A new energy automobile battery storage device

By using a vertically placed battery support component and a bearing plate structure with decreasing width, combined with sliders, grooves and motor drive, the problems of pressure deformation, inconvenient access, poor heat dissipation and low space utilization in battery storage are solved, realizing stable storage and convenient access of batteries, and improving the safety and convenience of new energy vehicle battery storage.

CN122426464APending Publication Date: 2026-07-21四川吉利学院
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
四川吉利学院
Filing Date
2026-01-20
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing battery storage methods suffer from problems such as battery deformation due to pressure, inconvenience in retrieval, electrochemical corrosion, poor heat dissipation, and low space utilization. They are particularly lacking in safety and convenience in the storage and transportation of batteries for new energy vehicles.

Method used

The system employs a support assembly for vertically placed batteries and a carrier plate structure with decreasing width. Combined with sliders, grooves, and motor drive, it enables orderly storage and convenient retrieval of batteries. The support frame and casters enhance the flexibility and space utilization of the device.

Benefits of technology

It achieves stable storage and convenient access to batteries, avoids battery deformation due to pressure, improves space utilization and heat dissipation, and enhances operational convenience and safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122426464A_ABST
    Figure CN122426464A_ABST
Patent Text Reader

Abstract

The application discloses a new energy automobile battery storage device, which comprises a box body, a plurality of containing cavities are arranged in the box body, a support frame corresponding to the containing cavities is arranged on the top wall of the box body, a plurality of support assemblies are arranged on the inner wall of the containing cavities in the longitudinal direction, the support assemblies comprise two support plates, the distance between the two support plates in the support assembly decreases from top to bottom, a fixing plate is embeddedly arranged on the front wall of the containing cavities, a plurality of sliding grooves distributed in the left-right direction are arranged on the rear wall of the fixing plate, a sliding block is arranged in each sliding groove, a bearing plate is connected to each sliding block, the top end of the sliding groove is open, a plurality of rotating motors are arranged on the support frame, a pull rope is connected to the output shaft of the rotating motor, and the pull rope enters the sliding groove from the top end and is connected with the sliding block. The device can realize longitudinal placement of the battery, fully utilize the space, avoid deformation of the longitudinally placed battery caused by pressure, and realize battery taking and placing above the box body, thereby improving the convenience of battery taking and placing.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of battery storage technology, and more specifically to a battery storage device for new energy vehicles. Background Technology

[0002] With the rapid development of the new energy vehicle industry, higher requirements have been placed on the safety, space utilization and operational convenience of power battery production, storage, transportation and recycling.

[0003] Currently, batteries are mostly stored using simple stacking or ordinary shelving, which presents the following problems:

[0004] 1. When batteries are stacked, they are easily deformed by pressure, which can damage the internal structure and cause safety hazards;

[0005] 2. Multiple batteries are inconvenient to store and manage, and difficult to access;

[0006] 3. Contact between batteries during storage may cause electrochemical corrosion;

[0007] 4. Traditional storage methods result in poor heat dissipation, affecting battery performance and lifespan;

[0008] 5. Low space utilization, which is not conducive to the storage and transportation of large-scale, multi-specification batteries.

[0009] Therefore, there is an urgent need for a new energy vehicle battery storage device that is structurally sound, safe, reliable, and easy to store and access. Summary of the Invention

[0010] To address the shortcomings of existing technologies, this invention provides a storage device for new energy vehicle batteries. This device enables vertical placement of batteries, making full use of space, while preventing vertically placed batteries from being deformed by pressure. Furthermore, it allows for battery retrieval and placement from above the enclosure, improving the convenience of battery retrieval and placement.

[0011] A new energy vehicle battery storage device includes a housing.

[0012] The box contains several open-topped cavities, and the top wall of the box is fitted with support frames corresponding to the cavities.

[0013] The inner wall of the receiving cavity is provided with multiple support components at equal intervals along its longitudinal direction. Each support component includes two support plates, which are respectively fixed to the left and right walls of the receiving cavity. From top to bottom, the distance between the two support plates in the support component decreases.

