Automatic battery pack supporting and piling equipment for energy storage transformer substation
By designing automated support stacking equipment, which utilizes conveyor belts and motors to automate the stacking and separation of battery packs, the cumbersome problems in the battery assembly process are solved, improving the convenience of battery assembly and the practicality of the equipment.
Patent Information
- Application Number
- CN202520466036.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-03-18
AI Technical Summary
In existing technologies, the battery assembly process is cumbersome, especially since there are a large number of batteries, which means that a single battery pack needs to be manually stacked multiple times during assembly, making the operation complex and cumbersome.
Design an automated battery pack support and stacking device for energy storage substations, including components such as support platform, conveyor belt, battery box, limit frame and motor. Through the synergistic effect of conveyor belt and motor, automated stacking and separation of batteries can be achieved, reducing manual operation.
It enables automated stacking and assembly of battery packs, improving the convenience and stability of battery assembly, simplifying the operation process, and enhancing the practicality and smoothness of the equipment.
Smart Images

Figure CN223804268U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to support and stack equipment field especially relates to a battery pack automatic support and stack equipment for energy storage substation. BACKGROUND
[0002] The development of new energy technology drives the development and continuous innovation of battery equipment technology. Square batteries are commonly used in new energy vehicles and large-scale energy storage at present. In the process of battery application, single batteries need to be assembled into battery packs, and high-voltage and high-capacity battery packs are formed by series and parallel connection. A square battery pack is usually composed of multiple square batteries, two side plates, two clamps, etc. The conventional method is to stack the side plates, batteries, etc. and clamp them with a clamp, then put on a clamp from the upper end, turn over the battery pack, put on another clamp, and finally turn over the battery pack again. This process needs to be repeated multiple times. The battery itself is heavy, making it difficult to turn over. During the battery assembly and clamping process, the battery is prone to deflection, and there are too many complicated steps in the assembly process.
[0003] In the existing technology, such as the "battery assembly device" with the Chinese authorized publication number CN220065883U, which includes a bottom plate, a fastening device is installed on one side of the top of the bottom plate, a long-side positioning device is installed on one side of the fastening device, a positioning assembly is provided on one side of the long-side positioning device, and a lower clamp can be directly inserted from the lower direction of the battery module without turning over the battery module. The assembly is simple. The positioning block at the long-side positioning device can move freely on the surface of the bottom plate to uniformly position the long side of the battery pack. The positioning assembly facilitates the preliminary positioning of the battery cell. In combination with the fastening device, the battery cell is installed and reinforced. Finally, the lower clamp is directly inserted from the lower direction of the battery module, avoiding the turning over of the battery module during the assembly of the clamp. The process is simplified, and the operation is simpler and safer.
[0004] In the existing technology, when assembling the battery pack, the number of batteries is relatively large, which requires manual continuous stacking of multiple batteries during the assembly of a single battery pack, resulting in complex and tedious battery pack assembly.
[0005] Therefore, it is necessary to provide a battery pack automatic support and stack equipment for energy storage substation to solve the above technical problems. Utility model content
[0006] The utility model provides a battery pack automatic support and stack equipment for energy storage substation, which solves the problem of complex and tedious battery pack assembly due to the large number of batteries.
[0007] In order to solve the above technical problems, the utility model provides a kind of battery pack automatic support stacking equipment for energy storage substation, including support table, the top of support table is fixedly connected with support plate, the outside of support table is movably sleeved with No.
[0008] Preferably, the battery box is located below the side of the second conveyor belt, and the width of the battery box is the same as the length of the battery.
[0009] Preferably, the spring and the lifting plate are perpendicular to each other, and the number of springs is four.
[0010] Preferably, the front of the limiting frame is in the shape of an inverted U, and the limiting frame is movably sleeved on the outside of the battery box.
[0011] Preferably, the auxiliary mechanism includes a load-bearing column, the load-bearing column is movably sleeved in the receiving box, the front of the receiving box is fixedly installed with a second motor, the output shaft of the second motor is fixedly sleeved with a rotating column, and the bottom of the inner wall side of the receiving box is provided with a discharge port.
[0012] Preferably, the support mechanism includes a positioning groove, the positioning groove is provided on the top of the support table, and the inside of the positioning groove is movably sleeved with a sliding column.
[0013] Preferably, the number of limiting plates is two, and the two limiting plates are symmetrically distributed with the support table as the axis of symmetry.
[0014] Preferably, the moving mechanism includes a support column, the support column is fixedly connected to the bottom of the support table, and the bottom of the support column is provided with a sliding wheel.
[0015] Compared with the related art, the battery pack automatic support stacking equipment for energy storage substation has the following advantages:
[0016] The utility model provides a kind of battery pack automatic support stacking equipment for energy storage substation, by setting battery box, when battery pack assembly is carried out, several storage batteries are placed at the top of No.
