Welding test shaping device for new energy battery fixing steel belt

By designing the combination of automated welding, pushing, conveying, testing and shaping mechanisms, the problem of low production efficiency of fixed steel belts in new energy vehicles is solved, efficient and accurate automated production is achieved, adapting to large-scale production needs, and improving product quality and production efficiency.

CN223235392UActive Publication Date: 2025-08-19GUANGDONG WINSCONN NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422125017.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-30
Publication Date
2025-08-19
Estimated Expiration
2034-08-30

AI Technical Summary

Technical Problem

The production process of fixed steel belts of existing new energy vehicles is low in efficiency, relying on manual operations, and the cost is high, making it difficult to achieve the demand for large-scale production.

Method used

An automated device including welding, pushing, conveying, testing and setting mechanism is designed. The frame steel belt is formed through the welding mechanism, the pushing mechanism is conveyed, the testing mechanism conducts electrical testing, and the setting mechanism is accurately defined to realize automated assembly line production.

Benefits of technology

It improves production efficiency, reduces labor costs, ensures welding quality and product consistency, reduces artificial errors, improves product qualification rate and reliability, and adapts to large-scale production needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of new energy battery fixing steel belt production, in particular to a welding testing and shaping device for a new energy battery fixing steel belt, which comprises a welding mechanism, a pushing mechanism, a conveying mechanism, a testing mechanism and a shaping mechanism, the pushing mechanism is used for conveying a frame-shaped steel belt towards the conveying mechanism, the conveying mechanism is used for conveying a frame-shaped framework, the frame-shaped framework sequentially passes through the testing mechanism and the shaping mechanism, the testing mechanism is used for electrical testing of the frame-shaped steel belt, and the shaping mechanism comprises a material taking assembly, a transmission assembly and a shaping assembly. The shaping assembly is used for clamping and fixing a frame-shaped structure of the frame-shaped steel belt so as to shape the frame-shaped steel belt. According to the utility model, the automation, precision and high efficiency of the production process of the frame-shaped steel belt are realized, and reliable equipment support is provided for the production of new energy batteries.
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Description

Technical Field

[0001] The utility model relates to the technical field of production of new energy battery fixing steel strips, in particular to a welding test and shaping device for new energy battery fixing steel strips. Background Art

[0002] New energy vehicle battery securing straps are used to secure battery packs. In new energy vehicles, battery packs typically consist of multiple cells. To ensure the safety and stability of the battery pack during vehicle operation, securing straps are required to securely fasten the battery pack to a specific location within the vehicle. These straps are typically constructed from high-strength, corrosion-resistant steel and are protected by insulating material to ensure secure, long-term reliability, and safety. The structural design of the securing straps must take into account the size and shape of the battery pack, as well as the vehicle's structural characteristics, ensuring they can fully enclose and secure the entire battery pack.

[0003] During the production process, fixed steel straps undergo bending, forming, and testing. After testing, they are then encapsulated and packaged. Existing fixed steel strap production is manual, resulting in low efficiency and high mass production costs. Therefore, improvements are needed to address this issue. Utility Model Content

[0004] In order to solve the above problems, the utility model realizes the automation, precision and efficiency of the frame steel strip production process through technical effects such as efficient production, precise welding, automatic testing, precise shaping and flexible adjustment, and provides a welding test and shaping device for new energy battery fixed steel strips with reliable equipment support for new energy battery production.

[0005] The technical solution adopted by the present invention is: a welding test and shaping device for fixing steel strips for new energy batteries, including a welding mechanism, a pushing mechanism, a conveying mechanism, a testing mechanism and a shaping mechanism. The welding mechanism is used to weld the two ends of the steel strip to weld the steel strip to form a frame-shaped steel strip. The pushing mechanism is used to convey the frame-shaped steel strip toward the conveying mechanism. The conveying mechanism is used to convey the frame-shaped frame and pass through the testing mechanism and the shaping mechanism in sequence. The testing mechanism is used for electrical testing of the frame-shaped steel strip. The shaping mechanism includes a material picking assembly, a transmission assembly and a shaping assembly. The material picking assembly is used to grab the frame-shaped steel strip on the conveying mechanism and place the frame-shaped steel strip on the shaping assembly. The shaping assembly is used to clamp and fix the frame structure of the frame-shaped steel strip to shape the frame-shaped steel strip. The transmission assembly is used to drive the shaping assembly to move.

