A composite testing platform for energy storage device maintenance

By designing a composite testing platform, highly efficient automation of energy storage battery testing was achieved, solving the problems of low efficiency and frequent handling of manual testing, and improving production efficiency and stability.

CN116276834BActive Publication Date: 2025-10-31JIANGSU WEITENG ECOLOGICAL TECH DEV CO LTD
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Patent Information

Application Number
CN202310251062.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-15
Publication Date
2025-10-31
Estimated Expiration
2043-03-15

AI Technical Summary

Technical Problem

In the current energy storage battery production process, manual inspection requires multiple steps and frequent handling, resulting in low inspection efficiency and extended production cycles.

Method used

Design a composite testing platform that uses a chute and a multi-layer sliding work platform structure to achieve flexible adjustment of the platform area and number, integrates a storage box for testing tools, simplifies the operation process, and reduces manual handling.

Benefits of technology

It improved the efficiency and stability of testing, shortened the production cycle, simplified the testing process, and reduced the need for manual handling.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a composite testing platform for the maintenance of energy storage devices. It includes a fifth working platform with a sliding groove on its upper surface. A fourth working platform is mounted at both ends of the sliding groove. A third working platform is mounted at both ends of the upper surface of each fourth working platform. Support plates are provided on the side walls of both ends of the fifth working platform. Through openings are provided on the side walls of the support plates to allow the fourth working platforms to slide through. A second working platform is mounted on the upper surface of each support plate, and a first working platform is slidably connected to the upper surface of each second working platform. This device uses a sliding groove with multiple working platforms, resulting in a simple structure and convenient operation. During use, the number and area of ​​the working platforms can be increased or decreased in real time as needed, leading to a higher level of intelligence and convenient structural adjustment. It occupies a small area when stored and can complete all testing work on a single working platform, thus accelerating the efficiency and speed of the entire testing process.
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Description

Technical Field

[0001] This invention relates to a composite testing platform for the maintenance of energy storage devices. Background Technology

[0002] A battery is a device that converts chemical energy into electrical energy. It contains an electrolyte solution and metal electrodes, forming a cup, tank, or other container or composite container that generates an electric current. It has a positive and a negative electrode. With technological advancements, the term "battery" now generally refers to any small device capable of generating electrical energy, such as a solar cell. The main performance parameters of a battery include electromotive force, capacity, specific energy, and resistance. Using batteries as an energy source provides a stable voltage, stable current, long-term stable power supply, and minimal susceptibility to external influences. Batteries are simple in structure, portable, easy to charge and discharge, unaffected by external climate and temperature, and offer stable and reliable performance, playing a significant role in various aspects of modern life. Energy storage primarily refers to the storage of electrical energy.

[0003] In the daily production of energy storage batteries, it is necessary to test the performance of the batteries themselves to identify and eliminate defects, thereby reducing the defect rate. However, large-scale production requires multiple testing steps, each requiring different testing equipment and personnel. A streamlined operation is needed to accelerate testing efficiency. Existing manual testing often wastes a significant amount of time on manual handling and cannot efficiently complete all testing within a small area, undoubtedly increasing the product's production cycle. Therefore, a composite testing platform for the maintenance of energy storage devices has emerged. Summary of the Invention

[0004] The purpose of this invention is to overcome the shortcomings of the prior art and provide a composite testing platform for the maintenance of energy storage devices.

[0005] A composite testing platform for the maintenance of energy storage devices includes a fifth working platform. The fifth working platform has a groove on its upper surface, with a fourth working platform installed at each end of the groove. A third working platform is installed at each end of the upper surface of each fourth working platform. Support plates are provided on the sidewalls of both ends of the fifth working platform. Through openings are provided on the sidewalls of the support plates for the fourth working platforms to slide through. A second working platform is provided on the upper surface of each support plate, and a first working platform is slidably connected to the upper surface of each second working platform.

[0006] As a further improvement, the fourth working platform slides back and forth along the slide groove. After the fourth working platform is pushed through the through opening, three working platforms are formed, namely the slide groove and two fourth working platforms. The structure is simple. As the fourth working platform moves, the number of working platforms can be increased according to actual needs, which improves the practicality of the entire test platform. It has strong storage capacity. When the fourth working platform is stored, it will cover the slide groove. Two fourth working platforms can be spliced ​​together to form a large working platform or two fourth working platforms.

[0007] As a further improvement, the third working platform slides back and forth along the fourth working platform, and the first working platform slides back and forth along the second working platform. When the third working platform is opened, two third working platforms and one fourth working platform are formed, and the staff can operate at both ends respectively, which is highly practical. When the third working platform is retracted, it can be spliced ​​to form a large third working platform or two third working platforms. The entire inspection work can be completed on one workbench, eliminating the need for staff to carry the equipment over long distances. The cooperation between staff during the inspection process is convenient, which effectively improves work efficiency.