[0014] A fixing plate is embedded in the front wall of the receiving cavity. The bottom end of the fixing plate extends to the bottom wall of the receiving cavity, and the top end extends upward to the top of the box body. The rear wall of the fixing plate is provided with multiple sliding grooves distributed in the left and right direction. A slider is slidably disposed in each groove, and a support plate is connected to each slider. The multiple support plates are longitudinally distributed, and the top of the sliding groove is open.

[0015] The support frame is equipped with multiple rotary motors, each corresponding to a slider. A pull rope is connected to the output shaft of each rotary motor, entering from the top of the slide groove and connecting to the slider.

[0016] From top to bottom, the width of the support plate decreases sequentially from left to right. The number of support plates corresponds to the number of support components, and multiple support plates can be placed on multiple support components in sequence.

[0017] Preferably, the support components are configured as four, and the bearing plates are configured as four pieces.

[0018] From top to bottom, the distance between the two support plates within the first support assembly is less than the left-right width of the first load-bearing plate, but greater than the left-right width of the second load-bearing plate.

[0019] From top to bottom, the distance between the two support plates in the second support assembly is less than the left-right width of the second load-bearing plate, but greater than the left-right width of the third load-bearing plate.

[0020] From top to bottom, the distance between the two support plates within the third support component is less than the left-right width of the third load-bearing plate, but greater than the left-right width of the fourth load-bearing plate.

[0021] From top to bottom, the distance between the two support plates in the fourth support component is less than the width of the fourth load-bearing plate.

[0022] Preferably, the top wall of the support plate has a battery placement slot for placing batteries.

[0023] Preferably, the plurality of the receiving cavities are arranged in a rectangular array.

[0024] Preferably, the support frame includes a support plate and two support rods, the two support rods are distributed on the left and right sides of the receiving cavity, the support plate is connected to the two support rods, and the rotating motor is mounted on the support plate.

[0025] Preferably, the pull rope is a steel wire rope.

[0026] Preferably, the bottom wall of the box is equipped with several casters.

[0027] The beneficial effects of this invention are reflected in:

[0028] 1. By setting up vertically distributed support components and bearing plates with decreasing width, the batteries can be stored in a hierarchical and orderly manner, avoiding stacking and pressure.

[0029] 2. The structure of slider, slide groove and motor drive is adopted to realize the electric lifting of the support plate, which facilitates the loading and unloading of batteries and reduces the intensity of manual labor;

[0030] 3. A battery placement slot is provided on the support plate, which ensures a stable battery placement structure and prevents the battery from shaking during transportation;

[0031] 4. The matrix arrangement of the accommodating cavities provides a reasonable spatial layout, making it suitable for large-scale battery storage and logistics scenarios;

[0032] 5. The device is equipped with casters at the bottom, which facilitates movement and layout adjustments, improving its flexibility of use. Attached Figure Description

[0033] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the accompanying drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.

[0034] Figure 1 This is a rear cross-sectional view of the present invention.

[0035] In the attached diagram, 1-box body, 2-accommodating cavity, 3-support frame, 4-support plate, 5-fixed plate, 6-slide groove, 7-bearing plate, 8-rotating motor, 9-pull rope, 10-universal wheel. Detailed Implementation

[0036] The embodiments of the technical solution of the present invention will now be described in detail with reference to the accompanying drawings. These embodiments are merely illustrative of the technical solution of the present invention and are therefore intended to limit the scope of protection of the present invention.

[0037] It should be noted that, unless otherwise stated, the technical or scientific terms used in this application should have the ordinary meaning as understood by one of ordinary skill in the art to which this invention pertains.

[0038] like Figure 1 As shown,

[0039] This embodiment provides a new energy vehicle battery storage device, including a housing 1.