[0006] A further improvement to the above scheme is that the welding mechanism includes a welding table, a welding drive assembly located above the welding table, and a welding head arranged on the welding drive assembly. The welding head is arranged opposite to the welding table, and the welding drive assembly is used to drive the welding head to move relative to the welding table to weld the steel strip on the welding table.

[0007] A further improvement to the above solution is that a welding positioning groove is provided on the welding table, and the welding positioning groove is used for positioning the steel strip during welding.

[0008] A further improvement to the above scheme is that the pushing mechanism includes a support platform, a pushing drive assembly and a jacking drive assembly, the pushing drive assembly is arranged on the support platform, the jacking drive assembly is arranged at the driving end of the pushing drive assembly, the welding table is arranged on the jacking drive assembly, and the pushing drive assembly is used to drive the jacking drive assembly to drive the welding table to move toward the conveying mechanism.

[0009] A further improvement to the above scheme is that the conveying mechanism includes a transmission chain, a transmission guide roller, a transmission drive assembly and a transmission hook, there are multiple transmission guide rollers, the transmission chain is arranged on the transmission guide roller, the transmission drive assembly is used to drive the transmission chain along the transmission guide roller, there are multiple transmission hooks, and multiple transmission hooks are all arranged on the transmission chain.

[0010] A further improvement to the above scheme is that the welding table is provided with an air avoidance groove, which is opposite to the transmission hook. The pushing drive assembly cooperates with the jacking drive assembly to place the frame-shaped steel belt on the transmission hook, and the air avoidance groove is used to avoid the transmission hook from flying.

[0011] A further improvement to the above solution is that the transmission chain is provided with a sinking position, the testing mechanism includes a test water tank, and the sinking position sinks toward the test water tank to drive the frame-shaped steel belt to sink into the test water tank.

[0012] A further improvement to the above scheme is that it also includes a drying mechanism, which is located behind the testing mechanism. During the transmission process, the transmission chain drives the frame-shaped steel strip through the drying mechanism through the transmission hook; the drying mechanism includes a drying bracket and a drying nozzle arranged on the drying bracket, and the drying nozzle is used to blow air to dry the steel strip during the transmission process.

[0013] A further improvement to the above scheme is that the material picking assembly includes a column, a lifting module arranged on the column, a rotating drive module installed on the lifting module, a material picking drive module arranged on the rotating drive module, and a material picking bracket arranged on the material picking drive module, and the material picking bracket is provided with a material picking suction cup, and the rotating drive module is used to drive the frame-shaped steel belt grasped by the material picking suction cup to rotate, and after rotation, the material picking suction cup grasps the frame-shaped steel belt from the conveying mechanism and places it on the shaping assembly.

[0014] A further improvement to the above scheme is that the transmission assembly is a linear module, and the shaping assembly is arranged on the transmission assembly; the shaping assembly includes a shaping base plate, a shaping groove arranged on the shaping base plate, an inner periphery shaping clamping module and an outer periphery shaping clamping module respectively located at the outer periphery and inner periphery of the shaping groove; the inner periphery shaping clamping module includes an inner clamping drive module and an inner clamping block, and the outer periphery shaping clamping module includes an outer clamping drive module and an outer clamping block, and the inner clamping block and the outer clamping block are relatively formed with an L-shaped right-angle clamping groove to clamp and shape the corners of the frame-shaped steel strip.

