Battery mounting and transporting device for energy storage cabinet
By designing the battery installation and transportation device of the energy storage cabinet, using the combination of electric slide rails and electric push rods, combined with the wedge-shaped block structure, the battery module detection problems are solved, and an efficient and convenient battery module detection and installation process is achieved.
Patent Information
- Application Number
- CN202422277585.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-18
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-18
AI Technical Summary
In the prior art, the detection method of battery modules is long, inefficient, and there are problems of manual operation introduction errors, which affects the production line efficiency and quality control of the energy storage system.
A battery installation and transportation device for energy storage cabinet is designed, including a mobile seat, an electric screw, a connecting seat, a base, a rodless cylinder, a mobile seat, a side frame, a placement plate, a load-bearing block and a detection group. The electric slide rail and an electric push rod are used to achieve convenient adjustment of the voltage detector, and combined with the structure of the wedge block and the push block, the placement and detection process of the battery module are simplified.
The orderly arrangement of battery modules is realized and the detection process is simplified, the detection accuracy and convenience are improved, and the installation and disassembly of battery modules in front of the energy storage cabinet is enhanced.
Smart Images

Figure CN223072518U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of battery transportation, and particularly relates to a battery installation and transportation device for an energy storage cabinet. Background Art
[0002] In the design and application of energy storage cabinets, the importance of battery modules as core components is self-evident. With the popularization of renewable energy and the development of smart grids, the demand for energy storage systems is increasing day by day, which makes the efficient and safe installation of battery modules the focus of industry attention.
[0003] During the installation and transportation of battery modules, in order to ensure the reliability and safety of the system, a series of detection work is usually carried out on battery cells, including but not limited to internal resistance measurement, voltage test and capacity evaluation. These detection steps are to ensure that each battery cell is in good working condition before installation, so as to avoid the performance decline or even safety accidents of the entire energy storage system caused by individual cell failures. However, in actual operation, most use traditional manual detection methods or semi-automatic detection methods, which not only take a long time, but also have low efficiency when dealing with a large number of battery modules, increasing the labor cost and may also introduce errors due to the uncertainty of manual operation, thus affecting the efficiency and quality control level of the entire production line.
[0004] Therefore, in view of the above problems, it is urgent to design an energy storage cabinet battery installation and transportation device that is convenient for detection. Summary of the Utility Model
[0005] In order to overcome the above-mentioned shortcomings existing in the prior art, the utility model provides an energy storage cabinet battery installation and transportation device that is convenient for detection.
[0006] The technical solution of the utility model is: an energy storage cabinet battery installation and transportation device, including a moving seat, an electric lead screw, a connecting seat, a base, a rodless cylinder, a moving plate, a side frame, a placing plate, a load-bearing block and a detection group. An electric lead screw is arranged at each of the four corners of the top surface of the moving seat. A connecting seat is threadedly arranged between the lead screws of the two electric lead screws on the same side. A base is arranged between the two connecting seats. A rodless cylinder is installed on the base. A moving plate that is slidably matched with the base is connected to the slider of the rodless cylinder. A side frame is rotatably arranged on the moving plate. A plurality of groups of placing plates are symmetrically arranged on both sides of the side frame. The two placing plates on the same layer cooperate to place and support the battery module. Load-bearing blocks are arranged at the bottoms of the two placing plates on the bottommost layer. A detection group for assisting in the voltage detection of the battery module is arranged on the side frame.
[0007] Preferably, the detection group includes an electric slide rail, an electric push rod, and a voltage detector. The electric slide rails are symmetrically arranged on both sides of the side frame. Electric push rods are arranged on the sliders of the electric slide rails. A voltage detector is arranged between the telescopic ends of the two electric push rods. The voltage detector is connected to the battery module to perform voltage detection.
[0008] Preferably, it further includes a guide rail. A guide rail is also arranged on the slider of the electric slide rail. Both sides of the voltage detector pass through the guide rail on the same side respectively and form a sliding fit.
[0009] Preferably, it further includes a vertical plate, a wedge block, and an elastic member. A vertical plate is arranged on each placement plate. Wedge blocks are slidably arranged through the opposite sides of the symmetric vertical plates on the same layer. An elastic member is arranged between the wedge block and the corresponding vertical plate.
[0010] Preferably, it further includes a contact frame and a pushing block. Pushing blocks are arranged at the opposite ends of the symmetric wedge blocks on the same layer, and contact frames in contact with the pushing blocks on the same side are symmetrically arranged on the base.
