Shaping tooling and battery production system

CN224637214UActive Publication Date: 2026-08-14SUNWODA ELECTRONICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-31
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0004]有鉴于此,本实用新型提供了一种整形工装及电池生产系统,以解决现有头部胶整形设备的加工稳定性差的问题

Benefits of technology

[0006]有益效果:通过压力检测件能够检测电芯整形时整形结构处的压力,第一整形组件和第二整形组件相向运动对电芯进行整形,第一整形组件通过联动组件即可与第二整形组件产生联动,只需要一个第一驱动组件即可带动两个整形组件运动,整形工作时,当压力检测件测得的整形压力到达预设压力值时,则代表两侧的整形结构抵压到位,此时压力检测件发出信号,使得第一驱动组件便无需继续驱动整形结构,当第一驱动组件停止驱动时,两个整形组件即可同步停止运动,可有效防止整形组件过度抵压电芯,有效解决了现有头部胶整形设备的加工稳定性差的问题。

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Abstract

This utility model relates to the field of battery technology and discloses a shaping fixture and a battery production system. The shaping fixture includes a shaping base, a first shaping component, a second shaping component, a first driving component, and a linkage component. Shaping structures are respectively provided on the opposing walls of the first and second shaping components, and pressure detection elements are provided at the shaping structures. The linkage component is connected to the first and second shaping components respectively. The first driving component is fixedly installed on the shaping base. This utility model can detect the pressure at the shaping structure during cell shaping through the pressure detection element. The first shaping component can be linked with the second shaping component through the linkage component. During the shaping operation, when the shaping pressure measured by the pressure detection element reaches the preset pressure value, the pressure detection element sends a signal, so that the first driving component does not need to continue driving the shaping structure, and the two shaping components can stop moving synchronously, which can effectively prevent the shaping components from excessively pressing the cell.
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Description

Technical Field

[0001] This utility model relates to the field of battery technology, specifically to shaping tooling and battery production systems. Background Technology

[0002] In the production of pouch batteries, after the cell coating process is completed, the cell head needs to be finely adjusted. By precisely controlling the shape and size of the cell head, the overall performance and safety of the battery pack can be improved. With the continuous development of automated production technology, the cell head shaping process is now widely carried out using automated shaping equipment.

[0003] Currently, most existing head-shaped adhesive forming equipment includes opposing hot-pressing units, each equipped with a corresponding drive structure. These drive structures can independently control the movement of the hot-pressing units, completing the forming process by having the two units reciprocate along a preset trajectory. To ensure consistent forming pressure applied to each cell by the hot-pressing units, one of the hot-pressing units is equipped with a pressure detection structure. When the forming pressure measured by the pressure detection structure reaches the target value, the drive structure of the hot-pressing unit stops driving. However, since each hot-pressing unit is driven by an independent drive structure, the two drive structures are prone to asynchrony when they stop driving, which can easily lead to excessive pressure from the hot-pressing units on the cell head. Therefore, existing head-shaped adhesive forming equipment suffers from poor processing stability. Utility Model Content

[0004] In view of this, the present invention provides a shaping fixture and battery production system to solve the problem of poor processing stability of existing head glue shaping equipment.

[0005] In a first aspect, this utility model provides a shaping fixture having a vertical first direction and a second direction. The shaping fixture includes: a shaping base, a first shaping component, a second shaping component, a first driving component, and a linkage component. The shaping base has a working space. The first shaping component and the second shaping component are movably disposed in the working space along the first direction. Shaping structures are respectively provided on the opposing walls of the two components. At least one shaping structure is provided with a pressure detection element, which is used to detect the shaping pressure. The pressure detection element is controlled and connected to the first driving component. The linkage component is disposed in the working space and connected to the shaping base. The linkage component is connected to the first shaping component and the second shaping component respectively. Along the first direction, the first shaping component moves towards or away from the second shaping component through the linkage component. The first driving component is fixedly disposed on the shaping base. The first driving component has a first movable seat that can move along the first direction. The first movable seat is connected to the first shaping component or the second shaping component.

