A new energy automobile seat part full-automatic production system

CN122606810APending Publication Date: 2026-08-21WUXI CHIAN TECH CO LTD
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Patent Information

Application Number
CN202611052777.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-15
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

但是相关技术中在放置限位座、取出产品以及对产品进行检测时需要人工辅助完成,从而降低了整体的生产效率

Benefits of technology

1.通过限位座上料机构、转移机构、注塑机构、检测机构和下料机构的协同配合,实现了新能源汽车座椅零部件从限位座上料、注塑成型、产品检测到分类下料的全流程自动化生产,提高了整体生产效率和作业连贯性;

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Abstract

The application provides a new energy automobile seat part full-automatic production system, which comprises a limiting seat feeding mechanism, a transfer mechanism, an injection mechanism, a detection mechanism and a discharging mechanism; the limiting seat feeding mechanism comprises a feeding conveying assembly, a transfer clamping assembly and a storage assembly; the feeding conveying assembly is used for conveying the limiting seat, and the transfer clamping assembly transfers the limiting seat conveyed by the feeding conveying assembly into the storage assembly; the transfer mechanism comprises a mechanical hand, a feeding clamp jaw and a discharging clamp jaw; the feeding clamp jaw and the discharging clamp jaw are both arranged on the mechanical hand, the mechanical hand drives the feeding clamp jaw to move, so that the feeding clamp jaw transfers the limiting seat in the storage assembly into the injection mechanism; the injection mechanism is used for injection molding to obtain products, the mechanical hand drives the discharging clamp jaw to move, so that the discharging clamp jaw transfers the products in the injection mechanism into the detection mechanism, the detection mechanism detects the products, and the discharging mechanism discharges and transports the products.
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Description

Technical Field

[0001] This application relates to the technical field of automotive seat component manufacturing, and in particular to a fully automated production system for new energy vehicle seat components. Background Technology

[0002] The seats in new energy vehicles are equipped with an electric adjustment mechanism. This mechanism is used to adjust the seat's forward and backward movement as well as its up and down movement. The gearbox is the core component of this electric adjustment mechanism. (Reference) Figure 1 The gearbox includes a housing 1001, a limiting seat 1002, a drive shaft 103, and a gear 102. The assembly of the housing 1001 and the limiting seat 1002 is referred to as automotive seat component 100. The limiting seat 1002 is fixedly connected to the housing 1001, and the drive shaft 103 and the gear 102 are fixedly connected. The drive shaft 103 has a slot 1031 at its shaft end, which engages with the limiting seat 1002. The limiting seat 1002 restricts the axial movement of the drive shaft 103 and allows the drive shaft 103 and the gear 102 to rotate freely within the housing 1001.

[0003] In the production of automotive seat parts, related technologies involve first placing a limiting seat in an injection mold, and then injection molding the housing, so that a portion of the limiting seat is embedded and fixed within the housing. This process is called overmolding. However, this technology requires manual assistance in placing the limiting seat, removing the product, and inspecting the product, thus reducing overall production efficiency. Summary of the Invention

[0004] To improve the production efficiency of automotive seat parts, this application provides a fully automated production system for new energy vehicle seat parts.

[0005] This application provides a fully automated production system for new energy vehicle seat components, which adopts the following technical solution: A fully automated production system for new energy vehicle seat components includes a limit seat loading mechanism, a transfer mechanism, an injection molding mechanism, a testing mechanism, and a unloading mechanism; The limiting seat feeding mechanism includes a feeding conveying component, a transfer clamping component, and a storage component; the feeding conveying component is used to convey the limiting seat, and the transfer clamping component transfers the limiting seat conveyed by the feeding conveying component into the storage component; The transfer mechanism includes a robotic arm, a loading gripper, and a unloading gripper; both the loading gripper and the unloading gripper are mounted on the robotic arm, and the robotic arm drives the loading gripper to move, so that the loading gripper transfers the limiting seat in the material storage assembly to the injection molding mechanism; The injection molding mechanism is used to injection mold products. The robotic arm drives the unloading gripper to move, so that the unloading gripper transfers the product in the injection molding mechanism to the inspection mechanism. The inspection mechanism inspects the product, and the unloading mechanism unloads and transports the product.