[0011] Preferably, it further includes a mounting rod and a roller. Mounting rods are symmetrically arranged on one side of the side frame opposite to the placement plate. Rollers are rotatably arranged on both mounting rods.
[0012] The beneficial effects of the present utility model are as follows: 1. Through the cooperation of the side frame and the placement plate, the battery modules are arranged in an orderly manner, realizing the integrated management of the battery modules before detection, thereby ensuring that the battery modules can achieve the effect of installation and transportation. And this arrangement method can simplify the working process of voltage detection by stacking the battery modules layer by layer, thus facilitating the operation of battery module detection.
[0013] 2. By using the combination of the electric slide rail and the electric push rod, the position adjustment of the voltage detector is more convenient, and the accuracy during the detection process is improved, realizing more convenient automated detection.
[0014] 3. By using the wedge block to fix the placement position of the battery module and making the wedge block easy to disengage by means of the contact between the pushing block and the contact frame, the convenience of installation and disassembly of the battery module before entering the energy storage cabinet is enhanced. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a three-dimensional structural schematic diagram of the present utility model.
[0016] Figure 2 is a three-dimensional structural schematic diagram of components such as the side frame, placement plate, and load-bearing block of the present utility model.
[0017] Figure 3 is a three-dimensional structural sectional view of components such as the base, rodless cylinder, and moving plate of the present utility model.
[0018] Figure 4 This is a three-dimensional structural schematic diagram of components such as the guide rail, electric push rod, and voltage detector of the present utility model.
[0019] Figure 5 This is a three-dimensional structural schematic diagram of components such as the placement plate, contact frame, and wedge block of the present utility model.
[0020] Figure 6 This is a three-dimensional structural schematic diagram of components such as the wedge block, elastic member, and push block of the present utility model.
[0021] Explanation of reference numerals: 01, battery module; 1, moving seat; 2, electric lead screw; 3, connecting seat; 4, base; 5, rodless cylinder; 6, moving plate; 7, side frame; 8, placement plate; 81, vertical plate; 9, load-bearing block; 10, electric slide rail; 11, guide rail; 12, electric push rod; 13, voltage detector; 14, contact frame; 15, wedge block; 16, elastic member; 17, push block; 18, mounting rod; 19, roller. Detailed implementation manners
[0022] The present utility model will be further described below in conjunction with the accompanying drawings and specific implementation manners.
[0023] Embodiment: Energy storage cabinet battery installation and transportation device, such as Figures 1 - 4As shown in the figure, it includes a moving seat 1, an electric lead screw 2, a connecting seat 3, a base 4, a rodless cylinder 5, a moving plate 6, a side frame 7, a placing plate 8, a load-bearing block 9 and a detection group. The moving seat 1 serves as the basic part of the entire device, ensuring the stability of the chassis while providing the convenience required for movement. An electric lead screw 2 is provided at each of the four corners of the top surface of the moving seat 1. A connecting seat 3 is threadedly arranged between the lead screws of the two electric lead screws 2 on the same side. A base 4 is arranged between the two connecting seats 3. By driving the connecting seats 3 on both sides to move up and down through the electric lead screw 2, the base 4 thereon can be driven to move. A rodless cylinder 5 is installed on the base 4. The rodless cylinder 5 moves in a front-back trajectory. A moving plate 6 that is slidably matched with the base 4 is connected to the slider of the rodless cylinder 5. The moving plate 6 can be driven to move back and forth through the rodless cylinder 5. A side frame 7 is rotatably arranged at the rear side of the moving plate 6. A plurality of groups of placing plates 8 are symmetrically arranged on the left and right sides of the side frame 7. The number of placing plates 8 in each group is two. And the two groups of placing plates 8 on the same layer cooperate to provide space for the placement of the battery module 01, so that the battery module 01 can be placed directly by being embedded between the four placing plates 8. This can not only stabilize the surrounding positions of the battery module 01, but also simplify the assembly operation of the battery module 01. Load-bearing blocks 9 are arranged at the bottoms of the two placing plates 8 on the bottommost layer. When the side frame 7 is in a vertical state, the load-bearing blocks 9 can provide additional support for it, thus ensuring its stability. A detection group for assisting in the voltage detection of the battery module 01 is arranged on the side frame 7. This design makes the detection operation of the battery module 01 to be transported more convenient. Through the flexible angle transformation of the side frame 7, the battery module 01 can be easily placed in place, and then the detection group is used to detect the battery module 01 that has been arranged and placed. In this way, the entire operation process becomes more compact and orderly, and at the same time, it also brings greater convenience to the detection work.
