is located below the slider and fixedly connected to the slider, and a slope is provided on the push rod, which cooperates with the first mold.

[0014] The above-mentioned technical solution is adopted. In this solution, a push rod is fixedly connected to the bottom of the slider, so that when loading, the soft connecting plate can be pushed out and dropped into the collection box before being transported to the top of the first mold. At the same time, an inclined surface is provided on the push rod, which is parallel to the first mold and can effectively cooperate with the first mold to push the soft connecting plate out, so that the soft connecting plate can be quickly loaded and unloaded, thereby improving the processing efficiency of the soft connecting plate.

[0015] A further improvement of the technical solution of the present utility model is that: the power component includes a shell, the shell is symmetrically arranged and located at both ends of the first mold, a shaft is rotatably connected in the shell, a first gear and a second gear are fixedly connected to the shaft respectively, the first rack is slidably connected to the shell and the support platform respectively, the first rack is meshed with the first gear, a second rack is slidably connected to the shell, the second rack is meshed with the second gear, one end of the second rack is fixedly connected to the fixed rod, and the diameter of the first gear is smaller than the diameter of the second gear.

[0016] The above-mentioned technical solution is adopted. In this solution, when the second mold moves downward, it will drive the first rack fixedly connected to it to move. The movement of the first rack will drive the first gear meshing with it to rotate. The rotation of the first gear will drive the second gear to rotate through the shaft fixedly connected to it, thereby driving the second rack meshing with it to move. The movement of the second rack will drive the fixed rod fixedly connected to it to move. Because the stroke of the mold is short, the moving stroke of the second rack can be increased by setting the diameter of the first gear to be smaller than the diameter of the second gear, so that the loading and unloading parts can effectively perform automatic loading and unloading.

[0017] A further improvement of the technical solution of the present invention is that: one end of the second rack away from the fixed rod is fixedly connected to a limiting tooth.

[0018] The above-mentioned technical solution is adopted. In this solution, when the second rack and the second gear are engaged with each other, motion overload will cause the second rack to be disengaged, which will not only affect the stability of power transmission, but also cause the device to malfunction. By setting a limiting tooth fixedly connected to the end of the second rack away from the fixed rod, the second rack and the second gear can be prevented from being disengaged when they are engaged with each other.

[0019] A further improvement of the technical solution of the present invention is that a rounded corner is provided at one end of the push plate away from the slider.

[0020] By adopting the above technical solution, a rounded corner is provided at one end of the push plate away from the slider, so that the contact area with the flexible connection plate can be reduced during loading, thereby preventing the flexible connection plate from being worn.

[0021] A further improvement of the technical solution of the present utility model is that both ends of the slide plate are fixedly connected to limit bars.

[0022] By adopting the above technical solution, the soft connecting piece can be limited by fixing limiting strips at both ends of the slide to prevent the soft connecting piece from being displaced during the process of moving from the loading box to the top of the first mold.

[0023] Due to the adoption of the above technical solution, the present invention has achieved the following technical advancements compared to the prior art:

[0024] 1. The utility model provides a continuous forming die for flexible connectors of new energy power batteries. When the flexible connector needs to be processed and formed, the hydraulic cylinder is controlled by a controller to work, and the hydraulic cylinder drives the second die at its output end to move downward, so that the second die and the first die cooperate with each other to form the flexible connector. When the hydraulic cylinder drives the second die to move downward, the second die drives the power transmission component to work through the first rack fixedly connected at both ends, thereby providing power to the loading and unloading components through the power transmission component, so that when the second die moves upward, the loading and unloading components will first unload the flexible connector on the second die in turn, and then load it. In this way, the efficiency of the flexible connector processing can be effectively improved, and at the same time, no manual operation is required, which avoids the existence of safety hazards.

[0025] When the second die is in a state of being lifted up, the fixed rod drives the slider to move, and the slider drives the push plate to move. The push plate cooperates with the push groove and the limit groove to drive the soft connecting piece at the bottom of the feeding box to move. The soft connecting piece will move to the second die through the discharge port and the slide plate under the action of the push plate. When the second die moves downward, the fixed rod moves in the opposite direction, driving the slider to move in the opposite direction. When the push plate moves to the bottom of the feeding box, it is blocked by the soft connecting piece, the push plate will rotate, and the torsion spring will deform. At this time, the end of the push plate away from the slider will contact the soft connecting piece until it moves to the push groove. The push plate will reset under the action of the torsion spring and contact the limit block, thereby preparing to load the soft connecting piece again.