[0008] As a further improvement, the adjacent sidewalls of the fourth working platform at both ends of the slide are provided with multiple first limiting blocks. The width of the fourth working platform is smaller than the width of the through opening. When the fourth working platform slides to the limit position, the first limiting block of the sidewall abuts against the support plate to prevent the fourth working platform from sliding too much and causing it to fall.

[0009] As a further improvement, multiple second limiting blocks are provided on the lower surfaces of adjacent ends of the third working platforms at both ends of the fourth working platform. The width of the two third working platforms after splicing is less than the width of the through opening. When the third working platform slides to the limit position, the second limiting block abuts against the side wall of the slide groove to avoid the third working platform from sliding too much and causing it to fall, thereby improving the stability of the entire platform.

[0010] As a further improvement, the lower surface of the fifth working platform is provided with a storage box, which is used to store the testing tools required for testing the energy storage device, making them easy to retrieve and use.

[0011] As a further improvement, the storage box is provided with observation windows on both sides of the side wall, and side baffles are provided on both sides of the side wall. The side baffles are curved. The special structural design makes the storage box have openings on both sides of the side wall for taking out, so that it can be taken out in both directions, and the operation and use are simple and convenient.

[0012] As a further improvement, the upper surfaces of the first, second, third, fourth, and fifth working platforms are all embedded with anti-slip adsorption holes. These anti-slip adsorption holes serve to stabilize the energy storage device and facilitate testing by staff.

[0013] Beneficial effects:

[0014] This device uses a chute with a working platform, featuring a simple structure and convenient operation. During use, the number and area of ​​the working platforms can be increased or decreased in real time as needed, resulting in a higher level of intelligence and convenient structural adjustment. It occupies a small area when stored and can complete all testing work on a single working platform, accelerating the efficiency and speed of the entire testing process. This solves the shortcomings of existing technologies where mass production requires multiple testing steps, each requiring different testing devices and personnel to form a streamlined operation, necessitating manual handling and making it impossible to complete all testing work smoothly within a small area. This effectively shortens the product production cycle. Attached Figure Description

[0015] Figure 1 This is a three-dimensional structural diagram of the composite testing platform;

[0016] Figure 2 This is a schematic diagram of the end face structure of the testing platform;

[0017] Figure 3 This is a side view of the test platform.

[0018] Figure 4 This is a schematic diagram of the cross-sectional structure of the test platform;

[0019] Figure 5 This is a schematic diagram of the overall structure of the testing platform;

[0020] Figure 6 This is a top-view structural diagram of the test platform;

[0021] 1. Storage box 2. Fifth working platform 3. Slide 4. Fourth working platform 5. Third working platform 6. First working platform 7. Support plate 8. Second limiting block 9. First limiting block 10. Observation window 11. Through opening. Detailed Implementation

[0022] To enhance understanding of the present invention, the present invention will be further described in detail below with reference to embodiments and accompanying drawings. These embodiments are only used to explain the present invention and do not constitute a limitation on the scope of protection of the present invention.

[0023] like Figures 1-6 The following is a specific embodiment of the present invention: a composite testing platform for the maintenance of energy storage devices, including a storage tank 1, a fifth working platform 2, a chute 3, a fourth working platform 4, a third working platform 5, a first working platform 6, a support plate 7, a second limiting block 8, a first limiting block 9, an observation window 10, and a through opening 11.

[0024] A composite testing platform for the maintenance of energy storage devices includes a fifth working platform 2. The fifth working platform 2 has a sliding groove 3 on its upper surface, with a fourth working platform 4 installed at both ends of the sliding groove 3. A third working platform 5 is installed at both ends of the upper surface of each fourth working platform 4. Support plates 7 are provided on the side walls at both ends of the fifth working platform 2. Through openings 11 are provided on the side walls of the support plates 7 for the fourth working platforms 4 to slide through. A second working platform is provided on the upper surface of each support plate 7, and a first working platform 6 is slidably connected to the upper surface of each second working platform.

[0025] The fourth working platform 4 slides back and forth along the slide groove 3. After the fourth working platform 4 passes through the through opening 11, it forms three working platforms, namely the slide groove 3 and two fourth working platforms 4. The structure is simple. As the fourth working platform 4 moves, the number of working platforms can be increased according to actual needs, which improves the practicality of the entire test platform. It has strong storage capacity. When the fourth working platform 4 is stored, it will cover the slide groove 3. Two fourth working platforms 4 can be spliced ​​together to form a large working platform or two fourth working platforms 4.

