Automatic material moving device for battery detection

By introducing a first adjustment platform and a second adjustment platform into the battery testing device, combined with the design of a servo motor and a lead screw, the problem of insufficient battery fixation and insertion stability is solved, realizing flexible adjustment and stable clamping of the battery rack, and improving the stability and applicability of the testing.

CN223480042UActive Publication Date: 2025-10-28SUZHOU FUSHENGDA INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202423016092.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-06
Publication Date
2025-10-28
Estimated Expiration
2034-12-06

AI Technical Summary

Technical Problem

Existing automatic material moving devices for battery testing have deficiencies in battery fixation and insertion stability, and cannot be properly adjusted according to battery size, affecting the stability and applicability of testing.

Method used

The structure includes a first adjustment platform, a second adjustment platform, a servo motor, and a lead screw. By connecting the damping slider to the guide rail, and cooperating with the servo motor to drive the lead screw to rotate, the battery rack can be flexibly adjusted and stably clamped, ensuring flexible docking between the battery and the detection device.

Benefits of technology

This design achieves flexible adjustment and stability of the battery rack, ensuring the stability and applicability of the battery during the testing process, and improving the effectiveness and efficiency of the testing.

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Abstract

The utility model discloses an automatic material moving device for battery detection, which relates to the technical field of battery detection and comprises a first adjusting table and battery racks, a second adjusting table is horizontally mounted at the top of the first adjusting table, a moving table is horizontally mounted at the top of the second adjusting table, and the battery racks are symmetrically mounted on two sides of the top of the moving table. According to the automatic material moving device for battery detection, the battery racks are symmetrically installed on the top of the moving table in the left-right direction, by means of the structural arrangement between the battery racks, proper structural adjustment can be conducted within a certain range according to the sizes of batteries, multiple batteries can be placed in batches at the same time, material moving operation is conducted on the batteries, and therefore the working efficiency is guaranteed; in addition, under the combined operation of the first adjusting table and the second adjusting table, movement adjustment in the X-axis direction and the Y-axis direction can be provided in the horizontal direction, so that the flexibility of the whole device structure can be guaranteed, and enough operation movement requirements are met.
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Description

Technical Field

[0001] This utility model relates to the field of battery testing technology, specifically to an automatic material transfer device for battery testing. Background Technology

[0002] Battery testing refers to the monitoring and testing of various parameters of a battery to ensure its safety, stability, and reliability. The characteristics of battery testing include safety, accuracy, and real-time performance.

[0003] An automatic transfer device for battery testing is an automated device used in the battery testing process. It is mainly used to automatically transfer the batteries to be tested onto the testing device and remove them after the testing is completed.

[0004] For example, utility model application No. 202010043699.5 discloses a position adjustment device and an automated appearance inspection device for power batteries. The moving device moves the power battery to various appearance inspection devices for separate appearance inspections; the unloading device unloads the power battery after the appearance inspections of each side are completed. The automated appearance inspection device for power batteries is used to automatically complete the appearance inspection of each side of the power battery in one go. However, similar to the adjustment device in the aforementioned document, the battery insertion and fixing structure uses an integrated structure, which limits the fixation and insertion stability of the battery and makes it impossible to make appropriate adjustments according to the battery size.

[0005] Therefore, in view of this, we have studied and improved the existing structure and its shortcomings, and proposed an automatic material transfer device for battery testing. Utility Model Content

[0006] The purpose of this invention is to provide an automatic transfer device for battery testing, so as to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, this utility model provides the following technical solution: an automatic transfer device for battery testing, comprising a first adjustment platform and a battery rack, a second adjustment platform being horizontally installed on the top of the first adjustment platform, and a moving platform being horizontally installed on the top of the second adjustment platform, the battery rack being symmetrically installed on both sides of the top of the moving platform, the battery rack comprising a main frame, a partition, an anti-slip pad, a base plate, and a damping slider, the partition being vertically installed inside the main frame, the side of the partition being covered with an anti-slip pad, the base plate being installed on the inner bottom of the main frame, and the damping slider being installed on the outer bottom of the main frame.