[0006] By adopting the above technical solutions, the entire process of loading, transferring, injection molding, testing and unloading of the limit seat is automated without the need for manual assistance, which improves the overall production efficiency of new energy vehicle seat parts, while ensuring the continuity and stability of the connection between each process.

[0007] Optionally, the feeding and conveying assembly includes a vibratory feeder and a temporary storage platform. The vibratory feeder drives the limiting seat to move into the temporary storage platform, which is used to store the limiting seat.

[0008] By adopting the above technical solution, the vibratory feeder can automatically and orderly transport the limit seat to the temporary storage platform, where the limit seat is buffered and stored.

[0009] Optionally, the storage assembly includes a moving drive source and a storage platform. The storage platform is disposed on the moving drive source, and the moving drive source drives the storage platform to move. The transfer clamping assembly transfers the limiting seat in the temporary storage platform to the storage platform.

[0010] By adopting the above technical solution, the mobile drive source drives the storage platform to move, so that the storage platform can move away from the transfer clamping component to avoid positioning, thereby providing sufficient working space for the transfer mechanism and making it easy for the transfer mechanism to accurately clamp the limiting seat from the storage platform.

[0011] Optionally, the transfer clamping assembly includes a movable member and a transfer gripper, the transfer gripper being disposed on the movable member, the movable member driving the transfer gripper to move, and the transfer gripper clamping the limiting seat.

[0012] By adopting the above technical solution, the moving component drives the transfer gripper to move, and the transfer gripper stably clamps the limiting seat, realizing the automated transfer of the limiting seat from the temporary storage platform to the storage platform.

[0013] Optionally, the robotic arm drives the loading gripper and the unloading gripper to rotate, thereby changing the orientation of the loading gripper and the unloading gripper.

[0014] By adopting the above technical solution, the end effector of the robot can drive the loading and unloading grippers to rotate, so that the loading or unloading grippers can be flexibly switched to face downwards, making it convenient to perform loading and unloading operations separately, thereby improving the functional reuse rate and operational flexibility of the robot.

[0015] Optionally, the injection molding mechanism includes a support turntable and an injection mold, wherein the injection mold includes an upper mold, a lower mold, and a mold closing drive component; The lower mold is provided in multiple ways, and the multiple lower molds are connected to the bearing turntable. The bearing turntable drives the multiple lower molds to rotate, so that the multiple lower molds correspond to the upper mold in sequence. The upper mold is connected to the mold closing drive component, and the mold closing drive component drives the upper mold to move, so that the upper mold and the lower mold close together.

[0016] By adopting the above technical solution, the turntable drives multiple lower molds to rotate, so that one lower mold closes with the upper mold for injection molding, while the other lower mold can remove the product and place the limiting seat. This realizes the parallel operation of injection molding and loading / unloading, and improves the production efficiency of the injection molding process.

[0017] Optionally, the detection mechanism includes a transfer feeding assembly, a rotating disk, and a detection camera; the transfer mechanism transfers the product from the injection molding mechanism to the transfer feeding assembly, the transfer feeding assembly transfers the product to the rotating disk, the rotating disk drives the product to rotate to the detection camera, and the detection camera captures an image of the product.

[0018] By adopting the above technical solution, the product is automatically transferred to the rotating disk by the transfer feeding component. The rotating disk drives the product to rotate sequentially to the detection camera for image capture, realizing the automation and continuity of product detection and improving detection efficiency.

[0019] Optionally, the transfer and loading assembly includes a linear moving component, a storage platform, a loading drive component, and a rotary gripper; the storage platform is connected to the linear moving component, the storage platform is used to store products, and the linear moving component drives the storage platform to move; The rotating gripper is connected to the feeding drive, with one side of the product being the inspection surface. The rotating gripper is used to hold the product and flip it over. The feeding drive moves the rotating gripper so that it transfers the product from the storage platform to the rotating disk, and the inspection surface of the product faces upward.