[0015] The beneficial effects of the utility model are:

[0016] Compared to existing methods for preparing fixed steel strips for new energy vehicles, the present invention achieves automated processing of the steel strip through the coordinated combination of a welding mechanism, a pushing mechanism, a conveying mechanism, a testing mechanism, and a shaping mechanism. After the frame-shaped steel strip is welded, it undergoes a series of steps, including pushing, conveying, testing, and shaping, ultimately completing the shaping process. This automated assembly line production method significantly improves production efficiency, reduces labor costs, and adapts to the needs of large-scale production. The welding mechanism precisely welds the steel strip, ensuring its quality and stability. Good welding quality is essential for the smooth progress of subsequent processes and directly impacts the product's service life and safety. The testing mechanism performs electrical testing on the frame-shaped steel strip to ensure compliance with relevant standards and requirements. This automated testing function enhances stringent and reliable product quality control, reduces errors caused by human factors, and improves product qualification rate and reliability. The synergistic operation of the retrieving, transmission, and shaping components within the shaping mechanism ensures precise shaping of the frame-shaped steel strip. This design ensures the structural stability and consistency of the frame-shaped steel strip, meets design requirements, and facilitates subsequent assembly and use. This utility model realizes the automation, precision and efficiency of the frame steel strip production process through technical effects such as efficient production, precise welding, automatic testing, precise shaping and flexible adjustment, provides reliable equipment support for new energy battery production, and helps to improve product quality and production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1This is a schematic diagram of the three-dimensional structure of the welding test and shaping device for fixing steel strips of new energy batteries of the present utility model;

[0018] Figure 2 for Figure 1 Schematic diagram of the main structure of the welding test and shaping device for the new energy battery fixing steel strip;

[0019] Figure 3 for Figure 1 A schematic diagram of the three-dimensional structure of a partial structure of the welding test and shaping device for fixing steel strips of new energy batteries;

[0020] Figure 4 for Figure 1 Schematic diagram of the three-dimensional structure of the welding test and shaping device for fixing steel strips of new energy batteries;

[0021] Figure 5 for Figure 1 Schematic diagram of the three-dimensional structure of the welding test and shaping device for fixing steel strips of new energy batteries;

[0022] Figure 6 for Figure 1 A schematic diagram of the three-dimensional structure of a partial structure of the welding test and shaping device for fixing steel strips of new energy batteries;

[0023] Figure 7 for Figure 6 A is an enlarged schematic diagram.

[0024] Explanation of the accompanying symbols: welding mechanism 1, welding table 11, welding positioning groove 111, avoidance groove 112, welding drive assembly 12, welding head 13, pushing mechanism 2, supporting table 21, pushing drive assembly 22, jacking drive assembly 23, conveying mechanism 3, transmission chain 31, sinking position 311, transmission guide roller 32, transmission drive assembly 33, transmission hook 34, testing mechanism 4, test water tank 41, shaping mechanism 5, material taking assembly 51, column 511, lifting Module 512, rotation drive module 513, material picking drive module 514, material picking bracket 515, material picking suction cup 516, transmission assembly 52, shaping assembly 53, shaping substrate 531, shaping groove 532, inner circumference shaping clamping module 533, inner clamping drive module 5331, inner clamping block 5332, outer circumference shaping clamping module 534, outer clamping drive module 5341, outer clamping block 5342, drying mechanism 6, drying bracket 61, drying nozzle 62. DETAILED DESCRIPTION

[0025] To facilitate understanding of the present invention, a more comprehensive description of the present invention will be provided below with reference to the accompanying drawings. The drawings illustrate preferred embodiments of the present invention. However, the present invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to facilitate a more thorough and comprehensive understanding of the disclosure of the present invention.

[0026] It should be noted that when an element is referred to as being “fixed to” another element, it may be directly on the other element or there may be an intermediate element. When an element is referred to as being “connected to” another element, it may be directly connected to the other element or there may be an intermediate element.