[0006] Beneficial effects: The pressure detection device can detect the pressure at the shaping structure during cell shaping. The first and second shaping components move towards each other to shape the cell. The first shaping component can be linked with the second shaping component through a linkage component. Only one first drive component is needed to drive the movement of the two shaping components. During the shaping process, when the shaping pressure measured by the pressure detection device reaches the preset pressure value, it means that the shaping structures on both sides are pressed in place. At this time, the pressure detection device sends a signal so that the first drive component does not need to continue driving the shaping structure. When the first drive component stops driving, the two shaping components can stop moving synchronously. This can effectively prevent the shaping components from excessively pressing the cell and effectively solve the problem of poor processing stability of existing head glue shaping equipment.

[0007] In one optional embodiment, the linkage assembly includes a linkage seat, a first linkage rod, and a second linkage rod; the linkage seat is rotatably disposed on the shaping seat, and the linkage seat has a first connection position and a second connection position symmetrically arranged along its own rotation axis; one end of the first linkage rod is hinged to the first connection position and the other end is hinged to the first shaping assembly; one end of the second linkage rod is hinged to the second connection position and the other end is hinged to the second shaping assembly.

[0008] Beneficial effects: The linkage component has a simple and reliable structure, and the linkage can be completed through linkage transmission. The linkage component has fewer parts and occupies less space, making it easy to process and manufacture.

[0009] In one optional embodiment, the shaping fixture further includes a guide component, which is fixedly disposed in the workspace and fixedly connected to the shaping seat. The guide component extends along a first direction and guides and cooperates with the first shaping component and the second shaping component respectively.

[0010] Beneficial effects: The guide component can effectively improve the stability and reliability of the first and second shaping components during movement, and can further improve the overall performance and safety of the shaped product.

[0011] In one optional embodiment, the guide assembly includes a plurality of spaced-apart guide rods that extend along a first direction and are connected at both ends to a shaping seat. The first shaping assembly has a first guide hole for the guide rods to pass through, and the second shaping assembly has a second guide hole for the guide rods to pass through.

[0012] Beneficial effects: This type of guide component has a simple and reliable structure and occupies less space. The guide rod can not only play a guiding role, but also support the first and second shaping components. In addition, the overall strength and stability of the shaping seat are also higher after the guide rod is set.

[0013] In one optional embodiment, the first shaping component includes a first shaping plate, a pressure detection element disposed on the first shaping plate, and a linkage component connected to the first shaping plate;

[0014] The second shaping component includes a connecting plate, a second shaping plate, and an elastic element. The connecting plate is located on the side of the second shaping plate away from the first shaping plate. The connecting plate is connected to the second shaping plate through the elastic element. The linkage component is connected to the second shaping plate.

[0015] Beneficial effects: The elastic element can both press and buffer. Since the second shaping plate is connected to the connecting plate through the elastic element, when the shaping structure on the second shaping plate comes into contact with the battery cell, the force applied by the second shaping plate to the battery cell is small. This force can gradually increase as the connecting plate moves, avoiding direct rigid collision that could damage the battery cell.

[0016] In one alternative embodiment, the shaping seat includes a base and a frame, the frame having a working space, the frame being detachably connected to the base, a linkage component and a guide component being connected to the frame, and a first drive component being connected to the base.

[0017] Beneficial effects: With this type of shaping base, the components in the frame can be pre-assembled, and when maintenance is required, multiple components can be removed at the same time by disassembling the frame, which can improve the convenience of tooling disassembly and maintenance.

[0018] In one alternative embodiment, the first drive assembly includes a drive motor and a connecting seat. The drive motor has a first movable seat, and the connecting seat includes a first connecting segment and a second connecting segment. The first connecting segment extends along a first direction, and the second connecting segment extends along a second direction. The second connecting segment is connected to the connecting seat through the first connecting segment, and the wall surface of the first connecting segment along the first direction forms a connecting surface for connecting with the first shaping assembly.

[0019] Beneficial effects: The drive motor can adjust its drive distance according to the pressure signal at the pressure detection device. The structure is simple and effective. In addition, the connection seat of this type can more reliably support the first shaping component, making the movement of the first shaping component driven by the drive motor more stable.