[0020] By adopting the above technical solution, the linear moving component drives the storage platform to a predetermined position, the rotating gripper clamps the product and flips the product so that the inspection surface of the product is facing upwards before it is placed on the rotating disk, ensuring that the inspection camera can capture the inspection surface of the product from the best angle, thus improving the accuracy and reliability of the inspection.

[0021] Optionally, the unloading mechanism includes an unloading clamping and moving assembly, an unloading transport component, and an unloading platform; the unloading clamping and moving assembly transfers the product on the rotating disk to the unloading platform, the unloading platform is used to carry the product, the unloading platform is connected to the unloading transport component, and the unloading transport component drives the unloading platform to move.

[0022] By adopting the above technical solution, the unloading clamping and moving component automatically transfers the inspected products from the turntable to the unloading platform. The unloading transport component drives the unloading platform to move linearly, transporting the products to the next workstation, thus realizing the automation of unloading and transport and improving the unloading efficiency of products.

[0023] Optionally, the unloading clamping moving assembly includes an unloading moving component and an unloading clamping claw. The unloading clamping claw is connected to the unloading moving component and is used to clamp the product. The unloading moving component drives the unloading clamping claw to move, so that the unloading clamping claw transfers the product on the rotating disk to the unloading loading platform.

[0024] By adopting the above technical solution, the unloading moving component drives the unloading clamping claw to move, and the unloading clamping claw stably clamps the product. According to the test results, qualified products can be placed on the unloading platform or defective products can be discarded, realizing automatic classification and processing of products and ensuring the accuracy and orderliness of unloading operations.

[0025] In summary, this application includes at least one of the following beneficial effects: 1. Through the coordinated operation of the limit seat feeding mechanism, transfer mechanism, injection molding mechanism, inspection mechanism and unloading mechanism, the entire process of new energy vehicle seat parts from limit seat feeding, injection molding, product inspection and classification unloading is automated, which improves the overall production efficiency and operation continuity. 2. By driving multiple lower molds to rotate alternately through the load-bearing turntable, the parallel operation of injection molding mold closing and loading / unloading operations is realized, which improves the production capacity and cycle efficiency of the injection molding process; 3. The rotating gripper flips the product so that the inspection side faces upward. This, combined with the rotating disk and inspection camera, enables product inspection, improving inspection accuracy and product quality control. 4. Through the coordination of the material unloading clamping moving component, the material unloading transport component, and the material unloading platform, the automatic classification, transfer, and transportation of qualified and defective products are realized, ensuring the orderliness of the material unloading process. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the gearbox structure; Figure 2 This is a schematic diagram of the overall structure of the fully automated production system for new energy vehicle seat components according to an embodiment of this application; Figure 3 This is a schematic diagram of the structure of the limiting seat feeding mechanism according to an embodiment of this application; Figure 4 This is a schematic diagram of the structure of the testing mechanism and the feeding mechanism in the embodiments of this application; Figure 5 This is a schematic diagram of the detection mechanism and the feeding mechanism from another perspective in the embodiments of this application.

[0027] Explanation of reference numerals in the attached drawings: 1. Limiting seat loading mechanism; 11. Loading and conveying assembly; 111. Vibratory feeder; 112. Temporary storage platform; 12. Transfer clamping assembly; 121. Moving part; 122. Transfer gripper; 13. Storage assembly; 131. Moving drive source; 132. Storage platform; 2. Transfer mechanism; 21. Robotic arm; 22. Loading gripper; 23. Unloading gripper; 3. Injection molding mechanism; 31. Bearing turntable; 32. Injection mold; 321. Upper mold; 322. Lower mold; 323. Mold closing drive component; 4. Detection mechanism ; 41. Transfer and loading assembly; 411. Linear moving part; 412. Storage platform; 413. Loading drive part; 414. Rotary gripper; 42. Rotary disk; 43. Inspection camera; 5. Unloading mechanism; 51. Unloading clamping moving assembly; 511. Unloading moving part; 512. Unloading clamping gripper; 52. Unloading transport part; 53. Unloading loading platform; 6. Support frame; 100. Automotive seat parts; 1001. Box body; 1002. Limit seat; 102. Gear; 103. Drive shaft; 1031. Slot. Detailed Implementation

[0028] The following combination Figures 1 to 5 This application will be described in further detail.