[0008] Furthermore, the first adjustment platform includes a main platform body, a first slide rail, a first servo motor, and a first lead screw. The first slide rail is symmetrically installed at both ends of the top of the main platform body, and the first servo motor is horizontally installed in the middle of a section of the top of the main platform body. Moreover, the power output end of the first servo motor is connected to the first lead screw via a coupling.

[0009] Furthermore, the second adjustment platform includes a secondary platform body, a second servo motor, a second lead screw, and a second slide rail. The second servo motor is horizontally mounted on one end of the top of the secondary platform body, and the power output end of the second servo motor is mounted on the second lead screw through a coupling. The second slide rail is horizontally mounted on both sides of the second lead screw.

[0010] Furthermore, the second adjustment platform also includes a guide block and a movable slider. The guide block is installed in the middle of the bottom of the sub-platform body, and the movable sliders are symmetrically installed on the left and right sides of the bottom of the sub-platform body.

[0011] Furthermore, the movable slider is connected to the first slide rail via a keyway, and the first lead screw is connected to the guide block via a thread.

[0012] Furthermore, the mobile platform includes a stabilizing base, guide rails, guide posts, and support sliders. The top of the stabilizing base is symmetrically and horizontally equipped with guide rails, and the bottom of the stabilizing base is equipped with guide posts in the middle. Additionally, the bottom of the stabilizing base is symmetrically equipped with support sliders.

[0013] Furthermore, the guide rail is installed on the top surface of the stabilizer using a recessed structure, and the guide rail and the damping slider are connected by a keyway, the support slider and the second slide rail are connected by a keyway, and the guide post and the second lead screw are connected by a thread.

[0014] Furthermore, the partitions are arranged at equal intervals on the inner side of the main frame, and the main frame and the partition are integrated into one structure. The bottom plates are arranged at equal intervals on the inner bottom of the main frame, and the damping slider is fixedly connected to the main frame.

[0015] This utility model provides an automatic material transfer device for battery testing, which has the following advantages:

[0016] 1. In this utility model, the battery rack is connected to the guide rail via a keyway structure between the damping slider at the bottom of the main frame and the guide rail. Combined with the damping property between the damping slider and the guide rail surface, the entire battery rack can be adjusted along the guide rail surface while maintaining structural stability after adjustment, preventing unnecessary structural loosening. Using this structure, the symmetrically installed battery racks can be flexibly adjusted within a certain range to accommodate the size of the batteries being tested, ensuring the applicability of the device structure. Furthermore, the inclusion of partitions and anti-slip pads allows for batch placement of battery materials while ensuring the stability of the placed batteries, thus guaranteeing the effectiveness of subsequent testing.

[0017] 2. This utility model, by installing a first adjustment platform and a second adjustment platform at the bottom of the moving stage, and using a second servo motor to drive a second lead screw connected thereto to rotate horizontally, allows the moving stage, along with the battery rack, to be translated horizontally along the surface of the second lead screw and the second slide rail. Meanwhile, the first servo motor drives the first lead screw connected thereto, allowing the second adjustment platform, with the moving stage and battery rack mounted on top, to be translated horizontally along the surface of the first slide rail and the first lead screw. Using this structure, the flexibility of the entire device can be maximized, ensuring that the batteries on the battery rack can be flexibly connected to the testing device, thus facilitating subsequent battery testing. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the main body of an automatic material transfer device for battery testing according to the present invention;

[0019] Figure 2 This is a schematic diagram of the second adjustment platform structure of an automatic material transfer device for battery testing according to the present invention;

[0020] Figure 3 This is a three-dimensional structural diagram of the moving platform of an automatic material transfer device for battery testing according to this utility model;

[0021] Figure 4 This is a three-dimensional structural diagram of the battery rack of an automatic transfer device for battery testing according to this utility model.