[0027] Unless otherwise defined, all technical and scientific terms used herein have the same meanings as those commonly understood by those skilled in the art to which this invention pertains. The terms used herein in the specification of this invention are only for the purpose of describing specific embodiments and are not intended to limit this invention. Figures 1 to 7As shown, in one embodiment of the utility model, a welding test and shaping device for fixing steel strips for new energy batteries is involved, including a welding mechanism 1, a pushing mechanism 2, a conveying mechanism 3, a testing mechanism 4 and a shaping mechanism 5. The welding mechanism 1 is used to weld the two ends of the steel strip to weld the steel strip to form a frame-shaped steel strip. The pushing mechanism 2 is used to convey the frame-shaped steel strip toward the conveying mechanism 3. The conveying mechanism 3 is used to convey the frame-shaped frame and pass through the testing mechanism 4 and the shaping mechanism 5 in sequence. The testing mechanism 4 is used for electrical testing of the frame-shaped steel strip. The shaping mechanism 5 includes a material picking component 51, a transmission component 52 and a shaping component 53. The material picking component 51 is used to grab the frame-shaped steel strip on the conveying mechanism 3 and place the frame-shaped steel strip on the shaping component 53. The shaping component 53 is used to clamp and fix the frame structure of the frame-shaped steel strip to shape the frame-shaped steel strip. The transmission component 52 is used to drive the shaping component 53 to move. This embodiment achieves automated processing of the steel strip through the orderly combination of a welding mechanism 1, a pushing mechanism 2, a conveying mechanism 3, a testing mechanism 4, and a shaping mechanism 5. After the frame-shaped steel strip is welded, it undergoes steps such as pushing, conveying, testing, and shaping, ultimately completing the shaping process. This automated assembly line production method significantly improves production efficiency, reduces labor costs, and adapts to the needs of large-scale production. The welding mechanism 1 accurately welds the steel strip, ensuring the quality and stability of the frame-shaped steel strip. Good welding quality is essential for the smooth progress of subsequent processes and directly impacts the product's service life and safety. The testing mechanism 4 performs electrical testing on the frame-shaped steel strip to ensure compliance with relevant standards and requirements. This automated testing function makes product quality control more rigorous and reliable, reduces errors caused by human factors, and improves product qualification rate and reliability. The material removal assembly 51, transmission assembly 52, and shaping assembly 53 in the shaping mechanism 5 work together to accurately shape the frame-shaped steel strip. This design ensures the structural stability and consistency of the frame-shaped steel strip, meets design requirements, and facilitates subsequent assembly and use. This embodiment realizes the automation, precision and efficiency of the frame steel strip production process through technical effects such as efficient production, precise welding, automatic testing, precise shaping and flexible adjustment, provides reliable equipment support for new energy battery production, and helps to improve product quality and production efficiency.

[0028] The welding mechanism 1 comprises a welding table 11, a welding drive assembly 12 positioned above the table 11, and a welding head 13 mounted on the welding drive assembly 12. The welding head 13 is positioned relative to the table 11, and the welding drive assembly 12 is used to drive the welding head 13 toward the table 11 to weld the steel strip on the table 11. Specifically, the welding table 11 is provided with welding positioning grooves 111, which are used to position the steel strip during welding. In this embodiment, the welding positioning grooves 111 provided on the welding table 11 ensure that the steel strip is precisely positioned during welding, making the welding process more accurate and stable. This design effectively improves welding quality and ensures welding accuracy and stability. The welding drive assembly 12 drives the welding head 13 toward the table 11, making the welding process more flexible and controllable. This flexible welding method can adapt to the welding needs of steel strips of different specifications and shapes, improving the versatility and adaptability of the equipment. Driven by the welding drive assembly 12, the welding head 13 can weld the steel strip quickly and accurately, thereby improving production efficiency. The fast and precise welding process helps reduce production costs and can meet the needs of large-scale production.