[0029] This application provides a fully automated production system for new energy vehicle seat components.

[0030] refer to Figure 2 A fully automated production system for new energy vehicle seat parts includes a limit seat loading mechanism 1, a transfer mechanism 2, an injection molding mechanism 3, a testing mechanism 4, a unloading mechanism 5, and a support frame 6.

[0031] refer to Figure 2 and Figure 3The limiting seat feeding mechanism 1 includes a feeding conveying assembly 11, a transfer clamping assembly 12, and a storage assembly 13. The feeding conveying assembly 11 includes a vibratory feeder 111 and a temporary storage platform 112. The vibratory feeder 111 is mounted on a support frame 6 and is located on one side of the temporary storage platform 112. The discharge end of the vibratory feeder 111 is connected to the inlet of the temporary storage platform 112. The vibratory feeder 111 stores limiting seats 1002, and the vibratory feeder 111 orderly conveys the limiting seats 1002 into the temporary storage platform 112. The temporary storage platform 112 is used to temporarily store individual limiting seats 1002. Through the cooperation of the vibratory feeder 111 and the temporary storage platform 112, the automatic and orderly feeding of the limiting seats 1002 can be achieved.

[0032] refer to Figure 2 and Figure 3 The transfer clamping assembly 12 includes a movable component 121 and a transfer gripper 122. The movable component 121 is specifically a two-axis linear module, and the transfer gripper 122 is a pneumatic or electric gripper. The body of the movable component 121 is fixedly connected to the support frame 6, and the transfer gripper 122 is fixedly connected to the output end of the movable component 121. The movable component 121 can drive the transfer gripper 122 to move horizontally or vertically between the temporary storage platform 112 and the storage platform 132. The movable component 121 drives the transfer gripper 122 to move onto the temporary storage platform 112, where the transfer gripper 122 clamps the limiting seat 1002 within the temporary storage platform 112. Subsequently, the movable component 121 drives the transfer gripper 122 to move into the storage platform 132, where the transfer gripper 122 places the limiting seat 1002 within the storage platform 132.

[0033] refer to Figure 2 and Figure 3 The storage assembly 13 includes a moving drive source 131 and a storage platform 132. The moving drive source 131 is specifically a linear module, and its body is fixedly connected to the support frame 6. The storage platform 132 is fixedly connected to the output end of the moving drive source 131. The storage platform 132 is used to position and store the limiting seat 1002. When the transfer clamping assembly 12 places the limiting seat 1002 on the storage platform 132, the moving drive source 131 drives the storage platform 132 to move horizontally, so that the storage platform 132 moves away from the transfer clamping assembly 12 to avoid obstruction, thereby providing sufficient working space for the transfer mechanism 2 to easily clamp the limiting seat 1002 from the storage platform 132.

[0034] refer to Figure 2The transfer mechanism 2 includes a robotic arm 21, a loading gripper 22, and a unloading gripper 23. The base of the robotic arm 21 is fixedly connected to the support frame 6, and the loading gripper 22 and the unloading gripper 23 are both fixedly connected to the end of the robotic arm 21. The robotic arm 21 can drive the loading gripper 22 and the unloading gripper 23 to move between the storage assembly 13, the injection molding mechanism 3, and the detection mechanism 4. The end of the robotic arm 21 can drive the loading gripper 22 and the unloading gripper 23 to rotate, thereby changing the orientation of the loading gripper 22 and the unloading gripper 23. For example, when the loading gripper 22 is facing downwards, the robotic arm 21 drives the loading gripper 22 to move onto the storage platform 132, where the loading gripper 22 grips the limiting seat 1002 within the storage platform 132. Subsequently, the robotic arm 21 drives the loading gripper 22 to move into the injection molding mechanism 3, thereby loading the limiting seat 1002. When the unloading gripper 23 is facing downwards, the robot arm 21 moves the unloading gripper 23 into the injection molding mechanism 3. The injection molding mechanism 3 injects the limiting seat 1002 into the injection molding to obtain the product. In this application, the product is the car seat part 100. The unloading gripper 23 holds the product that has been injected. Then, the robot arm 21 moves the unloading gripper 23 to the inspection mechanism 4 to realize the transfer of the product from the injection molding mechanism 3 to the inspection mechanism 4.