[0026] 3. The utility model provides a continuous forming die for flexible connecting plates of new energy power batteries. By fixing a push rod at the bottom of the slider, the formed flexible connecting plate can be pushed out and dropped into a collection box before being transported to the top of the first mold during loading. At the same time, an inclined surface is provided on the push rod, which is parallel to the first mold and can effectively cooperate with the first mold to push the flexible connecting plate out, so that the flexible connecting plate can be quickly loaded and unloaded, thereby improving the processing efficiency of the flexible connecting plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] The present invention will be further described below with reference to the accompanying drawings.

[0028] Figure 1 It is a structural diagram of the utility model;

[0029] Figure 2 It is a schematic diagram of the cross-sectional structure of the utility model;

[0030] Figure 3 This is a schematic diagram of the structure of the loading box of the present utility model;

[0031] Figure 4 This is a partial structural diagram of the loading and unloading components of the utility model;

[0032] Figure 5 This is an enlarged structural diagram of point A of the present utility model;

[0033] In the figure: 1. Support platform; 2. First mold; 3. Support seat; 4. Hydraulic cylinder; 5. Second mold; 6. First rack; 7. Feeding box; 8. Collecting box; 9. Slider; 10. Fixed rod; 11. Slide; 12. Push plate; 13. Limit block; 14. Slide plate; 15. Push groove; 16. Limit groove; 17. Push rod; 18. Inclined surface; 19. Housing; 20. Shaft; 21. First gear; 22. Second gear; 23. Second rack; 24. Limiting tooth; 25. Fillet; 26. Limiting strip. DETAILED DESCRIPTION

[0034] The present invention is further described in detail below with reference to the embodiments:

[0035] Example 1

[0036] like Figure 1 As shown, the utility model provides a continuous molding die for a new energy power battery soft connector sheet, comprising:

[0037] A support platform 1, a first mold 2 is fixedly connected to the top of the support platform 1, a support seat 3 is fixedly connected to the top of the support platform 1, a hydraulic cylinder 4 is fixedly connected to the top of the support seat 3, the output end of the hydraulic cylinder 4 is fixedly connected to the second mold 5, both ends of the second mold 5 are respectively fixedly connected to the first rack 6, the first mold 2 and the second mold 5 are used in conjunction with each other, a loading box 7 is provided on one side of the first mold 2, and a collecting box 8 is provided on the side of the first mold 2 away from the loading box 7, and the loading box 7 and the collecting box 8 are respectively fixedly connected to the support platform 1;

[0038] Loading and unloading components, the loading components are located on one side of the first mold 2, and are used to control the loading and unloading of the flexible connecting piece;

[0039] Power transmission components, the power components are located at both ends of the first mold 2, and the power components are used to provide power for the loading and unloading components.

[0040] In this embodiment, when it is necessary to process and form a soft connecting piece, the hydraulic cylinder 4 is controlled by the controller to work, and the hydraulic cylinder 4 will drive the second mold 5 at its output end to move downward, so that the second mold 5 and the first mold 2 cooperate with each other to form the soft connecting piece. Among them, when the hydraulic cylinder 4 drives the second mold 5 to move downward, the second mold 5 will drive the power transmission component to work through the first rack 6 fixedly connected at both ends, thereby providing power to the loading and unloading components through the power transmission component, so that when the second mold 5 moves upward, the loading and unloading components will first unload the soft connecting piece on the second mold 5 in turn, and then load it. In this way, the efficiency of the soft connecting piece processing can be effectively improved, and at the same time, no manual operation is required, which avoids the existence of safety hazards.