[0017] By setting auxiliary mechanism, when storage battery stacking is carried out, the partition plate is stacked and placed in the inside of storage box, No. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 The structure diagram of a preferred embodiment of the battery pack automatic support stacking equipment for energy storage substation is provided.
[0019] Figure 2 For Figure 1 The front view of battery box in the battery pack automatic support stacking equipment for energy storage substation is shown.
[0020] Figure 3 For Figure 1 The front view of the battery pack automatic support stacking equipment for energy storage substation is shown.
[0021] Figure 4 For Figure 1 The front view of support table in the battery pack automatic support stacking equipment for energy storage substation is shown.
[0022] Reference numerals in the figure: 1, support table; 2, support plate; 3, No. 1 conveyor belt; 4, No. 2 conveyor belt; 5, storage battery; 6, battery box; 7, limiting column; 8, spring; 9, lifting plate; 10, storage box; 11, limiting frame; 12, No. 1 motor; 13, roller; 14, auxiliary mechanism; 141, bearing column; 142, No. 2 motor; 143, rotating column; 15, support mechanism; 151, positioning groove; 152, sliding column; 16, limiting plate; 17, moving mechanism; 171, support column; 172, sliding wheel. DETAILED DESCRIPTION
[0023] The utility model is further described below in combination with drawings and embodiments.
[0024] Please refer to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 wherein, Figure 1 is a preferred embodiment of the structure of a battery pack automatic supporting and stacking equipment for energy storage substation provided by the utility model; Figure 2 is Figure 1 a front view of a battery box in the battery pack automatic supporting and stacking equipment for energy storage substation shown in
[0025] Figure 3 is a front view of the battery pack automatic supporting and stacking equipment for energy storage substation shown in Figure 1 Figure 4 is a front view of a supporting table in the battery pack automatic supporting and stacking equipment for energy storage substation shown in Figure 1 The battery pack automatic supporting and stacking equipment for energy storage substation comprises a supporting table 1, a supporting plate 2 is fixedly connected to the top of the supporting table 1, a first conveying belt 3 is movably sleeved to the outside of the supporting table 1, a second conveying belt 4 is movably sleeved to the top of the supporting plate 2, a storage battery 5 is placed on the top of the second conveying belt 4, a battery box 6 is placed on the top of the first conveying belt 3, a limiting column 7 is fixedly connected to the bottom of the inner cavity of the battery box 6, a spring 8 is fixedly connected to the bottom of the inner cavity of the battery box 6, a lifting plate 9 is movably sleeved to the inside of the battery box 6, a storage box 10 is fixedly connected to the top of the supporting table 1, a limiting frame 11 is fixedly connected to the top of the supporting table 1, a first motor 12 is fixedly installed on the side surface of the supporting table 1, a roller 13 is fixedly sleeved to the output shaft of the first motor 12, an auxiliary mechanism 14 is arranged in the inside of the storage box 10, a supporting mechanism 15 is arranged on the top of the supporting table 1, a limiting plate 16 is fixedly connected to the top of the supporting table 1, and a moving mechanism 17 is arranged on the bottom of the supporting table 1.
[0026] The battery box 6 is located directly below one side of the second conveying belt 4, and the width value of the battery box 6 is the same as the length value of the storage battery 5; by arranging the battery box 6, when the battery pack is assembled, a plurality of storage batteries 5 are placed on the top of the second conveying belt 4, at this time, the battery box 6 is placed on the top of the first conveying belt 3 and the second conveying belt 4 is started, so that the second conveying belt 4 drives the storage batteries 5 to fall into the inside of the reciprocating battery box 6 at a uniform speed, thereby continuously stacking the plurality of storage batteries 5 into the inside of the battery box 6, and the effect of automatic stacking and assembling of the battery pack is achieved, so that the problem of complex and tedious manual stacking and assembling of the battery pack is avoided, thereby improving the convenience of the battery pack assembly.
[0027] The spring 8 is perpendicular to the lifting plate 9, and the number of the spring 8 is four; by setting the spring 8, when the battery 5 is stacked and assembled, the spring 8 drives the lifting plate 9 to lift, so that the lifting plate 9 can receive and limit the falling battery 5, thereby avoiding the problem of tilting and overturning when the battery 5 falls with a large drop, thereby improving the stability of the battery 5 when falling.
[0028] The front face of the limiting frame 11 is in the shape of an inverted U, and the limiting frame 11 is movably sleeved outside the battery box 6; by setting the limiting frame 11, when the battery 5 falls to the top edge of the battery box 6, the limiting frame 11 can limit the horizontal movement of the battery box 6, so that the battery 5 stacked on the top edge of the battery box 6 can be pushed into the battery box 6, thereby achieving the effect of pushing the batteries in the battery box 6 flat.