[0035] refer to Figure 2 The injection molding mechanism 3 includes a support turntable 31 and an injection mold 32. The injection mold 32 includes an upper mold 321, a lower mold 322, and a mold closing drive component 323. Multiple lower molds 322 are provided; in this embodiment, two lower molds 322 are specifically provided. The two lower molds 322 are evenly distributed along the circumference of the support turntable 31 and are fixedly connected to the support turntable 31 with bolts. The support turntable 31 is horizontally positioned and includes a disc body and a motor. The disc body of the support turntable 31 is rotatably connected to the support frame 6. The motor of the support turntable 31 drives the disc body to rotate, causing the two lower molds 322 to rotate sequentially to directly below the upper mold 321 and correspond to the upper mold 321.

[0036] refer to Figure 2 The mold closing drive component 323 is specifically a hydraulic cylinder, which is mounted on the support frame 6 via a frame. The upper mold 321 is fixedly connected to the output end of the mold closing drive component 323. The mold closing drive component 323 drives the upper mold 321 to move downwards in the vertical direction, so that the upper mold 321 and the lower mold 322 close together, thereby performing injection molding to form a product. When the carrier turntable 31 drives one lower mold 322 to rotate to the underside of the upper mold 321 for mold closing and injection molding, the other lower mold 322 rotates to a position away from the upper mold 321 to avoid obstruction, so that the transfer mechanism 2 can place the limiting seat 1002 in the lower mold 322 or remove the product, thereby realizing the parallel operation of injection molding mold closing and loading / unloading operations, improving the production efficiency of the injection molding process.

[0037] refer to Figure 2 and Figure 4The inspection mechanism 4 includes a transfer and loading assembly 41, a rotating disk 42, and an inspection camera 43. The transfer and loading assembly 41 includes a linear motion component 411, a storage platform 412, a loading drive component 413, and a rotating gripper 414. The linear motion component 411 is specifically a linear module. The body of the linear motion component 411 is fixedly connected to the support frame 6. The storage platform 412 is fixedly connected to the output end of the linear motion component 411. The linear motion component 411 can drive the storage platform 412 to move horizontally. The storage platform 412 is used to store products transferred from the unloading gripper 23.

[0038] refer to Figure 4 and Figure 5 The feeding drive unit 413 specifically adopts a two-axis linear module. The body of the feeding drive unit 413 is fixedly connected to the support frame 6. The rotating gripper 414 is installed at the output end of the feeding drive unit 413. The feeding drive unit 413 can drive the rotating gripper 414 to move between the storage platform 412 and the rotating disk 42. The rotating gripper 414 includes a clamping part and a rotating drive part. The rotating drive part can drive the clamping part to rotate around a horizontal axis to achieve product flipping. One side of the product is the detection surface, which contains the position information of the limit seat 1002 within the housing 1001. The feeding drive unit 413 drives the rotating gripper 414 to move onto the storage platform 412. The rotating gripper 414 clamps the product and drives the product to rotate, causing the product to flip so that the detection surface of the product faces upward. Then, the feeding drive unit 413 drives the rotating gripper 414 to move onto the rotating disk 42, where the rotating gripper 414 places the product. The rotating gripper 414 flips the product over, ensuring that the inspection camera 43 can capture the inspection surface of the product from the best angle, thus improving the accuracy and reliability of the inspection.

[0039] refer to Figure 4 and Figure 5 The rotating disk 42 is horizontally positioned, with multiple product placement positions arranged around its circumference. An inspection camera 43 is mounted on the support frame 6 via a bracket. The rotating disk 42 rotates the product to a position directly below the inspection camera 43. The inspection camera 43 captures an image of the product and compares it with a preset standard image to determine if the product is qualified. For example, if the product's limiting seat 1002 is misaligned within the housing 1001 and exceeds the allowable range, the product is recorded as defective; if the limiting seat 1002 is within the allowable range, the product is recorded as qualified. The rotating disk 42 continues to rotate, moving the product to the unloading mechanism 5.