[0041] like Figure 4 and Figure 5 As shown, in this embodiment, preferably, the loading and unloading parts include a slider 9, and the two sides of the slider 9 are respectively fixedly connected with a fixed rod 10, and a slide groove 11 is provided on the slider 9, and a push plate 12 is rotatably connected in the slide groove 11, and the push plate 12 is arranged in an L shape, and the push plate 12 is rotatably connected to the slider 9 through the slide groove 11, and a torsion spring is provided between the push plate 12 and the slider 9, and the two ends of the torsion spring are respectively fixedly connected to the push plate 12 and the slider 9, and a limiting block 13 is fixedly connected to the slider 9, and a slide plate 14 is fixedly connected to one side of the loading box 7, and a push groove 15, a discharge port and a limiting groove 16 are respectively provided at the bottom of the loading box 7, and the limiting groove 16 extends to the slide plate 14, and the push plate 12 is used in conjunction with the push groove 15 and the limiting groove 16 respectively.

[0042] When the second mold 5 punches the soft connecting piece, the power transmission component will provide power to the fixed rod 10. When the second mold 5 is in the rising state, the fixed rod 10 will drive the slider 9 to move, and the slider 9 will drive the push plate 12 to move. The push plate 12 will cooperate with the push groove 15 and the limit groove 16 to drive the soft connecting piece at the bottom of the loading box 7 to move. Under the action of the push plate 12, the soft connecting piece will move to the second mold 5 through the discharge port and the slide plate 14. When the second mold 5 moves downward, the fixed rod 10 moves in the opposite direction, driving the slider 9 to move in the opposite direction. When the push plate 12 moves to the bottom of the loading box 7, it is blocked by the soft connecting piece and the push plate 12 will rotate. The torsion spring is deformed. At this time, the end of the push plate 12 away from the slider 9 contacts the soft connecting piece until it moves to the push groove 15. The push plate 12 will be reset under the action of the torsion spring and contact the limit block 13, thereby preparing to load the soft connecting piece again.

[0043] like Figure 1-5 As shown, preferably, the loading and unloading components further include a push rod 17 , which is located below the slider 9 and fixedly connected to the slider 9 . The push rod 17 is provided with an inclined surface 18 , which cooperates with the first mold 2 .

[0044] By fixing a push rod 17 at the bottom of the slider 9, the formed soft connecting plate can be pushed out and dropped into the collection box 8 before being transported to the top of the first mold 2 during loading. At the same time, a slope 18 is provided on the push rod 17, which is parallel to the first mold 2 and can effectively cooperate with the first mold 2 to push the soft connecting plate out, so that the soft connecting plate can be quickly loaded and unloaded, thereby improving the processing efficiency of the soft connecting plate.

[0045] like Figure 2 and Figure 4 As shown, preferably, the power component includes a shell 19, which is symmetrically arranged and located at both ends of the first mold 2. A shaft 20 is rotatably connected in the shell 19, and a first gear 21 and a second gear 22 are fixedly connected to the shaft 20 respectively. The first rack 6 is slidingly connected to the shell 19 and the support platform 1 respectively, and the first rack 6 is engaged with the first gear 21. A second rack 23 is slidingly connected to the shell 19, and the second rack 23 is engaged with the second gear 22. One end of the second rack 23 is fixedly connected to the fixed rod 10, and the diameter of the first gear 21 is smaller than the diameter of the second gear 22.

[0046] When the second mold 5 moves downward, it will drive the first rack 6 fixedly connected to it to move. The movement of the first rack 6 will drive the first gear 21 meshing with it to rotate. The rotation of the first gear 21 will drive the second gear 22 to rotate through the shaft 20 fixedly connected to it, thereby driving the second rack 23 meshing with it to move. The movement of the second rack 23 will drive the fixed rod 10 fixedly connected to it to move. Because the stroke of the mold is short, the movement stroke of the second rack 23 can be increased by setting the diameter of the first gear 21 to be smaller than the diameter of the second gear 22, so that the loading and unloading components can effectively perform automatic loading and unloading.

[0047] like Figure 4 As shown, preferably, one end of the second rack 23 away from the fixing rod 10 is fixedly connected to the limiting tooth 24 .

[0048] When the second rack 23 and the second gear 22 are engaged with each other, movement overload will cause the second rack 23 to be disengaged, which will not only affect the stability of power transmission, but also cause the device to malfunction. By providing a limiting tooth 24 fixedly connected to the end of the second rack 23 away from the fixed rod 10, the second rack 23 and the second gear 22 can be prevented from being disengaged when they are engaged with each other.