[0020] In one alternative embodiment, a second driving component is further included, the second driving component having a second movable seat movable along a first direction, the shaping seat being connected to the second movable seat, and the second driving component being used to drive the shaping seat to move along the first direction.

[0021] Beneficial effects: The second drive component has a simple and reliable structure. The position of the shaping seat in the first direction can be adjusted through the second drive component, making the shaping position more flexible.

[0022] In one alternative embodiment, a third drive component is further included, the third drive component having a third movable seat movable in a second direction, the second drive component being connected to the third movable seat, and the third drive component being used to drive the second drive component to move in the second direction.

[0023] Beneficial effects: The third drive component has a simple and reliable structure. The position of the shaping seat in the second direction can be adjusted through the third drive component, making the shaping position more flexible.

[0024] Secondly, this utility model also provides a battery production system, which includes: a transfer device and the above-mentioned shaping fixture; the transfer device has a placement position for placing battery cells, and the transfer device is used to transfer battery cells between the shaping structures of the shaping fixture. Attached Figure Description

[0025] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0026] Figure 1 This is a three-dimensional schematic diagram of a shaping fixture from a first-person perspective according to an embodiment of the present utility model;

[0027] Figure 2 for Figure 1 A three-dimensional schematic diagram of the shaping fixture from a second perspective;

[0028] Figure 3 for Figure 1 A three-dimensional schematic diagram of the shaping fixture after assembly;

[0029] Figure 4 for Figure 3 An exploded view of the shaping base and related components shown;

[0030] Figure 5 for Figure 1 The exploded view of the shaping fixture's shaping base, second drive assembly, and third drive assembly is shown.

[0031] Explanation of reference numerals in the attached figures:

[0032] 1. Shaping base; 101. Base body; 102. Frame; 103. Mounting plate;

[0033] 2. First shaping component; 201. Pressure detection component; 202. First guide hole; 203. First shaping plate;

[0034] 3. Second shaping component; 301. Second guide hole; 302. Connecting plate; 303. Second shaping plate; 304. Elastic element;

[0035] 4. First drive assembly; 401. First movable seat; 402. Drive motor; 403. Connecting seat; 4031. First connecting section; 4032. Second connecting section;

[0036] 5. Linkage assembly; 501. Linkage seat; 502. First linkage rod; 503. Second linkage rod; 504. First connector; 505. Second connector;

[0037] 6. Guide assembly; 601. Guide rod;

[0038] 7. Second drive assembly; 701. Second movable seat;

[0039] 8. Third drive assembly; 802. Third movable base;

[0040] 9. Mounting components; 901. Support plate; 902. Support base; 903. Mounting base;

[0041] X, the first direction; Y, the second direction. Detailed Implementation

[0042] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0043] The following is combined with Figures 1 to 5 The following describes embodiments of the present invention.

[0044] According to an embodiment of the present invention, a shaping fixture is provided, having a vertical first direction X and a second direction Y. The shaping fixture includes: a shaping base 1, a first shaping component 2, a second shaping component 3, a first driving component 4, and a linkage component 5.

[0045] The shaping base 1 has a working space; the first shaping component 2 and the second shaping component 3 are movably disposed in the working space along the first direction X, and shaping structures are respectively provided on the opposite walls of the two components. At least one shaping structure is provided with a pressure detection element 201, which is used to detect the shaping pressure. The pressure detection element 201 is controlled and connected to the first drive component 4; the linkage component 5 is disposed in the working space and connected to the shaping base 1. The linkage component 5 is connected to the first shaping component 2 and the second shaping component 3 respectively. Along the first direction X, the first shaping component 2 moves towards or away from the second shaping component 3 through the linkage component 5; the first drive component 4 is fixedly disposed in the shaping base 1. The first drive component 4 has a first movable seat 401 that can move along the first direction X. The first movable seat 401 is connected to the first shaping component 2 or the second shaping component 3.