[0040] refer to Figure 4 and Figure 5The unloading mechanism 5 includes an unloading clamping and moving assembly 51, an unloading transport component 52, and an unloading platform 53. The unloading clamping and moving assembly 51 includes an unloading moving component 511 and an unloading clamping gripper 512. The unloading moving component 511 is specifically a linear module, and the unloading clamping gripper 512 is specifically a pneumatic gripper. The body of the unloading moving component 511 is fixedly connected to the support frame 6, and the unloading clamping gripper 512 is fixedly connected to the output end of the unloading moving component 511. The unloading moving component 511 drives the unloading clamping gripper 512 to move onto the rotating disk 42, where the unloading clamping gripper 512 clamps the product. Subsequently, the unloading moving component 511 drives the unloading clamping gripper 512 to move. The unloading and transporting component 52 specifically adopts a linear module. The body of the unloading and transporting component 52 is fixedly connected to the support frame 6. The unloading platform 53 is fixedly connected to the output end of the unloading and transporting component 52. The unloading platform 53 is used to carry the product. The unloading and transporting component 52 can drive the unloading platform 53 to move in a straight line and transport the product to the next work station.

[0041] refer to Figure 4 and Figure 5 For qualified products, the unloading moving component 511 drives the unloading clamping claw 512 to place the qualified product on the unloading platform 53; for defective products, the unloading moving component 511 drives the unloading clamping claw 512 to discard the defective product. Through the cooperation of the unloading clamping moving component 51, the unloading transport component 52 and the unloading platform 53, the automatic classification, transfer and transportation of qualified and defective products are realized, ensuring the orderliness of the unloading process.

[0042] The implementation principle of a fully automated production system for new energy vehicle seat components according to an embodiment of this application is as follows: A vibratory feeder 111 transports a limiting seat 1002 to a temporary storage platform 112. A transfer clamping assembly 12 transfers the limiting seat 1002 to a storage platform 132. A robotic arm 21 moves a loading gripper 22 to transfer the limiting seat 1002 from the storage platform 132 to the lower mold 322. The upper mold 321 and lower mold 322 are closed for injection molding to obtain the product. The robotic arm 21 moves a unloading gripper 23 to transfer the product from the lower mold 322 to a storage platform 412. A linear motion component 411 moves the storage platform 412 to a predetermined position. A loading drive component 413 moves a rotating gripper 414 to transfer the product from the storage platform 412 to a rotating disk 42. The rotating disk 42 rotates the product to a detection camera 43, which then inspects the product. Based on the test results, the unloading clamping moving component 51 discards the defective products, the unloading clamping moving component 51 transfers the qualified products to the unloading loading platform 53, and the unloading transport component 52 transports the qualified products to the next workstation.

[0043] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A fully automated production system for new energy vehicle seat components, characterized in that: It includes a limit seat feeding mechanism (1), a transfer mechanism (2), an injection molding mechanism (3), an inspection mechanism (4), and a discharge mechanism (5); The limiting seat feeding mechanism (1) includes a feeding conveying assembly (11), a transfer clamping assembly (12), and a storage assembly (13); the feeding conveying assembly (11) is used to convey the limiting seat (1002), and the transfer clamping assembly (12) transfers the limiting seat (1002) conveyed by the feeding conveying assembly (11) into the storage assembly (13); The transfer mechanism (2) includes a robot arm (21), a loading gripper (22), and a unloading gripper (23); the loading gripper (22) and the unloading gripper (23) are both mounted on the robot arm (21), and the robot arm (21) drives the loading gripper (22) to move, so that the loading gripper (22) transfers the limiting seat (1002) in the material storage assembly (13) to the injection molding mechanism (3); The injection molding mechanism (3) is used to injection mold products. The robotic arm (21) drives the unloading gripper (23) to move, so that the unloading gripper (23) transfers the product in the injection molding mechanism (3) to the detection mechanism (4). The detection mechanism (4) detects the product, and the unloading mechanism (5) unloads and transports the product.