[0049] like Figure 5 As shown, preferably, the end of the push plate 12 away from the slider 9 is provided with a rounded corner 25 .

[0050] By providing a rounded corner 25 at the end of the push plate 12 away from the slider 9, the contact area with the flexible connection plate can be reduced during loading, thereby preventing the flexible connection plate from being worn.

[0051] like Figure 3 As shown, preferably, both ends of the slide plate 14 are fixedly connected to limit bars 26 .

[0052] By fixing the limiting bars 26 at both ends of the slide plate 14 , the flexible connecting piece can be limited to prevent the flexible connecting piece from being displaced during the process of moving from the loading box 7 to above the first mold 2 .

[0053] The following is a detailed explanation of the working principle of the continuous forming die for the new energy power battery soft connector.

[0054] like Figure 1 - Figure 5As shown, when it is necessary to process and form the soft connecting piece, the hydraulic cylinder 4 is controlled by the controller to work, and the hydraulic cylinder 4 will drive the second mold 5 at its output end to move downward, so that the second mold 5 and the first mold 2 cooperate with each other to form the soft connecting piece. Among them, when the hydraulic cylinder 4 drives the second mold 5 to move downward, the second mold 5 will drive the power transmission component to work through the first rack 6 fixedly connected at both ends, thereby providing power to the loading and unloading components through the power transmission component, so that when the second mold 5 moves upward, the loading and unloading components will first unload the soft connecting piece on the second mold 5 in turn, and then load it. In this way, the efficiency of the soft connecting piece processing can be effectively improved, and at the same time, the existence of safety hazards can be avoided without the use of manual operation. When the second mold 5 punches the soft connecting piece, the power transmission component will provide power to the fixed rod 10. When the second mold 5 is in the rising state, the fixed rod 10 will drive the slider 9 to move, and the slider 9 will drive the push plate 12 to move. The push plate 12 will cooperate with the push groove 15 and the limit groove 16 to drive the soft connecting piece at the bottom of the loading box 7 to move. Under the action of the push plate 12, the soft connecting piece will move to the second mold 5 through the discharge port and the slide plate 14. When the second mold 5 moves downward, the fixed rod 10 moves in the opposite direction, driving the slider 9 to move in the opposite direction. When the push plate 12 moves to the bottom of the loading box 7, it is blocked by the soft connecting piece and the push plate 12 will rotate. The torsion spring is deformed. At this time, the end of the push plate 12 away from the slider 9 contacts the soft connecting piece until it moves to the push groove 15. The push plate 12 will be reset under the action of the torsion spring and contact the limit block 13, thereby preparing to load the soft connecting piece again. By fixing a push rod 17 to the bottom of the slider 9, the flexible connecting plate can be pushed out and dropped into the collection box 8 before being transported to the top of the first mold 2 during loading. At the same time, the push rod 17 is provided with an inclined surface 18 parallel to the first mold 2, which can effectively cooperate with the first mold 2 to push the flexible connecting plate out, thereby enabling the flexible connecting plate to be quickly loaded and unloaded, thereby improving the processing efficiency of the flexible connecting plate. When the second mold 5 moves downward, it will drive the first rack 6 fixedly connected thereto to move. The movement of the first rack 6 will drive the first gear 21 meshing with it to rotate. The rotation of the first gear 21 will drive the second gear 22 to rotate through the shaft 20 fixedly connected thereto, thereby driving the second rack 23 meshing with it to move. The movement of the second rack 23 will drive the fixed rod 10 fixed thereto to move. Because the stroke of the mold is short, by setting the diameter of the first gear 21 to be smaller than the diameter of the second gear 22, the movement stroke of the second rack 23 can be increased, thereby enabling the loading and unloading components to effectively load and unload automatically.When the second rack 23 and the second gear 22 are meshed with each other, motion overload will cause the second rack 23 to become dislocated, which will not only affect the stability of power transmission but also cause the device to malfunction. By fixedly connecting the limiting teeth 24 at the end of the second rack 23 away from the fixed rod 10, the second rack 23 and the second gear 22 can be prevented from becoming dislocated when meshing with each other. By providing a rounded corner 25 at the end of the push plate 12 away from the slider 9, the contact area with the flexible connecting plate can be reduced during loading, preventing the flexible connecting plate from being worn. By fixedly connecting the limiting bars 26 at both ends of the slide 14, the flexible connecting plate can be limited to prevent the flexible connecting plate from being displaced during the process of moving from the loading box 7 to the top of the first mold 2.