[0026] The third working platform 5 slides back and forth along the fourth working platform 4, and the first working platform 6 slides back and forth along the second working platform. When the third working platform 5 is opened, two third working platforms 5 and one fourth working platform 4 are formed. The staff can operate at both ends respectively, which is highly practical. When the third working platform 5 is retracted, it can be spliced ​​to form a large third working platform 5 or two third working platforms 5. The entire inspection work can be completed on one workbench without the need for staff to carry it over long distances. The cooperation between staff during the inspection process is convenient and effectively improves work efficiency.

[0027] Multiple first limiting blocks 9 are provided on the adjacent end sidewalls of the fourth working platform 4 at both ends of the slide 3. The width of the fourth working platform 4 is smaller than the width of the through opening 11. When the fourth working platform 4 slides to the limit position, the first limiting block 9 on the sidewall abuts against the support plate 7 to prevent the fourth working platform 4 from sliding too much and causing it to fall.

[0028] Multiple second limiting blocks 8 are provided on the lower surfaces of adjacent ends of the third working platforms 5 at both ends of the fourth working platform 4. The width of the two third working platforms 5 after splicing is less than the width of the through opening 11. When the third working platform 5 slides to the limit position, the second limiting block 8 abuts against the side wall of the slide groove 3 to avoid the third working platform 5 from sliding too much and causing it to fall, thereby improving the stability of the entire platform.

[0029] The lower surface of the fifth working platform 2 is equipped with a storage box 1, which is used to store the testing tools required for testing the energy storage device. It is convenient to take out and use.

[0030] The storage box 1 has observation windows 10 on both side walls. The storage box 1 also has side baffles on both side walls. The side baffles are curved. The special structural design makes the storage box 1 have openings on both side walls for taking out, so that it can be taken out in both directions. The operation and use are simple and convenient.

[0031] The upper surfaces of the first working platform 6, the second working platform, the third working platform 5, the fourth working platform 4, and the fifth working platform 2 are all embedded with anti-slip adsorption holes. The anti-slip adsorption holes serve to stabilize the energy storage device and facilitate the testing by the staff.

[0032] When in use, the number of work platforms can be increased or decreased as needed, or the splicing area of ​​the work platforms can be increased or decreased as needed. The entire work platform is simple to store, splice, and assemble. Two third work platforms can be spliced ​​together to form a large work platform and cover the fourth work platform. When the fourth work platform is spliced ​​together, it will form a large work platform and cover the slide. The first work platform can also be spliced ​​together to form a large work platform. Each work platform can be adjusted individually as needed, and the number of work platforms can also be adjusted arbitrarily as needed. The structure is simple and easy to use.

[0033] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

[0034] The above description is merely a preferred embodiment of the present invention, and therefore should not be construed as limiting the scope of the present invention. All equivalent changes and modifications made in accordance with the scope of the patent and the contents of the specification should still fall within the scope of the present invention.

[0035] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A composite testing platform for the maintenance of energy storage devices, comprising a fifth working platform, characterized in that, The upper surface of the fifth working platform is provided with a sliding groove, and a fourth working platform is installed at both ends of the sliding groove. A third working platform is installed at both ends of the upper surface of each fourth working platform. Support plates are provided on both side walls of the fifth working platform. Through openings are provided on the side walls of the support plates for the fourth working platforms to slide through. A second working platform is provided on the upper surface of the support plates. A first working platform is slidably connected to the upper surface of the second working platform. The fourth working platform slides back and forth along the slide groove; The third working platform slides back and forth along the fourth working platform, and the first working platform slides back and forth along the second working platform; Multiple first limiting blocks are provided on the adjacent end sidewalls of the fourth working platform at both ends of the chute, and the width of the fourth working platform is smaller than the width of the through opening. Multiple second limiting blocks are provided on the lower surfaces of adjacent ends of the third working platforms at both ends of the fourth working platform, and the width of the two third working platforms after splicing is less than the width of the through opening.

2. The composite testing platform for energy storage device maintenance according to claim 1, characterized in that, The lower surface of the fifth working platform is equipped with a storage box.

3. The composite testing platform for energy storage device maintenance according to claim 2, characterized in that, The storage box has observation windows on both ends of its side walls, and side baffles on both ends of its side walls, which are curved.

4. The composite testing platform for energy storage device maintenance according to claim 1, characterized in that, The upper surfaces of the first, second, third, fourth, and fifth working platforms are all embedded with anti-slip adsorption holes.

Citation Information

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