2. The fully automated production system for new energy vehicle seat components according to claim 1, characterized in that: The feeding and conveying assembly (11) includes a vibratory feeder (111) and a temporary storage platform (112). The vibratory feeder (111) drives the limiting seat (1002) to move into the temporary storage platform (112). The temporary storage platform (112) is used to store the limiting seat (1002).

3. The fully automated production system for new energy vehicle seat components according to claim 2, characterized in that: The storage assembly (13) includes a moving drive source (131) and a storage platform (132). The storage platform (132) is disposed on the moving drive source (131). The moving drive source (131) drives the storage platform (132) to move. The transfer clamping assembly (12) transfers the limiting seat (1002) in the temporary storage platform (112) to the storage platform (132).

4. The fully automated production system for new energy vehicle seat components according to claim 1, characterized in that: The transfer clamping assembly (12) includes a movable member (121) and a transfer gripper (122). The transfer gripper (122) is disposed on the movable member (121). The movable member (121) drives the transfer gripper (122) to move. The transfer gripper (122) clamps the limiting seat (1002).

5. The fully automated production system for new energy vehicle seat components according to claim 1, characterized in that: The robotic arm (21) drives the loading gripper (22) and the unloading gripper (23) to rotate, thereby changing the orientation of the loading gripper (22) and the unloading gripper (23).

6. The fully automated production system for new energy vehicle seat components according to claim 1, characterized in that: The injection molding mechanism (3) includes a support turntable (31) and an injection mold (32), the injection mold (32) including an upper mold (321), a lower mold (322) and a mold closing drive (323); Multiple lower molds (322) are provided, and the multiple lower molds (322) are connected to the bearing turntable (31). The bearing turntable (31) drives the multiple lower molds (322) to rotate, so that the multiple lower molds (322) correspond to the upper mold (321) in sequence. The upper mold (321) is connected to the mold closing drive (323). The mold closing drive (323) drives the upper mold (321) to move, so that the upper mold (321) and the lower mold (322) close together.

7. The fully automated production system for new energy vehicle seat components according to claim 1, characterized in that: The detection mechanism (4) includes a transfer loading assembly (41), a rotating disk (42), and a detection camera (43); the transfer mechanism (2) transfers the product at the injection molding mechanism (3) to the transfer loading assembly (41), the transfer loading assembly (41) transfers the product to the rotating disk (42), the rotating disk (42) drives the product to rotate to the detection camera (43), and the detection camera (43) captures an image of the product.

8. The fully automated production system for new energy vehicle seat components according to claim 7, characterized in that: The transfer loading assembly (41) includes a linear moving part (411), a storage platform (412), a loading drive part (413), and a rotating gripper (414); the storage platform (412) is connected to the linear moving part (411), the storage platform (412) is used to store products, and the linear moving part (411) drives the storage platform (412) to move; The rotating gripper (414) is connected to the feeding drive (413). One side of the product is the detection surface. The rotating gripper (414) is used to hold the product and drive the product to flip over. The feeding drive (413) drives the rotating gripper (414) to move, so that the rotating gripper (414) transfers the product from the storage platform (412) to the rotating disk (42) and makes the detection surface of the product face upward.

9. The fully automated production system for new energy vehicle seat components according to claim 8, characterized in that: The unloading mechanism (5) includes an unloading clamping and moving component (51), an unloading transport component (52), and an unloading platform (53); the unloading clamping and moving component (51) transfers the product on the rotating disk (42) to the unloading platform (53), the unloading platform (53) is used to carry the product, the unloading platform (53) is connected to the unloading transport component (52), and the unloading transport component (52) drives the unloading platform (53) to move.

10. A fully automated production system for new energy vehicle seat components according to claim 9, characterized in that: The unloading clamping moving assembly (51) includes an unloading moving part (511) and an unloading clamping claw (512). The unloading clamping claw (512) is connected to the unloading moving part (511). The unloading clamping claw (512) is used to clamp the product. The unloading moving part (511) drives the unloading clamping claw (512) to move, so that the unloading clamping claw (512) transfers the product on the rotating disk (42) to the unloading loading platform (53).