[0040] The housing 1 has several open-topped receiving cavities 2, and the top wall of the housing 1 is equipped with support frames 3 corresponding to the receiving cavities 2.

[0041] The inner wall of the receiving cavity 2 is provided with multiple support components at equal intervals along its longitudinal direction. Each support component includes two support plates 4, which are respectively fixed to the left and right walls of the receiving cavity 2. From top to bottom, the distance between the two support plates 4 in the support component decreases.

[0042] A fixing plate 5 is embedded in the front wall of the receiving cavity 2. The bottom end of the fixing plate 5 extends to the bottom wall of the receiving cavity 2, and the top end of the fixing plate 5 extends upward to the top of the box body 1. The rear wall of the fixing plate 5 is provided with multiple sliding grooves 6 distributed in the left and right direction. A slider is slidably disposed in each sliding groove 6, and a bearing plate 7 is connected to each slider. The multiple bearing plates 7 are longitudinally distributed, and the top of the sliding groove 6 is open.

[0043] The support frame 3 is equipped with multiple rotating motors 8, each corresponding to a slider. A pull rope 9 is connected to the output shaft of each rotating motor 8, entering from the top of the slide groove 6 and connecting to the slider.

[0044] From top to bottom, the width of the support plate 7 decreases sequentially from left to right. The number of support plates 7 corresponds to the number of support components, and multiple support plates 7 can be placed on multiple support components in sequence.

[0045] The specific working principle is as follows;

[0046] Initially, all support plates 7 are located above the housing 1. When placing the battery, the corresponding rotating motor 8 is first started, releasing the corresponding pull rope 9 to lower the bottom support plate 7 to a height flush with the top wall of the housing 1. The battery is then placed on the bottom support plate 7. The pull rope 9 is then released again, causing the bottom support plate 7 to pass through multiple support components and rest on the two support plates 4 of the bottom support component. This sequential release of multiple support plates 7, each capable of supporting a battery, allows for vertical placement of the battery within the housing 1. Each battery is supported by the support plate 7 and independent support components, preventing deformation under pressure.

[0047] In this embodiment, the width of the support plate 7 decreases sequentially from top to bottom, and the spacing between the two support plates 4 within the support assembly also decreases sequentially. The number of support plates 7 corresponds to the number of support assemblies. Multiple support plates 7 can be placed sequentially on multiple support assemblies. This allows for independent support of each support plate 7 while preventing dryness during the lowering process, ensuring that each support plate 7 can operate independently. By setting the top of the fixing plate 5 above the housing 1, multiple support plates 7 can be positioned above the housing 1, allowing each support plate 7 to hold a battery during battery storage.

[0048] Furthermore, the battery is placed on the support plate 7, and there is space between it and the side wall of the receiving cavity 2, which makes the overall heat dissipation of the box 1 better.

[0049] In this embodiment, four support components and four load-bearing plates 7 are provided.

[0050] From top to bottom, the distance between the two support plates 4 within the first support assembly is less than the left-right width of the first bearing plate 7, but greater than the left-right width of the second bearing plate 7.

[0051] From top to bottom, the distance between the two support plates 4 in the second support assembly is less than the left and right width of the second bearing plate 7, but greater than the left and right width of the third bearing plate 7.

[0052] From top to bottom, the distance between the two support plates 4 within the third support assembly is less than the left-right width of the third bearing plate 7, but greater than the left-right width of the fourth bearing plate 7.

[0053] From top to bottom, the distance between the two support plates 4 in the fourth support component is less than the left and right width of the fourth load-bearing plate 7.

[0054] In practical use, from top to bottom, the fourth support plate 7 passes through the three upper support components and is placed on the fourth support component; the third support plate 7 passes through the two upper support components and is placed on the third support component; the second support plate 7 passes through the first upper support component and is placed on the second support component; and the first support plate 7 is placed on the first support component. In this way, multiple support plates 7 are placed independently in layers, and interference is avoided during movement. This allows the support plates 7 to move independently while providing independent support for the load.