[0024] As Figure 4 shown in the figure, the detection group includes an electric slide rail 10, an electric push rod 12 and a voltage detector 13. Electric slide rails 10 are symmetrically arranged on the left and right sides of the side frame 7. Electric push rods 12 are arranged on the sliders of the electric slide rails 10, so that the electric push rods 12 on both sides can move up and down. A voltage detector 13 is arranged between the telescopic ends of the two electric push rods 12. The voltage detector 13 is connected to the battery module 01 for voltage detection. Driven by the electric slide rail 10, the voltage detector 13 can move up and down, so as to adjust to the required detection height, which improves the convenience of detection.
[0025] As Figure 4 shown in the figure, it also includes a guide rail 11. A guide rail 11 is also arranged on the slider of the electric slide rail 10. The left and right sides of the voltage detector 13 respectively pass through the guide rail 11 on the same side and form a sliding fit, which can provide guidance for the movement of the voltage detector 13 and make its support more stable during movement.
[0026] As shown in Figure 5 and Figure 6 figures, there are also vertical plates 81, wedge blocks 15 and elastic members 16. A vertical plate 81 is provided on each placement plate 8. Wedge blocks 15 are slidably provided through the opposite sides of the symmetric vertical plates 81 on the same layer, and the inclined surfaces of the wedge blocks 15 are inclined towards the position of the battery module 01. An elastic member 16 is provided between the wedge block 15 and the corresponding vertical plate 81. In this embodiment, the elastic member 16 is a spring. When the inclined surface of the wedge block 15 contacts the battery module 01, the wedge block 15 will be squeezed and pushed outwards, causing the elastic member 16 to deform accordingly, providing the required force for subsequent reset operation. In addition, the special inclined surface structure of the wedge block 15 makes the fixation of the battery module 01 simpler and more convenient.
[0027] As shown in Figure 6 figures, there are also contact frames 14 and push blocks 17. Push blocks 17 are provided at the opposite ends of the symmetric wedge blocks 15 on the same layer, and the push blocks 17 are provided with inclined surfaces consistent with the wedge blocks 15 on the same side. Contact frames 14 that are in contact and cooperate with the push blocks 17 on the same side are symmetrically provided on the base 4. Such a design makes it more convenient to release the fixation of the wedge block 15 on the battery module 01.
[0028] As shown in Figure 1 figures, there are also mounting rods 18 and rollers 19. Mounting rods 18 are symmetrically provided at the rear of the side frame 7, and rollers 19 are rotatably provided on both mounting rods 18, which can provide support for the rotation of the side frame 7.
[0029] When the device needs to be used, first push the device to a suitable installation position. The setting of the moving seat 1 makes the movement of the device more convenient. Then rotate the lower side frame 7 downward. Subsequently, the mounting rod 18 and the roller 19 move downward synchronously. The roller 19 contacts the ground, and the two cooperate to support the bottom end of the side frame 7. After the side frame 7 is placed stably, the staff inserts the battery module 01 between the placing plates 8. The corresponding two groups of placing plates 8 cooperate to form a placing compartment, making the placement of the battery module 01 more convenient. When the battery module 01 approaches the placing plate 8, it will first contact the wedge-shaped blocks 15 on both sides, and then squeeze their inclined surfaces, pushing the wedge-shaped blocks 15 on both sides away from each other. Subsequently, the elastic members 16 connected to them deform accordingly, providing enough space for the entry of the battery module 01. After the battery module 01 completely enters the placing plate 8, it will then be separated from contact with the wedge-shaped blocks 15, causing the two wedge-shaped blocks 15 to reset and abut against the front of the battery module 01, thus firmly fixing the battery module 01. After the battery module 01 is placed, the side frame 7 can be rotated upward to the vertical state. Subsequently, the load-bearing blocks 9 on both sides will also contact the moving plate 6 and support and bear the weight of the whole. Although the battery modules 01 are already arranged at this time, voltage detection needs to be carried out before placing the energy storage cabinet. Immediately afterwards, the staff starts the electric slide rail 10. The electric slide rail 10 drives the electric push rods 12 on both sides together with the voltage detector 13 to move up and down. When reaching the position where the battery module 01 needs to be detected, the electric push rod 12 can be started. The electric push rod 12 drives the voltage detector 13 to approach the battery module 01, enabling the voltage detector 13 to slide between the guide rails 11 on both sides. As it moves, the moving voltage detector 13 will eventually contact the battery module 01, thereby detecting its voltage. Subsequently, the staff can view the data detected by the voltage detector 13 through an electronic device, and then select the unqualified battery modules 01. After the detection is completed, the device can be pushed to the energy storage cabinet, and then the rodless cylinder 5 is started to drive the moving plate 6 to move forward, making the placing plate 8 approach the compartment of the energy storage cabinet. As it moves, the wedge-shaped block 15 will contact the contact frames 14 on both sides, and then through the cooperation of the inclined surfaces, it will push the wedge-shaped block 15 to separate from contact with the battery module 01, enabling the battery module 01 to move freely between the placing plates 8. Immediately afterwards, the staff can push the battery module 01 forward to push the battery module 01 into the compartment of the energy storage cabinet. At the same time, because the heights of the compartments are different, for the convenience of operation, the electric lead screw 2 can be started simultaneously. The electric lead screw 2 around drives the base 4 to move upward, and then drives the battery module 01 on it to move upward, achieving height adjustment and making the placement of the battery module 01 more convenient.