[0029] The pushing mechanism 2 includes a support platform 21, a pushing drive assembly 22, and a lifting drive assembly 23. The pushing drive assembly 22 is arranged on the support platform 21, and the lifting drive assembly 23 is arranged at the driving end of the pushing drive assembly 22. The welding platform 11 is arranged on the lifting drive assembly 23. The pushing drive assembly 22 is used to drive the lifting drive assembly 23 to drive the welding platform 11 to move toward the conveying mechanism 3. In this embodiment, the design of the support platform 21 and the lifting drive assembly 23 can ensure that the welding platform 11 maintains a stable position and posture during the movement, thereby achieving accurate pushing of the frame-shaped steel strip. Such a design can effectively improve the accuracy and stability of the pushing, ensuring the smooth progress of subsequent processes. The synergistic effect of the pushing drive assembly 22 and the lifting drive assembly 23 enables the welding platform 11 to move flexibly and smoothly toward the conveying mechanism 3. This flexible pushing method can adapt to frame-shaped steel strips of different specifications and shapes, improving the versatility and adaptability of the equipment. The automated pushing process reduces the influence of human factors and improves the consistency and reliability of the pushing.

[0030] The conveying mechanism 3 includes a transmission chain 31, a transmission guide roller 32, a transmission drive assembly 33, and a transmission hook 34. Multiple transmission guide rollers 32 are provided, and the transmission chain 31 is mounted on the transmission guide rollers 32. The transmission drive assembly 33 is used to drive the transmission chain 31 along the transmission guide rollers 32. Multiple transmission hooks 34 are provided, each of which is mounted on the transmission chain 31. In this embodiment, the design of the transmission guide rollers 32 and transmission chain 31 enables the frame-shaped steel strip to move smoothly along the conveying direction, ensuring stable transmission of the steel strip throughout the production process. This smooth transmission method helps prevent damage or deformation of the steel strip caused by bumps during transportation. Driven by the transmission drive assembly 33, the transmission chain 31 can be quickly and stably transmitted along the transmission guide rollers 32, thereby improving production efficiency. This fast and stable conveying process helps reduce production costs and meets the needs of large-scale production. By providing multiple transmission hooks 34, multiple steel strips can be transported simultaneously, meeting the needs of mass production. Such a design is conducive to improving production efficiency, shortening production cycle, and adapting to the needs of large-scale production.

[0031] The welding table 11 is provided with an air avoidance groove 112, and the air avoidance groove 112 is opposite to the transmission hook 34. The push drive assembly 22 cooperates with the jacking drive assembly 23 to place the frame-shaped steel strip on the transmission hook 34. The air avoidance groove 112 is used to avoid the transmission hook 34. In this embodiment, the design of the air avoidance groove 112 ensures that the transmission hook 34 can pass smoothly when placing the frame-shaped steel strip, avoids jamming and resistance during the transmission process, and ensures the smooth transmission of the frame-shaped steel strip. This helps to improve production efficiency and can avoid product damage or quality problems caused by poor transmission. Under the cooperation of the push drive assembly 22 and the jacking drive assembly 23, the frame-shaped steel strip can be firmly placed on the transmission hook 34. Such a design ensures that the frame-shaped steel strip is firmly fixed during the transmission process and prevents safety hazards caused by shaking or loosening.

[0032] The transmission chain 31 is provided with a sinking position 311. The testing mechanism 4 includes a test water tank 41. The sinking position 311 sinks toward the test water tank 41 to drive the frame-shaped steel strip into the test water tank 41. Specifically, it also includes a drying mechanism 6. The drying mechanism 6 is located behind the testing mechanism 4. During the transmission process, the transmission chain 31 drives the frame-shaped steel strip through the drying mechanism 6 via the transmission hook 34; the drying mechanism 6 includes a drying bracket 61 and a drying nozzle 62 provided on the drying bracket 61. The drying nozzle 62 is used to blow dry the steel strip during the transmission process. In this embodiment, the sinking position 311 provided by the transmission chain 31 allows the frame-shaped steel strip to be brought into the test water tank 41, thereby realizing automated testing of the welded steel strip. This design improves the efficiency and accuracy of the test and ensures product quality. The drying mechanism 6 is located behind the testing mechanism 4 and drives the steel strip through the drying mechanism 6 via the transmission chain 31. The drying nozzle 62 blows air to dry the steel strip during the transmission process, effectively removing moisture, ensuring the requirements of subsequent processes for the steel strip and ensuring the quality stability of the product.