[0046] Using the shaping fixture of this embodiment, the pressure at the shaping structure can be detected by the pressure detection component 201 during the shaping of the battery cell. The first shaping component 2 and the second shaping component 3 move towards each other to shape the battery cell. The first shaping component 2 can be linked with the second shaping component 3 through the linkage component 5. Only one first driving component 4 is needed to drive the movement of the two shaping components. During the shaping operation, when the shaping pressure measured by the pressure detection component 201 reaches the preset pressure value, it means that the shaping structures on both sides are pressed into place. At this time, the pressure detection component 201 sends a signal so that the first driving component 4 does not need to continue driving the shaping structure. When the first driving component 4 stops driving, the two shaping components can stop moving synchronously, which can effectively prevent the shaping components from excessively pressing the battery cell and effectively solve the problem of poor processing stability of existing head glue shaping equipment.

[0047] In related technologies, when wear occurs at the contact point between the hot pressing unit and the battery cell, reliably shaping cannot be performed. Therefore, operators need to frequently check the wear condition of the hot pressing unit, resulting in low production efficiency in the shaping process.

[0048] Using this type of forming fixture, even if the forming structure wears down, each cell forming process can still be efficient and reliable. It can effectively reduce the number of manual intervention steps in the long-term forming process, making the forming fixture more adaptable and flexible.

[0049] In this embodiment, the shaping fixture also has a third direction Z that is perpendicular to the first direction X and the second direction Y.

[0050] The first direction refers to Figure 1 The direction of the "X" pointed to by the middle arrow, the second direction refers to Figure 1 The direction of the "Y" indicated by the middle arrow, the third direction refers to... Figure 1The direction of "Z" indicated by the middle arrow is perpendicular to each other in the first direction X, the second direction Y, and the third direction Z. It should be understood that the introduction of the concepts of the first direction X, the second direction Y, and the third direction Z, as well as symmetrical axes, is merely for the convenience of describing spatial relationships and should not be construed as limiting the scope of the embodiments of this application. Therefore, the perpendicular relationship between the first direction X, the second direction Y, and the third direction Z can be interpreted, depending on the actual technical scenario, as the first direction X, the second direction Y, and the third direction Z representing three mutually perpendicular directions in three-dimensional space, or reasonably interpreted as a nearly perpendicular relationship between the first direction X, the second direction Y, and the third direction Z, for example, the included angles between the first direction X, the second direction Y, and the third direction Z are all within the range of 85°-95°… Any technical solution that conforms to the spirit of this utility model or achieves the technical effects described in this utility model can be considered to fall within the scope defined by the appended claims.

[0051] In one possible implementation, such as Figure 3 and Figure 4 As shown, the linkage assembly 5 includes a linkage seat 501, a first linkage rod 502, and a second linkage rod 503. The linkage seat 501 is rotatably mounted on the shaping seat 1 and has a first connecting position and a second connecting position symmetrically arranged along its own rotation axis. One end of the first linkage rod 502 is hinged to the first connecting position and the other end is hinged to the first shaping assembly 2. One end of the second linkage rod 503 is hinged to the second connecting position and the other end is hinged to the second shaping assembly 3. The linkage assembly 5 has a simple and reliable structure and can complete the linkage through linkage transmission. The linkage assembly 5 has fewer parts and occupies less space, making it easy to process and manufacture.

[0052] As an alternative implementation, the linkage component 5 is not limited to the above-described structural form. It can also be a lead screw with two sections of opposite textures, on which two nuts are fitted. One nut is connected to the first shaping component 2, and the other nut is connected to the second shaping component 3. By moving one nut along the axial direction, the lead screw is driven to rotate. At the same time, the other nut on the lead screw also moves along the axial direction while the lead screw rotates, thus achieving linkage as well.

[0053] In addition, the linkage component 5 can also be two parallel racks connected by a gear fixed in the middle. One rack is connected to the first shaping component 2, and the other rack is connected to the second shaping component 3. When one rack slides along the first direction X, it can drive the gear to rotate, and the gear can drive the other rack to slide in the opposite direction.