[0030] The above are only examples of the implementation of the present utility model and are not intended to limit the present utility model. Any equivalent replacement made within the principle of the present utility model shall be included within the protection scope of the present utility model. The content not elaborated in detail in the present utility model belongs to the well-known prior art of those skilled in the art.
Claims
1. Energy storage cabinet battery installation and transportation device, characterized in that: It includes a moving seat (1), an electric lead screw (2), a connecting seat (3), a base (4), a rodless cylinder (5), a moving plate (6), a side frame (7), a placing plate (8), a load-bearing block (9) and a detection group. Around the top surface of the moving seat (1), an electric lead screw (2) is provided at each of the four sides. Between the lead screws of the two electric lead screws (2) on the same side, a connecting seat (3) is threadedly arranged. Between the two connecting seats (3), a base (4) is provided. A rodless cylinder (5) is installed on the base (4). The slider of the rodless cylinder (5) is connected with a moving plate (6) that is slidably matched with the base (4). A side frame (7) is rotatably arranged on the moving plate (6). On both sides of the side frame (7), multiple groups of placing plates (8) are symmetrically arranged. The two placing plates (8) on the same layer cooperate to place and support the battery module (01). At the bottom of the two placing plates (8) on the bottommost layer, load-bearing blocks (9) are provided. On the side frame (7), a detection group for assisting in voltage detection of the battery module (01) is provided.
2. The battery installation and transportation device for the energy storage cabinet according to claim 1, wherein: The detection group includes an electric slide rail (10), an electric push rod (12) and a voltage detector (13). Electric slide rails (10) are symmetrically arranged on both sides of the side frame (7). Electric push rods (12) are arranged on the sliders of the electric slide rails (10). Between the telescopic ends of the two electric push rods (12), a voltage detector (13) is provided. The voltage detector (13) is connected to the battery module (01) to perform voltage detection.
3. The battery installation and transportation device for the energy storage cabinet according to claim 2, wherein: It further includes a guide rail (11). A guide rail (11) is also arranged on the slider of the electric slide rail (10). The two sides of the voltage detector (13) respectively pass through the guide rail (11) on the same side and form a sliding fit.
4. The energy storage cabinet battery installation and transportation device according to claim 3, characterized in that: It further includes a vertical plate (81), a wedge block (15) and an elastic member (16). A vertical plate (81) is arranged on each placing plate (8). Wedge blocks (15) are slidably arranged through the opposite sides of the symmetric vertical plates (81) on the same layer. An elastic member (16) is arranged between the wedge block (15) and the corresponding vertical plate (81).
5. The battery installation and transportation device for the energy storage cabinet according to claim 4, wherein: It further includes a contact frame (14) and a pushing block (17). Pushing blocks (17) are arranged at the opposite ends of the symmetric wedge blocks (15) on the same layer. And contact frames (14) that are in contact and cooperate with the pushing blocks (17) on the same side are symmetrically arranged on the base (4).
6. The battery installation and transportation device for the energy storage cabinet according to claim 5, wherein: It further includes a mounting rod (18) and a roller (19). Mounting rods (18) are symmetrically arranged on the side of the side frame (7) opposite to the placing plate (8). Rollers (19) are rotatably arranged on the two mounting rods (18).