[0033] The material picking assembly 51 includes a column 511, a lifting module 512 disposed on the column 511, a rotary drive module 513 mounted on the lifting module 512, a material picking drive module 514 disposed on the rotary drive module 513, and a material picking bracket 515 disposed on the material picking drive module 514. The material picking bracket 515 is provided with a material picking suction cup 516. The rotary drive module 513 is used to drive the frame-shaped steel strip grasped by the material picking suction cup 516 to rotate. After rotation, the material picking suction cup 516 grasps the frame-shaped steel strip from the conveying mechanism 3 and places it on the shaping assembly 53. In this embodiment, through the cooperation of the lifting module 512 and the rotary drive module 513, the material picking suction cup 516 disposed on the material picking bracket 515 can achieve precise grasping of the frame-shaped steel strip. This design ensures the accuracy and stability of the material picking process and avoids production problems caused by inaccurate material picking. The rotary drive module 513 drives the pick-up suction cup 516 to grab the frame-shaped steel strip from the conveyor mechanism 3 and place it on the shaping assembly 53, thus achieving automated material removal, improving production efficiency, and shortening the production cycle. The design of the pick-up drive module 514 allows the pick-up suction cup 516 to rotate, thus achieving multi-directional operation of the frame-shaped steel strip, accommodating products of different shapes and specifications, and improving the versatility and adaptability of the equipment.

[0034] The transmission component 52 is a linear module, and the shaping component 53 is arranged on the transmission component 52; the shaping component 53 includes a shaping base plate 531, a shaping groove 532 arranged on the shaping base plate 531, an inner periphery shaping clamping module 533 and an outer periphery shaping clamping module 534 respectively located at the outer periphery and inner periphery of the shaping groove 532; the inner periphery shaping clamping module 533 includes an inner clamping drive module 5331 and an inner clamping block 5332, and the outer periphery shaping clamping module 534 includes an outer clamping drive module 5341 and an outer clamping block 5342, and the inner clamping block 5332 and the outer clamping block 5342 are opposite to each other to form an L-shaped right-angle clamping groove to clamp and shape the corners of the frame-shaped steel strip. In this embodiment, through the design of the inner circumference shaping clamping module 533 and the outer circumference shaping clamping module 534, the inner clamping block 5332 and the outer clamping block 5342 relatively form an L-shaped right-angle clamping groove, which can clamp and shape the corners of the frame-shaped steel strip. Such a design ensures the accuracy and stability of the frame-shaped steel strip during the shaping process, and avoids production problems caused by inaccurate shaping. The shaping groove 532 set on the shaping substrate 531 can be adjusted according to the shape and size of the product, thereby realizing the shaping requirements for products of different specifications and improving the versatility and adaptability of the equipment. Under the action of the inner clamping drive module 5331 and the outer clamping drive module 5341, the frame-shaped steel strip can be automatically shaped, reducing the need for manual operation and improving the degree of automation and production efficiency of the production line.

[0035] The above embodiments merely illustrate several implementations of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the concept of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.

Claims

1. A welding test and shaping device for fixing steel strips of new energy batteries, characterized by: It includes a welding mechanism, a pushing mechanism, a conveying mechanism, a testing mechanism and a shaping mechanism. The welding mechanism is used to weld the two ends of the steel strip to form a frame-shaped steel strip. The pushing mechanism is used to convey the frame-shaped steel strip toward the conveying mechanism. The conveying mechanism is used to convey the frame frame and pass it through the testing mechanism and the shaping mechanism in sequence. The testing mechanism is used for electrical testing of the frame-shaped steel strip. The shaping mechanism includes a material picking assembly, a transmission assembly and a shaping assembly. The material picking assembly is used to grab the frame-shaped steel strip on the conveying mechanism and place the frame-shaped steel strip on the shaping assembly. The shaping assembly is used to clamp and fix the frame structure of the frame-shaped steel strip to shape the frame-shaped steel strip. The transmission assembly is used to drive the shaping assembly to move.