[0022] In the diagram: 1. First adjustment platform; 101. Main platform body; 102. First slide rail; 103. First servo motor; 104. First lead screw; 2. Second adjustment platform; 201. Secondary platform body; 202. Second servo motor; 203. Second lead screw; 204. Second slide rail; 205. Guide block; 206. Moving slider; 3. Moving platform; 301. Stabilizer; 302. Guide rail; 303. Guide post; 304. Support slider; 4. Battery rack; 401. Main frame body; 402. Partition plate; 403. Anti-slip pad; 404. Base plate; 405. Damping slider. Detailed Implementation

[0023] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0024] like Figures 1 to 4 As shown, an automatic transfer device for battery testing includes a first adjusting platform 1 and a battery rack 4. A second adjusting platform 2 is horizontally mounted on the top of the first adjusting platform 1, and a moving platform 3 is horizontally mounted on the top of the second adjusting platform 2. The battery rack 4 is symmetrically mounted on both sides of the top of the moving platform 3. The battery rack 4 includes a main frame 401, a partition 402, an anti-slip pad 403, a base plate 404, and a damping slider 405. The partition 402 is vertically mounted inside the main frame 401, and the partition 402... The sides of the moving platform 2 are covered with anti-slip pads 403, and a base plate 404 is installed on the inner bottom of the main frame 401. A damping slider 405 is installed on the outer bottom of the main frame 401. Partition plates 402 are evenly arranged on the inner side of the main frame 401, and the main frame 401 and the base plate 404 are evenly arranged on the inner bottom of the main frame 401. The damping slider 405 is fixedly connected to the main frame 401. The moving platform 3 includes a stabilizing device. The system comprises a base 301, a guide rail 302, a guide post 303, and a support slider 304. The top of the stable base 301 is symmetrically and horizontally equipped with the guide rail 302, and the bottom of the stable base 301 is equipped with the guide post 303 in the middle. The bottom of the stable base 301 is also symmetrically equipped with the support slider 304. The guide rail 302 is installed on the top surface of the stable base 301 with a recessed structure, and the guide rail 302 is connected to the damping slider 405 by a keyway. The support slider 304 is connected to the second slide rail 204 by a keyway, and the guide post 303 is connected to the second lead screw 203 by a thread. The battery rack 4 is connected to the guide rail 302 by the keyway structure between the damping slider 405 at the bottom of the main frame 401. At the same time, the damping property between the damping slider 405 and the surface of the guide rail 302 allows the entire battery rack 4 to move and adjust along the surface of the guide rail 302 while maintaining structural stability after adjustment, preventing unnecessary structural loosening.

[0025] like Figures 1 to 4 As shown, the first adjustment platform 1 includes a main platform 101, a first slide rail 102, a first servo motor 103, and a first lead screw 104. The first slide rails 102 are symmetrically mounted at both ends of the top of the main platform 101, and the first servo motor 103 is horizontally mounted in the middle of a section of the top of the main platform 101. The power output end of the first servo motor 103 is connected to the first lead screw 104 via a coupling. The second adjustment platform 2 includes a secondary platform 201, a second servo motor 202, a second lead screw 203, and a second slide rail 204. The second servo motor 202 is horizontally mounted at one end of the top of the secondary platform 201, and the power output end of the second servo motor 202 is connected to the second lead screw 203 via a coupling. The second slide rails 204 are horizontally mounted on both sides of the second lead screw 203. The second adjustment platform 2 also includes a guide block 205 and... The movable slider 206 is mounted on the bottom center of the auxiliary platform 201, and the movable slider 206 is symmetrically mounted on the bottom left and right sides of the auxiliary platform 201. The movable slider 206 is connected to the first slide rail 102 by a keyway, and the first lead screw 104 is connected to the guide block 205 by a thread. The second servo motor 202 drives the second lead screw 203 connected to it to rotate horizontally, so that the movable platform 3 together with the battery rack 4 can be translated and adjusted in the horizontal X-axis direction along the surface of the second lead screw 203 and the second slide rail 204. The first servo motor 103 drives the first lead screw 104 connected to it, so that the second adjustment platform 2, on which the movable platform 3 and the battery rack 4 are mounted at the top, can be translated in the horizontal Y-axis direction along the surface of the first slide rail 102 and the first lead screw 104.

[0026] In summary, as Figures 1 to 4 As shown, the automatic transfer device for battery testing, when in use, firstly, the battery rack 4 on the top of the moving table 3 is moved left and right by the structural connection between the damping slider 405 at the bottom of the main frame 401 and the guide rail 302, thereby clamping the battery between the partitions 402 on both sides which are provided with anti-slip pads 403.