[0055] In this embodiment, the top wall of the support plate 7 has a battery placement slot for placing the battery, which is used to fix the battery position and prevent it from sliding.

[0056] In this embodiment, several of the accommodating cavities 3 are arranged in a rectangular array to improve the space utilization of the housing 1.

[0057] In this embodiment, the support frame 3 includes a support plate and two support rods. The two support rods are distributed on the left and right sides of the receiving cavity 3. The support plate is connected to the two support rods, and the rotating motor 8 is mounted on the support plate. By supporting the support plate with the two support rods, the stability of the support plate can be improved, thereby improving the stability of the installation of the rotating motor 8.

[0058] In this embodiment, the pull rope 9 is a steel wire rope, which has a sturdy structure and a long service life.

[0059] In this embodiment, the bottom wall of the box 1 is equipped with several casters 10 to facilitate overall movement and transportation.

[0060] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered within the scope of the claims and specification of the present invention.

Claims

1. A battery storage device for new energy vehicles, characterized in that: Including the box (1), The box (1) is provided with several opening cavities (2) at the top, and the top wall of the box (1) is equipped with a support frame (3) corresponding to the cavities (2). The inner wall of the receiving cavity (2) is provided with multiple support components at equal intervals along its longitudinal direction. Each support component includes two support plates (4), which are respectively fixed to the left and right walls of the receiving cavity (2). From top to bottom, the distance between the two support plates (4) in the support component decreases. A fixing plate (5) is embedded in the front wall of the receiving cavity (2). The bottom end of the fixing plate (5) extends to the bottom wall of the receiving cavity (2), and the top end of the fixing plate (5) extends upward to the top of the box body (1). The rear wall of the fixing plate (5) is provided with multiple sliding grooves (6) distributed in the left and right directions. A slider is slidably arranged in each sliding groove (6), and a bearing plate (7) is connected to each slider. The multiple bearing plates (7) are distributed longitudinally, and the top of the sliding groove (6) is open. The support frame (3) is equipped with multiple rotating motors (8), each corresponding to a slider. A pull rope (9) is connected to the output shaft of each rotating motor (8). The pull rope (9) enters from the top of the slide groove (6) and connects to the slider. From top to bottom, the width of the bearing plate (7) decreases sequentially from left to right. The number of bearing plates (7) corresponds to the number of support components. Multiple bearing plates (7) can be placed on multiple support components in sequence.

2. The new energy vehicle battery storage device according to claim 1, characterized in that, The support components are configured as four, and the bearing plates (7) are configured as four pieces. From top to bottom, the distance between the two support plates (4) in the first support assembly is less than the left and right width of the first bearing plate (7) and greater than the left and right width of the second bearing plate (7). From top to bottom, the distance between the two support plates (4) in the second support assembly is less than the left and right width of the second bearing plate (7) and greater than the left and right width of the third bearing plate (7). From top to bottom, the distance between the two support plates (4) in the third support assembly is less than the left and right width of the third bearing plate (7) and greater than the left and right width of the fourth bearing plate (7). From top to bottom, the distance between the two support plates (4) in the fourth support component is less than the left and right width of the fourth bearing plate (7).

3. The new energy vehicle battery storage device according to claim 1, characterized in that, The top wall of the support plate (7) has a battery placement slot for placing batteries.

4. The new energy vehicle battery storage device according to claim 1, characterized in that, Several of the accommodating cavities (3) are arranged in a rectangular array.

5. A new energy vehicle battery storage device according to claim 1, characterized in that, The support frame (3) includes a support plate and two support rods. The two support rods are distributed on the left and right sides of the receiving cavity (3). The support plate is connected to the two support rods. The rotating motor (8) is mounted on the support plate.

6. A new energy vehicle battery storage device according to claim 1, characterized in that, The pull rope (9) is a steel wire rope.

7. A new energy vehicle battery storage device according to claim 1, characterized in that, The bottom wall of the box (1) is equipped with several casters (10).