[0054] In one possible implementation, such as Figure 3 and Figure 4As shown, the shaping fixture also includes a guide component 6, which is fixedly installed in the working space and fixedly connected to the shaping base 1. The guide component 6 extends along the first direction X and guides and cooperates with the first shaping component 2 and the second shaping component 3 respectively. The guide component 6 can effectively improve the stability and reliability of the first shaping component 2 and the second shaping component 3 during the movement process, and can further improve the overall performance and safety of the shaped product.

[0055] Specifically, the form of the guide component 6 is not limited. It can be a guide rail slider, a guide rod with guide grooves, or a guide rod that passes through the first shaping component 2 and the second shaping component 3, as long as it can play a guiding role.

[0056] In one possible implementation, such as Figure 3 and Figure 4 As shown, the guide assembly 6 includes a plurality of spaced guide rods 601. The guide rods 601 extend along the first direction X and are connected to the shaping base 1 at both ends. The first shaping assembly 2 has a first guide hole 202 for the guide rods 601 to pass through, and the second shaping assembly 3 has a second guide hole 301 for the guide rods 601 to pass through. This type of guide assembly 6 has a simple and reliable structure and occupies less space. The guide rods 601 can not only play a guiding role, but also play a supporting role for the first shaping assembly 2 and the second shaping assembly 3. In addition, the overall strength and stability of the shaping base 1 are also higher after the guide rods 601 are set.

[0057] The specific number of guide rods 601 is not limited; there can be one or more.

[0058] Preferably, such as Figure 3 As shown, there are two guide rods 601, which are spaced apart along the third direction Z.

[0059] In one possible implementation, such as Figure 3 and Figure 4 As shown, the first shaping component 2 includes a first shaping plate 203, a pressure detection element 201 disposed on the first shaping plate 203, and a linkage component 5 connected to the first shaping plate 203;

[0060] The second shaping assembly 3 includes a connecting plate 302, a second shaping plate 303, and an elastic element 304. The connecting plate 302 is located on the side of the second shaping plate 303 away from the first shaping plate 203. The connecting plate 302 is connected to the second shaping plate 303 through the elastic element 304. The linkage assembly 5 is connected to the second shaping plate 303. The elastic element 304 can both press and buffer. Since the second shaping plate 303 is connected to the connecting plate 302 through the elastic element 304, when the shaping structure on the second shaping plate 303 comes into contact with the battery cell, the force applied by the second shaping plate 303 to the battery cell is small. This force can gradually increase as the connecting plate 302 moves, avoiding direct rigid collision that could damage the battery cell.

[0061] Specifically, such as Figure 3 As shown, the linkage component 5 also includes a first connector 504 and a second connector 505. The first connector 504 and the second connector 505 are plate-shaped structures. The first linkage rod 502 is hinged to the first shaping component 2 through the first connector 504; the second linkage rod 503 is hinged to the second shaping component 3 through the second connector 505. Since both the first shaping component 2 and the second shaping component 3 are plate-shaped structures, the first connector 504 and the second connector 505 can effectively increase the space at the connection position, making it easier to assemble and connect.

[0062] In one possible implementation, such as Figure 4 and Figure 5 As shown, the shaping base 1 includes a base 101 and a frame 102. The frame 102 has a working space. The frame 102 is detachably connected to the base 101. The linkage component 5 and the guide component 6 are both connected to the frame 102. The first drive component 4 is connected to the base 101. With this type of shaping base 1, the components in the frame 102 can be pre-assembled. When maintenance is required, multiple components can be removed together by disassembling the frame 102, which can improve the convenience of disassembly and maintenance of the tooling.

[0063] In addition, such as Figure 1 As shown, since the base 101 and the frame 102 together form the shaping base 1, this type of shaping base 1 has higher structural strength and stability. The frame 102 has a side plate extending along the first direction X and a side plate in the third direction Z, which can effectively block the working area, prevent foreign objects from entering the working area at will, and improve the safety of the shaping process.