2. The welding test and shaping device for the new energy battery fixing steel strip according to claim 1 is characterized in that: The welding mechanism includes a welding table, a welding drive assembly located above the welding table, and a welding head arranged on the welding drive assembly. The welding head is arranged opposite to the welding table. The welding drive assembly is used to drive the welding head to move relative to the welding table to weld the steel strip on the welding table.

3. The welding test and shaping device for the new energy battery fixing steel strip according to claim 2 is characterized in that: The welding table is provided with a welding positioning groove, and the welding positioning groove is used for positioning the steel strip during welding.

4. The welding test and shaping device for the new energy battery fixing steel strip according to claim 2 is characterized in that: The pushing mechanism includes a support platform, a pushing drive assembly and a jacking drive assembly. The pushing drive assembly is arranged on the support platform, the jacking drive assembly is arranged on the driving end of the pushing drive assembly, and the welding table is arranged on the jacking drive assembly. The pushing drive assembly is used to drive the jacking drive assembly to drive the welding table to move toward the conveying mechanism.

5. The welding test and shaping device for the new energy battery fixing steel strip according to claim 4 is characterized in that: The conveying mechanism includes a transmission chain, a transmission guide roller, a transmission drive assembly and a transmission hook. There are multiple transmission guide rollers, and the transmission chain is arranged on the transmission guide roller. The transmission drive assembly is used to drive the transmission chain along the transmission guide roller. There are multiple transmission hooks, and multiple transmission hooks are all arranged on the transmission chain.

6. The welding test and shaping device for the new energy battery fixing steel strip according to claim 5 is characterized in that: The welding table is provided with an air avoidance groove, which is opposite to the transmission hook. The pushing drive assembly cooperates with the jacking drive assembly to place the frame-shaped steel belt on the transmission hook. The air avoidance groove is used for the transmission hook to avoid air.

7. The welding test and shaping device for the new energy battery fixing steel strip according to claim 5 is characterized in that: The transmission chain is provided with a sinking position, and the testing mechanism includes a testing water tank. The sinking position sinks toward the testing water tank to drive the frame-shaped steel belt to sink into the testing water tank.

8. The welding test and shaping device for the new energy battery fixing steel strip according to claim 5 is characterized in that: It also includes a drying mechanism, which is located behind the testing mechanism. During the transmission process, the transmission chain drives the frame-shaped steel strip through the drying mechanism through the transmission hook; the drying mechanism includes a drying bracket and a drying nozzle arranged on the drying bracket, and the drying nozzle is used to blow air to dry the steel strip during the transmission process.

9. The welding test and shaping device for the new energy battery fixing steel strip according to claim 1 is characterized in that: The material picking assembly includes a column, a lifting module arranged on the column, a rotating drive module installed on the lifting module, a material picking drive module arranged on the rotating drive module, and a material picking bracket arranged on the material picking drive module. A material picking suction cup is arranged on the material picking bracket. The rotating drive module is used to drive the frame-shaped steel belt grasped by the material picking suction cup to rotate. After rotation, the material picking suction cup grasps the frame-shaped steel belt from the conveying mechanism and places it on the shaping assembly.

10. The welding test and shaping device for the new energy battery fixing steel strip according to claim 1 is characterized in that: The transmission component is a linear module, and the shaping component is arranged on the transmission component; the shaping component includes a shaping base plate, a shaping groove arranged on the shaping base plate, an inner periphery shaping clamping module and an outer periphery shaping clamping module respectively located at the outer periphery and inner periphery of the shaping groove; the inner periphery shaping clamping module includes an inner clamping drive module and an inner clamping block, and the outer periphery shaping clamping module includes an outer clamping drive module and an outer clamping block, and the inner clamping block and the outer clamping block are relatively formed with an L-shaped right-angle clamping groove to clamp and shape the corners of the frame-shaped steel strip.