[0027] Then, the first adjustment platform 1 and the second adjustment platform 2 at the bottom of the moving platform 3 are started. The first servo motor 103 drives the first lead screw 104 connected to it to rotate horizontally. Then, the second adjustment platform 2 is driven to move horizontally along the surface of the first slide rail 102 and the first lead screw 104 on the main platform 101 using the guide block 205 and the moving slider 206 at the bottom of the auxiliary platform 201. Then, the second servo motor 202 on the auxiliary platform 201 is started to drive the second lead screw 203 connected to it to rotate horizontally. This drives the moving platform 3 to move horizontally along the surface of the second lead screw 203 and the second slide rail 204 on the auxiliary platform 201 using the guide post 303 and the support slider 304 at the bottom of the stabilizer 301. This moves the battery rack 4 holding the battery to the designated position for subsequent battery testing.

[0028] The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention and to enable those skilled in the art to understand the present invention and design various embodiments with various modifications suitable for specific applications.

Claims

1. An automatic transfer device for battery testing, comprising a first adjusting table (1) and a battery rack (4), characterized in that: A second adjustment platform (2) is horizontally installed on the top of the first adjustment platform (1), and a moving platform (3) is horizontally installed on the top of the second adjustment platform (2). The battery rack (4) is symmetrically installed on both sides of the top of the moving platform (3). The battery rack (4) includes a main frame (401), a partition (402), an anti-slip pad (403), a base plate (404), and a damping slider (405). The partition (402) is vertically installed inside the main frame (401), and the side of the partition (402) is covered with an anti-slip pad (403). The base plate (404) is installed on the bottom inner side of the main frame (401), and the damping slider (405) is installed on the bottom outer side of the main frame (401).

2. The automatic transfer device for battery testing according to claim 1, characterized in that, The first adjustment platform (1) includes a main platform body (101), a first slide rail (102), a first servo motor (103) and a first lead screw (104). The first slide rail (102) is symmetrically installed at both ends of the top of the main platform body (101), and the first servo motor (103) is horizontally installed in the middle of a section of the top of the main platform body (101). The power output end of the first servo motor (103) is connected to the first lead screw (104) via a coupling.

3. The automatic transfer device for battery testing according to claim 2, characterized in that, The second adjustment platform (2) includes a secondary platform body (201), a second servo motor (202), a second lead screw (203), and a second slide rail (204). The second servo motor (202) is horizontally mounted on one end of the top of the secondary platform body (201), and the second lead screw (203) is mounted on the power output end of the second servo motor (202) through a coupling. The second slide rail (204) is horizontally mounted on both sides of the second lead screw (203).

4. The automatic transfer device for battery testing according to claim 3, characterized in that, The second adjustment platform (2) also includes a guide block (205) and a movable slider (206). The guide block (205) is installed in the middle of the bottom of the sub-platform body (201), and the movable slider (206) is symmetrically installed on the left and right sides of the bottom of the sub-platform body (201).

5. An automatic transfer device for battery testing according to claim 4, characterized in that, The movable slider (206) is connected to the first slide rail (102) by a keyway, and the first lead screw (104) is connected to the guide block (205) by a thread.

6. The automatic transfer device for battery testing according to claim 1, characterized in that, The mobile platform (3) includes a stabilizing base (301), a guide rail (302), a guide post (303), and a support slider (304). The top of the stabilizing base (301) is symmetrically and horizontally equipped with the guide rail (302), and the bottom of the stabilizing base (301) is equipped with the guide post (303) in the middle. The bottom of the stabilizing base (301) is symmetrically equipped with the support slider (304).

7. An automatic transfer device for battery testing according to claim 6, characterized in that, The guide rail (302) is installed on the top surface of the stabilizer (301) with a recessed structure, and the guide rail (302) and the damping slider (405) are connected by a keyway. The support slider (304) and the second slide rail (204) are connected by a keyway. The guide post (303) and the second lead screw (203) are connected by a thread.

8. The automatic transfer device for battery testing according to claim 1, characterized in that, The partitions (402) are arranged at equal intervals on the inner side of the main frame (401), and the main frame (401) and the partitions are integrated into one structure. The bottom plates (404) are arranged at equal intervals on the inner bottom of the main frame (401), and the damping slider (405) is fixedly connected to the main frame (401).

Citation Information

Patent Citations

  • Position adjusting device and automatic detection equipment for appearance of power battery

    CN111146491A