[0029] The auxiliary mechanism 14 includes a bearing column 141 movably sleeved inside the storage box 10, a No. 2 motor 142 fixedly installed on the front face of the storage box 10, a rotating column 143 fixedly sleeved on the output shaft of the No. 2 motor 142, and a discharge port 144 opened at the bottom of the inner wall side of the storage box 10; by setting the auxiliary mechanism 14, when the battery 5 is stacked, the partition plate is stacked and placed inside the storage box 10, at this time the No. 2 motor 142 is started, so that the No. 2 motor 142 drives the partition plate to move horizontally through the rotating column 143, and then moves horizontally to the outside of the storage box 10 through the discharge port 144 and falls into the inside of the battery box 6, thereby achieving the effect of separating the multiple layers of batteries in the battery box 6, thereby improving the practicability of the battery stacking device.
[0030] The supporting mechanism 15 includes a positioning groove 151 opened at the top of the supporting table 1, and a sliding column 152 movably sleeved inside the positioning groove 151; by setting the supporting mechanism 15, when the battery box 6 is horizontally moved by the No. 1 conveying belt 3, the sliding column 152 supports the conveying No. 1 conveying belt 3, i.e. supports the horizontally moving battery box 6, thereby avoiding the problem of friction between the battery box 6 and the top of the supporting table 1 when the battery box 6 is horizontally moved by the No. 1 conveying belt 3, thereby improving the smoothness of the conveying of the No. 1 conveying belt 3.
[0031] The number of the limiting plates 16 is two, and the two limiting plates 16 are symmetrically distributed with the supporting table 1 as the axis of symmetry; by setting the limiting plates 16, when the battery box 6 is horizontally moved and conveyed, the limiting plates 16 can limit the horizontally moving battery box 6, so that the problem of tilting and deviation of the battery box 6 when horizontally moving is avoided, thereby improving the stability of the horizontally moving battery box 6.
[0032] The moving mechanism 17 comprises a supporting column 171 fixedly connected to the bottom of the supporting table 1, and a sliding wheel 172 is installed at the bottom of the supporting column 171; by arranging the moving mechanism 17, when the battery stacking equipment is moved and conveyed, the supporting table 1 is pushed, so that the sliding wheel 172 drives the supporting table 1 to move horizontally through the supporting column 171, that is, the first conveying belt 3 is driven to move horizontally, thereby achieving the effect of moving and conveying the battery stacking equipment, and further facilitating the adjustment of the working position of the battery stacking equipment.
[0033] The working principle of the battery group automatic supporting and stacking equipment for the energy storage substation is as follows:
[0034] Firstly, when the battery group is assembled, a plurality of storage batteries 5 are placed on the top of the second conveying belt 4, at this time, the battery box 6 is placed on the top of the first conveying belt 3 and the second conveying belt 4 is started, so that the second conveying belt 4 drives the storage batteries 5 to fall into the battery box 6 moving back and forth at a constant speed, thereby enabling the plurality of storage batteries 5 to be continuously stacked in the battery box 6, thereby achieving the effect of automatic stacking and assembling of the battery group, avoiding the problem that the manual stacking and assembling of the battery group is relatively complex and tedious, thereby improving the convenience of the battery group assembly; when the storage batteries 5 are stacked and assembled, the spring 8 drives the lifting plate 9 to be lifted, so that the lifting plate 9 can receive and limit the falling storage batteries 5, thereby avoiding the problem that the storage batteries 5 tilt and overturn when falling with a large drop, thereby improving the stability of the storage batteries 5 when falling; when the storage batteries 5 fall to the top edge of the battery box 6, the limiting frame 11 limits the horizontal movement of the battery box 6, so that the storage batteries 5 stacked on the top edge of the battery box 6 are pushed into the battery box 6, thereby achieving the effect of pushing the batteries in the battery box 6; when the storage batteries 5 are stacked, the partition plate is stacked and placed in the storage box 10, at this time, the second motor 142 is started, so that the second motor 142 drives the partition plate to move horizontally through the rotating column 143, and then moves horizontally to the outside of the storage box 10 through the discharge port 144 and falls into the battery box 6, thereby achieving the effect of separating the multiple layers of batteries in the battery box 6, thereby improving the practicability of the battery stacking equipment.