[0055] The above generally describes the present invention in detail. However, it is obvious to those skilled in the art that modifications or improvements may be made to the present invention. Therefore, modifications or improvements that do not depart from the spirit of the present invention are within the scope of protection of the present invention.

Claims

1. A continuous forming die for soft connectors of new energy power batteries. It is characterized by including: A support platform (1), wherein a first mold (2) is fixedly connected to the top of the support platform (1), a support seat (3) is fixedly connected to the top of the support platform (1), a hydraulic cylinder (4) is fixedly connected to the top of the support seat (3), an output end of the hydraulic cylinder (4) is fixedly connected to a second mold (5), both ends of the second mold (5) are respectively fixedly connected to a first rack (6), the first mold (2) and the second mold (5) are used in conjunction with each other, a loading box (7) is provided on one side of the first mold (2), a collecting box (8) is provided on the side of the first mold (2) away from the loading box (7), and the loading box (7) and the collecting box (8) are respectively fixedly connected to the support platform (1); A loading and unloading component, the loading and unloading component is located on one side of the first mold (2), and the loading and unloading component is used to control the loading and unloading of the flexible connecting piece; A power transmission component is located at both ends of the first mold (2), and is used to provide power for the loading and unloading components.

2. A continuous forming die for flexible connectors of new energy power batteries according to claim 1, characterized in that: The loading and unloading parts include a slider (9), both sides of the slider (9) are fixedly connected with a fixed rod (10), the slider (9) is provided with a slide groove (11), a push plate (12) is rotatably connected in the slide groove (11), the push plate (12) is arranged in an L shape, the push plate (12) is rotatably connected to the slider (9) through the slide groove (11), a torsion spring is provided between the push plate (12) and the slider (9), the two ends of the torsion spring are respectively fixedly connected to the push plate (12) and the slider (9), a limiting block (13) is fixedly connected to the slider (9), one side of the loading box (7) is fixedly connected with a slide plate (14), the bottom of the loading box (7) is respectively provided with a push groove (15), a discharge port and a limiting groove (16), the limiting groove (16) extends to the slide plate (14), and the push plate (12) is used in conjunction with the push groove (15) and the limiting groove (16).

3. A continuous forming die for flexible connector sheets of new energy power batteries according to claim 2, characterized in that: The loading and unloading parts also include a push rod (17), which is located below the slider (9) and fixedly connected to the slider (9). The push rod (17) is provided with an inclined surface (18), and the inclined surface (18) cooperates with the first mold (2).

4. The continuous forming die for flexible connectors of new energy power batteries according to claim 3, characterized in that: The power transmission component includes a shell (19), the shell (19) is symmetrically arranged and located at both ends of the first mold (2), a shaft (20) is rotatably connected in the shell (19), a first gear (21) and a second gear (22) are fixedly connected to the shaft (20), the first rack (6) is slidably connected to the shell (19) and the support platform (1), the first rack (6) is meshed with the first gear (21), a second rack (23) is slidably connected to the shell (19), the second rack (23) is meshed with the second gear (22), one end of the second rack (23) is fixedly connected to the fixed rod (10), and the diameter of the first gear (21) is smaller than the diameter of the second gear (22).

5. The continuous forming die for flexible connector sheets of new energy power batteries according to claim 4, characterized in that: One end of the second rack (23) away from the fixing rod (10) is fixedly connected to a limiting tooth (24).

6. The continuous forming die for flexible connector sheets of new energy power batteries according to claim 5, characterized in that: The end of the push plate (12) away from the slider (9) is provided with a rounded corner (25).

7. The continuous forming die for flexible connectors of new energy power batteries according to claim 6, characterized in that: Both ends of the slide plate (14) are fixedly connected to limit bars (26).