[0064] In one possible implementation, such as Figure 4 and Figure 5As shown, the first driving component 4 includes a driving motor 402 and a connecting seat 403. The driving motor 402 has a first movable seat 401. The connecting seat 403 includes a first connecting section 4031 and a second connecting section 4032. The first connecting section 4031 extends along a first direction X, and the second connecting section 4032 extends along a second direction Y. The second connecting section 4032 is connected to the connecting seat 403 through the first connecting section 4031. The wall surface of the first connecting section 4031 along the first direction X forms a connecting surface for connecting with the first shaping component 2. The driving motor 402 can adjust its driving distance according to the pressure signal at the pressure detection element 201. The structure is simple and effective. In addition, with this type of connecting seat 403, the connecting seat 403 can more reliably support the first shaping component 2, making the movement of the first shaping component 2 driven by the driving motor 402 more stable.

[0065] It is understood that, as an alternative implementation, the connecting seat 403 may not be provided, and the drive motor 402 may be directly connected to the first shaping component 2 through its own first moving seat 401.

[0066] In one possible implementation, such as Figure 2 and Figure 5 As shown, the shaping fixture also includes a second drive assembly 7. The second drive assembly 7 has a second movable seat 701 that can move along the first direction X. The shaping seat 1 is connected to the second movable seat 701. The second drive assembly 7 is used to drive the shaping seat 1 to move along the first direction X. The second drive assembly 7 has a simple and reliable structure. The position of the shaping seat 1 in the first direction X can be adjusted by the second drive assembly 7, which can make the shaping position more flexible.

[0067] Specifically, such as Figure 2 As shown, the shaping base 1 also includes a mounting plate 103. Since the back of the base 101 has a hollow structure, the mounting plate 103 can effectively increase the area of ​​the connection position, which not only makes it easier for the shaping base 1 to connect with the second movable base 701, but also improves the stability after connection.

[0068] In one possible implementation, such as Figure 2 and Figure 5 As shown, the shaping fixture also includes a third drive assembly 8. The third drive assembly 8 has a third movable seat 802 that can move along the second direction Y. The second drive assembly 7 is connected to the third movable seat 802. The third drive assembly 8 is used to drive the second drive assembly 7 to move along the second direction Y. The third drive assembly 8 has a simple and reliable structure. The position of the shaping seat 1 in the second direction Y can be adjusted through the third drive assembly 8, which can make the shaping position more flexible.

[0069] In one possible implementation, the shaping fixture further includes a mounting component 9. The third drive component 8 is connected to the second drive component 7 via the mounting component 9. The mounting component 9 includes a support plate 901, a support base 902, and a mounting base 903. The support plate 901 is connected to one side of the second drive component 7 along the second direction Y, and can support the second drive component 7. The mounting base 903 is L-shaped. The support plate 901 is connected to the third movable seat 802 on the third drive component 8 via the mounting base 903. The support base 902 is connected to the second drive component 7 along the first direction X, and the support base 902 is also connected to the mounting base 903, which can change the position of the second drive component 7 along the first direction X.

[0070] The second drive component 7 and the third drive component 8 can be servo motors or cylinders, as long as they can move in a preset direction.

[0071] In one possible implementation, the shaping fixture also includes a quality inspection component. This component has a detection structure capable of inspecting the external quality of the shaped battery cell. The detection structure can be an image recognition structure or a laser measurement structure, as long as it can comprehensively inspect the shape, size, and surface quality of the battery cell head. Setting up the quality inspection component can further optimize the shaping process. The quality inspection component not only improves the accuracy of product quality control but also reduces the cost and time of manual inspection.

[0072] According to an embodiment of the present invention, in another aspect, a battery production system is provided, comprising: a transfer device and the above-mentioned shaping fixture; the transfer device has a placement position for placing battery cells, and the transfer device is used to transfer battery cells between the shaping structures of the shaping fixture.