[0035] Second step: when the battery box 6 is horizontally moved by the first conveying belt 3, the sliding column 152 supports the first conveying belt 3, that is, supports the horizontally moving battery box 6, thereby avoiding the problem of friction between the first conveying belt 3 and the top of the support table 1 when the battery box 6 is horizontally moved by the first conveying belt 3, thereby improving the smoothness of the first conveying belt 3, when the battery box 6 is horizontally moved and conveyed, the limiting plate 16 limits the horizontally moving battery box 6, thereby avoiding the problem of inclination and deviation of the battery box 6 when it is horizontally moved, thereby improving the stability of the battery box 6 when it is horizontally moved, when the battery stacking equipment is moved and conveyed, the support table 1 is pushed, so that the sliding wheel 172 drives the support table 1 to move horizontally by the support column 171, that is, drives the first conveying belt 3 to move horizontally, thereby achieving the effect of moving and conveying the battery stacking equipment, thereby facilitating the adjustment of the working position of the battery stacking equipment.
[0036] Compared with the related art, the battery group automatic supporting and stacking equipment for energy storage substation has the following beneficial effects:
[0037] By arranging the battery box 6, when the battery group is assembled, the plurality of storage batteries 5 are placed on the top of the second conveying belt 4, at this time the battery box 6 is placed on the top of the first conveying belt 3 and the second conveying belt 4 is started, so that the second conveying belt 4 drives the storage batteries 5 to fall uniformly into the reciprocating battery box 6, thereby enabling the plurality of storage batteries 5 to be continuously stacked in the battery box 6, thereby achieving the effect of automatic stacking and assembling of the battery group, and avoiding the problem of complex and tedious manual stacking and assembling of the battery group, thereby improving the convenience of assembling the battery group.
[0038] The above is only an embodiment of the present application, and does not limit the patent range of the present application, and any equivalent structure or equivalent process conversion, or direct or indirect application in other related technical fields, is also included in the patent protection range of the present application.
Claims
1. An automated support and stacking plant for battery banks for energy storage substations, comprising a support table (1), characterized in that: The top of the support table (1) is fixedly connected with a support plate (2), the outside of the support table (1) is movably sleeved with a first conveying belt (3), the top of the support plate (2) is movably sleeved with a second conveying belt (4), the top of the second conveying belt (4) is placed with a storage battery (5), the top of the first conveying belt (3) is placed with a battery box (6), the bottom of the inner cavity of the battery box (6) is fixedly connected with a limiting column (7), the bottom of the inner cavity of the battery box (6) is fixedly connected with a spring (8), the inside of the battery box (6) is movably sleeved with a lifting plate (9), the top of the support table (1) is fixedly connected with a storage box (10), the top of the support table (1) is fixedly connected with a limiting frame (11), the side of the support table (1) is fixedly installed with a first motor (12), the output shaft of the first motor (12) is fixedly sleeved with a roller (13), the inside of the storage box (10) is provided with an auxiliary mechanism (14), the top of the support table (1) is provided with a supporting mechanism (15), the top of the support table (1) is fixedly connected with a limiting plate (16), and the bottom of the support table (1) is provided with a moving mechanism (17).
2. An automated battery support and stacking apparatus for energy storage substation as claimed in claim 1, wherein, The battery box (6) is located directly below the side of the second conveying belt (4), and the width value of the battery box (6) is the same as the length value of the storage battery (5).
3. An automated battery support and stacking apparatus for energy storage substation as claimed in claim 1, wherein, The spring (8) and the lifting plate (9) are perpendicular to each other, and the number of the spring (8) is four.
4. An automated battery support and stacking apparatus for energy storage substation as claimed in claim 1, wherein, The front of the limiting frame (11) is in the shape of an inverted U, and the limiting frame (11) is movably sleeved outside the battery box (6).
5. An automated battery support and stacking apparatus for energy storage substation as claimed in claim 1, wherein, The auxiliary mechanism (14) comprises a bearing column (141), the bearing column (141) is movably sleeved in the inside of the storage box (10), the front of the storage box (10) is fixedly installed with a second motor (142), the output shaft of the second motor (142) is fixedly sleeved with a rotating column (143), and the bottom of the side wall of the storage box (10) is provided with a discharge port (144).
6. An automated battery support and stacking apparatus for energy storage substation applications as described in claim 1, wherein, The supporting mechanism (15) comprises a positioning groove (151), the top of the support table (1) is provided with the positioning groove (151), and the inside of the positioning groove (151) is movably sleeved with a sliding column (152).
7. An automated battery support and stacking apparatus for energy storage substation applications as described in claim 1, wherein, The number of the limiting plate (16) is two, and the two limiting plates (16) are symmetrically distributed with the support table (1) as the axis of symmetry.
8. An automated battery support and stacking apparatus for energy storage substation applications as described in claim 1, wherein, The moving mechanism (17) comprises a support column (171), the support column (171) is fixedly connected to the bottom of the support table (1), and the bottom of the support column (171) is installed with a sliding wheel (172).
Citation Information
Patent Citations
Battery pack assembling device
CN220065883U