[0073] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. A shaping tool having a first direction (X) and a second direction (Y) perpendicular thereto, characterized by, include: Shaping base (1), first shaping component (2), second shaping component (3), first driving component (4), and linkage component (5); The shaping seat (1) has a working space; The first shaping component (2) and the second shaping component (3) are movably disposed in the workspace along the first direction (X). Shaping structures are respectively provided on the opposing walls of the two components. At least one of the shaping structures is provided with a pressure detection element (201). The pressure detection element (201) is used to detect the shaping pressure. The pressure detection element (201) is controlled to be connected to the first drive component (4). The linkage component (5) is disposed in the workspace and connected to the shaping seat (1). The linkage component (5) is connected to the first shaping component (2) and the second shaping component (3) respectively. Along the first direction (X), the first shaping component (2) moves towards or away from the second shaping component (3) through the linkage component (5). The first driving component (4) is fixedly disposed on the shaping seat (1). The first driving component (4) has a first movable seat (401) that can move along the first direction (X). The first movable seat (401) is connected to the first shaping component (2) or the second shaping component (3).

2. The shaping tool of claim 1, wherein The linkage component (5) includes a linkage seat (501), a first linkage rod (502), and a second linkage rod (503); The linkage seat (501) is rotatably disposed on the shaping seat (1), and the linkage seat (501) has a first connecting position and a second connecting position symmetrically arranged along its own rotation axis; One end of the first linkage rod (502) is hinged to the first connection position and the other end is hinged to the first shaping component (2); One end of the second linkage rod (503) is hinged to the second connection position and the other end is hinged to the second shaping component (3).

3. The shaping tool of claim 1, wherein The shaping fixture also includes a guide component (6), which is fixedly disposed in the workspace and fixedly connected to the shaping seat (1). The guide component (6) extends along the first direction (X) and is guided and cooperated with the first shaping component (2) and the second shaping component (3) respectively.

4. The shaping tool of claim 3, wherein The guide assembly (6) includes a plurality of spaced guide rods (601), each of which extends along the first direction (X) and is connected at both ends to the shaping seat (1). The first shaping assembly (2) has a first guide hole (202) for the guide rods (601) to pass through, and the second shaping assembly (3) has a second guide hole (301) for the guide rods (601) to pass through.

5. The shaping tool according to any one of claims 1 to 4, characterized in that The first shaping component (2) includes a first shaping plate (203), the pressure detection element (201) is disposed on the first shaping plate (203), and the linkage component (5) is connected to the first shaping plate (203); The second shaping component (3) includes a connecting plate (302), a second shaping plate (303), and an elastic element (304). The connecting plate (302) is disposed on the side of the second shaping plate (303) away from the first shaping plate (203). The connecting plate (302) is connected to the second shaping plate (303) through the elastic element (304). The linkage component (5) is connected to the second shaping plate (303).

6. A shaping tool according to claim 3 or 4, characterized in that The shaping seat (1) includes a seat body (101) and a frame body (102). The frame body (102) has the working space. The frame body (102) is detachably connected to the seat body (101). The linkage component (5) and the guide component (6) are both connected to the frame body (102). The first drive component (4) is connected to the seat body (101).

7. The shaping tool of claim 6, wherein The first drive assembly (4) includes a drive motor (402) and a connecting seat (403). The drive motor (402) has a first movable seat (401). The connecting seat (403) includes a first connecting segment (4031) and a second connecting segment (4032). The first connecting segment (4031) extends along the first direction (X), and the second connecting segment (4032) extends along the second direction (Y). The second connecting segment (4032) is connected to the connecting seat (403) through the first connecting segment (4031). The first connecting segment (4031) forms a connecting surface along the wall of the first direction (X) for connecting with the first shaping assembly (2).

8. The shaping tool according to any one of claims 1 to 4, characterized in that It also includes a second drive assembly (7), which has a second movable seat (701) movable along the first direction (X), the shaping seat (1) is connected to the second movable seat (701), and the second drive assembly (7) is used to drive the shaping seat (1) to move along the first direction (X).

9. The shaping tool of claim 8, wherein It also includes a third drive assembly (8) having a third movable seat (802) movable along the second direction (Y), the second drive assembly (7) being connected to the third movable seat (802), and the third drive assembly (8) being used to drive the second drive assembly (7) to move along the second direction (Y).

10. A battery production system characterized by comprising: include: The transfer device and the shaping fixture according to any one of claims 1 to 9; The transfer device has a placement position for placing the battery cell, and the transfer device is used to transfer the battery cell between the shaping structures of the shaping fixture.